f57a1a449c83f4f28484a5adf2b70303ccf9aac0
[dpdk.git] / app / test / test_cryptodev.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2015-2020 Intel Corporation
3  * Copyright 2020 NXP
4  */
5
6 #include <time.h>
7
8 #include <rte_common.h>
9 #include <rte_hexdump.h>
10 #include <rte_mbuf.h>
11 #include <rte_malloc.h>
12 #include <rte_memcpy.h>
13 #include <rte_pause.h>
14 #include <rte_bus_vdev.h>
15 #include <rte_ether.h>
16
17 #include <rte_crypto.h>
18 #include <rte_cryptodev.h>
19 #include <rte_ip.h>
20 #include <rte_string_fns.h>
21
22 #ifdef RTE_CRYPTO_SCHEDULER
23 #include <rte_cryptodev_scheduler.h>
24 #include <rte_cryptodev_scheduler_operations.h>
25 #endif
26
27 #include <rte_lcore.h>
28
29 #include "test.h"
30 #include "test_cryptodev.h"
31
32 #include "test_cryptodev_blockcipher.h"
33 #include "test_cryptodev_aes_test_vectors.h"
34 #include "test_cryptodev_des_test_vectors.h"
35 #include "test_cryptodev_hash_test_vectors.h"
36 #include "test_cryptodev_kasumi_test_vectors.h"
37 #include "test_cryptodev_kasumi_hash_test_vectors.h"
38 #include "test_cryptodev_snow3g_test_vectors.h"
39 #include "test_cryptodev_snow3g_hash_test_vectors.h"
40 #include "test_cryptodev_zuc_test_vectors.h"
41 #include "test_cryptodev_aead_test_vectors.h"
42 #include "test_cryptodev_hmac_test_vectors.h"
43 #include "test_cryptodev_mixed_test_vectors.h"
44 #ifdef RTE_LIB_SECURITY
45 #include "test_cryptodev_security_ipsec.h"
46 #include "test_cryptodev_security_ipsec_test_vectors.h"
47 #include "test_cryptodev_security_pdcp_test_vectors.h"
48 #include "test_cryptodev_security_pdcp_sdap_test_vectors.h"
49 #include "test_cryptodev_security_pdcp_test_func.h"
50 #include "test_cryptodev_security_docsis_test_vectors.h"
51
52 #define SDAP_DISABLED   0
53 #define SDAP_ENABLED    1
54 #endif
55
56 #define VDEV_ARGS_SIZE 100
57 #define MAX_NB_SESSIONS 4
58
59 #define MAX_DRV_SERVICE_CTX_SIZE 256
60
61 #define MAX_RAW_DEQUEUE_COUNT   65535
62
63 #define IN_PLACE 0
64 #define OUT_OF_PLACE 1
65
66 static int gbl_driver_id;
67
68 static enum rte_security_session_action_type gbl_action_type =
69         RTE_SECURITY_ACTION_TYPE_NONE;
70
71 enum cryptodev_api_test_type global_api_test_type = CRYPTODEV_API_TEST;
72
73 struct crypto_unittest_params {
74         struct rte_crypto_sym_xform cipher_xform;
75         struct rte_crypto_sym_xform auth_xform;
76         struct rte_crypto_sym_xform aead_xform;
77 #ifdef RTE_LIB_SECURITY
78         struct rte_security_docsis_xform docsis_xform;
79 #endif
80
81         union {
82                 struct rte_cryptodev_sym_session *sess;
83 #ifdef RTE_LIB_SECURITY
84                 struct rte_security_session *sec_session;
85 #endif
86         };
87 #ifdef RTE_LIB_SECURITY
88         enum rte_security_session_action_type type;
89 #endif
90         struct rte_crypto_op *op;
91
92         struct rte_mbuf *obuf, *ibuf;
93
94         uint8_t *digest;
95 };
96
97 #define ALIGN_POW2_ROUNDUP(num, align) \
98         (((num) + (align) - 1) & ~((align) - 1))
99
100 #define ADD_STATIC_TESTSUITE(index, parent_ts, child_ts, num_child_ts)  \
101         for (j = 0; j < num_child_ts; index++, j++)                     \
102                 parent_ts.unit_test_suites[index] = child_ts[j]
103
104 #define ADD_BLOCKCIPHER_TESTSUITE(index, parent_ts, blk_types, num_blk_types)   \
105         for (j = 0; j < num_blk_types; index++, j++)                            \
106                 parent_ts.unit_test_suites[index] =                             \
107                                 build_blockcipher_test_suite(blk_types[j])
108
109 #define FREE_BLOCKCIPHER_TESTSUITE(index, parent_ts, num_blk_types)             \
110         for (j = index; j < index + num_blk_types; j++)                         \
111                 free_blockcipher_test_suite(parent_ts.unit_test_suites[j])
112
113 /*
114  * Forward declarations.
115  */
116 static int
117 test_AES_CBC_HMAC_SHA512_decrypt_create_session_params(
118                 struct crypto_unittest_params *ut_params, uint8_t *cipher_key,
119                 uint8_t *hmac_key);
120
121 static int
122 test_AES_CBC_HMAC_SHA512_decrypt_perform(struct rte_cryptodev_sym_session *sess,
123                 struct crypto_unittest_params *ut_params,
124                 struct crypto_testsuite_params *ts_param,
125                 const uint8_t *cipher,
126                 const uint8_t *digest,
127                 const uint8_t *iv);
128
129 static int
130 security_proto_supported(enum rte_security_session_action_type action,
131         enum rte_security_session_protocol proto);
132
133 static int
134 dev_configure_and_start(uint64_t ff_disable);
135
136 static struct rte_mbuf *
137 setup_test_string(struct rte_mempool *mpool,
138                 const char *string, size_t len, uint8_t blocksize)
139 {
140         struct rte_mbuf *m = rte_pktmbuf_alloc(mpool);
141         size_t t_len = len - (blocksize ? (len % blocksize) : 0);
142
143         if (m) {
144                 char *dst;
145
146                 memset(m->buf_addr, 0, m->buf_len);
147                 dst = rte_pktmbuf_append(m, t_len);
148                 if (!dst) {
149                         rte_pktmbuf_free(m);
150                         return NULL;
151                 }
152                 if (string != NULL)
153                         rte_memcpy(dst, string, t_len);
154                 else
155                         memset(dst, 0, t_len);
156         }
157
158         return m;
159 }
160
161 /* Get number of bytes in X bits (rounding up) */
162 static uint32_t
163 ceil_byte_length(uint32_t num_bits)
164 {
165         if (num_bits % 8)
166                 return ((num_bits >> 3) + 1);
167         else
168                 return (num_bits >> 3);
169 }
170
171 static void
172 post_process_raw_dp_op(void *user_data, uint32_t index __rte_unused,
173                 uint8_t is_op_success)
174 {
175         struct rte_crypto_op *op = user_data;
176         op->status = is_op_success ? RTE_CRYPTO_OP_STATUS_SUCCESS :
177                         RTE_CRYPTO_OP_STATUS_ERROR;
178 }
179
180 void
181 process_sym_raw_dp_op(uint8_t dev_id, uint16_t qp_id,
182                 struct rte_crypto_op *op, uint8_t is_cipher, uint8_t is_auth,
183                 uint8_t len_in_bits, uint8_t cipher_iv_len)
184 {
185         struct rte_crypto_sym_op *sop = op->sym;
186         struct rte_crypto_op *ret_op = NULL;
187         struct rte_crypto_vec data_vec[UINT8_MAX];
188         struct rte_crypto_va_iova_ptr cipher_iv, digest, aad_auth_iv;
189         union rte_crypto_sym_ofs ofs;
190         struct rte_crypto_sym_vec vec;
191         struct rte_crypto_sgl sgl;
192         uint32_t max_len;
193         union rte_cryptodev_session_ctx sess;
194         uint32_t count = 0;
195         struct rte_crypto_raw_dp_ctx *ctx;
196         uint32_t cipher_offset = 0, cipher_len = 0, auth_offset = 0,
197                         auth_len = 0;
198         int32_t n;
199         uint32_t n_success;
200         int ctx_service_size;
201         int32_t status = 0;
202         int enqueue_status, dequeue_status;
203
204         ctx_service_size = rte_cryptodev_get_raw_dp_ctx_size(dev_id);
205         if (ctx_service_size < 0) {
206                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
207                 return;
208         }
209
210         ctx = malloc(ctx_service_size);
211         if (!ctx) {
212                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
213                 return;
214         }
215
216         /* Both are enums, setting crypto_sess will suit any session type */
217         sess.crypto_sess = op->sym->session;
218
219         if (rte_cryptodev_configure_raw_dp_ctx(dev_id, qp_id, ctx,
220                         op->sess_type, sess, 0) < 0) {
221                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
222                 goto exit;
223         }
224
225         cipher_iv.iova = 0;
226         cipher_iv.va = NULL;
227         aad_auth_iv.iova = 0;
228         aad_auth_iv.va = NULL;
229         digest.iova = 0;
230         digest.va = NULL;
231         sgl.vec = data_vec;
232         vec.num = 1;
233         vec.sgl = &sgl;
234         vec.iv = &cipher_iv;
235         vec.digest = &digest;
236         vec.aad = &aad_auth_iv;
237         vec.status = &status;
238
239         ofs.raw = 0;
240
241         if (is_cipher && is_auth) {
242                 cipher_offset = sop->cipher.data.offset;
243                 cipher_len = sop->cipher.data.length;
244                 auth_offset = sop->auth.data.offset;
245                 auth_len = sop->auth.data.length;
246                 max_len = RTE_MAX(cipher_offset + cipher_len,
247                                 auth_offset + auth_len);
248                 if (len_in_bits) {
249                         max_len = max_len >> 3;
250                         cipher_offset = cipher_offset >> 3;
251                         auth_offset = auth_offset >> 3;
252                         cipher_len = cipher_len >> 3;
253                         auth_len = auth_len >> 3;
254                 }
255                 ofs.ofs.cipher.head = cipher_offset;
256                 ofs.ofs.cipher.tail = max_len - cipher_offset - cipher_len;
257                 ofs.ofs.auth.head = auth_offset;
258                 ofs.ofs.auth.tail = max_len - auth_offset - auth_len;
259                 cipher_iv.va = rte_crypto_op_ctod_offset(op, void *, IV_OFFSET);
260                 cipher_iv.iova = rte_crypto_op_ctophys_offset(op, IV_OFFSET);
261                 aad_auth_iv.va = rte_crypto_op_ctod_offset(
262                                 op, void *, IV_OFFSET + cipher_iv_len);
263                 aad_auth_iv.iova = rte_crypto_op_ctophys_offset(op, IV_OFFSET +
264                                 cipher_iv_len);
265                 digest.va = (void *)sop->auth.digest.data;
266                 digest.iova = sop->auth.digest.phys_addr;
267
268         } else if (is_cipher) {
269                 cipher_offset = sop->cipher.data.offset;
270                 cipher_len = sop->cipher.data.length;
271                 max_len = cipher_len + cipher_offset;
272                 if (len_in_bits) {
273                         max_len = max_len >> 3;
274                         cipher_offset = cipher_offset >> 3;
275                         cipher_len = cipher_len >> 3;
276                 }
277                 ofs.ofs.cipher.head = cipher_offset;
278                 ofs.ofs.cipher.tail = max_len - cipher_offset - cipher_len;
279                 cipher_iv.va = rte_crypto_op_ctod_offset(op, void *, IV_OFFSET);
280                 cipher_iv.iova = rte_crypto_op_ctophys_offset(op, IV_OFFSET);
281
282         } else if (is_auth) {
283                 auth_offset = sop->auth.data.offset;
284                 auth_len = sop->auth.data.length;
285                 max_len = auth_len + auth_offset;
286                 if (len_in_bits) {
287                         max_len = max_len >> 3;
288                         auth_offset = auth_offset >> 3;
289                         auth_len = auth_len >> 3;
290                 }
291                 ofs.ofs.auth.head = auth_offset;
292                 ofs.ofs.auth.tail = max_len - auth_offset - auth_len;
293                 aad_auth_iv.va = rte_crypto_op_ctod_offset(
294                                 op, void *, IV_OFFSET + cipher_iv_len);
295                 aad_auth_iv.iova = rte_crypto_op_ctophys_offset(op, IV_OFFSET +
296                                 cipher_iv_len);
297                 digest.va = (void *)sop->auth.digest.data;
298                 digest.iova = sop->auth.digest.phys_addr;
299
300         } else { /* aead */
301                 cipher_offset = sop->aead.data.offset;
302                 cipher_len = sop->aead.data.length;
303                 max_len = cipher_len + cipher_offset;
304                 if (len_in_bits) {
305                         max_len = max_len >> 3;
306                         cipher_offset = cipher_offset >> 3;
307                         cipher_len = cipher_len >> 3;
308                 }
309                 ofs.ofs.cipher.head = cipher_offset;
310                 ofs.ofs.cipher.tail = max_len - cipher_offset - cipher_len;
311                 cipher_iv.va = rte_crypto_op_ctod_offset(op, void *, IV_OFFSET);
312                 cipher_iv.iova = rte_crypto_op_ctophys_offset(op, IV_OFFSET);
313                 aad_auth_iv.va = (void *)sop->aead.aad.data;
314                 aad_auth_iv.iova = sop->aead.aad.phys_addr;
315                 digest.va = (void *)sop->aead.digest.data;
316                 digest.iova = sop->aead.digest.phys_addr;
317         }
318
319         n = rte_crypto_mbuf_to_vec(sop->m_src, 0, max_len,
320                         data_vec, RTE_DIM(data_vec));
321         if (n < 0 || n > sop->m_src->nb_segs) {
322                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
323                 goto exit;
324         }
325
326         sgl.num = n;
327
328         if (rte_cryptodev_raw_enqueue_burst(ctx, &vec, ofs, (void **)&op,
329                         &enqueue_status) < 1) {
330                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
331                 goto exit;
332         }
333
334         if (enqueue_status == 0) {
335                 status = rte_cryptodev_raw_enqueue_done(ctx, 1);
336                 if (status < 0) {
337                         op->status = RTE_CRYPTO_OP_STATUS_ERROR;
338                         goto exit;
339                 }
340         } else if (enqueue_status < 0) {
341                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
342                 goto exit;
343         }
344
345         n = n_success = 0;
346         while (count++ < MAX_RAW_DEQUEUE_COUNT && n == 0) {
347                 n = rte_cryptodev_raw_dequeue_burst(ctx,
348                         NULL, 1, post_process_raw_dp_op,
349                                 (void **)&ret_op, 0, &n_success,
350                                 &dequeue_status);
351                 if (dequeue_status < 0) {
352                         op->status = RTE_CRYPTO_OP_STATUS_ERROR;
353                         goto exit;
354                 }
355                 if (n == 0)
356                         rte_pause();
357         }
358
359         if (n == 1 && dequeue_status == 0) {
360                 if (rte_cryptodev_raw_dequeue_done(ctx, 1) < 0) {
361                         op->status = RTE_CRYPTO_OP_STATUS_ERROR;
362                         goto exit;
363                 }
364         }
365
366         op->status = (count == MAX_RAW_DEQUEUE_COUNT + 1 || ret_op != op ||
367                         n_success < 1) ? RTE_CRYPTO_OP_STATUS_ERROR :
368                                         RTE_CRYPTO_OP_STATUS_SUCCESS;
369
370 exit:
371         free(ctx);
372 }
373
374 static void
375 process_cpu_aead_op(uint8_t dev_id, struct rte_crypto_op *op)
376 {
377         int32_t n, st;
378         struct rte_crypto_sym_op *sop;
379         union rte_crypto_sym_ofs ofs;
380         struct rte_crypto_sgl sgl;
381         struct rte_crypto_sym_vec symvec;
382         struct rte_crypto_va_iova_ptr iv_ptr, aad_ptr, digest_ptr;
383         struct rte_crypto_vec vec[UINT8_MAX];
384
385         sop = op->sym;
386
387         n = rte_crypto_mbuf_to_vec(sop->m_src, sop->aead.data.offset,
388                 sop->aead.data.length, vec, RTE_DIM(vec));
389
390         if (n < 0 || n != sop->m_src->nb_segs) {
391                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
392                 return;
393         }
394
395         sgl.vec = vec;
396         sgl.num = n;
397         symvec.sgl = &sgl;
398         symvec.iv = &iv_ptr;
399         symvec.digest = &digest_ptr;
400         symvec.aad = &aad_ptr;
401         symvec.status = &st;
402         symvec.num = 1;
403
404         /* for CPU crypto the IOVA address is not required */
405         iv_ptr.va = rte_crypto_op_ctod_offset(op, void *, IV_OFFSET);
406         digest_ptr.va = (void *)sop->aead.digest.data;
407         aad_ptr.va = (void *)sop->aead.aad.data;
408
409         ofs.raw = 0;
410
411         n = rte_cryptodev_sym_cpu_crypto_process(dev_id, sop->session, ofs,
412                 &symvec);
413
414         if (n != 1)
415                 op->status = RTE_CRYPTO_OP_STATUS_AUTH_FAILED;
416         else
417                 op->status = RTE_CRYPTO_OP_STATUS_SUCCESS;
418 }
419
420 static void
421 process_cpu_crypt_auth_op(uint8_t dev_id, struct rte_crypto_op *op)
422 {
423         int32_t n, st;
424         struct rte_crypto_sym_op *sop;
425         union rte_crypto_sym_ofs ofs;
426         struct rte_crypto_sgl sgl;
427         struct rte_crypto_sym_vec symvec;
428         struct rte_crypto_va_iova_ptr iv_ptr, digest_ptr;
429         struct rte_crypto_vec vec[UINT8_MAX];
430
431         sop = op->sym;
432
433         n = rte_crypto_mbuf_to_vec(sop->m_src, sop->auth.data.offset,
434                 sop->auth.data.length, vec, RTE_DIM(vec));
435
436         if (n < 0 || n != sop->m_src->nb_segs) {
437                 op->status = RTE_CRYPTO_OP_STATUS_ERROR;
438                 return;
439         }
440
441         sgl.vec = vec;
442         sgl.num = n;
443         symvec.sgl = &sgl;
444         symvec.iv = &iv_ptr;
445         symvec.digest = &digest_ptr;
446         symvec.status = &st;
447         symvec.num = 1;
448
449         iv_ptr.va = rte_crypto_op_ctod_offset(op, void *, IV_OFFSET);
450         digest_ptr.va = (void *)sop->auth.digest.data;
451
452         ofs.raw = 0;
453         ofs.ofs.cipher.head = sop->cipher.data.offset - sop->auth.data.offset;
454         ofs.ofs.cipher.tail = (sop->auth.data.offset + sop->auth.data.length) -
455                 (sop->cipher.data.offset + sop->cipher.data.length);
456
457         n = rte_cryptodev_sym_cpu_crypto_process(dev_id, sop->session, ofs,
458                 &symvec);
459
460         if (n != 1)
461                 op->status = RTE_CRYPTO_OP_STATUS_AUTH_FAILED;
462         else
463                 op->status = RTE_CRYPTO_OP_STATUS_SUCCESS;
464 }
465
466 static struct rte_crypto_op *
467 process_crypto_request(uint8_t dev_id, struct rte_crypto_op *op)
468 {
469
470         RTE_VERIFY(gbl_action_type != RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO);
471
472         if (rte_cryptodev_enqueue_burst(dev_id, 0, &op, 1) != 1) {
473                 RTE_LOG(ERR, USER1, "Error sending packet for encryption\n");
474                 return NULL;
475         }
476
477         op = NULL;
478
479         while (rte_cryptodev_dequeue_burst(dev_id, 0, &op, 1) == 0)
480                 rte_pause();
481
482         if (op->status != RTE_CRYPTO_OP_STATUS_SUCCESS) {
483                 RTE_LOG(DEBUG, USER1, "Operation status %d\n", op->status);
484                 return NULL;
485         }
486
487         return op;
488 }
489
490 static struct crypto_testsuite_params testsuite_params = { NULL };
491 struct crypto_testsuite_params *p_testsuite_params = &testsuite_params;
492 static struct crypto_unittest_params unittest_params;
493
494 static int
495 testsuite_setup(void)
496 {
497         struct crypto_testsuite_params *ts_params = &testsuite_params;
498         struct rte_cryptodev_info info;
499         uint32_t i = 0, nb_devs, dev_id;
500         uint16_t qp_id;
501
502         memset(ts_params, 0, sizeof(*ts_params));
503
504         ts_params->mbuf_pool = rte_mempool_lookup("CRYPTO_MBUFPOOL");
505         if (ts_params->mbuf_pool == NULL) {
506                 /* Not already created so create */
507                 ts_params->mbuf_pool = rte_pktmbuf_pool_create(
508                                 "CRYPTO_MBUFPOOL",
509                                 NUM_MBUFS, MBUF_CACHE_SIZE, 0, MBUF_SIZE,
510                                 rte_socket_id());
511                 if (ts_params->mbuf_pool == NULL) {
512                         RTE_LOG(ERR, USER1, "Can't create CRYPTO_MBUFPOOL\n");
513                         return TEST_FAILED;
514                 }
515         }
516
517         ts_params->large_mbuf_pool = rte_mempool_lookup(
518                         "CRYPTO_LARGE_MBUFPOOL");
519         if (ts_params->large_mbuf_pool == NULL) {
520                 /* Not already created so create */
521                 ts_params->large_mbuf_pool = rte_pktmbuf_pool_create(
522                                 "CRYPTO_LARGE_MBUFPOOL",
523                                 1, 0, 0, UINT16_MAX,
524                                 rte_socket_id());
525                 if (ts_params->large_mbuf_pool == NULL) {
526                         RTE_LOG(ERR, USER1,
527                                 "Can't create CRYPTO_LARGE_MBUFPOOL\n");
528                         return TEST_FAILED;
529                 }
530         }
531
532         ts_params->op_mpool = rte_crypto_op_pool_create(
533                         "MBUF_CRYPTO_SYM_OP_POOL",
534                         RTE_CRYPTO_OP_TYPE_SYMMETRIC,
535                         NUM_MBUFS, MBUF_CACHE_SIZE,
536                         DEFAULT_NUM_XFORMS *
537                         sizeof(struct rte_crypto_sym_xform) +
538                         MAXIMUM_IV_LENGTH,
539                         rte_socket_id());
540         if (ts_params->op_mpool == NULL) {
541                 RTE_LOG(ERR, USER1, "Can't create CRYPTO_OP_POOL\n");
542                 return TEST_FAILED;
543         }
544
545         nb_devs = rte_cryptodev_count();
546         if (nb_devs < 1) {
547                 RTE_LOG(WARNING, USER1, "No crypto devices found?\n");
548                 return TEST_SKIPPED;
549         }
550
551         if (rte_cryptodev_device_count_by_driver(gbl_driver_id) < 1) {
552                 RTE_LOG(WARNING, USER1, "No %s devices found?\n",
553                                 rte_cryptodev_driver_name_get(gbl_driver_id));
554                 return TEST_SKIPPED;
555         }
556
557         /* Create list of valid crypto devs */
558         for (i = 0; i < nb_devs; i++) {
559                 rte_cryptodev_info_get(i, &info);
560                 if (info.driver_id == gbl_driver_id)
561                         ts_params->valid_devs[ts_params->valid_dev_count++] = i;
562         }
563
564         if (ts_params->valid_dev_count < 1)
565                 return TEST_FAILED;
566
567         /* Set up all the qps on the first of the valid devices found */
568
569         dev_id = ts_params->valid_devs[0];
570
571         rte_cryptodev_info_get(dev_id, &info);
572
573         ts_params->conf.nb_queue_pairs = info.max_nb_queue_pairs;
574         ts_params->conf.socket_id = SOCKET_ID_ANY;
575         ts_params->conf.ff_disable = RTE_CRYPTODEV_FF_SECURITY;
576
577         unsigned int session_size =
578                 rte_cryptodev_sym_get_private_session_size(dev_id);
579
580 #ifdef RTE_LIB_SECURITY
581         unsigned int security_session_size = rte_security_session_get_size(
582                         rte_cryptodev_get_sec_ctx(dev_id));
583
584         if (session_size < security_session_size)
585                 session_size = security_session_size;
586 #endif
587         /*
588          * Create mempool with maximum number of sessions.
589          */
590         if (info.sym.max_nb_sessions != 0 &&
591                         info.sym.max_nb_sessions < MAX_NB_SESSIONS) {
592                 RTE_LOG(ERR, USER1, "Device does not support "
593                                 "at least %u sessions\n",
594                                 MAX_NB_SESSIONS);
595                 return TEST_FAILED;
596         }
597
598         ts_params->session_mpool = rte_cryptodev_sym_session_pool_create(
599                         "test_sess_mp", MAX_NB_SESSIONS, 0, 0, 0,
600                         SOCKET_ID_ANY);
601         TEST_ASSERT_NOT_NULL(ts_params->session_mpool,
602                         "session mempool allocation failed");
603
604         ts_params->session_priv_mpool = rte_mempool_create(
605                         "test_sess_mp_priv",
606                         MAX_NB_SESSIONS,
607                         session_size,
608                         0, 0, NULL, NULL, NULL,
609                         NULL, SOCKET_ID_ANY,
610                         0);
611         TEST_ASSERT_NOT_NULL(ts_params->session_priv_mpool,
612                         "session mempool allocation failed");
613
614
615
616         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(dev_id,
617                         &ts_params->conf),
618                         "Failed to configure cryptodev %u with %u qps",
619                         dev_id, ts_params->conf.nb_queue_pairs);
620
621         ts_params->qp_conf.nb_descriptors = MAX_NUM_OPS_INFLIGHT;
622         ts_params->qp_conf.mp_session = ts_params->session_mpool;
623         ts_params->qp_conf.mp_session_private = ts_params->session_priv_mpool;
624
625         for (qp_id = 0; qp_id < info.max_nb_queue_pairs; qp_id++) {
626                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
627                         dev_id, qp_id, &ts_params->qp_conf,
628                         rte_cryptodev_socket_id(dev_id)),
629                         "Failed to setup queue pair %u on cryptodev %u",
630                         qp_id, dev_id);
631         }
632
633         return TEST_SUCCESS;
634 }
635
636 static void
637 testsuite_teardown(void)
638 {
639         struct crypto_testsuite_params *ts_params = &testsuite_params;
640         int res;
641
642         if (ts_params->mbuf_pool != NULL) {
643                 RTE_LOG(DEBUG, USER1, "CRYPTO_MBUFPOOL count %u\n",
644                 rte_mempool_avail_count(ts_params->mbuf_pool));
645         }
646
647         if (ts_params->op_mpool != NULL) {
648                 RTE_LOG(DEBUG, USER1, "CRYPTO_OP_POOL count %u\n",
649                 rte_mempool_avail_count(ts_params->op_mpool));
650         }
651
652         /* Free session mempools */
653         if (ts_params->session_priv_mpool != NULL) {
654                 rte_mempool_free(ts_params->session_priv_mpool);
655                 ts_params->session_priv_mpool = NULL;
656         }
657
658         if (ts_params->session_mpool != NULL) {
659                 rte_mempool_free(ts_params->session_mpool);
660                 ts_params->session_mpool = NULL;
661         }
662
663         res = rte_cryptodev_close(ts_params->valid_devs[0]);
664         if (res)
665                 RTE_LOG(ERR, USER1, "Crypto device close error %d\n", res);
666 }
667
668 static int
669 check_capabilities_supported(enum rte_crypto_sym_xform_type type,
670                 const int *algs, uint16_t num_algs)
671 {
672         uint8_t dev_id = testsuite_params.valid_devs[0];
673         bool some_alg_supported = FALSE;
674         uint16_t i;
675
676         for (i = 0; i < num_algs && !some_alg_supported; i++) {
677                 struct rte_cryptodev_sym_capability_idx alg = {
678                         type, {algs[i]}
679                 };
680                 if (rte_cryptodev_sym_capability_get(dev_id,
681                                 &alg) != NULL)
682                         some_alg_supported = TRUE;
683         }
684         if (!some_alg_supported)
685                 return TEST_SKIPPED;
686
687         return 0;
688 }
689
690 int
691 check_cipher_capabilities_supported(const enum rte_crypto_cipher_algorithm *ciphers,
692                 uint16_t num_ciphers)
693 {
694         return check_capabilities_supported(RTE_CRYPTO_SYM_XFORM_CIPHER,
695                         (const int *) ciphers, num_ciphers);
696 }
697
698 int
699 check_auth_capabilities_supported(const enum rte_crypto_auth_algorithm *auths,
700                 uint16_t num_auths)
701 {
702         return check_capabilities_supported(RTE_CRYPTO_SYM_XFORM_AUTH,
703                         (const int *) auths, num_auths);
704 }
705
706 int
707 check_aead_capabilities_supported(const enum rte_crypto_aead_algorithm *aeads,
708                 uint16_t num_aeads)
709 {
710         return check_capabilities_supported(RTE_CRYPTO_SYM_XFORM_AEAD,
711                         (const int *) aeads, num_aeads);
712 }
713
714 static int
715 null_testsuite_setup(void)
716 {
717         struct crypto_testsuite_params *ts_params = &testsuite_params;
718         uint8_t dev_id = ts_params->valid_devs[0];
719         struct rte_cryptodev_info dev_info;
720         const enum rte_crypto_cipher_algorithm ciphers[] = {
721                 RTE_CRYPTO_CIPHER_NULL
722         };
723         const enum rte_crypto_auth_algorithm auths[] = {
724                 RTE_CRYPTO_AUTH_NULL
725         };
726
727         rte_cryptodev_info_get(dev_id, &dev_info);
728
729         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
730                 RTE_LOG(INFO, USER1, "Feature flag requirements for NULL "
731                                 "testsuite not met\n");
732                 return TEST_SKIPPED;
733         }
734
735         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
736                         && check_auth_capabilities_supported(auths,
737                         RTE_DIM(auths)) != 0) {
738                 RTE_LOG(INFO, USER1, "Capability requirements for NULL "
739                                 "testsuite not met\n");
740                 return TEST_SKIPPED;
741         }
742
743         return 0;
744 }
745
746 static int
747 crypto_gen_testsuite_setup(void)
748 {
749         struct crypto_testsuite_params *ts_params = &testsuite_params;
750         uint8_t dev_id = ts_params->valid_devs[0];
751         struct rte_cryptodev_info dev_info;
752
753         rte_cryptodev_info_get(dev_id, &dev_info);
754
755         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
756                 RTE_LOG(INFO, USER1, "Feature flag requirements for Crypto Gen "
757                                 "testsuite not met\n");
758                 return TEST_SKIPPED;
759         }
760
761         return 0;
762 }
763
764 #ifdef RTE_LIB_SECURITY
765 static int
766 ipsec_proto_testsuite_setup(void)
767 {
768         struct crypto_testsuite_params *ts_params = &testsuite_params;
769         struct crypto_unittest_params *ut_params = &unittest_params;
770         struct rte_cryptodev_info dev_info;
771         int ret = 0;
772
773         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
774
775         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SECURITY)) {
776                 RTE_LOG(INFO, USER1, "Feature flag requirements for IPsec Proto "
777                                 "testsuite not met\n");
778                 return TEST_SKIPPED;
779         }
780
781         /* Reconfigure to enable security */
782         ret = dev_configure_and_start(0);
783         if (ret != TEST_SUCCESS)
784                 return ret;
785
786         /* Set action type */
787         ut_params->type = RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL;
788
789         if (security_proto_supported(
790                         RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL,
791                         RTE_SECURITY_PROTOCOL_IPSEC) < 0) {
792                 RTE_LOG(INFO, USER1, "Capability requirements for IPsec Proto "
793                                 "test not met\n");
794                 ret = TEST_SKIPPED;
795         }
796
797         /*
798          * Stop the device. Device would be started again by individual test
799          * case setup routine.
800          */
801         rte_cryptodev_stop(ts_params->valid_devs[0]);
802
803         return ret;
804 }
805
806 static int
807 pdcp_proto_testsuite_setup(void)
808 {
809         struct crypto_testsuite_params *ts_params = &testsuite_params;
810         uint8_t dev_id = ts_params->valid_devs[0];
811         struct rte_cryptodev_info dev_info;
812         const enum rte_crypto_cipher_algorithm ciphers[] = {
813                 RTE_CRYPTO_CIPHER_NULL,
814                 RTE_CRYPTO_CIPHER_AES_CTR,
815                 RTE_CRYPTO_CIPHER_ZUC_EEA3,
816                 RTE_CRYPTO_CIPHER_SNOW3G_UEA2
817         };
818         const enum rte_crypto_auth_algorithm auths[] = {
819                 RTE_CRYPTO_AUTH_NULL,
820                 RTE_CRYPTO_AUTH_SNOW3G_UIA2,
821                 RTE_CRYPTO_AUTH_AES_CMAC,
822                 RTE_CRYPTO_AUTH_ZUC_EIA3
823         };
824
825         rte_cryptodev_info_get(dev_id, &dev_info);
826
827         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
828                         !(dev_info.feature_flags &
829                         RTE_CRYPTODEV_FF_SECURITY)) {
830                 RTE_LOG(INFO, USER1, "Feature flag requirements for PDCP Proto "
831                                 "testsuite not met\n");
832                 return TEST_SKIPPED;
833         }
834
835         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
836                         && check_auth_capabilities_supported(auths,
837                         RTE_DIM(auths)) != 0) {
838                 RTE_LOG(INFO, USER1, "Capability requirements for PDCP Proto "
839                                 "testsuite not met\n");
840                 return TEST_SKIPPED;
841         }
842
843         return 0;
844 }
845
846 static int
847 docsis_proto_testsuite_setup(void)
848 {
849         struct crypto_testsuite_params *ts_params = &testsuite_params;
850         uint8_t dev_id = ts_params->valid_devs[0];
851         struct rte_cryptodev_info dev_info;
852         const enum rte_crypto_cipher_algorithm ciphers[] = {
853                 RTE_CRYPTO_CIPHER_AES_DOCSISBPI
854         };
855
856         rte_cryptodev_info_get(dev_id, &dev_info);
857
858         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
859                         !(dev_info.feature_flags &
860                         RTE_CRYPTODEV_FF_SECURITY)) {
861                 RTE_LOG(INFO, USER1, "Feature flag requirements for Docsis "
862                                 "Proto testsuite not met\n");
863                 return TEST_SKIPPED;
864         }
865
866         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0) {
867                 RTE_LOG(INFO, USER1, "Capability requirements for Docsis Proto "
868                                 "testsuite not met\n");
869                 return TEST_SKIPPED;
870         }
871
872         return 0;
873 }
874 #endif
875
876 static int
877 aes_ccm_auth_testsuite_setup(void)
878 {
879         struct crypto_testsuite_params *ts_params = &testsuite_params;
880         uint8_t dev_id = ts_params->valid_devs[0];
881         struct rte_cryptodev_info dev_info;
882         const enum rte_crypto_aead_algorithm aeads[] = {
883                 RTE_CRYPTO_AEAD_AES_CCM
884         };
885
886         rte_cryptodev_info_get(dev_id, &dev_info);
887
888         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
889                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
890                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
891                 RTE_LOG(INFO, USER1, "Feature flag requirements for AES CCM "
892                                 "testsuite not met\n");
893                 return TEST_SKIPPED;
894         }
895
896         if (check_aead_capabilities_supported(aeads, RTE_DIM(aeads)) != 0) {
897                 RTE_LOG(INFO, USER1, "Capability requirements for AES CCM "
898                                 "testsuite not met\n");
899                 return TEST_SKIPPED;
900         }
901
902         return 0;
903 }
904
905 static int
906 aes_gcm_auth_testsuite_setup(void)
907 {
908         struct crypto_testsuite_params *ts_params = &testsuite_params;
909         uint8_t dev_id = ts_params->valid_devs[0];
910         struct rte_cryptodev_info dev_info;
911         const enum rte_crypto_aead_algorithm aeads[] = {
912                 RTE_CRYPTO_AEAD_AES_GCM
913         };
914
915         rte_cryptodev_info_get(dev_id, &dev_info);
916
917         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
918                 RTE_LOG(INFO, USER1, "Feature flag requirements for AES GCM "
919                                 "testsuite not met\n");
920                 return TEST_SKIPPED;
921         }
922
923         if (check_aead_capabilities_supported(aeads, RTE_DIM(aeads)) != 0) {
924                 RTE_LOG(INFO, USER1, "Capability requirements for AES GCM "
925                                 "testsuite not met\n");
926                 return TEST_SKIPPED;
927         }
928
929         return 0;
930 }
931
932 static int
933 aes_gmac_auth_testsuite_setup(void)
934 {
935         struct crypto_testsuite_params *ts_params = &testsuite_params;
936         uint8_t dev_id = ts_params->valid_devs[0];
937         struct rte_cryptodev_info dev_info;
938         const enum rte_crypto_auth_algorithm auths[] = {
939                 RTE_CRYPTO_AUTH_AES_GMAC
940         };
941
942         rte_cryptodev_info_get(dev_id, &dev_info);
943
944         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
945                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
946                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
947                 RTE_LOG(INFO, USER1, "Feature flag requirements for AES GMAC "
948                                 "testsuite not met\n");
949                 return TEST_SKIPPED;
950         }
951
952         if (check_auth_capabilities_supported(auths, RTE_DIM(auths)) != 0) {
953                 RTE_LOG(INFO, USER1, "Capability requirements for AES GMAC "
954                                 "testsuite not met\n");
955                 return TEST_SKIPPED;
956         }
957
958         return 0;
959 }
960
961 static int
962 chacha20_poly1305_testsuite_setup(void)
963 {
964         struct crypto_testsuite_params *ts_params = &testsuite_params;
965         uint8_t dev_id = ts_params->valid_devs[0];
966         struct rte_cryptodev_info dev_info;
967         const enum rte_crypto_aead_algorithm aeads[] = {
968                 RTE_CRYPTO_AEAD_CHACHA20_POLY1305
969         };
970
971         rte_cryptodev_info_get(dev_id, &dev_info);
972
973         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
974                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
975                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
976                 RTE_LOG(INFO, USER1, "Feature flag requirements for "
977                                 "Chacha20-Poly1305 testsuite not met\n");
978                 return TEST_SKIPPED;
979         }
980
981         if (check_aead_capabilities_supported(aeads, RTE_DIM(aeads)) != 0) {
982                 RTE_LOG(INFO, USER1, "Capability requirements for "
983                                 "Chacha20-Poly1305 testsuite not met\n");
984                 return TEST_SKIPPED;
985         }
986
987         return 0;
988 }
989
990 static int
991 snow3g_testsuite_setup(void)
992 {
993         struct crypto_testsuite_params *ts_params = &testsuite_params;
994         uint8_t dev_id = ts_params->valid_devs[0];
995         struct rte_cryptodev_info dev_info;
996         const enum rte_crypto_cipher_algorithm ciphers[] = {
997                 RTE_CRYPTO_CIPHER_SNOW3G_UEA2
998
999         };
1000         const enum rte_crypto_auth_algorithm auths[] = {
1001                 RTE_CRYPTO_AUTH_SNOW3G_UIA2
1002         };
1003
1004         rte_cryptodev_info_get(dev_id, &dev_info);
1005
1006         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
1007                 RTE_LOG(INFO, USER1, "Feature flag requirements for Snow3G "
1008                                 "testsuite not met\n");
1009                 return TEST_SKIPPED;
1010         }
1011
1012         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1013                         && check_auth_capabilities_supported(auths,
1014                         RTE_DIM(auths)) != 0) {
1015                 RTE_LOG(INFO, USER1, "Capability requirements for Snow3G "
1016                                 "testsuite not met\n");
1017                 return TEST_SKIPPED;
1018         }
1019
1020         return 0;
1021 }
1022
1023 static int
1024 zuc_testsuite_setup(void)
1025 {
1026         struct crypto_testsuite_params *ts_params = &testsuite_params;
1027         uint8_t dev_id = ts_params->valid_devs[0];
1028         struct rte_cryptodev_info dev_info;
1029         const enum rte_crypto_cipher_algorithm ciphers[] = {
1030                 RTE_CRYPTO_CIPHER_ZUC_EEA3
1031         };
1032         const enum rte_crypto_auth_algorithm auths[] = {
1033                 RTE_CRYPTO_AUTH_ZUC_EIA3
1034         };
1035
1036         rte_cryptodev_info_get(dev_id, &dev_info);
1037
1038         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
1039                 RTE_LOG(INFO, USER1, "Feature flag requirements for ZUC "
1040                                 "testsuite not met\n");
1041                 return TEST_SKIPPED;
1042         }
1043
1044         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1045                         && check_auth_capabilities_supported(auths,
1046                         RTE_DIM(auths)) != 0) {
1047                 RTE_LOG(INFO, USER1, "Capability requirements for ZUC "
1048                                 "testsuite not met\n");
1049                 return TEST_SKIPPED;
1050         }
1051
1052         return 0;
1053 }
1054
1055 static int
1056 hmac_md5_auth_testsuite_setup(void)
1057 {
1058         struct crypto_testsuite_params *ts_params = &testsuite_params;
1059         uint8_t dev_id = ts_params->valid_devs[0];
1060         struct rte_cryptodev_info dev_info;
1061         const enum rte_crypto_auth_algorithm auths[] = {
1062                 RTE_CRYPTO_AUTH_MD5_HMAC
1063         };
1064
1065         rte_cryptodev_info_get(dev_id, &dev_info);
1066
1067         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1068                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1069                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1070                 RTE_LOG(INFO, USER1, "Feature flag requirements for HMAC MD5 "
1071                                 "Auth testsuite not met\n");
1072                 return TEST_SKIPPED;
1073         }
1074
1075         if (check_auth_capabilities_supported(auths, RTE_DIM(auths)) != 0) {
1076                 RTE_LOG(INFO, USER1, "Capability requirements for HMAC MD5 "
1077                                 "testsuite not met\n");
1078                 return TEST_SKIPPED;
1079         }
1080
1081         return 0;
1082 }
1083
1084 static int
1085 kasumi_testsuite_setup(void)
1086 {
1087         struct crypto_testsuite_params *ts_params = &testsuite_params;
1088         uint8_t dev_id = ts_params->valid_devs[0];
1089         struct rte_cryptodev_info dev_info;
1090         const enum rte_crypto_cipher_algorithm ciphers[] = {
1091                 RTE_CRYPTO_CIPHER_KASUMI_F8
1092         };
1093         const enum rte_crypto_auth_algorithm auths[] = {
1094                 RTE_CRYPTO_AUTH_KASUMI_F9
1095         };
1096
1097         rte_cryptodev_info_get(dev_id, &dev_info);
1098
1099         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1100                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1101                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1102                 RTE_LOG(INFO, USER1, "Feature flag requirements for Kasumi "
1103                                 "testsuite not met\n");
1104                 return TEST_SKIPPED;
1105         }
1106
1107         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1108                         && check_auth_capabilities_supported(auths,
1109                         RTE_DIM(auths)) != 0) {
1110                 RTE_LOG(INFO, USER1, "Capability requirements for Kasumi "
1111                                 "testsuite not met\n");
1112                 return TEST_SKIPPED;
1113         }
1114
1115         return 0;
1116 }
1117
1118 static int
1119 negative_aes_gcm_testsuite_setup(void)
1120 {
1121         struct crypto_testsuite_params *ts_params = &testsuite_params;
1122         uint8_t dev_id = ts_params->valid_devs[0];
1123         struct rte_cryptodev_info dev_info;
1124         const enum rte_crypto_aead_algorithm aeads[] = {
1125                 RTE_CRYPTO_AEAD_AES_GCM
1126         };
1127
1128         rte_cryptodev_info_get(dev_id, &dev_info);
1129
1130         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1131                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1132                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1133                 RTE_LOG(INFO, USER1, "Feature flag requirements for Negative "
1134                                 "AES GCM testsuite not met\n");
1135                 return TEST_SKIPPED;
1136         }
1137
1138         if (check_aead_capabilities_supported(aeads, RTE_DIM(aeads)) != 0) {
1139                 RTE_LOG(INFO, USER1, "Capability requirements for Negative "
1140                                 "AES GCM testsuite not met\n");
1141                 return TEST_SKIPPED;
1142         }
1143
1144         return 0;
1145 }
1146
1147 static int
1148 negative_aes_gmac_testsuite_setup(void)
1149 {
1150         struct crypto_testsuite_params *ts_params = &testsuite_params;
1151         uint8_t dev_id = ts_params->valid_devs[0];
1152         struct rte_cryptodev_info dev_info;
1153         const enum rte_crypto_auth_algorithm auths[] = {
1154                 RTE_CRYPTO_AUTH_AES_GMAC
1155         };
1156
1157         rte_cryptodev_info_get(dev_id, &dev_info);
1158
1159         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1160                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1161                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1162                 RTE_LOG(INFO, USER1, "Feature flag requirements for Negative "
1163                                 "AES GMAC testsuite not met\n");
1164                 return TEST_SKIPPED;
1165         }
1166
1167         if (check_auth_capabilities_supported(auths, RTE_DIM(auths)) != 0) {
1168                 RTE_LOG(INFO, USER1, "Capability requirements for Negative "
1169                                 "AES GMAC testsuite not met\n");
1170                 return TEST_SKIPPED;
1171         }
1172
1173         return 0;
1174 }
1175
1176 static int
1177 mixed_cipher_hash_testsuite_setup(void)
1178 {
1179         struct crypto_testsuite_params *ts_params = &testsuite_params;
1180         uint8_t dev_id = ts_params->valid_devs[0];
1181         struct rte_cryptodev_info dev_info;
1182         uint64_t feat_flags;
1183         const enum rte_crypto_cipher_algorithm ciphers[] = {
1184                 RTE_CRYPTO_CIPHER_NULL,
1185                 RTE_CRYPTO_CIPHER_AES_CTR,
1186                 RTE_CRYPTO_CIPHER_ZUC_EEA3,
1187                 RTE_CRYPTO_CIPHER_SNOW3G_UEA2
1188         };
1189         const enum rte_crypto_auth_algorithm auths[] = {
1190                 RTE_CRYPTO_AUTH_NULL,
1191                 RTE_CRYPTO_AUTH_SNOW3G_UIA2,
1192                 RTE_CRYPTO_AUTH_AES_CMAC,
1193                 RTE_CRYPTO_AUTH_ZUC_EIA3
1194         };
1195
1196         rte_cryptodev_info_get(dev_id, &dev_info);
1197         feat_flags = dev_info.feature_flags;
1198
1199         if (!(feat_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1200                         (global_api_test_type == CRYPTODEV_RAW_API_TEST)) {
1201                 RTE_LOG(INFO, USER1, "Feature flag requirements for Mixed "
1202                                 "Cipher Hash testsuite not met\n");
1203                 return TEST_SKIPPED;
1204         }
1205
1206         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1207                         && check_auth_capabilities_supported(auths,
1208                         RTE_DIM(auths)) != 0) {
1209                 RTE_LOG(INFO, USER1, "Capability requirements for Mixed "
1210                                 "Cipher Hash testsuite not met\n");
1211                 return TEST_SKIPPED;
1212         }
1213
1214         return 0;
1215 }
1216
1217 static int
1218 esn_testsuite_setup(void)
1219 {
1220         struct crypto_testsuite_params *ts_params = &testsuite_params;
1221         uint8_t dev_id = ts_params->valid_devs[0];
1222         struct rte_cryptodev_info dev_info;
1223         const enum rte_crypto_cipher_algorithm ciphers[] = {
1224                 RTE_CRYPTO_CIPHER_AES_CBC
1225         };
1226         const enum rte_crypto_auth_algorithm auths[] = {
1227                 RTE_CRYPTO_AUTH_SHA1_HMAC
1228         };
1229
1230         rte_cryptodev_info_get(dev_id, &dev_info);
1231
1232         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1233                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1234                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1235                 RTE_LOG(INFO, USER1, "Feature flag requirements for ESN "
1236                                 "testsuite not met\n");
1237                 return TEST_SKIPPED;
1238         }
1239
1240         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1241                         && check_auth_capabilities_supported(auths,
1242                         RTE_DIM(auths)) != 0) {
1243                 RTE_LOG(INFO, USER1, "Capability requirements for ESN "
1244                                 "testsuite not met\n");
1245                 return TEST_SKIPPED;
1246         }
1247
1248         return 0;
1249 }
1250
1251 static int
1252 multi_session_testsuite_setup(void)
1253 {
1254         struct crypto_testsuite_params *ts_params = &testsuite_params;
1255         uint8_t dev_id = ts_params->valid_devs[0];
1256         struct rte_cryptodev_info dev_info;
1257         const enum rte_crypto_cipher_algorithm ciphers[] = {
1258                 RTE_CRYPTO_CIPHER_AES_CBC
1259         };
1260         const enum rte_crypto_auth_algorithm auths[] = {
1261                 RTE_CRYPTO_AUTH_SHA512_HMAC
1262         };
1263
1264         rte_cryptodev_info_get(dev_id, &dev_info);
1265
1266         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO)) {
1267                 RTE_LOG(INFO, USER1, "Feature flag requirements for Multi "
1268                                 "Session testsuite not met\n");
1269                 return TEST_SKIPPED;
1270         }
1271
1272         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1273                         && check_auth_capabilities_supported(auths,
1274                         RTE_DIM(auths)) != 0) {
1275                 RTE_LOG(INFO, USER1, "Capability requirements for Multi "
1276                                 "Session testsuite not met\n");
1277                 return TEST_SKIPPED;
1278         }
1279
1280         return 0;
1281 }
1282
1283 static int
1284 negative_hmac_sha1_testsuite_setup(void)
1285 {
1286         struct crypto_testsuite_params *ts_params = &testsuite_params;
1287         uint8_t dev_id = ts_params->valid_devs[0];
1288         struct rte_cryptodev_info dev_info;
1289         const enum rte_crypto_cipher_algorithm ciphers[] = {
1290                 RTE_CRYPTO_CIPHER_AES_CBC
1291         };
1292         const enum rte_crypto_auth_algorithm auths[] = {
1293                 RTE_CRYPTO_AUTH_SHA1_HMAC
1294         };
1295
1296         rte_cryptodev_info_get(dev_id, &dev_info);
1297
1298         if (!(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYMMETRIC_CRYPTO) ||
1299                         ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
1300                         !(dev_info.feature_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
1301                 RTE_LOG(INFO, USER1, "Feature flag requirements for Negative "
1302                                 "HMAC SHA1 testsuite not met\n");
1303                 return TEST_SKIPPED;
1304         }
1305
1306         if (check_cipher_capabilities_supported(ciphers, RTE_DIM(ciphers)) != 0
1307                         && check_auth_capabilities_supported(auths,
1308                         RTE_DIM(auths)) != 0) {
1309                 RTE_LOG(INFO, USER1, "Capability requirements for Negative "
1310                                 "HMAC SHA1 testsuite not met\n");
1311                 return TEST_SKIPPED;
1312         }
1313
1314         return 0;
1315 }
1316
1317 static int
1318 dev_configure_and_start(uint64_t ff_disable)
1319 {
1320         struct crypto_testsuite_params *ts_params = &testsuite_params;
1321         struct crypto_unittest_params *ut_params = &unittest_params;
1322
1323         uint16_t qp_id;
1324
1325         /* Clear unit test parameters before running test */
1326         memset(ut_params, 0, sizeof(*ut_params));
1327
1328         /* Reconfigure device to default parameters */
1329         ts_params->conf.socket_id = SOCKET_ID_ANY;
1330         ts_params->conf.ff_disable = ff_disable;
1331         ts_params->qp_conf.nb_descriptors = MAX_NUM_OPS_INFLIGHT;
1332         ts_params->qp_conf.mp_session = ts_params->session_mpool;
1333         ts_params->qp_conf.mp_session_private = ts_params->session_priv_mpool;
1334
1335         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
1336                         &ts_params->conf),
1337                         "Failed to configure cryptodev %u",
1338                         ts_params->valid_devs[0]);
1339
1340         for (qp_id = 0; qp_id < ts_params->conf.nb_queue_pairs ; qp_id++) {
1341                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
1342                         ts_params->valid_devs[0], qp_id,
1343                         &ts_params->qp_conf,
1344                         rte_cryptodev_socket_id(ts_params->valid_devs[0])),
1345                         "Failed to setup queue pair %u on cryptodev %u",
1346                         qp_id, ts_params->valid_devs[0]);
1347         }
1348
1349
1350         rte_cryptodev_stats_reset(ts_params->valid_devs[0]);
1351
1352         /* Start the device */
1353         TEST_ASSERT_SUCCESS(rte_cryptodev_start(ts_params->valid_devs[0]),
1354                         "Failed to start cryptodev %u",
1355                         ts_params->valid_devs[0]);
1356
1357         return TEST_SUCCESS;
1358 }
1359
1360 int
1361 ut_setup(void)
1362 {
1363         /* Configure and start the device with security feature disabled */
1364         return dev_configure_and_start(RTE_CRYPTODEV_FF_SECURITY);
1365 }
1366
1367 static int
1368 ut_setup_security(void)
1369 {
1370         /* Configure and start the device with no features disabled */
1371         return dev_configure_and_start(0);
1372 }
1373
1374 void
1375 ut_teardown(void)
1376 {
1377         struct crypto_testsuite_params *ts_params = &testsuite_params;
1378         struct crypto_unittest_params *ut_params = &unittest_params;
1379         struct rte_cryptodev_stats stats;
1380
1381         /* free crypto session structure */
1382 #ifdef RTE_LIB_SECURITY
1383         if (ut_params->type == RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL) {
1384                 if (ut_params->sec_session) {
1385                         rte_security_session_destroy(rte_cryptodev_get_sec_ctx
1386                                                 (ts_params->valid_devs[0]),
1387                                                 ut_params->sec_session);
1388                         ut_params->sec_session = NULL;
1389                 }
1390         } else
1391 #endif
1392         {
1393                 if (ut_params->sess) {
1394                         rte_cryptodev_sym_session_clear(
1395                                         ts_params->valid_devs[0],
1396                                         ut_params->sess);
1397                         rte_cryptodev_sym_session_free(ut_params->sess);
1398                         ut_params->sess = NULL;
1399                 }
1400         }
1401
1402         /* free crypto operation structure */
1403         if (ut_params->op)
1404                 rte_crypto_op_free(ut_params->op);
1405
1406         /*
1407          * free mbuf - both obuf and ibuf are usually the same,
1408          * so check if they point at the same address is necessary,
1409          * to avoid freeing the mbuf twice.
1410          */
1411         if (ut_params->obuf) {
1412                 rte_pktmbuf_free(ut_params->obuf);
1413                 if (ut_params->ibuf == ut_params->obuf)
1414                         ut_params->ibuf = 0;
1415                 ut_params->obuf = 0;
1416         }
1417         if (ut_params->ibuf) {
1418                 rte_pktmbuf_free(ut_params->ibuf);
1419                 ut_params->ibuf = 0;
1420         }
1421
1422         if (ts_params->mbuf_pool != NULL)
1423                 RTE_LOG(DEBUG, USER1, "CRYPTO_MBUFPOOL count %u\n",
1424                         rte_mempool_avail_count(ts_params->mbuf_pool));
1425
1426         rte_cryptodev_stats_get(ts_params->valid_devs[0], &stats);
1427
1428         /* Stop the device */
1429         rte_cryptodev_stop(ts_params->valid_devs[0]);
1430 }
1431
1432 static int
1433 test_device_configure_invalid_dev_id(void)
1434 {
1435         struct crypto_testsuite_params *ts_params = &testsuite_params;
1436         uint16_t dev_id, num_devs = 0;
1437
1438         TEST_ASSERT((num_devs = rte_cryptodev_count()) >= 1,
1439                         "Need at least %d devices for test", 1);
1440
1441         /* valid dev_id values */
1442         dev_id = ts_params->valid_devs[0];
1443
1444         /* Stop the device in case it's started so it can be configured */
1445         rte_cryptodev_stop(dev_id);
1446
1447         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(dev_id, &ts_params->conf),
1448                         "Failed test for rte_cryptodev_configure: "
1449                         "invalid dev_num %u", dev_id);
1450
1451         /* invalid dev_id values */
1452         dev_id = num_devs;
1453
1454         TEST_ASSERT_FAIL(rte_cryptodev_configure(dev_id, &ts_params->conf),
1455                         "Failed test for rte_cryptodev_configure: "
1456                         "invalid dev_num %u", dev_id);
1457
1458         dev_id = 0xff;
1459
1460         TEST_ASSERT_FAIL(rte_cryptodev_configure(dev_id, &ts_params->conf),
1461                         "Failed test for rte_cryptodev_configure:"
1462                         "invalid dev_num %u", dev_id);
1463
1464         return TEST_SUCCESS;
1465 }
1466
1467 static int
1468 test_device_configure_invalid_queue_pair_ids(void)
1469 {
1470         struct crypto_testsuite_params *ts_params = &testsuite_params;
1471         uint16_t orig_nb_qps = ts_params->conf.nb_queue_pairs;
1472
1473         /* Stop the device in case it's started so it can be configured */
1474         rte_cryptodev_stop(ts_params->valid_devs[0]);
1475
1476         /* valid - max value queue pairs */
1477         ts_params->conf.nb_queue_pairs = orig_nb_qps;
1478
1479         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
1480                         &ts_params->conf),
1481                         "Failed to configure cryptodev: dev_id %u, qp_id %u",
1482                         ts_params->valid_devs[0], ts_params->conf.nb_queue_pairs);
1483
1484         /* valid - one queue pairs */
1485         ts_params->conf.nb_queue_pairs = 1;
1486
1487         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
1488                         &ts_params->conf),
1489                         "Failed to configure cryptodev: dev_id %u, qp_id %u",
1490                         ts_params->valid_devs[0],
1491                         ts_params->conf.nb_queue_pairs);
1492
1493
1494         /* invalid - zero queue pairs */
1495         ts_params->conf.nb_queue_pairs = 0;
1496
1497         TEST_ASSERT_FAIL(rte_cryptodev_configure(ts_params->valid_devs[0],
1498                         &ts_params->conf),
1499                         "Failed test for rte_cryptodev_configure, dev_id %u,"
1500                         " invalid qps: %u",
1501                         ts_params->valid_devs[0],
1502                         ts_params->conf.nb_queue_pairs);
1503
1504
1505         /* invalid - max value supported by field queue pairs */
1506         ts_params->conf.nb_queue_pairs = UINT16_MAX;
1507
1508         TEST_ASSERT_FAIL(rte_cryptodev_configure(ts_params->valid_devs[0],
1509                         &ts_params->conf),
1510                         "Failed test for rte_cryptodev_configure, dev_id %u,"
1511                         " invalid qps: %u",
1512                         ts_params->valid_devs[0],
1513                         ts_params->conf.nb_queue_pairs);
1514
1515
1516         /* invalid - max value + 1 queue pairs */
1517         ts_params->conf.nb_queue_pairs = orig_nb_qps + 1;
1518
1519         TEST_ASSERT_FAIL(rte_cryptodev_configure(ts_params->valid_devs[0],
1520                         &ts_params->conf),
1521                         "Failed test for rte_cryptodev_configure, dev_id %u,"
1522                         " invalid qps: %u",
1523                         ts_params->valid_devs[0],
1524                         ts_params->conf.nb_queue_pairs);
1525
1526         /* revert to original testsuite value */
1527         ts_params->conf.nb_queue_pairs = orig_nb_qps;
1528
1529         return TEST_SUCCESS;
1530 }
1531
1532 static int
1533 test_queue_pair_descriptor_setup(void)
1534 {
1535         struct crypto_testsuite_params *ts_params = &testsuite_params;
1536         struct rte_cryptodev_qp_conf qp_conf = {
1537                 .nb_descriptors = MAX_NUM_OPS_INFLIGHT
1538         };
1539         uint16_t qp_id;
1540
1541         /* Stop the device in case it's started so it can be configured */
1542         rte_cryptodev_stop(ts_params->valid_devs[0]);
1543
1544         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
1545                         &ts_params->conf),
1546                         "Failed to configure cryptodev %u",
1547                         ts_params->valid_devs[0]);
1548
1549         /*
1550          * Test various ring sizes on this device. memzones can't be
1551          * freed so are re-used if ring is released and re-created.
1552          */
1553         qp_conf.nb_descriptors = MIN_NUM_OPS_INFLIGHT; /* min size*/
1554         qp_conf.mp_session = ts_params->session_mpool;
1555         qp_conf.mp_session_private = ts_params->session_priv_mpool;
1556
1557         for (qp_id = 0; qp_id < ts_params->conf.nb_queue_pairs; qp_id++) {
1558                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
1559                                 ts_params->valid_devs[0], qp_id, &qp_conf,
1560                                 rte_cryptodev_socket_id(
1561                                                 ts_params->valid_devs[0])),
1562                                 "Failed test for "
1563                                 "rte_cryptodev_queue_pair_setup: num_inflights "
1564                                 "%u on qp %u on cryptodev %u",
1565                                 qp_conf.nb_descriptors, qp_id,
1566                                 ts_params->valid_devs[0]);
1567         }
1568
1569         qp_conf.nb_descriptors = (uint32_t)(MAX_NUM_OPS_INFLIGHT / 2);
1570
1571         for (qp_id = 0; qp_id < ts_params->conf.nb_queue_pairs; qp_id++) {
1572                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
1573                                 ts_params->valid_devs[0], qp_id, &qp_conf,
1574                                 rte_cryptodev_socket_id(
1575                                                 ts_params->valid_devs[0])),
1576                                 "Failed test for"
1577                                 " rte_cryptodev_queue_pair_setup: num_inflights"
1578                                 " %u on qp %u on cryptodev %u",
1579                                 qp_conf.nb_descriptors, qp_id,
1580                                 ts_params->valid_devs[0]);
1581         }
1582
1583         qp_conf.nb_descriptors = MAX_NUM_OPS_INFLIGHT; /* valid */
1584
1585         for (qp_id = 0; qp_id < ts_params->conf.nb_queue_pairs; qp_id++) {
1586                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
1587                                 ts_params->valid_devs[0], qp_id, &qp_conf,
1588                                 rte_cryptodev_socket_id(
1589                                                 ts_params->valid_devs[0])),
1590                                 "Failed test for "
1591                                 "rte_cryptodev_queue_pair_setup: num_inflights"
1592                                 " %u on qp %u on cryptodev %u",
1593                                 qp_conf.nb_descriptors, qp_id,
1594                                 ts_params->valid_devs[0]);
1595         }
1596
1597         qp_conf.nb_descriptors = DEFAULT_NUM_OPS_INFLIGHT;
1598
1599         for (qp_id = 0; qp_id < ts_params->conf.nb_queue_pairs; qp_id++) {
1600                 TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
1601                                 ts_params->valid_devs[0], qp_id, &qp_conf,
1602                                 rte_cryptodev_socket_id(
1603                                                 ts_params->valid_devs[0])),
1604                                 "Failed test for"
1605                                 " rte_cryptodev_queue_pair_setup:"
1606                                 "num_inflights %u on qp %u on cryptodev %u",
1607                                 qp_conf.nb_descriptors, qp_id,
1608                                 ts_params->valid_devs[0]);
1609         }
1610
1611         /* test invalid queue pair id */
1612         qp_conf.nb_descriptors = DEFAULT_NUM_OPS_INFLIGHT;      /*valid */
1613
1614         qp_id = ts_params->conf.nb_queue_pairs;         /*invalid */
1615
1616         TEST_ASSERT_FAIL(rte_cryptodev_queue_pair_setup(
1617                         ts_params->valid_devs[0],
1618                         qp_id, &qp_conf,
1619                         rte_cryptodev_socket_id(ts_params->valid_devs[0])),
1620                         "Failed test for rte_cryptodev_queue_pair_setup:"
1621                         "invalid qp %u on cryptodev %u",
1622                         qp_id, ts_params->valid_devs[0]);
1623
1624         qp_id = 0xffff; /*invalid*/
1625
1626         TEST_ASSERT_FAIL(rte_cryptodev_queue_pair_setup(
1627                         ts_params->valid_devs[0],
1628                         qp_id, &qp_conf,
1629                         rte_cryptodev_socket_id(ts_params->valid_devs[0])),
1630                         "Failed test for rte_cryptodev_queue_pair_setup:"
1631                         "invalid qp %u on cryptodev %u",
1632                         qp_id, ts_params->valid_devs[0]);
1633
1634         return TEST_SUCCESS;
1635 }
1636
1637 /* ***** Plaintext data for tests ***** */
1638
1639 const char catch_22_quote_1[] =
1640                 "There was only one catch and that was Catch-22, which "
1641                 "specified that a concern for one's safety in the face of "
1642                 "dangers that were real and immediate was the process of a "
1643                 "rational mind. Orr was crazy and could be grounded. All he "
1644                 "had to do was ask; and as soon as he did, he would no longer "
1645                 "be crazy and would have to fly more missions. Orr would be "
1646                 "crazy to fly more missions and sane if he didn't, but if he "
1647                 "was sane he had to fly them. If he flew them he was crazy "
1648                 "and didn't have to; but if he didn't want to he was sane and "
1649                 "had to. Yossarian was moved very deeply by the absolute "
1650                 "simplicity of this clause of Catch-22 and let out a "
1651                 "respectful whistle. \"That's some catch, that Catch-22\", he "
1652                 "observed. \"It's the best there is,\" Doc Daneeka agreed.";
1653
1654 const char catch_22_quote[] =
1655                 "What a lousy earth! He wondered how many people were "
1656                 "destitute that same night even in his own prosperous country, "
1657                 "how many homes were shanties, how many husbands were drunk "
1658                 "and wives socked, and how many children were bullied, abused, "
1659                 "or abandoned. How many families hungered for food they could "
1660                 "not afford to buy? How many hearts were broken? How many "
1661                 "suicides would take place that same night, how many people "
1662                 "would go insane? How many cockroaches and landlords would "
1663                 "triumph? How many winners were losers, successes failures, "
1664                 "and rich men poor men? How many wise guys were stupid? How "
1665                 "many happy endings were unhappy endings? How many honest men "
1666                 "were liars, brave men cowards, loyal men traitors, how many "
1667                 "sainted men were corrupt, how many people in positions of "
1668                 "trust had sold their souls to bodyguards, how many had never "
1669                 "had souls? How many straight-and-narrow paths were crooked "
1670                 "paths? How many best families were worst families and how "
1671                 "many good people were bad people? When you added them all up "
1672                 "and then subtracted, you might be left with only the children, "
1673                 "and perhaps with Albert Einstein and an old violinist or "
1674                 "sculptor somewhere.";
1675
1676 #define QUOTE_480_BYTES         (480)
1677 #define QUOTE_512_BYTES         (512)
1678 #define QUOTE_768_BYTES         (768)
1679 #define QUOTE_1024_BYTES        (1024)
1680
1681
1682
1683 /* ***** SHA1 Hash Tests ***** */
1684
1685 #define HMAC_KEY_LENGTH_SHA1    (DIGEST_BYTE_LENGTH_SHA1)
1686
1687 static uint8_t hmac_sha1_key[] = {
1688         0xF8, 0x2A, 0xC7, 0x54, 0xDB, 0x96, 0x18, 0xAA,
1689         0xC3, 0xA1, 0x53, 0xF6, 0x1F, 0x17, 0x60, 0xBD,
1690         0xDE, 0xF4, 0xDE, 0xAD };
1691
1692 /* ***** SHA224 Hash Tests ***** */
1693
1694 #define HMAC_KEY_LENGTH_SHA224  (DIGEST_BYTE_LENGTH_SHA224)
1695
1696
1697 /* ***** AES-CBC Cipher Tests ***** */
1698
1699 #define CIPHER_KEY_LENGTH_AES_CBC       (16)
1700 #define CIPHER_IV_LENGTH_AES_CBC        (CIPHER_KEY_LENGTH_AES_CBC)
1701
1702 static uint8_t aes_cbc_key[] = {
1703         0xE4, 0x23, 0x33, 0x8A, 0x35, 0x64, 0x61, 0xE2,
1704         0x49, 0x03, 0xDD, 0xC6, 0xB8, 0xCA, 0x55, 0x7A };
1705
1706 static uint8_t aes_cbc_iv[] = {
1707         0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
1708         0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e, 0x0f };
1709
1710
1711 /* ***** AES-CBC / HMAC-SHA1 Hash Tests ***** */
1712
1713 static const uint8_t catch_22_quote_2_512_bytes_AES_CBC_ciphertext[] = {
1714         0x8B, 0x4D, 0xDA, 0x1B, 0xCF, 0x04, 0xA0, 0x31,
1715         0xB4, 0xBF, 0xBD, 0x68, 0x43, 0x20, 0x7E, 0x76,
1716         0xB1, 0x96, 0x8B, 0xA2, 0x7C, 0xA2, 0x83, 0x9E,
1717         0x39, 0x5A, 0x2F, 0x7E, 0x92, 0xB4, 0x48, 0x1A,
1718         0x3F, 0x6B, 0x5D, 0xDF, 0x52, 0x85, 0x5F, 0x8E,
1719         0x42, 0x3C, 0xFB, 0xE9, 0x1A, 0x24, 0xD6, 0x08,
1720         0xDD, 0xFD, 0x16, 0xFB, 0xE9, 0x55, 0xEF, 0xF0,
1721         0xA0, 0x8D, 0x13, 0xAB, 0x81, 0xC6, 0x90, 0x01,
1722         0xB5, 0x18, 0x84, 0xB3, 0xF6, 0xE6, 0x11, 0x57,
1723         0xD6, 0x71, 0xC6, 0x3C, 0x3F, 0x2F, 0x33, 0xEE,
1724         0x24, 0x42, 0x6E, 0xAC, 0x0B, 0xCA, 0xEC, 0xF9,
1725         0x84, 0xF8, 0x22, 0xAA, 0x60, 0xF0, 0x32, 0xA9,
1726         0x75, 0x75, 0x3B, 0xCB, 0x70, 0x21, 0x0A, 0x8D,
1727         0x0F, 0xE0, 0xC4, 0x78, 0x2B, 0xF8, 0x97, 0xE3,
1728         0xE4, 0x26, 0x4B, 0x29, 0xDA, 0x88, 0xCD, 0x46,
1729         0xEC, 0xAA, 0xF9, 0x7F, 0xF1, 0x15, 0xEA, 0xC3,
1730         0x87, 0xE6, 0x31, 0xF2, 0xCF, 0xDE, 0x4D, 0x80,
1731         0x70, 0x91, 0x7E, 0x0C, 0xF7, 0x26, 0x3A, 0x92,
1732         0x4F, 0x18, 0x83, 0xC0, 0x8F, 0x59, 0x01, 0xA5,
1733         0x88, 0xD1, 0xDB, 0x26, 0x71, 0x27, 0x16, 0xF5,
1734         0xEE, 0x10, 0x82, 0xAC, 0x68, 0x26, 0x9B, 0xE2,
1735         0x6D, 0xD8, 0x9A, 0x80, 0xDF, 0x04, 0x31, 0xD5,
1736         0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA,
1737         0x58, 0x34, 0x85, 0x61, 0x1C, 0x42, 0x10, 0x76,
1738         0x73, 0x02, 0x42, 0xC9, 0x23, 0x18, 0x8E, 0xB4,
1739         0x6F, 0xB4, 0xA3, 0x54, 0x6E, 0x88, 0x3B, 0x62,
1740         0x7C, 0x02, 0x8D, 0x4C, 0x9F, 0xC8, 0x45, 0xF4,
1741         0xC9, 0xDE, 0x4F, 0xEB, 0x22, 0x83, 0x1B, 0xE4,
1742         0x49, 0x37, 0xE4, 0xAD, 0xE7, 0xCD, 0x21, 0x54,
1743         0xBC, 0x1C, 0xC2, 0x04, 0x97, 0xB4, 0x10, 0x61,
1744         0xF0, 0xE4, 0xEF, 0x27, 0x63, 0x3A, 0xDA, 0x91,
1745         0x41, 0x25, 0x62, 0x1C, 0x5C, 0xB6, 0x38, 0x4A,
1746         0x88, 0x71, 0x59, 0x5A, 0x8D, 0xA0, 0x09, 0xAF,
1747         0x72, 0x94, 0xD7, 0x79, 0x5C, 0x60, 0x7C, 0x8F,
1748         0x4C, 0xF5, 0xD9, 0xA1, 0x39, 0x6D, 0x81, 0x28,
1749         0xEF, 0x13, 0x28, 0xDF, 0xF5, 0x3E, 0xF7, 0x8E,
1750         0x09, 0x9C, 0x78, 0x18, 0x79, 0xB8, 0x68, 0xD7,
1751         0xA8, 0x29, 0x62, 0xAD, 0xDE, 0xE1, 0x61, 0x76,
1752         0x1B, 0x05, 0x16, 0xCD, 0xBF, 0x02, 0x8E, 0xA6,
1753         0x43, 0x6E, 0x92, 0x55, 0x4F, 0x60, 0x9C, 0x03,
1754         0xB8, 0x4F, 0xA3, 0x02, 0xAC, 0xA8, 0xA7, 0x0C,
1755         0x1E, 0xB5, 0x6B, 0xF8, 0xC8, 0x4D, 0xDE, 0xD2,
1756         0xB0, 0x29, 0x6E, 0x40, 0xE6, 0xD6, 0xC9, 0xE6,
1757         0xB9, 0x0F, 0xB6, 0x63, 0xF5, 0xAA, 0x2B, 0x96,
1758         0xA7, 0x16, 0xAC, 0x4E, 0x0A, 0x33, 0x1C, 0xA6,
1759         0xE6, 0xBD, 0x8A, 0xCF, 0x40, 0xA9, 0xB2, 0xFA,
1760         0x63, 0x27, 0xFD, 0x9B, 0xD9, 0xFC, 0xD5, 0x87,
1761         0x8D, 0x4C, 0xB6, 0xA4, 0xCB, 0xE7, 0x74, 0x55,
1762         0xF4, 0xFB, 0x41, 0x25, 0xB5, 0x4B, 0x0A, 0x1B,
1763         0xB1, 0xD6, 0xB7, 0xD9, 0x47, 0x2A, 0xC3, 0x98,
1764         0x6A, 0xC4, 0x03, 0x73, 0x1F, 0x93, 0x6E, 0x53,
1765         0x19, 0x25, 0x64, 0x15, 0x83, 0xF9, 0x73, 0x2A,
1766         0x74, 0xB4, 0x93, 0x69, 0xC4, 0x72, 0xFC, 0x26,
1767         0xA2, 0x9F, 0x43, 0x45, 0xDD, 0xB9, 0xEF, 0x36,
1768         0xC8, 0x3A, 0xCD, 0x99, 0x9B, 0x54, 0x1A, 0x36,
1769         0xC1, 0x59, 0xF8, 0x98, 0xA8, 0xCC, 0x28, 0x0D,
1770         0x73, 0x4C, 0xEE, 0x98, 0xCB, 0x7C, 0x58, 0x7E,
1771         0x20, 0x75, 0x1E, 0xB7, 0xC9, 0xF8, 0xF2, 0x0E,
1772         0x63, 0x9E, 0x05, 0x78, 0x1A, 0xB6, 0xA8, 0x7A,
1773         0xF9, 0x98, 0x6A, 0xA6, 0x46, 0x84, 0x2E, 0xF6,
1774         0x4B, 0xDC, 0x9B, 0x8F, 0x9B, 0x8F, 0xEE, 0xB4,
1775         0xAA, 0x3F, 0xEE, 0xC0, 0x37, 0x27, 0x76, 0xC7,
1776         0x95, 0xBB, 0x26, 0x74, 0x69, 0x12, 0x7F, 0xF1,
1777         0xBB, 0xFF, 0xAE, 0xB5, 0x99, 0x6E, 0xCB, 0x0C
1778 };
1779
1780 static const uint8_t catch_22_quote_2_512_bytes_AES_CBC_HMAC_SHA1_digest[] = {
1781         0x9a, 0x4f, 0x88, 0x1b, 0xb6, 0x8f, 0xd8, 0x60,
1782         0x42, 0x1a, 0x7d, 0x3d, 0xf5, 0x82, 0x80, 0xf1,
1783         0x18, 0x8c, 0x1d, 0x32
1784 };
1785
1786
1787 /* Multisession Vector context Test */
1788 /*Begin Session 0 */
1789 static uint8_t ms_aes_cbc_key0[] = {
1790         0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
1791         0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
1792 };
1793
1794 static uint8_t ms_aes_cbc_iv0[] = {
1795         0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
1796         0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
1797 };
1798
1799 static const uint8_t ms_aes_cbc_cipher0[] = {
1800                 0x3C, 0xE4, 0xEE, 0x42, 0xB6, 0x9B, 0xC3, 0x38,
1801                 0x5F, 0xAD, 0x54, 0xDC, 0xA8, 0x32, 0x81, 0xDC,
1802                 0x7A, 0x6F, 0x85, 0x58, 0x07, 0x35, 0xED, 0xEB,
1803                 0xAD, 0x79, 0x79, 0x96, 0xD3, 0x0E, 0xA6, 0xD9,
1804                 0xAA, 0x86, 0xA4, 0x8F, 0xB5, 0xD6, 0x6E, 0x6D,
1805                 0x0C, 0x91, 0x2F, 0xC4, 0x67, 0x98, 0x0E, 0xC4,
1806                 0x8D, 0x83, 0x68, 0x69, 0xC4, 0xD3, 0x94, 0x34,
1807                 0xC4, 0x5D, 0x60, 0x55, 0x22, 0x87, 0x8F, 0x6F,
1808                 0x17, 0x8E, 0x75, 0xE4, 0x02, 0xF5, 0x1B, 0x99,
1809                 0xC8, 0x39, 0xA9, 0xAB, 0x23, 0x91, 0x12, 0xED,
1810                 0x08, 0xE7, 0xD9, 0x25, 0x89, 0x24, 0x4F, 0x8D,
1811                 0x68, 0xF3, 0x10, 0x39, 0x0A, 0xEE, 0x45, 0x24,
1812                 0xDF, 0x7A, 0x9D, 0x00, 0x25, 0xE5, 0x35, 0x71,
1813                 0x4E, 0x40, 0x59, 0x6F, 0x0A, 0x13, 0xB3, 0x72,
1814                 0x1D, 0x98, 0x63, 0x94, 0x89, 0xA5, 0x39, 0x8E,
1815                 0xD3, 0x9C, 0x8A, 0x7F, 0x71, 0x2F, 0xC7, 0xCD,
1816                 0x81, 0x05, 0xDC, 0xC0, 0x8D, 0xCE, 0x6D, 0x18,
1817                 0x30, 0xC4, 0x72, 0x51, 0xF0, 0x27, 0xC8, 0xF6,
1818                 0x60, 0x5B, 0x7C, 0xB2, 0xE3, 0x49, 0x0C, 0x29,
1819                 0xC6, 0x9F, 0x39, 0x57, 0x80, 0x55, 0x24, 0x2C,
1820                 0x9B, 0x0F, 0x5A, 0xB3, 0x89, 0x55, 0x31, 0x96,
1821                 0x0D, 0xCD, 0xF6, 0x51, 0x03, 0x2D, 0x89, 0x26,
1822                 0x74, 0x44, 0xD6, 0xE8, 0xDC, 0xEA, 0x44, 0x55,
1823                 0x64, 0x71, 0x9C, 0x9F, 0x5D, 0xBA, 0x39, 0x46,
1824                 0xA8, 0x17, 0xA1, 0x9C, 0x52, 0x9D, 0xBC, 0x6B,
1825                 0x4A, 0x98, 0xE6, 0xEA, 0x33, 0xEC, 0x58, 0xB4,
1826                 0x43, 0xF0, 0x32, 0x45, 0xA4, 0xC1, 0x55, 0xB7,
1827                 0x5D, 0xB5, 0x59, 0xB2, 0xE3, 0x96, 0xFF, 0xA5,
1828                 0xAF, 0xE1, 0x86, 0x1B, 0x42, 0xE6, 0x3B, 0xA0,
1829                 0x90, 0x4A, 0xE8, 0x8C, 0x21, 0x7F, 0x36, 0x1E,
1830                 0x5B, 0x65, 0x25, 0xD1, 0xC1, 0x5A, 0xCA, 0x3D,
1831                 0x10, 0xED, 0x2D, 0x79, 0xD0, 0x0F, 0x58, 0x44,
1832                 0x69, 0x81, 0xF5, 0xD4, 0xC9, 0x0F, 0x90, 0x76,
1833                 0x1F, 0x54, 0xD2, 0xD5, 0x97, 0xCE, 0x2C, 0xE3,
1834                 0xEF, 0xF4, 0xB7, 0xC6, 0x3A, 0x87, 0x7F, 0x83,
1835                 0x2A, 0xAF, 0xCD, 0x90, 0x12, 0xA7, 0x7D, 0x85,
1836                 0x1D, 0x62, 0xD3, 0x85, 0x25, 0x05, 0xDB, 0x45,
1837                 0x92, 0xA3, 0xF6, 0xA2, 0xA8, 0x41, 0xE4, 0x25,
1838                 0x86, 0x87, 0x67, 0x24, 0xEC, 0x89, 0x23, 0x2A,
1839                 0x9B, 0x20, 0x4D, 0x93, 0xEE, 0xE2, 0x2E, 0xC1,
1840                 0x0B, 0x15, 0x33, 0xCF, 0x00, 0xD1, 0x1A, 0xDA,
1841                 0x93, 0xFD, 0x28, 0x21, 0x5B, 0xCF, 0xD1, 0xF3,
1842                 0x5A, 0x81, 0xBA, 0x82, 0x5E, 0x2F, 0x61, 0xB4,
1843                 0x05, 0x71, 0xB5, 0xF4, 0x39, 0x3C, 0x1F, 0x60,
1844                 0x00, 0x7A, 0xC4, 0xF8, 0x35, 0x20, 0x6C, 0x3A,
1845                 0xCC, 0x03, 0x8F, 0x7B, 0xA2, 0xB6, 0x65, 0x8A,
1846                 0xB6, 0x5F, 0xFD, 0x25, 0xD3, 0x5F, 0x92, 0xF9,
1847                 0xAE, 0x17, 0x9B, 0x5E, 0x6E, 0x9A, 0xE4, 0x55,
1848                 0x10, 0x25, 0x07, 0xA4, 0xAF, 0x21, 0x69, 0x13,
1849                 0xD8, 0xFA, 0x31, 0xED, 0xF7, 0xA7, 0xA7, 0x3B,
1850                 0xB8, 0x96, 0x8E, 0x10, 0x86, 0x74, 0xD8, 0xB1,
1851                 0x34, 0x9E, 0x9B, 0x6A, 0x26, 0xA8, 0xD4, 0xD0,
1852                 0xB5, 0xF6, 0xDE, 0xE7, 0xCA, 0x06, 0xDC, 0xA3,
1853                 0x6F, 0xEE, 0x6B, 0x1E, 0xB5, 0x30, 0x99, 0x23,
1854                 0xF9, 0x76, 0xF0, 0xA0, 0xCF, 0x3B, 0x94, 0x7B,
1855                 0x19, 0x8D, 0xA5, 0x0C, 0x18, 0xA6, 0x1D, 0x07,
1856                 0x89, 0xBE, 0x5B, 0x61, 0xE5, 0xF1, 0x42, 0xDB,
1857                 0xD4, 0x2E, 0x02, 0x1F, 0xCE, 0xEF, 0x92, 0xB1,
1858                 0x1B, 0x56, 0x50, 0xF2, 0x16, 0xE5, 0xE7, 0x4F,
1859                 0xFD, 0xBB, 0x3E, 0xD2, 0xFC, 0x3C, 0xC6, 0x0F,
1860                 0xF9, 0x12, 0x4E, 0xCB, 0x1E, 0x0C, 0x15, 0x84,
1861                 0x2A, 0x14, 0x8A, 0x02, 0xE4, 0x7E, 0x95, 0x5B,
1862                 0x86, 0xDB, 0x9B, 0x62, 0x5B, 0x19, 0xD2, 0x17,
1863                 0xFA, 0x13, 0xBB, 0x6B, 0x3F, 0x45, 0x9F, 0xBF
1864 };
1865
1866
1867 static  uint8_t ms_hmac_key0[] = {
1868                 0xFF, 0x1A, 0x7D, 0x3D, 0xF5, 0x82, 0x80, 0xF1,
1869                 0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA,
1870                 0x58, 0x34, 0x85, 0x65, 0x1C, 0x42, 0x50, 0x76,
1871                 0x9A, 0xAF, 0x88, 0x1B, 0xB6, 0x8F, 0xF8, 0x60,
1872                 0xA2, 0x5A, 0x7F, 0x3F, 0xF4, 0x72, 0x70, 0xF1,
1873                 0xF5, 0x35, 0x4C, 0x3B, 0xDD, 0x90, 0x65, 0xB0,
1874                 0x47, 0x3A, 0x75, 0x61, 0x5C, 0xA2, 0x10, 0x76,
1875                 0x9A, 0xAF, 0x77, 0x5B, 0xB6, 0x7F, 0xF7, 0x60
1876 };
1877
1878 static const uint8_t ms_hmac_digest0[] = {
1879                 0x43, 0x52, 0xED, 0x34, 0xAB, 0x36, 0xB2, 0x51,
1880                 0xFB, 0xA3, 0xA6, 0x7C, 0x38, 0xFC, 0x42, 0x8F,
1881                 0x57, 0x64, 0xAB, 0x81, 0xA7, 0x89, 0xB7, 0x6C,
1882                 0xA0, 0xDC, 0xB9, 0x4D, 0xC4, 0x30, 0xF9, 0xD4,
1883                 0x10, 0x82, 0x55, 0xD0, 0xAB, 0x32, 0xFB, 0x56,
1884                 0x0D, 0xE4, 0x68, 0x3D, 0x76, 0xD0, 0x7B, 0xE4,
1885                 0xA6, 0x2C, 0x34, 0x9E, 0x8C, 0x41, 0xF8, 0x23,
1886                 0x28, 0x1B, 0x3A, 0x90, 0x26, 0x34, 0x47, 0x90
1887                 };
1888
1889 /* End Session 0 */
1890 /* Begin session 1 */
1891
1892 static  uint8_t ms_aes_cbc_key1[] = {
1893                 0xf1, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
1894                 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
1895 };
1896
1897 static  uint8_t ms_aes_cbc_iv1[] = {
1898         0xf1, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
1899         0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
1900 };
1901
1902 static const uint8_t ms_aes_cbc_cipher1[] = {
1903                 0x5A, 0x7A, 0x67, 0x5D, 0xB8, 0xE1, 0xDC, 0x71,
1904                 0x39, 0xA8, 0x74, 0x93, 0x9C, 0x4C, 0xFE, 0x23,
1905                 0x61, 0xCD, 0xA4, 0xB3, 0xD9, 0xCE, 0x99, 0x09,
1906                 0x2A, 0x23, 0xF3, 0x29, 0xBF, 0x4C, 0xB4, 0x6A,
1907                 0x1B, 0x6B, 0x73, 0x4D, 0x48, 0x0C, 0xCF, 0x6C,
1908                 0x5E, 0x34, 0x9E, 0x7F, 0xBC, 0x8F, 0xCC, 0x8F,
1909                 0x75, 0x1D, 0x3D, 0x77, 0x10, 0x76, 0xC8, 0xB9,
1910                 0x99, 0x6F, 0xD6, 0x56, 0x75, 0xA9, 0xB2, 0x66,
1911                 0xC2, 0x24, 0x2B, 0x9C, 0xFE, 0x40, 0x8E, 0x43,
1912                 0x20, 0x97, 0x1B, 0xFA, 0xD0, 0xCF, 0x04, 0xAB,
1913                 0xBB, 0xF6, 0x5D, 0xF5, 0xA0, 0x19, 0x7C, 0x23,
1914                 0x5D, 0x80, 0x8C, 0x49, 0xF6, 0x76, 0x88, 0x29,
1915                 0x27, 0x4C, 0x59, 0x2B, 0x43, 0xA6, 0xB2, 0x26,
1916                 0x27, 0x78, 0xBE, 0x1B, 0xE1, 0x4F, 0x5A, 0x1F,
1917                 0xFC, 0x68, 0x08, 0xE7, 0xC4, 0xD1, 0x34, 0x68,
1918                 0xB7, 0x13, 0x14, 0x41, 0x62, 0x6B, 0x1F, 0x77,
1919                 0x0C, 0x68, 0x1D, 0x0D, 0xED, 0x89, 0xAA, 0xD8,
1920                 0x97, 0x02, 0xBA, 0x5E, 0xD4, 0x84, 0x25, 0x97,
1921                 0x03, 0xA5, 0xA6, 0x13, 0x66, 0x02, 0xF4, 0xC3,
1922                 0xF3, 0xD3, 0xCC, 0x95, 0xC3, 0x87, 0x46, 0x90,
1923                 0x1F, 0x6E, 0x14, 0xA8, 0x00, 0xF2, 0x6F, 0xD5,
1924                 0xA1, 0xAD, 0xD5, 0x40, 0xA2, 0x0F, 0x32, 0x7E,
1925                 0x99, 0xA3, 0xF5, 0x53, 0xC3, 0x26, 0xA1, 0x45,
1926                 0x01, 0x88, 0x57, 0x84, 0x3E, 0x7B, 0x4E, 0x0B,
1927                 0x3C, 0xB5, 0x3E, 0x9E, 0xE9, 0x78, 0x77, 0xC5,
1928                 0xC0, 0x89, 0xA8, 0xF8, 0xF1, 0xA5, 0x2D, 0x5D,
1929                 0xF9, 0xC6, 0xFB, 0xCB, 0x05, 0x23, 0xBD, 0x6E,
1930                 0x5E, 0x14, 0xC6, 0x57, 0x73, 0xCF, 0x98, 0xBD,
1931                 0x10, 0x8B, 0x18, 0xA6, 0x01, 0x5B, 0x13, 0xAE,
1932                 0x8E, 0xDE, 0x1F, 0xB5, 0xB7, 0x40, 0x6C, 0xC1,
1933                 0x1E, 0xA1, 0x19, 0x20, 0x9E, 0x95, 0xE0, 0x2F,
1934                 0x1C, 0xF5, 0xD9, 0xD0, 0x2B, 0x1E, 0x82, 0x25,
1935                 0x62, 0xB4, 0xEB, 0xA1, 0x1F, 0xCE, 0x44, 0xA1,
1936                 0xCB, 0x92, 0x01, 0x6B, 0xE4, 0x26, 0x23, 0xE3,
1937                 0xC5, 0x67, 0x35, 0x55, 0xDA, 0xE5, 0x27, 0xEE,
1938                 0x8D, 0x12, 0x84, 0xB7, 0xBA, 0xA7, 0x1C, 0xD6,
1939                 0x32, 0x3F, 0x67, 0xED, 0xFB, 0x5B, 0x8B, 0x52,
1940                 0x46, 0x8C, 0xF9, 0x69, 0xCD, 0xAE, 0x79, 0xAA,
1941                 0x37, 0x78, 0x49, 0xEB, 0xC6, 0x8E, 0x76, 0x63,
1942                 0x84, 0xFF, 0x9D, 0x22, 0x99, 0x51, 0xB7, 0x5E,
1943                 0x83, 0x4C, 0x8B, 0xDF, 0x5A, 0x07, 0xCC, 0xBA,
1944                 0x42, 0xA5, 0x98, 0xB6, 0x47, 0x0E, 0x66, 0xEB,
1945                 0x23, 0x0E, 0xBA, 0x44, 0xA8, 0xAA, 0x20, 0x71,
1946                 0x79, 0x9C, 0x77, 0x5F, 0xF5, 0xFE, 0xEC, 0xEF,
1947                 0xC6, 0x64, 0x3D, 0x84, 0xD0, 0x2B, 0xA7, 0x0A,
1948                 0xC3, 0x72, 0x5B, 0x9C, 0xFA, 0xA8, 0x87, 0x95,
1949                 0x94, 0x11, 0x38, 0xA7, 0x1E, 0x58, 0xE3, 0x73,
1950                 0xC6, 0xC9, 0xD1, 0x7B, 0x92, 0xDB, 0x0F, 0x49,
1951                 0x74, 0xC2, 0xA2, 0x0E, 0x35, 0x57, 0xAC, 0xDB,
1952                 0x9A, 0x1C, 0xCF, 0x5A, 0x32, 0x3E, 0x26, 0x9B,
1953                 0xEC, 0xB3, 0xEF, 0x9C, 0xFE, 0xBE, 0x52, 0xAC,
1954                 0xB1, 0x29, 0xDD, 0xFD, 0x07, 0xE2, 0xEE, 0xED,
1955                 0xE4, 0x46, 0x37, 0xFE, 0xD1, 0xDC, 0xCD, 0x02,
1956                 0xF9, 0x31, 0xB0, 0xFB, 0x36, 0xB7, 0x34, 0xA4,
1957                 0x76, 0xE8, 0x57, 0xBF, 0x99, 0x92, 0xC7, 0xAF,
1958                 0x98, 0x10, 0xE2, 0x70, 0xCA, 0xC9, 0x2B, 0x82,
1959                 0x06, 0x96, 0x88, 0x0D, 0xB3, 0xAC, 0x9E, 0x6D,
1960                 0x43, 0xBC, 0x5B, 0x31, 0xCF, 0x65, 0x8D, 0xA6,
1961                 0xC7, 0xFE, 0x73, 0xE1, 0x54, 0xF7, 0x10, 0xF9,
1962                 0x86, 0xF7, 0xDF, 0xA1, 0xA1, 0xD8, 0xAE, 0x35,
1963                 0xB3, 0x90, 0xDC, 0x6F, 0x43, 0x7A, 0x8B, 0xE0,
1964                 0xFE, 0x8F, 0x33, 0x4D, 0x29, 0x6C, 0x45, 0x53,
1965                 0x73, 0xDD, 0x21, 0x0B, 0x85, 0x30, 0xB5, 0xA5,
1966                 0xF3, 0x5D, 0xEC, 0x79, 0x61, 0x9D, 0x9E, 0xB3
1967
1968 };
1969
1970 static uint8_t ms_hmac_key1[] = {
1971                 0xFE, 0x1A, 0x7D, 0x3D, 0xF5, 0x82, 0x80, 0xF1,
1972                 0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA,
1973                 0x58, 0x34, 0x85, 0x65, 0x1C, 0x42, 0x50, 0x76,
1974                 0x9A, 0xAF, 0x88, 0x1B, 0xB6, 0x8F, 0xF8, 0x60,
1975                 0xA2, 0x5A, 0x7F, 0x3F, 0xF4, 0x72, 0x70, 0xF1,
1976                 0xF5, 0x35, 0x4C, 0x3B, 0xDD, 0x90, 0x65, 0xB0,
1977                 0x47, 0x3A, 0x75, 0x61, 0x5C, 0xA2, 0x10, 0x76,
1978                 0x9A, 0xAF, 0x77, 0x5B, 0xB6, 0x7F, 0xF7, 0x60
1979 };
1980
1981 static const uint8_t ms_hmac_digest1[] = {
1982                 0xCE, 0x6E, 0x5F, 0x77, 0x96, 0x9A, 0xB1, 0x69,
1983                 0x2D, 0x5E, 0xF3, 0x2F, 0x32, 0x10, 0xCB, 0x50,
1984                 0x0E, 0x09, 0x56, 0x25, 0x07, 0x34, 0xC9, 0x20,
1985                 0xEC, 0x13, 0x43, 0x23, 0x5C, 0x08, 0x8B, 0xCD,
1986                 0xDC, 0x86, 0x8C, 0xEE, 0x0A, 0x95, 0x2E, 0xB9,
1987                 0x8C, 0x7B, 0x02, 0x7A, 0xD4, 0xE1, 0x49, 0xB4,
1988                 0x45, 0xB5, 0x52, 0x37, 0xC6, 0xFF, 0xFE, 0xAA,
1989                 0x0A, 0x87, 0xB8, 0x51, 0xF9, 0x2A, 0x01, 0x8F
1990 };
1991 /* End Session 1  */
1992 /* Begin Session 2 */
1993 static  uint8_t ms_aes_cbc_key2[] = {
1994                 0xff, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
1995                 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
1996 };
1997
1998 static  uint8_t ms_aes_cbc_iv2[] = {
1999                 0xff, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7,
2000                 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff
2001 };
2002
2003 static const uint8_t ms_aes_cbc_cipher2[] = {
2004                 0xBB, 0x3C, 0x68, 0x25, 0xFD, 0xB6, 0xA2, 0x91,
2005                 0x20, 0x56, 0xF6, 0x30, 0x35, 0xFC, 0x9E, 0x97,
2006                 0xF2, 0x90, 0xFC, 0x7E, 0x3E, 0x0A, 0x75, 0xC8,
2007                 0x4C, 0xF2, 0x2D, 0xAC, 0xD3, 0x93, 0xF0, 0xC5,
2008                 0x14, 0x88, 0x8A, 0x23, 0xC2, 0x59, 0x9A, 0x98,
2009                 0x4B, 0xD5, 0x2C, 0xDA, 0x43, 0xA9, 0x34, 0x69,
2010                 0x7C, 0x6D, 0xDB, 0xDC, 0xCB, 0xC0, 0xA0, 0x09,
2011                 0xA7, 0x86, 0x16, 0x4B, 0xBF, 0xA8, 0xB6, 0xCF,
2012                 0x7F, 0x74, 0x1F, 0x22, 0xF0, 0xF6, 0xBB, 0x44,
2013                 0x8B, 0x4C, 0x9E, 0x23, 0xF8, 0x9F, 0xFC, 0x5B,
2014                 0x9E, 0x9C, 0x2A, 0x79, 0x30, 0x8F, 0xBF, 0xA9,
2015                 0x68, 0xA1, 0x20, 0x71, 0x7C, 0x77, 0x22, 0x34,
2016                 0x07, 0xCD, 0xC6, 0xF6, 0x50, 0x0A, 0x08, 0x99,
2017                 0x17, 0x98, 0xE3, 0x93, 0x8A, 0xB0, 0xEE, 0xDF,
2018                 0xC2, 0xBA, 0x3B, 0x44, 0x73, 0xDF, 0xDD, 0xDC,
2019                 0x14, 0x4D, 0x3B, 0xBB, 0x5E, 0x58, 0xC1, 0x26,
2020                 0xA7, 0xAE, 0x47, 0xF3, 0x24, 0x6D, 0x4F, 0xD3,
2021                 0x6E, 0x3E, 0x33, 0xE6, 0x7F, 0xCA, 0x50, 0xAF,
2022                 0x5D, 0x3D, 0xA0, 0xDD, 0xC9, 0xF3, 0x30, 0xD3,
2023                 0x6E, 0x8B, 0x2E, 0x12, 0x24, 0x34, 0xF0, 0xD3,
2024                 0xC7, 0x8D, 0x23, 0x29, 0xAA, 0x05, 0xE1, 0xFA,
2025                 0x2E, 0xF6, 0x8D, 0x37, 0x86, 0xC0, 0x6D, 0x13,
2026                 0x2D, 0x98, 0xF3, 0x52, 0x39, 0x22, 0xCE, 0x38,
2027                 0xC2, 0x1A, 0x72, 0xED, 0xFB, 0xCC, 0xE4, 0x71,
2028                 0x5A, 0x0C, 0x0D, 0x09, 0xF8, 0xE8, 0x1B, 0xBC,
2029                 0x53, 0xC8, 0xD8, 0x8F, 0xE5, 0x98, 0x5A, 0xB1,
2030                 0x06, 0xA6, 0x5B, 0xE6, 0xA2, 0x88, 0x21, 0x9E,
2031                 0x36, 0xC0, 0x34, 0xF9, 0xFB, 0x3B, 0x0A, 0x22,
2032                 0x00, 0x00, 0x39, 0x48, 0x8D, 0x23, 0x74, 0x62,
2033                 0x72, 0x91, 0xE6, 0x36, 0xAA, 0x77, 0x9C, 0x72,
2034                 0x9D, 0xA8, 0xC3, 0xA9, 0xD5, 0x44, 0x72, 0xA6,
2035                 0xB9, 0x28, 0x8F, 0x64, 0x4C, 0x8A, 0x64, 0xE6,
2036                 0x4E, 0xFA, 0xEF, 0x87, 0xDE, 0x7B, 0x22, 0x44,
2037                 0xB0, 0xDF, 0x2E, 0x5F, 0x0B, 0xA5, 0xF2, 0x24,
2038                 0x07, 0x5C, 0x2D, 0x39, 0xB7, 0x3D, 0x8A, 0xE5,
2039                 0x0E, 0x9D, 0x4E, 0x50, 0xED, 0x03, 0x99, 0x8E,
2040                 0xF0, 0x06, 0x55, 0x4E, 0xA2, 0x24, 0xE7, 0x17,
2041                 0x46, 0xDF, 0x6C, 0xCD, 0xC6, 0x44, 0xE8, 0xF9,
2042                 0xB9, 0x1B, 0x36, 0xF6, 0x7F, 0x10, 0xA4, 0x7D,
2043                 0x90, 0xBD, 0xE4, 0xAA, 0xD6, 0x9E, 0x18, 0x9D,
2044                 0x22, 0x35, 0xD6, 0x55, 0x54, 0xAA, 0xF7, 0x22,
2045                 0xA3, 0x3E, 0xEF, 0xC8, 0xA2, 0x34, 0x8D, 0xA9,
2046                 0x37, 0x63, 0xA6, 0xC3, 0x57, 0xCB, 0x0C, 0x49,
2047                 0x7D, 0x02, 0xBE, 0xAA, 0x13, 0x75, 0xB7, 0x4E,
2048                 0x52, 0x62, 0xA5, 0xC2, 0x33, 0xC7, 0x6C, 0x1B,
2049                 0xF6, 0x34, 0xF6, 0x09, 0xA5, 0x0C, 0xC7, 0xA2,
2050                 0x61, 0x48, 0x62, 0x7D, 0x17, 0x15, 0xE3, 0x95,
2051                 0xC8, 0x63, 0xD2, 0xA4, 0x43, 0xA9, 0x49, 0x07,
2052                 0xB2, 0x3B, 0x2B, 0x62, 0x7D, 0xCB, 0x51, 0xB3,
2053                 0x25, 0x33, 0x47, 0x0E, 0x14, 0x67, 0xDC, 0x6A,
2054                 0x9B, 0x51, 0xAC, 0x9D, 0x8F, 0xA2, 0x2B, 0x57,
2055                 0x8C, 0x5C, 0x5F, 0x76, 0x23, 0x92, 0x0F, 0x84,
2056                 0x46, 0x0E, 0x40, 0x85, 0x38, 0x60, 0xFA, 0x61,
2057                 0x20, 0xC5, 0xE3, 0xF1, 0x70, 0xAC, 0x1B, 0xBF,
2058                 0xC4, 0x2B, 0xC5, 0x67, 0xD1, 0x43, 0xC5, 0x17,
2059                 0x74, 0x71, 0x69, 0x6F, 0x82, 0x89, 0x19, 0x8A,
2060                 0x70, 0x43, 0x92, 0x01, 0xC4, 0x63, 0x7E, 0xB1,
2061                 0x59, 0x4E, 0xCD, 0xEA, 0x93, 0xA4, 0x52, 0x53,
2062                 0x9B, 0x61, 0x5B, 0xD2, 0x3E, 0x19, 0x39, 0xB7,
2063                 0x32, 0xEA, 0x8E, 0xF8, 0x1D, 0x76, 0x5C, 0xB2,
2064                 0x73, 0x2D, 0x91, 0xC0, 0x18, 0xED, 0x25, 0x2A,
2065                 0x53, 0x64, 0xF0, 0x92, 0x31, 0x55, 0x21, 0xA8,
2066                 0x24, 0xA9, 0xD1, 0x02, 0xF6, 0x6C, 0x2B, 0x70,
2067                 0xA9, 0x59, 0xC1, 0xD6, 0xC3, 0x57, 0x5B, 0x92
2068 };
2069
2070 static  uint8_t ms_hmac_key2[] = {
2071                 0xFC, 0x1A, 0x7D, 0x3D, 0xF5, 0x82, 0x80, 0xF1,
2072                 0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA,
2073                 0x58, 0x34, 0x85, 0x65, 0x1C, 0x42, 0x50, 0x76,
2074                 0x9A, 0xAF, 0x88, 0x1B, 0xB6, 0x8F, 0xF8, 0x60,
2075                 0xA2, 0x5A, 0x7F, 0x3F, 0xF4, 0x72, 0x70, 0xF1,
2076                 0xF5, 0x35, 0x4C, 0x3B, 0xDD, 0x90, 0x65, 0xB0,
2077                 0x47, 0x3A, 0x75, 0x61, 0x5C, 0xA2, 0x10, 0x76,
2078                 0x9A, 0xAF, 0x77, 0x5B, 0xB6, 0x7F, 0xF7, 0x60
2079 };
2080
2081 static const uint8_t ms_hmac_digest2[] = {
2082                 0xA5, 0x0F, 0x9C, 0xFB, 0x08, 0x62, 0x59, 0xFF,
2083                 0x80, 0x2F, 0xEB, 0x4B, 0xE1, 0x46, 0x21, 0xD6,
2084                 0x02, 0x98, 0xF2, 0x8E, 0xF4, 0xEC, 0xD4, 0x77,
2085                 0x86, 0x4C, 0x31, 0x28, 0xC8, 0x25, 0x80, 0x27,
2086                 0x3A, 0x72, 0x5D, 0x6A, 0x56, 0x8A, 0xD3, 0x82,
2087                 0xB0, 0xEC, 0x31, 0x6D, 0x8B, 0x6B, 0xB4, 0x24,
2088                 0xE7, 0x62, 0xC1, 0x52, 0xBC, 0x14, 0x1B, 0x8E,
2089                 0xEC, 0x9A, 0xF1, 0x47, 0x80, 0xD2, 0xB0, 0x59
2090 };
2091
2092 /* End Session 2 */
2093
2094
2095 static int
2096 test_AES_CBC_HMAC_SHA1_encrypt_digest(void)
2097 {
2098         struct crypto_testsuite_params *ts_params = &testsuite_params;
2099         struct crypto_unittest_params *ut_params = &unittest_params;
2100
2101         /* Verify the capabilities */
2102         struct rte_cryptodev_sym_capability_idx cap_idx;
2103         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2104         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SHA1_HMAC;
2105         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
2106                         &cap_idx) == NULL)
2107                 return TEST_SKIPPED;
2108         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2109         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_AES_CBC;
2110         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
2111                         &cap_idx) == NULL)
2112                 return TEST_SKIPPED;
2113
2114         /* Generate test mbuf data and space for digest */
2115         ut_params->ibuf = setup_test_string(ts_params->mbuf_pool,
2116                         catch_22_quote, QUOTE_512_BYTES, 0);
2117
2118         ut_params->digest = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
2119                         DIGEST_BYTE_LENGTH_SHA1);
2120         TEST_ASSERT_NOT_NULL(ut_params->digest, "no room to append digest");
2121
2122         /* Setup Cipher Parameters */
2123         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2124         ut_params->cipher_xform.next = &ut_params->auth_xform;
2125
2126         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_CBC;
2127         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
2128         ut_params->cipher_xform.cipher.key.data = aes_cbc_key;
2129         ut_params->cipher_xform.cipher.key.length = CIPHER_KEY_LENGTH_AES_CBC;
2130         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2131         ut_params->cipher_xform.cipher.iv.length = CIPHER_IV_LENGTH_AES_CBC;
2132
2133         /* Setup HMAC Parameters */
2134         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2135
2136         ut_params->auth_xform.next = NULL;
2137
2138         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE;
2139         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_SHA1_HMAC;
2140         ut_params->auth_xform.auth.key.length = HMAC_KEY_LENGTH_SHA1;
2141         ut_params->auth_xform.auth.key.data = hmac_sha1_key;
2142         ut_params->auth_xform.auth.digest_length = DIGEST_BYTE_LENGTH_SHA1;
2143
2144         ut_params->sess = rte_cryptodev_sym_session_create(
2145                         ts_params->session_mpool);
2146
2147         /* Create crypto session*/
2148         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
2149                         ut_params->sess, &ut_params->cipher_xform,
2150                         ts_params->session_priv_mpool);
2151         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2152
2153         /* Generate crypto op data structure */
2154         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2155                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2156         TEST_ASSERT_NOT_NULL(ut_params->op,
2157                         "Failed to allocate symmetric crypto operation struct");
2158
2159         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2160
2161         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2162
2163         /* set crypto operation source mbuf */
2164         sym_op->m_src = ut_params->ibuf;
2165
2166         /* Set crypto operation authentication parameters */
2167         sym_op->auth.digest.data = ut_params->digest;
2168         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2169                         ut_params->ibuf, QUOTE_512_BYTES);
2170
2171         sym_op->auth.data.offset = 0;
2172         sym_op->auth.data.length = QUOTE_512_BYTES;
2173
2174         /* Copy IV at the end of the crypto operation */
2175         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
2176                         aes_cbc_iv, CIPHER_IV_LENGTH_AES_CBC);
2177
2178         /* Set crypto operation cipher parameters */
2179         sym_op->cipher.data.offset = 0;
2180         sym_op->cipher.data.length = QUOTE_512_BYTES;
2181
2182         /* Process crypto operation */
2183         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
2184                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
2185                         ut_params->op);
2186         else
2187                 TEST_ASSERT_NOT_NULL(
2188                         process_crypto_request(ts_params->valid_devs[0],
2189                                 ut_params->op),
2190                                 "failed to process sym crypto op");
2191
2192         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
2193                         "crypto op processing failed");
2194
2195         /* Validate obuf */
2196         uint8_t *ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_src,
2197                         uint8_t *);
2198
2199         TEST_ASSERT_BUFFERS_ARE_EQUAL(ciphertext,
2200                         catch_22_quote_2_512_bytes_AES_CBC_ciphertext,
2201                         QUOTE_512_BYTES,
2202                         "ciphertext data not as expected");
2203
2204         uint8_t *digest = ciphertext + QUOTE_512_BYTES;
2205
2206         TEST_ASSERT_BUFFERS_ARE_EQUAL(digest,
2207                         catch_22_quote_2_512_bytes_AES_CBC_HMAC_SHA1_digest,
2208                         gbl_driver_id == rte_cryptodev_driver_id_get(
2209                                         RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD)) ?
2210                                         TRUNCATED_DIGEST_BYTE_LENGTH_SHA1 :
2211                                         DIGEST_BYTE_LENGTH_SHA1,
2212                         "Generated digest data not as expected");
2213
2214         return TEST_SUCCESS;
2215 }
2216
2217 /* ***** AES-CBC / HMAC-SHA512 Hash Tests ***** */
2218
2219 #define HMAC_KEY_LENGTH_SHA512  (DIGEST_BYTE_LENGTH_SHA512)
2220
2221 static uint8_t hmac_sha512_key[] = {
2222         0x42, 0x1a, 0x7d, 0x3d, 0xf5, 0x82, 0x80, 0xf1,
2223         0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA,
2224         0x58, 0x34, 0x85, 0x65, 0x1C, 0x42, 0x50, 0x76,
2225         0x9a, 0xaf, 0x88, 0x1b, 0xb6, 0x8f, 0xf8, 0x60,
2226         0xa2, 0x5a, 0x7f, 0x3f, 0xf4, 0x72, 0x70, 0xf1,
2227         0xF5, 0x35, 0x4C, 0x3B, 0xDD, 0x90, 0x65, 0xB0,
2228         0x47, 0x3a, 0x75, 0x61, 0x5C, 0xa2, 0x10, 0x76,
2229         0x9a, 0xaf, 0x77, 0x5b, 0xb6, 0x7f, 0xf7, 0x60 };
2230
2231 static const uint8_t catch_22_quote_2_512_bytes_AES_CBC_HMAC_SHA512_digest[] = {
2232         0x5D, 0x54, 0x66, 0xC1, 0x6E, 0xBC, 0x04, 0xB8,
2233         0x46, 0xB8, 0x08, 0x6E, 0xE0, 0xF0, 0x43, 0x48,
2234         0x37, 0x96, 0x9C, 0xC6, 0x9C, 0xC2, 0x1E, 0xE8,
2235         0xF2, 0x0C, 0x0B, 0xEF, 0x86, 0xA2, 0xE3, 0x70,
2236         0x95, 0xC8, 0xB3, 0x06, 0x47, 0xA9, 0x90, 0xE8,
2237         0xA0, 0xC6, 0x72, 0x69, 0x05, 0xC0, 0x0D, 0x0E,
2238         0x21, 0x96, 0x65, 0x93, 0x74, 0x43, 0x2A, 0x1D,
2239         0x2E, 0xBF, 0xC2, 0xC2, 0xEE, 0xCC, 0x2F, 0x0A };
2240
2241
2242
2243 static int
2244 test_AES_CBC_HMAC_SHA512_decrypt_create_session_params(
2245                 struct crypto_unittest_params *ut_params,
2246                 uint8_t *cipher_key,
2247                 uint8_t *hmac_key);
2248
2249 static int
2250 test_AES_CBC_HMAC_SHA512_decrypt_perform(struct rte_cryptodev_sym_session *sess,
2251                 struct crypto_unittest_params *ut_params,
2252                 struct crypto_testsuite_params *ts_params,
2253                 const uint8_t *cipher,
2254                 const uint8_t *digest,
2255                 const uint8_t *iv);
2256
2257
2258 static int
2259 test_AES_CBC_HMAC_SHA512_decrypt_create_session_params(
2260                 struct crypto_unittest_params *ut_params,
2261                 uint8_t *cipher_key,
2262                 uint8_t *hmac_key)
2263 {
2264
2265         /* Setup Cipher Parameters */
2266         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2267         ut_params->cipher_xform.next = NULL;
2268
2269         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_CBC;
2270         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_DECRYPT;
2271         ut_params->cipher_xform.cipher.key.data = cipher_key;
2272         ut_params->cipher_xform.cipher.key.length = CIPHER_KEY_LENGTH_AES_CBC;
2273         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2274         ut_params->cipher_xform.cipher.iv.length = CIPHER_IV_LENGTH_AES_CBC;
2275
2276         /* Setup HMAC Parameters */
2277         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2278         ut_params->auth_xform.next = &ut_params->cipher_xform;
2279
2280         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_VERIFY;
2281         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_SHA512_HMAC;
2282         ut_params->auth_xform.auth.key.data = hmac_key;
2283         ut_params->auth_xform.auth.key.length = HMAC_KEY_LENGTH_SHA512;
2284         ut_params->auth_xform.auth.digest_length = DIGEST_BYTE_LENGTH_SHA512;
2285
2286         return TEST_SUCCESS;
2287 }
2288
2289
2290 static int
2291 test_AES_CBC_HMAC_SHA512_decrypt_perform(struct rte_cryptodev_sym_session *sess,
2292                 struct crypto_unittest_params *ut_params,
2293                 struct crypto_testsuite_params *ts_params,
2294                 const uint8_t *cipher,
2295                 const uint8_t *digest,
2296                 const uint8_t *iv)
2297 {
2298         /* Generate test mbuf data and digest */
2299         ut_params->ibuf = setup_test_string(ts_params->mbuf_pool,
2300                         (const char *)
2301                         cipher,
2302                         QUOTE_512_BYTES, 0);
2303
2304         ut_params->digest = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
2305                         DIGEST_BYTE_LENGTH_SHA512);
2306         TEST_ASSERT_NOT_NULL(ut_params->digest, "no room to append digest");
2307
2308         rte_memcpy(ut_params->digest,
2309                         digest,
2310                         DIGEST_BYTE_LENGTH_SHA512);
2311
2312         /* Generate Crypto op data structure */
2313         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2314                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2315         TEST_ASSERT_NOT_NULL(ut_params->op,
2316                         "Failed to allocate symmetric crypto operation struct");
2317
2318         rte_crypto_op_attach_sym_session(ut_params->op, sess);
2319
2320         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2321
2322         /* set crypto operation source mbuf */
2323         sym_op->m_src = ut_params->ibuf;
2324
2325         sym_op->auth.digest.data = ut_params->digest;
2326         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2327                         ut_params->ibuf, QUOTE_512_BYTES);
2328
2329         sym_op->auth.data.offset = 0;
2330         sym_op->auth.data.length = QUOTE_512_BYTES;
2331
2332         /* Copy IV at the end of the crypto operation */
2333         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
2334                         iv, CIPHER_IV_LENGTH_AES_CBC);
2335
2336         sym_op->cipher.data.offset = 0;
2337         sym_op->cipher.data.length = QUOTE_512_BYTES;
2338
2339         /* Process crypto operation */
2340         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
2341                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
2342                         ut_params->op);
2343         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
2344                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
2345                                 ut_params->op, 1, 1, 0, 0);
2346         else
2347                 TEST_ASSERT_NOT_NULL(
2348                                 process_crypto_request(ts_params->valid_devs[0],
2349                                         ut_params->op),
2350                                         "failed to process sym crypto op");
2351
2352         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
2353                         "crypto op processing failed");
2354
2355         ut_params->obuf = ut_params->op->sym->m_src;
2356
2357         /* Validate obuf */
2358         TEST_ASSERT_BUFFERS_ARE_EQUAL(
2359                         rte_pktmbuf_mtod(ut_params->obuf, uint8_t *),
2360                         catch_22_quote,
2361                         QUOTE_512_BYTES,
2362                         "Plaintext data not as expected");
2363
2364         /* Validate obuf */
2365         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
2366                         "Digest verification failed");
2367
2368         return TEST_SUCCESS;
2369 }
2370
2371 /* ***** SNOW 3G Tests ***** */
2372 static int
2373 create_wireless_algo_hash_session(uint8_t dev_id,
2374         const uint8_t *key, const uint8_t key_len,
2375         const uint8_t iv_len, const uint8_t auth_len,
2376         enum rte_crypto_auth_operation op,
2377         enum rte_crypto_auth_algorithm algo)
2378 {
2379         uint8_t hash_key[key_len];
2380         int status;
2381
2382         struct crypto_testsuite_params *ts_params = &testsuite_params;
2383         struct crypto_unittest_params *ut_params = &unittest_params;
2384
2385         memcpy(hash_key, key, key_len);
2386
2387         debug_hexdump(stdout, "key:", key, key_len);
2388
2389         /* Setup Authentication Parameters */
2390         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2391         ut_params->auth_xform.next = NULL;
2392
2393         ut_params->auth_xform.auth.op = op;
2394         ut_params->auth_xform.auth.algo = algo;
2395         ut_params->auth_xform.auth.key.length = key_len;
2396         ut_params->auth_xform.auth.key.data = hash_key;
2397         ut_params->auth_xform.auth.digest_length = auth_len;
2398         ut_params->auth_xform.auth.iv.offset = IV_OFFSET;
2399         ut_params->auth_xform.auth.iv.length = iv_len;
2400         ut_params->sess = rte_cryptodev_sym_session_create(
2401                         ts_params->session_mpool);
2402
2403         status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2404                         &ut_params->auth_xform,
2405                         ts_params->session_priv_mpool);
2406         TEST_ASSERT_EQUAL(status, 0, "session init failed");
2407         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2408         return 0;
2409 }
2410
2411 static int
2412 create_wireless_algo_cipher_session(uint8_t dev_id,
2413                         enum rte_crypto_cipher_operation op,
2414                         enum rte_crypto_cipher_algorithm algo,
2415                         const uint8_t *key, const uint8_t key_len,
2416                         uint8_t iv_len)
2417 {
2418         uint8_t cipher_key[key_len];
2419         int status;
2420         struct crypto_testsuite_params *ts_params = &testsuite_params;
2421         struct crypto_unittest_params *ut_params = &unittest_params;
2422
2423         memcpy(cipher_key, key, key_len);
2424
2425         /* Setup Cipher Parameters */
2426         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2427         ut_params->cipher_xform.next = NULL;
2428
2429         ut_params->cipher_xform.cipher.algo = algo;
2430         ut_params->cipher_xform.cipher.op = op;
2431         ut_params->cipher_xform.cipher.key.data = cipher_key;
2432         ut_params->cipher_xform.cipher.key.length = key_len;
2433         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2434         ut_params->cipher_xform.cipher.iv.length = iv_len;
2435
2436         debug_hexdump(stdout, "key:", key, key_len);
2437
2438         /* Create Crypto session */
2439         ut_params->sess = rte_cryptodev_sym_session_create(
2440                         ts_params->session_mpool);
2441
2442         status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2443                         &ut_params->cipher_xform,
2444                         ts_params->session_priv_mpool);
2445         TEST_ASSERT_EQUAL(status, 0, "session init failed");
2446         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2447         return 0;
2448 }
2449
2450 static int
2451 create_wireless_algo_cipher_operation(const uint8_t *iv, uint8_t iv_len,
2452                         unsigned int cipher_len,
2453                         unsigned int cipher_offset)
2454 {
2455         struct crypto_testsuite_params *ts_params = &testsuite_params;
2456         struct crypto_unittest_params *ut_params = &unittest_params;
2457
2458         /* Generate Crypto op data structure */
2459         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2460                                 RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2461         TEST_ASSERT_NOT_NULL(ut_params->op,
2462                                 "Failed to allocate pktmbuf offload");
2463
2464         /* Set crypto operation data parameters */
2465         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2466
2467         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2468
2469         /* set crypto operation source mbuf */
2470         sym_op->m_src = ut_params->ibuf;
2471
2472         /* iv */
2473         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
2474                         iv, iv_len);
2475         sym_op->cipher.data.length = cipher_len;
2476         sym_op->cipher.data.offset = cipher_offset;
2477         return 0;
2478 }
2479
2480 static int
2481 create_wireless_algo_cipher_operation_oop(const uint8_t *iv, uint8_t iv_len,
2482                         unsigned int cipher_len,
2483                         unsigned int cipher_offset)
2484 {
2485         struct crypto_testsuite_params *ts_params = &testsuite_params;
2486         struct crypto_unittest_params *ut_params = &unittest_params;
2487
2488         /* Generate Crypto op data structure */
2489         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2490                                 RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2491         TEST_ASSERT_NOT_NULL(ut_params->op,
2492                                 "Failed to allocate pktmbuf offload");
2493
2494         /* Set crypto operation data parameters */
2495         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2496
2497         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2498
2499         /* set crypto operation source mbuf */
2500         sym_op->m_src = ut_params->ibuf;
2501         sym_op->m_dst = ut_params->obuf;
2502
2503         /* iv */
2504         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
2505                         iv, iv_len);
2506         sym_op->cipher.data.length = cipher_len;
2507         sym_op->cipher.data.offset = cipher_offset;
2508         return 0;
2509 }
2510
2511 static int
2512 create_wireless_algo_cipher_auth_session(uint8_t dev_id,
2513                 enum rte_crypto_cipher_operation cipher_op,
2514                 enum rte_crypto_auth_operation auth_op,
2515                 enum rte_crypto_auth_algorithm auth_algo,
2516                 enum rte_crypto_cipher_algorithm cipher_algo,
2517                 const uint8_t *key, uint8_t key_len,
2518                 uint8_t auth_iv_len, uint8_t auth_len,
2519                 uint8_t cipher_iv_len)
2520
2521 {
2522         uint8_t cipher_auth_key[key_len];
2523         int status;
2524
2525         struct crypto_testsuite_params *ts_params = &testsuite_params;
2526         struct crypto_unittest_params *ut_params = &unittest_params;
2527
2528         memcpy(cipher_auth_key, key, key_len);
2529
2530         /* Setup Authentication Parameters */
2531         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2532         ut_params->auth_xform.next = NULL;
2533
2534         ut_params->auth_xform.auth.op = auth_op;
2535         ut_params->auth_xform.auth.algo = auth_algo;
2536         ut_params->auth_xform.auth.key.length = key_len;
2537         /* Hash key = cipher key */
2538         ut_params->auth_xform.auth.key.data = cipher_auth_key;
2539         ut_params->auth_xform.auth.digest_length = auth_len;
2540         /* Auth IV will be after cipher IV */
2541         ut_params->auth_xform.auth.iv.offset = IV_OFFSET + cipher_iv_len;
2542         ut_params->auth_xform.auth.iv.length = auth_iv_len;
2543
2544         /* Setup Cipher Parameters */
2545         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2546         ut_params->cipher_xform.next = &ut_params->auth_xform;
2547
2548         ut_params->cipher_xform.cipher.algo = cipher_algo;
2549         ut_params->cipher_xform.cipher.op = cipher_op;
2550         ut_params->cipher_xform.cipher.key.data = cipher_auth_key;
2551         ut_params->cipher_xform.cipher.key.length = key_len;
2552         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2553         ut_params->cipher_xform.cipher.iv.length = cipher_iv_len;
2554
2555         debug_hexdump(stdout, "key:", key, key_len);
2556
2557         /* Create Crypto session*/
2558         ut_params->sess = rte_cryptodev_sym_session_create(
2559                         ts_params->session_mpool);
2560         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2561
2562         status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2563                         &ut_params->cipher_xform,
2564                         ts_params->session_priv_mpool);
2565         if (status == -ENOTSUP)
2566                 return TEST_SKIPPED;
2567
2568         TEST_ASSERT_EQUAL(status, 0, "session init failed");
2569         return 0;
2570 }
2571
2572 static int
2573 create_wireless_cipher_auth_session(uint8_t dev_id,
2574                 enum rte_crypto_cipher_operation cipher_op,
2575                 enum rte_crypto_auth_operation auth_op,
2576                 enum rte_crypto_auth_algorithm auth_algo,
2577                 enum rte_crypto_cipher_algorithm cipher_algo,
2578                 const struct wireless_test_data *tdata)
2579 {
2580         const uint8_t key_len = tdata->key.len;
2581         uint8_t cipher_auth_key[key_len];
2582         int status;
2583
2584         struct crypto_testsuite_params *ts_params = &testsuite_params;
2585         struct crypto_unittest_params *ut_params = &unittest_params;
2586         const uint8_t *key = tdata->key.data;
2587         const uint8_t auth_len = tdata->digest.len;
2588         uint8_t cipher_iv_len = tdata->cipher_iv.len;
2589         uint8_t auth_iv_len = tdata->auth_iv.len;
2590
2591         memcpy(cipher_auth_key, key, key_len);
2592
2593         /* Setup Authentication Parameters */
2594         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2595         ut_params->auth_xform.next = NULL;
2596
2597         ut_params->auth_xform.auth.op = auth_op;
2598         ut_params->auth_xform.auth.algo = auth_algo;
2599         ut_params->auth_xform.auth.key.length = key_len;
2600         /* Hash key = cipher key */
2601         ut_params->auth_xform.auth.key.data = cipher_auth_key;
2602         ut_params->auth_xform.auth.digest_length = auth_len;
2603         /* Auth IV will be after cipher IV */
2604         ut_params->auth_xform.auth.iv.offset = IV_OFFSET + cipher_iv_len;
2605         ut_params->auth_xform.auth.iv.length = auth_iv_len;
2606
2607         /* Setup Cipher Parameters */
2608         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2609         ut_params->cipher_xform.next = &ut_params->auth_xform;
2610
2611         ut_params->cipher_xform.cipher.algo = cipher_algo;
2612         ut_params->cipher_xform.cipher.op = cipher_op;
2613         ut_params->cipher_xform.cipher.key.data = cipher_auth_key;
2614         ut_params->cipher_xform.cipher.key.length = key_len;
2615         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2616         ut_params->cipher_xform.cipher.iv.length = cipher_iv_len;
2617
2618
2619         debug_hexdump(stdout, "key:", key, key_len);
2620
2621         /* Create Crypto session*/
2622         ut_params->sess = rte_cryptodev_sym_session_create(
2623                         ts_params->session_mpool);
2624
2625         status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2626                         &ut_params->cipher_xform,
2627                         ts_params->session_priv_mpool);
2628         if (status == -ENOTSUP)
2629                 return TEST_SKIPPED;
2630
2631         TEST_ASSERT_EQUAL(status, 0, "session init failed");
2632         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2633         return 0;
2634 }
2635
2636 static int
2637 create_zuc_cipher_auth_encrypt_generate_session(uint8_t dev_id,
2638                 const struct wireless_test_data *tdata)
2639 {
2640         return create_wireless_cipher_auth_session(dev_id,
2641                 RTE_CRYPTO_CIPHER_OP_ENCRYPT,
2642                 RTE_CRYPTO_AUTH_OP_GENERATE, RTE_CRYPTO_AUTH_ZUC_EIA3,
2643                 RTE_CRYPTO_CIPHER_ZUC_EEA3, tdata);
2644 }
2645
2646 static int
2647 create_wireless_algo_auth_cipher_session(uint8_t dev_id,
2648                 enum rte_crypto_cipher_operation cipher_op,
2649                 enum rte_crypto_auth_operation auth_op,
2650                 enum rte_crypto_auth_algorithm auth_algo,
2651                 enum rte_crypto_cipher_algorithm cipher_algo,
2652                 const uint8_t *key, const uint8_t key_len,
2653                 uint8_t auth_iv_len, uint8_t auth_len,
2654                 uint8_t cipher_iv_len)
2655 {
2656         uint8_t auth_cipher_key[key_len];
2657         int status;
2658         struct crypto_testsuite_params *ts_params = &testsuite_params;
2659         struct crypto_unittest_params *ut_params = &unittest_params;
2660
2661         memcpy(auth_cipher_key, key, key_len);
2662
2663         /* Setup Authentication Parameters */
2664         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
2665         ut_params->auth_xform.auth.op = auth_op;
2666         ut_params->auth_xform.next = &ut_params->cipher_xform;
2667         ut_params->auth_xform.auth.algo = auth_algo;
2668         ut_params->auth_xform.auth.key.length = key_len;
2669         ut_params->auth_xform.auth.key.data = auth_cipher_key;
2670         ut_params->auth_xform.auth.digest_length = auth_len;
2671         /* Auth IV will be after cipher IV */
2672         ut_params->auth_xform.auth.iv.offset = IV_OFFSET + cipher_iv_len;
2673         ut_params->auth_xform.auth.iv.length = auth_iv_len;
2674
2675         /* Setup Cipher Parameters */
2676         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
2677         ut_params->cipher_xform.next = NULL;
2678         ut_params->cipher_xform.cipher.algo = cipher_algo;
2679         ut_params->cipher_xform.cipher.op = cipher_op;
2680         ut_params->cipher_xform.cipher.key.data = auth_cipher_key;
2681         ut_params->cipher_xform.cipher.key.length = key_len;
2682         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
2683         ut_params->cipher_xform.cipher.iv.length = cipher_iv_len;
2684
2685         debug_hexdump(stdout, "key:", key, key_len);
2686
2687         /* Create Crypto session*/
2688         ut_params->sess = rte_cryptodev_sym_session_create(
2689                         ts_params->session_mpool);
2690         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
2691
2692         if (cipher_op == RTE_CRYPTO_CIPHER_OP_DECRYPT) {
2693                 ut_params->auth_xform.next = NULL;
2694                 ut_params->cipher_xform.next = &ut_params->auth_xform;
2695                 status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2696                                 &ut_params->cipher_xform,
2697                                 ts_params->session_priv_mpool);
2698
2699         } else
2700                 status = rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
2701                                 &ut_params->auth_xform,
2702                                 ts_params->session_priv_mpool);
2703
2704         if (status == -ENOTSUP)
2705                 return TEST_SKIPPED;
2706
2707         TEST_ASSERT_EQUAL(status, 0, "session init failed");
2708
2709         return 0;
2710 }
2711
2712 static int
2713 create_wireless_algo_hash_operation(const uint8_t *auth_tag,
2714                 unsigned int auth_tag_len,
2715                 const uint8_t *iv, unsigned int iv_len,
2716                 unsigned int data_pad_len,
2717                 enum rte_crypto_auth_operation op,
2718                 unsigned int auth_len, unsigned int auth_offset)
2719 {
2720         struct crypto_testsuite_params *ts_params = &testsuite_params;
2721
2722         struct crypto_unittest_params *ut_params = &unittest_params;
2723
2724         /* Generate Crypto op data structure */
2725         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2726                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2727         TEST_ASSERT_NOT_NULL(ut_params->op,
2728                 "Failed to allocate pktmbuf offload");
2729
2730         /* Set crypto operation data parameters */
2731         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2732
2733         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2734
2735         /* set crypto operation source mbuf */
2736         sym_op->m_src = ut_params->ibuf;
2737
2738         /* iv */
2739         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
2740                         iv, iv_len);
2741         /* digest */
2742         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
2743                                         ut_params->ibuf, auth_tag_len);
2744
2745         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
2746                                 "no room to append auth tag");
2747         ut_params->digest = sym_op->auth.digest.data;
2748         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2749                         ut_params->ibuf, data_pad_len);
2750         if (op == RTE_CRYPTO_AUTH_OP_GENERATE)
2751                 memset(sym_op->auth.digest.data, 0, auth_tag_len);
2752         else
2753                 rte_memcpy(sym_op->auth.digest.data, auth_tag, auth_tag_len);
2754
2755         debug_hexdump(stdout, "digest:",
2756                 sym_op->auth.digest.data,
2757                 auth_tag_len);
2758
2759         sym_op->auth.data.length = auth_len;
2760         sym_op->auth.data.offset = auth_offset;
2761
2762         return 0;
2763 }
2764
2765 static int
2766 create_wireless_cipher_hash_operation(const struct wireless_test_data *tdata,
2767         enum rte_crypto_auth_operation op)
2768 {
2769         struct crypto_testsuite_params *ts_params = &testsuite_params;
2770         struct crypto_unittest_params *ut_params = &unittest_params;
2771
2772         const uint8_t *auth_tag = tdata->digest.data;
2773         const unsigned int auth_tag_len = tdata->digest.len;
2774         unsigned int plaintext_len = ceil_byte_length(tdata->plaintext.len);
2775         unsigned int data_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
2776
2777         const uint8_t *cipher_iv = tdata->cipher_iv.data;
2778         const uint8_t cipher_iv_len = tdata->cipher_iv.len;
2779         const uint8_t *auth_iv = tdata->auth_iv.data;
2780         const uint8_t auth_iv_len = tdata->auth_iv.len;
2781         const unsigned int cipher_len = tdata->validCipherLenInBits.len;
2782         const unsigned int auth_len = tdata->validAuthLenInBits.len;
2783
2784         /* Generate Crypto op data structure */
2785         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2786                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2787         TEST_ASSERT_NOT_NULL(ut_params->op,
2788                         "Failed to allocate pktmbuf offload");
2789         /* Set crypto operation data parameters */
2790         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2791
2792         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2793
2794         /* set crypto operation source mbuf */
2795         sym_op->m_src = ut_params->ibuf;
2796
2797         /* digest */
2798         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
2799                         ut_params->ibuf, auth_tag_len);
2800
2801         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
2802                         "no room to append auth tag");
2803         ut_params->digest = sym_op->auth.digest.data;
2804         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2805                         ut_params->ibuf, data_pad_len);
2806         if (op == RTE_CRYPTO_AUTH_OP_GENERATE)
2807                 memset(sym_op->auth.digest.data, 0, auth_tag_len);
2808         else
2809                 rte_memcpy(sym_op->auth.digest.data, auth_tag, auth_tag_len);
2810
2811         debug_hexdump(stdout, "digest:",
2812                 sym_op->auth.digest.data,
2813                 auth_tag_len);
2814
2815         /* Copy cipher and auth IVs at the end of the crypto operation */
2816         uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op, uint8_t *,
2817                                                 IV_OFFSET);
2818         rte_memcpy(iv_ptr, cipher_iv, cipher_iv_len);
2819         iv_ptr += cipher_iv_len;
2820         rte_memcpy(iv_ptr, auth_iv, auth_iv_len);
2821
2822         sym_op->cipher.data.length = cipher_len;
2823         sym_op->cipher.data.offset = 0;
2824         sym_op->auth.data.length = auth_len;
2825         sym_op->auth.data.offset = 0;
2826
2827         return 0;
2828 }
2829
2830 static int
2831 create_zuc_cipher_hash_generate_operation(
2832                 const struct wireless_test_data *tdata)
2833 {
2834         return create_wireless_cipher_hash_operation(tdata,
2835                 RTE_CRYPTO_AUTH_OP_GENERATE);
2836 }
2837
2838 static int
2839 create_wireless_algo_cipher_hash_operation(const uint8_t *auth_tag,
2840                 const unsigned auth_tag_len,
2841                 const uint8_t *auth_iv, uint8_t auth_iv_len,
2842                 unsigned data_pad_len,
2843                 enum rte_crypto_auth_operation op,
2844                 const uint8_t *cipher_iv, uint8_t cipher_iv_len,
2845                 const unsigned cipher_len, const unsigned cipher_offset,
2846                 const unsigned auth_len, const unsigned auth_offset)
2847 {
2848         struct crypto_testsuite_params *ts_params = &testsuite_params;
2849         struct crypto_unittest_params *ut_params = &unittest_params;
2850
2851         enum rte_crypto_cipher_algorithm cipher_algo =
2852                         ut_params->cipher_xform.cipher.algo;
2853         enum rte_crypto_auth_algorithm auth_algo =
2854                         ut_params->auth_xform.auth.algo;
2855
2856         /* Generate Crypto op data structure */
2857         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2858                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2859         TEST_ASSERT_NOT_NULL(ut_params->op,
2860                         "Failed to allocate pktmbuf offload");
2861         /* Set crypto operation data parameters */
2862         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2863
2864         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2865
2866         /* set crypto operation source mbuf */
2867         sym_op->m_src = ut_params->ibuf;
2868
2869         /* digest */
2870         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
2871                         ut_params->ibuf, auth_tag_len);
2872
2873         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
2874                         "no room to append auth tag");
2875         ut_params->digest = sym_op->auth.digest.data;
2876
2877         if (rte_pktmbuf_is_contiguous(ut_params->ibuf)) {
2878                 sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2879                                 ut_params->ibuf, data_pad_len);
2880         } else {
2881                 struct rte_mbuf *m = ut_params->ibuf;
2882                 unsigned int offset = data_pad_len;
2883
2884                 while (offset > m->data_len && m->next != NULL) {
2885                         offset -= m->data_len;
2886                         m = m->next;
2887                 }
2888                 sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2889                         m, offset);
2890         }
2891
2892         if (op == RTE_CRYPTO_AUTH_OP_GENERATE)
2893                 memset(sym_op->auth.digest.data, 0, auth_tag_len);
2894         else
2895                 rte_memcpy(sym_op->auth.digest.data, auth_tag, auth_tag_len);
2896
2897         debug_hexdump(stdout, "digest:",
2898                 sym_op->auth.digest.data,
2899                 auth_tag_len);
2900
2901         /* Copy cipher and auth IVs at the end of the crypto operation */
2902         uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op, uint8_t *,
2903                                                 IV_OFFSET);
2904         rte_memcpy(iv_ptr, cipher_iv, cipher_iv_len);
2905         iv_ptr += cipher_iv_len;
2906         rte_memcpy(iv_ptr, auth_iv, auth_iv_len);
2907
2908         if (cipher_algo == RTE_CRYPTO_CIPHER_SNOW3G_UEA2 ||
2909                 cipher_algo == RTE_CRYPTO_CIPHER_KASUMI_F8 ||
2910                 cipher_algo == RTE_CRYPTO_CIPHER_ZUC_EEA3) {
2911                 sym_op->cipher.data.length = cipher_len;
2912                 sym_op->cipher.data.offset = cipher_offset;
2913         } else {
2914                 sym_op->cipher.data.length = cipher_len >> 3;
2915                 sym_op->cipher.data.offset = cipher_offset >> 3;
2916         }
2917
2918         if (auth_algo == RTE_CRYPTO_AUTH_SNOW3G_UIA2 ||
2919                 auth_algo == RTE_CRYPTO_AUTH_KASUMI_F9 ||
2920                 auth_algo == RTE_CRYPTO_AUTH_ZUC_EIA3) {
2921                 sym_op->auth.data.length = auth_len;
2922                 sym_op->auth.data.offset = auth_offset;
2923         } else {
2924                 sym_op->auth.data.length = auth_len >> 3;
2925                 sym_op->auth.data.offset = auth_offset >> 3;
2926         }
2927
2928         return 0;
2929 }
2930
2931 static int
2932 create_wireless_algo_auth_cipher_operation(
2933                 const uint8_t *auth_tag, unsigned int auth_tag_len,
2934                 const uint8_t *cipher_iv, uint8_t cipher_iv_len,
2935                 const uint8_t *auth_iv, uint8_t auth_iv_len,
2936                 unsigned int data_pad_len,
2937                 unsigned int cipher_len, unsigned int cipher_offset,
2938                 unsigned int auth_len, unsigned int auth_offset,
2939                 uint8_t op_mode, uint8_t do_sgl, uint8_t verify)
2940 {
2941         struct crypto_testsuite_params *ts_params = &testsuite_params;
2942         struct crypto_unittest_params *ut_params = &unittest_params;
2943
2944         enum rte_crypto_cipher_algorithm cipher_algo =
2945                         ut_params->cipher_xform.cipher.algo;
2946         enum rte_crypto_auth_algorithm auth_algo =
2947                         ut_params->auth_xform.auth.algo;
2948
2949         /* Generate Crypto op data structure */
2950         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
2951                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
2952         TEST_ASSERT_NOT_NULL(ut_params->op,
2953                         "Failed to allocate pktmbuf offload");
2954
2955         /* Set crypto operation data parameters */
2956         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
2957
2958         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
2959
2960         /* set crypto operation mbufs */
2961         sym_op->m_src = ut_params->ibuf;
2962         if (op_mode == OUT_OF_PLACE)
2963                 sym_op->m_dst = ut_params->obuf;
2964
2965         /* digest */
2966         if (!do_sgl) {
2967                 sym_op->auth.digest.data = rte_pktmbuf_mtod_offset(
2968                         (op_mode == IN_PLACE ?
2969                                 ut_params->ibuf : ut_params->obuf),
2970                         uint8_t *, data_pad_len);
2971                 sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
2972                         (op_mode == IN_PLACE ?
2973                                 ut_params->ibuf : ut_params->obuf),
2974                         data_pad_len);
2975                 memset(sym_op->auth.digest.data, 0, auth_tag_len);
2976         } else {
2977                 uint16_t remaining_off = (auth_offset >> 3) + (auth_len >> 3);
2978                 struct rte_mbuf *sgl_buf = (op_mode == IN_PLACE ?
2979                                 sym_op->m_src : sym_op->m_dst);
2980                 while (remaining_off >= rte_pktmbuf_data_len(sgl_buf)) {
2981                         remaining_off -= rte_pktmbuf_data_len(sgl_buf);
2982                         sgl_buf = sgl_buf->next;
2983                 }
2984                 sym_op->auth.digest.data = rte_pktmbuf_mtod_offset(sgl_buf,
2985                                 uint8_t *, remaining_off);
2986                 sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(sgl_buf,
2987                                 remaining_off);
2988                 memset(sym_op->auth.digest.data, 0, remaining_off);
2989                 while (sgl_buf->next != NULL) {
2990                         memset(rte_pktmbuf_mtod(sgl_buf, uint8_t *),
2991                                 0, rte_pktmbuf_data_len(sgl_buf));
2992                         sgl_buf = sgl_buf->next;
2993                 }
2994         }
2995
2996         /* Copy digest for the verification */
2997         if (verify)
2998                 memcpy(sym_op->auth.digest.data, auth_tag, auth_tag_len);
2999
3000         /* Copy cipher and auth IVs at the end of the crypto operation */
3001         uint8_t *iv_ptr = rte_crypto_op_ctod_offset(
3002                         ut_params->op, uint8_t *, IV_OFFSET);
3003
3004         rte_memcpy(iv_ptr, cipher_iv, cipher_iv_len);
3005         iv_ptr += cipher_iv_len;
3006         rte_memcpy(iv_ptr, auth_iv, auth_iv_len);
3007
3008         /* Only copy over the offset data needed from src to dst in OOP,
3009          * if the auth and cipher offsets are not aligned
3010          */
3011         if (op_mode == OUT_OF_PLACE) {
3012                 if (cipher_offset > auth_offset)
3013                         rte_memcpy(
3014                                 rte_pktmbuf_mtod_offset(
3015                                         sym_op->m_dst,
3016                                         uint8_t *, auth_offset >> 3),
3017                                 rte_pktmbuf_mtod_offset(
3018                                         sym_op->m_src,
3019                                         uint8_t *, auth_offset >> 3),
3020                                 ((cipher_offset >> 3) - (auth_offset >> 3)));
3021         }
3022
3023         if (cipher_algo == RTE_CRYPTO_CIPHER_SNOW3G_UEA2 ||
3024                 cipher_algo == RTE_CRYPTO_CIPHER_KASUMI_F8 ||
3025                 cipher_algo == RTE_CRYPTO_CIPHER_ZUC_EEA3) {
3026                 sym_op->cipher.data.length = cipher_len;
3027                 sym_op->cipher.data.offset = cipher_offset;
3028         } else {
3029                 sym_op->cipher.data.length = cipher_len >> 3;
3030                 sym_op->cipher.data.offset = cipher_offset >> 3;
3031         }
3032
3033         if (auth_algo == RTE_CRYPTO_AUTH_SNOW3G_UIA2 ||
3034                 auth_algo == RTE_CRYPTO_AUTH_KASUMI_F9 ||
3035                 auth_algo == RTE_CRYPTO_AUTH_ZUC_EIA3) {
3036                 sym_op->auth.data.length = auth_len;
3037                 sym_op->auth.data.offset = auth_offset;
3038         } else {
3039                 sym_op->auth.data.length = auth_len >> 3;
3040                 sym_op->auth.data.offset = auth_offset >> 3;
3041         }
3042
3043         return 0;
3044 }
3045
3046 static int
3047 test_snow3g_authentication(const struct snow3g_hash_test_data *tdata)
3048 {
3049         struct crypto_testsuite_params *ts_params = &testsuite_params;
3050         struct crypto_unittest_params *ut_params = &unittest_params;
3051
3052         int retval;
3053         unsigned plaintext_pad_len;
3054         unsigned plaintext_len;
3055         uint8_t *plaintext;
3056         struct rte_cryptodev_info dev_info;
3057
3058         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3059         uint64_t feat_flags = dev_info.feature_flags;
3060
3061         if (!(feat_flags & RTE_CRYPTODEV_FF_NON_BYTE_ALIGNED_DATA) &&
3062                         ((tdata->validAuthLenInBits.len % 8) != 0)) {
3063                 printf("Device doesn't support NON-Byte Aligned Data.\n");
3064                 return TEST_SKIPPED;
3065         }
3066
3067         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3068                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3069                 printf("Device doesn't support RAW data-path APIs.\n");
3070                 return TEST_SKIPPED;
3071         }
3072
3073         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3074                 return TEST_SKIPPED;
3075
3076         /* Verify the capabilities */
3077         struct rte_cryptodev_sym_capability_idx cap_idx;
3078         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
3079         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SNOW3G_UIA2;
3080         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3081                         &cap_idx) == NULL)
3082                 return TEST_SKIPPED;
3083
3084         /* Create SNOW 3G session */
3085         retval = create_wireless_algo_hash_session(ts_params->valid_devs[0],
3086                         tdata->key.data, tdata->key.len,
3087                         tdata->auth_iv.len, tdata->digest.len,
3088                         RTE_CRYPTO_AUTH_OP_GENERATE,
3089                         RTE_CRYPTO_AUTH_SNOW3G_UIA2);
3090         if (retval < 0)
3091                 return retval;
3092
3093         /* alloc mbuf and set payload */
3094         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3095
3096         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3097         rte_pktmbuf_tailroom(ut_params->ibuf));
3098
3099         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3100         /* Append data which is padded to a multiple of */
3101         /* the algorithms block size */
3102         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
3103         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3104                                 plaintext_pad_len);
3105         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3106
3107         /* Create SNOW 3G operation */
3108         retval = create_wireless_algo_hash_operation(NULL, tdata->digest.len,
3109                         tdata->auth_iv.data, tdata->auth_iv.len,
3110                         plaintext_pad_len, RTE_CRYPTO_AUTH_OP_GENERATE,
3111                         tdata->validAuthLenInBits.len,
3112                         0);
3113         if (retval < 0)
3114                 return retval;
3115
3116         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3117                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3118                                 ut_params->op, 0, 1, 1, 0);
3119         else
3120                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3121                                 ut_params->op);
3122         ut_params->obuf = ut_params->op->sym->m_src;
3123         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3124         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
3125                         + plaintext_pad_len;
3126
3127         /* Validate obuf */
3128         TEST_ASSERT_BUFFERS_ARE_EQUAL(
3129         ut_params->digest,
3130         tdata->digest.data,
3131         DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
3132         "SNOW 3G Generated auth tag not as expected");
3133
3134         return 0;
3135 }
3136
3137 static int
3138 test_snow3g_authentication_verify(const struct snow3g_hash_test_data *tdata)
3139 {
3140         struct crypto_testsuite_params *ts_params = &testsuite_params;
3141         struct crypto_unittest_params *ut_params = &unittest_params;
3142
3143         int retval;
3144         unsigned plaintext_pad_len;
3145         unsigned plaintext_len;
3146         uint8_t *plaintext;
3147         struct rte_cryptodev_info dev_info;
3148
3149         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3150         uint64_t feat_flags = dev_info.feature_flags;
3151
3152         if (!(feat_flags & RTE_CRYPTODEV_FF_NON_BYTE_ALIGNED_DATA) &&
3153                         ((tdata->validAuthLenInBits.len % 8) != 0)) {
3154                 printf("Device doesn't support NON-Byte Aligned Data.\n");
3155                 return TEST_SKIPPED;
3156         }
3157
3158         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3159                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3160                 printf("Device doesn't support RAW data-path APIs.\n");
3161                 return TEST_SKIPPED;
3162         }
3163
3164         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3165                 return TEST_SKIPPED;
3166
3167         /* Verify the capabilities */
3168         struct rte_cryptodev_sym_capability_idx cap_idx;
3169         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
3170         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SNOW3G_UIA2;
3171         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3172                         &cap_idx) == NULL)
3173                 return TEST_SKIPPED;
3174
3175         /* Create SNOW 3G session */
3176         retval = create_wireless_algo_hash_session(ts_params->valid_devs[0],
3177                                 tdata->key.data, tdata->key.len,
3178                                 tdata->auth_iv.len, tdata->digest.len,
3179                                 RTE_CRYPTO_AUTH_OP_VERIFY,
3180                                 RTE_CRYPTO_AUTH_SNOW3G_UIA2);
3181         if (retval < 0)
3182                 return retval;
3183         /* alloc mbuf and set payload */
3184         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3185
3186         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3187         rte_pktmbuf_tailroom(ut_params->ibuf));
3188
3189         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3190         /* Append data which is padded to a multiple of */
3191         /* the algorithms block size */
3192         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
3193         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3194                                 plaintext_pad_len);
3195         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3196
3197         /* Create SNOW 3G operation */
3198         retval = create_wireless_algo_hash_operation(tdata->digest.data,
3199                         tdata->digest.len,
3200                         tdata->auth_iv.data, tdata->auth_iv.len,
3201                         plaintext_pad_len,
3202                         RTE_CRYPTO_AUTH_OP_VERIFY,
3203                         tdata->validAuthLenInBits.len,
3204                         0);
3205         if (retval < 0)
3206                 return retval;
3207
3208         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3209                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3210                                 ut_params->op, 0, 1, 1, 0);
3211         else
3212                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3213                                 ut_params->op);
3214         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3215         ut_params->obuf = ut_params->op->sym->m_src;
3216         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
3217                                 + plaintext_pad_len;
3218
3219         /* Validate obuf */
3220         if (ut_params->op->status == RTE_CRYPTO_OP_STATUS_SUCCESS)
3221                 return 0;
3222         else
3223                 return -1;
3224
3225         return 0;
3226 }
3227
3228 static int
3229 test_kasumi_authentication(const struct kasumi_hash_test_data *tdata)
3230 {
3231         struct crypto_testsuite_params *ts_params = &testsuite_params;
3232         struct crypto_unittest_params *ut_params = &unittest_params;
3233
3234         int retval;
3235         unsigned plaintext_pad_len;
3236         unsigned plaintext_len;
3237         uint8_t *plaintext;
3238         struct rte_cryptodev_info dev_info;
3239
3240         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3241         uint64_t feat_flags = dev_info.feature_flags;
3242
3243         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3244                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3245                 printf("Device doesn't support RAW data-path APIs.\n");
3246                 return TEST_SKIPPED;
3247         }
3248
3249         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3250                 return TEST_SKIPPED;
3251
3252         /* Verify the capabilities */
3253         struct rte_cryptodev_sym_capability_idx cap_idx;
3254         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
3255         cap_idx.algo.auth = RTE_CRYPTO_AUTH_KASUMI_F9;
3256         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3257                         &cap_idx) == NULL)
3258                 return TEST_SKIPPED;
3259
3260         /* Create KASUMI session */
3261         retval = create_wireless_algo_hash_session(ts_params->valid_devs[0],
3262                         tdata->key.data, tdata->key.len,
3263                         0, tdata->digest.len,
3264                         RTE_CRYPTO_AUTH_OP_GENERATE,
3265                         RTE_CRYPTO_AUTH_KASUMI_F9);
3266         if (retval < 0)
3267                 return retval;
3268
3269         /* alloc mbuf and set payload */
3270         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3271
3272         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3273         rte_pktmbuf_tailroom(ut_params->ibuf));
3274
3275         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3276         /* Append data which is padded to a multiple of */
3277         /* the algorithms block size */
3278         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3279         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3280                                 plaintext_pad_len);
3281         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3282
3283         /* Create KASUMI operation */
3284         retval = create_wireless_algo_hash_operation(NULL, tdata->digest.len,
3285                         NULL, 0,
3286                         plaintext_pad_len, RTE_CRYPTO_AUTH_OP_GENERATE,
3287                         tdata->plaintext.len,
3288                         0);
3289         if (retval < 0)
3290                 return retval;
3291
3292         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3293                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
3294                         ut_params->op);
3295         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3296                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3297                                 ut_params->op, 0, 1, 1, 0);
3298         else
3299                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3300                         ut_params->op);
3301
3302         ut_params->obuf = ut_params->op->sym->m_src;
3303         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3304         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
3305                         + plaintext_pad_len;
3306
3307         /* Validate obuf */
3308         TEST_ASSERT_BUFFERS_ARE_EQUAL(
3309         ut_params->digest,
3310         tdata->digest.data,
3311         DIGEST_BYTE_LENGTH_KASUMI_F9,
3312         "KASUMI Generated auth tag not as expected");
3313
3314         return 0;
3315 }
3316
3317 static int
3318 test_kasumi_authentication_verify(const struct kasumi_hash_test_data *tdata)
3319 {
3320         struct crypto_testsuite_params *ts_params = &testsuite_params;
3321         struct crypto_unittest_params *ut_params = &unittest_params;
3322
3323         int retval;
3324         unsigned plaintext_pad_len;
3325         unsigned plaintext_len;
3326         uint8_t *plaintext;
3327         struct rte_cryptodev_info dev_info;
3328
3329         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3330         uint64_t feat_flags = dev_info.feature_flags;
3331
3332         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3333                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3334                 printf("Device doesn't support RAW data-path APIs.\n");
3335                 return TEST_SKIPPED;
3336         }
3337
3338         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3339                 return TEST_SKIPPED;
3340
3341         /* Verify the capabilities */
3342         struct rte_cryptodev_sym_capability_idx cap_idx;
3343         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
3344         cap_idx.algo.auth = RTE_CRYPTO_AUTH_KASUMI_F9;
3345         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3346                         &cap_idx) == NULL)
3347                 return TEST_SKIPPED;
3348
3349         /* Create KASUMI session */
3350         retval = create_wireless_algo_hash_session(ts_params->valid_devs[0],
3351                                 tdata->key.data, tdata->key.len,
3352                                 0, tdata->digest.len,
3353                                 RTE_CRYPTO_AUTH_OP_VERIFY,
3354                                 RTE_CRYPTO_AUTH_KASUMI_F9);
3355         if (retval < 0)
3356                 return retval;
3357         /* alloc mbuf and set payload */
3358         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3359
3360         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3361         rte_pktmbuf_tailroom(ut_params->ibuf));
3362
3363         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3364         /* Append data which is padded to a multiple */
3365         /* of the algorithms block size */
3366         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3367         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3368                                 plaintext_pad_len);
3369         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3370
3371         /* Create KASUMI operation */
3372         retval = create_wireless_algo_hash_operation(tdata->digest.data,
3373                         tdata->digest.len,
3374                         NULL, 0,
3375                         plaintext_pad_len,
3376                         RTE_CRYPTO_AUTH_OP_VERIFY,
3377                         tdata->plaintext.len,
3378                         0);
3379         if (retval < 0)
3380                 return retval;
3381
3382         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3383                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3384                                 ut_params->op, 0, 1, 1, 0);
3385         else
3386                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3387                                 ut_params->op);
3388         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3389         ut_params->obuf = ut_params->op->sym->m_src;
3390         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
3391                                 + plaintext_pad_len;
3392
3393         /* Validate obuf */
3394         if (ut_params->op->status == RTE_CRYPTO_OP_STATUS_SUCCESS)
3395                 return 0;
3396         else
3397                 return -1;
3398
3399         return 0;
3400 }
3401
3402 static int
3403 test_snow3g_hash_generate_test_case_1(void)
3404 {
3405         return test_snow3g_authentication(&snow3g_hash_test_case_1);
3406 }
3407
3408 static int
3409 test_snow3g_hash_generate_test_case_2(void)
3410 {
3411         return test_snow3g_authentication(&snow3g_hash_test_case_2);
3412 }
3413
3414 static int
3415 test_snow3g_hash_generate_test_case_3(void)
3416 {
3417         return test_snow3g_authentication(&snow3g_hash_test_case_3);
3418 }
3419
3420 static int
3421 test_snow3g_hash_generate_test_case_4(void)
3422 {
3423         return test_snow3g_authentication(&snow3g_hash_test_case_4);
3424 }
3425
3426 static int
3427 test_snow3g_hash_generate_test_case_5(void)
3428 {
3429         return test_snow3g_authentication(&snow3g_hash_test_case_5);
3430 }
3431
3432 static int
3433 test_snow3g_hash_generate_test_case_6(void)
3434 {
3435         return test_snow3g_authentication(&snow3g_hash_test_case_6);
3436 }
3437
3438 static int
3439 test_snow3g_hash_verify_test_case_1(void)
3440 {
3441         return test_snow3g_authentication_verify(&snow3g_hash_test_case_1);
3442
3443 }
3444
3445 static int
3446 test_snow3g_hash_verify_test_case_2(void)
3447 {
3448         return test_snow3g_authentication_verify(&snow3g_hash_test_case_2);
3449 }
3450
3451 static int
3452 test_snow3g_hash_verify_test_case_3(void)
3453 {
3454         return test_snow3g_authentication_verify(&snow3g_hash_test_case_3);
3455 }
3456
3457 static int
3458 test_snow3g_hash_verify_test_case_4(void)
3459 {
3460         return test_snow3g_authentication_verify(&snow3g_hash_test_case_4);
3461 }
3462
3463 static int
3464 test_snow3g_hash_verify_test_case_5(void)
3465 {
3466         return test_snow3g_authentication_verify(&snow3g_hash_test_case_5);
3467 }
3468
3469 static int
3470 test_snow3g_hash_verify_test_case_6(void)
3471 {
3472         return test_snow3g_authentication_verify(&snow3g_hash_test_case_6);
3473 }
3474
3475 static int
3476 test_kasumi_hash_generate_test_case_1(void)
3477 {
3478         return test_kasumi_authentication(&kasumi_hash_test_case_1);
3479 }
3480
3481 static int
3482 test_kasumi_hash_generate_test_case_2(void)
3483 {
3484         return test_kasumi_authentication(&kasumi_hash_test_case_2);
3485 }
3486
3487 static int
3488 test_kasumi_hash_generate_test_case_3(void)
3489 {
3490         return test_kasumi_authentication(&kasumi_hash_test_case_3);
3491 }
3492
3493 static int
3494 test_kasumi_hash_generate_test_case_4(void)
3495 {
3496         return test_kasumi_authentication(&kasumi_hash_test_case_4);
3497 }
3498
3499 static int
3500 test_kasumi_hash_generate_test_case_5(void)
3501 {
3502         return test_kasumi_authentication(&kasumi_hash_test_case_5);
3503 }
3504
3505 static int
3506 test_kasumi_hash_generate_test_case_6(void)
3507 {
3508         return test_kasumi_authentication(&kasumi_hash_test_case_6);
3509 }
3510
3511 static int
3512 test_kasumi_hash_verify_test_case_1(void)
3513 {
3514         return test_kasumi_authentication_verify(&kasumi_hash_test_case_1);
3515 }
3516
3517 static int
3518 test_kasumi_hash_verify_test_case_2(void)
3519 {
3520         return test_kasumi_authentication_verify(&kasumi_hash_test_case_2);
3521 }
3522
3523 static int
3524 test_kasumi_hash_verify_test_case_3(void)
3525 {
3526         return test_kasumi_authentication_verify(&kasumi_hash_test_case_3);
3527 }
3528
3529 static int
3530 test_kasumi_hash_verify_test_case_4(void)
3531 {
3532         return test_kasumi_authentication_verify(&kasumi_hash_test_case_4);
3533 }
3534
3535 static int
3536 test_kasumi_hash_verify_test_case_5(void)
3537 {
3538         return test_kasumi_authentication_verify(&kasumi_hash_test_case_5);
3539 }
3540
3541 static int
3542 test_kasumi_encryption(const struct kasumi_test_data *tdata)
3543 {
3544         struct crypto_testsuite_params *ts_params = &testsuite_params;
3545         struct crypto_unittest_params *ut_params = &unittest_params;
3546
3547         int retval;
3548         uint8_t *plaintext, *ciphertext;
3549         unsigned plaintext_pad_len;
3550         unsigned plaintext_len;
3551         struct rte_cryptodev_info dev_info;
3552
3553         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3554         uint64_t feat_flags = dev_info.feature_flags;
3555
3556         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3557                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3558                 printf("Device doesn't support RAW data-path APIs.\n");
3559                 return TEST_SKIPPED;
3560         }
3561
3562         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3563                 return TEST_SKIPPED;
3564
3565         /* Verify the capabilities */
3566         struct rte_cryptodev_sym_capability_idx cap_idx;
3567         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
3568         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
3569         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3570                         &cap_idx) == NULL)
3571                 return TEST_SKIPPED;
3572
3573         /* Create KASUMI session */
3574         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
3575                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
3576                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
3577                                         tdata->key.data, tdata->key.len,
3578                                         tdata->cipher_iv.len);
3579         if (retval < 0)
3580                 return retval;
3581
3582         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3583
3584         /* Clear mbuf payload */
3585         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3586                rte_pktmbuf_tailroom(ut_params->ibuf));
3587
3588         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3589         /* Append data which is padded to a multiple */
3590         /* of the algorithms block size */
3591         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3592         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3593                                 plaintext_pad_len);
3594         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3595
3596         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
3597
3598         /* Create KASUMI operation */
3599         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
3600                                 tdata->cipher_iv.len,
3601                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
3602                                 tdata->validCipherOffsetInBits.len);
3603         if (retval < 0)
3604                 return retval;
3605
3606         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3607                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3608                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
3609         else
3610                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3611                                 ut_params->op);
3612         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3613
3614         ut_params->obuf = ut_params->op->sym->m_dst;
3615         if (ut_params->obuf)
3616                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
3617         else
3618                 ciphertext = plaintext + (tdata->validCipherOffsetInBits.len >> 3);
3619
3620         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
3621
3622         const uint8_t *reference_ciphertext = tdata->ciphertext.data +
3623                                 (tdata->validCipherOffsetInBits.len >> 3);
3624         /* Validate obuf */
3625         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
3626                 ciphertext,
3627                 reference_ciphertext,
3628                 tdata->validCipherLenInBits.len,
3629                 "KASUMI Ciphertext data not as expected");
3630         return 0;
3631 }
3632
3633 static int
3634 test_kasumi_encryption_sgl(const struct kasumi_test_data *tdata)
3635 {
3636         struct crypto_testsuite_params *ts_params = &testsuite_params;
3637         struct crypto_unittest_params *ut_params = &unittest_params;
3638
3639         int retval;
3640
3641         unsigned int plaintext_pad_len;
3642         unsigned int plaintext_len;
3643
3644         uint8_t buffer[10000];
3645         const uint8_t *ciphertext;
3646
3647         struct rte_cryptodev_info dev_info;
3648
3649         /* Verify the capabilities */
3650         struct rte_cryptodev_sym_capability_idx cap_idx;
3651         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
3652         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
3653         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3654                         &cap_idx) == NULL)
3655                 return TEST_SKIPPED;
3656
3657         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3658
3659         uint64_t feat_flags = dev_info.feature_flags;
3660
3661         if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
3662                 printf("Device doesn't support in-place scatter-gather. "
3663                                 "Test Skipped.\n");
3664                 return TEST_SKIPPED;
3665         }
3666
3667         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
3668                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
3669                 printf("Device doesn't support RAW data-path APIs.\n");
3670                 return TEST_SKIPPED;
3671         }
3672
3673         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3674                 return TEST_SKIPPED;
3675
3676         /* Create KASUMI session */
3677         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
3678                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
3679                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
3680                                         tdata->key.data, tdata->key.len,
3681                                         tdata->cipher_iv.len);
3682         if (retval < 0)
3683                 return retval;
3684
3685         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3686
3687
3688         /* Append data which is padded to a multiple */
3689         /* of the algorithms block size */
3690         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3691
3692         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
3693                         plaintext_pad_len, 10, 0);
3694
3695         pktmbuf_write(ut_params->ibuf, 0, plaintext_len, tdata->plaintext.data);
3696
3697         /* Create KASUMI operation */
3698         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
3699                                 tdata->cipher_iv.len,
3700                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
3701                                 tdata->validCipherOffsetInBits.len);
3702         if (retval < 0)
3703                 return retval;
3704
3705         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3706                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
3707                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
3708         else
3709                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3710                                                 ut_params->op);
3711         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3712
3713         ut_params->obuf = ut_params->op->sym->m_dst;
3714
3715         if (ut_params->obuf)
3716                 ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
3717                                 plaintext_len, buffer);
3718         else
3719                 ciphertext = rte_pktmbuf_read(ut_params->ibuf,
3720                                 tdata->validCipherOffsetInBits.len >> 3,
3721                                 plaintext_len, buffer);
3722
3723         /* Validate obuf */
3724         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
3725
3726         const uint8_t *reference_ciphertext = tdata->ciphertext.data +
3727                                 (tdata->validCipherOffsetInBits.len >> 3);
3728         /* Validate obuf */
3729         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
3730                 ciphertext,
3731                 reference_ciphertext,
3732                 tdata->validCipherLenInBits.len,
3733                 "KASUMI Ciphertext data not as expected");
3734         return 0;
3735 }
3736
3737 static int
3738 test_kasumi_encryption_oop(const struct kasumi_test_data *tdata)
3739 {
3740         struct crypto_testsuite_params *ts_params = &testsuite_params;
3741         struct crypto_unittest_params *ut_params = &unittest_params;
3742
3743         int retval;
3744         uint8_t *plaintext, *ciphertext;
3745         unsigned plaintext_pad_len;
3746         unsigned plaintext_len;
3747
3748         /* Verify the capabilities */
3749         struct rte_cryptodev_sym_capability_idx cap_idx;
3750         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
3751         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
3752         /* Data-path service does not support OOP */
3753         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3754                         &cap_idx) == NULL)
3755                 return TEST_SKIPPED;
3756
3757         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3758                 return TEST_SKIPPED;
3759
3760         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3761                 return TEST_SKIPPED;
3762
3763         /* Create KASUMI session */
3764         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
3765                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
3766                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
3767                                         tdata->key.data, tdata->key.len,
3768                                         tdata->cipher_iv.len);
3769         if (retval < 0)
3770                 return retval;
3771
3772         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3773         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3774
3775         /* Clear mbuf payload */
3776         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3777                rte_pktmbuf_tailroom(ut_params->ibuf));
3778
3779         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3780         /* Append data which is padded to a multiple */
3781         /* of the algorithms block size */
3782         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3783         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3784                                 plaintext_pad_len);
3785         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
3786         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
3787
3788         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
3789
3790         /* Create KASUMI operation */
3791         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
3792                                 tdata->cipher_iv.len,
3793                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
3794                                 tdata->validCipherOffsetInBits.len);
3795         if (retval < 0)
3796                 return retval;
3797
3798         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3799                                                 ut_params->op);
3800         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3801
3802         ut_params->obuf = ut_params->op->sym->m_dst;
3803         if (ut_params->obuf)
3804                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
3805         else
3806                 ciphertext = plaintext + (tdata->validCipherOffsetInBits.len >> 3);
3807
3808         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
3809
3810         const uint8_t *reference_ciphertext = tdata->ciphertext.data +
3811                                 (tdata->validCipherOffsetInBits.len >> 3);
3812         /* Validate obuf */
3813         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
3814                 ciphertext,
3815                 reference_ciphertext,
3816                 tdata->validCipherLenInBits.len,
3817                 "KASUMI Ciphertext data not as expected");
3818         return 0;
3819 }
3820
3821 static int
3822 test_kasumi_encryption_oop_sgl(const struct kasumi_test_data *tdata)
3823 {
3824         struct crypto_testsuite_params *ts_params = &testsuite_params;
3825         struct crypto_unittest_params *ut_params = &unittest_params;
3826
3827         int retval;
3828         unsigned int plaintext_pad_len;
3829         unsigned int plaintext_len;
3830
3831         const uint8_t *ciphertext;
3832         uint8_t buffer[2048];
3833
3834         struct rte_cryptodev_info dev_info;
3835
3836         /* Verify the capabilities */
3837         struct rte_cryptodev_sym_capability_idx cap_idx;
3838         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
3839         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
3840         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3841                         &cap_idx) == NULL)
3842                 return TEST_SKIPPED;
3843
3844         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3845                 return TEST_SKIPPED;
3846
3847         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3848                 return TEST_SKIPPED;
3849
3850         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
3851
3852         uint64_t feat_flags = dev_info.feature_flags;
3853         if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
3854                 printf("Device doesn't support out-of-place scatter-gather "
3855                                 "in both input and output mbufs. "
3856                                 "Test Skipped.\n");
3857                 return TEST_SKIPPED;
3858         }
3859
3860         /* Create KASUMI session */
3861         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
3862                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
3863                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
3864                                         tdata->key.data, tdata->key.len,
3865                                         tdata->cipher_iv.len);
3866         if (retval < 0)
3867                 return retval;
3868
3869         plaintext_len = ceil_byte_length(tdata->plaintext.len);
3870         /* Append data which is padded to a multiple */
3871         /* of the algorithms block size */
3872         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
3873
3874         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
3875                         plaintext_pad_len, 10, 0);
3876         ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
3877                         plaintext_pad_len, 3, 0);
3878
3879         /* Append data which is padded to a multiple */
3880         /* of the algorithms block size */
3881         pktmbuf_write(ut_params->ibuf, 0, plaintext_len, tdata->plaintext.data);
3882
3883         /* Create KASUMI operation */
3884         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
3885                                 tdata->cipher_iv.len,
3886                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
3887                                 tdata->validCipherOffsetInBits.len);
3888         if (retval < 0)
3889                 return retval;
3890
3891         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3892                                                 ut_params->op);
3893         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3894
3895         ut_params->obuf = ut_params->op->sym->m_dst;
3896         if (ut_params->obuf)
3897                 ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
3898                                 plaintext_pad_len, buffer);
3899         else
3900                 ciphertext = rte_pktmbuf_read(ut_params->ibuf,
3901                                 tdata->validCipherOffsetInBits.len >> 3,
3902                                 plaintext_pad_len, buffer);
3903
3904         const uint8_t *reference_ciphertext = tdata->ciphertext.data +
3905                                 (tdata->validCipherOffsetInBits.len >> 3);
3906         /* Validate obuf */
3907         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
3908                 ciphertext,
3909                 reference_ciphertext,
3910                 tdata->validCipherLenInBits.len,
3911                 "KASUMI Ciphertext data not as expected");
3912         return 0;
3913 }
3914
3915
3916 static int
3917 test_kasumi_decryption_oop(const struct kasumi_test_data *tdata)
3918 {
3919         struct crypto_testsuite_params *ts_params = &testsuite_params;
3920         struct crypto_unittest_params *ut_params = &unittest_params;
3921
3922         int retval;
3923         uint8_t *ciphertext, *plaintext;
3924         unsigned ciphertext_pad_len;
3925         unsigned ciphertext_len;
3926
3927         /* Verify the capabilities */
3928         struct rte_cryptodev_sym_capability_idx cap_idx;
3929         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
3930         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
3931         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
3932                         &cap_idx) == NULL)
3933                 return TEST_SKIPPED;
3934
3935         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
3936                 return TEST_SKIPPED;
3937
3938         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
3939                 return TEST_SKIPPED;
3940
3941         /* Create KASUMI session */
3942         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
3943                                         RTE_CRYPTO_CIPHER_OP_DECRYPT,
3944                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
3945                                         tdata->key.data, tdata->key.len,
3946                                         tdata->cipher_iv.len);
3947         if (retval < 0)
3948                 return retval;
3949
3950         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3951         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
3952
3953         /* Clear mbuf payload */
3954         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
3955                rte_pktmbuf_tailroom(ut_params->ibuf));
3956
3957         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
3958         /* Append data which is padded to a multiple */
3959         /* of the algorithms block size */
3960         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 8);
3961         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
3962                                 ciphertext_pad_len);
3963         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
3964         memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
3965
3966         debug_hexdump(stdout, "ciphertext:", ciphertext, ciphertext_len);
3967
3968         /* Create KASUMI operation */
3969         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
3970                                 tdata->cipher_iv.len,
3971                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
3972                                 tdata->validCipherOffsetInBits.len);
3973         if (retval < 0)
3974                 return retval;
3975
3976         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
3977                                                 ut_params->op);
3978         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
3979
3980         ut_params->obuf = ut_params->op->sym->m_dst;
3981         if (ut_params->obuf)
3982                 plaintext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
3983         else
3984                 plaintext = ciphertext + (tdata->validCipherOffsetInBits.len >> 3);
3985
3986         debug_hexdump(stdout, "plaintext:", plaintext, ciphertext_len);
3987
3988         const uint8_t *reference_plaintext = tdata->plaintext.data +
3989                                 (tdata->validCipherOffsetInBits.len >> 3);
3990         /* Validate obuf */
3991         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
3992                 plaintext,
3993                 reference_plaintext,
3994                 tdata->validCipherLenInBits.len,
3995                 "KASUMI Plaintext data not as expected");
3996         return 0;
3997 }
3998
3999 static int
4000 test_kasumi_decryption(const struct kasumi_test_data *tdata)
4001 {
4002         struct crypto_testsuite_params *ts_params = &testsuite_params;
4003         struct crypto_unittest_params *ut_params = &unittest_params;
4004
4005         int retval;
4006         uint8_t *ciphertext, *plaintext;
4007         unsigned ciphertext_pad_len;
4008         unsigned ciphertext_len;
4009         struct rte_cryptodev_info dev_info;
4010
4011         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4012         uint64_t feat_flags = dev_info.feature_flags;
4013
4014         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4015                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4016                 printf("Device doesn't support RAW data-path APIs.\n");
4017                 return TEST_SKIPPED;
4018         }
4019
4020         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4021                 return TEST_SKIPPED;
4022
4023         /* Verify the capabilities */
4024         struct rte_cryptodev_sym_capability_idx cap_idx;
4025         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4026         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
4027         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4028                         &cap_idx) == NULL)
4029                 return TEST_SKIPPED;
4030
4031         /* Create KASUMI session */
4032         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4033                                         RTE_CRYPTO_CIPHER_OP_DECRYPT,
4034                                         RTE_CRYPTO_CIPHER_KASUMI_F8,
4035                                         tdata->key.data, tdata->key.len,
4036                                         tdata->cipher_iv.len);
4037         if (retval < 0)
4038                 return retval;
4039
4040         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4041
4042         /* Clear mbuf payload */
4043         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4044                rte_pktmbuf_tailroom(ut_params->ibuf));
4045
4046         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
4047         /* Append data which is padded to a multiple */
4048         /* of the algorithms block size */
4049         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 8);
4050         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4051                                 ciphertext_pad_len);
4052         memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
4053
4054         debug_hexdump(stdout, "ciphertext:", ciphertext, ciphertext_len);
4055
4056         /* Create KASUMI operation */
4057         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
4058                                         tdata->cipher_iv.len,
4059                                         tdata->ciphertext.len,
4060                                         tdata->validCipherOffsetInBits.len);
4061         if (retval < 0)
4062                 return retval;
4063
4064         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4065                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
4066                                 ut_params->op, 1, 0, 1, 0);
4067         else
4068                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4069                                                 ut_params->op);
4070         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4071
4072         ut_params->obuf = ut_params->op->sym->m_dst;
4073         if (ut_params->obuf)
4074                 plaintext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4075         else
4076                 plaintext = ciphertext + (tdata->validCipherOffsetInBits.len >> 3);
4077
4078         debug_hexdump(stdout, "plaintext:", plaintext, ciphertext_len);
4079
4080         const uint8_t *reference_plaintext = tdata->plaintext.data +
4081                                 (tdata->validCipherOffsetInBits.len >> 3);
4082         /* Validate obuf */
4083         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4084                 plaintext,
4085                 reference_plaintext,
4086                 tdata->validCipherLenInBits.len,
4087                 "KASUMI Plaintext data not as expected");
4088         return 0;
4089 }
4090
4091 static int
4092 test_snow3g_encryption(const struct snow3g_test_data *tdata)
4093 {
4094         struct crypto_testsuite_params *ts_params = &testsuite_params;
4095         struct crypto_unittest_params *ut_params = &unittest_params;
4096
4097         int retval;
4098         uint8_t *plaintext, *ciphertext;
4099         unsigned plaintext_pad_len;
4100         unsigned plaintext_len;
4101         struct rte_cryptodev_info dev_info;
4102
4103         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4104         uint64_t feat_flags = dev_info.feature_flags;
4105
4106         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4107                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4108                 printf("Device doesn't support RAW data-path APIs.\n");
4109                 return TEST_SKIPPED;
4110         }
4111
4112         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4113                 return TEST_SKIPPED;
4114
4115         /* Verify the capabilities */
4116         struct rte_cryptodev_sym_capability_idx cap_idx;
4117         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4118         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4119         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4120                         &cap_idx) == NULL)
4121                 return TEST_SKIPPED;
4122
4123         /* Create SNOW 3G session */
4124         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4125                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
4126                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4127                                         tdata->key.data, tdata->key.len,
4128                                         tdata->cipher_iv.len);
4129         if (retval < 0)
4130                 return retval;
4131
4132         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4133
4134         /* Clear mbuf payload */
4135         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4136                rte_pktmbuf_tailroom(ut_params->ibuf));
4137
4138         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4139         /* Append data which is padded to a multiple of */
4140         /* the algorithms block size */
4141         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4142         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4143                                 plaintext_pad_len);
4144         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
4145
4146         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
4147
4148         /* Create SNOW 3G operation */
4149         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
4150                                         tdata->cipher_iv.len,
4151                                         tdata->validCipherLenInBits.len,
4152                                         0);
4153         if (retval < 0)
4154                 return retval;
4155
4156         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4157                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
4158                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
4159         else
4160                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4161                                                 ut_params->op);
4162         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4163
4164         ut_params->obuf = ut_params->op->sym->m_dst;
4165         if (ut_params->obuf)
4166                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4167         else
4168                 ciphertext = plaintext;
4169
4170         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4171
4172         /* Validate obuf */
4173         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4174                 ciphertext,
4175                 tdata->ciphertext.data,
4176                 tdata->validDataLenInBits.len,
4177                 "SNOW 3G Ciphertext data not as expected");
4178         return 0;
4179 }
4180
4181
4182 static int
4183 test_snow3g_encryption_oop(const struct snow3g_test_data *tdata)
4184 {
4185         struct crypto_testsuite_params *ts_params = &testsuite_params;
4186         struct crypto_unittest_params *ut_params = &unittest_params;
4187         uint8_t *plaintext, *ciphertext;
4188
4189         int retval;
4190         unsigned plaintext_pad_len;
4191         unsigned plaintext_len;
4192
4193         /* Verify the capabilities */
4194         struct rte_cryptodev_sym_capability_idx cap_idx;
4195         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4196         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4197         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4198                         &cap_idx) == NULL)
4199                 return TEST_SKIPPED;
4200
4201         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4202                 return TEST_SKIPPED;
4203
4204         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4205                 return TEST_SKIPPED;
4206
4207         /* Create SNOW 3G session */
4208         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4209                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
4210                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4211                                         tdata->key.data, tdata->key.len,
4212                                         tdata->cipher_iv.len);
4213         if (retval < 0)
4214                 return retval;
4215
4216         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4217         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4218
4219         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
4220                         "Failed to allocate input buffer in mempool");
4221         TEST_ASSERT_NOT_NULL(ut_params->obuf,
4222                         "Failed to allocate output buffer in mempool");
4223
4224         /* Clear mbuf payload */
4225         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4226                rte_pktmbuf_tailroom(ut_params->ibuf));
4227
4228         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4229         /* Append data which is padded to a multiple of */
4230         /* the algorithms block size */
4231         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4232         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4233                                 plaintext_pad_len);
4234         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
4235         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
4236
4237         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
4238
4239         /* Create SNOW 3G operation */
4240         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
4241                                         tdata->cipher_iv.len,
4242                                         tdata->validCipherLenInBits.len,
4243                                         0);
4244         if (retval < 0)
4245                 return retval;
4246
4247         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4248                                                 ut_params->op);
4249         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4250
4251         ut_params->obuf = ut_params->op->sym->m_dst;
4252         if (ut_params->obuf)
4253                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4254         else
4255                 ciphertext = plaintext;
4256
4257         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4258
4259         /* Validate obuf */
4260         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4261                 ciphertext,
4262                 tdata->ciphertext.data,
4263                 tdata->validDataLenInBits.len,
4264                 "SNOW 3G Ciphertext data not as expected");
4265         return 0;
4266 }
4267
4268 static int
4269 test_snow3g_encryption_oop_sgl(const struct snow3g_test_data *tdata)
4270 {
4271         struct crypto_testsuite_params *ts_params = &testsuite_params;
4272         struct crypto_unittest_params *ut_params = &unittest_params;
4273
4274         int retval;
4275         unsigned int plaintext_pad_len;
4276         unsigned int plaintext_len;
4277         uint8_t buffer[10000];
4278         const uint8_t *ciphertext;
4279
4280         struct rte_cryptodev_info dev_info;
4281
4282         /* Verify the capabilities */
4283         struct rte_cryptodev_sym_capability_idx cap_idx;
4284         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4285         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4286         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4287                         &cap_idx) == NULL)
4288                 return TEST_SKIPPED;
4289
4290         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4291                 return TEST_SKIPPED;
4292
4293         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4294                 return TEST_SKIPPED;
4295
4296         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4297
4298         uint64_t feat_flags = dev_info.feature_flags;
4299
4300         if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
4301                 printf("Device doesn't support out-of-place scatter-gather "
4302                                 "in both input and output mbufs. "
4303                                 "Test Skipped.\n");
4304                 return TEST_SKIPPED;
4305         }
4306
4307         /* Create SNOW 3G session */
4308         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4309                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
4310                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4311                                         tdata->key.data, tdata->key.len,
4312                                         tdata->cipher_iv.len);
4313         if (retval < 0)
4314                 return retval;
4315
4316         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4317         /* Append data which is padded to a multiple of */
4318         /* the algorithms block size */
4319         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4320
4321         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
4322                         plaintext_pad_len, 10, 0);
4323         ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
4324                         plaintext_pad_len, 3, 0);
4325
4326         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
4327                         "Failed to allocate input buffer in mempool");
4328         TEST_ASSERT_NOT_NULL(ut_params->obuf,
4329                         "Failed to allocate output buffer in mempool");
4330
4331         pktmbuf_write(ut_params->ibuf, 0, plaintext_len, tdata->plaintext.data);
4332
4333         /* Create SNOW 3G operation */
4334         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
4335                                         tdata->cipher_iv.len,
4336                                         tdata->validCipherLenInBits.len,
4337                                         0);
4338         if (retval < 0)
4339                 return retval;
4340
4341         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4342                                                 ut_params->op);
4343         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4344
4345         ut_params->obuf = ut_params->op->sym->m_dst;
4346         if (ut_params->obuf)
4347                 ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
4348                                 plaintext_len, buffer);
4349         else
4350                 ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
4351                                 plaintext_len, buffer);
4352
4353         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4354
4355         /* Validate obuf */
4356         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4357                 ciphertext,
4358                 tdata->ciphertext.data,
4359                 tdata->validDataLenInBits.len,
4360                 "SNOW 3G Ciphertext data not as expected");
4361
4362         return 0;
4363 }
4364
4365 /* Shift right a buffer by "offset" bits, "offset" < 8 */
4366 static void
4367 buffer_shift_right(uint8_t *buffer, uint32_t length, uint8_t offset)
4368 {
4369         uint8_t curr_byte, prev_byte;
4370         uint32_t length_in_bytes = ceil_byte_length(length + offset);
4371         uint8_t lower_byte_mask = (1 << offset) - 1;
4372         unsigned i;
4373
4374         prev_byte = buffer[0];
4375         buffer[0] >>= offset;
4376
4377         for (i = 1; i < length_in_bytes; i++) {
4378                 curr_byte = buffer[i];
4379                 buffer[i] = ((prev_byte & lower_byte_mask) << (8 - offset)) |
4380                                 (curr_byte >> offset);
4381                 prev_byte = curr_byte;
4382         }
4383 }
4384
4385 static int
4386 test_snow3g_encryption_offset_oop(const struct snow3g_test_data *tdata)
4387 {
4388         struct crypto_testsuite_params *ts_params = &testsuite_params;
4389         struct crypto_unittest_params *ut_params = &unittest_params;
4390         uint8_t *plaintext, *ciphertext;
4391         int retval;
4392         uint32_t plaintext_len;
4393         uint32_t plaintext_pad_len;
4394         uint8_t extra_offset = 4;
4395         uint8_t *expected_ciphertext_shifted;
4396         struct rte_cryptodev_info dev_info;
4397
4398         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4399         uint64_t feat_flags = dev_info.feature_flags;
4400
4401         if (!(feat_flags & RTE_CRYPTODEV_FF_NON_BYTE_ALIGNED_DATA) &&
4402                         ((tdata->validDataLenInBits.len % 8) != 0)) {
4403                 printf("Device doesn't support NON-Byte Aligned Data.\n");
4404                 return TEST_SKIPPED;
4405         }
4406
4407         /* Verify the capabilities */
4408         struct rte_cryptodev_sym_capability_idx cap_idx;
4409         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4410         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4411         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4412                         &cap_idx) == NULL)
4413                 return TEST_SKIPPED;
4414
4415         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4416                 return TEST_SKIPPED;
4417
4418         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4419                 return TEST_SKIPPED;
4420
4421         /* Create SNOW 3G session */
4422         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4423                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
4424                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4425                                         tdata->key.data, tdata->key.len,
4426                                         tdata->cipher_iv.len);
4427         if (retval < 0)
4428                 return retval;
4429
4430         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4431         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4432
4433         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
4434                         "Failed to allocate input buffer in mempool");
4435         TEST_ASSERT_NOT_NULL(ut_params->obuf,
4436                         "Failed to allocate output buffer in mempool");
4437
4438         /* Clear mbuf payload */
4439         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4440                rte_pktmbuf_tailroom(ut_params->ibuf));
4441
4442         plaintext_len = ceil_byte_length(tdata->plaintext.len + extra_offset);
4443         /*
4444          * Append data which is padded to a
4445          * multiple of the algorithms block size
4446          */
4447         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4448
4449         plaintext = (uint8_t *) rte_pktmbuf_append(ut_params->ibuf,
4450                                                 plaintext_pad_len);
4451
4452         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
4453
4454         memcpy(plaintext, tdata->plaintext.data, (tdata->plaintext.len >> 3));
4455         buffer_shift_right(plaintext, tdata->plaintext.len, extra_offset);
4456
4457 #ifdef RTE_APP_TEST_DEBUG
4458         rte_hexdump(stdout, "plaintext:", plaintext, tdata->plaintext.len);
4459 #endif
4460         /* Create SNOW 3G operation */
4461         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
4462                                         tdata->cipher_iv.len,
4463                                         tdata->validCipherLenInBits.len,
4464                                         extra_offset);
4465         if (retval < 0)
4466                 return retval;
4467
4468         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4469                                                 ut_params->op);
4470         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4471
4472         ut_params->obuf = ut_params->op->sym->m_dst;
4473         if (ut_params->obuf)
4474                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4475         else
4476                 ciphertext = plaintext;
4477
4478 #ifdef RTE_APP_TEST_DEBUG
4479         rte_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4480 #endif
4481
4482         expected_ciphertext_shifted = rte_malloc(NULL, plaintext_len, 8);
4483
4484         TEST_ASSERT_NOT_NULL(expected_ciphertext_shifted,
4485                         "failed to reserve memory for ciphertext shifted\n");
4486
4487         memcpy(expected_ciphertext_shifted, tdata->ciphertext.data,
4488                         ceil_byte_length(tdata->ciphertext.len));
4489         buffer_shift_right(expected_ciphertext_shifted, tdata->ciphertext.len,
4490                         extra_offset);
4491         /* Validate obuf */
4492         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT_OFFSET(
4493                 ciphertext,
4494                 expected_ciphertext_shifted,
4495                 tdata->validDataLenInBits.len,
4496                 extra_offset,
4497                 "SNOW 3G Ciphertext data not as expected");
4498         return 0;
4499 }
4500
4501 static int test_snow3g_decryption(const struct snow3g_test_data *tdata)
4502 {
4503         struct crypto_testsuite_params *ts_params = &testsuite_params;
4504         struct crypto_unittest_params *ut_params = &unittest_params;
4505
4506         int retval;
4507
4508         uint8_t *plaintext, *ciphertext;
4509         unsigned ciphertext_pad_len;
4510         unsigned ciphertext_len;
4511         struct rte_cryptodev_info dev_info;
4512
4513         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4514         uint64_t feat_flags = dev_info.feature_flags;
4515
4516         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4517                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4518                 printf("Device doesn't support RAW data-path APIs.\n");
4519                 return TEST_SKIPPED;
4520         }
4521
4522         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4523                 return TEST_SKIPPED;
4524
4525         /* Verify the capabilities */
4526         struct rte_cryptodev_sym_capability_idx cap_idx;
4527         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4528         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4529         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4530                         &cap_idx) == NULL)
4531                 return TEST_SKIPPED;
4532
4533         /* Create SNOW 3G session */
4534         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4535                                         RTE_CRYPTO_CIPHER_OP_DECRYPT,
4536                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4537                                         tdata->key.data, tdata->key.len,
4538                                         tdata->cipher_iv.len);
4539         if (retval < 0)
4540                 return retval;
4541
4542         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4543
4544         /* Clear mbuf payload */
4545         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4546                rte_pktmbuf_tailroom(ut_params->ibuf));
4547
4548         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
4549         /* Append data which is padded to a multiple of */
4550         /* the algorithms block size */
4551         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
4552         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4553                                 ciphertext_pad_len);
4554         memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
4555
4556         debug_hexdump(stdout, "ciphertext:", ciphertext, ciphertext_len);
4557
4558         /* Create SNOW 3G operation */
4559         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
4560                                         tdata->cipher_iv.len,
4561                                         tdata->validCipherLenInBits.len,
4562                                         tdata->cipher.offset_bits);
4563         if (retval < 0)
4564                 return retval;
4565
4566         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4567                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
4568                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
4569         else
4570                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4571                                                 ut_params->op);
4572         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4573         ut_params->obuf = ut_params->op->sym->m_dst;
4574         if (ut_params->obuf)
4575                 plaintext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4576         else
4577                 plaintext = ciphertext;
4578
4579         debug_hexdump(stdout, "plaintext:", plaintext, ciphertext_len);
4580
4581         /* Validate obuf */
4582         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(plaintext,
4583                                 tdata->plaintext.data,
4584                                 tdata->validDataLenInBits.len,
4585                                 "SNOW 3G Plaintext data not as expected");
4586         return 0;
4587 }
4588
4589 static int test_snow3g_decryption_oop(const struct snow3g_test_data *tdata)
4590 {
4591         struct crypto_testsuite_params *ts_params = &testsuite_params;
4592         struct crypto_unittest_params *ut_params = &unittest_params;
4593
4594         int retval;
4595
4596         uint8_t *plaintext, *ciphertext;
4597         unsigned ciphertext_pad_len;
4598         unsigned ciphertext_len;
4599
4600         /* Verify the capabilities */
4601         struct rte_cryptodev_sym_capability_idx cap_idx;
4602         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4603         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4604         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4605                         &cap_idx) == NULL)
4606                 return TEST_SKIPPED;
4607
4608         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4609                 return TEST_SKIPPED;
4610
4611         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4612                 return TEST_SKIPPED;
4613
4614         /* Create SNOW 3G session */
4615         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
4616                                         RTE_CRYPTO_CIPHER_OP_DECRYPT,
4617                                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4618                                         tdata->key.data, tdata->key.len,
4619                                         tdata->cipher_iv.len);
4620         if (retval < 0)
4621                 return retval;
4622
4623         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4624         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4625
4626         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
4627                         "Failed to allocate input buffer");
4628         TEST_ASSERT_NOT_NULL(ut_params->obuf,
4629                         "Failed to allocate output buffer");
4630
4631         /* Clear mbuf payload */
4632         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4633                rte_pktmbuf_tailroom(ut_params->ibuf));
4634
4635         memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
4636                        rte_pktmbuf_tailroom(ut_params->obuf));
4637
4638         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
4639         /* Append data which is padded to a multiple of */
4640         /* the algorithms block size */
4641         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
4642         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4643                                 ciphertext_pad_len);
4644         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
4645         memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
4646
4647         debug_hexdump(stdout, "ciphertext:", ciphertext, ciphertext_len);
4648
4649         /* Create SNOW 3G operation */
4650         retval = create_wireless_algo_cipher_operation_oop(tdata->cipher_iv.data,
4651                                         tdata->cipher_iv.len,
4652                                         tdata->validCipherLenInBits.len,
4653                                         0);
4654         if (retval < 0)
4655                 return retval;
4656
4657         ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4658                                                 ut_params->op);
4659         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4660         ut_params->obuf = ut_params->op->sym->m_dst;
4661         if (ut_params->obuf)
4662                 plaintext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4663         else
4664                 plaintext = ciphertext;
4665
4666         debug_hexdump(stdout, "plaintext:", plaintext, ciphertext_len);
4667
4668         /* Validate obuf */
4669         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(plaintext,
4670                                 tdata->plaintext.data,
4671                                 tdata->validDataLenInBits.len,
4672                                 "SNOW 3G Plaintext data not as expected");
4673         return 0;
4674 }
4675
4676 static int
4677 test_zuc_cipher_auth(const struct wireless_test_data *tdata)
4678 {
4679         struct crypto_testsuite_params *ts_params = &testsuite_params;
4680         struct crypto_unittest_params *ut_params = &unittest_params;
4681
4682         int retval;
4683
4684         uint8_t *plaintext, *ciphertext;
4685         unsigned int plaintext_pad_len;
4686         unsigned int plaintext_len;
4687
4688         struct rte_cryptodev_info dev_info;
4689         struct rte_cryptodev_sym_capability_idx cap_idx;
4690
4691         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4692         uint64_t feat_flags = dev_info.feature_flags;
4693
4694         if (!(feat_flags & RTE_CRYPTODEV_FF_NON_BYTE_ALIGNED_DATA) &&
4695                         ((tdata->validAuthLenInBits.len % 8 != 0) ||
4696                         (tdata->validDataLenInBits.len % 8 != 0))) {
4697                 printf("Device doesn't support NON-Byte Aligned Data.\n");
4698                 return TEST_SKIPPED;
4699         }
4700
4701         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4702                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4703                 printf("Device doesn't support RAW data-path APIs.\n");
4704                 return TEST_SKIPPED;
4705         }
4706
4707         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4708                 return TEST_SKIPPED;
4709
4710         /* Check if device supports ZUC EEA3 */
4711         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4712         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_ZUC_EEA3;
4713
4714         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4715                         &cap_idx) == NULL)
4716                 return TEST_SKIPPED;
4717
4718         /* Check if device supports ZUC EIA3 */
4719         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
4720         cap_idx.algo.auth = RTE_CRYPTO_AUTH_ZUC_EIA3;
4721
4722         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4723                         &cap_idx) == NULL)
4724                 return TEST_SKIPPED;
4725
4726         /* Create ZUC session */
4727         retval = create_zuc_cipher_auth_encrypt_generate_session(
4728                         ts_params->valid_devs[0],
4729                         tdata);
4730         if (retval != 0)
4731                 return retval;
4732         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4733
4734         /* clear mbuf payload */
4735         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4736                         rte_pktmbuf_tailroom(ut_params->ibuf));
4737
4738         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4739         /* Append data which is padded to a multiple of */
4740         /* the algorithms block size */
4741         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4742         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4743                                 plaintext_pad_len);
4744         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
4745
4746         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
4747
4748         /* Create ZUC operation */
4749         retval = create_zuc_cipher_hash_generate_operation(tdata);
4750         if (retval < 0)
4751                 return retval;
4752
4753         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4754                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
4755                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
4756         else
4757                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4758                         ut_params->op);
4759         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4760         ut_params->obuf = ut_params->op->sym->m_src;
4761         if (ut_params->obuf)
4762                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4763         else
4764                 ciphertext = plaintext;
4765
4766         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4767         /* Validate obuf */
4768         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4769                         ciphertext,
4770                         tdata->ciphertext.data,
4771                         tdata->validDataLenInBits.len,
4772                         "ZUC Ciphertext data not as expected");
4773
4774         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
4775             + plaintext_pad_len;
4776
4777         /* Validate obuf */
4778         TEST_ASSERT_BUFFERS_ARE_EQUAL(
4779                         ut_params->digest,
4780                         tdata->digest.data,
4781                         4,
4782                         "ZUC Generated auth tag not as expected");
4783         return 0;
4784 }
4785
4786 static int
4787 test_snow3g_cipher_auth(const struct snow3g_test_data *tdata)
4788 {
4789         struct crypto_testsuite_params *ts_params = &testsuite_params;
4790         struct crypto_unittest_params *ut_params = &unittest_params;
4791
4792         int retval;
4793
4794         uint8_t *plaintext, *ciphertext;
4795         unsigned plaintext_pad_len;
4796         unsigned plaintext_len;
4797         struct rte_cryptodev_info dev_info;
4798
4799         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4800         uint64_t feat_flags = dev_info.feature_flags;
4801
4802         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4803                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4804                 printf("Device doesn't support RAW data-path APIs.\n");
4805                 return TEST_SKIPPED;
4806         }
4807
4808         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4809                 return TEST_SKIPPED;
4810
4811         /* Verify the capabilities */
4812         struct rte_cryptodev_sym_capability_idx cap_idx;
4813         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
4814         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SNOW3G_UIA2;
4815         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4816                         &cap_idx) == NULL)
4817                 return TEST_SKIPPED;
4818         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4819         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4820         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4821                         &cap_idx) == NULL)
4822                 return TEST_SKIPPED;
4823
4824         /* Create SNOW 3G session */
4825         retval = create_wireless_algo_cipher_auth_session(ts_params->valid_devs[0],
4826                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
4827                         RTE_CRYPTO_AUTH_OP_GENERATE,
4828                         RTE_CRYPTO_AUTH_SNOW3G_UIA2,
4829                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4830                         tdata->key.data, tdata->key.len,
4831                         tdata->auth_iv.len, tdata->digest.len,
4832                         tdata->cipher_iv.len);
4833         if (retval != 0)
4834                 return retval;
4835         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4836
4837         /* clear mbuf payload */
4838         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4839                         rte_pktmbuf_tailroom(ut_params->ibuf));
4840
4841         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4842         /* Append data which is padded to a multiple of */
4843         /* the algorithms block size */
4844         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4845         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4846                                 plaintext_pad_len);
4847         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
4848
4849         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
4850
4851         /* Create SNOW 3G operation */
4852         retval = create_wireless_algo_cipher_hash_operation(tdata->digest.data,
4853                         tdata->digest.len, tdata->auth_iv.data,
4854                         tdata->auth_iv.len,
4855                         plaintext_pad_len, RTE_CRYPTO_AUTH_OP_GENERATE,
4856                         tdata->cipher_iv.data, tdata->cipher_iv.len,
4857                         tdata->validCipherLenInBits.len,
4858                         0,
4859                         tdata->validAuthLenInBits.len,
4860                         0
4861                         );
4862         if (retval < 0)
4863                 return retval;
4864
4865         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4866                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
4867                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
4868         else
4869                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
4870                         ut_params->op);
4871         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
4872         ut_params->obuf = ut_params->op->sym->m_src;
4873         if (ut_params->obuf)
4874                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
4875         else
4876                 ciphertext = plaintext;
4877
4878         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
4879         /* Validate obuf */
4880         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
4881                         ciphertext,
4882                         tdata->ciphertext.data,
4883                         tdata->validDataLenInBits.len,
4884                         "SNOW 3G Ciphertext data not as expected");
4885
4886         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
4887             + plaintext_pad_len;
4888
4889         /* Validate obuf */
4890         TEST_ASSERT_BUFFERS_ARE_EQUAL(
4891                         ut_params->digest,
4892                         tdata->digest.data,
4893                         DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
4894                         "SNOW 3G Generated auth tag not as expected");
4895         return 0;
4896 }
4897
4898 static int
4899 test_snow3g_auth_cipher(const struct snow3g_test_data *tdata,
4900         uint8_t op_mode, uint8_t verify)
4901 {
4902         struct crypto_testsuite_params *ts_params = &testsuite_params;
4903         struct crypto_unittest_params *ut_params = &unittest_params;
4904
4905         int retval;
4906
4907         uint8_t *plaintext = NULL, *ciphertext = NULL;
4908         unsigned int plaintext_pad_len;
4909         unsigned int plaintext_len;
4910         unsigned int ciphertext_pad_len;
4911         unsigned int ciphertext_len;
4912
4913         struct rte_cryptodev_info dev_info;
4914
4915         /* Verify the capabilities */
4916         struct rte_cryptodev_sym_capability_idx cap_idx;
4917         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
4918         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SNOW3G_UIA2;
4919         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4920                         &cap_idx) == NULL)
4921                 return TEST_SKIPPED;
4922         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
4923         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
4924         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
4925                         &cap_idx) == NULL)
4926                 return TEST_SKIPPED;
4927
4928         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
4929                 return TEST_SKIPPED;
4930
4931         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
4932
4933         uint64_t feat_flags = dev_info.feature_flags;
4934
4935         if (op_mode == OUT_OF_PLACE) {
4936                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
4937                         printf("Device doesn't support digest encrypted.\n");
4938                         return TEST_SKIPPED;
4939                 }
4940                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
4941                         return TEST_SKIPPED;
4942         }
4943
4944         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
4945                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
4946                 printf("Device doesn't support RAW data-path APIs.\n");
4947                 return TEST_SKIPPED;
4948         }
4949
4950         /* Create SNOW 3G session */
4951         retval = create_wireless_algo_auth_cipher_session(
4952                         ts_params->valid_devs[0],
4953                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
4954                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
4955                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
4956                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
4957                         RTE_CRYPTO_AUTH_SNOW3G_UIA2,
4958                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
4959                         tdata->key.data, tdata->key.len,
4960                         tdata->auth_iv.len, tdata->digest.len,
4961                         tdata->cipher_iv.len);
4962         if (retval != 0)
4963                 return retval;
4964
4965         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4966         if (op_mode == OUT_OF_PLACE)
4967                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
4968
4969         /* clear mbuf payload */
4970         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
4971                 rte_pktmbuf_tailroom(ut_params->ibuf));
4972         if (op_mode == OUT_OF_PLACE)
4973                 memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
4974                         rte_pktmbuf_tailroom(ut_params->obuf));
4975
4976         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
4977         plaintext_len = ceil_byte_length(tdata->plaintext.len);
4978         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
4979         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
4980
4981         if (verify) {
4982                 ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4983                                         ciphertext_pad_len);
4984                 memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
4985                 if (op_mode == OUT_OF_PLACE)
4986                         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
4987                 debug_hexdump(stdout, "ciphertext:", ciphertext,
4988                         ciphertext_len);
4989         } else {
4990                 plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
4991                                         plaintext_pad_len);
4992                 memcpy(plaintext, tdata->plaintext.data, plaintext_len);
4993                 if (op_mode == OUT_OF_PLACE)
4994                         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
4995                 debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
4996         }
4997
4998         /* Create SNOW 3G operation */
4999         retval = create_wireless_algo_auth_cipher_operation(
5000                 tdata->digest.data, tdata->digest.len,
5001                 tdata->cipher_iv.data, tdata->cipher_iv.len,
5002                 tdata->auth_iv.data, tdata->auth_iv.len,
5003                 (tdata->digest.offset_bytes == 0 ?
5004                 (verify ? ciphertext_pad_len : plaintext_pad_len)
5005                         : tdata->digest.offset_bytes),
5006                 tdata->validCipherLenInBits.len,
5007                 tdata->cipher.offset_bits,
5008                 tdata->validAuthLenInBits.len,
5009                 tdata->auth.offset_bits,
5010                 op_mode, 0, verify);
5011
5012         if (retval < 0)
5013                 return retval;
5014
5015         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5016                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5017                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
5018         else
5019                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5020                         ut_params->op);
5021
5022         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5023
5024         ut_params->obuf = (op_mode == IN_PLACE ?
5025                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
5026
5027         if (verify) {
5028                 if (ut_params->obuf)
5029                         plaintext = rte_pktmbuf_mtod(ut_params->obuf,
5030                                                         uint8_t *);
5031                 else
5032                         plaintext = ciphertext +
5033                                 (tdata->cipher.offset_bits >> 3);
5034
5035                 debug_hexdump(stdout, "plaintext:", plaintext,
5036                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5037                 debug_hexdump(stdout, "plaintext expected:",
5038                         tdata->plaintext.data,
5039                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5040         } else {
5041                 if (ut_params->obuf)
5042                         ciphertext = rte_pktmbuf_mtod(ut_params->obuf,
5043                                                         uint8_t *);
5044                 else
5045                         ciphertext = plaintext;
5046
5047                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5048                         ciphertext_len);
5049                 debug_hexdump(stdout, "ciphertext expected:",
5050                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
5051
5052                 ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
5053                         + (tdata->digest.offset_bytes == 0 ?
5054                 plaintext_pad_len : tdata->digest.offset_bytes);
5055
5056                 debug_hexdump(stdout, "digest:", ut_params->digest,
5057                         tdata->digest.len);
5058                 debug_hexdump(stdout, "digest expected:", tdata->digest.data,
5059                                 tdata->digest.len);
5060         }
5061
5062         /* Validate obuf */
5063         if (verify) {
5064                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT_OFFSET(
5065                         plaintext,
5066                         tdata->plaintext.data,
5067                         (tdata->plaintext.len - tdata->cipher.offset_bits -
5068                          (tdata->digest.len << 3)),
5069                         tdata->cipher.offset_bits,
5070                         "SNOW 3G Plaintext data not as expected");
5071         } else {
5072                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT_OFFSET(
5073                         ciphertext,
5074                         tdata->ciphertext.data,
5075                         (tdata->validDataLenInBits.len -
5076                          tdata->cipher.offset_bits),
5077                         tdata->cipher.offset_bits,
5078                         "SNOW 3G Ciphertext data not as expected");
5079
5080                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
5081                         ut_params->digest,
5082                         tdata->digest.data,
5083                         DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
5084                         "SNOW 3G Generated auth tag not as expected");
5085         }
5086         return 0;
5087 }
5088
5089 static int
5090 test_snow3g_auth_cipher_sgl(const struct snow3g_test_data *tdata,
5091         uint8_t op_mode, uint8_t verify)
5092 {
5093         struct crypto_testsuite_params *ts_params = &testsuite_params;
5094         struct crypto_unittest_params *ut_params = &unittest_params;
5095
5096         int retval;
5097
5098         const uint8_t *plaintext = NULL;
5099         const uint8_t *ciphertext = NULL;
5100         const uint8_t *digest = NULL;
5101         unsigned int plaintext_pad_len;
5102         unsigned int plaintext_len;
5103         unsigned int ciphertext_pad_len;
5104         unsigned int ciphertext_len;
5105         uint8_t buffer[10000];
5106         uint8_t digest_buffer[10000];
5107
5108         struct rte_cryptodev_info dev_info;
5109
5110         /* Verify the capabilities */
5111         struct rte_cryptodev_sym_capability_idx cap_idx;
5112         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
5113         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SNOW3G_UIA2;
5114         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5115                         &cap_idx) == NULL)
5116                 return TEST_SKIPPED;
5117         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5118         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_SNOW3G_UEA2;
5119         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5120                         &cap_idx) == NULL)
5121                 return TEST_SKIPPED;
5122
5123         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5124                 return TEST_SKIPPED;
5125
5126         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5127
5128         uint64_t feat_flags = dev_info.feature_flags;
5129
5130         if (op_mode == IN_PLACE) {
5131                 if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
5132                         printf("Device doesn't support in-place scatter-gather "
5133                                         "in both input and output mbufs.\n");
5134                         return TEST_SKIPPED;
5135                 }
5136                 if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5137                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5138                         printf("Device doesn't support RAW data-path APIs.\n");
5139                         return TEST_SKIPPED;
5140                 }
5141         } else {
5142                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5143                         return TEST_SKIPPED;
5144                 if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
5145                         printf("Device doesn't support out-of-place scatter-gather "
5146                                         "in both input and output mbufs.\n");
5147                         return TEST_SKIPPED;
5148                 }
5149                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
5150                         printf("Device doesn't support digest encrypted.\n");
5151                         return TEST_SKIPPED;
5152                 }
5153         }
5154
5155         /* Create SNOW 3G session */
5156         retval = create_wireless_algo_auth_cipher_session(
5157                         ts_params->valid_devs[0],
5158                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
5159                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
5160                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
5161                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
5162                         RTE_CRYPTO_AUTH_SNOW3G_UIA2,
5163                         RTE_CRYPTO_CIPHER_SNOW3G_UEA2,
5164                         tdata->key.data, tdata->key.len,
5165                         tdata->auth_iv.len, tdata->digest.len,
5166                         tdata->cipher_iv.len);
5167
5168         if (retval != 0)
5169                 return retval;
5170
5171         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
5172         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5173         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
5174         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
5175
5176         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
5177                         plaintext_pad_len, 15, 0);
5178         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
5179                         "Failed to allocate input buffer in mempool");
5180
5181         if (op_mode == OUT_OF_PLACE) {
5182                 ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
5183                                 plaintext_pad_len, 15, 0);
5184                 TEST_ASSERT_NOT_NULL(ut_params->obuf,
5185                                 "Failed to allocate output buffer in mempool");
5186         }
5187
5188         if (verify) {
5189                 pktmbuf_write(ut_params->ibuf, 0, ciphertext_len,
5190                         tdata->ciphertext.data);
5191                 ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
5192                                         ciphertext_len, buffer);
5193                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5194                         ciphertext_len);
5195         } else {
5196                 pktmbuf_write(ut_params->ibuf, 0, plaintext_len,
5197                         tdata->plaintext.data);
5198                 plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
5199                                         plaintext_len, buffer);
5200                 debug_hexdump(stdout, "plaintext:", plaintext,
5201                         plaintext_len);
5202         }
5203         memset(buffer, 0, sizeof(buffer));
5204
5205         /* Create SNOW 3G operation */
5206         retval = create_wireless_algo_auth_cipher_operation(
5207                 tdata->digest.data, tdata->digest.len,
5208                 tdata->cipher_iv.data, tdata->cipher_iv.len,
5209                 tdata->auth_iv.data, tdata->auth_iv.len,
5210                 (tdata->digest.offset_bytes == 0 ?
5211                 (verify ? ciphertext_pad_len : plaintext_pad_len)
5212                         : tdata->digest.offset_bytes),
5213                 tdata->validCipherLenInBits.len,
5214                 tdata->cipher.offset_bits,
5215                 tdata->validAuthLenInBits.len,
5216                 tdata->auth.offset_bits,
5217                 op_mode, 1, verify);
5218
5219         if (retval < 0)
5220                 return retval;
5221
5222         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5223                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5224                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
5225         else
5226                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5227                         ut_params->op);
5228
5229         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5230
5231         ut_params->obuf = (op_mode == IN_PLACE ?
5232                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
5233
5234         if (verify) {
5235                 if (ut_params->obuf)
5236                         plaintext = rte_pktmbuf_read(ut_params->obuf, 0,
5237                                         plaintext_len, buffer);
5238                 else
5239                         plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
5240                                         plaintext_len, buffer);
5241
5242                 debug_hexdump(stdout, "plaintext:", plaintext,
5243                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5244                 debug_hexdump(stdout, "plaintext expected:",
5245                         tdata->plaintext.data,
5246                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5247         } else {
5248                 if (ut_params->obuf)
5249                         ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
5250                                         ciphertext_len, buffer);
5251                 else
5252                         ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
5253                                         ciphertext_len, buffer);
5254
5255                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5256                         ciphertext_len);
5257                 debug_hexdump(stdout, "ciphertext expected:",
5258                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
5259
5260                 if (ut_params->obuf)
5261                         digest = rte_pktmbuf_read(ut_params->obuf,
5262                                 (tdata->digest.offset_bytes == 0 ?
5263                                 plaintext_pad_len : tdata->digest.offset_bytes),
5264                                 tdata->digest.len, digest_buffer);
5265                 else
5266                         digest = rte_pktmbuf_read(ut_params->ibuf,
5267                                 (tdata->digest.offset_bytes == 0 ?
5268                                 plaintext_pad_len : tdata->digest.offset_bytes),
5269                                 tdata->digest.len, digest_buffer);
5270
5271                 debug_hexdump(stdout, "digest:", digest,
5272                         tdata->digest.len);
5273                 debug_hexdump(stdout, "digest expected:",
5274                         tdata->digest.data, tdata->digest.len);
5275         }
5276
5277         /* Validate obuf */
5278         if (verify) {
5279                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT_OFFSET(
5280                         plaintext,
5281                         tdata->plaintext.data,
5282                         (tdata->plaintext.len - tdata->cipher.offset_bits -
5283                          (tdata->digest.len << 3)),
5284                         tdata->cipher.offset_bits,
5285                         "SNOW 3G Plaintext data not as expected");
5286         } else {
5287                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT_OFFSET(
5288                         ciphertext,
5289                         tdata->ciphertext.data,
5290                         (tdata->validDataLenInBits.len -
5291                          tdata->cipher.offset_bits),
5292                         tdata->cipher.offset_bits,
5293                         "SNOW 3G Ciphertext data not as expected");
5294
5295                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
5296                         digest,
5297                         tdata->digest.data,
5298                         DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
5299                         "SNOW 3G Generated auth tag not as expected");
5300         }
5301         return 0;
5302 }
5303
5304 static int
5305 test_kasumi_auth_cipher(const struct kasumi_test_data *tdata,
5306         uint8_t op_mode, uint8_t verify)
5307 {
5308         struct crypto_testsuite_params *ts_params = &testsuite_params;
5309         struct crypto_unittest_params *ut_params = &unittest_params;
5310
5311         int retval;
5312
5313         uint8_t *plaintext = NULL, *ciphertext = NULL;
5314         unsigned int plaintext_pad_len;
5315         unsigned int plaintext_len;
5316         unsigned int ciphertext_pad_len;
5317         unsigned int ciphertext_len;
5318
5319         struct rte_cryptodev_info dev_info;
5320
5321         /* Verify the capabilities */
5322         struct rte_cryptodev_sym_capability_idx cap_idx;
5323         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
5324         cap_idx.algo.auth = RTE_CRYPTO_AUTH_KASUMI_F9;
5325         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5326                         &cap_idx) == NULL)
5327                 return TEST_SKIPPED;
5328         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5329         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
5330         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5331                         &cap_idx) == NULL)
5332                 return TEST_SKIPPED;
5333
5334         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5335
5336         uint64_t feat_flags = dev_info.feature_flags;
5337
5338         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5339                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5340                 printf("Device doesn't support RAW data-path APIs.\n");
5341                 return TEST_SKIPPED;
5342         }
5343
5344         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5345                 return TEST_SKIPPED;
5346
5347         if (op_mode == OUT_OF_PLACE) {
5348                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5349                         return TEST_SKIPPED;
5350                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
5351                         printf("Device doesn't support digest encrypted.\n");
5352                         return TEST_SKIPPED;
5353                 }
5354         }
5355
5356         /* Create KASUMI session */
5357         retval = create_wireless_algo_auth_cipher_session(
5358                         ts_params->valid_devs[0],
5359                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
5360                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
5361                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
5362                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
5363                         RTE_CRYPTO_AUTH_KASUMI_F9,
5364                         RTE_CRYPTO_CIPHER_KASUMI_F8,
5365                         tdata->key.data, tdata->key.len,
5366                         0, tdata->digest.len,
5367                         tdata->cipher_iv.len);
5368
5369         if (retval != 0)
5370                 return retval;
5371
5372         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
5373         if (op_mode == OUT_OF_PLACE)
5374                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
5375
5376         /* clear mbuf payload */
5377         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
5378                 rte_pktmbuf_tailroom(ut_params->ibuf));
5379         if (op_mode == OUT_OF_PLACE)
5380                 memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
5381                         rte_pktmbuf_tailroom(ut_params->obuf));
5382
5383         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
5384         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5385         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
5386         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
5387
5388         if (verify) {
5389                 ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
5390                                         ciphertext_pad_len);
5391                 memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
5392                 if (op_mode == OUT_OF_PLACE)
5393                         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
5394                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5395                         ciphertext_len);
5396         } else {
5397                 plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
5398                                         plaintext_pad_len);
5399                 memcpy(plaintext, tdata->plaintext.data, plaintext_len);
5400                 if (op_mode == OUT_OF_PLACE)
5401                         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
5402                 debug_hexdump(stdout, "plaintext:", plaintext,
5403                         plaintext_len);
5404         }
5405
5406         /* Create KASUMI operation */
5407         retval = create_wireless_algo_auth_cipher_operation(
5408                 tdata->digest.data, tdata->digest.len,
5409                 tdata->cipher_iv.data, tdata->cipher_iv.len,
5410                 NULL, 0,
5411                 (tdata->digest.offset_bytes == 0 ?
5412                 (verify ? ciphertext_pad_len : plaintext_pad_len)
5413                         : tdata->digest.offset_bytes),
5414                 tdata->validCipherLenInBits.len,
5415                 tdata->validCipherOffsetInBits.len,
5416                 tdata->validAuthLenInBits.len,
5417                 0,
5418                 op_mode, 0, verify);
5419
5420         if (retval < 0)
5421                 return retval;
5422
5423         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5424                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5425                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
5426         else
5427                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5428                         ut_params->op);
5429
5430         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5431
5432         ut_params->obuf = (op_mode == IN_PLACE ?
5433                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
5434
5435
5436         if (verify) {
5437                 if (ut_params->obuf)
5438                         plaintext = rte_pktmbuf_mtod(ut_params->obuf,
5439                                                         uint8_t *);
5440                 else
5441                         plaintext = ciphertext;
5442
5443                 debug_hexdump(stdout, "plaintext:", plaintext,
5444                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5445                 debug_hexdump(stdout, "plaintext expected:",
5446                         tdata->plaintext.data,
5447                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5448         } else {
5449                 if (ut_params->obuf)
5450                         ciphertext = rte_pktmbuf_mtod(ut_params->obuf,
5451                                                         uint8_t *);
5452                 else
5453                         ciphertext = plaintext;
5454
5455                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5456                         ciphertext_len);
5457                 debug_hexdump(stdout, "ciphertext expected:",
5458                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
5459
5460                 ut_params->digest = rte_pktmbuf_mtod(
5461                         ut_params->obuf, uint8_t *) +
5462                         (tdata->digest.offset_bytes == 0 ?
5463                         plaintext_pad_len : tdata->digest.offset_bytes);
5464
5465                 debug_hexdump(stdout, "digest:", ut_params->digest,
5466                         tdata->digest.len);
5467                 debug_hexdump(stdout, "digest expected:",
5468                         tdata->digest.data, tdata->digest.len);
5469         }
5470
5471         /* Validate obuf */
5472         if (verify) {
5473                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5474                         plaintext,
5475                         tdata->plaintext.data,
5476                         tdata->plaintext.len >> 3,
5477                         "KASUMI Plaintext data not as expected");
5478         } else {
5479                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5480                         ciphertext,
5481                         tdata->ciphertext.data,
5482                         tdata->ciphertext.len >> 3,
5483                         "KASUMI Ciphertext data not as expected");
5484
5485                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
5486                         ut_params->digest,
5487                         tdata->digest.data,
5488                         DIGEST_BYTE_LENGTH_KASUMI_F9,
5489                         "KASUMI Generated auth tag not as expected");
5490         }
5491         return 0;
5492 }
5493
5494 static int
5495 test_kasumi_auth_cipher_sgl(const struct kasumi_test_data *tdata,
5496         uint8_t op_mode, uint8_t verify)
5497 {
5498         struct crypto_testsuite_params *ts_params = &testsuite_params;
5499         struct crypto_unittest_params *ut_params = &unittest_params;
5500
5501         int retval;
5502
5503         const uint8_t *plaintext = NULL;
5504         const uint8_t *ciphertext = NULL;
5505         const uint8_t *digest = NULL;
5506         unsigned int plaintext_pad_len;
5507         unsigned int plaintext_len;
5508         unsigned int ciphertext_pad_len;
5509         unsigned int ciphertext_len;
5510         uint8_t buffer[10000];
5511         uint8_t digest_buffer[10000];
5512
5513         struct rte_cryptodev_info dev_info;
5514
5515         /* Verify the capabilities */
5516         struct rte_cryptodev_sym_capability_idx cap_idx;
5517         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
5518         cap_idx.algo.auth = RTE_CRYPTO_AUTH_KASUMI_F9;
5519         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5520                         &cap_idx) == NULL)
5521                 return TEST_SKIPPED;
5522         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5523         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
5524         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5525                         &cap_idx) == NULL)
5526                 return TEST_SKIPPED;
5527
5528         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5529                 return TEST_SKIPPED;
5530
5531         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5532
5533         uint64_t feat_flags = dev_info.feature_flags;
5534
5535         if (op_mode == IN_PLACE) {
5536                 if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
5537                         printf("Device doesn't support in-place scatter-gather "
5538                                         "in both input and output mbufs.\n");
5539                         return TEST_SKIPPED;
5540                 }
5541                 if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5542                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5543                         printf("Device doesn't support RAW data-path APIs.\n");
5544                         return TEST_SKIPPED;
5545                 }
5546         } else {
5547                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5548                         return TEST_SKIPPED;
5549                 if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
5550                         printf("Device doesn't support out-of-place scatter-gather "
5551                                         "in both input and output mbufs.\n");
5552                         return TEST_SKIPPED;
5553                 }
5554                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
5555                         printf("Device doesn't support digest encrypted.\n");
5556                         return TEST_SKIPPED;
5557                 }
5558         }
5559
5560         /* Create KASUMI session */
5561         retval = create_wireless_algo_auth_cipher_session(
5562                         ts_params->valid_devs[0],
5563                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
5564                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
5565                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
5566                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
5567                         RTE_CRYPTO_AUTH_KASUMI_F9,
5568                         RTE_CRYPTO_CIPHER_KASUMI_F8,
5569                         tdata->key.data, tdata->key.len,
5570                         0, tdata->digest.len,
5571                         tdata->cipher_iv.len);
5572
5573         if (retval != 0)
5574                 return retval;
5575
5576         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
5577         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5578         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
5579         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
5580
5581         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
5582                         plaintext_pad_len, 15, 0);
5583         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
5584                         "Failed to allocate input buffer in mempool");
5585
5586         if (op_mode == OUT_OF_PLACE) {
5587                 ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
5588                                 plaintext_pad_len, 15, 0);
5589                 TEST_ASSERT_NOT_NULL(ut_params->obuf,
5590                                 "Failed to allocate output buffer in mempool");
5591         }
5592
5593         if (verify) {
5594                 pktmbuf_write(ut_params->ibuf, 0, ciphertext_len,
5595                         tdata->ciphertext.data);
5596                 ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
5597                                         ciphertext_len, buffer);
5598                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5599                         ciphertext_len);
5600         } else {
5601                 pktmbuf_write(ut_params->ibuf, 0, plaintext_len,
5602                         tdata->plaintext.data);
5603                 plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
5604                                         plaintext_len, buffer);
5605                 debug_hexdump(stdout, "plaintext:", plaintext,
5606                         plaintext_len);
5607         }
5608         memset(buffer, 0, sizeof(buffer));
5609
5610         /* Create KASUMI operation */
5611         retval = create_wireless_algo_auth_cipher_operation(
5612                 tdata->digest.data, tdata->digest.len,
5613                 tdata->cipher_iv.data, tdata->cipher_iv.len,
5614                 NULL, 0,
5615                 (tdata->digest.offset_bytes == 0 ?
5616                 (verify ? ciphertext_pad_len : plaintext_pad_len)
5617                         : tdata->digest.offset_bytes),
5618                 tdata->validCipherLenInBits.len,
5619                 tdata->validCipherOffsetInBits.len,
5620                 tdata->validAuthLenInBits.len,
5621                 0,
5622                 op_mode, 1, verify);
5623
5624         if (retval < 0)
5625                 return retval;
5626
5627         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5628                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5629                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
5630         else
5631                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5632                         ut_params->op);
5633
5634         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5635
5636         ut_params->obuf = (op_mode == IN_PLACE ?
5637                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
5638
5639         if (verify) {
5640                 if (ut_params->obuf)
5641                         plaintext = rte_pktmbuf_read(ut_params->obuf, 0,
5642                                         plaintext_len, buffer);
5643                 else
5644                         plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
5645                                         plaintext_len, buffer);
5646
5647                 debug_hexdump(stdout, "plaintext:", plaintext,
5648                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5649                 debug_hexdump(stdout, "plaintext expected:",
5650                         tdata->plaintext.data,
5651                         (tdata->plaintext.len >> 3) - tdata->digest.len);
5652         } else {
5653                 if (ut_params->obuf)
5654                         ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
5655                                         ciphertext_len, buffer);
5656                 else
5657                         ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
5658                                         ciphertext_len, buffer);
5659
5660                 debug_hexdump(stdout, "ciphertext:", ciphertext,
5661                         ciphertext_len);
5662                 debug_hexdump(stdout, "ciphertext expected:",
5663                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
5664
5665                 if (ut_params->obuf)
5666                         digest = rte_pktmbuf_read(ut_params->obuf,
5667                                 (tdata->digest.offset_bytes == 0 ?
5668                                 plaintext_pad_len : tdata->digest.offset_bytes),
5669                                 tdata->digest.len, digest_buffer);
5670                 else
5671                         digest = rte_pktmbuf_read(ut_params->ibuf,
5672                                 (tdata->digest.offset_bytes == 0 ?
5673                                 plaintext_pad_len : tdata->digest.offset_bytes),
5674                                 tdata->digest.len, digest_buffer);
5675
5676                 debug_hexdump(stdout, "digest:", digest,
5677                         tdata->digest.len);
5678                 debug_hexdump(stdout, "digest expected:",
5679                         tdata->digest.data, tdata->digest.len);
5680         }
5681
5682         /* Validate obuf */
5683         if (verify) {
5684                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5685                         plaintext,
5686                         tdata->plaintext.data,
5687                         tdata->plaintext.len >> 3,
5688                         "KASUMI Plaintext data not as expected");
5689         } else {
5690                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5691                         ciphertext,
5692                         tdata->ciphertext.data,
5693                         tdata->validDataLenInBits.len,
5694                         "KASUMI Ciphertext data not as expected");
5695
5696                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
5697                         digest,
5698                         tdata->digest.data,
5699                         DIGEST_BYTE_LENGTH_KASUMI_F9,
5700                         "KASUMI Generated auth tag not as expected");
5701         }
5702         return 0;
5703 }
5704
5705 static int
5706 test_kasumi_cipher_auth(const struct kasumi_test_data *tdata)
5707 {
5708         struct crypto_testsuite_params *ts_params = &testsuite_params;
5709         struct crypto_unittest_params *ut_params = &unittest_params;
5710
5711         int retval;
5712
5713         uint8_t *plaintext, *ciphertext;
5714         unsigned plaintext_pad_len;
5715         unsigned plaintext_len;
5716         struct rte_cryptodev_info dev_info;
5717
5718         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5719         uint64_t feat_flags = dev_info.feature_flags;
5720
5721         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5722                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5723                 printf("Device doesn't support RAW data-path APIs.\n");
5724                 return TEST_SKIPPED;
5725         }
5726
5727         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5728                 return TEST_SKIPPED;
5729
5730         /* Verify the capabilities */
5731         struct rte_cryptodev_sym_capability_idx cap_idx;
5732         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
5733         cap_idx.algo.auth = RTE_CRYPTO_AUTH_KASUMI_F9;
5734         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5735                         &cap_idx) == NULL)
5736                 return TEST_SKIPPED;
5737         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5738         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_KASUMI_F8;
5739         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5740                         &cap_idx) == NULL)
5741                 return TEST_SKIPPED;
5742
5743         /* Create KASUMI session */
5744         retval = create_wireless_algo_cipher_auth_session(
5745                         ts_params->valid_devs[0],
5746                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
5747                         RTE_CRYPTO_AUTH_OP_GENERATE,
5748                         RTE_CRYPTO_AUTH_KASUMI_F9,
5749                         RTE_CRYPTO_CIPHER_KASUMI_F8,
5750                         tdata->key.data, tdata->key.len,
5751                         0, tdata->digest.len,
5752                         tdata->cipher_iv.len);
5753         if (retval != 0)
5754                 return retval;
5755
5756         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
5757
5758         /* clear mbuf payload */
5759         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
5760                         rte_pktmbuf_tailroom(ut_params->ibuf));
5761
5762         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5763         /* Append data which is padded to a multiple of */
5764         /* the algorithms block size */
5765         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
5766         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
5767                                 plaintext_pad_len);
5768         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
5769
5770         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
5771
5772         /* Create KASUMI operation */
5773         retval = create_wireless_algo_cipher_hash_operation(tdata->digest.data,
5774                                 tdata->digest.len, NULL, 0,
5775                                 plaintext_pad_len, RTE_CRYPTO_AUTH_OP_GENERATE,
5776                                 tdata->cipher_iv.data, tdata->cipher_iv.len,
5777                                 RTE_ALIGN_CEIL(tdata->validCipherLenInBits.len, 8),
5778                                 tdata->validCipherOffsetInBits.len,
5779                                 tdata->validAuthLenInBits.len,
5780                                 0
5781                                 );
5782         if (retval < 0)
5783                 return retval;
5784
5785         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5786                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5787                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
5788         else
5789                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5790                         ut_params->op);
5791         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5792
5793         if (ut_params->op->sym->m_dst)
5794                 ut_params->obuf = ut_params->op->sym->m_dst;
5795         else
5796                 ut_params->obuf = ut_params->op->sym->m_src;
5797
5798         ciphertext = rte_pktmbuf_mtod_offset(ut_params->obuf, uint8_t *,
5799                                 tdata->validCipherOffsetInBits.len >> 3);
5800
5801         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
5802                         + plaintext_pad_len;
5803
5804         const uint8_t *reference_ciphertext = tdata->ciphertext.data +
5805                                 (tdata->validCipherOffsetInBits.len >> 3);
5806         /* Validate obuf */
5807         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5808                 ciphertext,
5809                 reference_ciphertext,
5810                 tdata->validCipherLenInBits.len,
5811                 "KASUMI Ciphertext data not as expected");
5812
5813         /* Validate obuf */
5814         TEST_ASSERT_BUFFERS_ARE_EQUAL(
5815                 ut_params->digest,
5816                 tdata->digest.data,
5817                 DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
5818                 "KASUMI Generated auth tag not as expected");
5819         return 0;
5820 }
5821
5822 static int
5823 test_zuc_encryption(const struct wireless_test_data *tdata)
5824 {
5825         struct crypto_testsuite_params *ts_params = &testsuite_params;
5826         struct crypto_unittest_params *ut_params = &unittest_params;
5827
5828         int retval;
5829         uint8_t *plaintext, *ciphertext;
5830         unsigned plaintext_pad_len;
5831         unsigned plaintext_len;
5832         struct rte_cryptodev_info dev_info;
5833
5834         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5835         uint64_t feat_flags = dev_info.feature_flags;
5836
5837         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5838                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5839                 printf("Device doesn't support RAW data-path APIs.\n");
5840                 return TEST_SKIPPED;
5841         }
5842
5843         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5844                 return TEST_SKIPPED;
5845
5846         struct rte_cryptodev_sym_capability_idx cap_idx;
5847
5848         /* Check if device supports ZUC EEA3 */
5849         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5850         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_ZUC_EEA3;
5851
5852         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5853                         &cap_idx) == NULL)
5854                 return TEST_SKIPPED;
5855
5856         /* Create ZUC session */
5857         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
5858                                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
5859                                         RTE_CRYPTO_CIPHER_ZUC_EEA3,
5860                                         tdata->key.data, tdata->key.len,
5861                                         tdata->cipher_iv.len);
5862         if (retval < 0)
5863                 return retval;
5864
5865         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
5866
5867         /* Clear mbuf payload */
5868         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
5869                rte_pktmbuf_tailroom(ut_params->ibuf));
5870
5871         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5872         /* Append data which is padded to a multiple */
5873         /* of the algorithms block size */
5874         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
5875         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
5876                                 plaintext_pad_len);
5877         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
5878
5879         debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
5880
5881         /* Create ZUC operation */
5882         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
5883                                         tdata->cipher_iv.len,
5884                                         tdata->plaintext.len,
5885                                         0);
5886         if (retval < 0)
5887                 return retval;
5888
5889         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5890                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5891                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
5892         else
5893                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5894                                                 ut_params->op);
5895         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5896
5897         ut_params->obuf = ut_params->op->sym->m_dst;
5898         if (ut_params->obuf)
5899                 ciphertext = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *);
5900         else
5901                 ciphertext = plaintext;
5902
5903         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
5904
5905         /* Validate obuf */
5906         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
5907                 ciphertext,
5908                 tdata->ciphertext.data,
5909                 tdata->validCipherLenInBits.len,
5910                 "ZUC Ciphertext data not as expected");
5911         return 0;
5912 }
5913
5914 static int
5915 test_zuc_encryption_sgl(const struct wireless_test_data *tdata)
5916 {
5917         struct crypto_testsuite_params *ts_params = &testsuite_params;
5918         struct crypto_unittest_params *ut_params = &unittest_params;
5919
5920         int retval;
5921
5922         unsigned int plaintext_pad_len;
5923         unsigned int plaintext_len;
5924         const uint8_t *ciphertext;
5925         uint8_t ciphertext_buffer[2048];
5926         struct rte_cryptodev_info dev_info;
5927
5928         struct rte_cryptodev_sym_capability_idx cap_idx;
5929
5930         /* Check if device supports ZUC EEA3 */
5931         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
5932         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_ZUC_EEA3;
5933
5934         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
5935                         &cap_idx) == NULL)
5936                 return TEST_SKIPPED;
5937
5938         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
5939                 return TEST_SKIPPED;
5940
5941         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
5942
5943         uint64_t feat_flags = dev_info.feature_flags;
5944
5945         if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
5946                 printf("Device doesn't support in-place scatter-gather. "
5947                                 "Test Skipped.\n");
5948                 return TEST_SKIPPED;
5949         }
5950
5951         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
5952                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
5953                 printf("Device doesn't support RAW data-path APIs.\n");
5954                 return TEST_SKIPPED;
5955         }
5956
5957         plaintext_len = ceil_byte_length(tdata->plaintext.len);
5958
5959         /* Append data which is padded to a multiple */
5960         /* of the algorithms block size */
5961         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
5962
5963         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
5964                         plaintext_pad_len, 10, 0);
5965
5966         pktmbuf_write(ut_params->ibuf, 0, plaintext_len,
5967                         tdata->plaintext.data);
5968
5969         /* Create ZUC session */
5970         retval = create_wireless_algo_cipher_session(ts_params->valid_devs[0],
5971                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
5972                         RTE_CRYPTO_CIPHER_ZUC_EEA3,
5973                         tdata->key.data, tdata->key.len,
5974                         tdata->cipher_iv.len);
5975         if (retval < 0)
5976                 return retval;
5977
5978         /* Clear mbuf payload */
5979
5980         pktmbuf_write(ut_params->ibuf, 0, plaintext_len, tdata->plaintext.data);
5981
5982         /* Create ZUC operation */
5983         retval = create_wireless_algo_cipher_operation(tdata->cipher_iv.data,
5984                         tdata->cipher_iv.len, tdata->plaintext.len,
5985                         0);
5986         if (retval < 0)
5987                 return retval;
5988
5989         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
5990                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
5991                                 ut_params->op, 1, 0, 1, tdata->cipher_iv.len);
5992         else
5993                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
5994                                                 ut_params->op);
5995         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
5996
5997         ut_params->obuf = ut_params->op->sym->m_dst;
5998         if (ut_params->obuf)
5999                 ciphertext = rte_pktmbuf_read(ut_params->obuf,
6000                         0, plaintext_len, ciphertext_buffer);
6001         else
6002                 ciphertext = rte_pktmbuf_read(ut_params->ibuf,
6003                         0, plaintext_len, ciphertext_buffer);
6004
6005         /* Validate obuf */
6006         debug_hexdump(stdout, "ciphertext:", ciphertext, plaintext_len);
6007
6008         /* Validate obuf */
6009         TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
6010                 ciphertext,
6011                 tdata->ciphertext.data,
6012                 tdata->validCipherLenInBits.len,
6013                 "ZUC Ciphertext data not as expected");
6014
6015         return 0;
6016 }
6017
6018 static int
6019 test_zuc_authentication(const struct wireless_test_data *tdata)
6020 {
6021         struct crypto_testsuite_params *ts_params = &testsuite_params;
6022         struct crypto_unittest_params *ut_params = &unittest_params;
6023
6024         int retval;
6025         unsigned plaintext_pad_len;
6026         unsigned plaintext_len;
6027         uint8_t *plaintext;
6028
6029         struct rte_cryptodev_sym_capability_idx cap_idx;
6030         struct rte_cryptodev_info dev_info;
6031
6032         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
6033         uint64_t feat_flags = dev_info.feature_flags;
6034
6035         if (!(feat_flags & RTE_CRYPTODEV_FF_NON_BYTE_ALIGNED_DATA) &&
6036                         (tdata->validAuthLenInBits.len % 8 != 0)) {
6037                 printf("Device doesn't support NON-Byte Aligned Data.\n");
6038                 return TEST_SKIPPED;
6039         }
6040
6041         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
6042                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
6043                 printf("Device doesn't support RAW data-path APIs.\n");
6044                 return TEST_SKIPPED;
6045         }
6046
6047         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
6048                 return TEST_SKIPPED;
6049
6050         /* Check if device supports ZUC EIA3 */
6051         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
6052         cap_idx.algo.auth = RTE_CRYPTO_AUTH_ZUC_EIA3;
6053
6054         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
6055                         &cap_idx) == NULL)
6056                 return TEST_SKIPPED;
6057
6058         /* Create ZUC session */
6059         retval = create_wireless_algo_hash_session(ts_params->valid_devs[0],
6060                         tdata->key.data, tdata->key.len,
6061                         tdata->auth_iv.len, tdata->digest.len,
6062                         RTE_CRYPTO_AUTH_OP_GENERATE,
6063                         RTE_CRYPTO_AUTH_ZUC_EIA3);
6064         if (retval < 0)
6065                 return retval;
6066
6067         /* alloc mbuf and set payload */
6068         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
6069
6070         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
6071         rte_pktmbuf_tailroom(ut_params->ibuf));
6072
6073         plaintext_len = ceil_byte_length(tdata->plaintext.len);
6074         /* Append data which is padded to a multiple of */
6075         /* the algorithms block size */
6076         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 8);
6077         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
6078                                 plaintext_pad_len);
6079         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
6080
6081         /* Create ZUC operation */
6082         retval = create_wireless_algo_hash_operation(NULL, tdata->digest.len,
6083                         tdata->auth_iv.data, tdata->auth_iv.len,
6084                         plaintext_pad_len, RTE_CRYPTO_AUTH_OP_GENERATE,
6085                         tdata->validAuthLenInBits.len,
6086                         0);
6087         if (retval < 0)
6088                 return retval;
6089
6090         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6091                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
6092                                 ut_params->op, 0, 1, 1, 0);
6093         else
6094                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
6095                                 ut_params->op);
6096         ut_params->obuf = ut_params->op->sym->m_src;
6097         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
6098         ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
6099                         + plaintext_pad_len;
6100
6101         /* Validate obuf */
6102         TEST_ASSERT_BUFFERS_ARE_EQUAL(
6103         ut_params->digest,
6104         tdata->digest.data,
6105         tdata->digest.len,
6106         "ZUC Generated auth tag not as expected");
6107
6108         return 0;
6109 }
6110
6111 static int
6112 test_zuc_auth_cipher(const struct wireless_test_data *tdata,
6113         uint8_t op_mode, uint8_t verify)
6114 {
6115         struct crypto_testsuite_params *ts_params = &testsuite_params;
6116         struct crypto_unittest_params *ut_params = &unittest_params;
6117
6118         int retval;
6119
6120         uint8_t *plaintext = NULL, *ciphertext = NULL;
6121         unsigned int plaintext_pad_len;
6122         unsigned int plaintext_len;
6123         unsigned int ciphertext_pad_len;
6124         unsigned int ciphertext_len;
6125
6126         struct rte_cryptodev_info dev_info;
6127         struct rte_cryptodev_sym_capability_idx cap_idx;
6128
6129         /* Check if device supports ZUC EIA3 */
6130         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
6131         cap_idx.algo.auth = RTE_CRYPTO_AUTH_ZUC_EIA3;
6132
6133         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
6134                         &cap_idx) == NULL)
6135                 return TEST_SKIPPED;
6136
6137         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
6138
6139         uint64_t feat_flags = dev_info.feature_flags;
6140
6141         if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
6142                 printf("Device doesn't support digest encrypted.\n");
6143                 return TEST_SKIPPED;
6144         }
6145         if (op_mode == IN_PLACE) {
6146                 if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
6147                         printf("Device doesn't support in-place scatter-gather "
6148                                         "in both input and output mbufs.\n");
6149                         return TEST_SKIPPED;
6150                 }
6151
6152                 if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
6153                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
6154                         printf("Device doesn't support RAW data-path APIs.\n");
6155                         return TEST_SKIPPED;
6156                 }
6157         } else {
6158                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6159                         return TEST_SKIPPED;
6160                 if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
6161                         printf("Device doesn't support out-of-place scatter-gather "
6162                                         "in both input and output mbufs.\n");
6163                         return TEST_SKIPPED;
6164                 }
6165         }
6166
6167         /* Create ZUC session */
6168         retval = create_wireless_algo_auth_cipher_session(
6169                         ts_params->valid_devs[0],
6170                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
6171                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
6172                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
6173                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
6174                         RTE_CRYPTO_AUTH_ZUC_EIA3,
6175                         RTE_CRYPTO_CIPHER_ZUC_EEA3,
6176                         tdata->key.data, tdata->key.len,
6177                         tdata->auth_iv.len, tdata->digest.len,
6178                         tdata->cipher_iv.len);
6179
6180         if (retval != 0)
6181                 return retval;
6182
6183         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
6184         if (op_mode == OUT_OF_PLACE)
6185                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
6186
6187         /* clear mbuf payload */
6188         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
6189                 rte_pktmbuf_tailroom(ut_params->ibuf));
6190         if (op_mode == OUT_OF_PLACE)
6191                 memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
6192                         rte_pktmbuf_tailroom(ut_params->obuf));
6193
6194         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
6195         plaintext_len = ceil_byte_length(tdata->plaintext.len);
6196         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
6197         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
6198
6199         if (verify) {
6200                 ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
6201                                         ciphertext_pad_len);
6202                 memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
6203                 if (op_mode == OUT_OF_PLACE)
6204                         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
6205                 debug_hexdump(stdout, "ciphertext:", ciphertext,
6206                         ciphertext_len);
6207         } else {
6208                 plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
6209                                         plaintext_pad_len);
6210                 memcpy(plaintext, tdata->plaintext.data, plaintext_len);
6211                 if (op_mode == OUT_OF_PLACE)
6212                         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
6213                 debug_hexdump(stdout, "plaintext:", plaintext,
6214                         plaintext_len);
6215         }
6216
6217         /* Create ZUC operation */
6218         retval = create_wireless_algo_auth_cipher_operation(
6219                 tdata->digest.data, tdata->digest.len,
6220                 tdata->cipher_iv.data, tdata->cipher_iv.len,
6221                 tdata->auth_iv.data, tdata->auth_iv.len,
6222                 (tdata->digest.offset_bytes == 0 ?
6223                 (verify ? ciphertext_pad_len : plaintext_pad_len)
6224                         : tdata->digest.offset_bytes),
6225                 tdata->validCipherLenInBits.len,
6226                 tdata->validCipherOffsetInBits.len,
6227                 tdata->validAuthLenInBits.len,
6228                 0,
6229                 op_mode, 0, verify);
6230
6231         if (retval < 0)
6232                 return retval;
6233
6234         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6235                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
6236                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
6237         else
6238                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
6239                         ut_params->op);
6240
6241         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
6242
6243         ut_params->obuf = (op_mode == IN_PLACE ?
6244                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
6245
6246
6247         if (verify) {
6248                 if (ut_params->obuf)
6249                         plaintext = rte_pktmbuf_mtod(ut_params->obuf,
6250                                                         uint8_t *);
6251                 else
6252                         plaintext = ciphertext;
6253
6254                 debug_hexdump(stdout, "plaintext:", plaintext,
6255                         (tdata->plaintext.len >> 3) - tdata->digest.len);
6256                 debug_hexdump(stdout, "plaintext expected:",
6257                         tdata->plaintext.data,
6258                         (tdata->plaintext.len >> 3) - tdata->digest.len);
6259         } else {
6260                 if (ut_params->obuf)
6261                         ciphertext = rte_pktmbuf_mtod(ut_params->obuf,
6262                                                         uint8_t *);
6263                 else
6264                         ciphertext = plaintext;
6265
6266                 debug_hexdump(stdout, "ciphertext:", ciphertext,
6267                         ciphertext_len);
6268                 debug_hexdump(stdout, "ciphertext expected:",
6269                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
6270
6271                 ut_params->digest = rte_pktmbuf_mtod(
6272                         ut_params->obuf, uint8_t *) +
6273                         (tdata->digest.offset_bytes == 0 ?
6274                         plaintext_pad_len : tdata->digest.offset_bytes);
6275
6276                 debug_hexdump(stdout, "digest:", ut_params->digest,
6277                         tdata->digest.len);
6278                 debug_hexdump(stdout, "digest expected:",
6279                         tdata->digest.data, tdata->digest.len);
6280         }
6281
6282         /* Validate obuf */
6283         if (verify) {
6284                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
6285                         plaintext,
6286                         tdata->plaintext.data,
6287                         tdata->plaintext.len >> 3,
6288                         "ZUC Plaintext data not as expected");
6289         } else {
6290                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
6291                         ciphertext,
6292                         tdata->ciphertext.data,
6293                         tdata->ciphertext.len >> 3,
6294                         "ZUC Ciphertext data not as expected");
6295
6296                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
6297                         ut_params->digest,
6298                         tdata->digest.data,
6299                         DIGEST_BYTE_LENGTH_KASUMI_F9,
6300                         "ZUC Generated auth tag not as expected");
6301         }
6302         return 0;
6303 }
6304
6305 static int
6306 test_zuc_auth_cipher_sgl(const struct wireless_test_data *tdata,
6307         uint8_t op_mode, uint8_t verify)
6308 {
6309         struct crypto_testsuite_params *ts_params = &testsuite_params;
6310         struct crypto_unittest_params *ut_params = &unittest_params;
6311
6312         int retval;
6313
6314         const uint8_t *plaintext = NULL;
6315         const uint8_t *ciphertext = NULL;
6316         const uint8_t *digest = NULL;
6317         unsigned int plaintext_pad_len;
6318         unsigned int plaintext_len;
6319         unsigned int ciphertext_pad_len;
6320         unsigned int ciphertext_len;
6321         uint8_t buffer[10000];
6322         uint8_t digest_buffer[10000];
6323
6324         struct rte_cryptodev_info dev_info;
6325         struct rte_cryptodev_sym_capability_idx cap_idx;
6326
6327         /* Check if device supports ZUC EIA3 */
6328         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
6329         cap_idx.algo.auth = RTE_CRYPTO_AUTH_ZUC_EIA3;
6330
6331         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
6332                         &cap_idx) == NULL)
6333                 return TEST_SKIPPED;
6334
6335         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
6336
6337         uint64_t feat_flags = dev_info.feature_flags;
6338
6339         if (op_mode == IN_PLACE) {
6340                 if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
6341                         printf("Device doesn't support in-place scatter-gather "
6342                                         "in both input and output mbufs.\n");
6343                         return TEST_SKIPPED;
6344                 }
6345
6346                 if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
6347                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
6348                         printf("Device doesn't support RAW data-path APIs.\n");
6349                         return TEST_SKIPPED;
6350                 }
6351         } else {
6352                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6353                         return TEST_SKIPPED;
6354                 if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
6355                         printf("Device doesn't support out-of-place scatter-gather "
6356                                         "in both input and output mbufs.\n");
6357                         return TEST_SKIPPED;
6358                 }
6359                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
6360                         printf("Device doesn't support digest encrypted.\n");
6361                         return TEST_SKIPPED;
6362                 }
6363         }
6364
6365         /* Create ZUC session */
6366         retval = create_wireless_algo_auth_cipher_session(
6367                         ts_params->valid_devs[0],
6368                         (verify ? RTE_CRYPTO_CIPHER_OP_DECRYPT
6369                                         : RTE_CRYPTO_CIPHER_OP_ENCRYPT),
6370                         (verify ? RTE_CRYPTO_AUTH_OP_VERIFY
6371                                         : RTE_CRYPTO_AUTH_OP_GENERATE),
6372                         RTE_CRYPTO_AUTH_ZUC_EIA3,
6373                         RTE_CRYPTO_CIPHER_ZUC_EEA3,
6374                         tdata->key.data, tdata->key.len,
6375                         tdata->auth_iv.len, tdata->digest.len,
6376                         tdata->cipher_iv.len);
6377
6378         if (retval != 0)
6379                 return retval;
6380
6381         ciphertext_len = ceil_byte_length(tdata->ciphertext.len);
6382         plaintext_len = ceil_byte_length(tdata->plaintext.len);
6383         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
6384         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
6385
6386         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
6387                         plaintext_pad_len, 15, 0);
6388         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
6389                         "Failed to allocate input buffer in mempool");
6390
6391         if (op_mode == OUT_OF_PLACE) {
6392                 ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
6393                                 plaintext_pad_len, 15, 0);
6394                 TEST_ASSERT_NOT_NULL(ut_params->obuf,
6395                                 "Failed to allocate output buffer in mempool");
6396         }
6397
6398         if (verify) {
6399                 pktmbuf_write(ut_params->ibuf, 0, ciphertext_len,
6400                         tdata->ciphertext.data);
6401                 ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
6402                                         ciphertext_len, buffer);
6403                 debug_hexdump(stdout, "ciphertext:", ciphertext,
6404                         ciphertext_len);
6405         } else {
6406                 pktmbuf_write(ut_params->ibuf, 0, plaintext_len,
6407                         tdata->plaintext.data);
6408                 plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
6409                                         plaintext_len, buffer);
6410                 debug_hexdump(stdout, "plaintext:", plaintext,
6411                         plaintext_len);
6412         }
6413         memset(buffer, 0, sizeof(buffer));
6414
6415         /* Create ZUC operation */
6416         retval = create_wireless_algo_auth_cipher_operation(
6417                 tdata->digest.data, tdata->digest.len,
6418                 tdata->cipher_iv.data, tdata->cipher_iv.len,
6419                 NULL, 0,
6420                 (tdata->digest.offset_bytes == 0 ?
6421                 (verify ? ciphertext_pad_len : plaintext_pad_len)
6422                         : tdata->digest.offset_bytes),
6423                 tdata->validCipherLenInBits.len,
6424                 tdata->validCipherOffsetInBits.len,
6425                 tdata->validAuthLenInBits.len,
6426                 0,
6427                 op_mode, 1, verify);
6428
6429         if (retval < 0)
6430                 return retval;
6431
6432         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6433                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
6434                                 ut_params->op, 1, 1, 1, tdata->cipher_iv.len);
6435         else
6436                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
6437                         ut_params->op);
6438
6439         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
6440
6441         ut_params->obuf = (op_mode == IN_PLACE ?
6442                 ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
6443
6444         if (verify) {
6445                 if (ut_params->obuf)
6446                         plaintext = rte_pktmbuf_read(ut_params->obuf, 0,
6447                                         plaintext_len, buffer);
6448                 else
6449                         plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
6450                                         plaintext_len, buffer);
6451
6452                 debug_hexdump(stdout, "plaintext:", plaintext,
6453                         (tdata->plaintext.len >> 3) - tdata->digest.len);
6454                 debug_hexdump(stdout, "plaintext expected:",
6455                         tdata->plaintext.data,
6456                         (tdata->plaintext.len >> 3) - tdata->digest.len);
6457         } else {
6458                 if (ut_params->obuf)
6459                         ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
6460                                         ciphertext_len, buffer);
6461                 else
6462                         ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
6463                                         ciphertext_len, buffer);
6464
6465                 debug_hexdump(stdout, "ciphertext:", ciphertext,
6466                         ciphertext_len);
6467                 debug_hexdump(stdout, "ciphertext expected:",
6468                         tdata->ciphertext.data, tdata->ciphertext.len >> 3);
6469
6470                 if (ut_params->obuf)
6471                         digest = rte_pktmbuf_read(ut_params->obuf,
6472                                 (tdata->digest.offset_bytes == 0 ?
6473                                 plaintext_pad_len : tdata->digest.offset_bytes),
6474                                 tdata->digest.len, digest_buffer);
6475                 else
6476                         digest = rte_pktmbuf_read(ut_params->ibuf,
6477                                 (tdata->digest.offset_bytes == 0 ?
6478                                 plaintext_pad_len : tdata->digest.offset_bytes),
6479                                 tdata->digest.len, digest_buffer);
6480
6481                 debug_hexdump(stdout, "digest:", digest,
6482                         tdata->digest.len);
6483                 debug_hexdump(stdout, "digest expected:",
6484                         tdata->digest.data, tdata->digest.len);
6485         }
6486
6487         /* Validate obuf */
6488         if (verify) {
6489                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
6490                         plaintext,
6491                         tdata->plaintext.data,
6492                         tdata->plaintext.len >> 3,
6493                         "ZUC Plaintext data not as expected");
6494         } else {
6495                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
6496                         ciphertext,
6497                         tdata->ciphertext.data,
6498                         tdata->validDataLenInBits.len,
6499                         "ZUC Ciphertext data not as expected");
6500
6501                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
6502                         digest,
6503                         tdata->digest.data,
6504                         DIGEST_BYTE_LENGTH_KASUMI_F9,
6505                         "ZUC Generated auth tag not as expected");
6506         }
6507         return 0;
6508 }
6509
6510 static int
6511 test_kasumi_encryption_test_case_1(void)
6512 {
6513         return test_kasumi_encryption(&kasumi_test_case_1);
6514 }
6515
6516 static int
6517 test_kasumi_encryption_test_case_1_sgl(void)
6518 {
6519         return test_kasumi_encryption_sgl(&kasumi_test_case_1);
6520 }
6521
6522 static int
6523 test_kasumi_encryption_test_case_1_oop(void)
6524 {
6525         return test_kasumi_encryption_oop(&kasumi_test_case_1);
6526 }
6527
6528 static int
6529 test_kasumi_encryption_test_case_1_oop_sgl(void)
6530 {
6531         return test_kasumi_encryption_oop_sgl(&kasumi_test_case_1);
6532 }
6533
6534 static int
6535 test_kasumi_encryption_test_case_2(void)
6536 {
6537         return test_kasumi_encryption(&kasumi_test_case_2);
6538 }
6539
6540 static int
6541 test_kasumi_encryption_test_case_3(void)
6542 {
6543         return test_kasumi_encryption(&kasumi_test_case_3);
6544 }
6545
6546 static int
6547 test_kasumi_encryption_test_case_4(void)
6548 {
6549         return test_kasumi_encryption(&kasumi_test_case_4);
6550 }
6551
6552 static int
6553 test_kasumi_encryption_test_case_5(void)
6554 {
6555         return test_kasumi_encryption(&kasumi_test_case_5);
6556 }
6557
6558 static int
6559 test_kasumi_decryption_test_case_1(void)
6560 {
6561         return test_kasumi_decryption(&kasumi_test_case_1);
6562 }
6563
6564 static int
6565 test_kasumi_decryption_test_case_1_oop(void)
6566 {
6567         return test_kasumi_decryption_oop(&kasumi_test_case_1);
6568 }
6569
6570 static int
6571 test_kasumi_decryption_test_case_2(void)
6572 {
6573         return test_kasumi_decryption(&kasumi_test_case_2);
6574 }
6575
6576 static int
6577 test_kasumi_decryption_test_case_3(void)
6578 {
6579         /* rte_crypto_mbuf_to_vec does not support incomplete mbuf build */
6580         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6581                 return TEST_SKIPPED;
6582         return test_kasumi_decryption(&kasumi_test_case_3);
6583 }
6584
6585 static int
6586 test_kasumi_decryption_test_case_4(void)
6587 {
6588         return test_kasumi_decryption(&kasumi_test_case_4);
6589 }
6590
6591 static int
6592 test_kasumi_decryption_test_case_5(void)
6593 {
6594         return test_kasumi_decryption(&kasumi_test_case_5);
6595 }
6596 static int
6597 test_snow3g_encryption_test_case_1(void)
6598 {
6599         return test_snow3g_encryption(&snow3g_test_case_1);
6600 }
6601
6602 static int
6603 test_snow3g_encryption_test_case_1_oop(void)
6604 {
6605         return test_snow3g_encryption_oop(&snow3g_test_case_1);
6606 }
6607
6608 static int
6609 test_snow3g_encryption_test_case_1_oop_sgl(void)
6610 {
6611         return test_snow3g_encryption_oop_sgl(&snow3g_test_case_1);
6612 }
6613
6614
6615 static int
6616 test_snow3g_encryption_test_case_1_offset_oop(void)
6617 {
6618         return test_snow3g_encryption_offset_oop(&snow3g_test_case_1);
6619 }
6620
6621 static int
6622 test_snow3g_encryption_test_case_2(void)
6623 {
6624         return test_snow3g_encryption(&snow3g_test_case_2);
6625 }
6626
6627 static int
6628 test_snow3g_encryption_test_case_3(void)
6629 {
6630         return test_snow3g_encryption(&snow3g_test_case_3);
6631 }
6632
6633 static int
6634 test_snow3g_encryption_test_case_4(void)
6635 {
6636         return test_snow3g_encryption(&snow3g_test_case_4);
6637 }
6638
6639 static int
6640 test_snow3g_encryption_test_case_5(void)
6641 {
6642         return test_snow3g_encryption(&snow3g_test_case_5);
6643 }
6644
6645 static int
6646 test_snow3g_decryption_test_case_1(void)
6647 {
6648         return test_snow3g_decryption(&snow3g_test_case_1);
6649 }
6650
6651 static int
6652 test_snow3g_decryption_test_case_1_oop(void)
6653 {
6654         return test_snow3g_decryption_oop(&snow3g_test_case_1);
6655 }
6656
6657 static int
6658 test_snow3g_decryption_test_case_2(void)
6659 {
6660         return test_snow3g_decryption(&snow3g_test_case_2);
6661 }
6662
6663 static int
6664 test_snow3g_decryption_test_case_3(void)
6665 {
6666         return test_snow3g_decryption(&snow3g_test_case_3);
6667 }
6668
6669 static int
6670 test_snow3g_decryption_test_case_4(void)
6671 {
6672         return test_snow3g_decryption(&snow3g_test_case_4);
6673 }
6674
6675 static int
6676 test_snow3g_decryption_test_case_5(void)
6677 {
6678         return test_snow3g_decryption(&snow3g_test_case_5);
6679 }
6680
6681 /*
6682  * Function prepares snow3g_hash_test_data from snow3g_test_data.
6683  * Pattern digest from snow3g_test_data must be allocated as
6684  * 4 last bytes in plaintext.
6685  */
6686 static void
6687 snow3g_hash_test_vector_setup(const struct snow3g_test_data *pattern,
6688                 struct snow3g_hash_test_data *output)
6689 {
6690         if ((pattern != NULL) && (output != NULL)) {
6691                 output->key.len = pattern->key.len;
6692
6693                 memcpy(output->key.data,
6694                 pattern->key.data, pattern->key.len);
6695
6696                 output->auth_iv.len = pattern->auth_iv.len;
6697
6698                 memcpy(output->auth_iv.data,
6699                 pattern->auth_iv.data, pattern->auth_iv.len);
6700
6701                 output->plaintext.len = pattern->plaintext.len;
6702
6703                 memcpy(output->plaintext.data,
6704                 pattern->plaintext.data, pattern->plaintext.len >> 3);
6705
6706                 output->digest.len = pattern->digest.len;
6707
6708                 memcpy(output->digest.data,
6709                 &pattern->plaintext.data[pattern->digest.offset_bytes],
6710                 pattern->digest.len);
6711
6712                 output->validAuthLenInBits.len =
6713                 pattern->validAuthLenInBits.len;
6714         }
6715 }
6716
6717 /*
6718  * Test case verify computed cipher and digest from snow3g_test_case_7 data.
6719  */
6720 static int
6721 test_snow3g_decryption_with_digest_test_case_1(void)
6722 {
6723         struct snow3g_hash_test_data snow3g_hash_data;
6724         struct rte_cryptodev_info dev_info;
6725         struct crypto_testsuite_params *ts_params = &testsuite_params;
6726
6727         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
6728         uint64_t feat_flags = dev_info.feature_flags;
6729
6730         if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
6731                 printf("Device doesn't support encrypted digest operations.\n");
6732                 return TEST_SKIPPED;
6733         }
6734
6735         /*
6736          * Function prepare data for hash veryfication test case.
6737          * Digest is allocated in 4 last bytes in plaintext, pattern.
6738          */
6739         snow3g_hash_test_vector_setup(&snow3g_test_case_7, &snow3g_hash_data);
6740
6741         return test_snow3g_decryption(&snow3g_test_case_7) &
6742                         test_snow3g_authentication_verify(&snow3g_hash_data);
6743 }
6744
6745 static int
6746 test_snow3g_cipher_auth_test_case_1(void)
6747 {
6748         return test_snow3g_cipher_auth(&snow3g_test_case_3);
6749 }
6750
6751 static int
6752 test_snow3g_auth_cipher_test_case_1(void)
6753 {
6754         return test_snow3g_auth_cipher(
6755                 &snow3g_auth_cipher_test_case_1, IN_PLACE, 0);
6756 }
6757
6758 static int
6759 test_snow3g_auth_cipher_test_case_2(void)
6760 {
6761         return test_snow3g_auth_cipher(
6762                 &snow3g_auth_cipher_test_case_2, IN_PLACE, 0);
6763 }
6764
6765 static int
6766 test_snow3g_auth_cipher_test_case_2_oop(void)
6767 {
6768         return test_snow3g_auth_cipher(
6769                 &snow3g_auth_cipher_test_case_2, OUT_OF_PLACE, 0);
6770 }
6771
6772 static int
6773 test_snow3g_auth_cipher_part_digest_enc(void)
6774 {
6775         return test_snow3g_auth_cipher(
6776                 &snow3g_auth_cipher_partial_digest_encryption,
6777                         IN_PLACE, 0);
6778 }
6779
6780 static int
6781 test_snow3g_auth_cipher_part_digest_enc_oop(void)
6782 {
6783         return test_snow3g_auth_cipher(
6784                 &snow3g_auth_cipher_partial_digest_encryption,
6785                         OUT_OF_PLACE, 0);
6786 }
6787
6788 static int
6789 test_snow3g_auth_cipher_test_case_3_sgl(void)
6790 {
6791         /* rte_crypto_mbuf_to_vec does not support incomplete mbuf build */
6792         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6793                 return TEST_SKIPPED;
6794         return test_snow3g_auth_cipher_sgl(
6795                 &snow3g_auth_cipher_test_case_3, IN_PLACE, 0);
6796 }
6797
6798 static int
6799 test_snow3g_auth_cipher_test_case_3_oop_sgl(void)
6800 {
6801         return test_snow3g_auth_cipher_sgl(
6802                 &snow3g_auth_cipher_test_case_3, OUT_OF_PLACE, 0);
6803 }
6804
6805 static int
6806 test_snow3g_auth_cipher_part_digest_enc_sgl(void)
6807 {
6808         /* rte_crypto_mbuf_to_vec does not support incomplete mbuf build */
6809         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
6810                 return TEST_SKIPPED;
6811         return test_snow3g_auth_cipher_sgl(
6812                 &snow3g_auth_cipher_partial_digest_encryption,
6813                         IN_PLACE, 0);
6814 }
6815
6816 static int
6817 test_snow3g_auth_cipher_part_digest_enc_oop_sgl(void)
6818 {
6819         return test_snow3g_auth_cipher_sgl(
6820                 &snow3g_auth_cipher_partial_digest_encryption,
6821                         OUT_OF_PLACE, 0);
6822 }
6823
6824 static int
6825 test_snow3g_auth_cipher_verify_test_case_1(void)
6826 {
6827         return test_snow3g_auth_cipher(
6828                 &snow3g_auth_cipher_test_case_1, IN_PLACE, 1);
6829 }
6830
6831 static int
6832 test_snow3g_auth_cipher_verify_test_case_2(void)
6833 {
6834         return test_snow3g_auth_cipher(
6835                 &snow3g_auth_cipher_test_case_2, IN_PLACE, 1);
6836 }
6837
6838 static int
6839 test_snow3g_auth_cipher_verify_test_case_2_oop(void)
6840 {
6841         return test_snow3g_auth_cipher(
6842                 &snow3g_auth_cipher_test_case_2, OUT_OF_PLACE, 1);
6843 }
6844
6845 static int
6846 test_snow3g_auth_cipher_verify_part_digest_enc(void)
6847 {
6848         return test_snow3g_auth_cipher(
6849                 &snow3g_auth_cipher_partial_digest_encryption,
6850                         IN_PLACE, 1);
6851 }
6852
6853 static int
6854 test_snow3g_auth_cipher_verify_part_digest_enc_oop(void)
6855 {
6856         return test_snow3g_auth_cipher(
6857                 &snow3g_auth_cipher_partial_digest_encryption,
6858                         OUT_OF_PLACE, 1);
6859 }
6860
6861 static int
6862 test_snow3g_auth_cipher_verify_test_case_3_sgl(void)
6863 {
6864         return test_snow3g_auth_cipher_sgl(
6865                 &snow3g_auth_cipher_test_case_3, IN_PLACE, 1);
6866 }
6867
6868 static int
6869 test_snow3g_auth_cipher_verify_test_case_3_oop_sgl(void)
6870 {
6871         return test_snow3g_auth_cipher_sgl(
6872                 &snow3g_auth_cipher_test_case_3, OUT_OF_PLACE, 1);
6873 }
6874
6875 static int
6876 test_snow3g_auth_cipher_verify_part_digest_enc_sgl(void)
6877 {
6878         return test_snow3g_auth_cipher_sgl(
6879                 &snow3g_auth_cipher_partial_digest_encryption,
6880                         IN_PLACE, 1);
6881 }
6882
6883 static int
6884 test_snow3g_auth_cipher_verify_part_digest_enc_oop_sgl(void)
6885 {
6886         return test_snow3g_auth_cipher_sgl(
6887                 &snow3g_auth_cipher_partial_digest_encryption,
6888                         OUT_OF_PLACE, 1);
6889 }
6890
6891 static int
6892 test_snow3g_auth_cipher_with_digest_test_case_1(void)
6893 {
6894         return test_snow3g_auth_cipher(
6895                 &snow3g_test_case_7, IN_PLACE, 0);
6896 }
6897
6898 static int
6899 test_kasumi_auth_cipher_test_case_1(void)
6900 {
6901         return test_kasumi_auth_cipher(
6902                 &kasumi_test_case_3, IN_PLACE, 0);
6903 }
6904
6905 static int
6906 test_kasumi_auth_cipher_test_case_2(void)
6907 {
6908         return test_kasumi_auth_cipher(
6909                 &kasumi_auth_cipher_test_case_2, IN_PLACE, 0);
6910 }
6911
6912 static int
6913 test_kasumi_auth_cipher_test_case_2_oop(void)
6914 {
6915         return test_kasumi_auth_cipher(
6916                 &kasumi_auth_cipher_test_case_2, OUT_OF_PLACE, 0);
6917 }
6918
6919 static int
6920 test_kasumi_auth_cipher_test_case_2_sgl(void)
6921 {
6922         return test_kasumi_auth_cipher_sgl(
6923                 &kasumi_auth_cipher_test_case_2, IN_PLACE, 0);
6924 }
6925
6926 static int
6927 test_kasumi_auth_cipher_test_case_2_oop_sgl(void)
6928 {
6929         return test_kasumi_auth_cipher_sgl(
6930                 &kasumi_auth_cipher_test_case_2, OUT_OF_PLACE, 0);
6931 }
6932
6933 static int
6934 test_kasumi_auth_cipher_verify_test_case_1(void)
6935 {
6936         return test_kasumi_auth_cipher(
6937                 &kasumi_test_case_3, IN_PLACE, 1);
6938 }
6939
6940 static int
6941 test_kasumi_auth_cipher_verify_test_case_2(void)
6942 {
6943         return test_kasumi_auth_cipher(
6944                 &kasumi_auth_cipher_test_case_2, IN_PLACE, 1);
6945 }
6946
6947 static int
6948 test_kasumi_auth_cipher_verify_test_case_2_oop(void)
6949 {
6950         return test_kasumi_auth_cipher(
6951                 &kasumi_auth_cipher_test_case_2, OUT_OF_PLACE, 1);
6952 }
6953
6954 static int
6955 test_kasumi_auth_cipher_verify_test_case_2_sgl(void)
6956 {
6957         return test_kasumi_auth_cipher_sgl(
6958                 &kasumi_auth_cipher_test_case_2, IN_PLACE, 1);
6959 }
6960
6961 static int
6962 test_kasumi_auth_cipher_verify_test_case_2_oop_sgl(void)
6963 {
6964         return test_kasumi_auth_cipher_sgl(
6965                 &kasumi_auth_cipher_test_case_2, OUT_OF_PLACE, 1);
6966 }
6967
6968 static int
6969 test_kasumi_cipher_auth_test_case_1(void)
6970 {
6971         return test_kasumi_cipher_auth(&kasumi_test_case_6);
6972 }
6973
6974 static int
6975 test_zuc_encryption_test_case_1(void)
6976 {
6977         return test_zuc_encryption(&zuc_test_case_cipher_193b);
6978 }
6979
6980 static int
6981 test_zuc_encryption_test_case_2(void)
6982 {
6983         return test_zuc_encryption(&zuc_test_case_cipher_800b);
6984 }
6985
6986 static int
6987 test_zuc_encryption_test_case_3(void)
6988 {
6989         return test_zuc_encryption(&zuc_test_case_cipher_1570b);
6990 }
6991
6992 static int
6993 test_zuc_encryption_test_case_4(void)
6994 {
6995         return test_zuc_encryption(&zuc_test_case_cipher_2798b);
6996 }
6997
6998 static int
6999 test_zuc_encryption_test_case_5(void)
7000 {
7001         return test_zuc_encryption(&zuc_test_case_cipher_4019b);
7002 }
7003
7004 static int
7005 test_zuc_encryption_test_case_6_sgl(void)
7006 {
7007         return test_zuc_encryption_sgl(&zuc_test_case_cipher_193b);
7008 }
7009
7010 static int
7011 test_zuc_hash_generate_test_case_1(void)
7012 {
7013         return test_zuc_authentication(&zuc_test_case_auth_1b);
7014 }
7015
7016 static int
7017 test_zuc_hash_generate_test_case_2(void)
7018 {
7019         return test_zuc_authentication(&zuc_test_case_auth_90b);
7020 }
7021
7022 static int
7023 test_zuc_hash_generate_test_case_3(void)
7024 {
7025         return test_zuc_authentication(&zuc_test_case_auth_577b);
7026 }
7027
7028 static int
7029 test_zuc_hash_generate_test_case_4(void)
7030 {
7031         return test_zuc_authentication(&zuc_test_case_auth_2079b);
7032 }
7033
7034 static int
7035 test_zuc_hash_generate_test_case_5(void)
7036 {
7037         return test_zuc_authentication(&zuc_test_auth_5670b);
7038 }
7039
7040 static int
7041 test_zuc_hash_generate_test_case_6(void)
7042 {
7043         return test_zuc_authentication(&zuc_test_case_auth_128b);
7044 }
7045
7046 static int
7047 test_zuc_hash_generate_test_case_7(void)
7048 {
7049         return test_zuc_authentication(&zuc_test_case_auth_2080b);
7050 }
7051
7052 static int
7053 test_zuc_hash_generate_test_case_8(void)
7054 {
7055         return test_zuc_authentication(&zuc_test_case_auth_584b);
7056 }
7057
7058 static int
7059 test_zuc_cipher_auth_test_case_1(void)
7060 {
7061         return test_zuc_cipher_auth(&zuc_test_case_cipher_200b_auth_200b);
7062 }
7063
7064 static int
7065 test_zuc_cipher_auth_test_case_2(void)
7066 {
7067         return test_zuc_cipher_auth(&zuc_test_case_cipher_800b_auth_120b);
7068 }
7069
7070 static int
7071 test_zuc_auth_cipher_test_case_1(void)
7072 {
7073         return test_zuc_auth_cipher(
7074                 &zuc_auth_cipher_test_case_1, IN_PLACE, 0);
7075 }
7076
7077 static int
7078 test_zuc_auth_cipher_test_case_1_oop(void)
7079 {
7080         return test_zuc_auth_cipher(
7081                 &zuc_auth_cipher_test_case_1, OUT_OF_PLACE, 0);
7082 }
7083
7084 static int
7085 test_zuc_auth_cipher_test_case_1_sgl(void)
7086 {
7087         return test_zuc_auth_cipher_sgl(
7088                 &zuc_auth_cipher_test_case_1, IN_PLACE, 0);
7089 }
7090
7091 static int
7092 test_zuc_auth_cipher_test_case_1_oop_sgl(void)
7093 {
7094         return test_zuc_auth_cipher_sgl(
7095                 &zuc_auth_cipher_test_case_1, OUT_OF_PLACE, 0);
7096 }
7097
7098 static int
7099 test_zuc_auth_cipher_verify_test_case_1(void)
7100 {
7101         return test_zuc_auth_cipher(
7102                 &zuc_auth_cipher_test_case_1, IN_PLACE, 1);
7103 }
7104
7105 static int
7106 test_zuc_auth_cipher_verify_test_case_1_oop(void)
7107 {
7108         return test_zuc_auth_cipher(
7109                 &zuc_auth_cipher_test_case_1, OUT_OF_PLACE, 1);
7110 }
7111
7112 static int
7113 test_zuc_auth_cipher_verify_test_case_1_sgl(void)
7114 {
7115         return test_zuc_auth_cipher_sgl(
7116                 &zuc_auth_cipher_test_case_1, IN_PLACE, 1);
7117 }
7118
7119 static int
7120 test_zuc_auth_cipher_verify_test_case_1_oop_sgl(void)
7121 {
7122         return test_zuc_auth_cipher_sgl(
7123                 &zuc_auth_cipher_test_case_1, OUT_OF_PLACE, 1);
7124 }
7125
7126 static int
7127 test_mixed_check_if_unsupported(const struct mixed_cipher_auth_test_data *tdata)
7128 {
7129         uint8_t dev_id = testsuite_params.valid_devs[0];
7130
7131         struct rte_cryptodev_sym_capability_idx cap_idx;
7132
7133         /* Check if device supports particular cipher algorithm */
7134         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
7135         cap_idx.algo.cipher = tdata->cipher_algo;
7136         if (rte_cryptodev_sym_capability_get(dev_id, &cap_idx) == NULL)
7137                 return TEST_SKIPPED;
7138
7139         /* Check if device supports particular hash algorithm */
7140         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
7141         cap_idx.algo.auth = tdata->auth_algo;
7142         if (rte_cryptodev_sym_capability_get(dev_id, &cap_idx) == NULL)
7143                 return TEST_SKIPPED;
7144
7145         return 0;
7146 }
7147
7148 static int
7149 test_mixed_auth_cipher(const struct mixed_cipher_auth_test_data *tdata,
7150         uint8_t op_mode, uint8_t verify)
7151 {
7152         struct crypto_testsuite_params *ts_params = &testsuite_params;
7153         struct crypto_unittest_params *ut_params = &unittest_params;
7154
7155         int retval;
7156
7157         uint8_t *plaintext = NULL, *ciphertext = NULL;
7158         unsigned int plaintext_pad_len;
7159         unsigned int plaintext_len;
7160         unsigned int ciphertext_pad_len;
7161         unsigned int ciphertext_len;
7162
7163         struct rte_cryptodev_info dev_info;
7164         struct rte_crypto_op *op;
7165
7166         /* Check if device supports particular algorithms separately */
7167         if (test_mixed_check_if_unsupported(tdata))
7168                 return TEST_SKIPPED;
7169         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
7170                 return TEST_SKIPPED;
7171
7172         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
7173
7174         uint64_t feat_flags = dev_info.feature_flags;
7175
7176         if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
7177                 printf("Device doesn't support digest encrypted.\n");
7178                 return TEST_SKIPPED;
7179         }
7180
7181         /* Create the session */
7182         if (verify)
7183                 retval = create_wireless_algo_cipher_auth_session(
7184                                 ts_params->valid_devs[0],
7185                                 RTE_CRYPTO_CIPHER_OP_DECRYPT,
7186                                 RTE_CRYPTO_AUTH_OP_VERIFY,
7187                                 tdata->auth_algo,
7188                                 tdata->cipher_algo,
7189                                 tdata->auth_key.data, tdata->auth_key.len,
7190                                 tdata->auth_iv.len, tdata->digest_enc.len,
7191                                 tdata->cipher_iv.len);
7192         else
7193                 retval = create_wireless_algo_auth_cipher_session(
7194                                 ts_params->valid_devs[0],
7195                                 RTE_CRYPTO_CIPHER_OP_ENCRYPT,
7196                                 RTE_CRYPTO_AUTH_OP_GENERATE,
7197                                 tdata->auth_algo,
7198                                 tdata->cipher_algo,
7199                                 tdata->auth_key.data, tdata->auth_key.len,
7200                                 tdata->auth_iv.len, tdata->digest_enc.len,
7201                                 tdata->cipher_iv.len);
7202         if (retval != 0)
7203                 return retval;
7204
7205         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
7206         if (op_mode == OUT_OF_PLACE)
7207                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
7208
7209         /* clear mbuf payload */
7210         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
7211                 rte_pktmbuf_tailroom(ut_params->ibuf));
7212         if (op_mode == OUT_OF_PLACE) {
7213
7214                 memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
7215                                 rte_pktmbuf_tailroom(ut_params->obuf));
7216         }
7217
7218         ciphertext_len = ceil_byte_length(tdata->ciphertext.len_bits);
7219         plaintext_len = ceil_byte_length(tdata->plaintext.len_bits);
7220         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
7221         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
7222
7223         if (verify) {
7224                 ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7225                                 ciphertext_pad_len);
7226                 memcpy(ciphertext, tdata->ciphertext.data, ciphertext_len);
7227                 if (op_mode == OUT_OF_PLACE)
7228                         rte_pktmbuf_append(ut_params->obuf, ciphertext_pad_len);
7229                 debug_hexdump(stdout, "ciphertext:", ciphertext,
7230                                 ciphertext_len);
7231         } else {
7232                 plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7233                                 plaintext_pad_len);
7234                 memcpy(plaintext, tdata->plaintext.data, plaintext_len);
7235                 if (op_mode == OUT_OF_PLACE)
7236                         rte_pktmbuf_append(ut_params->obuf, plaintext_pad_len);
7237                 debug_hexdump(stdout, "plaintext:", plaintext, plaintext_len);
7238         }
7239
7240         /* Create the operation */
7241         retval = create_wireless_algo_auth_cipher_operation(
7242                         tdata->digest_enc.data, tdata->digest_enc.len,
7243                         tdata->cipher_iv.data, tdata->cipher_iv.len,
7244                         tdata->auth_iv.data, tdata->auth_iv.len,
7245                         (tdata->digest_enc.offset == 0 ?
7246                                 plaintext_pad_len
7247                                 : tdata->digest_enc.offset),
7248                         tdata->validCipherLen.len_bits,
7249                         tdata->cipher.offset_bits,
7250                         tdata->validAuthLen.len_bits,
7251                         tdata->auth.offset_bits,
7252                         op_mode, 0, verify);
7253
7254         if (retval < 0)
7255                 return retval;
7256
7257         op = process_crypto_request(ts_params->valid_devs[0], ut_params->op);
7258
7259         /* Check if the op failed because the device doesn't */
7260         /* support this particular combination of algorithms */
7261         if (op == NULL && ut_params->op->status ==
7262                         RTE_CRYPTO_OP_STATUS_INVALID_SESSION) {
7263                 printf("Device doesn't support this mixed combination. "
7264                                 "Test Skipped.\n");
7265                 return TEST_SKIPPED;
7266         }
7267         ut_params->op = op;
7268
7269         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
7270
7271         ut_params->obuf = (op_mode == IN_PLACE ?
7272                         ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
7273
7274         if (verify) {
7275                 if (ut_params->obuf)
7276                         plaintext = rte_pktmbuf_mtod(ut_params->obuf,
7277                                                         uint8_t *);
7278                 else
7279                         plaintext = ciphertext +
7280                                         (tdata->cipher.offset_bits >> 3);
7281
7282                 debug_hexdump(stdout, "plaintext:", plaintext,
7283                                 tdata->plaintext.len_bits >> 3);
7284                 debug_hexdump(stdout, "plaintext expected:",
7285                                 tdata->plaintext.data,
7286                                 tdata->plaintext.len_bits >> 3);
7287         } else {
7288                 if (ut_params->obuf)
7289                         ciphertext = rte_pktmbuf_mtod(ut_params->obuf,
7290                                         uint8_t *);
7291                 else
7292                         ciphertext = plaintext;
7293
7294                 debug_hexdump(stdout, "ciphertext:", ciphertext,
7295                                 ciphertext_len);
7296                 debug_hexdump(stdout, "ciphertext expected:",
7297                                 tdata->ciphertext.data,
7298                                 tdata->ciphertext.len_bits >> 3);
7299
7300                 ut_params->digest = rte_pktmbuf_mtod(ut_params->obuf, uint8_t *)
7301                                 + (tdata->digest_enc.offset == 0 ?
7302                 plaintext_pad_len : tdata->digest_enc.offset);
7303
7304                 debug_hexdump(stdout, "digest:", ut_params->digest,
7305                                 tdata->digest_enc.len);
7306                 debug_hexdump(stdout, "digest expected:",
7307                                 tdata->digest_enc.data,
7308                                 tdata->digest_enc.len);
7309         }
7310
7311         /* Validate obuf */
7312         if (verify) {
7313                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
7314                                 plaintext,
7315                                 tdata->plaintext.data,
7316                                 tdata->plaintext.len_bits >> 3,
7317                                 "Plaintext data not as expected");
7318         } else {
7319                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
7320                                 ciphertext,
7321                                 tdata->ciphertext.data,
7322                                 tdata->validDataLen.len_bits,
7323                                 "Ciphertext data not as expected");
7324
7325                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
7326                                 ut_params->digest,
7327                                 tdata->digest_enc.data,
7328                                 DIGEST_BYTE_LENGTH_SNOW3G_UIA2,
7329                                 "Generated auth tag not as expected");
7330         }
7331
7332         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
7333                         "crypto op processing failed");
7334
7335         return 0;
7336 }
7337
7338 static int
7339 test_mixed_auth_cipher_sgl(const struct mixed_cipher_auth_test_data *tdata,
7340         uint8_t op_mode, uint8_t verify)
7341 {
7342         struct crypto_testsuite_params *ts_params = &testsuite_params;
7343         struct crypto_unittest_params *ut_params = &unittest_params;
7344
7345         int retval;
7346
7347         const uint8_t *plaintext = NULL;
7348         const uint8_t *ciphertext = NULL;
7349         const uint8_t *digest = NULL;
7350         unsigned int plaintext_pad_len;
7351         unsigned int plaintext_len;
7352         unsigned int ciphertext_pad_len;
7353         unsigned int ciphertext_len;
7354         uint8_t buffer[10000];
7355         uint8_t digest_buffer[10000];
7356
7357         struct rte_cryptodev_info dev_info;
7358         struct rte_crypto_op *op;
7359
7360         /* Check if device supports particular algorithms */
7361         if (test_mixed_check_if_unsupported(tdata))
7362                 return TEST_SKIPPED;
7363         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
7364                 return TEST_SKIPPED;
7365
7366         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
7367
7368         uint64_t feat_flags = dev_info.feature_flags;
7369
7370         if (op_mode == IN_PLACE) {
7371                 if (!(feat_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) {
7372                         printf("Device doesn't support in-place scatter-gather "
7373                                         "in both input and output mbufs.\n");
7374                         return TEST_SKIPPED;
7375                 }
7376         } else {
7377                 if (!(feat_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)) {
7378                         printf("Device doesn't support out-of-place scatter-gather "
7379                                         "in both input and output mbufs.\n");
7380                         return TEST_SKIPPED;
7381                 }
7382                 if (!(feat_flags & RTE_CRYPTODEV_FF_DIGEST_ENCRYPTED)) {
7383                         printf("Device doesn't support digest encrypted.\n");
7384                         return TEST_SKIPPED;
7385                 }
7386         }
7387
7388         /* Create the session */
7389         if (verify)
7390                 retval = create_wireless_algo_cipher_auth_session(
7391                                 ts_params->valid_devs[0],
7392                                 RTE_CRYPTO_CIPHER_OP_DECRYPT,
7393                                 RTE_CRYPTO_AUTH_OP_VERIFY,
7394                                 tdata->auth_algo,
7395                                 tdata->cipher_algo,
7396                                 tdata->auth_key.data, tdata->auth_key.len,
7397                                 tdata->auth_iv.len, tdata->digest_enc.len,
7398                                 tdata->cipher_iv.len);
7399         else
7400                 retval = create_wireless_algo_auth_cipher_session(
7401                                 ts_params->valid_devs[0],
7402                                 RTE_CRYPTO_CIPHER_OP_ENCRYPT,
7403                                 RTE_CRYPTO_AUTH_OP_GENERATE,
7404                                 tdata->auth_algo,
7405                                 tdata->cipher_algo,
7406                                 tdata->auth_key.data, tdata->auth_key.len,
7407                                 tdata->auth_iv.len, tdata->digest_enc.len,
7408                                 tdata->cipher_iv.len);
7409         if (retval != 0)
7410                 return retval;
7411
7412         ciphertext_len = ceil_byte_length(tdata->ciphertext.len_bits);
7413         plaintext_len = ceil_byte_length(tdata->plaintext.len_bits);
7414         ciphertext_pad_len = RTE_ALIGN_CEIL(ciphertext_len, 16);
7415         plaintext_pad_len = RTE_ALIGN_CEIL(plaintext_len, 16);
7416
7417         ut_params->ibuf = create_segmented_mbuf(ts_params->mbuf_pool,
7418                         ciphertext_pad_len, 15, 0);
7419         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
7420                         "Failed to allocate input buffer in mempool");
7421
7422         if (op_mode == OUT_OF_PLACE) {
7423                 ut_params->obuf = create_segmented_mbuf(ts_params->mbuf_pool,
7424                                 plaintext_pad_len, 15, 0);
7425                 TEST_ASSERT_NOT_NULL(ut_params->obuf,
7426                                 "Failed to allocate output buffer in mempool");
7427         }
7428
7429         if (verify) {
7430                 pktmbuf_write(ut_params->ibuf, 0, ciphertext_len,
7431                         tdata->ciphertext.data);
7432                 ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
7433                                         ciphertext_len, buffer);
7434                 debug_hexdump(stdout, "ciphertext:", ciphertext,
7435                         ciphertext_len);
7436         } else {
7437                 pktmbuf_write(ut_params->ibuf, 0, plaintext_len,
7438                         tdata->plaintext.data);
7439                 plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
7440                                         plaintext_len, buffer);
7441                 debug_hexdump(stdout, "plaintext:", plaintext,
7442                         plaintext_len);
7443         }
7444         memset(buffer, 0, sizeof(buffer));
7445
7446         /* Create the operation */
7447         retval = create_wireless_algo_auth_cipher_operation(
7448                         tdata->digest_enc.data, tdata->digest_enc.len,
7449                         tdata->cipher_iv.data, tdata->cipher_iv.len,
7450                         tdata->auth_iv.data, tdata->auth_iv.len,
7451                         (tdata->digest_enc.offset == 0 ?
7452                                 plaintext_pad_len
7453                                 : tdata->digest_enc.offset),
7454                         tdata->validCipherLen.len_bits,
7455                         tdata->cipher.offset_bits,
7456                         tdata->validAuthLen.len_bits,
7457                         tdata->auth.offset_bits,
7458                         op_mode, 1, verify);
7459
7460         if (retval < 0)
7461                 return retval;
7462
7463         op = process_crypto_request(ts_params->valid_devs[0], ut_params->op);
7464
7465         /* Check if the op failed because the device doesn't */
7466         /* support this particular combination of algorithms */
7467         if (op == NULL && ut_params->op->status ==
7468                         RTE_CRYPTO_OP_STATUS_INVALID_SESSION) {
7469                 printf("Device doesn't support this mixed combination. "
7470                                 "Test Skipped.\n");
7471                 return TEST_SKIPPED;
7472         }
7473         ut_params->op = op;
7474
7475         TEST_ASSERT_NOT_NULL(ut_params->op, "failed to retrieve obuf");
7476
7477         ut_params->obuf = (op_mode == IN_PLACE ?
7478                         ut_params->op->sym->m_src : ut_params->op->sym->m_dst);
7479
7480         if (verify) {
7481                 if (ut_params->obuf)
7482                         plaintext = rte_pktmbuf_read(ut_params->obuf, 0,
7483                                         plaintext_len, buffer);
7484                 else
7485                         plaintext = rte_pktmbuf_read(ut_params->ibuf, 0,
7486                                         plaintext_len, buffer);
7487
7488                 debug_hexdump(stdout, "plaintext:", plaintext,
7489                                 (tdata->plaintext.len_bits >> 3) -
7490                                 tdata->digest_enc.len);
7491                 debug_hexdump(stdout, "plaintext expected:",
7492                                 tdata->plaintext.data,
7493                                 (tdata->plaintext.len_bits >> 3) -
7494                                 tdata->digest_enc.len);
7495         } else {
7496                 if (ut_params->obuf)
7497                         ciphertext = rte_pktmbuf_read(ut_params->obuf, 0,
7498                                         ciphertext_len, buffer);
7499                 else
7500                         ciphertext = rte_pktmbuf_read(ut_params->ibuf, 0,
7501                                         ciphertext_len, buffer);
7502
7503                 debug_hexdump(stdout, "ciphertext:", ciphertext,
7504                         ciphertext_len);
7505                 debug_hexdump(stdout, "ciphertext expected:",
7506                         tdata->ciphertext.data,
7507                         tdata->ciphertext.len_bits >> 3);
7508
7509                 if (ut_params->obuf)
7510                         digest = rte_pktmbuf_read(ut_params->obuf,
7511                                         (tdata->digest_enc.offset == 0 ?
7512                                                 plaintext_pad_len :
7513                                                 tdata->digest_enc.offset),
7514                                         tdata->digest_enc.len, digest_buffer);
7515                 else
7516                         digest = rte_pktmbuf_read(ut_params->ibuf,
7517                                         (tdata->digest_enc.offset == 0 ?
7518                                                 plaintext_pad_len :
7519                                                 tdata->digest_enc.offset),
7520                                         tdata->digest_enc.len, digest_buffer);
7521
7522                 debug_hexdump(stdout, "digest:", digest,
7523                                 tdata->digest_enc.len);
7524                 debug_hexdump(stdout, "digest expected:",
7525                                 tdata->digest_enc.data, tdata->digest_enc.len);
7526         }
7527
7528         /* Validate obuf */
7529         if (verify) {
7530                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
7531                                 plaintext,
7532                                 tdata->plaintext.data,
7533                                 tdata->plaintext.len_bits >> 3,
7534                                 "Plaintext data not as expected");
7535         } else {
7536                 TEST_ASSERT_BUFFERS_ARE_EQUAL_BIT(
7537                                 ciphertext,
7538                                 tdata->ciphertext.data,
7539                                 tdata->validDataLen.len_bits,
7540                                 "Ciphertext data not as expected");
7541                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
7542                                 digest,
7543                                 tdata->digest_enc.data,
7544                                 tdata->digest_enc.len,
7545                                 "Generated auth tag not as expected");
7546         }
7547
7548         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
7549                         "crypto op processing failed");
7550
7551         return 0;
7552 }
7553
7554 /** AUTH AES CMAC + CIPHER AES CTR */
7555
7556 static int
7557 test_aes_cmac_aes_ctr_digest_enc_test_case_1(void)
7558 {
7559         return test_mixed_auth_cipher(
7560                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, IN_PLACE, 0);
7561 }
7562
7563 static int
7564 test_aes_cmac_aes_ctr_digest_enc_test_case_1_oop(void)
7565 {
7566         return test_mixed_auth_cipher(
7567                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 0);
7568 }
7569
7570 static int
7571 test_aes_cmac_aes_ctr_digest_enc_test_case_1_sgl(void)
7572 {
7573         return test_mixed_auth_cipher_sgl(
7574                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, IN_PLACE, 0);
7575 }
7576
7577 static int
7578 test_aes_cmac_aes_ctr_digest_enc_test_case_1_oop_sgl(void)
7579 {
7580         return test_mixed_auth_cipher_sgl(
7581                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 0);
7582 }
7583
7584 static int
7585 test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1(void)
7586 {
7587         return test_mixed_auth_cipher(
7588                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, IN_PLACE, 1);
7589 }
7590
7591 static int
7592 test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_oop(void)
7593 {
7594         return test_mixed_auth_cipher(
7595                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 1);
7596 }
7597
7598 static int
7599 test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_sgl(void)
7600 {
7601         return test_mixed_auth_cipher_sgl(
7602                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, IN_PLACE, 1);
7603 }
7604
7605 static int
7606 test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_oop_sgl(void)
7607 {
7608         return test_mixed_auth_cipher_sgl(
7609                 &auth_aes_cmac_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 1);
7610 }
7611
7612 /** MIXED AUTH + CIPHER */
7613
7614 static int
7615 test_auth_zuc_cipher_snow_test_case_1(void)
7616 {
7617         return test_mixed_auth_cipher(
7618                 &auth_zuc_cipher_snow_test_case_1, OUT_OF_PLACE, 0);
7619 }
7620
7621 static int
7622 test_verify_auth_zuc_cipher_snow_test_case_1(void)
7623 {
7624         return test_mixed_auth_cipher(
7625                 &auth_zuc_cipher_snow_test_case_1, OUT_OF_PLACE, 1);
7626 }
7627
7628 static int
7629 test_auth_aes_cmac_cipher_snow_test_case_1(void)
7630 {
7631         return test_mixed_auth_cipher(
7632                 &auth_aes_cmac_cipher_snow_test_case_1, OUT_OF_PLACE, 0);
7633 }
7634
7635 static int
7636 test_verify_auth_aes_cmac_cipher_snow_test_case_1(void)
7637 {
7638         return test_mixed_auth_cipher(
7639                 &auth_aes_cmac_cipher_snow_test_case_1, OUT_OF_PLACE, 1);
7640 }
7641
7642 static int
7643 test_auth_zuc_cipher_aes_ctr_test_case_1(void)
7644 {
7645         return test_mixed_auth_cipher(
7646                 &auth_zuc_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 0);
7647 }
7648
7649 static int
7650 test_verify_auth_zuc_cipher_aes_ctr_test_case_1(void)
7651 {
7652         return test_mixed_auth_cipher(
7653                 &auth_zuc_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 1);
7654 }
7655
7656 static int
7657 test_auth_snow_cipher_aes_ctr_test_case_1(void)
7658 {
7659         return test_mixed_auth_cipher(
7660                 &auth_snow_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 0);
7661 }
7662
7663 static int
7664 test_verify_auth_snow_cipher_aes_ctr_test_case_1(void)
7665 {
7666         return test_mixed_auth_cipher(
7667                 &auth_snow_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 1);
7668 }
7669
7670 static int
7671 test_auth_snow_cipher_zuc_test_case_1(void)
7672 {
7673         return test_mixed_auth_cipher(
7674                 &auth_snow_cipher_zuc_test_case_1, OUT_OF_PLACE, 0);
7675 }
7676
7677 static int
7678 test_verify_auth_snow_cipher_zuc_test_case_1(void)
7679 {
7680         return test_mixed_auth_cipher(
7681                 &auth_snow_cipher_zuc_test_case_1, OUT_OF_PLACE, 1);
7682 }
7683
7684 static int
7685 test_auth_aes_cmac_cipher_zuc_test_case_1(void)
7686 {
7687         return test_mixed_auth_cipher(
7688                 &auth_aes_cmac_cipher_zuc_test_case_1, OUT_OF_PLACE, 0);
7689 }
7690
7691 static int
7692 test_verify_auth_aes_cmac_cipher_zuc_test_case_1(void)
7693 {
7694         return test_mixed_auth_cipher(
7695                 &auth_aes_cmac_cipher_zuc_test_case_1, OUT_OF_PLACE, 1);
7696 }
7697
7698 static int
7699 test_auth_null_cipher_snow_test_case_1(void)
7700 {
7701         return test_mixed_auth_cipher(
7702                 &auth_null_cipher_snow_test_case_1, OUT_OF_PLACE, 0);
7703 }
7704
7705 static int
7706 test_verify_auth_null_cipher_snow_test_case_1(void)
7707 {
7708         return test_mixed_auth_cipher(
7709                 &auth_null_cipher_snow_test_case_1, OUT_OF_PLACE, 1);
7710 }
7711
7712 static int
7713 test_auth_null_cipher_zuc_test_case_1(void)
7714 {
7715         return test_mixed_auth_cipher(
7716                 &auth_null_cipher_zuc_test_case_1, OUT_OF_PLACE, 0);
7717 }
7718
7719 static int
7720 test_verify_auth_null_cipher_zuc_test_case_1(void)
7721 {
7722         return test_mixed_auth_cipher(
7723                 &auth_null_cipher_zuc_test_case_1, OUT_OF_PLACE, 1);
7724 }
7725
7726 static int
7727 test_auth_snow_cipher_null_test_case_1(void)
7728 {
7729         return test_mixed_auth_cipher(
7730                 &auth_snow_cipher_null_test_case_1, OUT_OF_PLACE, 0);
7731 }
7732
7733 static int
7734 test_verify_auth_snow_cipher_null_test_case_1(void)
7735 {
7736         return test_mixed_auth_cipher(
7737                 &auth_snow_cipher_null_test_case_1, OUT_OF_PLACE, 1);
7738 }
7739
7740 static int
7741 test_auth_zuc_cipher_null_test_case_1(void)
7742 {
7743         return test_mixed_auth_cipher(
7744                 &auth_zuc_cipher_null_test_case_1, OUT_OF_PLACE, 0);
7745 }
7746
7747 static int
7748 test_verify_auth_zuc_cipher_null_test_case_1(void)
7749 {
7750         return test_mixed_auth_cipher(
7751                 &auth_zuc_cipher_null_test_case_1, OUT_OF_PLACE, 1);
7752 }
7753
7754 static int
7755 test_auth_null_cipher_aes_ctr_test_case_1(void)
7756 {
7757         return test_mixed_auth_cipher(
7758                 &auth_null_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 0);
7759 }
7760
7761 static int
7762 test_verify_auth_null_cipher_aes_ctr_test_case_1(void)
7763 {
7764         return test_mixed_auth_cipher(
7765                 &auth_null_cipher_aes_ctr_test_case_1, OUT_OF_PLACE, 1);
7766 }
7767
7768 static int
7769 test_auth_aes_cmac_cipher_null_test_case_1(void)
7770 {
7771         return test_mixed_auth_cipher(
7772                 &auth_aes_cmac_cipher_null_test_case_1, OUT_OF_PLACE, 0);
7773 }
7774
7775 static int
7776 test_verify_auth_aes_cmac_cipher_null_test_case_1(void)
7777 {
7778         return test_mixed_auth_cipher(
7779                 &auth_aes_cmac_cipher_null_test_case_1, OUT_OF_PLACE, 1);
7780 }
7781
7782 /* ***** AEAD algorithm Tests ***** */
7783
7784 static int
7785 create_aead_session(uint8_t dev_id, enum rte_crypto_aead_algorithm algo,
7786                 enum rte_crypto_aead_operation op,
7787                 const uint8_t *key, const uint8_t key_len,
7788                 const uint16_t aad_len, const uint8_t auth_len,
7789                 uint8_t iv_len)
7790 {
7791         uint8_t aead_key[key_len];
7792
7793         struct crypto_testsuite_params *ts_params = &testsuite_params;
7794         struct crypto_unittest_params *ut_params = &unittest_params;
7795
7796         memcpy(aead_key, key, key_len);
7797
7798         /* Setup AEAD Parameters */
7799         ut_params->aead_xform.type = RTE_CRYPTO_SYM_XFORM_AEAD;
7800         ut_params->aead_xform.next = NULL;
7801         ut_params->aead_xform.aead.algo = algo;
7802         ut_params->aead_xform.aead.op = op;
7803         ut_params->aead_xform.aead.key.data = aead_key;
7804         ut_params->aead_xform.aead.key.length = key_len;
7805         ut_params->aead_xform.aead.iv.offset = IV_OFFSET;
7806         ut_params->aead_xform.aead.iv.length = iv_len;
7807         ut_params->aead_xform.aead.digest_length = auth_len;
7808         ut_params->aead_xform.aead.aad_length = aad_len;
7809
7810         debug_hexdump(stdout, "key:", key, key_len);
7811
7812         /* Create Crypto session*/
7813         ut_params->sess = rte_cryptodev_sym_session_create(
7814                         ts_params->session_mpool);
7815
7816         rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
7817                         &ut_params->aead_xform,
7818                         ts_params->session_priv_mpool);
7819
7820         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
7821
7822         return 0;
7823 }
7824
7825 static int
7826 create_aead_xform(struct rte_crypto_op *op,
7827                 enum rte_crypto_aead_algorithm algo,
7828                 enum rte_crypto_aead_operation aead_op,
7829                 uint8_t *key, const uint8_t key_len,
7830                 const uint8_t aad_len, const uint8_t auth_len,
7831                 uint8_t iv_len)
7832 {
7833         TEST_ASSERT_NOT_NULL(rte_crypto_op_sym_xforms_alloc(op, 1),
7834                         "failed to allocate space for crypto transform");
7835
7836         struct rte_crypto_sym_op *sym_op = op->sym;
7837
7838         /* Setup AEAD Parameters */
7839         sym_op->xform->type = RTE_CRYPTO_SYM_XFORM_AEAD;
7840         sym_op->xform->next = NULL;
7841         sym_op->xform->aead.algo = algo;
7842         sym_op->xform->aead.op = aead_op;
7843         sym_op->xform->aead.key.data = key;
7844         sym_op->xform->aead.key.length = key_len;
7845         sym_op->xform->aead.iv.offset = IV_OFFSET;
7846         sym_op->xform->aead.iv.length = iv_len;
7847         sym_op->xform->aead.digest_length = auth_len;
7848         sym_op->xform->aead.aad_length = aad_len;
7849
7850         debug_hexdump(stdout, "key:", key, key_len);
7851
7852         return 0;
7853 }
7854
7855 static int
7856 create_aead_operation(enum rte_crypto_aead_operation op,
7857                 const struct aead_test_data *tdata)
7858 {
7859         struct crypto_testsuite_params *ts_params = &testsuite_params;
7860         struct crypto_unittest_params *ut_params = &unittest_params;
7861
7862         uint8_t *plaintext, *ciphertext;
7863         unsigned int aad_pad_len, plaintext_pad_len;
7864
7865         /* Generate Crypto op data structure */
7866         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
7867                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
7868         TEST_ASSERT_NOT_NULL(ut_params->op,
7869                         "Failed to allocate symmetric crypto operation struct");
7870
7871         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
7872
7873         /* Append aad data */
7874         if (tdata->algo == RTE_CRYPTO_AEAD_AES_CCM) {
7875                 aad_pad_len = RTE_ALIGN_CEIL(tdata->aad.len + 18, 16);
7876                 sym_op->aead.aad.data = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7877                                 aad_pad_len);
7878                 TEST_ASSERT_NOT_NULL(sym_op->aead.aad.data,
7879                                 "no room to append aad");
7880
7881                 sym_op->aead.aad.phys_addr =
7882                                 rte_pktmbuf_iova(ut_params->ibuf);
7883                 /* Copy AAD 18 bytes after the AAD pointer, according to the API */
7884                 memcpy(sym_op->aead.aad.data + 18, tdata->aad.data, tdata->aad.len);
7885                 debug_hexdump(stdout, "aad:", sym_op->aead.aad.data,
7886                         tdata->aad.len);
7887
7888                 /* Append IV at the end of the crypto operation*/
7889                 uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
7890                                 uint8_t *, IV_OFFSET);
7891
7892                 /* Copy IV 1 byte after the IV pointer, according to the API */
7893                 rte_memcpy(iv_ptr + 1, tdata->iv.data, tdata->iv.len);
7894                 debug_hexdump(stdout, "iv:", iv_ptr,
7895                         tdata->iv.len);
7896         } else {
7897                 aad_pad_len = RTE_ALIGN_CEIL(tdata->aad.len, 16);
7898                 sym_op->aead.aad.data = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7899                                 aad_pad_len);
7900                 TEST_ASSERT_NOT_NULL(sym_op->aead.aad.data,
7901                                 "no room to append aad");
7902
7903                 sym_op->aead.aad.phys_addr =
7904                                 rte_pktmbuf_iova(ut_params->ibuf);
7905                 memcpy(sym_op->aead.aad.data, tdata->aad.data, tdata->aad.len);
7906                 debug_hexdump(stdout, "aad:", sym_op->aead.aad.data,
7907                         tdata->aad.len);
7908
7909                 /* Append IV at the end of the crypto operation*/
7910                 uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
7911                                 uint8_t *, IV_OFFSET);
7912
7913                 if (tdata->iv.len == 0) {
7914                         rte_memcpy(iv_ptr, tdata->iv.data, AES_GCM_J0_LENGTH);
7915                         debug_hexdump(stdout, "iv:", iv_ptr,
7916                                 AES_GCM_J0_LENGTH);
7917                 } else {
7918                         rte_memcpy(iv_ptr, tdata->iv.data, tdata->iv.len);
7919                         debug_hexdump(stdout, "iv:", iv_ptr,
7920                                 tdata->iv.len);
7921                 }
7922         }
7923
7924         /* Append plaintext/ciphertext */
7925         if (op == RTE_CRYPTO_AEAD_OP_ENCRYPT) {
7926                 plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
7927                 plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7928                                 plaintext_pad_len);
7929                 TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
7930
7931                 memcpy(plaintext, tdata->plaintext.data, tdata->plaintext.len);
7932                 debug_hexdump(stdout, "plaintext:", plaintext,
7933                                 tdata->plaintext.len);
7934
7935                 if (ut_params->obuf) {
7936                         ciphertext = (uint8_t *)rte_pktmbuf_append(
7937                                         ut_params->obuf,
7938                                         plaintext_pad_len + aad_pad_len);
7939                         TEST_ASSERT_NOT_NULL(ciphertext,
7940                                         "no room to append ciphertext");
7941
7942                         memset(ciphertext + aad_pad_len, 0,
7943                                         tdata->ciphertext.len);
7944                 }
7945         } else {
7946                 plaintext_pad_len = RTE_ALIGN_CEIL(tdata->ciphertext.len, 16);
7947                 ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
7948                                 plaintext_pad_len);
7949                 TEST_ASSERT_NOT_NULL(ciphertext,
7950                                 "no room to append ciphertext");
7951
7952                 memcpy(ciphertext, tdata->ciphertext.data,
7953                                 tdata->ciphertext.len);
7954                 debug_hexdump(stdout, "ciphertext:", ciphertext,
7955                                 tdata->ciphertext.len);
7956
7957                 if (ut_params->obuf) {
7958                         plaintext = (uint8_t *)rte_pktmbuf_append(
7959                                         ut_params->obuf,
7960                                         plaintext_pad_len + aad_pad_len);
7961                         TEST_ASSERT_NOT_NULL(plaintext,
7962                                         "no room to append plaintext");
7963
7964                         memset(plaintext + aad_pad_len, 0,
7965                                         tdata->plaintext.len);
7966                 }
7967         }
7968
7969         /* Append digest data */
7970         if (op == RTE_CRYPTO_AEAD_OP_ENCRYPT) {
7971                 sym_op->aead.digest.data = (uint8_t *)rte_pktmbuf_append(
7972                                 ut_params->obuf ? ut_params->obuf :
7973                                                 ut_params->ibuf,
7974                                                 tdata->auth_tag.len);
7975                 TEST_ASSERT_NOT_NULL(sym_op->aead.digest.data,
7976                                 "no room to append digest");
7977                 memset(sym_op->aead.digest.data, 0, tdata->auth_tag.len);
7978                 sym_op->aead.digest.phys_addr = rte_pktmbuf_iova_offset(
7979                                 ut_params->obuf ? ut_params->obuf :
7980                                                 ut_params->ibuf,
7981                                                 plaintext_pad_len +
7982                                                 aad_pad_len);
7983         } else {
7984                 sym_op->aead.digest.data = (uint8_t *)rte_pktmbuf_append(
7985                                 ut_params->ibuf, tdata->auth_tag.len);
7986                 TEST_ASSERT_NOT_NULL(sym_op->aead.digest.data,
7987                                 "no room to append digest");
7988                 sym_op->aead.digest.phys_addr = rte_pktmbuf_iova_offset(
7989                                 ut_params->ibuf,
7990                                 plaintext_pad_len + aad_pad_len);
7991
7992                 rte_memcpy(sym_op->aead.digest.data, tdata->auth_tag.data,
7993                         tdata->auth_tag.len);
7994                 debug_hexdump(stdout, "digest:",
7995                         sym_op->aead.digest.data,
7996                         tdata->auth_tag.len);
7997         }
7998
7999         sym_op->aead.data.length = tdata->plaintext.len;
8000         sym_op->aead.data.offset = aad_pad_len;
8001
8002         return 0;
8003 }
8004
8005 static int
8006 test_authenticated_encryption(const struct aead_test_data *tdata)
8007 {
8008         struct crypto_testsuite_params *ts_params = &testsuite_params;
8009         struct crypto_unittest_params *ut_params = &unittest_params;
8010
8011         int retval;
8012         uint8_t *ciphertext, *auth_tag;
8013         uint16_t plaintext_pad_len;
8014         uint32_t i;
8015         struct rte_cryptodev_info dev_info;
8016
8017         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
8018         uint64_t feat_flags = dev_info.feature_flags;
8019
8020         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
8021                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
8022                 printf("Device doesn't support RAW data-path APIs.\n");
8023                 return TEST_SKIPPED;
8024         }
8025
8026         /* Verify the capabilities */
8027         struct rte_cryptodev_sym_capability_idx cap_idx;
8028         const struct rte_cryptodev_symmetric_capability *capability;
8029         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
8030         cap_idx.algo.aead = tdata->algo;
8031         capability = rte_cryptodev_sym_capability_get(
8032                         ts_params->valid_devs[0], &cap_idx);
8033         if (capability == NULL)
8034                 return TEST_SKIPPED;
8035         if (rte_cryptodev_sym_capability_check_aead(
8036                         capability, tdata->key.len, tdata->auth_tag.len,
8037                         tdata->aad.len, tdata->iv.len))
8038                 return TEST_SKIPPED;
8039
8040         /* Create AEAD session */
8041         retval = create_aead_session(ts_params->valid_devs[0],
8042                         tdata->algo,
8043                         RTE_CRYPTO_AEAD_OP_ENCRYPT,
8044                         tdata->key.data, tdata->key.len,
8045                         tdata->aad.len, tdata->auth_tag.len,
8046                         tdata->iv.len);
8047         if (retval < 0)
8048                 return retval;
8049
8050         if (tdata->aad.len > MBUF_SIZE) {
8051                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->large_mbuf_pool);
8052                 /* Populate full size of add data */
8053                 for (i = 32; i < MAX_AAD_LENGTH; i += 32)
8054                         memcpy(&tdata->aad.data[i], &tdata->aad.data[0], 32);
8055         } else
8056                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8057
8058         /* clear mbuf payload */
8059         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
8060                         rte_pktmbuf_tailroom(ut_params->ibuf));
8061
8062         /* Create AEAD operation */
8063         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_ENCRYPT, tdata);
8064         if (retval < 0)
8065                 return retval;
8066
8067         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
8068
8069         ut_params->op->sym->m_src = ut_params->ibuf;
8070
8071         /* Process crypto operation */
8072         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
8073                 process_cpu_aead_op(ts_params->valid_devs[0], ut_params->op);
8074         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
8075                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
8076                                 ut_params->op, 0, 0, 0, 0);
8077         else
8078                 TEST_ASSERT_NOT_NULL(
8079                         process_crypto_request(ts_params->valid_devs[0],
8080                         ut_params->op), "failed to process sym crypto op");
8081
8082         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
8083                         "crypto op processing failed");
8084
8085         plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
8086
8087         if (ut_params->op->sym->m_dst) {
8088                 ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_dst,
8089                                 uint8_t *);
8090                 auth_tag = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_dst,
8091                                 uint8_t *, plaintext_pad_len);
8092         } else {
8093                 ciphertext = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_src,
8094                                 uint8_t *,
8095                                 ut_params->op->sym->cipher.data.offset);
8096                 auth_tag = ciphertext + plaintext_pad_len;
8097         }
8098
8099         debug_hexdump(stdout, "ciphertext:", ciphertext, tdata->ciphertext.len);
8100         debug_hexdump(stdout, "auth tag:", auth_tag, tdata->auth_tag.len);
8101
8102         /* Validate obuf */
8103         TEST_ASSERT_BUFFERS_ARE_EQUAL(
8104                         ciphertext,
8105                         tdata->ciphertext.data,
8106                         tdata->ciphertext.len,
8107                         "Ciphertext data not as expected");
8108
8109         TEST_ASSERT_BUFFERS_ARE_EQUAL(
8110                         auth_tag,
8111                         tdata->auth_tag.data,
8112                         tdata->auth_tag.len,
8113                         "Generated auth tag not as expected");
8114
8115         return 0;
8116
8117 }
8118
8119 #ifdef RTE_LIB_SECURITY
8120 static int
8121 security_proto_supported(enum rte_security_session_action_type action,
8122         enum rte_security_session_protocol proto)
8123 {
8124         struct crypto_testsuite_params *ts_params = &testsuite_params;
8125
8126         const struct rte_security_capability *capabilities;
8127         const struct rte_security_capability *capability;
8128         uint16_t i = 0;
8129
8130         struct rte_security_ctx *ctx = (struct rte_security_ctx *)
8131                                 rte_cryptodev_get_sec_ctx(
8132                                 ts_params->valid_devs[0]);
8133
8134
8135         capabilities = rte_security_capabilities_get(ctx);
8136
8137         if (capabilities == NULL)
8138                 return -ENOTSUP;
8139
8140         while ((capability = &capabilities[i++])->action !=
8141                         RTE_SECURITY_ACTION_TYPE_NONE) {
8142                 if (capability->action == action &&
8143                                 capability->protocol == proto)
8144                         return 0;
8145         }
8146
8147         return -ENOTSUP;
8148 }
8149
8150 /* Basic algorithm run function for async inplace mode.
8151  * Creates a session from input parameters and runs one operation
8152  * on input_vec. Checks the output of the crypto operation against
8153  * output_vec.
8154  */
8155 static int test_pdcp_proto(int i, int oop, enum rte_crypto_cipher_operation opc,
8156                            enum rte_crypto_auth_operation opa,
8157                            const uint8_t *input_vec, unsigned int input_vec_len,
8158                            const uint8_t *output_vec,
8159                            unsigned int output_vec_len,
8160                            enum rte_crypto_cipher_algorithm cipher_alg,
8161                            const uint8_t *cipher_key, uint32_t cipher_key_len,
8162                            enum rte_crypto_auth_algorithm auth_alg,
8163                            const uint8_t *auth_key, uint32_t auth_key_len,
8164                            uint8_t bearer, enum rte_security_pdcp_domain domain,
8165                            uint8_t packet_direction, uint8_t sn_size,
8166                            uint32_t hfn, uint32_t hfn_threshold, uint8_t sdap)
8167 {
8168         struct crypto_testsuite_params *ts_params = &testsuite_params;
8169         struct crypto_unittest_params *ut_params = &unittest_params;
8170         uint8_t *plaintext;
8171         int ret = TEST_SUCCESS;
8172         struct rte_security_ctx *ctx = (struct rte_security_ctx *)
8173                                 rte_cryptodev_get_sec_ctx(
8174                                 ts_params->valid_devs[0]);
8175
8176         /* Verify the capabilities */
8177         struct rte_security_capability_idx sec_cap_idx;
8178
8179         sec_cap_idx.action = ut_params->type;
8180         sec_cap_idx.protocol = RTE_SECURITY_PROTOCOL_PDCP;
8181         sec_cap_idx.pdcp.domain = domain;
8182         if (rte_security_capability_get(ctx, &sec_cap_idx) == NULL)
8183                 return TEST_SKIPPED;
8184
8185         /* Generate test mbuf data */
8186         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8187
8188         /* clear mbuf payload */
8189         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
8190                         rte_pktmbuf_tailroom(ut_params->ibuf));
8191
8192         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
8193                                                   input_vec_len);
8194         memcpy(plaintext, input_vec, input_vec_len);
8195
8196         /* Out of place support */
8197         if (oop) {
8198                 /*
8199                  * For out-op-place we need to alloc another mbuf
8200                  */
8201                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8202                 rte_pktmbuf_append(ut_params->obuf, output_vec_len);
8203         }
8204
8205         /* Setup Cipher Parameters */
8206         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
8207         ut_params->cipher_xform.cipher.algo = cipher_alg;
8208         ut_params->cipher_xform.cipher.op = opc;
8209         ut_params->cipher_xform.cipher.key.data = cipher_key;
8210         ut_params->cipher_xform.cipher.key.length = cipher_key_len;
8211         ut_params->cipher_xform.cipher.iv.length =
8212                                 packet_direction ? 4 : 0;
8213         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
8214
8215         /* Setup HMAC Parameters if ICV header is required */
8216         if (auth_alg != 0) {
8217                 ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
8218                 ut_params->auth_xform.next = NULL;
8219                 ut_params->auth_xform.auth.algo = auth_alg;
8220                 ut_params->auth_xform.auth.op = opa;
8221                 ut_params->auth_xform.auth.key.data = auth_key;
8222                 ut_params->auth_xform.auth.key.length = auth_key_len;
8223
8224                 ut_params->cipher_xform.next = &ut_params->auth_xform;
8225         } else {
8226                 ut_params->cipher_xform.next = NULL;
8227         }
8228
8229         struct rte_security_session_conf sess_conf = {
8230                 .action_type = ut_params->type,
8231                 .protocol = RTE_SECURITY_PROTOCOL_PDCP,
8232                 {.pdcp = {
8233                         .bearer = bearer,
8234                         .domain = domain,
8235                         .pkt_dir = packet_direction,
8236                         .sn_size = sn_size,
8237                         .hfn = packet_direction ? 0 : hfn,
8238                         /**
8239                          * hfn can be set as pdcp_test_hfn[i]
8240                          * if hfn_ovrd is not set. Here, PDCP
8241                          * packet direction is just used to
8242                          * run half of the cases with session
8243                          * HFN and other half with per packet
8244                          * HFN.
8245                          */
8246                         .hfn_threshold = hfn_threshold,
8247                         .hfn_ovrd = packet_direction ? 1 : 0,
8248                         .sdap_enabled = sdap,
8249                 } },
8250                 .crypto_xform = &ut_params->cipher_xform
8251         };
8252
8253         /* Create security session */
8254         ut_params->sec_session = rte_security_session_create(ctx,
8255                                 &sess_conf, ts_params->session_mpool,
8256                                 ts_params->session_priv_mpool);
8257
8258         if (!ut_params->sec_session) {
8259                 printf("TestCase %s()-%d line %d failed %s: ",
8260                         __func__, i, __LINE__, "Failed to allocate session");
8261                 ret = TEST_FAILED;
8262                 goto on_err;
8263         }
8264
8265         /* Generate crypto op data structure */
8266         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
8267                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
8268         if (!ut_params->op) {
8269                 printf("TestCase %s()-%d line %d failed %s: ",
8270                         __func__, i, __LINE__,
8271                         "Failed to allocate symmetric crypto operation struct");
8272                 ret = TEST_FAILED;
8273                 goto on_err;
8274         }
8275
8276         uint32_t *per_pkt_hfn = rte_crypto_op_ctod_offset(ut_params->op,
8277                                         uint32_t *, IV_OFFSET);
8278         *per_pkt_hfn = packet_direction ? hfn : 0;
8279
8280         rte_security_attach_session(ut_params->op, ut_params->sec_session);
8281
8282         /* set crypto operation source mbuf */
8283         ut_params->op->sym->m_src = ut_params->ibuf;
8284         if (oop)
8285                 ut_params->op->sym->m_dst = ut_params->obuf;
8286
8287         /* Process crypto operation */
8288         if (process_crypto_request(ts_params->valid_devs[0], ut_params->op)
8289                 == NULL) {
8290                 printf("TestCase %s()-%d line %d failed %s: ",
8291                         __func__, i, __LINE__,
8292                         "failed to process sym crypto op");
8293                 ret = TEST_FAILED;
8294                 goto on_err;
8295         }
8296
8297         if (ut_params->op->status != RTE_CRYPTO_OP_STATUS_SUCCESS) {
8298                 printf("TestCase %s()-%d line %d failed %s: ",
8299                         __func__, i, __LINE__, "crypto op processing failed");
8300                 ret = TEST_FAILED;
8301                 goto on_err;
8302         }
8303
8304         /* Validate obuf */
8305         uint8_t *ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_src,
8306                         uint8_t *);
8307         if (oop) {
8308                 ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_dst,
8309                                 uint8_t *);
8310         }
8311
8312         if (memcmp(ciphertext, output_vec, output_vec_len)) {
8313                 printf("\n=======PDCP TestCase #%d failed: Data Mismatch ", i);
8314                 rte_hexdump(stdout, "encrypted", ciphertext, output_vec_len);
8315                 rte_hexdump(stdout, "reference", output_vec, output_vec_len);
8316                 ret = TEST_FAILED;
8317                 goto on_err;
8318         }
8319
8320 on_err:
8321         rte_crypto_op_free(ut_params->op);
8322         ut_params->op = NULL;
8323
8324         if (ut_params->sec_session)
8325                 rte_security_session_destroy(ctx, ut_params->sec_session);
8326         ut_params->sec_session = NULL;
8327
8328         rte_pktmbuf_free(ut_params->ibuf);
8329         ut_params->ibuf = NULL;
8330         if (oop) {
8331                 rte_pktmbuf_free(ut_params->obuf);
8332                 ut_params->obuf = NULL;
8333         }
8334
8335         return ret;
8336 }
8337
8338 static int
8339 test_pdcp_proto_SGL(int i, int oop,
8340         enum rte_crypto_cipher_operation opc,
8341         enum rte_crypto_auth_operation opa,
8342         uint8_t *input_vec,
8343         unsigned int input_vec_len,
8344         uint8_t *output_vec,
8345         unsigned int output_vec_len,
8346         uint32_t fragsz,
8347         uint32_t fragsz_oop)
8348 {
8349         struct crypto_testsuite_params *ts_params = &testsuite_params;
8350         struct crypto_unittest_params *ut_params = &unittest_params;
8351         uint8_t *plaintext;
8352         struct rte_mbuf *buf, *buf_oop = NULL;
8353         int ret = TEST_SUCCESS;
8354         int to_trn = 0;
8355         int to_trn_tbl[16];
8356         int segs = 1;
8357         unsigned int trn_data = 0;
8358         struct rte_security_ctx *ctx = (struct rte_security_ctx *)
8359                                 rte_cryptodev_get_sec_ctx(
8360                                 ts_params->valid_devs[0]);
8361
8362         /* Verify the capabilities */
8363         struct rte_security_capability_idx sec_cap_idx;
8364
8365         sec_cap_idx.action = ut_params->type;
8366         sec_cap_idx.protocol = RTE_SECURITY_PROTOCOL_PDCP;
8367         sec_cap_idx.pdcp.domain = pdcp_test_params[i].domain;
8368         if (rte_security_capability_get(ctx, &sec_cap_idx) == NULL)
8369                 return TEST_SKIPPED;
8370
8371         if (fragsz > input_vec_len)
8372                 fragsz = input_vec_len;
8373
8374         uint16_t plaintext_len = fragsz;
8375         uint16_t frag_size_oop = fragsz_oop ? fragsz_oop : fragsz;
8376
8377         if (fragsz_oop > output_vec_len)
8378                 frag_size_oop = output_vec_len;
8379
8380         int ecx = 0;
8381         if (input_vec_len % fragsz != 0) {
8382                 if (input_vec_len / fragsz + 1 > 16)
8383                         return 1;
8384         } else if (input_vec_len / fragsz > 16)
8385                 return 1;
8386
8387         /* Out of place support */
8388         if (oop) {
8389                 /*
8390                  * For out-op-place we need to alloc another mbuf
8391                  */
8392                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8393                 rte_pktmbuf_append(ut_params->obuf, frag_size_oop);
8394                 buf_oop = ut_params->obuf;
8395         }
8396
8397         /* Generate test mbuf data */
8398         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8399
8400         /* clear mbuf payload */
8401         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
8402                         rte_pktmbuf_tailroom(ut_params->ibuf));
8403
8404         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
8405                                                   plaintext_len);
8406         memcpy(plaintext, input_vec, plaintext_len);
8407         trn_data += plaintext_len;
8408
8409         buf = ut_params->ibuf;
8410
8411         /*
8412          * Loop until no more fragments
8413          */
8414
8415         while (trn_data < input_vec_len) {
8416                 ++segs;
8417                 to_trn = (input_vec_len - trn_data < fragsz) ?
8418                                 (input_vec_len - trn_data) : fragsz;
8419
8420                 to_trn_tbl[ecx++] = to_trn;
8421
8422                 buf->next = rte_pktmbuf_alloc(ts_params->mbuf_pool);
8423                 buf = buf->next;
8424
8425                 memset(rte_pktmbuf_mtod(buf, uint8_t *), 0,
8426                                 rte_pktmbuf_tailroom(buf));
8427
8428                 /* OOP */
8429                 if (oop && !fragsz_oop) {
8430                         buf_oop->next =
8431                                         rte_pktmbuf_alloc(ts_params->mbuf_pool);
8432                         buf_oop = buf_oop->next;
8433                         memset(rte_pktmbuf_mtod(buf_oop, uint8_t *),
8434                                         0, rte_pktmbuf_tailroom(buf_oop));
8435                         rte_pktmbuf_append(buf_oop, to_trn);
8436                 }
8437
8438                 plaintext = (uint8_t *)rte_pktmbuf_append(buf,
8439                                 to_trn);
8440
8441                 memcpy(plaintext, input_vec + trn_data, to_trn);
8442                 trn_data += to_trn;
8443         }
8444
8445         ut_params->ibuf->nb_segs = segs;
8446
8447         segs = 1;
8448         if (fragsz_oop && oop) {
8449                 to_trn = 0;
8450                 ecx = 0;
8451
8452                 trn_data = frag_size_oop;
8453                 while (trn_data < output_vec_len) {
8454                         ++segs;
8455                         to_trn =
8456                                 (output_vec_len - trn_data <
8457                                                 frag_size_oop) ?
8458                                 (output_vec_len - trn_data) :
8459                                                 frag_size_oop;
8460
8461                         to_trn_tbl[ecx++] = to_trn;
8462
8463                         buf_oop->next =
8464                                 rte_pktmbuf_alloc(ts_params->mbuf_pool);
8465                         buf_oop = buf_oop->next;
8466                         memset(rte_pktmbuf_mtod(buf_oop, uint8_t *),
8467                                         0, rte_pktmbuf_tailroom(buf_oop));
8468                         rte_pktmbuf_append(buf_oop, to_trn);
8469
8470                         trn_data += to_trn;
8471                 }
8472                 ut_params->obuf->nb_segs = segs;
8473         }
8474
8475         /* Setup Cipher Parameters */
8476         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
8477         ut_params->cipher_xform.cipher.algo = pdcp_test_params[i].cipher_alg;
8478         ut_params->cipher_xform.cipher.op = opc;
8479         ut_params->cipher_xform.cipher.key.data = pdcp_test_crypto_key[i];
8480         ut_params->cipher_xform.cipher.key.length =
8481                                         pdcp_test_params[i].cipher_key_len;
8482         ut_params->cipher_xform.cipher.iv.length = 0;
8483
8484         /* Setup HMAC Parameters if ICV header is required */
8485         if (pdcp_test_params[i].auth_alg != 0) {
8486                 ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
8487                 ut_params->auth_xform.next = NULL;
8488                 ut_params->auth_xform.auth.algo = pdcp_test_params[i].auth_alg;
8489                 ut_params->auth_xform.auth.op = opa;
8490                 ut_params->auth_xform.auth.key.data = pdcp_test_auth_key[i];
8491                 ut_params->auth_xform.auth.key.length =
8492                                         pdcp_test_params[i].auth_key_len;
8493
8494                 ut_params->cipher_xform.next = &ut_params->auth_xform;
8495         } else {
8496                 ut_params->cipher_xform.next = NULL;
8497         }
8498
8499         struct rte_security_session_conf sess_conf = {
8500                 .action_type = ut_params->type,
8501                 .protocol = RTE_SECURITY_PROTOCOL_PDCP,
8502                 {.pdcp = {
8503                         .bearer = pdcp_test_bearer[i],
8504                         .domain = pdcp_test_params[i].domain,
8505                         .pkt_dir = pdcp_test_packet_direction[i],
8506                         .sn_size = pdcp_test_data_sn_size[i],
8507                         .hfn = pdcp_test_hfn[i],
8508                         .hfn_threshold = pdcp_test_hfn_threshold[i],
8509                         .hfn_ovrd = 0,
8510                 } },
8511                 .crypto_xform = &ut_params->cipher_xform
8512         };
8513
8514         /* Create security session */
8515         ut_params->sec_session = rte_security_session_create(ctx,
8516                                 &sess_conf, ts_params->session_mpool,
8517                                 ts_params->session_priv_mpool);
8518
8519         if (!ut_params->sec_session) {
8520                 printf("TestCase %s()-%d line %d failed %s: ",
8521                         __func__, i, __LINE__, "Failed to allocate session");
8522                 ret = TEST_FAILED;
8523                 goto on_err;
8524         }
8525
8526         /* Generate crypto op data structure */
8527         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
8528                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
8529         if (!ut_params->op) {
8530                 printf("TestCase %s()-%d line %d failed %s: ",
8531                         __func__, i, __LINE__,
8532                         "Failed to allocate symmetric crypto operation struct");
8533                 ret = TEST_FAILED;
8534                 goto on_err;
8535         }
8536
8537         rte_security_attach_session(ut_params->op, ut_params->sec_session);
8538
8539         /* set crypto operation source mbuf */
8540         ut_params->op->sym->m_src = ut_params->ibuf;
8541         if (oop)
8542                 ut_params->op->sym->m_dst = ut_params->obuf;
8543
8544         /* Process crypto operation */
8545         if (process_crypto_request(ts_params->valid_devs[0], ut_params->op)
8546                 == NULL) {
8547                 printf("TestCase %s()-%d line %d failed %s: ",
8548                         __func__, i, __LINE__,
8549                         "failed to process sym crypto op");
8550                 ret = TEST_FAILED;
8551                 goto on_err;
8552         }
8553
8554         if (ut_params->op->status != RTE_CRYPTO_OP_STATUS_SUCCESS) {
8555                 printf("TestCase %s()-%d line %d failed %s: ",
8556                         __func__, i, __LINE__, "crypto op processing failed");
8557                 ret = TEST_FAILED;
8558                 goto on_err;
8559         }
8560
8561         /* Validate obuf */
8562         uint8_t *ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_src,
8563                         uint8_t *);
8564         if (oop) {
8565                 ciphertext = rte_pktmbuf_mtod(ut_params->op->sym->m_dst,
8566                                 uint8_t *);
8567         }
8568         if (fragsz_oop)
8569                 fragsz = frag_size_oop;
8570         if (memcmp(ciphertext, output_vec, fragsz)) {
8571                 printf("\n=======PDCP TestCase #%d failed: Data Mismatch ", i);
8572                 rte_hexdump(stdout, "encrypted", ciphertext, fragsz);
8573                 rte_hexdump(stdout, "reference", output_vec, fragsz);
8574                 ret = TEST_FAILED;
8575                 goto on_err;
8576         }
8577
8578         buf = ut_params->op->sym->m_src->next;
8579         if (oop)
8580                 buf = ut_params->op->sym->m_dst->next;
8581
8582         unsigned int off = fragsz;
8583
8584         ecx = 0;
8585         while (buf) {
8586                 ciphertext = rte_pktmbuf_mtod(buf,
8587                                 uint8_t *);
8588                 if (memcmp(ciphertext, output_vec + off, to_trn_tbl[ecx])) {
8589                         printf("\n=======PDCP TestCase #%d failed: Data Mismatch ", i);
8590                         rte_hexdump(stdout, "encrypted", ciphertext, to_trn_tbl[ecx]);
8591                         rte_hexdump(stdout, "reference", output_vec + off,
8592                                         to_trn_tbl[ecx]);
8593                         ret = TEST_FAILED;
8594                         goto on_err;
8595                 }
8596                 off += to_trn_tbl[ecx++];
8597                 buf = buf->next;
8598         }
8599 on_err:
8600         rte_crypto_op_free(ut_params->op);
8601         ut_params->op = NULL;
8602
8603         if (ut_params->sec_session)
8604                 rte_security_session_destroy(ctx, ut_params->sec_session);
8605         ut_params->sec_session = NULL;
8606
8607         rte_pktmbuf_free(ut_params->ibuf);
8608         ut_params->ibuf = NULL;
8609         if (oop) {
8610                 rte_pktmbuf_free(ut_params->obuf);
8611                 ut_params->obuf = NULL;
8612         }
8613
8614         return ret;
8615 }
8616
8617 int
8618 test_pdcp_proto_cplane_encap(int i)
8619 {
8620         return test_pdcp_proto(
8621                 i, 0, RTE_CRYPTO_CIPHER_OP_ENCRYPT, RTE_CRYPTO_AUTH_OP_GENERATE,
8622                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8623                 pdcp_test_data_out[i], pdcp_test_data_in_len[i] + 4,
8624                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8625                 pdcp_test_params[i].cipher_key_len,
8626                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8627                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8628                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8629                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8630                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8631 }
8632
8633 int
8634 test_pdcp_proto_uplane_encap(int i)
8635 {
8636         return test_pdcp_proto(
8637                 i, 0, RTE_CRYPTO_CIPHER_OP_ENCRYPT, RTE_CRYPTO_AUTH_OP_GENERATE,
8638                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8639                 pdcp_test_data_out[i], pdcp_test_data_in_len[i],
8640                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8641                 pdcp_test_params[i].cipher_key_len,
8642                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8643                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8644                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8645                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8646                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8647 }
8648
8649 int
8650 test_pdcp_proto_uplane_encap_with_int(int i)
8651 {
8652         return test_pdcp_proto(
8653                 i, 0, RTE_CRYPTO_CIPHER_OP_ENCRYPT, RTE_CRYPTO_AUTH_OP_GENERATE,
8654                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8655                 pdcp_test_data_out[i], pdcp_test_data_in_len[i] + 4,
8656                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8657                 pdcp_test_params[i].cipher_key_len,
8658                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8659                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8660                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8661                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8662                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8663 }
8664
8665 int
8666 test_pdcp_proto_cplane_decap(int i)
8667 {
8668         return test_pdcp_proto(
8669                 i, 0, RTE_CRYPTO_CIPHER_OP_DECRYPT, RTE_CRYPTO_AUTH_OP_VERIFY,
8670                 pdcp_test_data_out[i], pdcp_test_data_in_len[i] + 4,
8671                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8672                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8673                 pdcp_test_params[i].cipher_key_len,
8674                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8675                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8676                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8677                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8678                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8679 }
8680
8681 int
8682 test_pdcp_proto_uplane_decap(int i)
8683 {
8684         return test_pdcp_proto(
8685                 i, 0, RTE_CRYPTO_CIPHER_OP_DECRYPT, RTE_CRYPTO_AUTH_OP_VERIFY,
8686                 pdcp_test_data_out[i], pdcp_test_data_in_len[i],
8687                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8688                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8689                 pdcp_test_params[i].cipher_key_len,
8690                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8691                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8692                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8693                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8694                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8695 }
8696
8697 int
8698 test_pdcp_proto_uplane_decap_with_int(int i)
8699 {
8700         return test_pdcp_proto(
8701                 i, 0, RTE_CRYPTO_CIPHER_OP_DECRYPT, RTE_CRYPTO_AUTH_OP_VERIFY,
8702                 pdcp_test_data_out[i], pdcp_test_data_in_len[i] + 4,
8703                 pdcp_test_data_in[i], pdcp_test_data_in_len[i],
8704                 pdcp_test_params[i].cipher_alg, pdcp_test_crypto_key[i],
8705                 pdcp_test_params[i].cipher_key_len,
8706                 pdcp_test_params[i].auth_alg, pdcp_test_auth_key[i],
8707                 pdcp_test_params[i].auth_key_len, pdcp_test_bearer[i],
8708                 pdcp_test_params[i].domain, pdcp_test_packet_direction[i],
8709                 pdcp_test_data_sn_size[i], pdcp_test_hfn[i],
8710                 pdcp_test_hfn_threshold[i], SDAP_DISABLED);
8711 }
8712
8713 static int
8714 test_PDCP_PROTO_SGL_in_place_32B(void)
8715 {
8716         /* i can be used for running any PDCP case
8717          * In this case it is uplane 12-bit AES-SNOW DL encap
8718          */
8719         int i = PDCP_UPLANE_12BIT_OFFSET + AES_ENC + SNOW_AUTH + DOWNLINK;
8720         return test_pdcp_proto_SGL(i, IN_PLACE,
8721                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8722                         RTE_CRYPTO_AUTH_OP_GENERATE,
8723                         pdcp_test_data_in[i],
8724                         pdcp_test_data_in_len[i],
8725                         pdcp_test_data_out[i],
8726                         pdcp_test_data_in_len[i]+4,
8727                         32, 0);
8728 }
8729 static int
8730 test_PDCP_PROTO_SGL_oop_32B_128B(void)
8731 {
8732         /* i can be used for running any PDCP case
8733          * In this case it is uplane 18-bit NULL-NULL DL encap
8734          */
8735         int i = PDCP_UPLANE_18BIT_OFFSET + NULL_ENC + NULL_AUTH + DOWNLINK;
8736         return test_pdcp_proto_SGL(i, OUT_OF_PLACE,
8737                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8738                         RTE_CRYPTO_AUTH_OP_GENERATE,
8739                         pdcp_test_data_in[i],
8740                         pdcp_test_data_in_len[i],
8741                         pdcp_test_data_out[i],
8742                         pdcp_test_data_in_len[i]+4,
8743                         32, 128);
8744 }
8745 static int
8746 test_PDCP_PROTO_SGL_oop_32B_40B(void)
8747 {
8748         /* i can be used for running any PDCP case
8749          * In this case it is uplane 18-bit AES DL encap
8750          */
8751         int i = PDCP_UPLANE_OFFSET + AES_ENC + EIGHTEEN_BIT_SEQ_NUM_OFFSET
8752                         + DOWNLINK;
8753         return test_pdcp_proto_SGL(i, OUT_OF_PLACE,
8754                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8755                         RTE_CRYPTO_AUTH_OP_GENERATE,
8756                         pdcp_test_data_in[i],
8757                         pdcp_test_data_in_len[i],
8758                         pdcp_test_data_out[i],
8759                         pdcp_test_data_in_len[i],
8760                         32, 40);
8761 }
8762 static int
8763 test_PDCP_PROTO_SGL_oop_128B_32B(void)
8764 {
8765         /* i can be used for running any PDCP case
8766          * In this case it is cplane 12-bit AES-ZUC DL encap
8767          */
8768         int i = PDCP_CPLANE_LONG_SN_OFFSET + AES_ENC + ZUC_AUTH + DOWNLINK;
8769         return test_pdcp_proto_SGL(i, OUT_OF_PLACE,
8770                         RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8771                         RTE_CRYPTO_AUTH_OP_GENERATE,
8772                         pdcp_test_data_in[i],
8773                         pdcp_test_data_in_len[i],
8774                         pdcp_test_data_out[i],
8775                         pdcp_test_data_in_len[i]+4,
8776                         128, 32);
8777 }
8778
8779 static int
8780 test_PDCP_SDAP_PROTO_encap_all(void)
8781 {
8782         int i = 0, size = 0;
8783         int err, all_err = TEST_SUCCESS;
8784         const struct pdcp_sdap_test *cur_test;
8785
8786         size = RTE_DIM(list_pdcp_sdap_tests);
8787
8788         for (i = 0; i < size; i++) {
8789                 cur_test = &list_pdcp_sdap_tests[i];
8790                 err = test_pdcp_proto(
8791                         i, 0, RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8792                         RTE_CRYPTO_AUTH_OP_GENERATE, cur_test->data_in,
8793                         cur_test->in_len, cur_test->data_out,
8794                         cur_test->in_len + ((cur_test->auth_key) ? 4 : 0),
8795                         cur_test->param.cipher_alg, cur_test->cipher_key,
8796                         cur_test->param.cipher_key_len,
8797                         cur_test->param.auth_alg,
8798                         cur_test->auth_key, cur_test->param.auth_key_len,
8799                         cur_test->bearer, cur_test->param.domain,
8800                         cur_test->packet_direction, cur_test->sn_size,
8801                         cur_test->hfn,
8802                         cur_test->hfn_threshold, SDAP_ENABLED);
8803                 if (err) {
8804                         printf("\t%d) %s: Encapsulation failed\n",
8805                                         cur_test->test_idx,
8806                                         cur_test->param.name);
8807                         err = TEST_FAILED;
8808                 } else {
8809                         printf("\t%d) %s: Encap PASS\n", cur_test->test_idx,
8810                                         cur_test->param.name);
8811                         err = TEST_SUCCESS;
8812                 }
8813                 all_err += err;
8814         }
8815
8816         printf("Success: %d, Failure: %d\n", size + all_err, -all_err);
8817
8818         return (all_err == TEST_SUCCESS) ? TEST_SUCCESS : TEST_FAILED;
8819 }
8820
8821 static int
8822 test_PDCP_PROTO_short_mac(void)
8823 {
8824         int i = 0, size = 0;
8825         int err, all_err = TEST_SUCCESS;
8826         const struct pdcp_short_mac_test *cur_test;
8827
8828         size = RTE_DIM(list_pdcp_smac_tests);
8829
8830         for (i = 0; i < size; i++) {
8831                 cur_test = &list_pdcp_smac_tests[i];
8832                 err = test_pdcp_proto(
8833                         i, 0, RTE_CRYPTO_CIPHER_OP_ENCRYPT,
8834                         RTE_CRYPTO_AUTH_OP_GENERATE, cur_test->data_in,
8835                         cur_test->in_len, cur_test->data_out,
8836                         cur_test->in_len + ((cur_test->auth_key) ? 4 : 0),
8837                         RTE_CRYPTO_CIPHER_NULL, NULL,
8838                         0, cur_test->param.auth_alg,
8839                         cur_test->auth_key, cur_test->param.auth_key_len,
8840                         0, cur_test->param.domain, 0, 0,
8841                         0, 0, 0);
8842                 if (err) {
8843                         printf("\t%d) %s: Short MAC test failed\n",
8844                                         cur_test->test_idx,
8845                                         cur_test->param.name);
8846                         err = TEST_FAILED;
8847                 } else {
8848                         printf("\t%d) %s: Short MAC test PASS\n",
8849                                         cur_test->test_idx,
8850                                         cur_test->param.name);
8851                         rte_hexdump(stdout, "MAC I",
8852                                     cur_test->data_out + cur_test->in_len + 2,
8853                                     2);
8854                         err = TEST_SUCCESS;
8855                 }
8856                 all_err += err;
8857         }
8858
8859         printf("Success: %d, Failure: %d\n", size + all_err, -all_err);
8860
8861         return (all_err == TEST_SUCCESS) ? TEST_SUCCESS : TEST_FAILED;
8862
8863 }
8864
8865 static int
8866 test_PDCP_SDAP_PROTO_decap_all(void)
8867 {
8868         int i = 0, size = 0;
8869         int err, all_err = TEST_SUCCESS;
8870         const struct pdcp_sdap_test *cur_test;
8871
8872         size = RTE_DIM(list_pdcp_sdap_tests);
8873
8874         for (i = 0; i < size; i++) {
8875                 cur_test = &list_pdcp_sdap_tests[i];
8876                 err = test_pdcp_proto(
8877                         i, 0, RTE_CRYPTO_CIPHER_OP_DECRYPT,
8878                         RTE_CRYPTO_AUTH_OP_VERIFY,
8879                         cur_test->data_out,
8880                         cur_test->in_len + ((cur_test->auth_key) ? 4 : 0),
8881                         cur_test->data_in, cur_test->in_len,
8882                         cur_test->param.cipher_alg,
8883                         cur_test->cipher_key, cur_test->param.cipher_key_len,
8884                         cur_test->param.auth_alg, cur_test->auth_key,
8885                         cur_test->param.auth_key_len, cur_test->bearer,
8886                         cur_test->param.domain, cur_test->packet_direction,
8887                         cur_test->sn_size, cur_test->hfn,
8888                         cur_test->hfn_threshold, SDAP_ENABLED);
8889                 if (err) {
8890                         printf("\t%d) %s: Decapsulation failed\n",
8891                                         cur_test->test_idx,
8892                                         cur_test->param.name);
8893                         err = TEST_FAILED;
8894                 } else {
8895                         printf("\t%d) %s: Decap PASS\n", cur_test->test_idx,
8896                                         cur_test->param.name);
8897                         err = TEST_SUCCESS;
8898                 }
8899                 all_err += err;
8900         }
8901
8902         printf("Success: %d, Failure: %d\n", size + all_err, -all_err);
8903
8904         return (all_err == TEST_SUCCESS) ? TEST_SUCCESS : TEST_FAILED;
8905 }
8906
8907 static int
8908 test_ipsec_proto_process(const struct ipsec_test_data td[],
8909                          struct ipsec_test_data res_d[],
8910                          int nb_td,
8911                          bool silent,
8912                          const struct ipsec_test_flags *flags)
8913 {
8914         struct crypto_testsuite_params *ts_params = &testsuite_params;
8915         struct crypto_unittest_params *ut_params = &unittest_params;
8916         struct rte_security_capability_idx sec_cap_idx;
8917         const struct rte_security_capability *sec_cap;
8918         struct rte_security_ipsec_xform ipsec_xform;
8919         uint8_t dev_id = ts_params->valid_devs[0];
8920         enum rte_security_ipsec_sa_direction dir;
8921         struct ipsec_test_data *res_d_tmp = NULL;
8922         uint32_t src = RTE_IPV4(192, 168, 1, 0);
8923         uint32_t dst = RTE_IPV4(192, 168, 1, 1);
8924         int salt_len, i, ret = TEST_SUCCESS;
8925         struct rte_security_ctx *ctx;
8926         uint8_t *input_text;
8927
8928         ut_params->type = RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL;
8929         gbl_action_type = RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL;
8930
8931         /* Use first test data to create session */
8932
8933         /* Copy IPsec xform */
8934         memcpy(&ipsec_xform, &td[0].ipsec_xform, sizeof(ipsec_xform));
8935
8936         memcpy(&ipsec_xform.tunnel.ipv4.src_ip, &src, sizeof(src));
8937         memcpy(&ipsec_xform.tunnel.ipv4.dst_ip, &dst, sizeof(dst));
8938
8939         dir = ipsec_xform.direction;
8940
8941         ctx = rte_cryptodev_get_sec_ctx(dev_id);
8942
8943         sec_cap_idx.action = ut_params->type;
8944         sec_cap_idx.protocol = RTE_SECURITY_PROTOCOL_IPSEC;
8945         sec_cap_idx.ipsec.proto = ipsec_xform.proto;
8946         sec_cap_idx.ipsec.mode = ipsec_xform.mode;
8947         sec_cap_idx.ipsec.direction = ipsec_xform.direction;
8948
8949         if (flags->udp_encap)
8950                 ipsec_xform.options.udp_encap = 1;
8951
8952         sec_cap = rte_security_capability_get(ctx, &sec_cap_idx);
8953         if (sec_cap == NULL)
8954                 return TEST_SKIPPED;
8955
8956         /* Copy cipher session parameters */
8957         if (td[0].aead) {
8958                 memcpy(&ut_params->aead_xform, &td[0].xform.aead,
8959                        sizeof(ut_params->aead_xform));
8960                 ut_params->aead_xform.aead.key.data = td[0].key.data;
8961                 ut_params->aead_xform.aead.iv.offset = IV_OFFSET;
8962
8963                 /* Verify crypto capabilities */
8964                 if (test_ipsec_crypto_caps_aead_verify(
8965                                 sec_cap,
8966                                 &ut_params->aead_xform) != 0) {
8967                         if (!silent)
8968                                 RTE_LOG(INFO, USER1,
8969                                         "Crypto capabilities not supported\n");
8970                         return TEST_SKIPPED;
8971                 }
8972         } else {
8973                 /* Only AEAD supported now */
8974                 return TEST_SKIPPED;
8975         }
8976
8977         if (test_ipsec_sec_caps_verify(&ipsec_xform, sec_cap, silent) != 0)
8978                 return TEST_SKIPPED;
8979
8980         salt_len = RTE_MIN(sizeof(ipsec_xform.salt), td[0].salt.len);
8981         memcpy(&ipsec_xform.salt, td[0].salt.data, salt_len);
8982
8983         struct rte_security_session_conf sess_conf = {
8984                 .action_type = ut_params->type,
8985                 .protocol = RTE_SECURITY_PROTOCOL_IPSEC,
8986                 .ipsec = ipsec_xform,
8987                 .crypto_xform = &ut_params->aead_xform,
8988         };
8989
8990         /* Create security session */
8991         ut_params->sec_session = rte_security_session_create(ctx, &sess_conf,
8992                                         ts_params->session_mpool,
8993                                         ts_params->session_priv_mpool);
8994
8995         if (ut_params->sec_session == NULL)
8996                 return TEST_SKIPPED;
8997
8998         for (i = 0; i < nb_td; i++) {
8999                 /* Setup source mbuf payload */
9000                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
9001                 memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
9002                                 rte_pktmbuf_tailroom(ut_params->ibuf));
9003
9004                 input_text = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
9005                                 td[i].input_text.len);
9006
9007                 memcpy(input_text, td[i].input_text.data,
9008                        td[i].input_text.len);
9009
9010                 /* Generate crypto op data structure */
9011                 ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
9012                                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
9013                 if (!ut_params->op) {
9014                         printf("TestCase %s line %d: %s\n",
9015                                 __func__, __LINE__,
9016                                 "failed to allocate crypto op");
9017                         ret = TEST_FAILED;
9018                         goto crypto_op_free;
9019                 }
9020
9021                 /* Attach session to operation */
9022                 rte_security_attach_session(ut_params->op,
9023                                             ut_params->sec_session);
9024
9025                 /* Set crypto operation mbufs */
9026                 ut_params->op->sym->m_src = ut_params->ibuf;
9027                 ut_params->op->sym->m_dst = NULL;
9028
9029                 /* Copy IV in crypto operation when IV generation is disabled */
9030                 if (dir == RTE_SECURITY_IPSEC_SA_DIR_EGRESS &&
9031                     ipsec_xform.options.iv_gen_disable == 1) {
9032                         uint8_t *iv = rte_crypto_op_ctod_offset(ut_params->op,
9033                                                                 uint8_t *,
9034                                                                 IV_OFFSET);
9035                         int len;
9036
9037                         if (td[i].aead)
9038                                 len = td[i].xform.aead.aead.iv.length;
9039                         else
9040                                 len = td[i].xform.chain.cipher.cipher.iv.length;
9041
9042                         memcpy(iv, td[i].iv.data, len);
9043                 }
9044
9045                 /* Process crypto operation */
9046                 process_crypto_request(dev_id, ut_params->op);
9047
9048                 ret = test_ipsec_status_check(ut_params->op, flags, dir);
9049                 if (ret != TEST_SUCCESS)
9050                         goto crypto_op_free;
9051
9052                 if (res_d != NULL)
9053                         res_d_tmp = &res_d[i];
9054
9055                 ret = test_ipsec_post_process(ut_params->ibuf, &td[i],
9056                                               res_d_tmp, silent, flags);
9057                 if (ret != TEST_SUCCESS)
9058                         goto crypto_op_free;
9059
9060                 rte_crypto_op_free(ut_params->op);
9061                 ut_params->op = NULL;
9062
9063                 rte_pktmbuf_free(ut_params->ibuf);
9064                 ut_params->ibuf = NULL;
9065         }
9066
9067 crypto_op_free:
9068         rte_crypto_op_free(ut_params->op);
9069         ut_params->op = NULL;
9070
9071         rte_pktmbuf_free(ut_params->ibuf);
9072         ut_params->ibuf = NULL;
9073
9074         if (ut_params->sec_session)
9075                 rte_security_session_destroy(ctx, ut_params->sec_session);
9076         ut_params->sec_session = NULL;
9077
9078         return ret;
9079 }
9080
9081 static int
9082 test_ipsec_proto_known_vec(const void *test_data)
9083 {
9084         struct ipsec_test_data td_outb;
9085         struct ipsec_test_flags flags;
9086
9087         memset(&flags, 0, sizeof(flags));
9088
9089         memcpy(&td_outb, test_data, sizeof(td_outb));
9090
9091         /* Disable IV gen to be able to test with known vectors */
9092         td_outb.ipsec_xform.options.iv_gen_disable = 1;
9093
9094         return test_ipsec_proto_process(&td_outb, NULL, 1, false, &flags);
9095 }
9096
9097 static int
9098 test_ipsec_proto_known_vec_inb(const void *td_outb)
9099 {
9100         struct ipsec_test_flags flags;
9101         struct ipsec_test_data td_inb;
9102
9103         memset(&flags, 0, sizeof(flags));
9104
9105         test_ipsec_td_in_from_out(td_outb, &td_inb);
9106
9107         return test_ipsec_proto_process(&td_inb, NULL, 1, false, &flags);
9108 }
9109
9110 static int
9111 test_ipsec_proto_all(const struct ipsec_test_flags *flags)
9112 {
9113         struct ipsec_test_data td_outb[IPSEC_TEST_PACKETS_MAX];
9114         struct ipsec_test_data td_inb[IPSEC_TEST_PACKETS_MAX];
9115         unsigned int i, nb_pkts = 1, pass_cnt = 0;
9116         int ret;
9117
9118         if (flags->iv_gen)
9119                 nb_pkts = IPSEC_TEST_PACKETS_MAX;
9120
9121         for (i = 0; i < RTE_DIM(aead_list); i++) {
9122                 test_ipsec_td_prepare(&aead_list[i],
9123                                       NULL,
9124                                       flags,
9125                                       td_outb,
9126                                       nb_pkts);
9127
9128                 ret = test_ipsec_proto_process(td_outb, td_inb, nb_pkts, true,
9129                                                flags);
9130                 if (ret == TEST_SKIPPED)
9131                         continue;
9132
9133                 if (ret == TEST_FAILED)
9134                         return TEST_FAILED;
9135
9136                 test_ipsec_td_update(td_inb, td_outb, nb_pkts, flags);
9137
9138                 ret = test_ipsec_proto_process(td_inb, NULL, nb_pkts, true,
9139                                                flags);
9140                 if (ret == TEST_SKIPPED)
9141                         continue;
9142
9143                 if (ret == TEST_FAILED)
9144                         return TEST_FAILED;
9145
9146                 if (flags->display_alg)
9147                         test_ipsec_display_alg(&aead_list[i], NULL);
9148
9149                 pass_cnt++;
9150         }
9151
9152         if (pass_cnt > 0)
9153                 return TEST_SUCCESS;
9154         else
9155                 return TEST_SKIPPED;
9156 }
9157
9158 static int
9159 test_ipsec_proto_display_list(const void *data __rte_unused)
9160 {
9161         struct ipsec_test_flags flags;
9162
9163         memset(&flags, 0, sizeof(flags));
9164
9165         flags.display_alg = true;
9166
9167         return test_ipsec_proto_all(&flags);
9168 }
9169
9170 static int
9171 test_ipsec_proto_iv_gen(const void *data __rte_unused)
9172 {
9173         struct ipsec_test_flags flags;
9174
9175         memset(&flags, 0, sizeof(flags));
9176
9177         flags.iv_gen = true;
9178
9179         return test_ipsec_proto_all(&flags);
9180 }
9181
9182 static int
9183 test_ipsec_proto_err_icv_corrupt(const void *data __rte_unused)
9184 {
9185         struct ipsec_test_flags flags;
9186
9187         memset(&flags, 0, sizeof(flags));
9188
9189         flags.icv_corrupt = true;
9190
9191         return test_ipsec_proto_all(&flags);
9192 }
9193
9194 static int
9195 test_ipsec_proto_udp_encap(const void *data __rte_unused)
9196 {
9197         struct ipsec_test_flags flags;
9198
9199         memset(&flags, 0, sizeof(flags));
9200
9201         flags.udp_encap = true;
9202
9203         return test_ipsec_proto_all(&flags);
9204 }
9205
9206 static int
9207 test_PDCP_PROTO_all(void)
9208 {
9209         struct crypto_testsuite_params *ts_params = &testsuite_params;
9210         struct crypto_unittest_params *ut_params = &unittest_params;
9211         struct rte_cryptodev_info dev_info;
9212         int status;
9213
9214         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
9215         uint64_t feat_flags = dev_info.feature_flags;
9216
9217         if (!(feat_flags & RTE_CRYPTODEV_FF_SECURITY))
9218                 return TEST_SKIPPED;
9219
9220         /* Set action type */
9221         ut_params->type = gbl_action_type == RTE_SECURITY_ACTION_TYPE_NONE ?
9222                 RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL :
9223                 gbl_action_type;
9224
9225         if (security_proto_supported(ut_params->type,
9226                         RTE_SECURITY_PROTOCOL_PDCP) < 0)
9227                 return TEST_SKIPPED;
9228
9229         status = test_PDCP_PROTO_cplane_encap_all();
9230         status += test_PDCP_PROTO_cplane_decap_all();
9231         status += test_PDCP_PROTO_uplane_encap_all();
9232         status += test_PDCP_PROTO_uplane_decap_all();
9233         status += test_PDCP_PROTO_SGL_in_place_32B();
9234         status += test_PDCP_PROTO_SGL_oop_32B_128B();
9235         status += test_PDCP_PROTO_SGL_oop_32B_40B();
9236         status += test_PDCP_PROTO_SGL_oop_128B_32B();
9237         status += test_PDCP_SDAP_PROTO_encap_all();
9238         status += test_PDCP_SDAP_PROTO_decap_all();
9239         status += test_PDCP_PROTO_short_mac();
9240
9241         if (status)
9242                 return TEST_FAILED;
9243         else
9244                 return TEST_SUCCESS;
9245 }
9246
9247 static int
9248 test_docsis_proto_uplink(int i, struct docsis_test_data *d_td)
9249 {
9250         struct crypto_testsuite_params *ts_params = &testsuite_params;
9251         struct crypto_unittest_params *ut_params = &unittest_params;
9252         uint8_t *plaintext, *ciphertext;
9253         uint8_t *iv_ptr;
9254         int32_t cipher_len, crc_len;
9255         uint32_t crc_data_len;
9256         int ret = TEST_SUCCESS;
9257
9258         struct rte_security_ctx *ctx = (struct rte_security_ctx *)
9259                                         rte_cryptodev_get_sec_ctx(
9260                                                 ts_params->valid_devs[0]);
9261
9262         /* Verify the capabilities */
9263         struct rte_security_capability_idx sec_cap_idx;
9264         const struct rte_security_capability *sec_cap;
9265         const struct rte_cryptodev_capabilities *crypto_cap;
9266         const struct rte_cryptodev_symmetric_capability *sym_cap;
9267         int j = 0;
9268
9269         sec_cap_idx.action = ut_params->type;
9270         sec_cap_idx.protocol = RTE_SECURITY_PROTOCOL_DOCSIS;
9271         sec_cap_idx.docsis.direction = RTE_SECURITY_DOCSIS_UPLINK;
9272
9273         sec_cap = rte_security_capability_get(ctx, &sec_cap_idx);
9274         if (sec_cap == NULL)
9275                 return TEST_SKIPPED;
9276
9277         while ((crypto_cap = &sec_cap->crypto_capabilities[j++])->op !=
9278                         RTE_CRYPTO_OP_TYPE_UNDEFINED) {
9279                 if (crypto_cap->op == RTE_CRYPTO_OP_TYPE_SYMMETRIC &&
9280                                 crypto_cap->sym.xform_type ==
9281                                         RTE_CRYPTO_SYM_XFORM_CIPHER &&
9282                                 crypto_cap->sym.cipher.algo ==
9283                                         RTE_CRYPTO_CIPHER_AES_DOCSISBPI) {
9284                         sym_cap = &crypto_cap->sym;
9285                         if (rte_cryptodev_sym_capability_check_cipher(sym_cap,
9286                                                 d_td->key.len,
9287                                                 d_td->iv.len) == 0)
9288                                 break;
9289                 }
9290         }
9291
9292         if (crypto_cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED)
9293                 return TEST_SKIPPED;
9294
9295         /* Setup source mbuf payload */
9296         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
9297         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
9298                         rte_pktmbuf_tailroom(ut_params->ibuf));
9299
9300         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
9301                         d_td->ciphertext.len);
9302
9303         memcpy(ciphertext, d_td->ciphertext.data, d_td->ciphertext.len);
9304
9305         /* Setup cipher session parameters */
9306         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
9307         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_DOCSISBPI;
9308         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_DECRYPT;
9309         ut_params->cipher_xform.cipher.key.data = d_td->key.data;
9310         ut_params->cipher_xform.cipher.key.length = d_td->key.len;
9311         ut_params->cipher_xform.cipher.iv.length = d_td->iv.len;
9312         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
9313         ut_params->cipher_xform.next = NULL;
9314
9315         /* Setup DOCSIS session parameters */
9316         ut_params->docsis_xform.direction = RTE_SECURITY_DOCSIS_UPLINK;
9317
9318         struct rte_security_session_conf sess_conf = {
9319                 .action_type = ut_params->type,
9320                 .protocol = RTE_SECURITY_PROTOCOL_DOCSIS,
9321                 .docsis = ut_params->docsis_xform,
9322                 .crypto_xform = &ut_params->cipher_xform,
9323         };
9324
9325         /* Create security session */
9326         ut_params->sec_session = rte_security_session_create(ctx, &sess_conf,
9327                                         ts_params->session_mpool,
9328                                         ts_params->session_priv_mpool);
9329
9330         if (!ut_params->sec_session) {
9331                 printf("TestCase %s(%d) line %d: %s\n",
9332                         __func__, i, __LINE__, "failed to allocate session");
9333                 ret = TEST_FAILED;
9334                 goto on_err;
9335         }
9336
9337         /* Generate crypto op data structure */
9338         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
9339                                 RTE_CRYPTO_OP_TYPE_SYMMETRIC);
9340         if (!ut_params->op) {
9341                 printf("TestCase %s(%d) line %d: %s\n",
9342                         __func__, i, __LINE__,
9343                         "failed to allocate symmetric crypto operation");
9344                 ret = TEST_FAILED;
9345                 goto on_err;
9346         }
9347
9348         /* Setup CRC operation parameters */
9349         crc_len = d_td->ciphertext.no_crc == false ?
9350                         (d_td->ciphertext.len -
9351                                 d_td->ciphertext.crc_offset -
9352                                 RTE_ETHER_CRC_LEN) :
9353                         0;
9354         crc_len = crc_len > 0 ? crc_len : 0;
9355         crc_data_len = crc_len == 0 ? 0 : RTE_ETHER_CRC_LEN;
9356         ut_params->op->sym->auth.data.length = crc_len;
9357         ut_params->op->sym->auth.data.offset = d_td->ciphertext.crc_offset;
9358
9359         /* Setup cipher operation parameters */
9360         cipher_len = d_td->ciphertext.no_cipher == false ?
9361                         (d_td->ciphertext.len -
9362                                 d_td->ciphertext.cipher_offset) :
9363                         0;
9364         cipher_len = cipher_len > 0 ? cipher_len : 0;
9365         ut_params->op->sym->cipher.data.length = cipher_len;
9366         ut_params->op->sym->cipher.data.offset = d_td->ciphertext.cipher_offset;
9367
9368         /* Setup cipher IV */
9369         iv_ptr = (uint8_t *)ut_params->op + IV_OFFSET;
9370         rte_memcpy(iv_ptr, d_td->iv.data, d_td->iv.len);
9371
9372         /* Attach session to operation */
9373         rte_security_attach_session(ut_params->op, ut_params->sec_session);
9374
9375         /* Set crypto operation mbufs */
9376         ut_params->op->sym->m_src = ut_params->ibuf;
9377         ut_params->op->sym->m_dst = NULL;
9378
9379         /* Process crypto operation */
9380         if (process_crypto_request(ts_params->valid_devs[0], ut_params->op) ==
9381                         NULL) {
9382                 printf("TestCase %s(%d) line %d: %s\n",
9383                         __func__, i, __LINE__,
9384                         "failed to process security crypto op");
9385                 ret = TEST_FAILED;
9386                 goto on_err;
9387         }
9388
9389         if (ut_params->op->status != RTE_CRYPTO_OP_STATUS_SUCCESS) {
9390                 printf("TestCase %s(%d) line %d: %s\n",
9391                         __func__, i, __LINE__, "crypto op processing failed");
9392                 ret = TEST_FAILED;
9393                 goto on_err;
9394         }
9395
9396         /* Validate plaintext */
9397         plaintext = ciphertext;
9398
9399         if (memcmp(plaintext, d_td->plaintext.data,
9400                         d_td->plaintext.len - crc_data_len)) {
9401                 printf("TestCase %s(%d) line %d: %s\n",
9402                         __func__, i, __LINE__, "plaintext not as expected\n");
9403                 rte_hexdump(stdout, "expected", d_td->plaintext.data,
9404                                 d_td->plaintext.len);
9405                 rte_hexdump(stdout, "actual", plaintext, d_td->plaintext.len);
9406                 ret = TEST_FAILED;
9407                 goto on_err;
9408         }
9409
9410 on_err:
9411         rte_crypto_op_free(ut_params->op);
9412         ut_params->op = NULL;
9413
9414         if (ut_params->sec_session)
9415                 rte_security_session_destroy(ctx, ut_params->sec_session);
9416         ut_params->sec_session = NULL;
9417
9418         rte_pktmbuf_free(ut_params->ibuf);
9419         ut_params->ibuf = NULL;
9420
9421         return ret;
9422 }
9423
9424 static int
9425 test_docsis_proto_downlink(int i, struct docsis_test_data *d_td)
9426 {
9427         struct crypto_testsuite_params *ts_params = &testsuite_params;
9428         struct crypto_unittest_params *ut_params = &unittest_params;
9429         uint8_t *plaintext, *ciphertext;
9430         uint8_t *iv_ptr;
9431         int32_t cipher_len, crc_len;
9432         int ret = TEST_SUCCESS;
9433
9434         struct rte_security_ctx *ctx = (struct rte_security_ctx *)
9435                                         rte_cryptodev_get_sec_ctx(
9436                                                 ts_params->valid_devs[0]);
9437
9438         /* Verify the capabilities */
9439         struct rte_security_capability_idx sec_cap_idx;
9440         const struct rte_security_capability *sec_cap;
9441         const struct rte_cryptodev_capabilities *crypto_cap;
9442         const struct rte_cryptodev_symmetric_capability *sym_cap;
9443         int j = 0;
9444
9445         sec_cap_idx.action = ut_params->type;
9446         sec_cap_idx.protocol = RTE_SECURITY_PROTOCOL_DOCSIS;
9447         sec_cap_idx.docsis.direction = RTE_SECURITY_DOCSIS_DOWNLINK;
9448
9449         sec_cap = rte_security_capability_get(ctx, &sec_cap_idx);
9450         if (sec_cap == NULL)
9451                 return TEST_SKIPPED;
9452
9453         while ((crypto_cap = &sec_cap->crypto_capabilities[j++])->op !=
9454                         RTE_CRYPTO_OP_TYPE_UNDEFINED) {
9455                 if (crypto_cap->op == RTE_CRYPTO_OP_TYPE_SYMMETRIC &&
9456                                 crypto_cap->sym.xform_type ==
9457                                         RTE_CRYPTO_SYM_XFORM_CIPHER &&
9458                                 crypto_cap->sym.cipher.algo ==
9459                                         RTE_CRYPTO_CIPHER_AES_DOCSISBPI) {
9460                         sym_cap = &crypto_cap->sym;
9461                         if (rte_cryptodev_sym_capability_check_cipher(sym_cap,
9462                                                 d_td->key.len,
9463                                                 d_td->iv.len) == 0)
9464                                 break;
9465                 }
9466         }
9467
9468         if (crypto_cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED)
9469                 return TEST_SKIPPED;
9470
9471         /* Setup source mbuf payload */
9472         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
9473         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
9474                         rte_pktmbuf_tailroom(ut_params->ibuf));
9475
9476         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
9477                         d_td->plaintext.len);
9478
9479         memcpy(plaintext, d_td->plaintext.data, d_td->plaintext.len);
9480
9481         /* Setup cipher session parameters */
9482         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
9483         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_DOCSISBPI;
9484         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
9485         ut_params->cipher_xform.cipher.key.data = d_td->key.data;
9486         ut_params->cipher_xform.cipher.key.length = d_td->key.len;
9487         ut_params->cipher_xform.cipher.iv.length = d_td->iv.len;
9488         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
9489         ut_params->cipher_xform.next = NULL;
9490
9491         /* Setup DOCSIS session parameters */
9492         ut_params->docsis_xform.direction = RTE_SECURITY_DOCSIS_DOWNLINK;
9493
9494         struct rte_security_session_conf sess_conf = {
9495                 .action_type = ut_params->type,
9496                 .protocol = RTE_SECURITY_PROTOCOL_DOCSIS,
9497                 .docsis = ut_params->docsis_xform,
9498                 .crypto_xform = &ut_params->cipher_xform,
9499         };
9500
9501         /* Create security session */
9502         ut_params->sec_session = rte_security_session_create(ctx, &sess_conf,
9503                                         ts_params->session_mpool,
9504                                         ts_params->session_priv_mpool);
9505
9506         if (!ut_params->sec_session) {
9507                 printf("TestCase %s(%d) line %d: %s\n",
9508                         __func__, i, __LINE__, "failed to allocate session");
9509                 ret = TEST_FAILED;
9510                 goto on_err;
9511         }
9512
9513         /* Generate crypto op data structure */
9514         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
9515                                 RTE_CRYPTO_OP_TYPE_SYMMETRIC);
9516         if (!ut_params->op) {
9517                 printf("TestCase %s(%d) line %d: %s\n",
9518                         __func__, i, __LINE__,
9519                         "failed to allocate security crypto operation");
9520                 ret = TEST_FAILED;
9521                 goto on_err;
9522         }
9523
9524         /* Setup CRC operation parameters */
9525         crc_len = d_td->plaintext.no_crc == false ?
9526                         (d_td->plaintext.len -
9527                                 d_td->plaintext.crc_offset -
9528                                 RTE_ETHER_CRC_LEN) :
9529                         0;
9530         crc_len = crc_len > 0 ? crc_len : 0;
9531         ut_params->op->sym->auth.data.length = crc_len;
9532         ut_params->op->sym->auth.data.offset = d_td->plaintext.crc_offset;
9533
9534         /* Setup cipher operation parameters */
9535         cipher_len = d_td->plaintext.no_cipher == false ?
9536                         (d_td->plaintext.len -
9537                                 d_td->plaintext.cipher_offset) :
9538                         0;
9539         cipher_len = cipher_len > 0 ? cipher_len : 0;
9540         ut_params->op->sym->cipher.data.length = cipher_len;
9541         ut_params->op->sym->cipher.data.offset = d_td->plaintext.cipher_offset;
9542
9543         /* Setup cipher IV */
9544         iv_ptr = (uint8_t *)ut_params->op + IV_OFFSET;
9545         rte_memcpy(iv_ptr, d_td->iv.data, d_td->iv.len);
9546
9547         /* Attach session to operation */
9548         rte_security_attach_session(ut_params->op, ut_params->sec_session);
9549
9550         /* Set crypto operation mbufs */
9551         ut_params->op->sym->m_src = ut_params->ibuf;
9552         ut_params->op->sym->m_dst = NULL;
9553
9554         /* Process crypto operation */
9555         if (process_crypto_request(ts_params->valid_devs[0], ut_params->op) ==
9556                         NULL) {
9557                 printf("TestCase %s(%d) line %d: %s\n",
9558                         __func__, i, __LINE__,
9559                         "failed to process security crypto op");
9560                 ret = TEST_FAILED;
9561                 goto on_err;
9562         }
9563
9564         if (ut_params->op->status != RTE_CRYPTO_OP_STATUS_SUCCESS) {
9565                 printf("TestCase %s(%d) line %d: %s\n",
9566                         __func__, i, __LINE__, "crypto op processing failed");
9567                 ret = TEST_FAILED;
9568                 goto on_err;
9569         }
9570
9571         /* Validate ciphertext */
9572         ciphertext = plaintext;
9573
9574         if (memcmp(ciphertext, d_td->ciphertext.data, d_td->ciphertext.len)) {
9575                 printf("TestCase %s(%d) line %d: %s\n",
9576                         __func__, i, __LINE__, "ciphertext not as expected\n");
9577                 rte_hexdump(stdout, "expected", d_td->ciphertext.data,
9578                                 d_td->ciphertext.len);
9579                 rte_hexdump(stdout, "actual", ciphertext, d_td->ciphertext.len);
9580                 ret = TEST_FAILED;
9581                 goto on_err;
9582         }
9583
9584 on_err:
9585         rte_crypto_op_free(ut_params->op);
9586         ut_params->op = NULL;
9587
9588         if (ut_params->sec_session)
9589                 rte_security_session_destroy(ctx, ut_params->sec_session);
9590         ut_params->sec_session = NULL;
9591
9592         rte_pktmbuf_free(ut_params->ibuf);
9593         ut_params->ibuf = NULL;
9594
9595         return ret;
9596 }
9597
9598 #define TEST_DOCSIS_COUNT(func) do {                    \
9599         int ret = func;                                 \
9600         if (ret == TEST_SUCCESS)  {                     \
9601                 printf("\t%2d)", n++);                  \
9602                 printf("+++++ PASSED:" #func"\n");      \
9603                 p++;                                    \
9604         } else if (ret == TEST_SKIPPED) {               \
9605                 printf("\t%2d)", n++);                  \
9606                 printf("~~~~~ SKIPPED:" #func"\n");     \
9607                 s++;                                    \
9608         } else {                                        \
9609                 printf("\t%2d)", n++);                  \
9610                 printf("----- FAILED:" #func"\n");      \
9611                 f++;                                    \
9612         }                                               \
9613 } while (0)
9614
9615 static int
9616 test_DOCSIS_PROTO_uplink_all(void)
9617 {
9618         int p = 0, s = 0, f = 0, n = 0;
9619
9620         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(1, &docsis_test_case_1));
9621         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(2, &docsis_test_case_2));
9622         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(3, &docsis_test_case_3));
9623         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(4, &docsis_test_case_4));
9624         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(5, &docsis_test_case_5));
9625         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(6, &docsis_test_case_6));
9626         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(7, &docsis_test_case_7));
9627         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(8, &docsis_test_case_8));
9628         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(9, &docsis_test_case_9));
9629         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(10, &docsis_test_case_10));
9630         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(11, &docsis_test_case_11));
9631         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(12, &docsis_test_case_12));
9632         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(13, &docsis_test_case_13));
9633         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(14, &docsis_test_case_14));
9634         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(15, &docsis_test_case_15));
9635         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(16, &docsis_test_case_16));
9636         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(17, &docsis_test_case_17));
9637         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(18, &docsis_test_case_18));
9638         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(19, &docsis_test_case_19));
9639         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(20, &docsis_test_case_20));
9640         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(21, &docsis_test_case_21));
9641         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(22, &docsis_test_case_22));
9642         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(23, &docsis_test_case_23));
9643         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(24, &docsis_test_case_24));
9644         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(25, &docsis_test_case_25));
9645         TEST_DOCSIS_COUNT(test_docsis_proto_uplink(26, &docsis_test_case_26));
9646
9647         if (f)
9648                 printf("## %s: %d passed out of %d (%d skipped)\n",
9649                         __func__, p, n, s);
9650
9651         return f;
9652 };
9653
9654 static int
9655 test_DOCSIS_PROTO_downlink_all(void)
9656 {
9657         int p = 0, s = 0, f = 0, n = 0;
9658
9659         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(1, &docsis_test_case_1));
9660         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(2, &docsis_test_case_2));
9661         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(3, &docsis_test_case_3));
9662         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(4, &docsis_test_case_4));
9663         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(5, &docsis_test_case_5));
9664         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(6, &docsis_test_case_6));
9665         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(7, &docsis_test_case_7));
9666         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(8, &docsis_test_case_8));
9667         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(9, &docsis_test_case_9));
9668         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(10, &docsis_test_case_10));
9669         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(11, &docsis_test_case_11));
9670         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(12, &docsis_test_case_12));
9671         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(13, &docsis_test_case_13));
9672         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(14, &docsis_test_case_14));
9673         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(15, &docsis_test_case_15));
9674         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(16, &docsis_test_case_16));
9675         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(17, &docsis_test_case_17));
9676         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(18, &docsis_test_case_18));
9677         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(19, &docsis_test_case_19));
9678         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(20, &docsis_test_case_20));
9679         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(21, &docsis_test_case_21));
9680         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(22, &docsis_test_case_22));
9681         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(23, &docsis_test_case_23));
9682         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(24, &docsis_test_case_24));
9683         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(25, &docsis_test_case_25));
9684         TEST_DOCSIS_COUNT(test_docsis_proto_downlink(26, &docsis_test_case_26));
9685
9686         if (f)
9687                 printf("## %s: %d passed out of %d (%d skipped)\n",
9688                         __func__, p, n, s);
9689
9690         return f;
9691 };
9692
9693 static int
9694 test_DOCSIS_PROTO_all(void)
9695 {
9696         struct crypto_testsuite_params *ts_params = &testsuite_params;
9697         struct crypto_unittest_params *ut_params = &unittest_params;
9698         struct rte_cryptodev_info dev_info;
9699         int status;
9700
9701         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
9702         uint64_t feat_flags = dev_info.feature_flags;
9703
9704         if (!(feat_flags & RTE_CRYPTODEV_FF_SECURITY))
9705                 return TEST_SKIPPED;
9706
9707         /* Set action type */
9708         ut_params->type = gbl_action_type == RTE_SECURITY_ACTION_TYPE_NONE ?
9709                 RTE_SECURITY_ACTION_TYPE_LOOKASIDE_PROTOCOL :
9710                 gbl_action_type;
9711
9712         if (security_proto_supported(ut_params->type,
9713                         RTE_SECURITY_PROTOCOL_DOCSIS) < 0)
9714                 return TEST_SKIPPED;
9715
9716         status = test_DOCSIS_PROTO_uplink_all();
9717         status += test_DOCSIS_PROTO_downlink_all();
9718
9719         if (status)
9720                 return TEST_FAILED;
9721         else
9722                 return TEST_SUCCESS;
9723 }
9724 #endif
9725
9726 static int
9727 test_AES_GCM_authenticated_encryption_test_case_1(void)
9728 {
9729         return test_authenticated_encryption(&gcm_test_case_1);
9730 }
9731
9732 static int
9733 test_AES_GCM_authenticated_encryption_test_case_2(void)
9734 {
9735         return test_authenticated_encryption(&gcm_test_case_2);
9736 }
9737
9738 static int
9739 test_AES_GCM_authenticated_encryption_test_case_3(void)
9740 {
9741         return test_authenticated_encryption(&gcm_test_case_3);
9742 }
9743
9744 static int
9745 test_AES_GCM_authenticated_encryption_test_case_4(void)
9746 {
9747         return test_authenticated_encryption(&gcm_test_case_4);
9748 }
9749
9750 static int
9751 test_AES_GCM_authenticated_encryption_test_case_5(void)
9752 {
9753         return test_authenticated_encryption(&gcm_test_case_5);
9754 }
9755
9756 static int
9757 test_AES_GCM_authenticated_encryption_test_case_6(void)
9758 {
9759         return test_authenticated_encryption(&gcm_test_case_6);
9760 }
9761
9762 static int
9763 test_AES_GCM_authenticated_encryption_test_case_7(void)
9764 {
9765         return test_authenticated_encryption(&gcm_test_case_7);
9766 }
9767
9768 static int
9769 test_AES_GCM_authenticated_encryption_test_case_8(void)
9770 {
9771         return test_authenticated_encryption(&gcm_test_case_8);
9772 }
9773
9774 static int
9775 test_AES_GCM_J0_authenticated_encryption_test_case_1(void)
9776 {
9777         return test_authenticated_encryption(&gcm_J0_test_case_1);
9778 }
9779
9780 static int
9781 test_AES_GCM_auth_encryption_test_case_192_1(void)
9782 {
9783         return test_authenticated_encryption(&gcm_test_case_192_1);
9784 }
9785
9786 static int
9787 test_AES_GCM_auth_encryption_test_case_192_2(void)
9788 {
9789         return test_authenticated_encryption(&gcm_test_case_192_2);
9790 }
9791
9792 static int
9793 test_AES_GCM_auth_encryption_test_case_192_3(void)
9794 {
9795         return test_authenticated_encryption(&gcm_test_case_192_3);
9796 }
9797
9798 static int
9799 test_AES_GCM_auth_encryption_test_case_192_4(void)
9800 {
9801         return test_authenticated_encryption(&gcm_test_case_192_4);
9802 }
9803
9804 static int
9805 test_AES_GCM_auth_encryption_test_case_192_5(void)
9806 {
9807         return test_authenticated_encryption(&gcm_test_case_192_5);
9808 }
9809
9810 static int
9811 test_AES_GCM_auth_encryption_test_case_192_6(void)
9812 {
9813         return test_authenticated_encryption(&gcm_test_case_192_6);
9814 }
9815
9816 static int
9817 test_AES_GCM_auth_encryption_test_case_192_7(void)
9818 {
9819         return test_authenticated_encryption(&gcm_test_case_192_7);
9820 }
9821
9822 static int
9823 test_AES_GCM_auth_encryption_test_case_256_1(void)
9824 {
9825         return test_authenticated_encryption(&gcm_test_case_256_1);
9826 }
9827
9828 static int
9829 test_AES_GCM_auth_encryption_test_case_256_2(void)
9830 {
9831         return test_authenticated_encryption(&gcm_test_case_256_2);
9832 }
9833
9834 static int
9835 test_AES_GCM_auth_encryption_test_case_256_3(void)
9836 {
9837         return test_authenticated_encryption(&gcm_test_case_256_3);
9838 }
9839
9840 static int
9841 test_AES_GCM_auth_encryption_test_case_256_4(void)
9842 {
9843         return test_authenticated_encryption(&gcm_test_case_256_4);
9844 }
9845
9846 static int
9847 test_AES_GCM_auth_encryption_test_case_256_5(void)
9848 {
9849         return test_authenticated_encryption(&gcm_test_case_256_5);
9850 }
9851
9852 static int
9853 test_AES_GCM_auth_encryption_test_case_256_6(void)
9854 {
9855         return test_authenticated_encryption(&gcm_test_case_256_6);
9856 }
9857
9858 static int
9859 test_AES_GCM_auth_encryption_test_case_256_7(void)
9860 {
9861         return test_authenticated_encryption(&gcm_test_case_256_7);
9862 }
9863
9864 static int
9865 test_AES_GCM_auth_encryption_test_case_aad_1(void)
9866 {
9867         return test_authenticated_encryption(&gcm_test_case_aad_1);
9868 }
9869
9870 static int
9871 test_AES_GCM_auth_encryption_test_case_aad_2(void)
9872 {
9873         return test_authenticated_encryption(&gcm_test_case_aad_2);
9874 }
9875
9876 static int
9877 test_AES_GCM_auth_encryption_fail_iv_corrupt(void)
9878 {
9879         struct aead_test_data tdata;
9880         int res;
9881
9882         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9883         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9884         tdata.iv.data[0] += 1;
9885         res = test_authenticated_encryption(&tdata);
9886         if (res == TEST_SKIPPED)
9887                 return res;
9888         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9889         return TEST_SUCCESS;
9890 }
9891
9892 static int
9893 test_AES_GCM_auth_encryption_fail_in_data_corrupt(void)
9894 {
9895         struct aead_test_data tdata;
9896         int res;
9897
9898         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9899         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9900         tdata.plaintext.data[0] += 1;
9901         res = test_authenticated_encryption(&tdata);
9902         if (res == TEST_SKIPPED)
9903                 return res;
9904         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9905         return TEST_SUCCESS;
9906 }
9907
9908 static int
9909 test_AES_GCM_auth_encryption_fail_out_data_corrupt(void)
9910 {
9911         struct aead_test_data tdata;
9912         int res;
9913
9914         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9915         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9916         tdata.ciphertext.data[0] += 1;
9917         res = test_authenticated_encryption(&tdata);
9918         if (res == TEST_SKIPPED)
9919                 return res;
9920         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9921         return TEST_SUCCESS;
9922 }
9923
9924 static int
9925 test_AES_GCM_auth_encryption_fail_aad_len_corrupt(void)
9926 {
9927         struct aead_test_data tdata;
9928         int res;
9929
9930         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9931         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9932         tdata.aad.len += 1;
9933         res = test_authenticated_encryption(&tdata);
9934         if (res == TEST_SKIPPED)
9935                 return res;
9936         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9937         return TEST_SUCCESS;
9938 }
9939
9940 static int
9941 test_AES_GCM_auth_encryption_fail_aad_corrupt(void)
9942 {
9943         struct aead_test_data tdata;
9944         uint8_t aad[gcm_test_case_7.aad.len];
9945         int res;
9946
9947         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9948         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9949         memcpy(aad, gcm_test_case_7.aad.data, gcm_test_case_7.aad.len);
9950         aad[0] += 1;
9951         tdata.aad.data = aad;
9952         res = test_authenticated_encryption(&tdata);
9953         if (res == TEST_SKIPPED)
9954                 return res;
9955         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9956         return TEST_SUCCESS;
9957 }
9958
9959 static int
9960 test_AES_GCM_auth_encryption_fail_tag_corrupt(void)
9961 {
9962         struct aead_test_data tdata;
9963         int res;
9964
9965         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
9966         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
9967         tdata.auth_tag.data[0] += 1;
9968         res = test_authenticated_encryption(&tdata);
9969         if (res == TEST_SKIPPED)
9970                 return res;
9971         TEST_ASSERT_EQUAL(res, TEST_FAILED, "encryption not failed");
9972         return TEST_SUCCESS;
9973 }
9974
9975 static int
9976 test_authenticated_decryption(const struct aead_test_data *tdata)
9977 {
9978         struct crypto_testsuite_params *ts_params = &testsuite_params;
9979         struct crypto_unittest_params *ut_params = &unittest_params;
9980
9981         int retval;
9982         uint8_t *plaintext;
9983         uint32_t i;
9984         struct rte_cryptodev_info dev_info;
9985
9986         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
9987         uint64_t feat_flags = dev_info.feature_flags;
9988
9989         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
9990                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
9991                 printf("Device doesn't support RAW data-path APIs.\n");
9992                 return TEST_SKIPPED;
9993         }
9994
9995         /* Verify the capabilities */
9996         struct rte_cryptodev_sym_capability_idx cap_idx;
9997         const struct rte_cryptodev_symmetric_capability *capability;
9998         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
9999         cap_idx.algo.aead = tdata->algo;
10000         capability = rte_cryptodev_sym_capability_get(
10001                         ts_params->valid_devs[0], &cap_idx);
10002         if (capability == NULL)
10003                 return TEST_SKIPPED;
10004         if (rte_cryptodev_sym_capability_check_aead(
10005                         capability, tdata->key.len, tdata->auth_tag.len,
10006                         tdata->aad.len, tdata->iv.len))
10007                 return TEST_SKIPPED;
10008
10009         /* Create AEAD session */
10010         retval = create_aead_session(ts_params->valid_devs[0],
10011                         tdata->algo,
10012                         RTE_CRYPTO_AEAD_OP_DECRYPT,
10013                         tdata->key.data, tdata->key.len,
10014                         tdata->aad.len, tdata->auth_tag.len,
10015                         tdata->iv.len);
10016         if (retval < 0)
10017                 return retval;
10018
10019         /* alloc mbuf and set payload */
10020         if (tdata->aad.len > MBUF_SIZE) {
10021                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->large_mbuf_pool);
10022                 /* Populate full size of add data */
10023                 for (i = 32; i < MAX_AAD_LENGTH; i += 32)
10024                         memcpy(&tdata->aad.data[i], &tdata->aad.data[0], 32);
10025         } else
10026                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10027
10028         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10029                         rte_pktmbuf_tailroom(ut_params->ibuf));
10030
10031         /* Create AEAD operation */
10032         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_DECRYPT, tdata);
10033         if (retval < 0)
10034                 return retval;
10035
10036         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
10037
10038         ut_params->op->sym->m_src = ut_params->ibuf;
10039
10040         /* Process crypto operation */
10041         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10042                 process_cpu_aead_op(ts_params->valid_devs[0], ut_params->op);
10043         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
10044                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
10045                                 ut_params->op, 0, 0, 0, 0);
10046         else
10047                 TEST_ASSERT_NOT_NULL(
10048                         process_crypto_request(ts_params->valid_devs[0],
10049                         ut_params->op), "failed to process sym crypto op");
10050
10051         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
10052                         "crypto op processing failed");
10053
10054         if (ut_params->op->sym->m_dst)
10055                 plaintext = rte_pktmbuf_mtod(ut_params->op->sym->m_dst,
10056                                 uint8_t *);
10057         else
10058                 plaintext = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_src,
10059                                 uint8_t *,
10060                                 ut_params->op->sym->cipher.data.offset);
10061
10062         debug_hexdump(stdout, "plaintext:", plaintext, tdata->ciphertext.len);
10063
10064         /* Validate obuf */
10065         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10066                         plaintext,
10067                         tdata->plaintext.data,
10068                         tdata->plaintext.len,
10069                         "Plaintext data not as expected");
10070
10071         TEST_ASSERT_EQUAL(ut_params->op->status,
10072                         RTE_CRYPTO_OP_STATUS_SUCCESS,
10073                         "Authentication failed");
10074
10075         return 0;
10076 }
10077
10078 static int
10079 test_AES_GCM_authenticated_decryption_test_case_1(void)
10080 {
10081         return test_authenticated_decryption(&gcm_test_case_1);
10082 }
10083
10084 static int
10085 test_AES_GCM_authenticated_decryption_test_case_2(void)
10086 {
10087         return test_authenticated_decryption(&gcm_test_case_2);
10088 }
10089
10090 static int
10091 test_AES_GCM_authenticated_decryption_test_case_3(void)
10092 {
10093         return test_authenticated_decryption(&gcm_test_case_3);
10094 }
10095
10096 static int
10097 test_AES_GCM_authenticated_decryption_test_case_4(void)
10098 {
10099         return test_authenticated_decryption(&gcm_test_case_4);
10100 }
10101
10102 static int
10103 test_AES_GCM_authenticated_decryption_test_case_5(void)
10104 {
10105         return test_authenticated_decryption(&gcm_test_case_5);
10106 }
10107
10108 static int
10109 test_AES_GCM_authenticated_decryption_test_case_6(void)
10110 {
10111         return test_authenticated_decryption(&gcm_test_case_6);
10112 }
10113
10114 static int
10115 test_AES_GCM_authenticated_decryption_test_case_7(void)
10116 {
10117         return test_authenticated_decryption(&gcm_test_case_7);
10118 }
10119
10120 static int
10121 test_AES_GCM_authenticated_decryption_test_case_8(void)
10122 {
10123         return test_authenticated_decryption(&gcm_test_case_8);
10124 }
10125
10126 static int
10127 test_AES_GCM_J0_authenticated_decryption_test_case_1(void)
10128 {
10129         return test_authenticated_decryption(&gcm_J0_test_case_1);
10130 }
10131
10132 static int
10133 test_AES_GCM_auth_decryption_test_case_192_1(void)
10134 {
10135         return test_authenticated_decryption(&gcm_test_case_192_1);
10136 }
10137
10138 static int
10139 test_AES_GCM_auth_decryption_test_case_192_2(void)
10140 {
10141         return test_authenticated_decryption(&gcm_test_case_192_2);
10142 }
10143
10144 static int
10145 test_AES_GCM_auth_decryption_test_case_192_3(void)
10146 {
10147         return test_authenticated_decryption(&gcm_test_case_192_3);
10148 }
10149
10150 static int
10151 test_AES_GCM_auth_decryption_test_case_192_4(void)
10152 {
10153         return test_authenticated_decryption(&gcm_test_case_192_4);
10154 }
10155
10156 static int
10157 test_AES_GCM_auth_decryption_test_case_192_5(void)
10158 {
10159         return test_authenticated_decryption(&gcm_test_case_192_5);
10160 }
10161
10162 static int
10163 test_AES_GCM_auth_decryption_test_case_192_6(void)
10164 {
10165         return test_authenticated_decryption(&gcm_test_case_192_6);
10166 }
10167
10168 static int
10169 test_AES_GCM_auth_decryption_test_case_192_7(void)
10170 {
10171         return test_authenticated_decryption(&gcm_test_case_192_7);
10172 }
10173
10174 static int
10175 test_AES_GCM_auth_decryption_test_case_256_1(void)
10176 {
10177         return test_authenticated_decryption(&gcm_test_case_256_1);
10178 }
10179
10180 static int
10181 test_AES_GCM_auth_decryption_test_case_256_2(void)
10182 {
10183         return test_authenticated_decryption(&gcm_test_case_256_2);
10184 }
10185
10186 static int
10187 test_AES_GCM_auth_decryption_test_case_256_3(void)
10188 {
10189         return test_authenticated_decryption(&gcm_test_case_256_3);
10190 }
10191
10192 static int
10193 test_AES_GCM_auth_decryption_test_case_256_4(void)
10194 {
10195         return test_authenticated_decryption(&gcm_test_case_256_4);
10196 }
10197
10198 static int
10199 test_AES_GCM_auth_decryption_test_case_256_5(void)
10200 {
10201         return test_authenticated_decryption(&gcm_test_case_256_5);
10202 }
10203
10204 static int
10205 test_AES_GCM_auth_decryption_test_case_256_6(void)
10206 {
10207         return test_authenticated_decryption(&gcm_test_case_256_6);
10208 }
10209
10210 static int
10211 test_AES_GCM_auth_decryption_test_case_256_7(void)
10212 {
10213         return test_authenticated_decryption(&gcm_test_case_256_7);
10214 }
10215
10216 static int
10217 test_AES_GCM_auth_decryption_test_case_aad_1(void)
10218 {
10219         return test_authenticated_decryption(&gcm_test_case_aad_1);
10220 }
10221
10222 static int
10223 test_AES_GCM_auth_decryption_test_case_aad_2(void)
10224 {
10225         return test_authenticated_decryption(&gcm_test_case_aad_2);
10226 }
10227
10228 static int
10229 test_AES_GCM_auth_decryption_fail_iv_corrupt(void)
10230 {
10231         struct aead_test_data tdata;
10232         int res;
10233
10234         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10235         tdata.iv.data[0] += 1;
10236         res = test_authenticated_decryption(&tdata);
10237         if (res == TEST_SKIPPED)
10238                 return res;
10239         TEST_ASSERT_EQUAL(res, TEST_FAILED, "decryption not failed");
10240         return TEST_SUCCESS;
10241 }
10242
10243 static int
10244 test_AES_GCM_auth_decryption_fail_in_data_corrupt(void)
10245 {
10246         struct aead_test_data tdata;
10247         int res;
10248
10249         RTE_LOG(INFO, USER1, "This is a negative test, errors are expected\n");
10250         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10251         tdata.plaintext.data[0] += 1;
10252         res = test_authenticated_decryption(&tdata);
10253         if (res == TEST_SKIPPED)
10254                 return res;
10255         TEST_ASSERT_EQUAL(res, TEST_FAILED, "decryption not failed");
10256         return TEST_SUCCESS;
10257 }
10258
10259 static int
10260 test_AES_GCM_auth_decryption_fail_out_data_corrupt(void)
10261 {
10262         struct aead_test_data tdata;
10263         int res;
10264
10265         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10266         tdata.ciphertext.data[0] += 1;
10267         res = test_authenticated_decryption(&tdata);
10268         if (res == TEST_SKIPPED)
10269                 return res;
10270         TEST_ASSERT_EQUAL(res, TEST_FAILED, "decryption not failed");
10271         return TEST_SUCCESS;
10272 }
10273
10274 static int
10275 test_AES_GCM_auth_decryption_fail_aad_len_corrupt(void)
10276 {
10277         struct aead_test_data tdata;
10278         int res;
10279
10280         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10281         tdata.aad.len += 1;
10282         res = test_authenticated_decryption(&tdata);
10283         if (res == TEST_SKIPPED)
10284                 return res;
10285         TEST_ASSERT_EQUAL(res, TEST_FAILED, "decryption not failed");
10286         return TEST_SUCCESS;
10287 }
10288
10289 static int
10290 test_AES_GCM_auth_decryption_fail_aad_corrupt(void)
10291 {
10292         struct aead_test_data tdata;
10293         uint8_t aad[gcm_test_case_7.aad.len];
10294         int res;
10295
10296         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10297         memcpy(aad, gcm_test_case_7.aad.data, gcm_test_case_7.aad.len);
10298         aad[0] += 1;
10299         tdata.aad.data = aad;
10300         res = test_authenticated_decryption(&tdata);
10301         if (res == TEST_SKIPPED)
10302                 return res;
10303         TEST_ASSERT_EQUAL(res, TEST_FAILED, "decryption not failed");
10304         return TEST_SUCCESS;
10305 }
10306
10307 static int
10308 test_AES_GCM_auth_decryption_fail_tag_corrupt(void)
10309 {
10310         struct aead_test_data tdata;
10311         int res;
10312
10313         memcpy(&tdata, &gcm_test_case_7, sizeof(struct aead_test_data));
10314         tdata.auth_tag.data[0] += 1;
10315         res = test_authenticated_decryption(&tdata);
10316         if (res == TEST_SKIPPED)
10317                 return res;
10318         TEST_ASSERT_EQUAL(res, TEST_FAILED, "authentication not failed");
10319         return TEST_SUCCESS;
10320 }
10321
10322 static int
10323 test_authenticated_encryption_oop(const struct aead_test_data *tdata)
10324 {
10325         struct crypto_testsuite_params *ts_params = &testsuite_params;
10326         struct crypto_unittest_params *ut_params = &unittest_params;
10327
10328         int retval;
10329         uint8_t *ciphertext, *auth_tag;
10330         uint16_t plaintext_pad_len;
10331
10332         /* Verify the capabilities */
10333         struct rte_cryptodev_sym_capability_idx cap_idx;
10334         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
10335         cap_idx.algo.aead = tdata->algo;
10336         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10337                         &cap_idx) == NULL)
10338                 return TEST_SKIPPED;
10339
10340         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
10341                 return TEST_SKIPPED;
10342
10343         /* not supported with CPU crypto */
10344         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10345                 return TEST_SKIPPED;
10346
10347         /* Create AEAD session */
10348         retval = create_aead_session(ts_params->valid_devs[0],
10349                         tdata->algo,
10350                         RTE_CRYPTO_AEAD_OP_ENCRYPT,
10351                         tdata->key.data, tdata->key.len,
10352                         tdata->aad.len, tdata->auth_tag.len,
10353                         tdata->iv.len);
10354         if (retval < 0)
10355                 return retval;
10356
10357         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10358         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10359
10360         /* clear mbuf payload */
10361         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10362                         rte_pktmbuf_tailroom(ut_params->ibuf));
10363         memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
10364                         rte_pktmbuf_tailroom(ut_params->obuf));
10365
10366         /* Create AEAD operation */
10367         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_ENCRYPT, tdata);
10368         if (retval < 0)
10369                 return retval;
10370
10371         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
10372
10373         ut_params->op->sym->m_src = ut_params->ibuf;
10374         ut_params->op->sym->m_dst = ut_params->obuf;
10375
10376         /* Process crypto operation */
10377         TEST_ASSERT_NOT_NULL(process_crypto_request(ts_params->valid_devs[0],
10378                         ut_params->op), "failed to process sym crypto op");
10379
10380         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
10381                         "crypto op processing failed");
10382
10383         plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
10384
10385         ciphertext = rte_pktmbuf_mtod_offset(ut_params->obuf, uint8_t *,
10386                         ut_params->op->sym->cipher.data.offset);
10387         auth_tag = ciphertext + plaintext_pad_len;
10388
10389         debug_hexdump(stdout, "ciphertext:", ciphertext, tdata->ciphertext.len);
10390         debug_hexdump(stdout, "auth tag:", auth_tag, tdata->auth_tag.len);
10391
10392         /* Validate obuf */
10393         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10394                         ciphertext,
10395                         tdata->ciphertext.data,
10396                         tdata->ciphertext.len,
10397                         "Ciphertext data not as expected");
10398
10399         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10400                         auth_tag,
10401                         tdata->auth_tag.data,
10402                         tdata->auth_tag.len,
10403                         "Generated auth tag not as expected");
10404
10405         return 0;
10406
10407 }
10408
10409 static int
10410 test_AES_GCM_authenticated_encryption_oop_test_case_1(void)
10411 {
10412         return test_authenticated_encryption_oop(&gcm_test_case_5);
10413 }
10414
10415 static int
10416 test_authenticated_decryption_oop(const struct aead_test_data *tdata)
10417 {
10418         struct crypto_testsuite_params *ts_params = &testsuite_params;
10419         struct crypto_unittest_params *ut_params = &unittest_params;
10420
10421         int retval;
10422         uint8_t *plaintext;
10423
10424         /* Verify the capabilities */
10425         struct rte_cryptodev_sym_capability_idx cap_idx;
10426         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
10427         cap_idx.algo.aead = tdata->algo;
10428         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10429                         &cap_idx) == NULL)
10430                 return TEST_SKIPPED;
10431
10432         /* not supported with CPU crypto and raw data-path APIs*/
10433         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO ||
10434                         global_api_test_type == CRYPTODEV_RAW_API_TEST)
10435                 return TEST_SKIPPED;
10436
10437         /* Create AEAD session */
10438         retval = create_aead_session(ts_params->valid_devs[0],
10439                         tdata->algo,
10440                         RTE_CRYPTO_AEAD_OP_DECRYPT,
10441                         tdata->key.data, tdata->key.len,
10442                         tdata->aad.len, tdata->auth_tag.len,
10443                         tdata->iv.len);
10444         if (retval < 0)
10445                 return retval;
10446
10447         /* alloc mbuf and set payload */
10448         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10449         ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10450
10451         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10452                         rte_pktmbuf_tailroom(ut_params->ibuf));
10453         memset(rte_pktmbuf_mtod(ut_params->obuf, uint8_t *), 0,
10454                         rte_pktmbuf_tailroom(ut_params->obuf));
10455
10456         /* Create AEAD operation */
10457         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_DECRYPT, tdata);
10458         if (retval < 0)
10459                 return retval;
10460
10461         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
10462
10463         ut_params->op->sym->m_src = ut_params->ibuf;
10464         ut_params->op->sym->m_dst = ut_params->obuf;
10465
10466         /* Process crypto operation */
10467         TEST_ASSERT_NOT_NULL(process_crypto_request(ts_params->valid_devs[0],
10468                         ut_params->op), "failed to process sym crypto op");
10469
10470         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
10471                         "crypto op processing failed");
10472
10473         plaintext = rte_pktmbuf_mtod_offset(ut_params->obuf, uint8_t *,
10474                         ut_params->op->sym->cipher.data.offset);
10475
10476         debug_hexdump(stdout, "plaintext:", plaintext, tdata->ciphertext.len);
10477
10478         /* Validate obuf */
10479         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10480                         plaintext,
10481                         tdata->plaintext.data,
10482                         tdata->plaintext.len,
10483                         "Plaintext data not as expected");
10484
10485         TEST_ASSERT_EQUAL(ut_params->op->status,
10486                         RTE_CRYPTO_OP_STATUS_SUCCESS,
10487                         "Authentication failed");
10488         return 0;
10489 }
10490
10491 static int
10492 test_AES_GCM_authenticated_decryption_oop_test_case_1(void)
10493 {
10494         return test_authenticated_decryption_oop(&gcm_test_case_5);
10495 }
10496
10497 static int
10498 test_authenticated_encryption_sessionless(
10499                 const struct aead_test_data *tdata)
10500 {
10501         struct crypto_testsuite_params *ts_params = &testsuite_params;
10502         struct crypto_unittest_params *ut_params = &unittest_params;
10503
10504         int retval;
10505         uint8_t *ciphertext, *auth_tag;
10506         uint16_t plaintext_pad_len;
10507         uint8_t key[tdata->key.len + 1];
10508         struct rte_cryptodev_info dev_info;
10509
10510         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
10511         uint64_t feat_flags = dev_info.feature_flags;
10512
10513         if (!(feat_flags & RTE_CRYPTODEV_FF_SYM_SESSIONLESS)) {
10514                 printf("Device doesn't support Sessionless ops.\n");
10515                 return TEST_SKIPPED;
10516         }
10517
10518         /* not supported with CPU crypto */
10519         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10520                 return TEST_SKIPPED;
10521
10522         /* Verify the capabilities */
10523         struct rte_cryptodev_sym_capability_idx cap_idx;
10524         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
10525         cap_idx.algo.aead = tdata->algo;
10526         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10527                         &cap_idx) == NULL)
10528                 return TEST_SKIPPED;
10529
10530         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10531
10532         /* clear mbuf payload */
10533         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10534                         rte_pktmbuf_tailroom(ut_params->ibuf));
10535
10536         /* Create AEAD operation */
10537         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_ENCRYPT, tdata);
10538         if (retval < 0)
10539                 return retval;
10540
10541         /* Create GCM xform */
10542         memcpy(key, tdata->key.data, tdata->key.len);
10543         retval = create_aead_xform(ut_params->op,
10544                         tdata->algo,
10545                         RTE_CRYPTO_AEAD_OP_ENCRYPT,
10546                         key, tdata->key.len,
10547                         tdata->aad.len, tdata->auth_tag.len,
10548                         tdata->iv.len);
10549         if (retval < 0)
10550                 return retval;
10551
10552         ut_params->op->sym->m_src = ut_params->ibuf;
10553
10554         TEST_ASSERT_EQUAL(ut_params->op->sess_type,
10555                         RTE_CRYPTO_OP_SESSIONLESS,
10556                         "crypto op session type not sessionless");
10557
10558         /* Process crypto operation */
10559         TEST_ASSERT_NOT_NULL(process_crypto_request(ts_params->valid_devs[0],
10560                         ut_params->op), "failed to process sym crypto op");
10561
10562         TEST_ASSERT_NOT_NULL(ut_params->op, "failed crypto process");
10563
10564         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
10565                         "crypto op status not success");
10566
10567         plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
10568
10569         ciphertext = rte_pktmbuf_mtod_offset(ut_params->ibuf, uint8_t *,
10570                         ut_params->op->sym->cipher.data.offset);
10571         auth_tag = ciphertext + plaintext_pad_len;
10572
10573         debug_hexdump(stdout, "ciphertext:", ciphertext, tdata->ciphertext.len);
10574         debug_hexdump(stdout, "auth tag:", auth_tag, tdata->auth_tag.len);
10575
10576         /* Validate obuf */
10577         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10578                         ciphertext,
10579                         tdata->ciphertext.data,
10580                         tdata->ciphertext.len,
10581                         "Ciphertext data not as expected");
10582
10583         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10584                         auth_tag,
10585                         tdata->auth_tag.data,
10586                         tdata->auth_tag.len,
10587                         "Generated auth tag not as expected");
10588
10589         return 0;
10590
10591 }
10592
10593 static int
10594 test_AES_GCM_authenticated_encryption_sessionless_test_case_1(void)
10595 {
10596         return test_authenticated_encryption_sessionless(
10597                         &gcm_test_case_5);
10598 }
10599
10600 static int
10601 test_authenticated_decryption_sessionless(
10602                 const struct aead_test_data *tdata)
10603 {
10604         struct crypto_testsuite_params *ts_params = &testsuite_params;
10605         struct crypto_unittest_params *ut_params = &unittest_params;
10606
10607         int retval;
10608         uint8_t *plaintext;
10609         uint8_t key[tdata->key.len + 1];
10610         struct rte_cryptodev_info dev_info;
10611
10612         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
10613         uint64_t feat_flags = dev_info.feature_flags;
10614
10615         if (!(feat_flags & RTE_CRYPTODEV_FF_SYM_SESSIONLESS)) {
10616                 printf("Device doesn't support Sessionless ops.\n");
10617                 return TEST_SKIPPED;
10618         }
10619
10620         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
10621                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
10622                 printf("Device doesn't support RAW data-path APIs.\n");
10623                 return TEST_SKIPPED;
10624         }
10625
10626         /* not supported with CPU crypto */
10627         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10628                 return TEST_SKIPPED;
10629
10630         /* Verify the capabilities */
10631         struct rte_cryptodev_sym_capability_idx cap_idx;
10632         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
10633         cap_idx.algo.aead = tdata->algo;
10634         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10635                         &cap_idx) == NULL)
10636                 return TEST_SKIPPED;
10637
10638         /* alloc mbuf and set payload */
10639         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10640
10641         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10642                         rte_pktmbuf_tailroom(ut_params->ibuf));
10643
10644         /* Create AEAD operation */
10645         retval = create_aead_operation(RTE_CRYPTO_AEAD_OP_DECRYPT, tdata);
10646         if (retval < 0)
10647                 return retval;
10648
10649         /* Create AEAD xform */
10650         memcpy(key, tdata->key.data, tdata->key.len);
10651         retval = create_aead_xform(ut_params->op,
10652                         tdata->algo,
10653                         RTE_CRYPTO_AEAD_OP_DECRYPT,
10654                         key, tdata->key.len,
10655                         tdata->aad.len, tdata->auth_tag.len,
10656                         tdata->iv.len);
10657         if (retval < 0)
10658                 return retval;
10659
10660         ut_params->op->sym->m_src = ut_params->ibuf;
10661
10662         TEST_ASSERT_EQUAL(ut_params->op->sess_type,
10663                         RTE_CRYPTO_OP_SESSIONLESS,
10664                         "crypto op session type not sessionless");
10665
10666         /* Process crypto operation */
10667         if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
10668                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
10669                                 ut_params->op, 0, 0, 0, 0);
10670         else
10671                 TEST_ASSERT_NOT_NULL(process_crypto_request(
10672                         ts_params->valid_devs[0], ut_params->op),
10673                                 "failed to process sym crypto op");
10674
10675         TEST_ASSERT_NOT_NULL(ut_params->op, "failed crypto process");
10676
10677         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
10678                         "crypto op status not success");
10679
10680         plaintext = rte_pktmbuf_mtod_offset(ut_params->ibuf, uint8_t *,
10681                         ut_params->op->sym->cipher.data.offset);
10682
10683         debug_hexdump(stdout, "plaintext:", plaintext, tdata->ciphertext.len);
10684
10685         /* Validate obuf */
10686         TEST_ASSERT_BUFFERS_ARE_EQUAL(
10687                         plaintext,
10688                         tdata->plaintext.data,
10689                         tdata->plaintext.len,
10690                         "Plaintext data not as expected");
10691
10692         TEST_ASSERT_EQUAL(ut_params->op->status,
10693                         RTE_CRYPTO_OP_STATUS_SUCCESS,
10694                         "Authentication failed");
10695         return 0;
10696 }
10697
10698 static int
10699 test_AES_GCM_authenticated_decryption_sessionless_test_case_1(void)
10700 {
10701         return test_authenticated_decryption_sessionless(
10702                         &gcm_test_case_5);
10703 }
10704
10705 static int
10706 test_AES_CCM_authenticated_encryption_test_case_128_1(void)
10707 {
10708         return test_authenticated_encryption(&ccm_test_case_128_1);
10709 }
10710
10711 static int
10712 test_AES_CCM_authenticated_encryption_test_case_128_2(void)
10713 {
10714         return test_authenticated_encryption(&ccm_test_case_128_2);
10715 }
10716
10717 static int
10718 test_AES_CCM_authenticated_encryption_test_case_128_3(void)
10719 {
10720         return test_authenticated_encryption(&ccm_test_case_128_3);
10721 }
10722
10723 static int
10724 test_AES_CCM_authenticated_decryption_test_case_128_1(void)
10725 {
10726         return test_authenticated_decryption(&ccm_test_case_128_1);
10727 }
10728
10729 static int
10730 test_AES_CCM_authenticated_decryption_test_case_128_2(void)
10731 {
10732         return test_authenticated_decryption(&ccm_test_case_128_2);
10733 }
10734
10735 static int
10736 test_AES_CCM_authenticated_decryption_test_case_128_3(void)
10737 {
10738         return test_authenticated_decryption(&ccm_test_case_128_3);
10739 }
10740
10741 static int
10742 test_AES_CCM_authenticated_encryption_test_case_192_1(void)
10743 {
10744         return test_authenticated_encryption(&ccm_test_case_192_1);
10745 }
10746
10747 static int
10748 test_AES_CCM_authenticated_encryption_test_case_192_2(void)
10749 {
10750         return test_authenticated_encryption(&ccm_test_case_192_2);
10751 }
10752
10753 static int
10754 test_AES_CCM_authenticated_encryption_test_case_192_3(void)
10755 {
10756         return test_authenticated_encryption(&ccm_test_case_192_3);
10757 }
10758
10759 static int
10760 test_AES_CCM_authenticated_decryption_test_case_192_1(void)
10761 {
10762         return test_authenticated_decryption(&ccm_test_case_192_1);
10763 }
10764
10765 static int
10766 test_AES_CCM_authenticated_decryption_test_case_192_2(void)
10767 {
10768         return test_authenticated_decryption(&ccm_test_case_192_2);
10769 }
10770
10771 static int
10772 test_AES_CCM_authenticated_decryption_test_case_192_3(void)
10773 {
10774         return test_authenticated_decryption(&ccm_test_case_192_3);
10775 }
10776
10777 static int
10778 test_AES_CCM_authenticated_encryption_test_case_256_1(void)
10779 {
10780         return test_authenticated_encryption(&ccm_test_case_256_1);
10781 }
10782
10783 static int
10784 test_AES_CCM_authenticated_encryption_test_case_256_2(void)
10785 {
10786         return test_authenticated_encryption(&ccm_test_case_256_2);
10787 }
10788
10789 static int
10790 test_AES_CCM_authenticated_encryption_test_case_256_3(void)
10791 {
10792         return test_authenticated_encryption(&ccm_test_case_256_3);
10793 }
10794
10795 static int
10796 test_AES_CCM_authenticated_decryption_test_case_256_1(void)
10797 {
10798         return test_authenticated_decryption(&ccm_test_case_256_1);
10799 }
10800
10801 static int
10802 test_AES_CCM_authenticated_decryption_test_case_256_2(void)
10803 {
10804         return test_authenticated_decryption(&ccm_test_case_256_2);
10805 }
10806
10807 static int
10808 test_AES_CCM_authenticated_decryption_test_case_256_3(void)
10809 {
10810         return test_authenticated_decryption(&ccm_test_case_256_3);
10811 }
10812
10813 static int
10814 test_stats(void)
10815 {
10816         struct crypto_testsuite_params *ts_params = &testsuite_params;
10817         struct rte_cryptodev_stats stats;
10818
10819         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10820                 return TEST_SKIPPED;
10821
10822         /* Verify the capabilities */
10823         struct rte_cryptodev_sym_capability_idx cap_idx;
10824         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
10825         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SHA1_HMAC;
10826         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10827                         &cap_idx) == NULL)
10828                 return TEST_SKIPPED;
10829         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
10830         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_AES_CBC;
10831         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10832                         &cap_idx) == NULL)
10833                 return TEST_SKIPPED;
10834
10835         if (rte_cryptodev_stats_get(ts_params->valid_devs[0], &stats)
10836                         == -ENOTSUP)
10837                 return TEST_SKIPPED;
10838
10839         rte_cryptodev_stats_reset(ts_params->valid_devs[0]);
10840         TEST_ASSERT((rte_cryptodev_stats_get(ts_params->valid_devs[0] + 600,
10841                         &stats) == -ENODEV),
10842                 "rte_cryptodev_stats_get invalid dev failed");
10843         TEST_ASSERT((rte_cryptodev_stats_get(ts_params->valid_devs[0], 0) != 0),
10844                 "rte_cryptodev_stats_get invalid Param failed");
10845
10846         /* Test expected values */
10847         test_AES_CBC_HMAC_SHA1_encrypt_digest();
10848         TEST_ASSERT_SUCCESS(rte_cryptodev_stats_get(ts_params->valid_devs[0],
10849                         &stats),
10850                 "rte_cryptodev_stats_get failed");
10851         TEST_ASSERT((stats.enqueued_count == 1),
10852                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10853         TEST_ASSERT((stats.dequeued_count == 1),
10854                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10855         TEST_ASSERT((stats.enqueue_err_count == 0),
10856                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10857         TEST_ASSERT((stats.dequeue_err_count == 0),
10858                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10859
10860         /* invalid device but should ignore and not reset device stats*/
10861         rte_cryptodev_stats_reset(ts_params->valid_devs[0] + 300);
10862         TEST_ASSERT_SUCCESS(rte_cryptodev_stats_get(ts_params->valid_devs[0],
10863                         &stats),
10864                 "rte_cryptodev_stats_get failed");
10865         TEST_ASSERT((stats.enqueued_count == 1),
10866                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10867
10868         /* check that a valid reset clears stats */
10869         rte_cryptodev_stats_reset(ts_params->valid_devs[0]);
10870         TEST_ASSERT_SUCCESS(rte_cryptodev_stats_get(ts_params->valid_devs[0],
10871                         &stats),
10872                                           "rte_cryptodev_stats_get failed");
10873         TEST_ASSERT((stats.enqueued_count == 0),
10874                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10875         TEST_ASSERT((stats.dequeued_count == 0),
10876                 "rte_cryptodev_stats_get returned unexpected enqueued stat");
10877
10878         return TEST_SUCCESS;
10879 }
10880
10881 static int MD5_HMAC_create_session(struct crypto_testsuite_params *ts_params,
10882                                    struct crypto_unittest_params *ut_params,
10883                                    enum rte_crypto_auth_operation op,
10884                                    const struct HMAC_MD5_vector *test_case)
10885 {
10886         uint8_t key[64];
10887
10888         memcpy(key, test_case->key.data, test_case->key.len);
10889
10890         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
10891         ut_params->auth_xform.next = NULL;
10892         ut_params->auth_xform.auth.op = op;
10893
10894         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_MD5_HMAC;
10895
10896         ut_params->auth_xform.auth.digest_length = MD5_DIGEST_LEN;
10897         ut_params->auth_xform.auth.key.length = test_case->key.len;
10898         ut_params->auth_xform.auth.key.data = key;
10899
10900         ut_params->sess = rte_cryptodev_sym_session_create(
10901                         ts_params->session_mpool);
10902
10903         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
10904                         ut_params->sess, &ut_params->auth_xform,
10905                         ts_params->session_priv_mpool);
10906
10907         if (ut_params->sess == NULL)
10908                 return TEST_FAILED;
10909
10910         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
10911
10912         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
10913                         rte_pktmbuf_tailroom(ut_params->ibuf));
10914
10915         return 0;
10916 }
10917
10918 static int MD5_HMAC_create_op(struct crypto_unittest_params *ut_params,
10919                               const struct HMAC_MD5_vector *test_case,
10920                               uint8_t **plaintext)
10921 {
10922         uint16_t plaintext_pad_len;
10923
10924         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
10925
10926         plaintext_pad_len = RTE_ALIGN_CEIL(test_case->plaintext.len,
10927                                 16);
10928
10929         *plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
10930                         plaintext_pad_len);
10931         memcpy(*plaintext, test_case->plaintext.data,
10932                         test_case->plaintext.len);
10933
10934         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
10935                         ut_params->ibuf, MD5_DIGEST_LEN);
10936         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
10937                         "no room to append digest");
10938         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
10939                         ut_params->ibuf, plaintext_pad_len);
10940
10941         if (ut_params->auth_xform.auth.op == RTE_CRYPTO_AUTH_OP_VERIFY) {
10942                 rte_memcpy(sym_op->auth.digest.data, test_case->auth_tag.data,
10943                            test_case->auth_tag.len);
10944         }
10945
10946         sym_op->auth.data.offset = 0;
10947         sym_op->auth.data.length = test_case->plaintext.len;
10948
10949         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
10950         ut_params->op->sym->m_src = ut_params->ibuf;
10951
10952         return 0;
10953 }
10954
10955 static int
10956 test_MD5_HMAC_generate(const struct HMAC_MD5_vector *test_case)
10957 {
10958         uint16_t plaintext_pad_len;
10959         uint8_t *plaintext, *auth_tag;
10960
10961         struct crypto_testsuite_params *ts_params = &testsuite_params;
10962         struct crypto_unittest_params *ut_params = &unittest_params;
10963         struct rte_cryptodev_info dev_info;
10964
10965         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
10966         uint64_t feat_flags = dev_info.feature_flags;
10967
10968         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
10969                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
10970                 printf("Device doesn't support RAW data-path APIs.\n");
10971                 return TEST_SKIPPED;
10972         }
10973
10974         /* Verify the capabilities */
10975         struct rte_cryptodev_sym_capability_idx cap_idx;
10976         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
10977         cap_idx.algo.auth = RTE_CRYPTO_AUTH_MD5_HMAC;
10978         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
10979                         &cap_idx) == NULL)
10980                 return TEST_SKIPPED;
10981
10982         if (MD5_HMAC_create_session(ts_params, ut_params,
10983                         RTE_CRYPTO_AUTH_OP_GENERATE, test_case))
10984                 return TEST_FAILED;
10985
10986         /* Generate Crypto op data structure */
10987         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
10988                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
10989         TEST_ASSERT_NOT_NULL(ut_params->op,
10990                         "Failed to allocate symmetric crypto operation struct");
10991
10992         plaintext_pad_len = RTE_ALIGN_CEIL(test_case->plaintext.len,
10993                                 16);
10994
10995         if (MD5_HMAC_create_op(ut_params, test_case, &plaintext))
10996                 return TEST_FAILED;
10997
10998         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
10999                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
11000                         ut_params->op);
11001         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
11002                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
11003                                 ut_params->op, 0, 1, 0, 0);
11004         else
11005                 TEST_ASSERT_NOT_NULL(
11006                         process_crypto_request(ts_params->valid_devs[0],
11007                                 ut_params->op),
11008                                 "failed to process sym crypto op");
11009
11010         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
11011                         "crypto op processing failed");
11012
11013         if (ut_params->op->sym->m_dst) {
11014                 auth_tag = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_dst,
11015                                 uint8_t *, plaintext_pad_len);
11016         } else {
11017                 auth_tag = plaintext + plaintext_pad_len;
11018         }
11019
11020         TEST_ASSERT_BUFFERS_ARE_EQUAL(
11021                         auth_tag,
11022                         test_case->auth_tag.data,
11023                         test_case->auth_tag.len,
11024                         "HMAC_MD5 generated tag not as expected");
11025
11026         return TEST_SUCCESS;
11027 }
11028
11029 static int
11030 test_MD5_HMAC_verify(const struct HMAC_MD5_vector *test_case)
11031 {
11032         uint8_t *plaintext;
11033
11034         struct crypto_testsuite_params *ts_params = &testsuite_params;
11035         struct crypto_unittest_params *ut_params = &unittest_params;
11036         struct rte_cryptodev_info dev_info;
11037
11038         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11039         uint64_t feat_flags = dev_info.feature_flags;
11040
11041         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
11042                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
11043                 printf("Device doesn't support RAW data-path APIs.\n");
11044                 return TEST_SKIPPED;
11045         }
11046
11047         /* Verify the capabilities */
11048         struct rte_cryptodev_sym_capability_idx cap_idx;
11049         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11050         cap_idx.algo.auth = RTE_CRYPTO_AUTH_MD5_HMAC;
11051         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11052                         &cap_idx) == NULL)
11053                 return TEST_SKIPPED;
11054
11055         if (MD5_HMAC_create_session(ts_params, ut_params,
11056                         RTE_CRYPTO_AUTH_OP_VERIFY, test_case)) {
11057                 return TEST_FAILED;
11058         }
11059
11060         /* Generate Crypto op data structure */
11061         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
11062                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
11063         TEST_ASSERT_NOT_NULL(ut_params->op,
11064                         "Failed to allocate symmetric crypto operation struct");
11065
11066         if (MD5_HMAC_create_op(ut_params, test_case, &plaintext))
11067                 return TEST_FAILED;
11068
11069         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
11070                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
11071                         ut_params->op);
11072         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
11073                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
11074                                 ut_params->op, 0, 1, 0, 0);
11075         else
11076                 TEST_ASSERT_NOT_NULL(
11077                         process_crypto_request(ts_params->valid_devs[0],
11078                                 ut_params->op),
11079                                 "failed to process sym crypto op");
11080
11081         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
11082                         "HMAC_MD5 crypto op processing failed");
11083
11084         return TEST_SUCCESS;
11085 }
11086
11087 static int
11088 test_MD5_HMAC_generate_case_1(void)
11089 {
11090         return test_MD5_HMAC_generate(&HMAC_MD5_test_case_1);
11091 }
11092
11093 static int
11094 test_MD5_HMAC_verify_case_1(void)
11095 {
11096         return test_MD5_HMAC_verify(&HMAC_MD5_test_case_1);
11097 }
11098
11099 static int
11100 test_MD5_HMAC_generate_case_2(void)
11101 {
11102         return test_MD5_HMAC_generate(&HMAC_MD5_test_case_2);
11103 }
11104
11105 static int
11106 test_MD5_HMAC_verify_case_2(void)
11107 {
11108         return test_MD5_HMAC_verify(&HMAC_MD5_test_case_2);
11109 }
11110
11111 static int
11112 test_multi_session(void)
11113 {
11114         struct crypto_testsuite_params *ts_params = &testsuite_params;
11115         struct crypto_unittest_params *ut_params = &unittest_params;
11116
11117         struct rte_cryptodev_info dev_info;
11118         struct rte_cryptodev_sym_session **sessions;
11119
11120         uint16_t i;
11121
11122         /* Verify the capabilities */
11123         struct rte_cryptodev_sym_capability_idx cap_idx;
11124         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11125         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SHA512_HMAC;
11126         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11127                         &cap_idx) == NULL)
11128                 return TEST_SKIPPED;
11129         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
11130         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_AES_CBC;
11131         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11132                         &cap_idx) == NULL)
11133                 return TEST_SKIPPED;
11134
11135         test_AES_CBC_HMAC_SHA512_decrypt_create_session_params(ut_params,
11136                         aes_cbc_key, hmac_sha512_key);
11137
11138
11139         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11140
11141         sessions = rte_malloc(NULL,
11142                         sizeof(struct rte_cryptodev_sym_session *) *
11143                         (MAX_NB_SESSIONS + 1), 0);
11144
11145         /* Create multiple crypto sessions*/
11146         for (i = 0; i < MAX_NB_SESSIONS; i++) {
11147
11148                 sessions[i] = rte_cryptodev_sym_session_create(
11149                                 ts_params->session_mpool);
11150
11151                 rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
11152                                 sessions[i], &ut_params->auth_xform,
11153                                 ts_params->session_priv_mpool);
11154                 TEST_ASSERT_NOT_NULL(sessions[i],
11155                                 "Session creation failed at session number %u",
11156                                 i);
11157
11158                 /* Attempt to send a request on each session */
11159                 TEST_ASSERT_SUCCESS( test_AES_CBC_HMAC_SHA512_decrypt_perform(
11160                         sessions[i],
11161                         ut_params,
11162                         ts_params,
11163                         catch_22_quote_2_512_bytes_AES_CBC_ciphertext,
11164                         catch_22_quote_2_512_bytes_AES_CBC_HMAC_SHA512_digest,
11165                         aes_cbc_iv),
11166                         "Failed to perform decrypt on request number %u.", i);
11167                 /* free crypto operation structure */
11168                 if (ut_params->op)
11169                         rte_crypto_op_free(ut_params->op);
11170
11171                 /*
11172                  * free mbuf - both obuf and ibuf are usually the same,
11173                  * so check if they point at the same address is necessary,
11174                  * to avoid freeing the mbuf twice.
11175                  */
11176                 if (ut_params->obuf) {
11177                         rte_pktmbuf_free(ut_params->obuf);
11178                         if (ut_params->ibuf == ut_params->obuf)
11179                                 ut_params->ibuf = 0;
11180                         ut_params->obuf = 0;
11181                 }
11182                 if (ut_params->ibuf) {
11183                         rte_pktmbuf_free(ut_params->ibuf);
11184                         ut_params->ibuf = 0;
11185                 }
11186         }
11187
11188         sessions[i] = NULL;
11189         /* Next session create should fail */
11190         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
11191                         sessions[i], &ut_params->auth_xform,
11192                         ts_params->session_priv_mpool);
11193         TEST_ASSERT_NULL(sessions[i],
11194                         "Session creation succeeded unexpectedly!");
11195
11196         for (i = 0; i < MAX_NB_SESSIONS; i++) {
11197                 rte_cryptodev_sym_session_clear(ts_params->valid_devs[0],
11198                                 sessions[i]);
11199                 rte_cryptodev_sym_session_free(sessions[i]);
11200         }
11201
11202         rte_free(sessions);
11203
11204         return TEST_SUCCESS;
11205 }
11206
11207 struct multi_session_params {
11208         struct crypto_unittest_params ut_params;
11209         uint8_t *cipher_key;
11210         uint8_t *hmac_key;
11211         const uint8_t *cipher;
11212         const uint8_t *digest;
11213         uint8_t *iv;
11214 };
11215
11216 #define MB_SESSION_NUMBER 3
11217
11218 static int
11219 test_multi_session_random_usage(void)
11220 {
11221         struct crypto_testsuite_params *ts_params = &testsuite_params;
11222         struct rte_cryptodev_info dev_info;
11223         struct rte_cryptodev_sym_session **sessions;
11224         uint32_t i, j;
11225         struct multi_session_params ut_paramz[] = {
11226
11227                 {
11228                         .cipher_key = ms_aes_cbc_key0,
11229                         .hmac_key = ms_hmac_key0,
11230                         .cipher = ms_aes_cbc_cipher0,
11231                         .digest = ms_hmac_digest0,
11232                         .iv = ms_aes_cbc_iv0
11233                 },
11234                 {
11235                         .cipher_key = ms_aes_cbc_key1,
11236                         .hmac_key = ms_hmac_key1,
11237                         .cipher = ms_aes_cbc_cipher1,
11238                         .digest = ms_hmac_digest1,
11239                         .iv = ms_aes_cbc_iv1
11240                 },
11241                 {
11242                         .cipher_key = ms_aes_cbc_key2,
11243                         .hmac_key = ms_hmac_key2,
11244                         .cipher = ms_aes_cbc_cipher2,
11245                         .digest = ms_hmac_digest2,
11246                         .iv = ms_aes_cbc_iv2
11247                 },
11248
11249         };
11250
11251         /* Verify the capabilities */
11252         struct rte_cryptodev_sym_capability_idx cap_idx;
11253         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11254         cap_idx.algo.auth = RTE_CRYPTO_AUTH_SHA512_HMAC;
11255         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11256                         &cap_idx) == NULL)
11257                 return TEST_SKIPPED;
11258         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
11259         cap_idx.algo.cipher = RTE_CRYPTO_CIPHER_AES_CBC;
11260         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11261                         &cap_idx) == NULL)
11262                 return TEST_SKIPPED;
11263
11264         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11265
11266         sessions = rte_malloc(NULL,
11267                         (sizeof(struct rte_cryptodev_sym_session *)
11268                                         * MAX_NB_SESSIONS) + 1, 0);
11269
11270         for (i = 0; i < MB_SESSION_NUMBER; i++) {
11271                 sessions[i] = rte_cryptodev_sym_session_create(
11272                                 ts_params->session_mpool);
11273
11274                 rte_memcpy(&ut_paramz[i].ut_params, &unittest_params,
11275                                 sizeof(struct crypto_unittest_params));
11276
11277                 test_AES_CBC_HMAC_SHA512_decrypt_create_session_params(
11278                                 &ut_paramz[i].ut_params,
11279                                 ut_paramz[i].cipher_key, ut_paramz[i].hmac_key);
11280
11281                 /* Create multiple crypto sessions*/
11282                 rte_cryptodev_sym_session_init(
11283                                 ts_params->valid_devs[0],
11284                                 sessions[i],
11285                                 &ut_paramz[i].ut_params.auth_xform,
11286                                 ts_params->session_priv_mpool);
11287
11288                 TEST_ASSERT_NOT_NULL(sessions[i],
11289                                 "Session creation failed at session number %u",
11290                                 i);
11291
11292         }
11293
11294         srand(time(NULL));
11295         for (i = 0; i < 40000; i++) {
11296
11297                 j = rand() % MB_SESSION_NUMBER;
11298
11299                 TEST_ASSERT_SUCCESS(
11300                         test_AES_CBC_HMAC_SHA512_decrypt_perform(
11301                                         sessions[j],
11302                                         &ut_paramz[j].ut_params,
11303                                         ts_params, ut_paramz[j].cipher,
11304                                         ut_paramz[j].digest,
11305                                         ut_paramz[j].iv),
11306                         "Failed to perform decrypt on request number %u.", i);
11307
11308                 if (ut_paramz[j].ut_params.op)
11309                         rte_crypto_op_free(ut_paramz[j].ut_params.op);
11310
11311                 /*
11312                  * free mbuf - both obuf and ibuf are usually the same,
11313                  * so check if they point at the same address is necessary,
11314                  * to avoid freeing the mbuf twice.
11315                  */
11316                 if (ut_paramz[j].ut_params.obuf) {
11317                         rte_pktmbuf_free(ut_paramz[j].ut_params.obuf);
11318                         if (ut_paramz[j].ut_params.ibuf
11319                                         == ut_paramz[j].ut_params.obuf)
11320                                 ut_paramz[j].ut_params.ibuf = 0;
11321                         ut_paramz[j].ut_params.obuf = 0;
11322                 }
11323                 if (ut_paramz[j].ut_params.ibuf) {
11324                         rte_pktmbuf_free(ut_paramz[j].ut_params.ibuf);
11325                         ut_paramz[j].ut_params.ibuf = 0;
11326                 }
11327         }
11328
11329         for (i = 0; i < MB_SESSION_NUMBER; i++) {
11330                 rte_cryptodev_sym_session_clear(ts_params->valid_devs[0],
11331                                 sessions[i]);
11332                 rte_cryptodev_sym_session_free(sessions[i]);
11333         }
11334
11335         rte_free(sessions);
11336
11337         return TEST_SUCCESS;
11338 }
11339
11340 uint8_t orig_data[] = {0xab, 0xab, 0xab, 0xab,
11341                         0xab, 0xab, 0xab, 0xab,
11342                         0xab, 0xab, 0xab, 0xab,
11343                         0xab, 0xab, 0xab, 0xab};
11344
11345 static int
11346 test_null_invalid_operation(void)
11347 {
11348         struct crypto_testsuite_params *ts_params = &testsuite_params;
11349         struct crypto_unittest_params *ut_params = &unittest_params;
11350         int ret;
11351
11352         /* This test is for NULL PMD only */
11353         if (gbl_driver_id != rte_cryptodev_driver_id_get(
11354                         RTE_STR(CRYPTODEV_NAME_NULL_PMD)))
11355                 return TEST_SKIPPED;
11356
11357         /* Setup Cipher Parameters */
11358         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
11359         ut_params->cipher_xform.next = NULL;
11360
11361         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_CBC;
11362         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
11363
11364         ut_params->sess = rte_cryptodev_sym_session_create(
11365                         ts_params->session_mpool);
11366
11367         /* Create Crypto session*/
11368         ret = rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
11369                         ut_params->sess, &ut_params->cipher_xform,
11370                         ts_params->session_priv_mpool);
11371         TEST_ASSERT(ret < 0,
11372                         "Session creation succeeded unexpectedly");
11373
11374
11375         /* Setup HMAC Parameters */
11376         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11377         ut_params->auth_xform.next = NULL;
11378
11379         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_SHA1_HMAC;
11380         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE;
11381
11382         ut_params->sess = rte_cryptodev_sym_session_create(
11383                         ts_params->session_mpool);
11384
11385         /* Create Crypto session*/
11386         ret = rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
11387                         ut_params->sess, &ut_params->auth_xform,
11388                         ts_params->session_priv_mpool);
11389         TEST_ASSERT(ret < 0,
11390                         "Session creation succeeded unexpectedly");
11391
11392         return TEST_SUCCESS;
11393 }
11394
11395
11396 #define NULL_BURST_LENGTH (32)
11397
11398 static int
11399 test_null_burst_operation(void)
11400 {
11401         struct crypto_testsuite_params *ts_params = &testsuite_params;
11402         struct crypto_unittest_params *ut_params = &unittest_params;
11403
11404         unsigned i, burst_len = NULL_BURST_LENGTH;
11405
11406         struct rte_crypto_op *burst[NULL_BURST_LENGTH] = { NULL };
11407         struct rte_crypto_op *burst_dequeued[NULL_BURST_LENGTH] = { NULL };
11408
11409         /* This test is for NULL PMD only */
11410         if (gbl_driver_id != rte_cryptodev_driver_id_get(
11411                         RTE_STR(CRYPTODEV_NAME_NULL_PMD)))
11412                 return TEST_SKIPPED;
11413
11414         /* Setup Cipher Parameters */
11415         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
11416         ut_params->cipher_xform.next = &ut_params->auth_xform;
11417
11418         ut_params->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_NULL;
11419         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
11420
11421         /* Setup HMAC Parameters */
11422         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11423         ut_params->auth_xform.next = NULL;
11424
11425         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_NULL;
11426         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE;
11427
11428         ut_params->sess = rte_cryptodev_sym_session_create(
11429                         ts_params->session_mpool);
11430
11431         /* Create Crypto session*/
11432         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
11433                         ut_params->sess, &ut_params->cipher_xform,
11434                         ts_params->session_priv_mpool);
11435         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
11436
11437         TEST_ASSERT_EQUAL(rte_crypto_op_bulk_alloc(ts_params->op_mpool,
11438                         RTE_CRYPTO_OP_TYPE_SYMMETRIC, burst, burst_len),
11439                         burst_len, "failed to generate burst of crypto ops");
11440
11441         /* Generate an operation for each mbuf in burst */
11442         for (i = 0; i < burst_len; i++) {
11443                 struct rte_mbuf *m = rte_pktmbuf_alloc(ts_params->mbuf_pool);
11444
11445                 TEST_ASSERT_NOT_NULL(m, "Failed to allocate mbuf");
11446
11447                 unsigned *data = (unsigned *)rte_pktmbuf_append(m,
11448                                 sizeof(unsigned));
11449                 *data = i;
11450
11451                 rte_crypto_op_attach_sym_session(burst[i], ut_params->sess);
11452
11453                 burst[i]->sym->m_src = m;
11454         }
11455
11456         /* Process crypto operation */
11457         TEST_ASSERT_EQUAL(rte_cryptodev_enqueue_burst(ts_params->valid_devs[0],
11458                         0, burst, burst_len),
11459                         burst_len,
11460                         "Error enqueuing burst");
11461
11462         TEST_ASSERT_EQUAL(rte_cryptodev_dequeue_burst(ts_params->valid_devs[0],
11463                         0, burst_dequeued, burst_len),
11464                         burst_len,
11465                         "Error dequeuing burst");
11466
11467
11468         for (i = 0; i < burst_len; i++) {
11469                 TEST_ASSERT_EQUAL(
11470                         *rte_pktmbuf_mtod(burst[i]->sym->m_src, uint32_t *),
11471                         *rte_pktmbuf_mtod(burst_dequeued[i]->sym->m_src,
11472                                         uint32_t *),
11473                         "data not as expected");
11474
11475                 rte_pktmbuf_free(burst[i]->sym->m_src);
11476                 rte_crypto_op_free(burst[i]);
11477         }
11478
11479         return TEST_SUCCESS;
11480 }
11481
11482 static uint16_t
11483 test_enq_callback(uint16_t dev_id, uint16_t qp_id, struct rte_crypto_op **ops,
11484                   uint16_t nb_ops, void *user_param)
11485 {
11486         RTE_SET_USED(dev_id);
11487         RTE_SET_USED(qp_id);
11488         RTE_SET_USED(ops);
11489         RTE_SET_USED(user_param);
11490
11491         printf("crypto enqueue callback called\n");
11492         return nb_ops;
11493 }
11494
11495 static uint16_t
11496 test_deq_callback(uint16_t dev_id, uint16_t qp_id, struct rte_crypto_op **ops,
11497                   uint16_t nb_ops, void *user_param)
11498 {
11499         RTE_SET_USED(dev_id);
11500         RTE_SET_USED(qp_id);
11501         RTE_SET_USED(ops);
11502         RTE_SET_USED(user_param);
11503
11504         printf("crypto dequeue callback called\n");
11505         return nb_ops;
11506 }
11507
11508 /*
11509  * Thread using enqueue/dequeue callback with RCU.
11510  */
11511 static int
11512 test_enqdeq_callback_thread(void *arg)
11513 {
11514         RTE_SET_USED(arg);
11515         /* DP thread calls rte_cryptodev_enqueue_burst()/
11516          * rte_cryptodev_dequeue_burst() and invokes callback.
11517          */
11518         test_null_burst_operation();
11519         return 0;
11520 }
11521
11522 static int
11523 test_enq_callback_setup(void)
11524 {
11525         struct crypto_testsuite_params *ts_params = &testsuite_params;
11526         struct rte_cryptodev_info dev_info;
11527         struct rte_cryptodev_qp_conf qp_conf = {
11528                 .nb_descriptors = MAX_NUM_OPS_INFLIGHT
11529         };
11530
11531         struct rte_cryptodev_cb *cb;
11532         uint16_t qp_id = 0;
11533
11534         /* Stop the device in case it's started so it can be configured */
11535         rte_cryptodev_stop(ts_params->valid_devs[0]);
11536
11537         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11538
11539         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
11540                         &ts_params->conf),
11541                         "Failed to configure cryptodev %u",
11542                         ts_params->valid_devs[0]);
11543
11544         qp_conf.nb_descriptors = MAX_NUM_OPS_INFLIGHT;
11545         qp_conf.mp_session = ts_params->session_mpool;
11546         qp_conf.mp_session_private = ts_params->session_priv_mpool;
11547
11548         TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
11549                         ts_params->valid_devs[0], qp_id, &qp_conf,
11550                         rte_cryptodev_socket_id(ts_params->valid_devs[0])),
11551                         "Failed test for "
11552                         "rte_cryptodev_queue_pair_setup: num_inflights "
11553                         "%u on qp %u on cryptodev %u",
11554                         qp_conf.nb_descriptors, qp_id,
11555                         ts_params->valid_devs[0]);
11556
11557         /* Test with invalid crypto device */
11558         cb = rte_cryptodev_add_enq_callback(RTE_CRYPTO_MAX_DEVS,
11559                         qp_id, test_enq_callback, NULL);
11560         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11561                         "cryptodev %u did not fail",
11562                         qp_id, RTE_CRYPTO_MAX_DEVS);
11563
11564         /* Test with invalid queue pair */
11565         cb = rte_cryptodev_add_enq_callback(ts_params->valid_devs[0],
11566                         dev_info.max_nb_queue_pairs + 1,
11567                         test_enq_callback, NULL);
11568         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11569                         "cryptodev %u did not fail",
11570                         dev_info.max_nb_queue_pairs + 1,
11571                         ts_params->valid_devs[0]);
11572
11573         /* Test with NULL callback */
11574         cb = rte_cryptodev_add_enq_callback(ts_params->valid_devs[0],
11575                         qp_id, NULL, NULL);
11576         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11577                         "cryptodev %u did not fail",
11578                         qp_id, ts_params->valid_devs[0]);
11579
11580         /* Test with valid configuration */
11581         cb = rte_cryptodev_add_enq_callback(ts_params->valid_devs[0],
11582                         qp_id, test_enq_callback, NULL);
11583         TEST_ASSERT_NOT_NULL(cb, "Failed test to add callback on "
11584                         "qp %u on cryptodev %u",
11585                         qp_id, ts_params->valid_devs[0]);
11586
11587         rte_cryptodev_start(ts_params->valid_devs[0]);
11588
11589         /* Launch a thread */
11590         rte_eal_remote_launch(test_enqdeq_callback_thread, NULL,
11591                                 rte_get_next_lcore(-1, 1, 0));
11592
11593         /* Wait until reader exited. */
11594         rte_eal_mp_wait_lcore();
11595
11596         /* Test with invalid crypto device */
11597         TEST_ASSERT_FAIL(rte_cryptodev_remove_enq_callback(
11598                         RTE_CRYPTO_MAX_DEVS, qp_id, cb),
11599                         "Expected call to fail as crypto device is invalid");
11600
11601         /* Test with invalid queue pair */
11602         TEST_ASSERT_FAIL(rte_cryptodev_remove_enq_callback(
11603                         ts_params->valid_devs[0],
11604                         dev_info.max_nb_queue_pairs + 1, cb),
11605                         "Expected call to fail as queue pair is invalid");
11606
11607         /* Test with NULL callback */
11608         TEST_ASSERT_FAIL(rte_cryptodev_remove_enq_callback(
11609                         ts_params->valid_devs[0], qp_id, NULL),
11610                         "Expected call to fail as callback is NULL");
11611
11612         /* Test with valid configuration */
11613         TEST_ASSERT_SUCCESS(rte_cryptodev_remove_enq_callback(
11614                         ts_params->valid_devs[0], qp_id, cb),
11615                         "Failed test to remove callback on "
11616                         "qp %u on cryptodev %u",
11617                         qp_id, ts_params->valid_devs[0]);
11618
11619         return TEST_SUCCESS;
11620 }
11621
11622 static int
11623 test_deq_callback_setup(void)
11624 {
11625         struct crypto_testsuite_params *ts_params = &testsuite_params;
11626         struct rte_cryptodev_info dev_info;
11627         struct rte_cryptodev_qp_conf qp_conf = {
11628                 .nb_descriptors = MAX_NUM_OPS_INFLIGHT
11629         };
11630
11631         struct rte_cryptodev_cb *cb;
11632         uint16_t qp_id = 0;
11633
11634         /* Stop the device in case it's started so it can be configured */
11635         rte_cryptodev_stop(ts_params->valid_devs[0]);
11636
11637         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11638
11639         TEST_ASSERT_SUCCESS(rte_cryptodev_configure(ts_params->valid_devs[0],
11640                         &ts_params->conf),
11641                         "Failed to configure cryptodev %u",
11642                         ts_params->valid_devs[0]);
11643
11644         qp_conf.nb_descriptors = MAX_NUM_OPS_INFLIGHT;
11645         qp_conf.mp_session = ts_params->session_mpool;
11646         qp_conf.mp_session_private = ts_params->session_priv_mpool;
11647
11648         TEST_ASSERT_SUCCESS(rte_cryptodev_queue_pair_setup(
11649                         ts_params->valid_devs[0], qp_id, &qp_conf,
11650                         rte_cryptodev_socket_id(ts_params->valid_devs[0])),
11651                         "Failed test for "
11652                         "rte_cryptodev_queue_pair_setup: num_inflights "
11653                         "%u on qp %u on cryptodev %u",
11654                         qp_conf.nb_descriptors, qp_id,
11655                         ts_params->valid_devs[0]);
11656
11657         /* Test with invalid crypto device */
11658         cb = rte_cryptodev_add_deq_callback(RTE_CRYPTO_MAX_DEVS,
11659                         qp_id, test_deq_callback, NULL);
11660         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11661                         "cryptodev %u did not fail",
11662                         qp_id, RTE_CRYPTO_MAX_DEVS);
11663
11664         /* Test with invalid queue pair */
11665         cb = rte_cryptodev_add_deq_callback(ts_params->valid_devs[0],
11666                         dev_info.max_nb_queue_pairs + 1,
11667                         test_deq_callback, NULL);
11668         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11669                         "cryptodev %u did not fail",
11670                         dev_info.max_nb_queue_pairs + 1,
11671                         ts_params->valid_devs[0]);
11672
11673         /* Test with NULL callback */
11674         cb = rte_cryptodev_add_deq_callback(ts_params->valid_devs[0],
11675                         qp_id, NULL, NULL);
11676         TEST_ASSERT_NULL(cb, "Add callback on qp %u on "
11677                         "cryptodev %u did not fail",
11678                         qp_id, ts_params->valid_devs[0]);
11679
11680         /* Test with valid configuration */
11681         cb = rte_cryptodev_add_deq_callback(ts_params->valid_devs[0],
11682                         qp_id, test_deq_callback, NULL);
11683         TEST_ASSERT_NOT_NULL(cb, "Failed test to add callback on "
11684                         "qp %u on cryptodev %u",
11685                         qp_id, ts_params->valid_devs[0]);
11686
11687         rte_cryptodev_start(ts_params->valid_devs[0]);
11688
11689         /* Launch a thread */
11690         rte_eal_remote_launch(test_enqdeq_callback_thread, NULL,
11691                                 rte_get_next_lcore(-1, 1, 0));
11692
11693         /* Wait until reader exited. */
11694         rte_eal_mp_wait_lcore();
11695
11696         /* Test with invalid crypto device */
11697         TEST_ASSERT_FAIL(rte_cryptodev_remove_deq_callback(
11698                         RTE_CRYPTO_MAX_DEVS, qp_id, cb),
11699                         "Expected call to fail as crypto device is invalid");
11700
11701         /* Test with invalid queue pair */
11702         TEST_ASSERT_FAIL(rte_cryptodev_remove_deq_callback(
11703                         ts_params->valid_devs[0],
11704                         dev_info.max_nb_queue_pairs + 1, cb),
11705                         "Expected call to fail as queue pair is invalid");
11706
11707         /* Test with NULL callback */
11708         TEST_ASSERT_FAIL(rte_cryptodev_remove_deq_callback(
11709                         ts_params->valid_devs[0], qp_id, NULL),
11710                         "Expected call to fail as callback is NULL");
11711
11712         /* Test with valid configuration */
11713         TEST_ASSERT_SUCCESS(rte_cryptodev_remove_deq_callback(
11714                         ts_params->valid_devs[0], qp_id, cb),
11715                         "Failed test to remove callback on "
11716                         "qp %u on cryptodev %u",
11717                         qp_id, ts_params->valid_devs[0]);
11718
11719         return TEST_SUCCESS;
11720 }
11721
11722 static void
11723 generate_gmac_large_plaintext(uint8_t *data)
11724 {
11725         uint16_t i;
11726
11727         for (i = 32; i < GMAC_LARGE_PLAINTEXT_LENGTH; i += 32)
11728                 memcpy(&data[i], &data[0], 32);
11729 }
11730
11731 static int
11732 create_gmac_operation(enum rte_crypto_auth_operation op,
11733                 const struct gmac_test_data *tdata)
11734 {
11735         struct crypto_testsuite_params *ts_params = &testsuite_params;
11736         struct crypto_unittest_params *ut_params = &unittest_params;
11737         struct rte_crypto_sym_op *sym_op;
11738
11739         uint32_t plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
11740
11741         /* Generate Crypto op data structure */
11742         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
11743                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
11744         TEST_ASSERT_NOT_NULL(ut_params->op,
11745                         "Failed to allocate symmetric crypto operation struct");
11746
11747         sym_op = ut_params->op->sym;
11748
11749         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
11750                         ut_params->ibuf, tdata->gmac_tag.len);
11751         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
11752                         "no room to append digest");
11753
11754         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
11755                         ut_params->ibuf, plaintext_pad_len);
11756
11757         if (op == RTE_CRYPTO_AUTH_OP_VERIFY) {
11758                 rte_memcpy(sym_op->auth.digest.data, tdata->gmac_tag.data,
11759                                 tdata->gmac_tag.len);
11760                 debug_hexdump(stdout, "digest:",
11761                                 sym_op->auth.digest.data,
11762                                 tdata->gmac_tag.len);
11763         }
11764
11765         uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
11766                         uint8_t *, IV_OFFSET);
11767
11768         rte_memcpy(iv_ptr, tdata->iv.data, tdata->iv.len);
11769
11770         debug_hexdump(stdout, "iv:", iv_ptr, tdata->iv.len);
11771
11772         sym_op->cipher.data.length = 0;
11773         sym_op->cipher.data.offset = 0;
11774
11775         sym_op->auth.data.offset = 0;
11776         sym_op->auth.data.length = tdata->plaintext.len;
11777
11778         return 0;
11779 }
11780
11781 static int
11782 create_gmac_operation_sgl(enum rte_crypto_auth_operation op,
11783                 const struct gmac_test_data *tdata,
11784                 void *digest_mem, uint64_t digest_phys)
11785 {
11786         struct crypto_testsuite_params *ts_params = &testsuite_params;
11787         struct crypto_unittest_params *ut_params = &unittest_params;
11788         struct rte_crypto_sym_op *sym_op;
11789
11790         /* Generate Crypto op data structure */
11791         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
11792                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
11793         TEST_ASSERT_NOT_NULL(ut_params->op,
11794                         "Failed to allocate symmetric crypto operation struct");
11795
11796         sym_op = ut_params->op->sym;
11797
11798         sym_op->auth.digest.data = digest_mem;
11799         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
11800                         "no room to append digest");
11801
11802         sym_op->auth.digest.phys_addr = digest_phys;
11803
11804         if (op == RTE_CRYPTO_AUTH_OP_VERIFY) {
11805                 rte_memcpy(sym_op->auth.digest.data, tdata->gmac_tag.data,
11806                                 tdata->gmac_tag.len);
11807                 debug_hexdump(stdout, "digest:",
11808                                 sym_op->auth.digest.data,
11809                                 tdata->gmac_tag.len);
11810         }
11811
11812         uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
11813                         uint8_t *, IV_OFFSET);
11814
11815         rte_memcpy(iv_ptr, tdata->iv.data, tdata->iv.len);
11816
11817         debug_hexdump(stdout, "iv:", iv_ptr, tdata->iv.len);
11818
11819         sym_op->cipher.data.length = 0;
11820         sym_op->cipher.data.offset = 0;
11821
11822         sym_op->auth.data.offset = 0;
11823         sym_op->auth.data.length = tdata->plaintext.len;
11824
11825         return 0;
11826 }
11827
11828 static int create_gmac_session(uint8_t dev_id,
11829                 const struct gmac_test_data *tdata,
11830                 enum rte_crypto_auth_operation auth_op)
11831 {
11832         uint8_t auth_key[tdata->key.len];
11833
11834         struct crypto_testsuite_params *ts_params = &testsuite_params;
11835         struct crypto_unittest_params *ut_params = &unittest_params;
11836
11837         memcpy(auth_key, tdata->key.data, tdata->key.len);
11838
11839         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11840         ut_params->auth_xform.next = NULL;
11841
11842         ut_params->auth_xform.auth.algo = RTE_CRYPTO_AUTH_AES_GMAC;
11843         ut_params->auth_xform.auth.op = auth_op;
11844         ut_params->auth_xform.auth.digest_length = tdata->gmac_tag.len;
11845         ut_params->auth_xform.auth.key.length = tdata->key.len;
11846         ut_params->auth_xform.auth.key.data = auth_key;
11847         ut_params->auth_xform.auth.iv.offset = IV_OFFSET;
11848         ut_params->auth_xform.auth.iv.length = tdata->iv.len;
11849
11850
11851         ut_params->sess = rte_cryptodev_sym_session_create(
11852                         ts_params->session_mpool);
11853
11854         rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
11855                         &ut_params->auth_xform,
11856                         ts_params->session_priv_mpool);
11857
11858         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
11859
11860         return 0;
11861 }
11862
11863 static int
11864 test_AES_GMAC_authentication(const struct gmac_test_data *tdata)
11865 {
11866         struct crypto_testsuite_params *ts_params = &testsuite_params;
11867         struct crypto_unittest_params *ut_params = &unittest_params;
11868         struct rte_cryptodev_info dev_info;
11869
11870         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
11871         uint64_t feat_flags = dev_info.feature_flags;
11872
11873         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
11874                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
11875                 printf("Device doesn't support RAW data-path APIs.\n");
11876                 return TEST_SKIPPED;
11877         }
11878
11879         int retval;
11880
11881         uint8_t *auth_tag, *plaintext;
11882         uint16_t plaintext_pad_len;
11883
11884         TEST_ASSERT_NOT_EQUAL(tdata->gmac_tag.len, 0,
11885                               "No GMAC length in the source data");
11886
11887         /* Verify the capabilities */
11888         struct rte_cryptodev_sym_capability_idx cap_idx;
11889         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
11890         cap_idx.algo.auth = RTE_CRYPTO_AUTH_AES_GMAC;
11891         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
11892                         &cap_idx) == NULL)
11893                 return TEST_SKIPPED;
11894
11895         retval = create_gmac_session(ts_params->valid_devs[0],
11896                         tdata, RTE_CRYPTO_AUTH_OP_GENERATE);
11897
11898         if (retval < 0)
11899                 return retval;
11900
11901         if (tdata->plaintext.len > MBUF_SIZE)
11902                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->large_mbuf_pool);
11903         else
11904                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
11905         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
11906                         "Failed to allocate input buffer in mempool");
11907
11908         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
11909                         rte_pktmbuf_tailroom(ut_params->ibuf));
11910
11911         plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
11912         /*
11913          * Runtime generate the large plain text instead of use hard code
11914          * plain text vector. It is done to avoid create huge source file
11915          * with the test vector.
11916          */
11917         if (tdata->plaintext.len == GMAC_LARGE_PLAINTEXT_LENGTH)
11918                 generate_gmac_large_plaintext(tdata->plaintext.data);
11919
11920         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
11921                                 plaintext_pad_len);
11922         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
11923
11924         memcpy(plaintext, tdata->plaintext.data, tdata->plaintext.len);
11925         debug_hexdump(stdout, "plaintext:", plaintext,
11926                         tdata->plaintext.len);
11927
11928         retval = create_gmac_operation(RTE_CRYPTO_AUTH_OP_GENERATE,
11929                         tdata);
11930
11931         if (retval < 0)
11932                 return retval;
11933
11934         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
11935
11936         ut_params->op->sym->m_src = ut_params->ibuf;
11937
11938         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
11939                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
11940                         ut_params->op);
11941         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
11942                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
11943                                 ut_params->op, 0, 1, 0, 0);
11944         else
11945                 TEST_ASSERT_NOT_NULL(
11946                         process_crypto_request(ts_params->valid_devs[0],
11947                         ut_params->op), "failed to process sym crypto op");
11948
11949         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
11950                         "crypto op processing failed");
11951
11952         if (ut_params->op->sym->m_dst) {
11953                 auth_tag = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_dst,
11954                                 uint8_t *, plaintext_pad_len);
11955         } else {
11956                 auth_tag = plaintext + plaintext_pad_len;
11957         }
11958
11959         debug_hexdump(stdout, "auth tag:", auth_tag, tdata->gmac_tag.len);
11960
11961         TEST_ASSERT_BUFFERS_ARE_EQUAL(
11962                         auth_tag,
11963                         tdata->gmac_tag.data,
11964                         tdata->gmac_tag.len,
11965                         "GMAC Generated auth tag not as expected");
11966
11967         return 0;
11968 }
11969
11970 static int
11971 test_AES_GMAC_authentication_test_case_1(void)
11972 {
11973         return test_AES_GMAC_authentication(&gmac_test_case_1);
11974 }
11975
11976 static int
11977 test_AES_GMAC_authentication_test_case_2(void)
11978 {
11979         return test_AES_GMAC_authentication(&gmac_test_case_2);
11980 }
11981
11982 static int
11983 test_AES_GMAC_authentication_test_case_3(void)
11984 {
11985         return test_AES_GMAC_authentication(&gmac_test_case_3);
11986 }
11987
11988 static int
11989 test_AES_GMAC_authentication_test_case_4(void)
11990 {
11991         return test_AES_GMAC_authentication(&gmac_test_case_4);
11992 }
11993
11994 static int
11995 test_AES_GMAC_authentication_verify(const struct gmac_test_data *tdata)
11996 {
11997         struct crypto_testsuite_params *ts_params = &testsuite_params;
11998         struct crypto_unittest_params *ut_params = &unittest_params;
11999         int retval;
12000         uint32_t plaintext_pad_len;
12001         uint8_t *plaintext;
12002         struct rte_cryptodev_info dev_info;
12003
12004         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
12005         uint64_t feat_flags = dev_info.feature_flags;
12006
12007         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
12008                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
12009                 printf("Device doesn't support RAW data-path APIs.\n");
12010                 return TEST_SKIPPED;
12011         }
12012
12013         TEST_ASSERT_NOT_EQUAL(tdata->gmac_tag.len, 0,
12014                               "No GMAC length in the source data");
12015
12016         /* Verify the capabilities */
12017         struct rte_cryptodev_sym_capability_idx cap_idx;
12018         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12019         cap_idx.algo.auth = RTE_CRYPTO_AUTH_AES_GMAC;
12020         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12021                         &cap_idx) == NULL)
12022                 return TEST_SKIPPED;
12023
12024         retval = create_gmac_session(ts_params->valid_devs[0],
12025                         tdata, RTE_CRYPTO_AUTH_OP_VERIFY);
12026
12027         if (retval < 0)
12028                 return retval;
12029
12030         if (tdata->plaintext.len > MBUF_SIZE)
12031                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->large_mbuf_pool);
12032         else
12033                 ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12034         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
12035                         "Failed to allocate input buffer in mempool");
12036
12037         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
12038                         rte_pktmbuf_tailroom(ut_params->ibuf));
12039
12040         plaintext_pad_len = RTE_ALIGN_CEIL(tdata->plaintext.len, 16);
12041
12042         /*
12043          * Runtime generate the large plain text instead of use hard code
12044          * plain text vector. It is done to avoid create huge source file
12045          * with the test vector.
12046          */
12047         if (tdata->plaintext.len == GMAC_LARGE_PLAINTEXT_LENGTH)
12048                 generate_gmac_large_plaintext(tdata->plaintext.data);
12049
12050         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12051                                 plaintext_pad_len);
12052         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
12053
12054         memcpy(plaintext, tdata->plaintext.data, tdata->plaintext.len);
12055         debug_hexdump(stdout, "plaintext:", plaintext,
12056                         tdata->plaintext.len);
12057
12058         retval = create_gmac_operation(RTE_CRYPTO_AUTH_OP_VERIFY,
12059                         tdata);
12060
12061         if (retval < 0)
12062                 return retval;
12063
12064         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
12065
12066         ut_params->op->sym->m_src = ut_params->ibuf;
12067
12068         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
12069                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
12070                         ut_params->op);
12071         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
12072                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
12073                                 ut_params->op, 0, 1, 0, 0);
12074         else
12075                 TEST_ASSERT_NOT_NULL(
12076                         process_crypto_request(ts_params->valid_devs[0],
12077                         ut_params->op), "failed to process sym crypto op");
12078
12079         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
12080                         "crypto op processing failed");
12081
12082         return 0;
12083
12084 }
12085
12086 static int
12087 test_AES_GMAC_authentication_verify_test_case_1(void)
12088 {
12089         return test_AES_GMAC_authentication_verify(&gmac_test_case_1);
12090 }
12091
12092 static int
12093 test_AES_GMAC_authentication_verify_test_case_2(void)
12094 {
12095         return test_AES_GMAC_authentication_verify(&gmac_test_case_2);
12096 }
12097
12098 static int
12099 test_AES_GMAC_authentication_verify_test_case_3(void)
12100 {
12101         return test_AES_GMAC_authentication_verify(&gmac_test_case_3);
12102 }
12103
12104 static int
12105 test_AES_GMAC_authentication_verify_test_case_4(void)
12106 {
12107         return test_AES_GMAC_authentication_verify(&gmac_test_case_4);
12108 }
12109
12110 static int
12111 test_AES_GMAC_authentication_SGL(const struct gmac_test_data *tdata,
12112                                 uint32_t fragsz)
12113 {
12114         struct crypto_testsuite_params *ts_params = &testsuite_params;
12115         struct crypto_unittest_params *ut_params = &unittest_params;
12116         struct rte_cryptodev_info dev_info;
12117         uint64_t feature_flags;
12118         unsigned int trn_data = 0;
12119         void *digest_mem = NULL;
12120         uint32_t segs = 1;
12121         unsigned int to_trn = 0;
12122         struct rte_mbuf *buf = NULL;
12123         uint8_t *auth_tag, *plaintext;
12124         int retval;
12125
12126         TEST_ASSERT_NOT_EQUAL(tdata->gmac_tag.len, 0,
12127                               "No GMAC length in the source data");
12128
12129         /* Verify the capabilities */
12130         struct rte_cryptodev_sym_capability_idx cap_idx;
12131         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12132         cap_idx.algo.auth = RTE_CRYPTO_AUTH_AES_GMAC;
12133         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12134                         &cap_idx) == NULL)
12135                 return TEST_SKIPPED;
12136
12137         /* Check for any input SGL support */
12138         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
12139         feature_flags = dev_info.feature_flags;
12140
12141         if ((!(feature_flags & RTE_CRYPTODEV_FF_IN_PLACE_SGL)) ||
12142                         (!(feature_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_LB_OUT)) ||
12143                         (!(feature_flags & RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT)))
12144                 return TEST_SKIPPED;
12145
12146         if (fragsz > tdata->plaintext.len)
12147                 fragsz = tdata->plaintext.len;
12148
12149         uint16_t plaintext_len = fragsz;
12150
12151         retval = create_gmac_session(ts_params->valid_devs[0],
12152                         tdata, RTE_CRYPTO_AUTH_OP_GENERATE);
12153
12154         if (retval < 0)
12155                 return retval;
12156
12157         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12158         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
12159                         "Failed to allocate input buffer in mempool");
12160
12161         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
12162                         rte_pktmbuf_tailroom(ut_params->ibuf));
12163
12164         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12165                                 plaintext_len);
12166         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
12167
12168         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
12169
12170         trn_data += plaintext_len;
12171
12172         buf = ut_params->ibuf;
12173
12174         /*
12175          * Loop until no more fragments
12176          */
12177
12178         while (trn_data < tdata->plaintext.len) {
12179                 ++segs;
12180                 to_trn = (tdata->plaintext.len - trn_data < fragsz) ?
12181                                 (tdata->plaintext.len - trn_data) : fragsz;
12182
12183                 buf->next = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12184                 buf = buf->next;
12185
12186                 memset(rte_pktmbuf_mtod(buf, uint8_t *), 0,
12187                                 rte_pktmbuf_tailroom(buf));
12188
12189                 plaintext = (uint8_t *)rte_pktmbuf_append(buf,
12190                                 to_trn);
12191
12192                 memcpy(plaintext, tdata->plaintext.data + trn_data,
12193                                 to_trn);
12194                 trn_data += to_trn;
12195                 if (trn_data  == tdata->plaintext.len)
12196                         digest_mem = (uint8_t *)rte_pktmbuf_append(buf,
12197                                         tdata->gmac_tag.len);
12198         }
12199         ut_params->ibuf->nb_segs = segs;
12200
12201         /*
12202          * Place digest at the end of the last buffer
12203          */
12204         uint64_t digest_phys = rte_pktmbuf_iova(buf) + to_trn;
12205
12206         if (!digest_mem) {
12207                 digest_mem = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12208                                 + tdata->gmac_tag.len);
12209                 digest_phys = rte_pktmbuf_iova_offset(ut_params->ibuf,
12210                                 tdata->plaintext.len);
12211         }
12212
12213         retval = create_gmac_operation_sgl(RTE_CRYPTO_AUTH_OP_GENERATE,
12214                         tdata, digest_mem, digest_phys);
12215
12216         if (retval < 0)
12217                 return retval;
12218
12219         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
12220
12221         ut_params->op->sym->m_src = ut_params->ibuf;
12222
12223         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
12224                 return TEST_SKIPPED;
12225
12226         TEST_ASSERT_NOT_NULL(
12227                 process_crypto_request(ts_params->valid_devs[0],
12228                 ut_params->op), "failed to process sym crypto op");
12229
12230         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
12231                         "crypto op processing failed");
12232
12233         auth_tag = digest_mem;
12234         debug_hexdump(stdout, "auth tag:", auth_tag, tdata->gmac_tag.len);
12235         TEST_ASSERT_BUFFERS_ARE_EQUAL(
12236                         auth_tag,
12237                         tdata->gmac_tag.data,
12238                         tdata->gmac_tag.len,
12239                         "GMAC Generated auth tag not as expected");
12240
12241         return 0;
12242 }
12243
12244 /* Segment size not multiple of block size (16B) */
12245 static int
12246 test_AES_GMAC_authentication_SGL_40B(void)
12247 {
12248         return test_AES_GMAC_authentication_SGL(&gmac_test_case_1, 40);
12249 }
12250
12251 static int
12252 test_AES_GMAC_authentication_SGL_80B(void)
12253 {
12254         return test_AES_GMAC_authentication_SGL(&gmac_test_case_1, 80);
12255 }
12256
12257 static int
12258 test_AES_GMAC_authentication_SGL_2048B(void)
12259 {
12260         return test_AES_GMAC_authentication_SGL(&gmac_test_case_5, 2048);
12261 }
12262
12263 /* Segment size not multiple of block size (16B) */
12264 static int
12265 test_AES_GMAC_authentication_SGL_2047B(void)
12266 {
12267         return test_AES_GMAC_authentication_SGL(&gmac_test_case_5, 2047);
12268 }
12269
12270 struct test_crypto_vector {
12271         enum rte_crypto_cipher_algorithm crypto_algo;
12272         unsigned int cipher_offset;
12273         unsigned int cipher_len;
12274
12275         struct {
12276                 uint8_t data[64];
12277                 unsigned int len;
12278         } cipher_key;
12279
12280         struct {
12281                 uint8_t data[64];
12282                 unsigned int len;
12283         } iv;
12284
12285         struct {
12286                 const uint8_t *data;
12287                 unsigned int len;
12288         } plaintext;
12289
12290         struct {
12291                 const uint8_t *data;
12292                 unsigned int len;
12293         } ciphertext;
12294
12295         enum rte_crypto_auth_algorithm auth_algo;
12296         unsigned int auth_offset;
12297
12298         struct {
12299                 uint8_t data[128];
12300                 unsigned int len;
12301         } auth_key;
12302
12303         struct {
12304                 const uint8_t *data;
12305                 unsigned int len;
12306         } aad;
12307
12308         struct {
12309                 uint8_t data[128];
12310                 unsigned int len;
12311         } digest;
12312 };
12313
12314 static const struct test_crypto_vector
12315 hmac_sha1_test_crypto_vector = {
12316         .auth_algo = RTE_CRYPTO_AUTH_SHA1_HMAC,
12317         .plaintext = {
12318                 .data = plaintext_hash,
12319                 .len = 512
12320         },
12321         .auth_key = {
12322                 .data = {
12323                         0xF8, 0x2A, 0xC7, 0x54, 0xDB, 0x96, 0x18, 0xAA,
12324                         0xC3, 0xA1, 0x53, 0xF6, 0x1F, 0x17, 0x60, 0xBD,
12325                         0xDE, 0xF4, 0xDE, 0xAD
12326                 },
12327                 .len = 20
12328         },
12329         .digest = {
12330                 .data = {
12331                         0xC4, 0xB7, 0x0E, 0x6B, 0xDE, 0xD1, 0xE7, 0x77,
12332                         0x7E, 0x2E, 0x8F, 0xFC, 0x48, 0x39, 0x46, 0x17,
12333                         0x3F, 0x91, 0x64, 0x59
12334                 },
12335                 .len = 20
12336         }
12337 };
12338
12339 static const struct test_crypto_vector
12340 aes128_gmac_test_vector = {
12341         .auth_algo = RTE_CRYPTO_AUTH_AES_GMAC,
12342         .plaintext = {
12343                 .data = plaintext_hash,
12344                 .len = 512
12345         },
12346         .iv = {
12347                 .data = {
12348                         0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
12349                         0x08, 0x09, 0x0A, 0x0B
12350                 },
12351                 .len = 12
12352         },
12353         .auth_key = {
12354                 .data = {
12355                         0x42, 0x1A, 0x7D, 0x3D, 0xF5, 0x82, 0x80, 0xF1,
12356                         0xF1, 0x35, 0x5C, 0x3B, 0xDD, 0x9A, 0x65, 0xBA
12357                 },
12358                 .len = 16
12359         },
12360         .digest = {
12361                 .data = {
12362                         0xCA, 0x00, 0x99, 0x8B, 0x30, 0x7E, 0x74, 0x56,
12363                         0x32, 0xA7, 0x87, 0xB5, 0xE9, 0xB2, 0x34, 0x5A
12364                 },
12365                 .len = 16
12366         }
12367 };
12368
12369 static const struct test_crypto_vector
12370 aes128cbc_hmac_sha1_test_vector = {
12371         .crypto_algo = RTE_CRYPTO_CIPHER_AES_CBC,
12372         .cipher_offset = 0,
12373         .cipher_len = 512,
12374         .cipher_key = {
12375                 .data = {
12376                         0xE4, 0x23, 0x33, 0x8A, 0x35, 0x64, 0x61, 0xE2,
12377                         0x49, 0x03, 0xDD, 0xC6, 0xB8, 0xCA, 0x55, 0x7A
12378                 },
12379                 .len = 16
12380         },
12381         .iv = {
12382                 .data = {
12383                         0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
12384                         0x08, 0x09, 0x0A, 0x0B, 0x0C, 0x0D, 0x0E, 0x0F
12385                 },
12386                 .len = 16
12387         },
12388         .plaintext = {
12389                 .data = plaintext_hash,
12390                 .len = 512
12391         },
12392         .ciphertext = {
12393                 .data = ciphertext512_aes128cbc,
12394                 .len = 512
12395         },
12396         .auth_algo = RTE_CRYPTO_AUTH_SHA1_HMAC,
12397         .auth_offset = 0,
12398         .auth_key = {
12399                 .data = {
12400                         0xF8, 0x2A, 0xC7, 0x54, 0xDB, 0x96, 0x18, 0xAA,
12401                         0xC3, 0xA1, 0x53, 0xF6, 0x1F, 0x17, 0x60, 0xBD,
12402                         0xDE, 0xF4, 0xDE, 0xAD
12403                 },
12404                 .len = 20
12405         },
12406         .digest = {
12407                 .data = {
12408                         0x9A, 0x4F, 0x88, 0x1B, 0xB6, 0x8F, 0xD8, 0x60,
12409                         0x42, 0x1A, 0x7D, 0x3D, 0xF5, 0x82, 0x80, 0xF1,
12410                         0x18, 0x8C, 0x1D, 0x32
12411                 },
12412                 .len = 20
12413         }
12414 };
12415
12416 static const struct test_crypto_vector
12417 aes128cbc_hmac_sha1_aad_test_vector = {
12418         .crypto_algo = RTE_CRYPTO_CIPHER_AES_CBC,
12419         .cipher_offset = 8,
12420         .cipher_len = 496,
12421         .cipher_key = {
12422                 .data = {
12423                         0xE4, 0x23, 0x33, 0x8A, 0x35, 0x64, 0x61, 0xE2,
12424                         0x49, 0x03, 0xDD, 0xC6, 0xB8, 0xCA, 0x55, 0x7A
12425                 },
12426                 .len = 16
12427         },
12428         .iv = {
12429                 .data = {
12430                         0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
12431                         0x08, 0x09, 0x0A, 0x0B, 0x0C, 0x0D, 0x0E, 0x0F
12432                 },
12433                 .len = 16
12434         },
12435         .plaintext = {
12436                 .data = plaintext_hash,
12437                 .len = 512
12438         },
12439         .ciphertext = {
12440                 .data = ciphertext512_aes128cbc_aad,
12441                 .len = 512
12442         },
12443         .auth_algo = RTE_CRYPTO_AUTH_SHA1_HMAC,
12444         .auth_offset = 0,
12445         .auth_key = {
12446                 .data = {
12447                         0xF8, 0x2A, 0xC7, 0x54, 0xDB, 0x96, 0x18, 0xAA,
12448                         0xC3, 0xA1, 0x53, 0xF6, 0x1F, 0x17, 0x60, 0xBD,
12449                         0xDE, 0xF4, 0xDE, 0xAD
12450                 },
12451                 .len = 20
12452         },
12453         .digest = {
12454                 .data = {
12455                         0x6D, 0xF3, 0x50, 0x79, 0x7A, 0x2A, 0xAC, 0x7F,
12456                         0xA6, 0xF0, 0xC6, 0x38, 0x1F, 0xA4, 0xDD, 0x9B,
12457                         0x62, 0x0F, 0xFB, 0x10
12458                 },
12459                 .len = 20
12460         }
12461 };
12462
12463 static void
12464 data_corruption(uint8_t *data)
12465 {
12466         data[0] += 1;
12467 }
12468
12469 static void
12470 tag_corruption(uint8_t *data, unsigned int tag_offset)
12471 {
12472         data[tag_offset] += 1;
12473 }
12474
12475 static int
12476 create_auth_session(struct crypto_unittest_params *ut_params,
12477                 uint8_t dev_id,
12478                 const struct test_crypto_vector *reference,
12479                 enum rte_crypto_auth_operation auth_op)
12480 {
12481         struct crypto_testsuite_params *ts_params = &testsuite_params;
12482         uint8_t auth_key[reference->auth_key.len + 1];
12483
12484         memcpy(auth_key, reference->auth_key.data, reference->auth_key.len);
12485
12486         /* Setup Authentication Parameters */
12487         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12488         ut_params->auth_xform.auth.op = auth_op;
12489         ut_params->auth_xform.next = NULL;
12490         ut_params->auth_xform.auth.algo = reference->auth_algo;
12491         ut_params->auth_xform.auth.key.length = reference->auth_key.len;
12492         ut_params->auth_xform.auth.key.data = auth_key;
12493         ut_params->auth_xform.auth.digest_length = reference->digest.len;
12494
12495         /* Create Crypto session*/
12496         ut_params->sess = rte_cryptodev_sym_session_create(
12497                         ts_params->session_mpool);
12498
12499         rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
12500                                 &ut_params->auth_xform,
12501                                 ts_params->session_priv_mpool);
12502
12503         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
12504
12505         return 0;
12506 }
12507
12508 static int
12509 create_auth_cipher_session(struct crypto_unittest_params *ut_params,
12510                 uint8_t dev_id,
12511                 const struct test_crypto_vector *reference,
12512                 enum rte_crypto_auth_operation auth_op,
12513                 enum rte_crypto_cipher_operation cipher_op)
12514 {
12515         struct crypto_testsuite_params *ts_params = &testsuite_params;
12516         uint8_t cipher_key[reference->cipher_key.len + 1];
12517         uint8_t auth_key[reference->auth_key.len + 1];
12518
12519         memcpy(cipher_key, reference->cipher_key.data,
12520                         reference->cipher_key.len);
12521         memcpy(auth_key, reference->auth_key.data, reference->auth_key.len);
12522
12523         /* Setup Authentication Parameters */
12524         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12525         ut_params->auth_xform.auth.op = auth_op;
12526         ut_params->auth_xform.auth.algo = reference->auth_algo;
12527         ut_params->auth_xform.auth.key.length = reference->auth_key.len;
12528         ut_params->auth_xform.auth.key.data = auth_key;
12529         ut_params->auth_xform.auth.digest_length = reference->digest.len;
12530
12531         if (reference->auth_algo == RTE_CRYPTO_AUTH_AES_GMAC) {
12532                 ut_params->auth_xform.auth.iv.offset = IV_OFFSET;
12533                 ut_params->auth_xform.auth.iv.length = reference->iv.len;
12534         } else {
12535                 ut_params->auth_xform.next = &ut_params->cipher_xform;
12536
12537                 /* Setup Cipher Parameters */
12538                 ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
12539                 ut_params->cipher_xform.next = NULL;
12540                 ut_params->cipher_xform.cipher.algo = reference->crypto_algo;
12541                 ut_params->cipher_xform.cipher.op = cipher_op;
12542                 ut_params->cipher_xform.cipher.key.data = cipher_key;
12543                 ut_params->cipher_xform.cipher.key.length = reference->cipher_key.len;
12544                 ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
12545                 ut_params->cipher_xform.cipher.iv.length = reference->iv.len;
12546         }
12547
12548         /* Create Crypto session*/
12549         ut_params->sess = rte_cryptodev_sym_session_create(
12550                         ts_params->session_mpool);
12551
12552         rte_cryptodev_sym_session_init(dev_id, ut_params->sess,
12553                                 &ut_params->auth_xform,
12554                                 ts_params->session_priv_mpool);
12555
12556         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
12557
12558         return 0;
12559 }
12560
12561 static int
12562 create_auth_operation(struct crypto_testsuite_params *ts_params,
12563                 struct crypto_unittest_params *ut_params,
12564                 const struct test_crypto_vector *reference,
12565                 unsigned int auth_generate)
12566 {
12567         /* Generate Crypto op data structure */
12568         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
12569                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
12570         TEST_ASSERT_NOT_NULL(ut_params->op,
12571                         "Failed to allocate pktmbuf offload");
12572
12573         /* Set crypto operation data parameters */
12574         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
12575
12576         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
12577
12578         /* set crypto operation source mbuf */
12579         sym_op->m_src = ut_params->ibuf;
12580
12581         /* digest */
12582         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
12583                         ut_params->ibuf, reference->digest.len);
12584
12585         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
12586                         "no room to append auth tag");
12587
12588         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
12589                         ut_params->ibuf, reference->plaintext.len);
12590
12591         if (auth_generate)
12592                 memset(sym_op->auth.digest.data, 0, reference->digest.len);
12593         else
12594                 memcpy(sym_op->auth.digest.data,
12595                                 reference->digest.data,
12596                                 reference->digest.len);
12597
12598         debug_hexdump(stdout, "digest:",
12599                         sym_op->auth.digest.data,
12600                         reference->digest.len);
12601
12602         sym_op->auth.data.length = reference->plaintext.len;
12603         sym_op->auth.data.offset = 0;
12604
12605         return 0;
12606 }
12607
12608 static int
12609 create_auth_GMAC_operation(struct crypto_testsuite_params *ts_params,
12610                 struct crypto_unittest_params *ut_params,
12611                 const struct test_crypto_vector *reference,
12612                 unsigned int auth_generate)
12613 {
12614         /* Generate Crypto op data structure */
12615         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
12616                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
12617         TEST_ASSERT_NOT_NULL(ut_params->op,
12618                         "Failed to allocate pktmbuf offload");
12619
12620         /* Set crypto operation data parameters */
12621         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
12622
12623         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
12624
12625         /* set crypto operation source mbuf */
12626         sym_op->m_src = ut_params->ibuf;
12627
12628         /* digest */
12629         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
12630                         ut_params->ibuf, reference->digest.len);
12631
12632         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
12633                         "no room to append auth tag");
12634
12635         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
12636                         ut_params->ibuf, reference->ciphertext.len);
12637
12638         if (auth_generate)
12639                 memset(sym_op->auth.digest.data, 0, reference->digest.len);
12640         else
12641                 memcpy(sym_op->auth.digest.data,
12642                                 reference->digest.data,
12643                                 reference->digest.len);
12644
12645         debug_hexdump(stdout, "digest:",
12646                         sym_op->auth.digest.data,
12647                         reference->digest.len);
12648
12649         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
12650                         reference->iv.data, reference->iv.len);
12651
12652         sym_op->cipher.data.length = 0;
12653         sym_op->cipher.data.offset = 0;
12654
12655         sym_op->auth.data.length = reference->plaintext.len;
12656         sym_op->auth.data.offset = 0;
12657
12658         return 0;
12659 }
12660
12661 static int
12662 create_cipher_auth_operation(struct crypto_testsuite_params *ts_params,
12663                 struct crypto_unittest_params *ut_params,
12664                 const struct test_crypto_vector *reference,
12665                 unsigned int auth_generate)
12666 {
12667         /* Generate Crypto op data structure */
12668         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
12669                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
12670         TEST_ASSERT_NOT_NULL(ut_params->op,
12671                         "Failed to allocate pktmbuf offload");
12672
12673         /* Set crypto operation data parameters */
12674         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
12675
12676         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
12677
12678         /* set crypto operation source mbuf */
12679         sym_op->m_src = ut_params->ibuf;
12680
12681         /* digest */
12682         sym_op->auth.digest.data = (uint8_t *)rte_pktmbuf_append(
12683                         ut_params->ibuf, reference->digest.len);
12684
12685         TEST_ASSERT_NOT_NULL(sym_op->auth.digest.data,
12686                         "no room to append auth tag");
12687
12688         sym_op->auth.digest.phys_addr = rte_pktmbuf_iova_offset(
12689                         ut_params->ibuf, reference->ciphertext.len);
12690
12691         if (auth_generate)
12692                 memset(sym_op->auth.digest.data, 0, reference->digest.len);
12693         else
12694                 memcpy(sym_op->auth.digest.data,
12695                                 reference->digest.data,
12696                                 reference->digest.len);
12697
12698         debug_hexdump(stdout, "digest:",
12699                         sym_op->auth.digest.data,
12700                         reference->digest.len);
12701
12702         rte_memcpy(rte_crypto_op_ctod_offset(ut_params->op, uint8_t *, IV_OFFSET),
12703                         reference->iv.data, reference->iv.len);
12704
12705         sym_op->cipher.data.length = reference->cipher_len;
12706         sym_op->cipher.data.offset = reference->cipher_offset;
12707
12708         sym_op->auth.data.length = reference->plaintext.len;
12709         sym_op->auth.data.offset = reference->auth_offset;
12710
12711         return 0;
12712 }
12713
12714 static int
12715 create_auth_verify_operation(struct crypto_testsuite_params *ts_params,
12716                 struct crypto_unittest_params *ut_params,
12717                 const struct test_crypto_vector *reference)
12718 {
12719         return create_auth_operation(ts_params, ut_params, reference, 0);
12720 }
12721
12722 static int
12723 create_auth_verify_GMAC_operation(
12724                 struct crypto_testsuite_params *ts_params,
12725                 struct crypto_unittest_params *ut_params,
12726                 const struct test_crypto_vector *reference)
12727 {
12728         return create_auth_GMAC_operation(ts_params, ut_params, reference, 0);
12729 }
12730
12731 static int
12732 create_cipher_auth_verify_operation(struct crypto_testsuite_params *ts_params,
12733                 struct crypto_unittest_params *ut_params,
12734                 const struct test_crypto_vector *reference)
12735 {
12736         return create_cipher_auth_operation(ts_params, ut_params, reference, 0);
12737 }
12738
12739 static int
12740 test_authentication_verify_fail_when_data_corruption(
12741                 struct crypto_testsuite_params *ts_params,
12742                 struct crypto_unittest_params *ut_params,
12743                 const struct test_crypto_vector *reference,
12744                 unsigned int data_corrupted)
12745 {
12746         int retval;
12747
12748         uint8_t *plaintext;
12749         struct rte_cryptodev_info dev_info;
12750
12751         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
12752         uint64_t feat_flags = dev_info.feature_flags;
12753
12754         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
12755                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
12756                 printf("Device doesn't support RAW data-path APIs.\n");
12757                 return TEST_SKIPPED;
12758         }
12759
12760         /* Verify the capabilities */
12761         struct rte_cryptodev_sym_capability_idx cap_idx;
12762         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12763         cap_idx.algo.auth = reference->auth_algo;
12764         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12765                         &cap_idx) == NULL)
12766                 return TEST_SKIPPED;
12767
12768
12769         /* Create session */
12770         retval = create_auth_session(ut_params,
12771                         ts_params->valid_devs[0],
12772                         reference,
12773                         RTE_CRYPTO_AUTH_OP_VERIFY);
12774         if (retval < 0)
12775                 return retval;
12776
12777         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12778         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
12779                         "Failed to allocate input buffer in mempool");
12780
12781         /* clear mbuf payload */
12782         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
12783                         rte_pktmbuf_tailroom(ut_params->ibuf));
12784
12785         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12786                         reference->plaintext.len);
12787         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
12788         memcpy(plaintext, reference->plaintext.data, reference->plaintext.len);
12789
12790         debug_hexdump(stdout, "plaintext:", plaintext,
12791                 reference->plaintext.len);
12792
12793         /* Create operation */
12794         retval = create_auth_verify_operation(ts_params, ut_params, reference);
12795
12796         if (retval < 0)
12797                 return retval;
12798
12799         if (data_corrupted)
12800                 data_corruption(plaintext);
12801         else
12802                 tag_corruption(plaintext, reference->plaintext.len);
12803
12804         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO) {
12805                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
12806                         ut_params->op);
12807                 TEST_ASSERT_NOT_EQUAL(ut_params->op->status,
12808                         RTE_CRYPTO_OP_STATUS_SUCCESS,
12809                         "authentication not failed");
12810         } else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
12811                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
12812                                 ut_params->op, 0, 1, 0, 0);
12813         else {
12814                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
12815                         ut_params->op);
12816                 TEST_ASSERT_NULL(ut_params->op, "authentication not failed");
12817         }
12818
12819         return 0;
12820 }
12821
12822 static int
12823 test_authentication_verify_GMAC_fail_when_corruption(
12824                 struct crypto_testsuite_params *ts_params,
12825                 struct crypto_unittest_params *ut_params,
12826                 const struct test_crypto_vector *reference,
12827                 unsigned int data_corrupted)
12828 {
12829         int retval;
12830         uint8_t *plaintext;
12831         struct rte_cryptodev_info dev_info;
12832
12833         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
12834         uint64_t feat_flags = dev_info.feature_flags;
12835
12836         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
12837                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
12838                 printf("Device doesn't support RAW data-path APIs.\n");
12839                 return TEST_SKIPPED;
12840         }
12841
12842         /* Verify the capabilities */
12843         struct rte_cryptodev_sym_capability_idx cap_idx;
12844         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12845         cap_idx.algo.auth = reference->auth_algo;
12846         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12847                         &cap_idx) == NULL)
12848                 return TEST_SKIPPED;
12849
12850         /* Create session */
12851         retval = create_auth_cipher_session(ut_params,
12852                         ts_params->valid_devs[0],
12853                         reference,
12854                         RTE_CRYPTO_AUTH_OP_VERIFY,
12855                         RTE_CRYPTO_CIPHER_OP_DECRYPT);
12856         if (retval < 0)
12857                 return retval;
12858
12859         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12860         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
12861                         "Failed to allocate input buffer in mempool");
12862
12863         /* clear mbuf payload */
12864         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
12865                         rte_pktmbuf_tailroom(ut_params->ibuf));
12866
12867         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12868                         reference->plaintext.len);
12869         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
12870         memcpy(plaintext, reference->plaintext.data, reference->plaintext.len);
12871
12872         debug_hexdump(stdout, "plaintext:", plaintext,
12873                 reference->plaintext.len);
12874
12875         /* Create operation */
12876         retval = create_auth_verify_GMAC_operation(ts_params,
12877                         ut_params,
12878                         reference);
12879
12880         if (retval < 0)
12881                 return retval;
12882
12883         if (data_corrupted)
12884                 data_corruption(plaintext);
12885         else
12886                 tag_corruption(plaintext, reference->aad.len);
12887
12888         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO) {
12889                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
12890                         ut_params->op);
12891                 TEST_ASSERT_NOT_EQUAL(ut_params->op->status,
12892                         RTE_CRYPTO_OP_STATUS_SUCCESS,
12893                         "authentication not failed");
12894         } else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
12895                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
12896                                 ut_params->op, 0, 1, 0, 0);
12897         else {
12898                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
12899                         ut_params->op);
12900                 TEST_ASSERT_NULL(ut_params->op, "authentication not failed");
12901         }
12902
12903         return 0;
12904 }
12905
12906 static int
12907 test_authenticated_decryption_fail_when_corruption(
12908                 struct crypto_testsuite_params *ts_params,
12909                 struct crypto_unittest_params *ut_params,
12910                 const struct test_crypto_vector *reference,
12911                 unsigned int data_corrupted)
12912 {
12913         int retval;
12914
12915         uint8_t *ciphertext;
12916         struct rte_cryptodev_info dev_info;
12917
12918         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
12919         uint64_t feat_flags = dev_info.feature_flags;
12920
12921         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
12922                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
12923                 printf("Device doesn't support RAW data-path APIs.\n");
12924                 return TEST_SKIPPED;
12925         }
12926
12927         /* Verify the capabilities */
12928         struct rte_cryptodev_sym_capability_idx cap_idx;
12929         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
12930         cap_idx.algo.auth = reference->auth_algo;
12931         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12932                         &cap_idx) == NULL)
12933                 return TEST_SKIPPED;
12934         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
12935         cap_idx.algo.cipher = reference->crypto_algo;
12936         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
12937                         &cap_idx) == NULL)
12938                 return TEST_SKIPPED;
12939
12940         /* Create session */
12941         retval = create_auth_cipher_session(ut_params,
12942                         ts_params->valid_devs[0],
12943                         reference,
12944                         RTE_CRYPTO_AUTH_OP_VERIFY,
12945                         RTE_CRYPTO_CIPHER_OP_DECRYPT);
12946         if (retval < 0)
12947                 return retval;
12948
12949         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
12950         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
12951                         "Failed to allocate input buffer in mempool");
12952
12953         /* clear mbuf payload */
12954         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
12955                         rte_pktmbuf_tailroom(ut_params->ibuf));
12956
12957         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
12958                         reference->ciphertext.len);
12959         TEST_ASSERT_NOT_NULL(ciphertext, "no room to append ciphertext");
12960         memcpy(ciphertext, reference->ciphertext.data,
12961                         reference->ciphertext.len);
12962
12963         /* Create operation */
12964         retval = create_cipher_auth_verify_operation(ts_params,
12965                         ut_params,
12966                         reference);
12967
12968         if (retval < 0)
12969                 return retval;
12970
12971         if (data_corrupted)
12972                 data_corruption(ciphertext);
12973         else
12974                 tag_corruption(ciphertext, reference->ciphertext.len);
12975
12976         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO) {
12977                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
12978                         ut_params->op);
12979                 TEST_ASSERT_NOT_EQUAL(ut_params->op->status,
12980                         RTE_CRYPTO_OP_STATUS_SUCCESS,
12981                         "authentication not failed");
12982         } else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
12983                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
12984                                 ut_params->op, 1, 1, 0, 0);
12985         else {
12986                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
12987                         ut_params->op);
12988                 TEST_ASSERT_NULL(ut_params->op, "authentication not failed");
12989         }
12990
12991         return 0;
12992 }
12993
12994 static int
12995 test_authenticated_encrypt_with_esn(
12996                 struct crypto_testsuite_params *ts_params,
12997                 struct crypto_unittest_params *ut_params,
12998                 const struct test_crypto_vector *reference)
12999 {
13000         int retval;
13001
13002         uint8_t *authciphertext, *plaintext, *auth_tag;
13003         uint16_t plaintext_pad_len;
13004         uint8_t cipher_key[reference->cipher_key.len + 1];
13005         uint8_t auth_key[reference->auth_key.len + 1];
13006         struct rte_cryptodev_info dev_info;
13007
13008         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
13009         uint64_t feat_flags = dev_info.feature_flags;
13010
13011         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
13012                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
13013                 printf("Device doesn't support RAW data-path APIs.\n");
13014                 return TEST_SKIPPED;
13015         }
13016
13017         /* Verify the capabilities */
13018         struct rte_cryptodev_sym_capability_idx cap_idx;
13019         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
13020         cap_idx.algo.auth = reference->auth_algo;
13021         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
13022                         &cap_idx) == NULL)
13023                 return TEST_SKIPPED;
13024         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
13025         cap_idx.algo.cipher = reference->crypto_algo;
13026         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
13027                         &cap_idx) == NULL)
13028                 return TEST_SKIPPED;
13029
13030         /* Create session */
13031         memcpy(cipher_key, reference->cipher_key.data,
13032                         reference->cipher_key.len);
13033         memcpy(auth_key, reference->auth_key.data, reference->auth_key.len);
13034
13035         /* Setup Cipher Parameters */
13036         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
13037         ut_params->cipher_xform.cipher.algo = reference->crypto_algo;
13038         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
13039         ut_params->cipher_xform.cipher.key.data = cipher_key;
13040         ut_params->cipher_xform.cipher.key.length = reference->cipher_key.len;
13041         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
13042         ut_params->cipher_xform.cipher.iv.length = reference->iv.len;
13043
13044         ut_params->cipher_xform.next = &ut_params->auth_xform;
13045
13046         /* Setup Authentication Parameters */
13047         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
13048         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE;
13049         ut_params->auth_xform.auth.algo = reference->auth_algo;
13050         ut_params->auth_xform.auth.key.length = reference->auth_key.len;
13051         ut_params->auth_xform.auth.key.data = auth_key;
13052         ut_params->auth_xform.auth.digest_length = reference->digest.len;
13053         ut_params->auth_xform.next = NULL;
13054
13055         /* Create Crypto session*/
13056         ut_params->sess = rte_cryptodev_sym_session_create(
13057                         ts_params->session_mpool);
13058
13059         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
13060                                 ut_params->sess,
13061                                 &ut_params->cipher_xform,
13062                                 ts_params->session_priv_mpool);
13063
13064         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
13065
13066         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
13067         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
13068                         "Failed to allocate input buffer in mempool");
13069
13070         /* clear mbuf payload */
13071         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
13072                         rte_pktmbuf_tailroom(ut_params->ibuf));
13073
13074         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
13075                         reference->plaintext.len);
13076         TEST_ASSERT_NOT_NULL(plaintext, "no room to append plaintext");
13077         memcpy(plaintext, reference->plaintext.data, reference->plaintext.len);
13078
13079         /* Create operation */
13080         retval = create_cipher_auth_operation(ts_params,
13081                         ut_params,
13082                         reference, 0);
13083
13084         if (retval < 0)
13085                 return retval;
13086
13087         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
13088                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
13089                         ut_params->op);
13090         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
13091                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
13092                                 ut_params->op, 1, 1, 0, 0);
13093         else
13094                 ut_params->op = process_crypto_request(
13095                         ts_params->valid_devs[0], ut_params->op);
13096
13097         TEST_ASSERT_NOT_NULL(ut_params->op, "no crypto operation returned");
13098
13099         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
13100                         "crypto op processing failed");
13101
13102         plaintext_pad_len = RTE_ALIGN_CEIL(reference->plaintext.len, 16);
13103
13104         authciphertext = rte_pktmbuf_mtod_offset(ut_params->ibuf, uint8_t *,
13105                         ut_params->op->sym->auth.data.offset);
13106         auth_tag = authciphertext + plaintext_pad_len;
13107         debug_hexdump(stdout, "ciphertext:", authciphertext,
13108                         reference->ciphertext.len);
13109         debug_hexdump(stdout, "auth tag:", auth_tag, reference->digest.len);
13110
13111         /* Validate obuf */
13112         TEST_ASSERT_BUFFERS_ARE_EQUAL(
13113                         authciphertext,
13114                         reference->ciphertext.data,
13115                         reference->ciphertext.len,
13116                         "Ciphertext data not as expected");
13117
13118         TEST_ASSERT_BUFFERS_ARE_EQUAL(
13119                         auth_tag,
13120                         reference->digest.data,
13121                         reference->digest.len,
13122                         "Generated digest not as expected");
13123
13124         return TEST_SUCCESS;
13125
13126 }
13127
13128 static int
13129 test_authenticated_decrypt_with_esn(
13130                 struct crypto_testsuite_params *ts_params,
13131                 struct crypto_unittest_params *ut_params,
13132                 const struct test_crypto_vector *reference)
13133 {
13134         int retval;
13135
13136         uint8_t *ciphertext;
13137         uint8_t cipher_key[reference->cipher_key.len + 1];
13138         uint8_t auth_key[reference->auth_key.len + 1];
13139         struct rte_cryptodev_info dev_info;
13140
13141         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
13142         uint64_t feat_flags = dev_info.feature_flags;
13143
13144         if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
13145                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
13146                 printf("Device doesn't support RAW data-path APIs.\n");
13147                 return TEST_SKIPPED;
13148         }
13149
13150         /* Verify the capabilities */
13151         struct rte_cryptodev_sym_capability_idx cap_idx;
13152         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AUTH;
13153         cap_idx.algo.auth = reference->auth_algo;
13154         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
13155                         &cap_idx) == NULL)
13156                 return TEST_SKIPPED;
13157         cap_idx.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
13158         cap_idx.algo.cipher = reference->crypto_algo;
13159         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
13160                         &cap_idx) == NULL)
13161                 return TEST_SKIPPED;
13162
13163         /* Create session */
13164         memcpy(cipher_key, reference->cipher_key.data,
13165                         reference->cipher_key.len);
13166         memcpy(auth_key, reference->auth_key.data, reference->auth_key.len);
13167
13168         /* Setup Authentication Parameters */
13169         ut_params->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
13170         ut_params->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_VERIFY;
13171         ut_params->auth_xform.auth.algo = reference->auth_algo;
13172         ut_params->auth_xform.auth.key.length = reference->auth_key.len;
13173         ut_params->auth_xform.auth.key.data = auth_key;
13174         ut_params->auth_xform.auth.digest_length = reference->digest.len;
13175         ut_params->auth_xform.next = &ut_params->cipher_xform;
13176
13177         /* Setup Cipher Parameters */
13178         ut_params->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
13179         ut_params->cipher_xform.next = NULL;
13180         ut_params->cipher_xform.cipher.algo = reference->crypto_algo;
13181         ut_params->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_DECRYPT;
13182         ut_params->cipher_xform.cipher.key.data = cipher_key;
13183         ut_params->cipher_xform.cipher.key.length = reference->cipher_key.len;
13184         ut_params->cipher_xform.cipher.iv.offset = IV_OFFSET;
13185         ut_params->cipher_xform.cipher.iv.length = reference->iv.len;
13186
13187         /* Create Crypto session*/
13188         ut_params->sess = rte_cryptodev_sym_session_create(
13189                         ts_params->session_mpool);
13190
13191         rte_cryptodev_sym_session_init(ts_params->valid_devs[0],
13192                                 ut_params->sess,
13193                                 &ut_params->auth_xform,
13194                                 ts_params->session_priv_mpool);
13195
13196         TEST_ASSERT_NOT_NULL(ut_params->sess, "Session creation failed");
13197
13198         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
13199         TEST_ASSERT_NOT_NULL(ut_params->ibuf,
13200                         "Failed to allocate input buffer in mempool");
13201
13202         /* clear mbuf payload */
13203         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
13204                         rte_pktmbuf_tailroom(ut_params->ibuf));
13205
13206         ciphertext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
13207                         reference->ciphertext.len);
13208         TEST_ASSERT_NOT_NULL(ciphertext, "no room to append ciphertext");
13209         memcpy(ciphertext, reference->ciphertext.data,
13210                         reference->ciphertext.len);
13211
13212         /* Create operation */
13213         retval = create_cipher_auth_verify_operation(ts_params,
13214                         ut_params,
13215                         reference);
13216
13217         if (retval < 0)
13218                 return retval;
13219
13220         if (gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
13221                 process_cpu_crypt_auth_op(ts_params->valid_devs[0],
13222                         ut_params->op);
13223         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
13224                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
13225                                 ut_params->op, 1, 1, 0, 0);
13226         else
13227                 ut_params->op = process_crypto_request(ts_params->valid_devs[0],
13228                         ut_params->op);
13229
13230         TEST_ASSERT_NOT_NULL(ut_params->op, "failed crypto process");
13231         TEST_ASSERT_EQUAL(ut_params->op->status,
13232                         RTE_CRYPTO_OP_STATUS_SUCCESS,
13233                         "crypto op processing passed");
13234
13235         ut_params->obuf = ut_params->op->sym->m_src;
13236         TEST_ASSERT_NOT_NULL(ut_params->obuf, "failed to retrieve obuf");
13237
13238         return 0;
13239 }
13240
13241 static int
13242 create_aead_operation_SGL(enum rte_crypto_aead_operation op,
13243                 const struct aead_test_data *tdata,
13244                 void *digest_mem, uint64_t digest_phys)
13245 {
13246         struct crypto_testsuite_params *ts_params = &testsuite_params;
13247         struct crypto_unittest_params *ut_params = &unittest_params;
13248
13249         const unsigned int auth_tag_len = tdata->auth_tag.len;
13250         const unsigned int iv_len = tdata->iv.len;
13251         unsigned int aad_len = tdata->aad.len;
13252         unsigned int aad_len_pad = 0;
13253
13254         /* Generate Crypto op data structure */
13255         ut_params->op = rte_crypto_op_alloc(ts_params->op_mpool,
13256                         RTE_CRYPTO_OP_TYPE_SYMMETRIC);
13257         TEST_ASSERT_NOT_NULL(ut_params->op,
13258                 "Failed to allocate symmetric crypto operation struct");
13259
13260         struct rte_crypto_sym_op *sym_op = ut_params->op->sym;
13261
13262         sym_op->aead.digest.data = digest_mem;
13263
13264         TEST_ASSERT_NOT_NULL(sym_op->aead.digest.data,
13265                         "no room to append digest");
13266
13267         sym_op->aead.digest.phys_addr = digest_phys;
13268
13269         if (op == RTE_CRYPTO_AEAD_OP_DECRYPT) {
13270                 rte_memcpy(sym_op->aead.digest.data, tdata->auth_tag.data,
13271                                 auth_tag_len);
13272                 debug_hexdump(stdout, "digest:",
13273                                 sym_op->aead.digest.data,
13274                                 auth_tag_len);
13275         }
13276
13277         /* Append aad data */
13278         if (tdata->algo == RTE_CRYPTO_AEAD_AES_CCM) {
13279                 uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
13280                                 uint8_t *, IV_OFFSET);
13281
13282                 /* Copy IV 1 byte after the IV pointer, according to the API */
13283                 rte_memcpy(iv_ptr + 1, tdata->iv.data, iv_len);
13284
13285                 aad_len = RTE_ALIGN_CEIL(aad_len + 18, 16);
13286
13287                 sym_op->aead.aad.data = (uint8_t *)rte_pktmbuf_prepend(
13288                                 ut_params->ibuf, aad_len);
13289                 TEST_ASSERT_NOT_NULL(sym_op->aead.aad.data,
13290                                 "no room to prepend aad");
13291                 sym_op->aead.aad.phys_addr = rte_pktmbuf_iova(
13292                                 ut_params->ibuf);
13293
13294                 memset(sym_op->aead.aad.data, 0, aad_len);
13295                 /* Copy AAD 18 bytes after the AAD pointer, according to the API */
13296                 rte_memcpy(sym_op->aead.aad.data, tdata->aad.data, aad_len);
13297
13298                 debug_hexdump(stdout, "iv:", iv_ptr, iv_len);
13299                 debug_hexdump(stdout, "aad:",
13300                                 sym_op->aead.aad.data, aad_len);
13301         } else {
13302                 uint8_t *iv_ptr = rte_crypto_op_ctod_offset(ut_params->op,
13303                                 uint8_t *, IV_OFFSET);
13304
13305                 rte_memcpy(iv_ptr, tdata->iv.data, iv_len);
13306
13307                 aad_len_pad = RTE_ALIGN_CEIL(aad_len, 16);
13308
13309                 sym_op->aead.aad.data = (uint8_t *)rte_pktmbuf_prepend(
13310                                 ut_params->ibuf, aad_len_pad);
13311                 TEST_ASSERT_NOT_NULL(sym_op->aead.aad.data,
13312                                 "no room to prepend aad");
13313                 sym_op->aead.aad.phys_addr = rte_pktmbuf_iova(
13314                                 ut_params->ibuf);
13315
13316                 memset(sym_op->aead.aad.data, 0, aad_len);
13317                 rte_memcpy(sym_op->aead.aad.data, tdata->aad.data, aad_len);
13318
13319                 debug_hexdump(stdout, "iv:", iv_ptr, iv_len);
13320                 debug_hexdump(stdout, "aad:",
13321                                 sym_op->aead.aad.data, aad_len);
13322         }
13323
13324         sym_op->aead.data.length = tdata->plaintext.len;
13325         sym_op->aead.data.offset = aad_len_pad;
13326
13327         return 0;
13328 }
13329
13330 #define SGL_MAX_NO      16
13331
13332 static int
13333 test_authenticated_encryption_SGL(const struct aead_test_data *tdata,
13334                 const int oop, uint32_t fragsz, uint32_t fragsz_oop)
13335 {
13336         struct crypto_testsuite_params *ts_params = &testsuite_params;
13337         struct crypto_unittest_params *ut_params = &unittest_params;
13338         struct rte_mbuf *buf, *buf_oop = NULL, *buf_last_oop = NULL;
13339         int retval;
13340         int to_trn = 0;
13341         int to_trn_tbl[SGL_MAX_NO];
13342         int segs = 1;
13343         unsigned int trn_data = 0;
13344         uint8_t *plaintext, *ciphertext, *auth_tag;
13345         struct rte_cryptodev_info dev_info;
13346
13347         /* Verify the capabilities */
13348         struct rte_cryptodev_sym_capability_idx cap_idx;
13349         cap_idx.type = RTE_CRYPTO_SYM_XFORM_AEAD;
13350         cap_idx.algo.aead = tdata->algo;
13351         if (rte_cryptodev_sym_capability_get(ts_params->valid_devs[0],
13352                         &cap_idx) == NULL)
13353                 return TEST_SKIPPED;
13354
13355         /* OOP not supported with CPU crypto */
13356         if (oop && gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
13357                 return TEST_SKIPPED;
13358
13359         /* Detailed check for the particular SGL support flag */
13360         rte_cryptodev_info_get(ts_params->valid_devs[0], &dev_info);
13361         if (!oop) {
13362                 unsigned int sgl_in = fragsz < tdata->plaintext.len;
13363                 if (sgl_in && (!(dev_info.feature_flags &
13364                                 RTE_CRYPTODEV_FF_IN_PLACE_SGL)))
13365                         return TEST_SKIPPED;
13366
13367                 uint64_t feat_flags = dev_info.feature_flags;
13368
13369                 if ((global_api_test_type == CRYPTODEV_RAW_API_TEST) &&
13370                         (!(feat_flags & RTE_CRYPTODEV_FF_SYM_RAW_DP))) {
13371                         printf("Device doesn't support RAW data-path APIs.\n");
13372                         return TEST_SKIPPED;
13373                 }
13374         } else {
13375                 unsigned int sgl_in = fragsz < tdata->plaintext.len;
13376                 unsigned int sgl_out = (fragsz_oop ? fragsz_oop : fragsz) <
13377                                 tdata->plaintext.len;
13378                 /* Raw data path API does not support OOP */
13379                 if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
13380                         return TEST_SKIPPED;
13381                 if (sgl_in && !sgl_out) {
13382                         if (!(dev_info.feature_flags &
13383                                         RTE_CRYPTODEV_FF_OOP_SGL_IN_LB_OUT))
13384                                 return TEST_SKIPPED;
13385                 } else if (!sgl_in && sgl_out) {
13386                         if (!(dev_info.feature_flags &
13387                                         RTE_CRYPTODEV_FF_OOP_LB_IN_SGL_OUT))
13388                                 return TEST_SKIPPED;
13389                 } else if (sgl_in && sgl_out) {
13390                         if (!(dev_info.feature_flags &
13391                                         RTE_CRYPTODEV_FF_OOP_SGL_IN_SGL_OUT))
13392                                 return TEST_SKIPPED;
13393                 }
13394         }
13395
13396         if (fragsz > tdata->plaintext.len)
13397                 fragsz = tdata->plaintext.len;
13398
13399         uint16_t plaintext_len = fragsz;
13400         uint16_t frag_size_oop = fragsz_oop ? fragsz_oop : fragsz;
13401
13402         if (fragsz_oop > tdata->plaintext.len)
13403                 frag_size_oop = tdata->plaintext.len;
13404
13405         int ecx = 0;
13406         void *digest_mem = NULL;
13407
13408         uint32_t prepend_len = RTE_ALIGN_CEIL(tdata->aad.len, 16);
13409
13410         if (tdata->plaintext.len % fragsz != 0) {
13411                 if (tdata->plaintext.len / fragsz + 1 > SGL_MAX_NO)
13412                         return 1;
13413         }       else {
13414                 if (tdata->plaintext.len / fragsz > SGL_MAX_NO)
13415                         return 1;
13416         }
13417
13418         /*
13419          * For out-op-place we need to alloc another mbuf
13420          */
13421         if (oop) {
13422                 ut_params->obuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
13423                 rte_pktmbuf_append(ut_params->obuf,
13424                                 frag_size_oop + prepend_len);
13425                 buf_oop = ut_params->obuf;
13426         }
13427
13428         /* Create AEAD session */
13429         retval = create_aead_session(ts_params->valid_devs[0],
13430                         tdata->algo,
13431                         RTE_CRYPTO_AEAD_OP_ENCRYPT,
13432                         tdata->key.data, tdata->key.len,
13433                         tdata->aad.len, tdata->auth_tag.len,
13434                         tdata->iv.len);
13435         if (retval < 0)
13436                 return retval;
13437
13438         ut_params->ibuf = rte_pktmbuf_alloc(ts_params->mbuf_pool);
13439
13440         /* clear mbuf payload */
13441         memset(rte_pktmbuf_mtod(ut_params->ibuf, uint8_t *), 0,
13442                         rte_pktmbuf_tailroom(ut_params->ibuf));
13443
13444         plaintext = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
13445                         plaintext_len);
13446
13447         memcpy(plaintext, tdata->plaintext.data, plaintext_len);
13448
13449         trn_data += plaintext_len;
13450
13451         buf = ut_params->ibuf;
13452
13453         /*
13454          * Loop until no more fragments
13455          */
13456
13457         while (trn_data < tdata->plaintext.len) {
13458                 ++segs;
13459                 to_trn = (tdata->plaintext.len - trn_data < fragsz) ?
13460                                 (tdata->plaintext.len - trn_data) : fragsz;
13461
13462                 to_trn_tbl[ecx++] = to_trn;
13463
13464                 buf->next = rte_pktmbuf_alloc(ts_params->mbuf_pool);
13465                 buf = buf->next;
13466
13467                 memset(rte_pktmbuf_mtod(buf, uint8_t *), 0,
13468                                 rte_pktmbuf_tailroom(buf));
13469
13470                 /* OOP */
13471                 if (oop && !fragsz_oop) {
13472                         buf_last_oop = buf_oop->next =
13473                                         rte_pktmbuf_alloc(ts_params->mbuf_pool);
13474                         buf_oop = buf_oop->next;
13475                         memset(rte_pktmbuf_mtod(buf_oop, uint8_t *),
13476                                         0, rte_pktmbuf_tailroom(buf_oop));
13477                         rte_pktmbuf_append(buf_oop, to_trn);
13478                 }
13479
13480                 plaintext = (uint8_t *)rte_pktmbuf_append(buf,
13481                                 to_trn);
13482
13483                 memcpy(plaintext, tdata->plaintext.data + trn_data,
13484                                 to_trn);
13485                 trn_data += to_trn;
13486                 if (trn_data  == tdata->plaintext.len) {
13487                         if (oop) {
13488                                 if (!fragsz_oop)
13489                                         digest_mem = rte_pktmbuf_append(buf_oop,
13490                                                 tdata->auth_tag.len);
13491                         } else
13492                                 digest_mem = (uint8_t *)rte_pktmbuf_append(buf,
13493                                         tdata->auth_tag.len);
13494                 }
13495         }
13496
13497         uint64_t digest_phys = 0;
13498
13499         ut_params->ibuf->nb_segs = segs;
13500
13501         segs = 1;
13502         if (fragsz_oop && oop) {
13503                 to_trn = 0;
13504                 ecx = 0;
13505
13506                 if (frag_size_oop == tdata->plaintext.len) {
13507                         digest_mem = rte_pktmbuf_append(ut_params->obuf,
13508                                 tdata->auth_tag.len);
13509
13510                         digest_phys = rte_pktmbuf_iova_offset(
13511                                         ut_params->obuf,
13512                                         tdata->plaintext.len + prepend_len);
13513                 }
13514
13515                 trn_data = frag_size_oop;
13516                 while (trn_data < tdata->plaintext.len) {
13517                         ++segs;
13518                         to_trn =
13519                                 (tdata->plaintext.len - trn_data <
13520                                                 frag_size_oop) ?
13521                                 (tdata->plaintext.len - trn_data) :
13522                                                 frag_size_oop;
13523
13524                         to_trn_tbl[ecx++] = to_trn;
13525
13526                         buf_last_oop = buf_oop->next =
13527                                         rte_pktmbuf_alloc(ts_params->mbuf_pool);
13528                         buf_oop = buf_oop->next;
13529                         memset(rte_pktmbuf_mtod(buf_oop, uint8_t *),
13530                                         0, rte_pktmbuf_tailroom(buf_oop));
13531                         rte_pktmbuf_append(buf_oop, to_trn);
13532
13533                         trn_data += to_trn;
13534
13535                         if (trn_data  == tdata->plaintext.len) {
13536                                 digest_mem = rte_pktmbuf_append(buf_oop,
13537                                         tdata->auth_tag.len);
13538                         }
13539                 }
13540
13541                 ut_params->obuf->nb_segs = segs;
13542         }
13543
13544         /*
13545          * Place digest at the end of the last buffer
13546          */
13547         if (!digest_phys)
13548                 digest_phys = rte_pktmbuf_iova(buf) + to_trn;
13549         if (oop && buf_last_oop)
13550                 digest_phys = rte_pktmbuf_iova(buf_last_oop) + to_trn;
13551
13552         if (!digest_mem && !oop) {
13553                 digest_mem = (uint8_t *)rte_pktmbuf_append(ut_params->ibuf,
13554                                 + tdata->auth_tag.len);
13555                 digest_phys = rte_pktmbuf_iova_offset(ut_params->ibuf,
13556                                 tdata->plaintext.len);
13557         }
13558
13559         /* Create AEAD operation */
13560         retval = create_aead_operation_SGL(RTE_CRYPTO_AEAD_OP_ENCRYPT,
13561                         tdata, digest_mem, digest_phys);
13562
13563         if (retval < 0)
13564                 return retval;
13565
13566         rte_crypto_op_attach_sym_session(ut_params->op, ut_params->sess);
13567
13568         ut_params->op->sym->m_src = ut_params->ibuf;
13569         if (oop)
13570                 ut_params->op->sym->m_dst = ut_params->obuf;
13571
13572         /* Process crypto operation */
13573         if (oop == IN_PLACE &&
13574                         gbl_action_type == RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO)
13575                 process_cpu_aead_op(ts_params->valid_devs[0], ut_params->op);
13576         else if (global_api_test_type == CRYPTODEV_RAW_API_TEST)
13577                 process_sym_raw_dp_op(ts_params->valid_devs[0], 0,
13578                                 ut_params->op, 0, 0, 0, 0);
13579         else
13580                 TEST_ASSERT_NOT_NULL(
13581                         process_crypto_request(ts_params->valid_devs[0],
13582                         ut_params->op), "failed to process sym crypto op");
13583
13584         TEST_ASSERT_EQUAL(ut_params->op->status, RTE_CRYPTO_OP_STATUS_SUCCESS,
13585                         "crypto op processing failed");
13586
13587
13588         ciphertext = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_src,
13589                         uint8_t *, prepend_len);
13590         if (oop) {
13591                 ciphertext = rte_pktmbuf_mtod_offset(ut_params->op->sym->m_dst,
13592                                 uint8_t *, prepend_len);
13593         }
13594
13595         if (fragsz_oop)
13596                 fragsz = fragsz_oop;
13597
13598         TEST_ASSERT_BUFFERS_ARE_EQUAL(
13599                         ciphertext,
13600                         tdata->ciphertext.data,
13601                         fragsz,
13602                         "Ciphertext data not as expected");
13603
13604         buf = ut_params->op->sym->m_src->next;
13605         if (oop)
13606                 buf = ut_params->op->sym->m_dst->next;
13607
13608         unsigned int off = fragsz;
13609
13610         ecx = 0;
13611         while (buf) {
13612                 ciphertext = rte_pktmbuf_mtod(buf,
13613                                 uint8_t *);
13614
13615                 TEST_ASSERT_BUFFERS_ARE_EQUAL(
13616                                 ciphertext,
13617                                 tdata->ciphertext.data + off,
13618                                 to_trn_tbl[ecx],
13619                                 "Ciphertext data not as expected");
13620
13621                 off += to_trn_tbl[ecx++];
13622                 buf = buf->next;
13623         }
13624
13625         auth_tag = digest_mem;
13626         TEST_ASSERT_BUFFERS_ARE_EQUAL(
13627                         auth_tag,
13628                         tdata->auth_tag.data,
13629                         tdata->auth_tag.len,
13630                         "Generated auth tag not as expected");
13631
13632         return 0;
13633 }
13634
13635 static int
13636 test_AES_GCM_auth_encrypt_SGL_out_of_place_400B_400B(void)
13637 {
13638         return test_authenticated_encryption_SGL(
13639                         &gcm_test_case_SGL_1, OUT_OF_PLACE, 400, 400);
13640 }
13641
13642 static int
13643 test_AES_GCM_auth_encrypt_SGL_out_of_place_1500B_2000B(void)
13644 {
13645         return test_authenticated_encryption_SGL(
13646                         &gcm_test_case_SGL_1, OUT_OF_PLACE, 1500, 2000);
13647 }
13648
13649 static int
13650 test_AES_GCM_auth_encrypt_SGL_out_of_place_400B_1seg(void)
13651 {
13652         return test_authenticated_encryption_SGL(
13653                         &gcm_test_case_8, OUT_OF_PLACE, 400,
13654                         gcm_test_case_8.plaintext.len);
13655 }
13656
13657 static int
13658 test_AES_GCM_auth_encrypt_SGL_in_place_1500B(void)
13659 {
13660         /* This test is not for OPENSSL PMD */
13661         if (gbl_driver_id == rte_cryptodev_driver_id_get(
13662                         RTE_STR(CRYPTODEV_NAME_OPENSSL_PMD)))
13663                 return TEST_SKIPPED;
13664
13665         return test_authenticated_encryption_SGL(
13666                         &gcm_test_case_SGL_1, IN_PLACE, 1500, 0);
13667 }
13668
13669 static int
13670 test_authentication_verify_fail_when_data_corrupted(
13671                 struct crypto_testsuite_params *ts_params,
13672                 struct crypto_unittest_params *ut_params,
13673                 const struct test_crypto_vector *reference)
13674 {
13675         return test_authentication_verify_fail_when_data_corruption(
13676                         ts_params, ut_params, reference, 1);
13677 }
13678
13679 static int
13680 test_authentication_verify_fail_when_tag_corrupted(
13681                 struct crypto_testsuite_params *ts_params,
13682                 struct crypto_unittest_params *ut_params,
13683                 const struct test_crypto_vector *reference)
13684 {
13685         return test_authentication_verify_fail_when_data_corruption(
13686                         ts_params, ut_params, reference, 0);
13687 }
13688
13689 static int
13690 test_authentication_verify_GMAC_fail_when_data_corrupted(
13691                 struct crypto_testsuite_params *ts_params,
13692                 struct crypto_unittest_params *ut_params,
13693                 const struct test_crypto_vector *reference)
13694 {
13695         return test_authentication_verify_GMAC_fail_when_corruption(
13696                         ts_params, ut_params, reference, 1);
13697 }
13698
13699 static int
13700 test_authentication_verify_GMAC_fail_when_tag_corrupted(
13701                 struct crypto_testsuite_params *ts_params,
13702                 struct crypto_unittest_params *ut_params,
13703                 const struct test_crypto_vector *reference)
13704 {
13705         return test_authentication_verify_GMAC_fail_when_corruption(
13706                         ts_params, ut_params, reference, 0);
13707 }
13708
13709 static int
13710 test_authenticated_decryption_fail_when_data_corrupted(
13711                 struct crypto_testsuite_params *ts_params,
13712                 struct crypto_unittest_params *ut_params,
13713                 const struct test_crypto_vector *reference)
13714 {
13715         return test_authenticated_decryption_fail_when_corruption(
13716                         ts_params, ut_params, reference, 1);
13717 }
13718
13719 static int
13720 test_authenticated_decryption_fail_when_tag_corrupted(
13721                 struct crypto_testsuite_params *ts_params,
13722                 struct crypto_unittest_params *ut_params,
13723                 const struct test_crypto_vector *reference)
13724 {
13725         return test_authenticated_decryption_fail_when_corruption(
13726                         ts_params, ut_params, reference, 0);
13727 }
13728
13729 static int
13730 authentication_verify_HMAC_SHA1_fail_data_corrupt(void)
13731 {
13732         return test_authentication_verify_fail_when_data_corrupted(
13733                         &testsuite_params, &unittest_params,
13734                         &hmac_sha1_test_crypto_vector);
13735 }
13736
13737 static int
13738 authentication_verify_HMAC_SHA1_fail_tag_corrupt(void)
13739 {
13740         return test_authentication_verify_fail_when_tag_corrupted(
13741                         &testsuite_params, &unittest_params,
13742                         &hmac_sha1_test_crypto_vector);
13743 }
13744
13745 static int
13746 authentication_verify_AES128_GMAC_fail_data_corrupt(void)
13747 {
13748         return test_authentication_verify_GMAC_fail_when_data_corrupted(
13749                         &testsuite_params, &unittest_params,
13750                         &aes128_gmac_test_vector);
13751 }
13752
13753 static int
13754 authentication_verify_AES128_GMAC_fail_tag_corrupt(void)
13755 {
13756         return test_authentication_verify_GMAC_fail_when_tag_corrupted(
13757                         &testsuite_params, &unittest_params,
13758                         &aes128_gmac_test_vector);
13759 }
13760
13761 static int
13762 auth_decryption_AES128CBC_HMAC_SHA1_fail_data_corrupt(void)
13763 {
13764         return test_authenticated_decryption_fail_when_data_corrupted(
13765                         &testsuite_params,
13766                         &unittest_params,
13767                         &aes128cbc_hmac_sha1_test_vector);
13768 }
13769
13770 static int
13771 auth_decryption_AES128CBC_HMAC_SHA1_fail_tag_corrupt(void)
13772 {
13773         return test_authenticated_decryption_fail_when_tag_corrupted(
13774                         &testsuite_params,
13775                         &unittest_params,
13776                         &aes128cbc_hmac_sha1_test_vector);
13777 }
13778
13779 static int
13780 auth_encrypt_AES128CBC_HMAC_SHA1_esn_check(void)
13781 {
13782         return test_authenticated_encrypt_with_esn(
13783                         &testsuite_params,
13784                         &unittest_params,
13785                         &aes128cbc_hmac_sha1_aad_test_vector);
13786 }
13787
13788 static int
13789 auth_decrypt_AES128CBC_HMAC_SHA1_esn_check(void)
13790 {
13791         return test_authenticated_decrypt_with_esn(
13792                         &testsuite_params,
13793                         &unittest_params,
13794                         &aes128cbc_hmac_sha1_aad_test_vector);
13795 }
13796
13797 static int
13798 test_chacha20_poly1305_encrypt_test_case_rfc8439(void)
13799 {
13800         return test_authenticated_encryption(&chacha20_poly1305_case_rfc8439);
13801 }
13802
13803 static int
13804 test_chacha20_poly1305_decrypt_test_case_rfc8439(void)
13805 {
13806         return test_authenticated_decryption(&chacha20_poly1305_case_rfc8439);
13807 }
13808
13809 #ifdef RTE_CRYPTO_SCHEDULER
13810
13811 /* global AESNI worker IDs for the scheduler test */
13812 uint8_t aesni_ids[2];
13813
13814 static int
13815 scheduler_testsuite_setup(void)
13816 {
13817         uint32_t i = 0;
13818         int32_t nb_devs, ret;
13819         char vdev_args[VDEV_ARGS_SIZE] = {""};
13820         char temp_str[VDEV_ARGS_SIZE] = {"mode=multi-core,"
13821                 "ordering=enable,name=cryptodev_test_scheduler,corelist="};
13822         uint16_t worker_core_count = 0;
13823         uint16_t socket_id = 0;
13824
13825         if (gbl_driver_id == rte_cryptodev_driver_id_get(
13826                         RTE_STR(CRYPTODEV_NAME_SCHEDULER_PMD))) {
13827
13828                 /* Identify the Worker Cores
13829                  * Use 2 worker cores for the device args
13830                  */
13831                 RTE_LCORE_FOREACH_WORKER(i) {
13832                         if (worker_core_count > 1)
13833                                 break;
13834                         snprintf(vdev_args, sizeof(vdev_args),
13835                                         "%s%d", temp_str, i);
13836                         strcpy(temp_str, vdev_args);
13837                         strlcat(temp_str, ";", sizeof(temp_str));
13838                         worker_core_count++;
13839                         socket_id = rte_lcore_to_socket_id(i);
13840                 }
13841                 if (worker_core_count != 2) {
13842                         RTE_LOG(ERR, USER1,
13843                                 "Cryptodev scheduler test require at least "
13844                                 "two worker cores to run. "
13845                                 "Please use the correct coremask.\n");
13846                         return TEST_FAILED;
13847                 }
13848                 strcpy(temp_str, vdev_args);
13849                 snprintf(vdev_args, sizeof(vdev_args), "%s,socket_id=%d",
13850                                 temp_str, socket_id);
13851                 RTE_LOG(DEBUG, USER1, "vdev_args: %s\n", vdev_args);
13852                 nb_devs = rte_cryptodev_device_count_by_driver(
13853                                 rte_cryptodev_driver_id_get(
13854                                 RTE_STR(CRYPTODEV_NAME_SCHEDULER_PMD)));
13855                 if (nb_devs < 1) {
13856                         ret = rte_vdev_init(
13857                                 RTE_STR(CRYPTODEV_NAME_SCHEDULER_PMD),
13858                                         vdev_args);
13859                         TEST_ASSERT(ret == 0,
13860                                 "Failed to create instance %u of pmd : %s",
13861                                 i, RTE_STR(CRYPTODEV_NAME_SCHEDULER_PMD));
13862                 }
13863         }
13864         return testsuite_setup();
13865 }
13866
13867 static int
13868 test_scheduler_attach_worker_op(void)
13869 {
13870         struct crypto_testsuite_params *ts_params = &testsuite_params;
13871         uint8_t sched_id = ts_params->valid_devs[0];
13872         uint32_t i, nb_devs_attached = 0;
13873         int ret;
13874         char vdev_name[32];
13875         unsigned int count = rte_cryptodev_count();
13876
13877         /* create 2 AESNI_MB vdevs on top of existing devices */
13878         for (i = count; i < count + 2; i++) {
13879                 snprintf(vdev_name, sizeof(vdev_name), "%s_%u",
13880                                 RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD),
13881                                 i);
13882                 ret = rte_vdev_init(vdev_name, NULL);
13883
13884                 TEST_ASSERT(ret == 0,
13885                         "Failed to create instance %u of"
13886                         " pmd : %s",
13887                         i, RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD));
13888
13889                 if (ret < 0) {
13890                         RTE_LOG(ERR, USER1,
13891                                 "Failed to create 2 AESNI MB PMDs.\n");
13892                         return TEST_SKIPPED;
13893                 }
13894         }
13895
13896         /* attach 2 AESNI_MB cdevs */
13897         for (i = count; i < count + 2; i++) {
13898                 struct rte_cryptodev_info info;
13899                 unsigned int session_size;
13900
13901                 rte_cryptodev_info_get(i, &info);
13902                 if (info.driver_id != rte_cryptodev_driver_id_get(
13903                                 RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD)))
13904                         continue;
13905
13906                 session_size = rte_cryptodev_sym_get_private_session_size(i);
13907                 /*
13908                  * Create the session mempool again, since now there are new devices
13909                  * to use the mempool.
13910                  */
13911                 if (ts_params->session_mpool) {
13912                         rte_mempool_free(ts_params->session_mpool);
13913                         ts_params->session_mpool = NULL;
13914                 }
13915                 if (ts_params->session_priv_mpool) {
13916                         rte_mempool_free(ts_params->session_priv_mpool);
13917                         ts_params->session_priv_mpool = NULL;
13918                 }
13919
13920                 if (info.sym.max_nb_sessions != 0 &&
13921                                 info.sym.max_nb_sessions < MAX_NB_SESSIONS) {
13922                         RTE_LOG(ERR, USER1,
13923                                         "Device does not support "
13924                                         "at least %u sessions\n",
13925                                         MAX_NB_SESSIONS);
13926                         return TEST_FAILED;
13927                 }
13928                 /*
13929                  * Create mempool with maximum number of sessions,
13930                  * to include the session headers
13931                  */
13932                 if (ts_params->session_mpool == NULL) {
13933                         ts_params->session_mpool =
13934                                 rte_cryptodev_sym_session_pool_create(
13935                                                 "test_sess_mp",
13936                                                 MAX_NB_SESSIONS, 0, 0, 0,
13937                                                 SOCKET_ID_ANY);
13938                         TEST_ASSERT_NOT_NULL(ts_params->session_mpool,
13939                                         "session mempool allocation failed");
13940                 }
13941
13942                 /*
13943                  * Create mempool with maximum number of sessions,
13944                  * to include device specific session private data
13945                  */
13946                 if (ts_params->session_priv_mpool == NULL) {
13947                         ts_params->session_priv_mpool = rte_mempool_create(
13948                                         "test_sess_mp_priv",
13949                                         MAX_NB_SESSIONS,
13950                                         session_size,
13951                                         0, 0, NULL, NULL, NULL,
13952                                         NULL, SOCKET_ID_ANY,
13953                                         0);
13954
13955                         TEST_ASSERT_NOT_NULL(ts_params->session_priv_mpool,
13956                                         "session mempool allocation failed");
13957                 }
13958
13959                 ts_params->qp_conf.mp_session = ts_params->session_mpool;
13960                 ts_params->qp_conf.mp_session_private =
13961                                 ts_params->session_priv_mpool;
13962
13963                 ret = rte_cryptodev_scheduler_worker_attach(sched_id,
13964                                 (uint8_t)i);
13965
13966                 TEST_ASSERT(ret == 0,
13967                         "Failed to attach device %u of pmd : %s", i,
13968                         RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD));
13969
13970                 aesni_ids[nb_devs_attached] = (uint8_t)i;
13971
13972                 nb_devs_attached++;
13973         }
13974
13975         return 0;
13976 }
13977
13978 static int
13979 test_scheduler_detach_worker_op(void)
13980 {
13981         struct crypto_testsuite_params *ts_params = &testsuite_params;
13982         uint8_t sched_id = ts_params->valid_devs[0];
13983         uint32_t i;
13984         int ret;
13985
13986         for (i = 0; i < 2; i++) {
13987                 ret = rte_cryptodev_scheduler_worker_detach(sched_id,
13988                                 aesni_ids[i]);
13989                 TEST_ASSERT(ret == 0,
13990                         "Failed to detach device %u", aesni_ids[i]);
13991         }
13992
13993         return 0;
13994 }
13995
13996 static int
13997 test_scheduler_mode_op(enum rte_cryptodev_scheduler_mode scheduler_mode)
13998 {
13999         struct crypto_testsuite_params *ts_params = &testsuite_params;
14000         uint8_t sched_id = ts_params->valid_devs[0];
14001         /* set mode */
14002         return rte_cryptodev_scheduler_mode_set(sched_id,
14003                 scheduler_mode);
14004 }
14005
14006 static int
14007 test_scheduler_mode_roundrobin_op(void)
14008 {
14009         TEST_ASSERT(test_scheduler_mode_op(CDEV_SCHED_MODE_ROUNDROBIN) ==
14010                         0, "Failed to set roundrobin mode");
14011         return 0;
14012
14013 }
14014
14015 static int
14016 test_scheduler_mode_multicore_op(void)
14017 {
14018         TEST_ASSERT(test_scheduler_mode_op(CDEV_SCHED_MODE_MULTICORE) ==
14019                         0, "Failed to set multicore mode");
14020
14021         return 0;
14022 }
14023
14024 static int
14025 test_scheduler_mode_failover_op(void)
14026 {
14027         TEST_ASSERT(test_scheduler_mode_op(CDEV_SCHED_MODE_FAILOVER) ==
14028                         0, "Failed to set failover mode");
14029
14030         return 0;
14031 }
14032
14033 static int
14034 test_scheduler_mode_pkt_size_distr_op(void)
14035 {
14036         TEST_ASSERT(test_scheduler_mode_op(CDEV_SCHED_MODE_PKT_SIZE_DISTR) ==
14037                         0, "Failed to set pktsize mode");
14038
14039         return 0;
14040 }
14041
14042 static int
14043 scheduler_multicore_testsuite_setup(void)
14044 {
14045         if (test_scheduler_attach_worker_op() < 0)
14046                 return TEST_SKIPPED;
14047         if (test_scheduler_mode_op(CDEV_SCHED_MODE_MULTICORE) < 0)
14048                 return TEST_SKIPPED;
14049         return 0;
14050 }
14051
14052 static int
14053 scheduler_roundrobin_testsuite_setup(void)
14054 {
14055         if (test_scheduler_attach_worker_op() < 0)
14056                 return TEST_SKIPPED;
14057         if (test_scheduler_mode_op(CDEV_SCHED_MODE_ROUNDROBIN) < 0)
14058                 return TEST_SKIPPED;
14059         return 0;
14060 }
14061
14062 static int
14063 scheduler_failover_testsuite_setup(void)
14064 {
14065         if (test_scheduler_attach_worker_op() < 0)
14066                 return TEST_SKIPPED;
14067         if (test_scheduler_mode_op(CDEV_SCHED_MODE_FAILOVER) < 0)
14068                 return TEST_SKIPPED;
14069         return 0;
14070 }
14071
14072 static int
14073 scheduler_pkt_size_distr_testsuite_setup(void)
14074 {
14075         if (test_scheduler_attach_worker_op() < 0)
14076                 return TEST_SKIPPED;
14077         if (test_scheduler_mode_op(CDEV_SCHED_MODE_PKT_SIZE_DISTR) < 0)
14078                 return TEST_SKIPPED;
14079         return 0;
14080 }
14081
14082 static void
14083 scheduler_mode_testsuite_teardown(void)
14084 {
14085         test_scheduler_detach_worker_op();
14086 }
14087
14088 #endif /* RTE_CRYPTO_SCHEDULER */
14089
14090 static struct unit_test_suite end_testsuite = {
14091         .suite_name = NULL,
14092         .setup = NULL,
14093         .teardown = NULL,
14094         .unit_test_suites = NULL
14095 };
14096
14097 #ifdef RTE_LIB_SECURITY
14098 static struct unit_test_suite ipsec_proto_testsuite  = {
14099         .suite_name = "IPsec Proto Unit Test Suite",
14100         .setup = ipsec_proto_testsuite_setup,
14101         .unit_test_cases = {
14102                 TEST_CASE_NAMED_WITH_DATA(
14103                         "Outbound known vector (ESP tunnel mode IPv4 AES-GCM 128)",
14104                         ut_setup_security, ut_teardown,
14105                         test_ipsec_proto_known_vec, &pkt_aes_128_gcm),
14106                 TEST_CASE_NAMED_WITH_DATA(
14107                         "Outbound known vector (ESP tunnel mode IPv4 AES-GCM 192)",
14108                         ut_setup_security, ut_teardown,
14109                         test_ipsec_proto_known_vec, &pkt_aes_192_gcm),
14110                 TEST_CASE_NAMED_WITH_DATA(
14111                         "Outbound known vector (ESP tunnel mode IPv4 AES-GCM 256)",
14112                         ut_setup_security, ut_teardown,
14113                         test_ipsec_proto_known_vec, &pkt_aes_256_gcm),
14114                 TEST_CASE_NAMED_WITH_DATA(
14115                         "Inbound known vector (ESP tunnel mode IPv4 AES-GCM 128)",
14116                         ut_setup_security, ut_teardown,
14117                         test_ipsec_proto_known_vec_inb, &pkt_aes_128_gcm),
14118                 TEST_CASE_NAMED_WITH_DATA(
14119                         "Inbound known vector (ESP tunnel mode IPv4 AES-GCM 192)",
14120                         ut_setup_security, ut_teardown,
14121                         test_ipsec_proto_known_vec_inb, &pkt_aes_192_gcm),
14122                 TEST_CASE_NAMED_WITH_DATA(
14123                         "Inbound known vector (ESP tunnel mode IPv4 AES-GCM 256)",
14124                         ut_setup_security, ut_teardown,
14125                         test_ipsec_proto_known_vec_inb, &pkt_aes_256_gcm),
14126                 TEST_CASE_NAMED_ST(
14127                         "Combined test alg list",
14128                         ut_setup_security, ut_teardown,
14129                         test_ipsec_proto_display_list),
14130                 TEST_CASE_NAMED_ST(
14131                         "IV generation",
14132                         ut_setup_security, ut_teardown,
14133                         test_ipsec_proto_iv_gen),
14134                 TEST_CASE_NAMED_ST(
14135                         "UDP encapsulation",
14136                         ut_setup_security, ut_teardown,
14137                         test_ipsec_proto_udp_encap),
14138                 TEST_CASE_NAMED_ST(
14139                         "Negative test: ICV corruption",
14140                         ut_setup_security, ut_teardown,
14141                         test_ipsec_proto_err_icv_corrupt),
14142                 TEST_CASES_END() /**< NULL terminate unit test array */
14143         }
14144 };
14145
14146 static struct unit_test_suite pdcp_proto_testsuite  = {
14147         .suite_name = "PDCP Proto Unit Test Suite",
14148         .setup = pdcp_proto_testsuite_setup,
14149         .unit_test_cases = {
14150                 TEST_CASE_ST(ut_setup_security, ut_teardown,
14151                         test_PDCP_PROTO_all),
14152                 TEST_CASES_END() /**< NULL terminate unit test array */
14153         }
14154 };
14155
14156 static struct unit_test_suite docsis_proto_testsuite  = {
14157         .suite_name = "Docsis Proto Unit Test Suite",
14158         .setup = docsis_proto_testsuite_setup,
14159         .unit_test_cases = {
14160                 TEST_CASE_ST(ut_setup_security, ut_teardown,
14161                         test_DOCSIS_PROTO_all),
14162                 TEST_CASES_END() /**< NULL terminate unit test array */
14163         }
14164 };
14165 #endif
14166
14167 static struct unit_test_suite cryptodev_gen_testsuite  = {
14168         .suite_name = "Crypto General Unit Test Suite",
14169         .setup = crypto_gen_testsuite_setup,
14170         .unit_test_cases = {
14171                 TEST_CASE_ST(ut_setup, ut_teardown,
14172                                 test_device_configure_invalid_dev_id),
14173                 TEST_CASE_ST(ut_setup, ut_teardown,
14174                                 test_queue_pair_descriptor_setup),
14175                 TEST_CASE_ST(ut_setup, ut_teardown,
14176                                 test_device_configure_invalid_queue_pair_ids),
14177                 TEST_CASE_ST(ut_setup, ut_teardown, test_stats),
14178                 TEST_CASE_ST(ut_setup, ut_teardown, test_enq_callback_setup),
14179                 TEST_CASE_ST(ut_setup, ut_teardown, test_deq_callback_setup),
14180                 TEST_CASES_END() /**< NULL terminate unit test array */
14181         }
14182 };
14183
14184 static struct unit_test_suite cryptodev_negative_hmac_sha1_testsuite = {
14185         .suite_name = "Negative HMAC SHA1 Unit Test Suite",
14186         .setup = negative_hmac_sha1_testsuite_setup,
14187         .unit_test_cases = {
14188                 /** Negative tests */
14189                 TEST_CASE_ST(ut_setup, ut_teardown,
14190                         authentication_verify_HMAC_SHA1_fail_data_corrupt),
14191                 TEST_CASE_ST(ut_setup, ut_teardown,
14192                         authentication_verify_HMAC_SHA1_fail_tag_corrupt),
14193                 TEST_CASE_ST(ut_setup, ut_teardown,
14194                         auth_decryption_AES128CBC_HMAC_SHA1_fail_data_corrupt),
14195                 TEST_CASE_ST(ut_setup, ut_teardown,
14196                         auth_decryption_AES128CBC_HMAC_SHA1_fail_tag_corrupt),
14197
14198                 TEST_CASES_END() /**< NULL terminate unit test array */
14199         }
14200 };
14201
14202 static struct unit_test_suite cryptodev_multi_session_testsuite = {
14203         .suite_name = "Multi Session Unit Test Suite",
14204         .setup = multi_session_testsuite_setup,
14205         .unit_test_cases = {
14206                 TEST_CASE_ST(ut_setup, ut_teardown, test_multi_session),
14207                 TEST_CASE_ST(ut_setup, ut_teardown,
14208                                 test_multi_session_random_usage),
14209
14210                 TEST_CASES_END() /**< NULL terminate unit test array */
14211         }
14212 };
14213
14214 static struct unit_test_suite cryptodev_null_testsuite  = {
14215         .suite_name = "NULL Test Suite",
14216         .setup = null_testsuite_setup,
14217         .unit_test_cases = {
14218                 TEST_CASE_ST(ut_setup, ut_teardown,
14219                         test_null_invalid_operation),
14220                 TEST_CASE_ST(ut_setup, ut_teardown, test_null_burst_operation),
14221                 TEST_CASES_END()
14222         }
14223 };
14224
14225 static struct unit_test_suite cryptodev_aes_ccm_auth_testsuite  = {
14226         .suite_name = "AES CCM Authenticated Test Suite",
14227         .setup = aes_ccm_auth_testsuite_setup,
14228         .unit_test_cases = {
14229                 /** AES CCM Authenticated Encryption 128 bits key*/
14230                 TEST_CASE_ST(ut_setup, ut_teardown,
14231                         test_AES_CCM_authenticated_encryption_test_case_128_1),
14232                 TEST_CASE_ST(ut_setup, ut_teardown,
14233                         test_AES_CCM_authenticated_encryption_test_case_128_2),
14234                 TEST_CASE_ST(ut_setup, ut_teardown,
14235                         test_AES_CCM_authenticated_encryption_test_case_128_3),
14236
14237                 /** AES CCM Authenticated Decryption 128 bits key*/
14238                 TEST_CASE_ST(ut_setup, ut_teardown,
14239                         test_AES_CCM_authenticated_decryption_test_case_128_1),
14240                 TEST_CASE_ST(ut_setup, ut_teardown,
14241                         test_AES_CCM_authenticated_decryption_test_case_128_2),
14242                 TEST_CASE_ST(ut_setup, ut_teardown,
14243                         test_AES_CCM_authenticated_decryption_test_case_128_3),
14244
14245                 /** AES CCM Authenticated Encryption 192 bits key */
14246                 TEST_CASE_ST(ut_setup, ut_teardown,
14247                         test_AES_CCM_authenticated_encryption_test_case_192_1),
14248                 TEST_CASE_ST(ut_setup, ut_teardown,
14249                         test_AES_CCM_authenticated_encryption_test_case_192_2),
14250                 TEST_CASE_ST(ut_setup, ut_teardown,
14251                         test_AES_CCM_authenticated_encryption_test_case_192_3),
14252
14253                 /** AES CCM Authenticated Decryption 192 bits key*/
14254                 TEST_CASE_ST(ut_setup, ut_teardown,
14255                         test_AES_CCM_authenticated_decryption_test_case_192_1),
14256                 TEST_CASE_ST(ut_setup, ut_teardown,
14257                         test_AES_CCM_authenticated_decryption_test_case_192_2),
14258                 TEST_CASE_ST(ut_setup, ut_teardown,
14259                         test_AES_CCM_authenticated_decryption_test_case_192_3),
14260
14261                 /** AES CCM Authenticated Encryption 256 bits key */
14262                 TEST_CASE_ST(ut_setup, ut_teardown,
14263                         test_AES_CCM_authenticated_encryption_test_case_256_1),
14264                 TEST_CASE_ST(ut_setup, ut_teardown,
14265                         test_AES_CCM_authenticated_encryption_test_case_256_2),
14266                 TEST_CASE_ST(ut_setup, ut_teardown,
14267                         test_AES_CCM_authenticated_encryption_test_case_256_3),
14268
14269                 /** AES CCM Authenticated Decryption 256 bits key*/
14270                 TEST_CASE_ST(ut_setup, ut_teardown,
14271                         test_AES_CCM_authenticated_decryption_test_case_256_1),
14272                 TEST_CASE_ST(ut_setup, ut_teardown,
14273                         test_AES_CCM_authenticated_decryption_test_case_256_2),
14274                 TEST_CASE_ST(ut_setup, ut_teardown,
14275                         test_AES_CCM_authenticated_decryption_test_case_256_3),
14276                 TEST_CASES_END()
14277         }
14278 };
14279
14280 static struct unit_test_suite cryptodev_aes_gcm_auth_testsuite  = {
14281         .suite_name = "AES GCM Authenticated Test Suite",
14282         .setup = aes_gcm_auth_testsuite_setup,
14283         .unit_test_cases = {
14284                 /** AES GCM Authenticated Encryption */
14285                 TEST_CASE_ST(ut_setup, ut_teardown,
14286                         test_AES_GCM_auth_encrypt_SGL_in_place_1500B),
14287                 TEST_CASE_ST(ut_setup, ut_teardown,
14288                         test_AES_GCM_auth_encrypt_SGL_out_of_place_400B_400B),
14289                 TEST_CASE_ST(ut_setup, ut_teardown,
14290                         test_AES_GCM_auth_encrypt_SGL_out_of_place_1500B_2000B),
14291                 TEST_CASE_ST(ut_setup, ut_teardown,
14292                         test_AES_GCM_auth_encrypt_SGL_out_of_place_400B_1seg),
14293                 TEST_CASE_ST(ut_setup, ut_teardown,
14294                         test_AES_GCM_authenticated_encryption_test_case_1),
14295                 TEST_CASE_ST(ut_setup, ut_teardown,
14296                         test_AES_GCM_authenticated_encryption_test_case_2),
14297                 TEST_CASE_ST(ut_setup, ut_teardown,
14298                         test_AES_GCM_authenticated_encryption_test_case_3),
14299                 TEST_CASE_ST(ut_setup, ut_teardown,
14300                         test_AES_GCM_authenticated_encryption_test_case_4),
14301                 TEST_CASE_ST(ut_setup, ut_teardown,
14302                         test_AES_GCM_authenticated_encryption_test_case_5),
14303                 TEST_CASE_ST(ut_setup, ut_teardown,
14304                         test_AES_GCM_authenticated_encryption_test_case_6),
14305                 TEST_CASE_ST(ut_setup, ut_teardown,
14306                         test_AES_GCM_authenticated_encryption_test_case_7),
14307                 TEST_CASE_ST(ut_setup, ut_teardown,
14308                         test_AES_GCM_authenticated_encryption_test_case_8),
14309                 TEST_CASE_ST(ut_setup, ut_teardown,
14310                         test_AES_GCM_J0_authenticated_encryption_test_case_1),
14311
14312                 /** AES GCM Authenticated Decryption */
14313                 TEST_CASE_ST(ut_setup, ut_teardown,
14314                         test_AES_GCM_authenticated_decryption_test_case_1),
14315                 TEST_CASE_ST(ut_setup, ut_teardown,
14316                         test_AES_GCM_authenticated_decryption_test_case_2),
14317                 TEST_CASE_ST(ut_setup, ut_teardown,
14318                         test_AES_GCM_authenticated_decryption_test_case_3),
14319                 TEST_CASE_ST(ut_setup, ut_teardown,
14320                         test_AES_GCM_authenticated_decryption_test_case_4),
14321                 TEST_CASE_ST(ut_setup, ut_teardown,
14322                         test_AES_GCM_authenticated_decryption_test_case_5),
14323                 TEST_CASE_ST(ut_setup, ut_teardown,
14324                         test_AES_GCM_authenticated_decryption_test_case_6),
14325                 TEST_CASE_ST(ut_setup, ut_teardown,
14326                         test_AES_GCM_authenticated_decryption_test_case_7),
14327                 TEST_CASE_ST(ut_setup, ut_teardown,
14328                         test_AES_GCM_authenticated_decryption_test_case_8),
14329                 TEST_CASE_ST(ut_setup, ut_teardown,
14330                         test_AES_GCM_J0_authenticated_decryption_test_case_1),
14331
14332                 /** AES GCM Authenticated Encryption 192 bits key */
14333                 TEST_CASE_ST(ut_setup, ut_teardown,
14334                         test_AES_GCM_auth_encryption_test_case_192_1),
14335                 TEST_CASE_ST(ut_setup, ut_teardown,
14336                         test_AES_GCM_auth_encryption_test_case_192_2),
14337                 TEST_CASE_ST(ut_setup, ut_teardown,
14338                         test_AES_GCM_auth_encryption_test_case_192_3),
14339                 TEST_CASE_ST(ut_setup, ut_teardown,
14340                         test_AES_GCM_auth_encryption_test_case_192_4),
14341                 TEST_CASE_ST(ut_setup, ut_teardown,
14342                         test_AES_GCM_auth_encryption_test_case_192_5),
14343                 TEST_CASE_ST(ut_setup, ut_teardown,
14344                         test_AES_GCM_auth_encryption_test_case_192_6),
14345                 TEST_CASE_ST(ut_setup, ut_teardown,
14346                         test_AES_GCM_auth_encryption_test_case_192_7),
14347
14348                 /** AES GCM Authenticated Decryption 192 bits key */
14349                 TEST_CASE_ST(ut_setup, ut_teardown,
14350                         test_AES_GCM_auth_decryption_test_case_192_1),
14351                 TEST_CASE_ST(ut_setup, ut_teardown,
14352                         test_AES_GCM_auth_decryption_test_case_192_2),
14353                 TEST_CASE_ST(ut_setup, ut_teardown,
14354                         test_AES_GCM_auth_decryption_test_case_192_3),
14355                 TEST_CASE_ST(ut_setup, ut_teardown,
14356                         test_AES_GCM_auth_decryption_test_case_192_4),
14357                 TEST_CASE_ST(ut_setup, ut_teardown,
14358                         test_AES_GCM_auth_decryption_test_case_192_5),
14359                 TEST_CASE_ST(ut_setup, ut_teardown,
14360                         test_AES_GCM_auth_decryption_test_case_192_6),
14361                 TEST_CASE_ST(ut_setup, ut_teardown,
14362                         test_AES_GCM_auth_decryption_test_case_192_7),
14363
14364                 /** AES GCM Authenticated Encryption 256 bits key */
14365                 TEST_CASE_ST(ut_setup, ut_teardown,
14366                         test_AES_GCM_auth_encryption_test_case_256_1),
14367                 TEST_CASE_ST(ut_setup, ut_teardown,
14368                         test_AES_GCM_auth_encryption_test_case_256_2),
14369                 TEST_CASE_ST(ut_setup, ut_teardown,
14370                         test_AES_GCM_auth_encryption_test_case_256_3),
14371                 TEST_CASE_ST(ut_setup, ut_teardown,
14372                         test_AES_GCM_auth_encryption_test_case_256_4),
14373                 TEST_CASE_ST(ut_setup, ut_teardown,
14374                         test_AES_GCM_auth_encryption_test_case_256_5),
14375                 TEST_CASE_ST(ut_setup, ut_teardown,
14376                         test_AES_GCM_auth_encryption_test_case_256_6),
14377                 TEST_CASE_ST(ut_setup, ut_teardown,
14378                         test_AES_GCM_auth_encryption_test_case_256_7),
14379
14380                 /** AES GCM Authenticated Decryption 256 bits key */
14381                 TEST_CASE_ST(ut_setup, ut_teardown,
14382                         test_AES_GCM_auth_decryption_test_case_256_1),
14383                 TEST_CASE_ST(ut_setup, ut_teardown,
14384                         test_AES_GCM_auth_decryption_test_case_256_2),
14385                 TEST_CASE_ST(ut_setup, ut_teardown,
14386                         test_AES_GCM_auth_decryption_test_case_256_3),
14387                 TEST_CASE_ST(ut_setup, ut_teardown,
14388                         test_AES_GCM_auth_decryption_test_case_256_4),
14389                 TEST_CASE_ST(ut_setup, ut_teardown,
14390                         test_AES_GCM_auth_decryption_test_case_256_5),
14391                 TEST_CASE_ST(ut_setup, ut_teardown,
14392                         test_AES_GCM_auth_decryption_test_case_256_6),
14393                 TEST_CASE_ST(ut_setup, ut_teardown,
14394                         test_AES_GCM_auth_decryption_test_case_256_7),
14395
14396                 /** AES GCM Authenticated Encryption big aad size */
14397                 TEST_CASE_ST(ut_setup, ut_teardown,
14398                         test_AES_GCM_auth_encryption_test_case_aad_1),
14399                 TEST_CASE_ST(ut_setup, ut_teardown,
14400                         test_AES_GCM_auth_encryption_test_case_aad_2),
14401
14402                 /** AES GCM Authenticated Decryption big aad size */
14403                 TEST_CASE_ST(ut_setup, ut_teardown,
14404                         test_AES_GCM_auth_decryption_test_case_aad_1),
14405                 TEST_CASE_ST(ut_setup, ut_teardown,
14406                         test_AES_GCM_auth_decryption_test_case_aad_2),
14407
14408                 /** Out of place tests */
14409                 TEST_CASE_ST(ut_setup, ut_teardown,
14410                         test_AES_GCM_authenticated_encryption_oop_test_case_1),
14411                 TEST_CASE_ST(ut_setup, ut_teardown,
14412                         test_AES_GCM_authenticated_decryption_oop_test_case_1),
14413
14414                 /** Session-less tests */
14415                 TEST_CASE_ST(ut_setup, ut_teardown,
14416                         test_AES_GCM_authenticated_encryption_sessionless_test_case_1),
14417                 TEST_CASE_ST(ut_setup, ut_teardown,
14418                         test_AES_GCM_authenticated_decryption_sessionless_test_case_1),
14419
14420                 TEST_CASES_END()
14421         }
14422 };
14423
14424 static struct unit_test_suite cryptodev_aes_gmac_auth_testsuite  = {
14425         .suite_name = "AES GMAC Authentication Test Suite",
14426         .setup = aes_gmac_auth_testsuite_setup,
14427         .unit_test_cases = {
14428                 TEST_CASE_ST(ut_setup, ut_teardown,
14429                         test_AES_GMAC_authentication_test_case_1),
14430                 TEST_CASE_ST(ut_setup, ut_teardown,
14431                         test_AES_GMAC_authentication_verify_test_case_1),
14432                 TEST_CASE_ST(ut_setup, ut_teardown,
14433                         test_AES_GMAC_authentication_test_case_2),
14434                 TEST_CASE_ST(ut_setup, ut_teardown,
14435                         test_AES_GMAC_authentication_verify_test_case_2),
14436                 TEST_CASE_ST(ut_setup, ut_teardown,
14437                         test_AES_GMAC_authentication_test_case_3),
14438                 TEST_CASE_ST(ut_setup, ut_teardown,
14439                         test_AES_GMAC_authentication_verify_test_case_3),
14440                 TEST_CASE_ST(ut_setup, ut_teardown,
14441                         test_AES_GMAC_authentication_test_case_4),
14442                 TEST_CASE_ST(ut_setup, ut_teardown,
14443                         test_AES_GMAC_authentication_verify_test_case_4),
14444                 TEST_CASE_ST(ut_setup, ut_teardown,
14445                         test_AES_GMAC_authentication_SGL_40B),
14446                 TEST_CASE_ST(ut_setup, ut_teardown,
14447                         test_AES_GMAC_authentication_SGL_80B),
14448                 TEST_CASE_ST(ut_setup, ut_teardown,
14449                         test_AES_GMAC_authentication_SGL_2048B),
14450                 TEST_CASE_ST(ut_setup, ut_teardown,
14451                         test_AES_GMAC_authentication_SGL_2047B),
14452
14453                 TEST_CASES_END()
14454         }
14455 };
14456
14457 static struct unit_test_suite cryptodev_chacha20_poly1305_testsuite  = {
14458         .suite_name = "Chacha20-Poly1305 Test Suite",
14459         .setup = chacha20_poly1305_testsuite_setup,
14460         .unit_test_cases = {
14461                 TEST_CASE_ST(ut_setup, ut_teardown,
14462                         test_chacha20_poly1305_encrypt_test_case_rfc8439),
14463                 TEST_CASE_ST(ut_setup, ut_teardown,
14464                         test_chacha20_poly1305_decrypt_test_case_rfc8439),
14465                 TEST_CASES_END()
14466         }
14467 };
14468
14469 static struct unit_test_suite cryptodev_snow3g_testsuite  = {
14470         .suite_name = "SNOW 3G Test Suite",
14471         .setup = snow3g_testsuite_setup,
14472         .unit_test_cases = {
14473                 /** SNOW 3G encrypt only (UEA2) */
14474                 TEST_CASE_ST(ut_setup, ut_teardown,
14475                         test_snow3g_encryption_test_case_1),
14476                 TEST_CASE_ST(ut_setup, ut_teardown,
14477                         test_snow3g_encryption_test_case_2),
14478                 TEST_CASE_ST(ut_setup, ut_teardown,
14479                         test_snow3g_encryption_test_case_3),
14480                 TEST_CASE_ST(ut_setup, ut_teardown,
14481                         test_snow3g_encryption_test_case_4),
14482                 TEST_CASE_ST(ut_setup, ut_teardown,
14483                         test_snow3g_encryption_test_case_5),
14484
14485                 TEST_CASE_ST(ut_setup, ut_teardown,
14486                         test_snow3g_encryption_test_case_1_oop),
14487                 TEST_CASE_ST(ut_setup, ut_teardown,
14488                         test_snow3g_encryption_test_case_1_oop_sgl),
14489                 TEST_CASE_ST(ut_setup, ut_teardown,
14490                         test_snow3g_encryption_test_case_1_offset_oop),
14491                 TEST_CASE_ST(ut_setup, ut_teardown,
14492                         test_snow3g_decryption_test_case_1_oop),
14493
14494                 /** SNOW 3G generate auth, then encrypt (UEA2) */
14495                 TEST_CASE_ST(ut_setup, ut_teardown,
14496                         test_snow3g_auth_cipher_test_case_1),
14497                 TEST_CASE_ST(ut_setup, ut_teardown,
14498                         test_snow3g_auth_cipher_test_case_2),
14499                 TEST_CASE_ST(ut_setup, ut_teardown,
14500                         test_snow3g_auth_cipher_test_case_2_oop),
14501                 TEST_CASE_ST(ut_setup, ut_teardown,
14502                         test_snow3g_auth_cipher_part_digest_enc),
14503                 TEST_CASE_ST(ut_setup, ut_teardown,
14504                         test_snow3g_auth_cipher_part_digest_enc_oop),
14505                 TEST_CASE_ST(ut_setup, ut_teardown,
14506                         test_snow3g_auth_cipher_test_case_3_sgl),
14507                 TEST_CASE_ST(ut_setup, ut_teardown,
14508                         test_snow3g_auth_cipher_test_case_3_oop_sgl),
14509                 TEST_CASE_ST(ut_setup, ut_teardown,
14510                         test_snow3g_auth_cipher_part_digest_enc_sgl),
14511                 TEST_CASE_ST(ut_setup, ut_teardown,
14512                         test_snow3g_auth_cipher_part_digest_enc_oop_sgl),
14513
14514                 /** SNOW 3G decrypt (UEA2), then verify auth */
14515                 TEST_CASE_ST(ut_setup, ut_teardown,
14516                         test_snow3g_auth_cipher_verify_test_case_1),
14517                 TEST_CASE_ST(ut_setup, ut_teardown,
14518                         test_snow3g_auth_cipher_verify_test_case_2),
14519                 TEST_CASE_ST(ut_setup, ut_teardown,
14520                         test_snow3g_auth_cipher_verify_test_case_2_oop),
14521                 TEST_CASE_ST(ut_setup, ut_teardown,
14522                         test_snow3g_auth_cipher_verify_part_digest_enc),
14523                 TEST_CASE_ST(ut_setup, ut_teardown,
14524                         test_snow3g_auth_cipher_verify_part_digest_enc_oop),
14525                 TEST_CASE_ST(ut_setup, ut_teardown,
14526                         test_snow3g_auth_cipher_verify_test_case_3_sgl),
14527                 TEST_CASE_ST(ut_setup, ut_teardown,
14528                         test_snow3g_auth_cipher_verify_test_case_3_oop_sgl),
14529                 TEST_CASE_ST(ut_setup, ut_teardown,
14530                         test_snow3g_auth_cipher_verify_part_digest_enc_sgl),
14531                 TEST_CASE_ST(ut_setup, ut_teardown,
14532                         test_snow3g_auth_cipher_verify_part_digest_enc_oop_sgl),
14533
14534                 /** SNOW 3G decrypt only (UEA2) */
14535                 TEST_CASE_ST(ut_setup, ut_teardown,
14536                         test_snow3g_decryption_test_case_1),
14537                 TEST_CASE_ST(ut_setup, ut_teardown,
14538                         test_snow3g_decryption_test_case_2),
14539                 TEST_CASE_ST(ut_setup, ut_teardown,
14540                         test_snow3g_decryption_test_case_3),
14541                 TEST_CASE_ST(ut_setup, ut_teardown,
14542                         test_snow3g_decryption_test_case_4),
14543                 TEST_CASE_ST(ut_setup, ut_teardown,
14544                         test_snow3g_decryption_test_case_5),
14545                 TEST_CASE_ST(ut_setup, ut_teardown,
14546                         test_snow3g_decryption_with_digest_test_case_1),
14547                 TEST_CASE_ST(ut_setup, ut_teardown,
14548                         test_snow3g_hash_generate_test_case_1),
14549                 TEST_CASE_ST(ut_setup, ut_teardown,
14550                         test_snow3g_hash_generate_test_case_2),
14551                 TEST_CASE_ST(ut_setup, ut_teardown,
14552                         test_snow3g_hash_generate_test_case_3),
14553
14554                 /* Tests with buffers which length is not byte-aligned */
14555                 TEST_CASE_ST(ut_setup, ut_teardown,
14556                         test_snow3g_hash_generate_test_case_4),
14557                 TEST_CASE_ST(ut_setup, ut_teardown,
14558                         test_snow3g_hash_generate_test_case_5),
14559                 TEST_CASE_ST(ut_setup, ut_teardown,
14560                         test_snow3g_hash_generate_test_case_6),
14561                 TEST_CASE_ST(ut_setup, ut_teardown,
14562                         test_snow3g_hash_verify_test_case_1),
14563                 TEST_CASE_ST(ut_setup, ut_teardown,
14564                         test_snow3g_hash_verify_test_case_2),
14565                 TEST_CASE_ST(ut_setup, ut_teardown,
14566                         test_snow3g_hash_verify_test_case_3),
14567
14568                 /* Tests with buffers which length is not byte-aligned */
14569                 TEST_CASE_ST(ut_setup, ut_teardown,
14570                         test_snow3g_hash_verify_test_case_4),
14571                 TEST_CASE_ST(ut_setup, ut_teardown,
14572                         test_snow3g_hash_verify_test_case_5),
14573                 TEST_CASE_ST(ut_setup, ut_teardown,
14574                         test_snow3g_hash_verify_test_case_6),
14575                 TEST_CASE_ST(ut_setup, ut_teardown,
14576                         test_snow3g_cipher_auth_test_case_1),
14577                 TEST_CASE_ST(ut_setup, ut_teardown,
14578                         test_snow3g_auth_cipher_with_digest_test_case_1),
14579                 TEST_CASES_END()
14580         }
14581 };
14582
14583 static struct unit_test_suite cryptodev_zuc_testsuite  = {
14584         .suite_name = "ZUC Test Suite",
14585         .setup = zuc_testsuite_setup,
14586         .unit_test_cases = {
14587                 /** ZUC encrypt only (EEA3) */
14588                 TEST_CASE_ST(ut_setup, ut_teardown,
14589                         test_zuc_encryption_test_case_1),
14590                 TEST_CASE_ST(ut_setup, ut_teardown,
14591                         test_zuc_encryption_test_case_2),
14592                 TEST_CASE_ST(ut_setup, ut_teardown,
14593                         test_zuc_encryption_test_case_3),
14594                 TEST_CASE_ST(ut_setup, ut_teardown,
14595                         test_zuc_encryption_test_case_4),
14596                 TEST_CASE_ST(ut_setup, ut_teardown,
14597                         test_zuc_encryption_test_case_5),
14598                 TEST_CASE_ST(ut_setup, ut_teardown,
14599                         test_zuc_encryption_test_case_6_sgl),
14600
14601                 /** ZUC authenticate (EIA3) */
14602                 TEST_CASE_ST(ut_setup, ut_teardown,
14603                         test_zuc_hash_generate_test_case_1),
14604                 TEST_CASE_ST(ut_setup, ut_teardown,
14605                         test_zuc_hash_generate_test_case_2),
14606                 TEST_CASE_ST(ut_setup, ut_teardown,
14607                         test_zuc_hash_generate_test_case_3),
14608                 TEST_CASE_ST(ut_setup, ut_teardown,
14609                         test_zuc_hash_generate_test_case_4),
14610                 TEST_CASE_ST(ut_setup, ut_teardown,
14611                         test_zuc_hash_generate_test_case_5),
14612                 TEST_CASE_ST(ut_setup, ut_teardown,
14613                         test_zuc_hash_generate_test_case_6),
14614                 TEST_CASE_ST(ut_setup, ut_teardown,
14615                         test_zuc_hash_generate_test_case_7),
14616                 TEST_CASE_ST(ut_setup, ut_teardown,
14617                         test_zuc_hash_generate_test_case_8),
14618
14619                 /** ZUC alg-chain (EEA3/EIA3) */
14620                 TEST_CASE_ST(ut_setup, ut_teardown,
14621                         test_zuc_cipher_auth_test_case_1),
14622                 TEST_CASE_ST(ut_setup, ut_teardown,
14623                         test_zuc_cipher_auth_test_case_2),
14624
14625                 /** ZUC generate auth, then encrypt (EEA3) */
14626                 TEST_CASE_ST(ut_setup, ut_teardown,
14627                         test_zuc_auth_cipher_test_case_1),
14628                 TEST_CASE_ST(ut_setup, ut_teardown,
14629                         test_zuc_auth_cipher_test_case_1_oop),
14630                 TEST_CASE_ST(ut_setup, ut_teardown,
14631                         test_zuc_auth_cipher_test_case_1_sgl),
14632                 TEST_CASE_ST(ut_setup, ut_teardown,
14633                         test_zuc_auth_cipher_test_case_1_oop_sgl),
14634
14635                 /** ZUC decrypt (EEA3), then verify auth */
14636                 TEST_CASE_ST(ut_setup, ut_teardown,
14637                         test_zuc_auth_cipher_verify_test_case_1),
14638                 TEST_CASE_ST(ut_setup, ut_teardown,
14639                         test_zuc_auth_cipher_verify_test_case_1_oop),
14640                 TEST_CASE_ST(ut_setup, ut_teardown,
14641                         test_zuc_auth_cipher_verify_test_case_1_sgl),
14642                 TEST_CASE_ST(ut_setup, ut_teardown,
14643                         test_zuc_auth_cipher_verify_test_case_1_oop_sgl),
14644                 TEST_CASES_END()
14645         }
14646 };
14647
14648 static struct unit_test_suite cryptodev_hmac_md5_auth_testsuite  = {
14649         .suite_name = "HMAC_MD5 Authentication Test Suite",
14650         .setup = hmac_md5_auth_testsuite_setup,
14651         .unit_test_cases = {
14652                 TEST_CASE_ST(ut_setup, ut_teardown,
14653                         test_MD5_HMAC_generate_case_1),
14654                 TEST_CASE_ST(ut_setup, ut_teardown,
14655                         test_MD5_HMAC_verify_case_1),
14656                 TEST_CASE_ST(ut_setup, ut_teardown,
14657                         test_MD5_HMAC_generate_case_2),
14658                 TEST_CASE_ST(ut_setup, ut_teardown,
14659                         test_MD5_HMAC_verify_case_2),
14660                 TEST_CASES_END()
14661         }
14662 };
14663
14664 static struct unit_test_suite cryptodev_kasumi_testsuite  = {
14665         .suite_name = "Kasumi Test Suite",
14666         .setup = kasumi_testsuite_setup,
14667         .unit_test_cases = {
14668                 /** KASUMI hash only (UIA1) */
14669                 TEST_CASE_ST(ut_setup, ut_teardown,
14670                         test_kasumi_hash_generate_test_case_1),
14671                 TEST_CASE_ST(ut_setup, ut_teardown,
14672                         test_kasumi_hash_generate_test_case_2),
14673                 TEST_CASE_ST(ut_setup, ut_teardown,
14674                         test_kasumi_hash_generate_test_case_3),
14675                 TEST_CASE_ST(ut_setup, ut_teardown,
14676                         test_kasumi_hash_generate_test_case_4),
14677                 TEST_CASE_ST(ut_setup, ut_teardown,
14678                         test_kasumi_hash_generate_test_case_5),
14679                 TEST_CASE_ST(ut_setup, ut_teardown,
14680                         test_kasumi_hash_generate_test_case_6),
14681
14682                 TEST_CASE_ST(ut_setup, ut_teardown,
14683                         test_kasumi_hash_verify_test_case_1),
14684                 TEST_CASE_ST(ut_setup, ut_teardown,
14685                         test_kasumi_hash_verify_test_case_2),
14686                 TEST_CASE_ST(ut_setup, ut_teardown,
14687                         test_kasumi_hash_verify_test_case_3),
14688                 TEST_CASE_ST(ut_setup, ut_teardown,
14689                         test_kasumi_hash_verify_test_case_4),
14690                 TEST_CASE_ST(ut_setup, ut_teardown,
14691                         test_kasumi_hash_verify_test_case_5),
14692
14693                 /** KASUMI encrypt only (UEA1) */
14694                 TEST_CASE_ST(ut_setup, ut_teardown,
14695                         test_kasumi_encryption_test_case_1),
14696                 TEST_CASE_ST(ut_setup, ut_teardown,
14697                         test_kasumi_encryption_test_case_1_sgl),
14698                 TEST_CASE_ST(ut_setup, ut_teardown,
14699                         test_kasumi_encryption_test_case_1_oop),
14700                 TEST_CASE_ST(ut_setup, ut_teardown,
14701                         test_kasumi_encryption_test_case_1_oop_sgl),
14702                 TEST_CASE_ST(ut_setup, ut_teardown,
14703                         test_kasumi_encryption_test_case_2),
14704                 TEST_CASE_ST(ut_setup, ut_teardown,
14705                         test_kasumi_encryption_test_case_3),
14706                 TEST_CASE_ST(ut_setup, ut_teardown,
14707                         test_kasumi_encryption_test_case_4),
14708                 TEST_CASE_ST(ut_setup, ut_teardown,
14709                         test_kasumi_encryption_test_case_5),
14710
14711                 /** KASUMI decrypt only (UEA1) */
14712                 TEST_CASE_ST(ut_setup, ut_teardown,
14713                         test_kasumi_decryption_test_case_1),
14714                 TEST_CASE_ST(ut_setup, ut_teardown,
14715                         test_kasumi_decryption_test_case_2),
14716                 TEST_CASE_ST(ut_setup, ut_teardown,
14717                         test_kasumi_decryption_test_case_3),
14718                 TEST_CASE_ST(ut_setup, ut_teardown,
14719                         test_kasumi_decryption_test_case_4),
14720                 TEST_CASE_ST(ut_setup, ut_teardown,
14721                         test_kasumi_decryption_test_case_5),
14722                 TEST_CASE_ST(ut_setup, ut_teardown,
14723                         test_kasumi_decryption_test_case_1_oop),
14724                 TEST_CASE_ST(ut_setup, ut_teardown,
14725                         test_kasumi_cipher_auth_test_case_1),
14726
14727                 /** KASUMI generate auth, then encrypt (F8) */
14728                 TEST_CASE_ST(ut_setup, ut_teardown,
14729                         test_kasumi_auth_cipher_test_case_1),
14730                 TEST_CASE_ST(ut_setup, ut_teardown,
14731                         test_kasumi_auth_cipher_test_case_2),
14732                 TEST_CASE_ST(ut_setup, ut_teardown,
14733                         test_kasumi_auth_cipher_test_case_2_oop),
14734                 TEST_CASE_ST(ut_setup, ut_teardown,
14735                         test_kasumi_auth_cipher_test_case_2_sgl),
14736                 TEST_CASE_ST(ut_setup, ut_teardown,
14737                         test_kasumi_auth_cipher_test_case_2_oop_sgl),
14738
14739                 /** KASUMI decrypt (F8), then verify auth */
14740                 TEST_CASE_ST(ut_setup, ut_teardown,
14741                         test_kasumi_auth_cipher_verify_test_case_1),
14742                 TEST_CASE_ST(ut_setup, ut_teardown,
14743                         test_kasumi_auth_cipher_verify_test_case_2),
14744                 TEST_CASE_ST(ut_setup, ut_teardown,
14745                         test_kasumi_auth_cipher_verify_test_case_2_oop),
14746                 TEST_CASE_ST(ut_setup, ut_teardown,
14747                         test_kasumi_auth_cipher_verify_test_case_2_sgl),
14748                 TEST_CASE_ST(ut_setup, ut_teardown,
14749                         test_kasumi_auth_cipher_verify_test_case_2_oop_sgl),
14750
14751                 TEST_CASES_END()
14752         }
14753 };
14754
14755 static struct unit_test_suite cryptodev_esn_testsuite  = {
14756         .suite_name = "ESN Test Suite",
14757         .setup = esn_testsuite_setup,
14758         .unit_test_cases = {
14759                 TEST_CASE_ST(ut_setup, ut_teardown,
14760                         auth_encrypt_AES128CBC_HMAC_SHA1_esn_check),
14761                 TEST_CASE_ST(ut_setup, ut_teardown,
14762                         auth_decrypt_AES128CBC_HMAC_SHA1_esn_check),
14763                 TEST_CASES_END()
14764         }
14765 };
14766
14767 static struct unit_test_suite cryptodev_negative_aes_gcm_testsuite  = {
14768         .suite_name = "Negative AES GCM Test Suite",
14769         .setup = negative_aes_gcm_testsuite_setup,
14770         .unit_test_cases = {
14771                 TEST_CASE_ST(ut_setup, ut_teardown,
14772                         test_AES_GCM_auth_encryption_fail_iv_corrupt),
14773                 TEST_CASE_ST(ut_setup, ut_teardown,
14774                         test_AES_GCM_auth_encryption_fail_in_data_corrupt),
14775                 TEST_CASE_ST(ut_setup, ut_teardown,
14776                         test_AES_GCM_auth_encryption_fail_out_data_corrupt),
14777                 TEST_CASE_ST(ut_setup, ut_teardown,
14778                         test_AES_GCM_auth_encryption_fail_aad_len_corrupt),
14779                 TEST_CASE_ST(ut_setup, ut_teardown,
14780                         test_AES_GCM_auth_encryption_fail_aad_corrupt),
14781                 TEST_CASE_ST(ut_setup, ut_teardown,
14782                         test_AES_GCM_auth_encryption_fail_tag_corrupt),
14783                 TEST_CASE_ST(ut_setup, ut_teardown,
14784                         test_AES_GCM_auth_decryption_fail_iv_corrupt),
14785                 TEST_CASE_ST(ut_setup, ut_teardown,
14786                         test_AES_GCM_auth_decryption_fail_in_data_corrupt),
14787                 TEST_CASE_ST(ut_setup, ut_teardown,
14788                         test_AES_GCM_auth_decryption_fail_out_data_corrupt),
14789                 TEST_CASE_ST(ut_setup, ut_teardown,
14790                         test_AES_GCM_auth_decryption_fail_aad_len_corrupt),
14791                 TEST_CASE_ST(ut_setup, ut_teardown,
14792                         test_AES_GCM_auth_decryption_fail_aad_corrupt),
14793                 TEST_CASE_ST(ut_setup, ut_teardown,
14794                         test_AES_GCM_auth_decryption_fail_tag_corrupt),
14795
14796                 TEST_CASES_END()
14797         }
14798 };
14799
14800 static struct unit_test_suite cryptodev_negative_aes_gmac_testsuite  = {
14801         .suite_name = "Negative AES GMAC Test Suite",
14802         .setup = negative_aes_gmac_testsuite_setup,
14803         .unit_test_cases = {
14804                 TEST_CASE_ST(ut_setup, ut_teardown,
14805                         authentication_verify_AES128_GMAC_fail_data_corrupt),
14806                 TEST_CASE_ST(ut_setup, ut_teardown,
14807                         authentication_verify_AES128_GMAC_fail_tag_corrupt),
14808
14809                 TEST_CASES_END()
14810         }
14811 };
14812
14813 static struct unit_test_suite cryptodev_mixed_cipher_hash_testsuite  = {
14814         .suite_name = "Mixed CIPHER + HASH algorithms Test Suite",
14815         .setup = mixed_cipher_hash_testsuite_setup,
14816         .unit_test_cases = {
14817                 /** AUTH AES CMAC + CIPHER AES CTR */
14818                 TEST_CASE_ST(ut_setup, ut_teardown,
14819                         test_aes_cmac_aes_ctr_digest_enc_test_case_1),
14820                 TEST_CASE_ST(ut_setup, ut_teardown,
14821                         test_aes_cmac_aes_ctr_digest_enc_test_case_1_oop),
14822                 TEST_CASE_ST(ut_setup, ut_teardown,
14823                         test_aes_cmac_aes_ctr_digest_enc_test_case_1_sgl),
14824                 TEST_CASE_ST(ut_setup, ut_teardown,
14825                         test_aes_cmac_aes_ctr_digest_enc_test_case_1_oop_sgl),
14826                 TEST_CASE_ST(ut_setup, ut_teardown,
14827                         test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1),
14828                 TEST_CASE_ST(ut_setup, ut_teardown,
14829                         test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_oop),
14830                 TEST_CASE_ST(ut_setup, ut_teardown,
14831                         test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_sgl),
14832                 TEST_CASE_ST(ut_setup, ut_teardown,
14833                         test_verify_aes_cmac_aes_ctr_digest_enc_test_case_1_oop_sgl),
14834
14835                 /** AUTH ZUC + CIPHER SNOW3G */
14836                 TEST_CASE_ST(ut_setup, ut_teardown,
14837                         test_auth_zuc_cipher_snow_test_case_1),
14838                 TEST_CASE_ST(ut_setup, ut_teardown,
14839                         test_verify_auth_zuc_cipher_snow_test_case_1),
14840                 /** AUTH AES CMAC + CIPHER SNOW3G */
14841                 TEST_CASE_ST(ut_setup, ut_teardown,
14842                         test_auth_aes_cmac_cipher_snow_test_case_1),
14843                 TEST_CASE_ST(ut_setup, ut_teardown,
14844                         test_verify_auth_aes_cmac_cipher_snow_test_case_1),
14845                 /** AUTH ZUC + CIPHER AES CTR */
14846                 TEST_CASE_ST(ut_setup, ut_teardown,
14847                         test_auth_zuc_cipher_aes_ctr_test_case_1),
14848                 TEST_CASE_ST(ut_setup, ut_teardown,
14849                         test_verify_auth_zuc_cipher_aes_ctr_test_case_1),
14850                 /** AUTH SNOW3G + CIPHER AES CTR */
14851                 TEST_CASE_ST(ut_setup, ut_teardown,
14852                         test_auth_snow_cipher_aes_ctr_test_case_1),
14853                 TEST_CASE_ST(ut_setup, ut_teardown,
14854                         test_verify_auth_snow_cipher_aes_ctr_test_case_1),
14855                 /** AUTH SNOW3G + CIPHER ZUC */
14856                 TEST_CASE_ST(ut_setup, ut_teardown,
14857                         test_auth_snow_cipher_zuc_test_case_1),
14858                 TEST_CASE_ST(ut_setup, ut_teardown,
14859                         test_verify_auth_snow_cipher_zuc_test_case_1),
14860                 /** AUTH AES CMAC + CIPHER ZUC */
14861                 TEST_CASE_ST(ut_setup, ut_teardown,
14862                         test_auth_aes_cmac_cipher_zuc_test_case_1),
14863                 TEST_CASE_ST(ut_setup, ut_teardown,
14864                         test_verify_auth_aes_cmac_cipher_zuc_test_case_1),
14865
14866                 /** AUTH NULL + CIPHER SNOW3G */
14867                 TEST_CASE_ST(ut_setup, ut_teardown,
14868                         test_auth_null_cipher_snow_test_case_1),
14869                 TEST_CASE_ST(ut_setup, ut_teardown,
14870                         test_verify_auth_null_cipher_snow_test_case_1),
14871                 /** AUTH NULL + CIPHER ZUC */
14872                 TEST_CASE_ST(ut_setup, ut_teardown,
14873                         test_auth_null_cipher_zuc_test_case_1),
14874                 TEST_CASE_ST(ut_setup, ut_teardown,
14875                         test_verify_auth_null_cipher_zuc_test_case_1),
14876                 /** AUTH SNOW3G + CIPHER NULL */
14877                 TEST_CASE_ST(ut_setup, ut_teardown,
14878                         test_auth_snow_cipher_null_test_case_1),
14879                 TEST_CASE_ST(ut_setup, ut_teardown,
14880                         test_verify_auth_snow_cipher_null_test_case_1),
14881                 /** AUTH ZUC + CIPHER NULL */
14882                 TEST_CASE_ST(ut_setup, ut_teardown,
14883                         test_auth_zuc_cipher_null_test_case_1),
14884                 TEST_CASE_ST(ut_setup, ut_teardown,
14885                         test_verify_auth_zuc_cipher_null_test_case_1),
14886                 /** AUTH NULL + CIPHER AES CTR */
14887                 TEST_CASE_ST(ut_setup, ut_teardown,
14888                         test_auth_null_cipher_aes_ctr_test_case_1),
14889                 TEST_CASE_ST(ut_setup, ut_teardown,
14890                         test_verify_auth_null_cipher_aes_ctr_test_case_1),
14891                 /** AUTH AES CMAC + CIPHER NULL */
14892                 TEST_CASE_ST(ut_setup, ut_teardown,
14893                         test_auth_aes_cmac_cipher_null_test_case_1),
14894                 TEST_CASE_ST(ut_setup, ut_teardown,
14895                         test_verify_auth_aes_cmac_cipher_null_test_case_1),
14896                 TEST_CASES_END()
14897         }
14898 };
14899
14900 static int
14901 run_cryptodev_testsuite(const char *pmd_name)
14902 {
14903         uint8_t ret, j, i = 0, blk_start_idx = 0;
14904         const enum blockcipher_test_type blk_suites[] = {
14905                 BLKCIPHER_AES_CHAIN_TYPE,
14906                 BLKCIPHER_AES_CIPHERONLY_TYPE,
14907                 BLKCIPHER_AES_DOCSIS_TYPE,
14908                 BLKCIPHER_3DES_CHAIN_TYPE,
14909                 BLKCIPHER_3DES_CIPHERONLY_TYPE,
14910                 BLKCIPHER_DES_CIPHERONLY_TYPE,
14911                 BLKCIPHER_DES_DOCSIS_TYPE,
14912                 BLKCIPHER_AUTHONLY_TYPE};
14913         struct unit_test_suite *static_suites[] = {
14914                 &cryptodev_multi_session_testsuite,
14915                 &cryptodev_null_testsuite,
14916                 &cryptodev_aes_ccm_auth_testsuite,
14917                 &cryptodev_aes_gcm_auth_testsuite,
14918                 &cryptodev_aes_gmac_auth_testsuite,
14919                 &cryptodev_snow3g_testsuite,
14920                 &cryptodev_chacha20_poly1305_testsuite,
14921                 &cryptodev_zuc_testsuite,
14922                 &cryptodev_hmac_md5_auth_testsuite,
14923                 &cryptodev_kasumi_testsuite,
14924                 &cryptodev_esn_testsuite,
14925                 &cryptodev_negative_aes_gcm_testsuite,
14926                 &cryptodev_negative_aes_gmac_testsuite,
14927                 &cryptodev_mixed_cipher_hash_testsuite,
14928                 &cryptodev_negative_hmac_sha1_testsuite,
14929                 &cryptodev_gen_testsuite,
14930 #ifdef RTE_LIB_SECURITY
14931                 &ipsec_proto_testsuite,
14932                 &pdcp_proto_testsuite,
14933                 &docsis_proto_testsuite,
14934 #endif
14935                 &end_testsuite
14936         };
14937         static struct unit_test_suite ts = {
14938                 .suite_name = "Cryptodev Unit Test Suite",
14939                 .setup = testsuite_setup,
14940                 .teardown = testsuite_teardown,
14941                 .unit_test_cases = {TEST_CASES_END()}
14942         };
14943
14944         gbl_driver_id = rte_cryptodev_driver_id_get(pmd_name);
14945
14946         if (gbl_driver_id == -1) {
14947                 RTE_LOG(ERR, USER1, "%s PMD must be loaded.\n", pmd_name);
14948                 return TEST_SKIPPED;
14949         }
14950
14951         ts.unit_test_suites = malloc(sizeof(struct unit_test_suite *) *
14952                         (RTE_DIM(blk_suites) + RTE_DIM(static_suites)));
14953
14954         ADD_BLOCKCIPHER_TESTSUITE(i, ts, blk_suites, RTE_DIM(blk_suites));
14955         ADD_STATIC_TESTSUITE(i, ts, static_suites, RTE_DIM(static_suites));
14956         ret = unit_test_suite_runner(&ts);
14957
14958         FREE_BLOCKCIPHER_TESTSUITE(blk_start_idx, ts, RTE_DIM(blk_suites));
14959         free(ts.unit_test_suites);
14960         return ret;
14961 }
14962
14963 static int
14964 require_feature_flag(const char *pmd_name, uint64_t flag, const char *flag_name)
14965 {
14966         struct rte_cryptodev_info dev_info;
14967         uint8_t i, nb_devs;
14968         int driver_id;
14969
14970         driver_id = rte_cryptodev_driver_id_get(pmd_name);
14971         if (driver_id == -1) {
14972                 RTE_LOG(WARNING, USER1, "%s PMD must be loaded.\n", pmd_name);
14973                 return TEST_SKIPPED;
14974         }
14975
14976         nb_devs = rte_cryptodev_count();
14977         if (nb_devs < 1) {
14978                 RTE_LOG(WARNING, USER1, "No crypto devices found?\n");
14979                 return TEST_SKIPPED;
14980         }
14981
14982         for (i = 0; i < nb_devs; i++) {
14983                 rte_cryptodev_info_get(i, &dev_info);
14984                 if (dev_info.driver_id == driver_id) {
14985                         if (!(dev_info.feature_flags & flag)) {
14986                                 RTE_LOG(INFO, USER1, "%s not supported\n",
14987                                                 flag_name);
14988                                 return TEST_SKIPPED;
14989                         }
14990                         return 0; /* found */
14991                 }
14992         }
14993
14994         RTE_LOG(INFO, USER1, "%s not supported\n", flag_name);
14995         return TEST_SKIPPED;
14996 }
14997
14998 static int
14999 test_cryptodev_qat(void)
15000 {
15001         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_QAT_SYM_PMD));
15002 }
15003
15004 static int
15005 test_cryptodev_virtio(void)
15006 {
15007         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_VIRTIO_PMD));
15008 }
15009
15010 static int
15011 test_cryptodev_aesni_mb(void)
15012 {
15013         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD));
15014 }
15015
15016 static int
15017 test_cryptodev_cpu_aesni_mb(void)
15018 {
15019         int32_t rc;
15020         enum rte_security_session_action_type at = gbl_action_type;
15021         gbl_action_type = RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO;
15022         rc = run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD));
15023         gbl_action_type = at;
15024         return rc;
15025 }
15026
15027 static int
15028 test_cryptodev_openssl(void)
15029 {
15030         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_OPENSSL_PMD));
15031 }
15032
15033 static int
15034 test_cryptodev_aesni_gcm(void)
15035 {
15036         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_AESNI_GCM_PMD));
15037 }
15038
15039 static int
15040 test_cryptodev_cpu_aesni_gcm(void)
15041 {
15042         int32_t rc;
15043         enum rte_security_session_action_type at = gbl_action_type;
15044         gbl_action_type = RTE_SECURITY_ACTION_TYPE_CPU_CRYPTO;
15045         rc  = run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_AESNI_GCM_PMD));
15046         gbl_action_type = at;
15047         return rc;
15048 }
15049
15050 static int
15051 test_cryptodev_mlx5(void)
15052 {
15053         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_MLX5_PMD));
15054 }
15055
15056 static int
15057 test_cryptodev_null(void)
15058 {
15059         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_NULL_PMD));
15060 }
15061
15062 static int
15063 test_cryptodev_sw_snow3g(void)
15064 {
15065         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_SNOW3G_PMD));
15066 }
15067
15068 static int
15069 test_cryptodev_sw_kasumi(void)
15070 {
15071         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_KASUMI_PMD));
15072 }
15073
15074 static int
15075 test_cryptodev_sw_zuc(void)
15076 {
15077         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_ZUC_PMD));
15078 }
15079
15080 static int
15081 test_cryptodev_armv8(void)
15082 {
15083         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_ARMV8_PMD));
15084 }
15085
15086 static int
15087 test_cryptodev_mrvl(void)
15088 {
15089         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_MVSAM_PMD));
15090 }
15091
15092 #ifdef RTE_CRYPTO_SCHEDULER
15093
15094 static int
15095 test_cryptodev_scheduler(void)
15096 {
15097         uint8_t ret, sched_i, j, i = 0, blk_start_idx = 0;
15098         const enum blockcipher_test_type blk_suites[] = {
15099                 BLKCIPHER_AES_CHAIN_TYPE,
15100                 BLKCIPHER_AES_CIPHERONLY_TYPE,
15101                 BLKCIPHER_AUTHONLY_TYPE
15102         };
15103         static struct unit_test_suite scheduler_multicore = {
15104                 .suite_name = "Scheduler Multicore Unit Test Suite",
15105                 .setup = scheduler_multicore_testsuite_setup,
15106                 .teardown = scheduler_mode_testsuite_teardown,
15107                 .unit_test_cases = {TEST_CASES_END()}
15108         };
15109         static struct unit_test_suite scheduler_round_robin = {
15110                 .suite_name = "Scheduler Round Robin Unit Test Suite",
15111                 .setup = scheduler_roundrobin_testsuite_setup,
15112                 .teardown = scheduler_mode_testsuite_teardown,
15113                 .unit_test_cases = {TEST_CASES_END()}
15114         };
15115         static struct unit_test_suite scheduler_failover = {
15116                 .suite_name = "Scheduler Failover Unit Test Suite",
15117                 .setup = scheduler_failover_testsuite_setup,
15118                 .teardown = scheduler_mode_testsuite_teardown,
15119                 .unit_test_cases = {TEST_CASES_END()}
15120         };
15121         static struct unit_test_suite scheduler_pkt_size_distr = {
15122                 .suite_name = "Scheduler Pkt Size Distr Unit Test Suite",
15123                 .setup = scheduler_pkt_size_distr_testsuite_setup,
15124                 .teardown = scheduler_mode_testsuite_teardown,
15125                 .unit_test_cases = {TEST_CASES_END()}
15126         };
15127         struct unit_test_suite *sched_mode_suites[] = {
15128                 &scheduler_multicore,
15129                 &scheduler_round_robin,
15130                 &scheduler_failover,
15131                 &scheduler_pkt_size_distr
15132         };
15133         static struct unit_test_suite scheduler_config = {
15134                 .suite_name = "Crypto Device Scheduler Config Unit Test Suite",
15135                 .unit_test_cases = {
15136                         TEST_CASE(test_scheduler_attach_worker_op),
15137                         TEST_CASE(test_scheduler_mode_multicore_op),
15138                         TEST_CASE(test_scheduler_mode_roundrobin_op),
15139                         TEST_CASE(test_scheduler_mode_failover_op),
15140                         TEST_CASE(test_scheduler_mode_pkt_size_distr_op),
15141                         TEST_CASE(test_scheduler_detach_worker_op),
15142
15143                         TEST_CASES_END() /**< NULL terminate array */
15144                 }
15145         };
15146         struct unit_test_suite *static_suites[] = {
15147                 &scheduler_config,
15148                 &end_testsuite
15149         };
15150         static struct unit_test_suite ts = {
15151                 .suite_name = "Scheduler Unit Test Suite",
15152                 .setup = scheduler_testsuite_setup,
15153                 .teardown = testsuite_teardown,
15154                 .unit_test_cases = {TEST_CASES_END()}
15155         };
15156
15157         gbl_driver_id = rte_cryptodev_driver_id_get(
15158                         RTE_STR(CRYPTODEV_NAME_SCHEDULER_PMD));
15159
15160         if (gbl_driver_id == -1) {
15161                 RTE_LOG(ERR, USER1, "SCHEDULER PMD must be loaded.\n");
15162                 return TEST_SKIPPED;
15163         }
15164
15165         if (rte_cryptodev_driver_id_get(
15166                                 RTE_STR(CRYPTODEV_NAME_AESNI_MB_PMD)) == -1) {
15167                 RTE_LOG(ERR, USER1, "AESNI MB PMD must be loaded.\n");
15168                 return TEST_SKIPPED;
15169         }
15170
15171         for (sched_i = 0; sched_i < RTE_DIM(sched_mode_suites); sched_i++) {
15172                 uint8_t blk_i = 0;
15173                 sched_mode_suites[sched_i]->unit_test_suites = malloc(sizeof
15174                                 (struct unit_test_suite *) *
15175                                 (RTE_DIM(blk_suites) + 1));
15176                 ADD_BLOCKCIPHER_TESTSUITE(blk_i, (*sched_mode_suites[sched_i]),
15177                                 blk_suites, RTE_DIM(blk_suites));
15178                 sched_mode_suites[sched_i]->unit_test_suites[blk_i] = &end_testsuite;
15179         }
15180
15181         ts.unit_test_suites = malloc(sizeof(struct unit_test_suite *) *
15182                         (RTE_DIM(static_suites) + RTE_DIM(sched_mode_suites)));
15183         ADD_STATIC_TESTSUITE(i, ts, sched_mode_suites,
15184                         RTE_DIM(sched_mode_suites));
15185         ADD_STATIC_TESTSUITE(i, ts, static_suites, RTE_DIM(static_suites));
15186         ret = unit_test_suite_runner(&ts);
15187
15188         for (sched_i = 0; sched_i < RTE_DIM(sched_mode_suites); sched_i++) {
15189                 FREE_BLOCKCIPHER_TESTSUITE(blk_start_idx,
15190                                 (*sched_mode_suites[sched_i]),
15191                                 RTE_DIM(blk_suites));
15192                 free(sched_mode_suites[sched_i]->unit_test_suites);
15193         }
15194         free(ts.unit_test_suites);
15195         return ret;
15196 }
15197
15198 REGISTER_TEST_COMMAND(cryptodev_scheduler_autotest, test_cryptodev_scheduler);
15199
15200 #endif
15201
15202 static int
15203 test_cryptodev_dpaa2_sec(void)
15204 {
15205         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_DPAA2_SEC_PMD));
15206 }
15207
15208 static int
15209 test_cryptodev_dpaa_sec(void)
15210 {
15211         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_DPAA_SEC_PMD));
15212 }
15213
15214 static int
15215 test_cryptodev_ccp(void)
15216 {
15217         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_CCP_PMD));
15218 }
15219
15220 static int
15221 test_cryptodev_octeontx(void)
15222 {
15223         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_OCTEONTX_SYM_PMD));
15224 }
15225
15226 static int
15227 test_cryptodev_octeontx2(void)
15228 {
15229         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_OCTEONTX2_PMD));
15230 }
15231
15232 static int
15233 test_cryptodev_caam_jr(void)
15234 {
15235         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_CAAM_JR_PMD));
15236 }
15237
15238 static int
15239 test_cryptodev_nitrox(void)
15240 {
15241         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_NITROX_PMD));
15242 }
15243
15244 static int
15245 test_cryptodev_bcmfs(void)
15246 {
15247         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_BCMFS_PMD));
15248 }
15249
15250 static int
15251 test_cryptodev_qat_raw_api(void)
15252 {
15253         static const char *pmd_name = RTE_STR(CRYPTODEV_NAME_QAT_SYM_PMD);
15254         int ret;
15255
15256         ret = require_feature_flag(pmd_name, RTE_CRYPTODEV_FF_SYM_RAW_DP,
15257                         "RAW API");
15258         if (ret)
15259                 return ret;
15260
15261         global_api_test_type = CRYPTODEV_RAW_API_TEST;
15262         ret = run_cryptodev_testsuite(pmd_name);
15263         global_api_test_type = CRYPTODEV_API_TEST;
15264
15265         return ret;
15266 }
15267
15268 static int
15269 test_cryptodev_cn9k(void)
15270 {
15271         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_CN9K_PMD));
15272 }
15273
15274 static int
15275 test_cryptodev_cn10k(void)
15276 {
15277         return run_cryptodev_testsuite(RTE_STR(CRYPTODEV_NAME_CN10K_PMD));
15278 }
15279
15280 REGISTER_TEST_COMMAND(cryptodev_qat_raw_api_autotest,
15281                 test_cryptodev_qat_raw_api);
15282 REGISTER_TEST_COMMAND(cryptodev_qat_autotest, test_cryptodev_qat);
15283 REGISTER_TEST_COMMAND(cryptodev_aesni_mb_autotest, test_cryptodev_aesni_mb);
15284 REGISTER_TEST_COMMAND(cryptodev_cpu_aesni_mb_autotest,
15285         test_cryptodev_cpu_aesni_mb);
15286 REGISTER_TEST_COMMAND(cryptodev_openssl_autotest, test_cryptodev_openssl);
15287 REGISTER_TEST_COMMAND(cryptodev_aesni_gcm_autotest, test_cryptodev_aesni_gcm);
15288 REGISTER_TEST_COMMAND(cryptodev_cpu_aesni_gcm_autotest,
15289         test_cryptodev_cpu_aesni_gcm);
15290 REGISTER_TEST_COMMAND(cryptodev_mlx5_autotest, test_cryptodev_mlx5);
15291 REGISTER_TEST_COMMAND(cryptodev_null_autotest, test_cryptodev_null);
15292 REGISTER_TEST_COMMAND(cryptodev_sw_snow3g_autotest, test_cryptodev_sw_snow3g);
15293 REGISTER_TEST_COMMAND(cryptodev_sw_kasumi_autotest, test_cryptodev_sw_kasumi);
15294 REGISTER_TEST_COMMAND(cryptodev_sw_zuc_autotest, test_cryptodev_sw_zuc);
15295 REGISTER_TEST_COMMAND(cryptodev_sw_armv8_autotest, test_cryptodev_armv8);
15296 REGISTER_TEST_COMMAND(cryptodev_sw_mvsam_autotest, test_cryptodev_mrvl);
15297 REGISTER_TEST_COMMAND(cryptodev_dpaa2_sec_autotest, test_cryptodev_dpaa2_sec);
15298 REGISTER_TEST_COMMAND(cryptodev_dpaa_sec_autotest, test_cryptodev_dpaa_sec);
15299 REGISTER_TEST_COMMAND(cryptodev_ccp_autotest, test_cryptodev_ccp);
15300 REGISTER_TEST_COMMAND(cryptodev_virtio_autotest, test_cryptodev_virtio);
15301 REGISTER_TEST_COMMAND(cryptodev_octeontx_autotest, test_cryptodev_octeontx);
15302 REGISTER_TEST_COMMAND(cryptodev_octeontx2_autotest, test_cryptodev_octeontx2);
15303 REGISTER_TEST_COMMAND(cryptodev_caam_jr_autotest, test_cryptodev_caam_jr);
15304 REGISTER_TEST_COMMAND(cryptodev_nitrox_autotest, test_cryptodev_nitrox);
15305 REGISTER_TEST_COMMAND(cryptodev_bcmfs_autotest, test_cryptodev_bcmfs);
15306 REGISTER_TEST_COMMAND(cryptodev_cn9k_autotest, test_cryptodev_cn9k);
15307 REGISTER_TEST_COMMAND(cryptodev_cn10k_autotest, test_cryptodev_cn10k);