ethdev: use constants for link state
[dpdk.git] / examples / l2fwd-crypto / main.c
1 /*-
2  *   BSD LICENSE
3  *
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33
34 #include <time.h>
35 #include <stdio.h>
36 #include <stdlib.h>
37 #include <string.h>
38 #include <stdint.h>
39 #include <inttypes.h>
40 #include <sys/types.h>
41 #include <sys/queue.h>
42 #include <netinet/in.h>
43 #include <setjmp.h>
44 #include <stdarg.h>
45 #include <ctype.h>
46 #include <errno.h>
47 #include <getopt.h>
48
49 #include <rte_atomic.h>
50 #include <rte_branch_prediction.h>
51 #include <rte_common.h>
52 #include <rte_cryptodev.h>
53 #include <rte_cycles.h>
54 #include <rte_debug.h>
55 #include <rte_eal.h>
56 #include <rte_ether.h>
57 #include <rte_ethdev.h>
58 #include <rte_interrupts.h>
59 #include <rte_ip.h>
60 #include <rte_launch.h>
61 #include <rte_lcore.h>
62 #include <rte_log.h>
63 #include <rte_malloc.h>
64 #include <rte_mbuf.h>
65 #include <rte_memcpy.h>
66 #include <rte_memory.h>
67 #include <rte_mempool.h>
68 #include <rte_memzone.h>
69 #include <rte_pci.h>
70 #include <rte_per_lcore.h>
71 #include <rte_prefetch.h>
72 #include <rte_random.h>
73 #include <rte_ring.h>
74 #include <rte_hexdump.h>
75
76 enum cdev_type {
77         CDEV_TYPE_ANY,
78         CDEV_TYPE_HW,
79         CDEV_TYPE_SW
80 };
81
82 #define RTE_LOGTYPE_L2FWD RTE_LOGTYPE_USER1
83
84 #define NB_MBUF   8192
85
86 #define MAX_STR_LEN 32
87 #define MAX_KEY_SIZE 128
88 #define MAX_PKT_BURST 32
89 #define BURST_TX_DRAIN_US 100 /* TX drain every ~100us */
90
91 /*
92  * Configurable number of RX/TX ring descriptors
93  */
94 #define RTE_TEST_RX_DESC_DEFAULT 128
95 #define RTE_TEST_TX_DESC_DEFAULT 512
96
97 static uint16_t nb_rxd = RTE_TEST_RX_DESC_DEFAULT;
98 static uint16_t nb_txd = RTE_TEST_TX_DESC_DEFAULT;
99
100 /* ethernet addresses of ports */
101 static struct ether_addr l2fwd_ports_eth_addr[RTE_MAX_ETHPORTS];
102
103 /* mask of enabled ports */
104 static uint64_t l2fwd_enabled_port_mask;
105 static uint64_t l2fwd_enabled_crypto_mask;
106
107 /* list of enabled ports */
108 static uint32_t l2fwd_dst_ports[RTE_MAX_ETHPORTS];
109
110
111 struct pkt_buffer {
112         unsigned len;
113         struct rte_mbuf *buffer[MAX_PKT_BURST];
114 };
115
116 struct op_buffer {
117         unsigned len;
118         struct rte_crypto_op *buffer[MAX_PKT_BURST];
119 };
120
121 #define MAX_RX_QUEUE_PER_LCORE 16
122 #define MAX_TX_QUEUE_PER_PORT 16
123
124 enum l2fwd_crypto_xform_chain {
125         L2FWD_CRYPTO_CIPHER_HASH,
126         L2FWD_CRYPTO_HASH_CIPHER,
127         L2FWD_CRYPTO_CIPHER_ONLY,
128         L2FWD_CRYPTO_HASH_ONLY
129 };
130
131 struct l2fwd_key {
132         uint8_t *data;
133         uint32_t length;
134         phys_addr_t phys_addr;
135 };
136
137 char supported_auth_algo[RTE_CRYPTO_AUTH_LIST_END][MAX_STR_LEN];
138 char supported_cipher_algo[RTE_CRYPTO_CIPHER_LIST_END][MAX_STR_LEN];
139
140 /** l2fwd crypto application command line options */
141 struct l2fwd_crypto_options {
142         unsigned portmask;
143         unsigned nb_ports_per_lcore;
144         unsigned refresh_period;
145         unsigned single_lcore:1;
146
147         enum cdev_type type;
148         unsigned sessionless:1;
149
150         enum l2fwd_crypto_xform_chain xform_chain;
151
152         struct rte_crypto_sym_xform cipher_xform;
153         unsigned ckey_param;
154         int ckey_random_size;
155
156         struct l2fwd_key iv;
157         unsigned iv_param;
158         int iv_random_size;
159
160         struct rte_crypto_sym_xform auth_xform;
161         uint8_t akey_param;
162         int akey_random_size;
163
164         struct l2fwd_key aad;
165         unsigned aad_param;
166         int aad_random_size;
167
168         int digest_size;
169
170         uint16_t block_size;
171         char string_type[MAX_STR_LEN];
172 };
173
174 /** l2fwd crypto lcore params */
175 struct l2fwd_crypto_params {
176         uint8_t dev_id;
177         uint8_t qp_id;
178
179         unsigned digest_length;
180         unsigned block_size;
181
182         struct l2fwd_key iv;
183         struct l2fwd_key aad;
184         struct rte_cryptodev_sym_session *session;
185
186         uint8_t do_cipher;
187         uint8_t do_hash;
188         uint8_t hash_verify;
189
190         enum rte_crypto_cipher_algorithm cipher_algo;
191         enum rte_crypto_auth_algorithm auth_algo;
192 };
193
194 /** lcore configuration */
195 struct lcore_queue_conf {
196         unsigned nb_rx_ports;
197         unsigned rx_port_list[MAX_RX_QUEUE_PER_LCORE];
198
199         unsigned nb_crypto_devs;
200         unsigned cryptodev_list[MAX_RX_QUEUE_PER_LCORE];
201
202         struct op_buffer op_buf[RTE_MAX_ETHPORTS];
203         struct pkt_buffer pkt_buf[RTE_MAX_ETHPORTS];
204 } __rte_cache_aligned;
205
206 struct lcore_queue_conf lcore_queue_conf[RTE_MAX_LCORE];
207
208 static const struct rte_eth_conf port_conf = {
209         .rxmode = {
210                 .mq_mode = ETH_MQ_RX_NONE,
211                 .max_rx_pkt_len = ETHER_MAX_LEN,
212                 .split_hdr_size = 0,
213                 .header_split   = 0, /**< Header Split disabled */
214                 .hw_ip_checksum = 0, /**< IP checksum offload disabled */
215                 .hw_vlan_filter = 0, /**< VLAN filtering disabled */
216                 .jumbo_frame    = 0, /**< Jumbo Frame Support disabled */
217                 .hw_strip_crc   = 0, /**< CRC stripped by hardware */
218         },
219         .txmode = {
220                 .mq_mode = ETH_MQ_TX_NONE,
221         },
222 };
223
224 struct rte_mempool *l2fwd_pktmbuf_pool;
225 struct rte_mempool *l2fwd_crypto_op_pool;
226
227 /* Per-port statistics struct */
228 struct l2fwd_port_statistics {
229         uint64_t tx;
230         uint64_t rx;
231
232         uint64_t crypto_enqueued;
233         uint64_t crypto_dequeued;
234
235         uint64_t dropped;
236 } __rte_cache_aligned;
237
238 struct l2fwd_crypto_statistics {
239         uint64_t enqueued;
240         uint64_t dequeued;
241
242         uint64_t errors;
243 } __rte_cache_aligned;
244
245 struct l2fwd_port_statistics port_statistics[RTE_MAX_ETHPORTS];
246 struct l2fwd_crypto_statistics crypto_statistics[RTE_MAX_ETHPORTS];
247
248 /* A tsc-based timer responsible for triggering statistics printout */
249 #define TIMER_MILLISECOND 2000000ULL /* around 1ms at 2 Ghz */
250 #define MAX_TIMER_PERIOD 86400UL /* 1 day max */
251
252 /* default period is 10 seconds */
253 static int64_t timer_period = 10 * TIMER_MILLISECOND * 1000;
254
255 /* Print out statistics on packets dropped */
256 static void
257 print_stats(void)
258 {
259         uint64_t total_packets_dropped, total_packets_tx, total_packets_rx;
260         uint64_t total_packets_enqueued, total_packets_dequeued,
261                 total_packets_errors;
262         unsigned portid;
263         uint64_t cdevid;
264
265         total_packets_dropped = 0;
266         total_packets_tx = 0;
267         total_packets_rx = 0;
268         total_packets_enqueued = 0;
269         total_packets_dequeued = 0;
270         total_packets_errors = 0;
271
272         const char clr[] = { 27, '[', '2', 'J', '\0' };
273         const char topLeft[] = { 27, '[', '1', ';', '1', 'H', '\0' };
274
275                 /* Clear screen and move to top left */
276         printf("%s%s", clr, topLeft);
277
278         printf("\nPort statistics ====================================");
279
280         for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) {
281                 /* skip disabled ports */
282                 if ((l2fwd_enabled_port_mask & (1 << portid)) == 0)
283                         continue;
284                 printf("\nStatistics for port %u ------------------------------"
285                            "\nPackets sent: %32"PRIu64
286                            "\nPackets received: %28"PRIu64
287                            "\nPackets dropped: %29"PRIu64,
288                            portid,
289                            port_statistics[portid].tx,
290                            port_statistics[portid].rx,
291                            port_statistics[portid].dropped);
292
293                 total_packets_dropped += port_statistics[portid].dropped;
294                 total_packets_tx += port_statistics[portid].tx;
295                 total_packets_rx += port_statistics[portid].rx;
296         }
297         printf("\nCrypto statistics ==================================");
298
299         for (cdevid = 0; cdevid < RTE_CRYPTO_MAX_DEVS; cdevid++) {
300                 /* skip disabled ports */
301                 if ((l2fwd_enabled_crypto_mask & (1lu << cdevid)) == 0)
302                         continue;
303                 printf("\nStatistics for cryptodev %"PRIu64
304                                 " -------------------------"
305                            "\nPackets enqueued: %28"PRIu64
306                            "\nPackets dequeued: %28"PRIu64
307                            "\nPackets errors: %30"PRIu64,
308                            cdevid,
309                            crypto_statistics[cdevid].enqueued,
310                            crypto_statistics[cdevid].dequeued,
311                            crypto_statistics[cdevid].errors);
312
313                 total_packets_enqueued += crypto_statistics[cdevid].enqueued;
314                 total_packets_dequeued += crypto_statistics[cdevid].dequeued;
315                 total_packets_errors += crypto_statistics[cdevid].errors;
316         }
317         printf("\nAggregate statistics ==============================="
318                    "\nTotal packets received: %22"PRIu64
319                    "\nTotal packets enqueued: %22"PRIu64
320                    "\nTotal packets dequeued: %22"PRIu64
321                    "\nTotal packets sent: %26"PRIu64
322                    "\nTotal packets dropped: %23"PRIu64
323                    "\nTotal packets crypto errors: %17"PRIu64,
324                    total_packets_rx,
325                    total_packets_enqueued,
326                    total_packets_dequeued,
327                    total_packets_tx,
328                    total_packets_dropped,
329                    total_packets_errors);
330         printf("\n====================================================\n");
331 }
332
333 static void
334 fill_supported_algorithm_tables(void)
335 {
336         unsigned i;
337
338         for (i = 0; i < RTE_CRYPTO_AUTH_LIST_END; i++)
339                 strcpy(supported_auth_algo[i], "NOT_SUPPORTED");
340
341         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_AES_GCM], "AES_GCM");
342         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_MD5_HMAC], "MD5_HMAC");
343         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_NULL], "NULL");
344         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SHA1_HMAC], "SHA1_HMAC");
345         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SHA224_HMAC], "SHA224_HMAC");
346         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SHA256_HMAC], "SHA256_HMAC");
347         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SHA384_HMAC], "SHA384_HMAC");
348         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SHA512_HMAC], "SHA512_HMAC");
349         strcpy(supported_auth_algo[RTE_CRYPTO_AUTH_SNOW3G_UIA2], "SNOW3G_UIA2");
350
351         for (i = 0; i < RTE_CRYPTO_CIPHER_LIST_END; i++)
352                 strcpy(supported_cipher_algo[i], "NOT_SUPPORTED");
353
354         strcpy(supported_cipher_algo[RTE_CRYPTO_CIPHER_AES_CBC], "AES_CBC");
355         strcpy(supported_cipher_algo[RTE_CRYPTO_CIPHER_AES_GCM], "AES_GCM");
356         strcpy(supported_cipher_algo[RTE_CRYPTO_CIPHER_NULL], "NULL");
357         strcpy(supported_cipher_algo[RTE_CRYPTO_CIPHER_SNOW3G_UEA2], "SNOW3G_UEA2");
358 }
359
360
361 static int
362 l2fwd_crypto_send_burst(struct lcore_queue_conf *qconf, unsigned n,
363                 struct l2fwd_crypto_params *cparams)
364 {
365         struct rte_crypto_op **op_buffer;
366         unsigned ret;
367
368         op_buffer = (struct rte_crypto_op **)
369                         qconf->op_buf[cparams->dev_id].buffer;
370
371         ret = rte_cryptodev_enqueue_burst(cparams->dev_id,
372                         cparams->qp_id, op_buffer, (uint16_t) n);
373
374         crypto_statistics[cparams->dev_id].enqueued += ret;
375         if (unlikely(ret < n)) {
376                 crypto_statistics[cparams->dev_id].errors += (n - ret);
377                 do {
378                         rte_pktmbuf_free(op_buffer[ret]->sym->m_src);
379                         rte_crypto_op_free(op_buffer[ret]);
380                 } while (++ret < n);
381         }
382
383         return 0;
384 }
385
386 static int
387 l2fwd_crypto_enqueue(struct rte_crypto_op *op,
388                 struct l2fwd_crypto_params *cparams)
389 {
390         unsigned lcore_id, len;
391         struct lcore_queue_conf *qconf;
392
393         lcore_id = rte_lcore_id();
394
395         qconf = &lcore_queue_conf[lcore_id];
396         len = qconf->op_buf[cparams->dev_id].len;
397         qconf->op_buf[cparams->dev_id].buffer[len] = op;
398         len++;
399
400         /* enough ops to be sent */
401         if (len == MAX_PKT_BURST) {
402                 l2fwd_crypto_send_burst(qconf, MAX_PKT_BURST, cparams);
403                 len = 0;
404         }
405
406         qconf->op_buf[cparams->dev_id].len = len;
407         return 0;
408 }
409
410 static int
411 l2fwd_simple_crypto_enqueue(struct rte_mbuf *m,
412                 struct rte_crypto_op *op,
413                 struct l2fwd_crypto_params *cparams)
414 {
415         struct ether_hdr *eth_hdr;
416         struct ipv4_hdr *ip_hdr;
417
418         unsigned ipdata_offset, pad_len, data_len;
419         char *padding;
420
421         eth_hdr = rte_pktmbuf_mtod(m, struct ether_hdr *);
422
423         if (eth_hdr->ether_type != rte_cpu_to_be_16(ETHER_TYPE_IPv4))
424                 return -1;
425
426         ipdata_offset = sizeof(struct ether_hdr);
427
428         ip_hdr = (struct ipv4_hdr *)(rte_pktmbuf_mtod(m, char *) +
429                         ipdata_offset);
430
431         ipdata_offset += (ip_hdr->version_ihl & IPV4_HDR_IHL_MASK)
432                         * IPV4_IHL_MULTIPLIER;
433
434
435         /* Zero pad data to be crypto'd so it is block aligned */
436         data_len  = rte_pktmbuf_data_len(m) - ipdata_offset;
437         pad_len = data_len % cparams->block_size ? cparams->block_size -
438                         (data_len % cparams->block_size) : 0;
439
440         if (pad_len) {
441                 padding = rte_pktmbuf_append(m, pad_len);
442                 if (unlikely(!padding))
443                         return -1;
444
445                 data_len += pad_len;
446                 memset(padding, 0, pad_len);
447         }
448
449         /* Set crypto operation data parameters */
450         rte_crypto_op_attach_sym_session(op, cparams->session);
451
452         if (cparams->do_hash) {
453                 if (!cparams->hash_verify) {
454                         /* Append space for digest to end of packet */
455                         op->sym->auth.digest.data = (uint8_t *)rte_pktmbuf_append(m,
456                                 cparams->digest_length);
457                 } else {
458                         op->sym->auth.digest.data = (uint8_t *)rte_pktmbuf_append(m,
459                                 cparams->digest_length);
460                 }
461
462                 op->sym->auth.digest.phys_addr = rte_pktmbuf_mtophys_offset(m,
463                                 rte_pktmbuf_pkt_len(m) - cparams->digest_length);
464                 op->sym->auth.digest.length = cparams->digest_length;
465
466                 /* For SNOW3G algorithms, offset/length must be in bits */
467                 if (cparams->auth_algo == RTE_CRYPTO_AUTH_SNOW3G_UIA2) {
468                         op->sym->auth.data.offset = ipdata_offset << 3;
469                         op->sym->auth.data.length = data_len << 3;
470                 } else {
471                         op->sym->auth.data.offset = ipdata_offset;
472                         op->sym->auth.data.length = data_len;
473                 }
474
475                 if (cparams->aad.length) {
476                         op->sym->auth.aad.data = cparams->aad.data;
477                         op->sym->auth.aad.phys_addr = cparams->aad.phys_addr;
478                         op->sym->auth.aad.length = cparams->aad.length;
479                 }
480         }
481
482         if (cparams->do_cipher) {
483                 op->sym->cipher.iv.data = cparams->iv.data;
484                 op->sym->cipher.iv.phys_addr = cparams->iv.phys_addr;
485                 op->sym->cipher.iv.length = cparams->iv.length;
486
487                 /* For SNOW3G algorithms, offset/length must be in bits */
488                 if (cparams->cipher_algo == RTE_CRYPTO_CIPHER_SNOW3G_UEA2) {
489                         op->sym->cipher.data.offset = ipdata_offset << 3;
490                         if (cparams->do_hash && cparams->hash_verify)
491                                 /* Do not cipher the hash tag */
492                                 op->sym->cipher.data.length = (data_len -
493                                         cparams->digest_length) << 3;
494                         else
495                                 op->sym->cipher.data.length = data_len << 3;
496
497                 } else {
498                         op->sym->cipher.data.offset = ipdata_offset;
499                         if (cparams->do_hash && cparams->hash_verify)
500                                 /* Do not cipher the hash tag */
501                                 op->sym->cipher.data.length = data_len -
502                                         cparams->digest_length;
503                         else
504                                 op->sym->cipher.data.length = data_len;
505                 }
506         }
507
508         op->sym->m_src = m;
509
510         return l2fwd_crypto_enqueue(op, cparams);
511 }
512
513
514 /* Send the burst of packets on an output interface */
515 static int
516 l2fwd_send_burst(struct lcore_queue_conf *qconf, unsigned n,
517                 uint8_t port)
518 {
519         struct rte_mbuf **pkt_buffer;
520         unsigned ret;
521
522         pkt_buffer = (struct rte_mbuf **)qconf->pkt_buf[port].buffer;
523
524         ret = rte_eth_tx_burst(port, 0, pkt_buffer, (uint16_t)n);
525         port_statistics[port].tx += ret;
526         if (unlikely(ret < n)) {
527                 port_statistics[port].dropped += (n - ret);
528                 do {
529                         rte_pktmbuf_free(pkt_buffer[ret]);
530                 } while (++ret < n);
531         }
532
533         return 0;
534 }
535
536 /* Enqueue packets for TX and prepare them to be sent */
537 static int
538 l2fwd_send_packet(struct rte_mbuf *m, uint8_t port)
539 {
540         unsigned lcore_id, len;
541         struct lcore_queue_conf *qconf;
542
543         lcore_id = rte_lcore_id();
544
545         qconf = &lcore_queue_conf[lcore_id];
546         len = qconf->pkt_buf[port].len;
547         qconf->pkt_buf[port].buffer[len] = m;
548         len++;
549
550         /* enough pkts to be sent */
551         if (unlikely(len == MAX_PKT_BURST)) {
552                 l2fwd_send_burst(qconf, MAX_PKT_BURST, port);
553                 len = 0;
554         }
555
556         qconf->pkt_buf[port].len = len;
557         return 0;
558 }
559
560 static void
561 l2fwd_simple_forward(struct rte_mbuf *m, unsigned portid)
562 {
563         struct ether_hdr *eth;
564         void *tmp;
565         unsigned dst_port;
566
567         dst_port = l2fwd_dst_ports[portid];
568         eth = rte_pktmbuf_mtod(m, struct ether_hdr *);
569
570         /* 02:00:00:00:00:xx */
571         tmp = &eth->d_addr.addr_bytes[0];
572         *((uint64_t *)tmp) = 0x000000000002 + ((uint64_t)dst_port << 40);
573
574         /* src addr */
575         ether_addr_copy(&l2fwd_ports_eth_addr[dst_port], &eth->s_addr);
576
577         l2fwd_send_packet(m, (uint8_t) dst_port);
578 }
579
580 /** Generate random key */
581 static void
582 generate_random_key(uint8_t *key, unsigned length)
583 {
584         unsigned i;
585
586         for (i = 0; i < length; i++)
587                 key[i] = rand() % 0xff;
588 }
589
590 static struct rte_cryptodev_sym_session *
591 initialize_crypto_session(struct l2fwd_crypto_options *options,
592                 uint8_t cdev_id)
593 {
594         struct rte_crypto_sym_xform *first_xform;
595
596         if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH) {
597                 first_xform = &options->cipher_xform;
598                 first_xform->next = &options->auth_xform;
599         } else if (options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER) {
600                 first_xform = &options->auth_xform;
601                 first_xform->next = &options->cipher_xform;
602         } else if (options->xform_chain == L2FWD_CRYPTO_CIPHER_ONLY) {
603                 first_xform = &options->cipher_xform;
604         } else {
605                 first_xform = &options->auth_xform;
606         }
607
608         /* Setup Cipher Parameters */
609         return rte_cryptodev_sym_session_create(cdev_id, first_xform);
610 }
611
612 static void
613 l2fwd_crypto_options_print(struct l2fwd_crypto_options *options);
614
615 /* main processing loop */
616 static void
617 l2fwd_main_loop(struct l2fwd_crypto_options *options)
618 {
619         struct rte_mbuf *m, *pkts_burst[MAX_PKT_BURST];
620         struct rte_crypto_op *ops_burst[MAX_PKT_BURST];
621
622         unsigned lcore_id = rte_lcore_id();
623         uint64_t prev_tsc = 0, diff_tsc, cur_tsc, timer_tsc = 0;
624         unsigned i, j, portid, nb_rx;
625         struct lcore_queue_conf *qconf = &lcore_queue_conf[lcore_id];
626         const uint64_t drain_tsc = (rte_get_tsc_hz() + US_PER_S - 1) /
627                         US_PER_S * BURST_TX_DRAIN_US;
628         struct l2fwd_crypto_params *cparams;
629         struct l2fwd_crypto_params port_cparams[qconf->nb_crypto_devs];
630
631         if (qconf->nb_rx_ports == 0) {
632                 RTE_LOG(INFO, L2FWD, "lcore %u has nothing to do\n", lcore_id);
633                 return;
634         }
635
636         RTE_LOG(INFO, L2FWD, "entering main loop on lcore %u\n", lcore_id);
637
638         for (i = 0; i < qconf->nb_rx_ports; i++) {
639
640                 portid = qconf->rx_port_list[i];
641                 RTE_LOG(INFO, L2FWD, " -- lcoreid=%u portid=%u\n", lcore_id,
642                         portid);
643         }
644
645         for (i = 0; i < qconf->nb_crypto_devs; i++) {
646                 port_cparams[i].do_cipher = 0;
647                 port_cparams[i].do_hash = 0;
648
649                 switch (options->xform_chain) {
650                 case L2FWD_CRYPTO_CIPHER_HASH:
651                 case L2FWD_CRYPTO_HASH_CIPHER:
652                         port_cparams[i].do_cipher = 1;
653                         port_cparams[i].do_hash = 1;
654                         break;
655                 case L2FWD_CRYPTO_HASH_ONLY:
656                         port_cparams[i].do_hash = 1;
657                         break;
658                 case L2FWD_CRYPTO_CIPHER_ONLY:
659                         port_cparams[i].do_cipher = 1;
660                         break;
661                 }
662
663                 port_cparams[i].dev_id = qconf->cryptodev_list[i];
664                 port_cparams[i].qp_id = 0;
665
666                 port_cparams[i].block_size = options->block_size;
667
668                 if (port_cparams[i].do_hash) {
669                         port_cparams[i].digest_length =
670                                         options->auth_xform.auth.digest_length;
671                         if (options->auth_xform.auth.add_auth_data_length) {
672                                 port_cparams[i].aad.data = options->aad.data;
673                                 port_cparams[i].aad.length =
674                                         options->auth_xform.auth.add_auth_data_length;
675                                 port_cparams[i].aad.phys_addr = options->aad.phys_addr;
676                                 if (!options->aad_param)
677                                         generate_random_key(port_cparams[i].aad.data,
678                                                 port_cparams[i].aad.length);
679
680                         }
681
682                         if (options->auth_xform.auth.op == RTE_CRYPTO_AUTH_OP_VERIFY)
683                                 port_cparams[i].hash_verify = 1;
684                         else
685                                 port_cparams[i].hash_verify = 0;
686
687                         port_cparams[i].auth_algo = options->auth_xform.auth.algo;
688                 }
689
690                 if (port_cparams[i].do_cipher) {
691                         port_cparams[i].iv.data = options->iv.data;
692                         port_cparams[i].iv.length = options->iv.length;
693                         port_cparams[i].iv.phys_addr = options->iv.phys_addr;
694                         if (!options->iv_param)
695                                 generate_random_key(port_cparams[i].iv.data,
696                                                 port_cparams[i].iv.length);
697
698                         port_cparams[i].cipher_algo = options->cipher_xform.cipher.algo;
699                 }
700
701                 port_cparams[i].session = initialize_crypto_session(options,
702                                 port_cparams[i].dev_id);
703
704                 if (port_cparams[i].session == NULL)
705                         return;
706                 RTE_LOG(INFO, L2FWD, " -- lcoreid=%u cryptoid=%u\n", lcore_id,
707                                 port_cparams[i].dev_id);
708         }
709
710         l2fwd_crypto_options_print(options);
711
712         /*
713          * Initialize previous tsc timestamp before the loop,
714          * to avoid showing the port statistics immediately,
715          * so user can see the crypto information.
716          */
717         prev_tsc = rte_rdtsc();
718         while (1) {
719
720                 cur_tsc = rte_rdtsc();
721
722                 /*
723                  * TX burst queue drain
724                  */
725                 diff_tsc = cur_tsc - prev_tsc;
726                 if (unlikely(diff_tsc > drain_tsc)) {
727                         for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) {
728                                 if (qconf->pkt_buf[portid].len == 0)
729                                         continue;
730                                 l2fwd_send_burst(&lcore_queue_conf[lcore_id],
731                                                  qconf->pkt_buf[portid].len,
732                                                  (uint8_t) portid);
733                                 qconf->pkt_buf[portid].len = 0;
734                         }
735
736                         /* if timer is enabled */
737                         if (timer_period > 0) {
738
739                                 /* advance the timer */
740                                 timer_tsc += diff_tsc;
741
742                                 /* if timer has reached its timeout */
743                                 if (unlikely(timer_tsc >=
744                                                 (uint64_t)timer_period)) {
745
746                                         /* do this only on master core */
747                                         if (lcore_id == rte_get_master_lcore()
748                                                 && options->refresh_period) {
749                                                 print_stats();
750                                                 timer_tsc = 0;
751                                         }
752                                 }
753                         }
754
755                         prev_tsc = cur_tsc;
756                 }
757
758                 /*
759                  * Read packet from RX queues
760                  */
761                 for (i = 0; i < qconf->nb_rx_ports; i++) {
762                         portid = qconf->rx_port_list[i];
763
764                         cparams = &port_cparams[i];
765
766                         nb_rx = rte_eth_rx_burst((uint8_t) portid, 0,
767                                                  pkts_burst, MAX_PKT_BURST);
768
769                         port_statistics[portid].rx += nb_rx;
770
771                         if (nb_rx) {
772                                 /*
773                                  * If we can't allocate a crypto_ops, then drop
774                                  * the rest of the burst and dequeue and
775                                  * process the packets to free offload structs
776                                  */
777                                 if (rte_crypto_op_bulk_alloc(
778                                                 l2fwd_crypto_op_pool,
779                                                 RTE_CRYPTO_OP_TYPE_SYMMETRIC,
780                                                 ops_burst, nb_rx) !=
781                                                                 nb_rx) {
782                                         for (j = 0; j < nb_rx; j++)
783                                                 rte_pktmbuf_free(pkts_burst[i]);
784
785                                         nb_rx = 0;
786                                 }
787
788                                 /* Enqueue packets from Crypto device*/
789                                 for (j = 0; j < nb_rx; j++) {
790                                         m = pkts_burst[j];
791
792                                         l2fwd_simple_crypto_enqueue(m,
793                                                         ops_burst[j], cparams);
794                                 }
795                         }
796
797                         /* Dequeue packets from Crypto device */
798                         do {
799                                 nb_rx = rte_cryptodev_dequeue_burst(
800                                                 cparams->dev_id, cparams->qp_id,
801                                                 ops_burst, MAX_PKT_BURST);
802
803                                 crypto_statistics[cparams->dev_id].dequeued +=
804                                                 nb_rx;
805
806                                 /* Forward crypto'd packets */
807                                 for (j = 0; j < nb_rx; j++) {
808                                         m = ops_burst[j]->sym->m_src;
809
810                                         rte_crypto_op_free(ops_burst[j]);
811                                         l2fwd_simple_forward(m, portid);
812                                 }
813                         } while (nb_rx == MAX_PKT_BURST);
814                 }
815         }
816 }
817
818 static int
819 l2fwd_launch_one_lcore(void *arg)
820 {
821         l2fwd_main_loop((struct l2fwd_crypto_options *)arg);
822         return 0;
823 }
824
825 /* Display command line arguments usage */
826 static void
827 l2fwd_crypto_usage(const char *prgname)
828 {
829         printf("%s [EAL options] --\n"
830                 "  -p PORTMASK: hexadecimal bitmask of ports to configure\n"
831                 "  -q NQ: number of queue (=ports) per lcore (default is 1)\n"
832                 "  -s manage all ports from single lcore\n"
833                 "  -T PERIOD: statistics will be refreshed each PERIOD seconds"
834                 " (0 to disable, 10 default, 86400 maximum)\n"
835
836                 "  --cdev_type HW / SW / ANY\n"
837                 "  --chain HASH_CIPHER / CIPHER_HASH\n"
838
839                 "  --cipher_algo ALGO\n"
840                 "  --cipher_op ENCRYPT / DECRYPT\n"
841                 "  --cipher_key KEY (bytes separated with \":\")\n"
842                 "  --cipher_key_random_size SIZE: size of cipher key when generated randomly\n"
843                 "  --iv IV (bytes separated with \":\")\n"
844                 "  --iv_random_size SIZE: size of IV when generated randomly\n"
845
846                 "  --auth_algo ALGO\n"
847                 "  --auth_op GENERATE / VERIFY\n"
848                 "  --auth_key KEY (bytes separated with \":\")\n"
849                 "  --auth_key_random_size SIZE: size of auth key when generated randomly\n"
850                 "  --aad AAD (bytes separated with \":\")\n"
851                 "  --aad_random_size SIZE: size of AAD when generated randomly\n"
852                 "  --digest_size SIZE: size of digest to be generated/verified\n"
853
854                 "  --sessionless\n",
855                prgname);
856 }
857
858 /** Parse crypto device type command line argument */
859 static int
860 parse_cryptodev_type(enum cdev_type *type, char *optarg)
861 {
862         if (strcmp("HW", optarg) == 0) {
863                 *type = CDEV_TYPE_HW;
864                 return 0;
865         } else if (strcmp("SW", optarg) == 0) {
866                 *type = CDEV_TYPE_SW;
867                 return 0;
868         } else if (strcmp("ANY", optarg) == 0) {
869                 *type = CDEV_TYPE_ANY;
870                 return 0;
871         }
872
873         return -1;
874 }
875
876 /** Parse crypto chain xform command line argument */
877 static int
878 parse_crypto_opt_chain(struct l2fwd_crypto_options *options, char *optarg)
879 {
880         if (strcmp("CIPHER_HASH", optarg) == 0) {
881                 options->xform_chain = L2FWD_CRYPTO_CIPHER_HASH;
882                 return 0;
883         } else if (strcmp("HASH_CIPHER", optarg) == 0) {
884                 options->xform_chain = L2FWD_CRYPTO_HASH_CIPHER;
885                 return 0;
886         } else if (strcmp("CIPHER_ONLY", optarg) == 0) {
887                 options->xform_chain = L2FWD_CRYPTO_CIPHER_ONLY;
888                 return 0;
889         } else if (strcmp("HASH_ONLY", optarg) == 0) {
890                 options->xform_chain = L2FWD_CRYPTO_HASH_ONLY;
891                 return 0;
892         }
893
894         return -1;
895 }
896
897 /** Parse crypto cipher algo option command line argument */
898 static int
899 parse_cipher_algo(enum rte_crypto_cipher_algorithm *algo, char *optarg)
900 {
901         unsigned i;
902
903         for (i = 0; i < RTE_CRYPTO_CIPHER_LIST_END; i++) {
904                 if (!strcmp(supported_cipher_algo[i], optarg)) {
905                         *algo = i;
906                         return 0;
907                 }
908         }
909
910         printf("Cipher algorithm  not supported!\n");
911         return -1;
912 }
913
914 /** Parse crypto cipher operation command line argument */
915 static int
916 parse_cipher_op(enum rte_crypto_cipher_operation *op, char *optarg)
917 {
918         if (strcmp("ENCRYPT", optarg) == 0) {
919                 *op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
920                 return 0;
921         } else if (strcmp("DECRYPT", optarg) == 0) {
922                 *op = RTE_CRYPTO_CIPHER_OP_DECRYPT;
923                 return 0;
924         }
925
926         printf("Cipher operation not supported!\n");
927         return -1;
928 }
929
930 /** Parse crypto key command line argument */
931 static int
932 parse_key(uint8_t *data, char *input_arg)
933 {
934         unsigned byte_count;
935         char *token;
936
937         for (byte_count = 0, token = strtok(input_arg, ":");
938                         (byte_count < MAX_KEY_SIZE) && (token != NULL);
939                         token = strtok(NULL, ":")) {
940
941                 int number = (int)strtol(token, NULL, 16);
942
943                 if (errno == EINVAL || errno == ERANGE || number > 0xFF)
944                         return -1;
945
946                 data[byte_count++] = (uint8_t)number;
947         }
948
949         return byte_count;
950 }
951
952 /** Parse size param*/
953 static int
954 parse_size(int *size, const char *q_arg)
955 {
956         char *end = NULL;
957         unsigned long n;
958
959         /* parse hexadecimal string */
960         n = strtoul(q_arg, &end, 10);
961         if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0'))
962                 n = 0;
963
964         if (n == 0) {
965                 printf("invalid size\n");
966                 return -1;
967         }
968
969         *size = n;
970         return 0;
971 }
972
973 /** Parse crypto cipher operation command line argument */
974 static int
975 parse_auth_algo(enum rte_crypto_auth_algorithm *algo, char *optarg)
976 {
977         unsigned i;
978
979         for (i = 0; i < RTE_CRYPTO_AUTH_LIST_END; i++) {
980                 if (!strcmp(supported_auth_algo[i], optarg)) {
981                         *algo = i;
982                         return 0;
983                 }
984         }
985
986         printf("Authentication algorithm specified not supported!\n");
987         return -1;
988 }
989
990 static int
991 parse_auth_op(enum rte_crypto_auth_operation *op, char *optarg)
992 {
993         if (strcmp("VERIFY", optarg) == 0) {
994                 *op = RTE_CRYPTO_AUTH_OP_VERIFY;
995                 return 0;
996         } else if (strcmp("GENERATE", optarg) == 0) {
997                 *op = RTE_CRYPTO_AUTH_OP_GENERATE;
998                 return 0;
999         }
1000
1001         printf("Authentication operation specified not supported!\n");
1002         return -1;
1003 }
1004
1005 /** Parse long options */
1006 static int
1007 l2fwd_crypto_parse_args_long_options(struct l2fwd_crypto_options *options,
1008                 struct option *lgopts, int option_index)
1009 {
1010         int retval;
1011
1012         if (strcmp(lgopts[option_index].name, "cdev_type") == 0) {
1013                 retval = parse_cryptodev_type(&options->type, optarg);
1014                 if (retval == 0)
1015                         strcpy(options->string_type, optarg);
1016                 return retval;
1017         }
1018
1019         else if (strcmp(lgopts[option_index].name, "chain") == 0)
1020                 return parse_crypto_opt_chain(options, optarg);
1021
1022         /* Cipher options */
1023         else if (strcmp(lgopts[option_index].name, "cipher_algo") == 0)
1024                 return parse_cipher_algo(&options->cipher_xform.cipher.algo,
1025                                 optarg);
1026
1027         else if (strcmp(lgopts[option_index].name, "cipher_op") == 0)
1028                 return parse_cipher_op(&options->cipher_xform.cipher.op,
1029                                 optarg);
1030
1031         else if (strcmp(lgopts[option_index].name, "cipher_key") == 0) {
1032                 options->ckey_param = 1;
1033                 options->cipher_xform.cipher.key.length =
1034                         parse_key(options->cipher_xform.cipher.key.data, optarg);
1035                 if (options->cipher_xform.cipher.key.length > 0)
1036                         return 0;
1037                 else
1038                         return -1;
1039         }
1040
1041         else if (strcmp(lgopts[option_index].name, "cipher_key_random_size") == 0)
1042                 return parse_size(&options->ckey_random_size, optarg);
1043
1044         else if (strcmp(lgopts[option_index].name, "iv") == 0) {
1045                 options->iv_param = 1;
1046                 options->iv.length =
1047                         parse_key(options->iv.data, optarg);
1048                 if (options->iv.length > 0)
1049                         return 0;
1050                 else
1051                         return -1;
1052         }
1053
1054         else if (strcmp(lgopts[option_index].name, "iv_random_size") == 0)
1055                 return parse_size(&options->iv_random_size, optarg);
1056
1057         /* Authentication options */
1058         else if (strcmp(lgopts[option_index].name, "auth_algo") == 0) {
1059                 return parse_auth_algo(&options->auth_xform.auth.algo,
1060                                 optarg);
1061         }
1062
1063         else if (strcmp(lgopts[option_index].name, "auth_op") == 0)
1064                 return parse_auth_op(&options->auth_xform.auth.op,
1065                                 optarg);
1066
1067         else if (strcmp(lgopts[option_index].name, "auth_key") == 0) {
1068                 options->akey_param = 1;
1069                 options->auth_xform.auth.key.length =
1070                         parse_key(options->auth_xform.auth.key.data, optarg);
1071                 if (options->auth_xform.auth.key.length > 0)
1072                         return 0;
1073                 else
1074                         return -1;
1075         }
1076
1077         else if (strcmp(lgopts[option_index].name, "auth_key_random_size") == 0) {
1078                 return parse_size(&options->akey_random_size, optarg);
1079         }
1080
1081         else if (strcmp(lgopts[option_index].name, "aad") == 0) {
1082                 options->aad_param = 1;
1083                 options->aad.length =
1084                         parse_key(options->aad.data, optarg);
1085                 if (options->aad.length > 0)
1086                         return 0;
1087                 else
1088                         return -1;
1089         }
1090
1091         else if (strcmp(lgopts[option_index].name, "aad_random_size") == 0) {
1092                 return parse_size(&options->aad_random_size, optarg);
1093         }
1094
1095         else if (strcmp(lgopts[option_index].name, "digest_size") == 0) {
1096                 return parse_size(&options->digest_size, optarg);
1097         }
1098
1099         else if (strcmp(lgopts[option_index].name, "sessionless") == 0) {
1100                 options->sessionless = 1;
1101                 return 0;
1102         }
1103
1104         return -1;
1105 }
1106
1107 /** Parse port mask */
1108 static int
1109 l2fwd_crypto_parse_portmask(struct l2fwd_crypto_options *options,
1110                 const char *q_arg)
1111 {
1112         char *end = NULL;
1113         unsigned long pm;
1114
1115         /* parse hexadecimal string */
1116         pm = strtoul(q_arg, &end, 16);
1117         if ((pm == '\0') || (end == NULL) || (*end != '\0'))
1118                 pm = 0;
1119
1120         options->portmask = pm;
1121         if (options->portmask == 0) {
1122                 printf("invalid portmask specified\n");
1123                 return -1;
1124         }
1125
1126         return pm;
1127 }
1128
1129 /** Parse number of queues */
1130 static int
1131 l2fwd_crypto_parse_nqueue(struct l2fwd_crypto_options *options,
1132                 const char *q_arg)
1133 {
1134         char *end = NULL;
1135         unsigned long n;
1136
1137         /* parse hexadecimal string */
1138         n = strtoul(q_arg, &end, 10);
1139         if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0'))
1140                 n = 0;
1141         else if (n >= MAX_RX_QUEUE_PER_LCORE)
1142                 n = 0;
1143
1144         options->nb_ports_per_lcore = n;
1145         if (options->nb_ports_per_lcore == 0) {
1146                 printf("invalid number of ports selected\n");
1147                 return -1;
1148         }
1149
1150         return 0;
1151 }
1152
1153 /** Parse timer period */
1154 static int
1155 l2fwd_crypto_parse_timer_period(struct l2fwd_crypto_options *options,
1156                 const char *q_arg)
1157 {
1158         char *end = NULL;
1159         unsigned long n;
1160
1161         /* parse number string */
1162         n = (unsigned)strtol(q_arg, &end, 10);
1163         if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0'))
1164                 n = 0;
1165
1166         if (n >= MAX_TIMER_PERIOD) {
1167                 printf("Warning refresh period specified %lu is greater than "
1168                                 "max value %lu! using max value",
1169                                 n, MAX_TIMER_PERIOD);
1170                 n = MAX_TIMER_PERIOD;
1171         }
1172
1173         options->refresh_period = n * 1000 * TIMER_MILLISECOND;
1174
1175         return 0;
1176 }
1177
1178 /** Generate default options for application */
1179 static void
1180 l2fwd_crypto_default_options(struct l2fwd_crypto_options *options)
1181 {
1182         srand(time(NULL));
1183
1184         options->portmask = 0xffffffff;
1185         options->nb_ports_per_lcore = 1;
1186         options->refresh_period = 10000;
1187         options->single_lcore = 0;
1188         options->sessionless = 0;
1189
1190         options->xform_chain = L2FWD_CRYPTO_CIPHER_HASH;
1191
1192         /* Cipher Data */
1193         options->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER;
1194         options->cipher_xform.next = NULL;
1195         options->ckey_param = 0;
1196         options->ckey_random_size = -1;
1197         options->cipher_xform.cipher.key.length = 0;
1198         options->iv_param = 0;
1199         options->iv_random_size = -1;
1200         options->iv.length = 0;
1201
1202         options->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_CBC;
1203         options->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
1204
1205         /* Authentication Data */
1206         options->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH;
1207         options->auth_xform.next = NULL;
1208         options->akey_param = 0;
1209         options->akey_random_size = -1;
1210         options->auth_xform.auth.key.length = 0;
1211         options->aad_param = 0;
1212         options->aad_random_size = -1;
1213         options->aad.length = 0;
1214         options->digest_size = -1;
1215
1216         options->auth_xform.auth.algo = RTE_CRYPTO_AUTH_SHA1_HMAC;
1217         options->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE;
1218
1219         options->type = CDEV_TYPE_ANY;
1220 }
1221
1222 static void
1223 display_cipher_info(struct l2fwd_crypto_options *options)
1224 {
1225         printf("\n---- Cipher information ---\n");
1226         printf("Algorithm: %s\n",
1227                 supported_cipher_algo[options->cipher_xform.cipher.algo]);
1228         rte_hexdump(stdout, "Cipher key:",
1229                         options->cipher_xform.cipher.key.data,
1230                         options->cipher_xform.cipher.key.length);
1231         rte_hexdump(stdout, "IV:", options->iv.data, options->iv.length);
1232 }
1233
1234 static void
1235 display_auth_info(struct l2fwd_crypto_options *options)
1236 {
1237         printf("\n---- Authentication information ---\n");
1238         printf("Algorithm: %s\n",
1239                 supported_auth_algo[options->auth_xform.auth.algo]);
1240         rte_hexdump(stdout, "Auth key:",
1241                         options->auth_xform.auth.key.data,
1242                         options->auth_xform.auth.key.length);
1243         rte_hexdump(stdout, "AAD:", options->aad.data, options->aad.length);
1244 }
1245
1246 static void
1247 l2fwd_crypto_options_print(struct l2fwd_crypto_options *options)
1248 {
1249         char string_cipher_op[MAX_STR_LEN];
1250         char string_auth_op[MAX_STR_LEN];
1251
1252         if (options->cipher_xform.cipher.op == RTE_CRYPTO_CIPHER_OP_ENCRYPT)
1253                 strcpy(string_cipher_op, "Encrypt");
1254         else
1255                 strcpy(string_cipher_op, "Decrypt");
1256
1257         if (options->auth_xform.auth.op == RTE_CRYPTO_AUTH_OP_GENERATE)
1258                 strcpy(string_auth_op, "Auth generate");
1259         else
1260                 strcpy(string_auth_op, "Auth verify");
1261
1262         printf("Options:-\nn");
1263         printf("portmask: %x\n", options->portmask);
1264         printf("ports per lcore: %u\n", options->nb_ports_per_lcore);
1265         printf("refresh period : %u\n", options->refresh_period);
1266         printf("single lcore mode: %s\n",
1267                         options->single_lcore ? "enabled" : "disabled");
1268         printf("stats_printing: %s\n",
1269                         options->refresh_period == 0 ? "disabled" : "enabled");
1270
1271         printf("sessionless crypto: %s\n",
1272                         options->sessionless ? "enabled" : "disabled");
1273
1274         if (options->ckey_param && (options->ckey_random_size != -1))
1275                 printf("Cipher key already parsed, ignoring size of random key\n");
1276
1277         if (options->akey_param && (options->akey_random_size != -1))
1278                 printf("Auth key already parsed, ignoring size of random key\n");
1279
1280         if (options->iv_param && (options->iv_random_size != -1))
1281                 printf("IV already parsed, ignoring size of random IV\n");
1282
1283         if (options->aad_param && (options->aad_random_size != -1))
1284                 printf("AAD already parsed, ignoring size of random AAD\n");
1285
1286         printf("\nCrypto chain: ");
1287         switch (options->xform_chain) {
1288         case L2FWD_CRYPTO_CIPHER_HASH:
1289                 printf("Input --> %s --> %s --> Output\n",
1290                         string_cipher_op, string_auth_op);
1291                 display_cipher_info(options);
1292                 display_auth_info(options);
1293                 break;
1294         case L2FWD_CRYPTO_HASH_CIPHER:
1295                 printf("Input --> %s --> %s --> Output\n",
1296                         string_auth_op, string_cipher_op);
1297                 display_cipher_info(options);
1298                 display_auth_info(options);
1299                 break;
1300         case L2FWD_CRYPTO_HASH_ONLY:
1301                 printf("Input --> %s --> Output\n", string_auth_op);
1302                 display_auth_info(options);
1303                 break;
1304         case L2FWD_CRYPTO_CIPHER_ONLY:
1305                 printf("Input --> %s --> Output\n", string_cipher_op);
1306                 display_cipher_info(options);
1307                 break;
1308         }
1309 }
1310
1311 /* Parse the argument given in the command line of the application */
1312 static int
1313 l2fwd_crypto_parse_args(struct l2fwd_crypto_options *options,
1314                 int argc, char **argv)
1315 {
1316         int opt, retval, option_index;
1317         char **argvopt = argv, *prgname = argv[0];
1318
1319         static struct option lgopts[] = {
1320                         { "sessionless", no_argument, 0, 0 },
1321
1322                         { "cdev_type", required_argument, 0, 0 },
1323                         { "chain", required_argument, 0, 0 },
1324
1325                         { "cipher_algo", required_argument, 0, 0 },
1326                         { "cipher_op", required_argument, 0, 0 },
1327                         { "cipher_key", required_argument, 0, 0 },
1328                         { "cipher_key_random_size", required_argument, 0, 0 },
1329
1330                         { "auth_algo", required_argument, 0, 0 },
1331                         { "auth_op", required_argument, 0, 0 },
1332                         { "auth_key", required_argument, 0, 0 },
1333                         { "auth_key_random_size", required_argument, 0, 0 },
1334
1335                         { "iv", required_argument, 0, 0 },
1336                         { "iv_random_size", required_argument, 0, 0 },
1337                         { "aad", required_argument, 0, 0 },
1338                         { "aad_random_size", required_argument, 0, 0 },
1339                         { "digest_size", required_argument, 0, 0 },
1340
1341                         { "sessionless", no_argument, 0, 0 },
1342
1343                         { NULL, 0, 0, 0 }
1344         };
1345
1346         l2fwd_crypto_default_options(options);
1347
1348         while ((opt = getopt_long(argc, argvopt, "p:q:st:", lgopts,
1349                         &option_index)) != EOF) {
1350                 switch (opt) {
1351                 /* long options */
1352                 case 0:
1353                         retval = l2fwd_crypto_parse_args_long_options(options,
1354                                         lgopts, option_index);
1355                         if (retval < 0) {
1356                                 l2fwd_crypto_usage(prgname);
1357                                 return -1;
1358                         }
1359                         break;
1360
1361                 /* portmask */
1362                 case 'p':
1363                         retval = l2fwd_crypto_parse_portmask(options, optarg);
1364                         if (retval < 0) {
1365                                 l2fwd_crypto_usage(prgname);
1366                                 return -1;
1367                         }
1368                         break;
1369
1370                 /* nqueue */
1371                 case 'q':
1372                         retval = l2fwd_crypto_parse_nqueue(options, optarg);
1373                         if (retval < 0) {
1374                                 l2fwd_crypto_usage(prgname);
1375                                 return -1;
1376                         }
1377                         break;
1378
1379                 /* single  */
1380                 case 's':
1381                         options->single_lcore = 1;
1382
1383                         break;
1384
1385                 /* timer period */
1386                 case 'T':
1387                         retval = l2fwd_crypto_parse_timer_period(options,
1388                                         optarg);
1389                         if (retval < 0) {
1390                                 l2fwd_crypto_usage(prgname);
1391                                 return -1;
1392                         }
1393                         break;
1394
1395                 default:
1396                         l2fwd_crypto_usage(prgname);
1397                         return -1;
1398                 }
1399         }
1400
1401
1402         if (optind >= 0)
1403                 argv[optind-1] = prgname;
1404
1405         retval = optind-1;
1406         optind = 0; /* reset getopt lib */
1407
1408         return retval;
1409 }
1410
1411 /* Check the link status of all ports in up to 9s, and print them finally */
1412 static void
1413 check_all_ports_link_status(uint8_t port_num, uint32_t port_mask)
1414 {
1415 #define CHECK_INTERVAL 100 /* 100ms */
1416 #define MAX_CHECK_TIME 90 /* 9s (90 * 100ms) in total */
1417         uint8_t portid, count, all_ports_up, print_flag = 0;
1418         struct rte_eth_link link;
1419
1420         printf("\nChecking link status");
1421         fflush(stdout);
1422         for (count = 0; count <= MAX_CHECK_TIME; count++) {
1423                 all_ports_up = 1;
1424                 for (portid = 0; portid < port_num; portid++) {
1425                         if ((port_mask & (1 << portid)) == 0)
1426                                 continue;
1427                         memset(&link, 0, sizeof(link));
1428                         rte_eth_link_get_nowait(portid, &link);
1429                         /* print link status if flag set */
1430                         if (print_flag == 1) {
1431                                 if (link.link_status)
1432                                         printf("Port %d Link Up - speed %u "
1433                                                 "Mbps - %s\n", (uint8_t)portid,
1434                                                 (unsigned)link.link_speed,
1435                                 (link.link_duplex == ETH_LINK_FULL_DUPLEX) ?
1436                                         ("full-duplex") : ("half-duplex\n"));
1437                                 else
1438                                         printf("Port %d Link Down\n",
1439                                                 (uint8_t)portid);
1440                                 continue;
1441                         }
1442                         /* clear all_ports_up flag if any link down */
1443                         if (link.link_status == ETH_LINK_DOWN) {
1444                                 all_ports_up = 0;
1445                                 break;
1446                         }
1447                 }
1448                 /* after finally printing all link status, get out */
1449                 if (print_flag == 1)
1450                         break;
1451
1452                 if (all_ports_up == 0) {
1453                         printf(".");
1454                         fflush(stdout);
1455                         rte_delay_ms(CHECK_INTERVAL);
1456                 }
1457
1458                 /* set the print_flag if all ports up or timeout */
1459                 if (all_ports_up == 1 || count == (MAX_CHECK_TIME - 1)) {
1460                         print_flag = 1;
1461                         printf("done\n");
1462                 }
1463         }
1464 }
1465
1466 /* Check if device has to be HW/SW or any */
1467 static int
1468 check_type(struct l2fwd_crypto_options *options, struct rte_cryptodev_info *dev_info)
1469 {
1470         if (options->type == CDEV_TYPE_HW &&
1471                         (dev_info->feature_flags & RTE_CRYPTODEV_FF_HW_ACCELERATED))
1472                 return 0;
1473         if (options->type == CDEV_TYPE_SW &&
1474                         !(dev_info->feature_flags & RTE_CRYPTODEV_FF_HW_ACCELERATED))
1475                 return 0;
1476         if (options->type == CDEV_TYPE_ANY)
1477                 return 0;
1478
1479         return -1;
1480 }
1481
1482 static inline int
1483 check_supported_size(uint16_t length, uint16_t min, uint16_t max,
1484                 uint16_t increment)
1485 {
1486         uint16_t supp_size;
1487
1488         for (supp_size = min; supp_size <= max; supp_size += increment) {
1489                 if (length == supp_size)
1490                         return 0;
1491         }
1492
1493         return -1;
1494 }
1495 static int
1496 initialize_cryptodevs(struct l2fwd_crypto_options *options, unsigned nb_ports,
1497                 uint8_t *enabled_cdevs)
1498 {
1499         unsigned i, cdev_id, cdev_count, enabled_cdev_count = 0;
1500         const struct rte_cryptodev_capabilities *cap;
1501         enum rte_crypto_auth_algorithm cap_auth_algo;
1502         enum rte_crypto_auth_algorithm opt_auth_algo;
1503         enum rte_crypto_cipher_algorithm cap_cipher_algo;
1504         enum rte_crypto_cipher_algorithm opt_cipher_algo;
1505         int retval;
1506
1507         cdev_count = rte_cryptodev_count();
1508         if (cdev_count == 0) {
1509                 printf("No crypto devices available\n");
1510                 return -1;
1511         }
1512
1513         for (cdev_id = 0; cdev_id < cdev_count && enabled_cdev_count < nb_ports;
1514                         cdev_id++) {
1515                 struct rte_cryptodev_qp_conf qp_conf;
1516                 struct rte_cryptodev_info dev_info;
1517
1518                 struct rte_cryptodev_config conf = {
1519                         .nb_queue_pairs = 1,
1520                         .socket_id = SOCKET_ID_ANY,
1521                         .session_mp = {
1522                                 .nb_objs = 2048,
1523                                 .cache_size = 64
1524                         }
1525                 };
1526
1527                 rte_cryptodev_info_get(cdev_id, &dev_info);
1528
1529                 /* Set cipher parameters */
1530                 if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH ||
1531                                 options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER ||
1532                                 options->xform_chain == L2FWD_CRYPTO_CIPHER_ONLY) {
1533                         /* Check if device supports cipher algo */
1534                         i = 0;
1535                         opt_cipher_algo = options->cipher_xform.cipher.algo;
1536                         cap = &dev_info.capabilities[i];
1537                         while (cap->op != RTE_CRYPTO_OP_TYPE_UNDEFINED) {
1538                                 cap_cipher_algo = cap->sym.cipher.algo;
1539                                 if (cap->sym.xform_type ==
1540                                                 RTE_CRYPTO_SYM_XFORM_CIPHER) {
1541                                         if (cap_cipher_algo == opt_cipher_algo) {
1542                                                 if (check_type(options, &dev_info) == 0)
1543                                                         break;
1544                                         }
1545                                 }
1546                                 cap = &dev_info.capabilities[++i];
1547                         }
1548
1549                         if (cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED) {
1550                                 printf("Algorithm %s not supported by cryptodev %u"
1551                                         " or device not of preferred type (%s)\n",
1552                                         supported_cipher_algo[opt_cipher_algo],
1553                                         cdev_id,
1554                                         options->string_type);
1555                                 continue;
1556                         }
1557
1558                         options->block_size = cap->sym.cipher.block_size;
1559                         /*
1560                          * Check if length of provided IV is supported
1561                          * by the algorithm chosen.
1562                          */
1563                         if (options->iv_param) {
1564                                 if (check_supported_size(options->iv.length,
1565                                                 cap->sym.cipher.iv_size.min,
1566                                                 cap->sym.cipher.iv_size.max,
1567                                                 cap->sym.cipher.iv_size.increment)
1568                                                         != 0) {
1569                                         printf("Unsupported IV length\n");
1570                                         return -1;
1571                                 }
1572                         /*
1573                          * Check if length of IV to be randomly generated
1574                          * is supported by the algorithm chosen.
1575                          */
1576                         } else if (options->iv_random_size != -1) {
1577                                 if (check_supported_size(options->iv_random_size,
1578                                                 cap->sym.cipher.iv_size.min,
1579                                                 cap->sym.cipher.iv_size.max,
1580                                                 cap->sym.cipher.iv_size.increment)
1581                                                         != 0) {
1582                                         printf("Unsupported IV length\n");
1583                                         return -1;
1584                                 }
1585                                 options->iv.length = options->iv_random_size;
1586                         /* No size provided, use minimum size. */
1587                         } else
1588                                 options->iv.length = cap->sym.cipher.iv_size.min;
1589
1590                         /*
1591                          * Check if length of provided cipher key is supported
1592                          * by the algorithm chosen.
1593                          */
1594                         if (options->ckey_param) {
1595                                 if (check_supported_size(
1596                                                 options->cipher_xform.cipher.key.length,
1597                                                 cap->sym.cipher.key_size.min,
1598                                                 cap->sym.cipher.key_size.max,
1599                                                 cap->sym.cipher.key_size.increment)
1600                                                         != 0) {
1601                                         printf("Unsupported cipher key length\n");
1602                                         return -1;
1603                                 }
1604                         /*
1605                          * Check if length of the cipher key to be randomly generated
1606                          * is supported by the algorithm chosen.
1607                          */
1608                         } else if (options->ckey_random_size != -1) {
1609                                 if (check_supported_size(options->ckey_random_size,
1610                                                 cap->sym.cipher.key_size.min,
1611                                                 cap->sym.cipher.key_size.max,
1612                                                 cap->sym.cipher.key_size.increment)
1613                                                         != 0) {
1614                                         printf("Unsupported cipher key length\n");
1615                                         return -1;
1616                                 }
1617                                 options->cipher_xform.cipher.key.length =
1618                                                         options->ckey_random_size;
1619                         /* No size provided, use minimum size. */
1620                         } else
1621                                 options->cipher_xform.cipher.key.length =
1622                                                 cap->sym.cipher.key_size.min;
1623
1624                         if (!options->ckey_param)
1625                                 generate_random_key(
1626                                         options->cipher_xform.cipher.key.data,
1627                                         options->cipher_xform.cipher.key.length);
1628
1629                 }
1630
1631                 /* Set auth parameters */
1632                 if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH ||
1633                                 options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER ||
1634                                 options->xform_chain == L2FWD_CRYPTO_HASH_ONLY) {
1635                         /* Check if device supports auth algo */
1636                         i = 0;
1637                         opt_auth_algo = options->auth_xform.auth.algo;
1638                         cap = &dev_info.capabilities[i];
1639                         while (cap->op != RTE_CRYPTO_OP_TYPE_UNDEFINED) {
1640                                 cap_auth_algo = cap->sym.auth.algo;
1641                                 if ((cap->sym.xform_type == RTE_CRYPTO_SYM_XFORM_AUTH) &&
1642                                                 (cap_auth_algo == opt_auth_algo) &&
1643                                                 (check_type(options, &dev_info) == 0)) {
1644                                         break;
1645                                 }
1646                                 cap = &dev_info.capabilities[++i];
1647                         }
1648
1649                         if (cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED) {
1650                                 printf("Algorithm %s not supported by cryptodev %u"
1651                                         " or device not of preferred type (%s)\n",
1652                                         supported_auth_algo[opt_auth_algo],
1653                                         cdev_id,
1654                                         options->string_type);
1655                                 continue;
1656                         }
1657
1658                         options->block_size = cap->sym.auth.block_size;
1659                         /*
1660                          * Check if length of provided AAD is supported
1661                          * by the algorithm chosen.
1662                          */
1663                         if (options->aad_param) {
1664                                 if (check_supported_size(options->aad.length,
1665                                                 cap->sym.auth.aad_size.min,
1666                                                 cap->sym.auth.aad_size.max,
1667                                                 cap->sym.auth.aad_size.increment)
1668                                                         != 0) {
1669                                         printf("Unsupported AAD length\n");
1670                                         return -1;
1671                                 }
1672                         /*
1673                          * Check if length of AAD to be randomly generated
1674                          * is supported by the algorithm chosen.
1675                          */
1676                         } else if (options->aad_random_size != -1) {
1677                                 if (check_supported_size(options->aad_random_size,
1678                                                 cap->sym.auth.aad_size.min,
1679                                                 cap->sym.auth.aad_size.max,
1680                                                 cap->sym.auth.aad_size.increment)
1681                                                         != 0) {
1682                                         printf("Unsupported AAD length\n");
1683                                         return -1;
1684                                 }
1685                                 options->aad.length = options->aad_random_size;
1686                         /* No size provided, use minimum size. */
1687                         } else
1688                                 options->aad.length = cap->sym.auth.aad_size.min;
1689
1690                         options->auth_xform.auth.add_auth_data_length =
1691                                                 options->aad.length;
1692
1693                         /*
1694                          * Check if length of provided auth key is supported
1695                          * by the algorithm chosen.
1696                          */
1697                         if (options->akey_param) {
1698                                 if (check_supported_size(
1699                                                 options->auth_xform.auth.key.length,
1700                                                 cap->sym.auth.key_size.min,
1701                                                 cap->sym.auth.key_size.max,
1702                                                 cap->sym.auth.key_size.increment)
1703                                                         != 0) {
1704                                         printf("Unsupported auth key length\n");
1705                                         return -1;
1706                                 }
1707                         /*
1708                          * Check if length of the auth key to be randomly generated
1709                          * is supported by the algorithm chosen.
1710                          */
1711                         } else if (options->akey_random_size != -1) {
1712                                 if (check_supported_size(options->akey_random_size,
1713                                                 cap->sym.auth.key_size.min,
1714                                                 cap->sym.auth.key_size.max,
1715                                                 cap->sym.auth.key_size.increment)
1716                                                         != 0) {
1717                                         printf("Unsupported auth key length\n");
1718                                         return -1;
1719                                 }
1720                                 options->auth_xform.auth.key.length =
1721                                                         options->akey_random_size;
1722                         /* No size provided, use minimum size. */
1723                         } else
1724                                 options->auth_xform.auth.key.length =
1725                                                 cap->sym.auth.key_size.min;
1726
1727                         if (!options->akey_param)
1728                                 generate_random_key(
1729                                         options->auth_xform.auth.key.data,
1730                                         options->auth_xform.auth.key.length);
1731
1732                         /* Check if digest size is supported by the algorithm. */
1733                         if (options->digest_size != -1) {
1734                                 if (check_supported_size(options->digest_size,
1735                                                 cap->sym.auth.digest_size.min,
1736                                                 cap->sym.auth.digest_size.max,
1737                                                 cap->sym.auth.digest_size.increment)
1738                                                         != 0) {
1739                                         printf("Unsupported digest length\n");
1740                                         return -1;
1741                                 }
1742                                 options->auth_xform.auth.digest_length =
1743                                                         options->digest_size;
1744                         /* No size provided, use minimum size. */
1745                         } else
1746                                 options->auth_xform.auth.digest_length =
1747                                                 cap->sym.auth.digest_size.min;
1748                 }
1749
1750                 retval = rte_cryptodev_configure(cdev_id, &conf);
1751                 if (retval < 0) {
1752                         printf("Failed to configure cryptodev %u", cdev_id);
1753                         return -1;
1754                 }
1755
1756                 qp_conf.nb_descriptors = 2048;
1757
1758                 retval = rte_cryptodev_queue_pair_setup(cdev_id, 0, &qp_conf,
1759                                 SOCKET_ID_ANY);
1760                 if (retval < 0) {
1761                         printf("Failed to setup queue pair %u on cryptodev %u",
1762                                         0, cdev_id);
1763                         return -1;
1764                 }
1765
1766                 l2fwd_enabled_crypto_mask |= (1 << cdev_id);
1767
1768                 enabled_cdevs[cdev_id] = 1;
1769                 enabled_cdev_count++;
1770         }
1771
1772         return enabled_cdev_count;
1773 }
1774
1775 static int
1776 initialize_ports(struct l2fwd_crypto_options *options)
1777 {
1778         uint8_t last_portid, portid;
1779         unsigned enabled_portcount = 0;
1780         unsigned nb_ports = rte_eth_dev_count();
1781
1782         if (nb_ports == 0) {
1783                 printf("No Ethernet ports - bye\n");
1784                 return -1;
1785         }
1786
1787         if (nb_ports > RTE_MAX_ETHPORTS)
1788                 nb_ports = RTE_MAX_ETHPORTS;
1789
1790         /* Reset l2fwd_dst_ports */
1791         for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++)
1792                 l2fwd_dst_ports[portid] = 0;
1793
1794         for (last_portid = 0, portid = 0; portid < nb_ports; portid++) {
1795                 int retval;
1796
1797                 /* Skip ports that are not enabled */
1798                 if ((options->portmask & (1 << portid)) == 0)
1799                         continue;
1800
1801                 /* init port */
1802                 printf("Initializing port %u... ", (unsigned) portid);
1803                 fflush(stdout);
1804                 retval = rte_eth_dev_configure(portid, 1, 1, &port_conf);
1805                 if (retval < 0) {
1806                         printf("Cannot configure device: err=%d, port=%u\n",
1807                                   retval, (unsigned) portid);
1808                         return -1;
1809                 }
1810
1811                 /* init one RX queue */
1812                 fflush(stdout);
1813                 retval = rte_eth_rx_queue_setup(portid, 0, nb_rxd,
1814                                              rte_eth_dev_socket_id(portid),
1815                                              NULL, l2fwd_pktmbuf_pool);
1816                 if (retval < 0) {
1817                         printf("rte_eth_rx_queue_setup:err=%d, port=%u\n",
1818                                         retval, (unsigned) portid);
1819                         return -1;
1820                 }
1821
1822                 /* init one TX queue on each port */
1823                 fflush(stdout);
1824                 retval = rte_eth_tx_queue_setup(portid, 0, nb_txd,
1825                                 rte_eth_dev_socket_id(portid),
1826                                 NULL);
1827                 if (retval < 0) {
1828                         printf("rte_eth_tx_queue_setup:err=%d, port=%u\n",
1829                                 retval, (unsigned) portid);
1830
1831                         return -1;
1832                 }
1833
1834                 /* Start device */
1835                 retval = rte_eth_dev_start(portid);
1836                 if (retval < 0) {
1837                         printf("rte_eth_dev_start:err=%d, port=%u\n",
1838                                         retval, (unsigned) portid);
1839                         return -1;
1840                 }
1841
1842                 rte_eth_promiscuous_enable(portid);
1843
1844                 rte_eth_macaddr_get(portid, &l2fwd_ports_eth_addr[portid]);
1845
1846                 printf("Port %u, MAC address: %02X:%02X:%02X:%02X:%02X:%02X\n\n",
1847                                 (unsigned) portid,
1848                                 l2fwd_ports_eth_addr[portid].addr_bytes[0],
1849                                 l2fwd_ports_eth_addr[portid].addr_bytes[1],
1850                                 l2fwd_ports_eth_addr[portid].addr_bytes[2],
1851                                 l2fwd_ports_eth_addr[portid].addr_bytes[3],
1852                                 l2fwd_ports_eth_addr[portid].addr_bytes[4],
1853                                 l2fwd_ports_eth_addr[portid].addr_bytes[5]);
1854
1855                 /* initialize port stats */
1856                 memset(&port_statistics, 0, sizeof(port_statistics));
1857
1858                 /* Setup port forwarding table */
1859                 if (enabled_portcount % 2) {
1860                         l2fwd_dst_ports[portid] = last_portid;
1861                         l2fwd_dst_ports[last_portid] = portid;
1862                 } else {
1863                         last_portid = portid;
1864                 }
1865
1866                 l2fwd_enabled_port_mask |= (1 << portid);
1867                 enabled_portcount++;
1868         }
1869
1870         if (enabled_portcount == 1) {
1871                 l2fwd_dst_ports[last_portid] = last_portid;
1872         } else if (enabled_portcount % 2) {
1873                 printf("odd number of ports in portmask- bye\n");
1874                 return -1;
1875         }
1876
1877         check_all_ports_link_status(nb_ports, l2fwd_enabled_port_mask);
1878
1879         return enabled_portcount;
1880 }
1881
1882 static void
1883 reserve_key_memory(struct l2fwd_crypto_options *options)
1884 {
1885         options->cipher_xform.cipher.key.data = rte_malloc("crypto key",
1886                                                 MAX_KEY_SIZE, 0);
1887         if (options->cipher_xform.cipher.key.data == NULL)
1888                 rte_exit(EXIT_FAILURE, "Failed to allocate memory for cipher key");
1889
1890
1891         options->auth_xform.auth.key.data = rte_malloc("auth key",
1892                                                 MAX_KEY_SIZE, 0);
1893         if (options->auth_xform.auth.key.data == NULL)
1894                 rte_exit(EXIT_FAILURE, "Failed to allocate memory for auth key");
1895
1896         options->iv.data = rte_malloc("iv", MAX_KEY_SIZE, 0);
1897         if (options->iv.data == NULL)
1898                 rte_exit(EXIT_FAILURE, "Failed to allocate memory for IV");
1899         options->iv.phys_addr = rte_malloc_virt2phy(options->iv.data);
1900
1901         options->aad.data = rte_malloc("aad", MAX_KEY_SIZE, 0);
1902         if (options->aad.data == NULL)
1903                 rte_exit(EXIT_FAILURE, "Failed to allocate memory for AAD");
1904         options->aad.phys_addr = rte_malloc_virt2phy(options->aad.data);
1905 }
1906
1907 int
1908 main(int argc, char **argv)
1909 {
1910         struct lcore_queue_conf *qconf;
1911         struct l2fwd_crypto_options options;
1912
1913         uint8_t nb_ports, nb_cryptodevs, portid, cdev_id;
1914         unsigned lcore_id, rx_lcore_id;
1915         int ret, enabled_cdevcount, enabled_portcount;
1916         uint8_t enabled_cdevs[RTE_CRYPTO_MAX_DEVS] = {0};
1917
1918         /* init EAL */
1919         ret = rte_eal_init(argc, argv);
1920         if (ret < 0)
1921                 rte_exit(EXIT_FAILURE, "Invalid EAL arguments\n");
1922         argc -= ret;
1923         argv += ret;
1924
1925         /* reserve memory for Cipher/Auth key and IV */
1926         reserve_key_memory(&options);
1927
1928         /* fill out the supported algorithm tables */
1929         fill_supported_algorithm_tables();
1930
1931         /* parse application arguments (after the EAL ones) */
1932         ret = l2fwd_crypto_parse_args(&options, argc, argv);
1933         if (ret < 0)
1934                 rte_exit(EXIT_FAILURE, "Invalid L2FWD-CRYPTO arguments\n");
1935
1936         /* create the mbuf pool */
1937         l2fwd_pktmbuf_pool = rte_pktmbuf_pool_create("mbuf_pool", NB_MBUF, 512,
1938                         sizeof(struct rte_crypto_op),
1939                         RTE_MBUF_DEFAULT_BUF_SIZE, rte_socket_id());
1940         if (l2fwd_pktmbuf_pool == NULL)
1941                 rte_exit(EXIT_FAILURE, "Cannot create mbuf pool\n");
1942
1943         /* create crypto op pool */
1944         l2fwd_crypto_op_pool = rte_crypto_op_pool_create("crypto_op_pool",
1945                         RTE_CRYPTO_OP_TYPE_SYMMETRIC, NB_MBUF, 128, 0,
1946                         rte_socket_id());
1947         if (l2fwd_crypto_op_pool == NULL)
1948                 rte_exit(EXIT_FAILURE, "Cannot create crypto op pool\n");
1949
1950         /* Enable Ethernet ports */
1951         enabled_portcount = initialize_ports(&options);
1952         if (enabled_portcount < 1)
1953                 rte_exit(EXIT_FAILURE, "Failed to initial Ethernet ports\n");
1954
1955         nb_ports = rte_eth_dev_count();
1956         /* Initialize the port/queue configuration of each logical core */
1957         for (rx_lcore_id = 0, qconf = NULL, portid = 0;
1958                         portid < nb_ports; portid++) {
1959
1960                 /* skip ports that are not enabled */
1961                 if ((options.portmask & (1 << portid)) == 0)
1962                         continue;
1963
1964                 if (options.single_lcore && qconf == NULL) {
1965                         while (rte_lcore_is_enabled(rx_lcore_id) == 0) {
1966                                 rx_lcore_id++;
1967                                 if (rx_lcore_id >= RTE_MAX_LCORE)
1968                                         rte_exit(EXIT_FAILURE,
1969                                                         "Not enough cores\n");
1970                         }
1971                 } else if (!options.single_lcore) {
1972                         /* get the lcore_id for this port */
1973                         while (rte_lcore_is_enabled(rx_lcore_id) == 0 ||
1974                                lcore_queue_conf[rx_lcore_id].nb_rx_ports ==
1975                                options.nb_ports_per_lcore) {
1976                                 rx_lcore_id++;
1977                                 if (rx_lcore_id >= RTE_MAX_LCORE)
1978                                         rte_exit(EXIT_FAILURE,
1979                                                         "Not enough cores\n");
1980                         }
1981                 }
1982
1983                 /* Assigned a new logical core in the loop above. */
1984                 if (qconf != &lcore_queue_conf[rx_lcore_id])
1985                         qconf = &lcore_queue_conf[rx_lcore_id];
1986
1987                 qconf->rx_port_list[qconf->nb_rx_ports] = portid;
1988                 qconf->nb_rx_ports++;
1989
1990                 printf("Lcore %u: RX port %u\n", rx_lcore_id, (unsigned)portid);
1991         }
1992
1993         /* Enable Crypto devices */
1994         enabled_cdevcount = initialize_cryptodevs(&options, enabled_portcount,
1995                         enabled_cdevs);
1996         if (enabled_cdevcount < 0)
1997                 rte_exit(EXIT_FAILURE, "Failed to initialize crypto devices\n");
1998
1999         if (enabled_cdevcount < enabled_portcount)
2000                 rte_exit(EXIT_FAILURE, "Number of capable crypto devices (%d) "
2001                                 "has to be more or equal to number of ports (%d)\n",
2002                                 enabled_cdevcount, enabled_portcount);
2003
2004         nb_cryptodevs = rte_cryptodev_count();
2005
2006         /* Initialize the port/cryptodev configuration of each logical core */
2007         for (rx_lcore_id = 0, qconf = NULL, cdev_id = 0;
2008                         cdev_id < nb_cryptodevs && enabled_cdevcount;
2009                         cdev_id++) {
2010                 /* Crypto op not supported by crypto device */
2011                 if (!enabled_cdevs[cdev_id])
2012                         continue;
2013
2014                 if (options.single_lcore && qconf == NULL) {
2015                         while (rte_lcore_is_enabled(rx_lcore_id) == 0) {
2016                                 rx_lcore_id++;
2017                                 if (rx_lcore_id >= RTE_MAX_LCORE)
2018                                         rte_exit(EXIT_FAILURE,
2019                                                         "Not enough cores\n");
2020                         }
2021                 } else if (!options.single_lcore) {
2022                         /* get the lcore_id for this port */
2023                         while (rte_lcore_is_enabled(rx_lcore_id) == 0 ||
2024                                lcore_queue_conf[rx_lcore_id].nb_crypto_devs ==
2025                                options.nb_ports_per_lcore) {
2026                                 rx_lcore_id++;
2027                                 if (rx_lcore_id >= RTE_MAX_LCORE)
2028                                         rte_exit(EXIT_FAILURE,
2029                                                         "Not enough cores\n");
2030                         }
2031                 }
2032
2033                 /* Assigned a new logical core in the loop above. */
2034                 if (qconf != &lcore_queue_conf[rx_lcore_id])
2035                         qconf = &lcore_queue_conf[rx_lcore_id];
2036
2037                 qconf->cryptodev_list[qconf->nb_crypto_devs] = cdev_id;
2038                 qconf->nb_crypto_devs++;
2039
2040                 enabled_cdevcount--;
2041
2042                 printf("Lcore %u: cryptodev %u\n", rx_lcore_id,
2043                                 (unsigned)cdev_id);
2044         }
2045
2046         /* launch per-lcore init on every lcore */
2047         rte_eal_mp_remote_launch(l2fwd_launch_one_lcore, (void *)&options,
2048                         CALL_MASTER);
2049         RTE_LCORE_FOREACH_SLAVE(lcore_id) {
2050                 if (rte_eal_wait_lcore(lcore_id) < 0)
2051                         return -1;
2052         }
2053
2054         return 0;
2055 }