net/mlx5: fix tunnel flow priority
[dpdk.git] / drivers / net / mlx5 / mlx5_flow_verbs.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright 2018 Mellanox Technologies, Ltd
3  */
4
5 #include <netinet/in.h>
6 #include <sys/queue.h>
7 #include <stdalign.h>
8 #include <stdint.h>
9 #include <string.h>
10
11 #include <rte_common.h>
12 #include <rte_ether.h>
13 #include <rte_ethdev_driver.h>
14 #include <rte_flow.h>
15 #include <rte_flow_driver.h>
16 #include <rte_malloc.h>
17 #include <rte_ip.h>
18
19 #include <mlx5_glue.h>
20 #include <mlx5_prm.h>
21 #include <mlx5_malloc.h>
22
23 #include "mlx5_defs.h"
24 #include "mlx5.h"
25 #include "mlx5_flow.h"
26 #include "mlx5_rxtx.h"
27
28 #define VERBS_SPEC_INNER(item_flags) \
29         (!!((item_flags) & MLX5_FLOW_LAYER_TUNNEL) ? IBV_FLOW_SPEC_INNER : 0)
30
31 /* Map of Verbs to Flow priority with 8 Verbs priorities. */
32 static const uint32_t priority_map_3[][MLX5_PRIORITY_MAP_MAX] = {
33         { 0, 1, 2 }, { 2, 3, 4 }, { 5, 6, 7 },
34 };
35
36 /* Map of Verbs to Flow priority with 16 Verbs priorities. */
37 static const uint32_t priority_map_5[][MLX5_PRIORITY_MAP_MAX] = {
38         { 0, 1, 2 }, { 3, 4, 5 }, { 6, 7, 8 },
39         { 9, 10, 11 }, { 12, 13, 14 },
40 };
41
42 /**
43  * Discover the maximum number of priority available.
44  *
45  * @param[in] dev
46  *   Pointer to the Ethernet device structure.
47  *
48  * @return
49  *   number of supported flow priority on success, a negative errno
50  *   value otherwise and rte_errno is set.
51  */
52 int
53 mlx5_flow_discover_priorities(struct rte_eth_dev *dev)
54 {
55         struct mlx5_priv *priv = dev->data->dev_private;
56         struct {
57                 struct ibv_flow_attr attr;
58                 struct ibv_flow_spec_eth eth;
59                 struct ibv_flow_spec_action_drop drop;
60         } flow_attr = {
61                 .attr = {
62                         .num_of_specs = 2,
63                         .port = (uint8_t)priv->dev_port,
64                 },
65                 .eth = {
66                         .type = IBV_FLOW_SPEC_ETH,
67                         .size = sizeof(struct ibv_flow_spec_eth),
68                 },
69                 .drop = {
70                         .size = sizeof(struct ibv_flow_spec_action_drop),
71                         .type = IBV_FLOW_SPEC_ACTION_DROP,
72                 },
73         };
74         struct ibv_flow *flow;
75         struct mlx5_hrxq *drop = mlx5_hrxq_drop_new(dev);
76         uint16_t vprio[] = { 8, 16 };
77         int i;
78         int priority = 0;
79
80         if (!drop) {
81                 rte_errno = ENOTSUP;
82                 return -rte_errno;
83         }
84         for (i = 0; i != RTE_DIM(vprio); i++) {
85                 flow_attr.attr.priority = vprio[i] - 1;
86                 flow = mlx5_glue->create_flow(drop->qp, &flow_attr.attr);
87                 if (!flow)
88                         break;
89                 claim_zero(mlx5_glue->destroy_flow(flow));
90                 priority = vprio[i];
91         }
92         mlx5_hrxq_drop_release(dev);
93         switch (priority) {
94         case 8:
95                 priority = RTE_DIM(priority_map_3);
96                 break;
97         case 16:
98                 priority = RTE_DIM(priority_map_5);
99                 break;
100         default:
101                 rte_errno = ENOTSUP;
102                 DRV_LOG(ERR,
103                         "port %u verbs maximum priority: %d expected 8/16",
104                         dev->data->port_id, priority);
105                 return -rte_errno;
106         }
107         DRV_LOG(INFO, "port %u flow maximum priority: %d",
108                 dev->data->port_id, priority);
109         return priority;
110 }
111
112 /**
113  * Adjust flow priority based on the highest layer and the request priority.
114  *
115  * @param[in] dev
116  *   Pointer to the Ethernet device structure.
117  * @param[in] priority
118  *   The rule base priority.
119  * @param[in] subpriority
120  *   The priority based on the items.
121  *
122  * @return
123  *   The new priority.
124  */
125 uint32_t
126 mlx5_flow_adjust_priority(struct rte_eth_dev *dev, int32_t priority,
127                                    uint32_t subpriority)
128 {
129         uint32_t res = 0;
130         struct mlx5_priv *priv = dev->data->dev_private;
131
132         switch (priv->config.flow_prio) {
133         case RTE_DIM(priority_map_3):
134                 res = priority_map_3[priority][subpriority];
135                 break;
136         case RTE_DIM(priority_map_5):
137                 res = priority_map_5[priority][subpriority];
138                 break;
139         }
140         return  res;
141 }
142
143 /**
144  * Get Verbs flow counter by index.
145  *
146  * @param[in] dev
147  *   Pointer to the Ethernet device structure.
148  * @param[in] idx
149  *   mlx5 flow counter index in the container.
150  * @param[out] ppool
151  *   mlx5 flow counter pool in the container,
152  *
153  * @return
154  *   A pointer to the counter, NULL otherwise.
155  */
156 static struct mlx5_flow_counter *
157 flow_verbs_counter_get_by_idx(struct rte_eth_dev *dev,
158                               uint32_t idx,
159                               struct mlx5_flow_counter_pool **ppool)
160 {
161         struct mlx5_priv *priv = dev->data->dev_private;
162         struct mlx5_pools_container *cont = MLX5_CNT_CONTAINER(priv->sh, 0, 0);
163         struct mlx5_flow_counter_pool *pool;
164
165         idx--;
166         pool = cont->pools[idx / MLX5_COUNTERS_PER_POOL];
167         MLX5_ASSERT(pool);
168         if (ppool)
169                 *ppool = pool;
170         return MLX5_POOL_GET_CNT(pool, idx % MLX5_COUNTERS_PER_POOL);
171 }
172
173 /**
174  * Create Verbs flow counter with Verbs library.
175  *
176  * @param[in] dev
177  *   Pointer to the Ethernet device structure.
178  * @param[in, out] counter
179  *   mlx5 flow counter object, contains the counter id,
180  *   handle of created Verbs flow counter is returned
181  *   in cs field (if counters are supported).
182  *
183  * @return
184  *   0 On success else a negative errno value is returned
185  *   and rte_errno is set.
186  */
187 static int
188 flow_verbs_counter_create(struct rte_eth_dev *dev,
189                           struct mlx5_flow_counter_ext *counter)
190 {
191 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42)
192         struct mlx5_priv *priv = dev->data->dev_private;
193         struct ibv_context *ctx = priv->sh->ctx;
194         struct ibv_counter_set_init_attr init = {
195                          .counter_set_id = counter->id};
196
197         counter->cs = mlx5_glue->create_counter_set(ctx, &init);
198         if (!counter->cs) {
199                 rte_errno = ENOTSUP;
200                 return -ENOTSUP;
201         }
202         return 0;
203 #elif defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
204         struct mlx5_priv *priv = dev->data->dev_private;
205         struct ibv_context *ctx = priv->sh->ctx;
206         struct ibv_counters_init_attr init = {0};
207         struct ibv_counter_attach_attr attach;
208         int ret;
209
210         memset(&attach, 0, sizeof(attach));
211         counter->cs = mlx5_glue->create_counters(ctx, &init);
212         if (!counter->cs) {
213                 rte_errno = ENOTSUP;
214                 return -ENOTSUP;
215         }
216         attach.counter_desc = IBV_COUNTER_PACKETS;
217         attach.index = 0;
218         ret = mlx5_glue->attach_counters(counter->cs, &attach, NULL);
219         if (!ret) {
220                 attach.counter_desc = IBV_COUNTER_BYTES;
221                 attach.index = 1;
222                 ret = mlx5_glue->attach_counters
223                                         (counter->cs, &attach, NULL);
224         }
225         if (ret) {
226                 claim_zero(mlx5_glue->destroy_counters(counter->cs));
227                 counter->cs = NULL;
228                 rte_errno = ret;
229                 return -ret;
230         }
231         return 0;
232 #else
233         (void)dev;
234         (void)counter;
235         rte_errno = ENOTSUP;
236         return -ENOTSUP;
237 #endif
238 }
239
240 /**
241  * Get a flow counter.
242  *
243  * @param[in] dev
244  *   Pointer to the Ethernet device structure.
245  * @param[in] shared
246  *   Indicate if this counter is shared with other flows.
247  * @param[in] id
248  *   Counter identifier.
249  *
250  * @return
251  *   Index to the counter, 0 otherwise and rte_errno is set.
252  */
253 static uint32_t
254 flow_verbs_counter_new(struct rte_eth_dev *dev, uint32_t shared, uint32_t id)
255 {
256         struct mlx5_priv *priv = dev->data->dev_private;
257         struct mlx5_pools_container *cont = MLX5_CNT_CONTAINER(priv->sh, 0, 0);
258         struct mlx5_flow_counter_pool *pool = NULL;
259         struct mlx5_flow_counter_ext *cnt_ext = NULL;
260         struct mlx5_flow_counter *cnt = NULL;
261         uint32_t n_valid = rte_atomic16_read(&cont->n_valid);
262         uint32_t pool_idx;
263         uint32_t i;
264         int ret;
265
266         if (shared) {
267                 for (pool_idx = 0; pool_idx < n_valid; ++pool_idx) {
268                         pool = cont->pools[pool_idx];
269                         for (i = 0; i < MLX5_COUNTERS_PER_POOL; ++i) {
270                                 cnt_ext = MLX5_GET_POOL_CNT_EXT(pool, i);
271                                 if (cnt_ext->shared && cnt_ext->id == id) {
272                                         cnt_ext->ref_cnt++;
273                                         return MLX5_MAKE_CNT_IDX(pool_idx, i);
274                                 }
275                         }
276                 }
277         }
278         for (pool_idx = 0; pool_idx < n_valid; ++pool_idx) {
279                 pool = cont->pools[pool_idx];
280                 if (!pool)
281                         continue;
282                 cnt = TAILQ_FIRST(&pool->counters[0]);
283                 if (cnt)
284                         break;
285         }
286         if (!cnt) {
287                 struct mlx5_flow_counter_pool **pools;
288                 uint32_t size;
289
290                 if (n_valid == cont->n) {
291                         /* Resize the container pool array. */
292                         size = sizeof(struct mlx5_flow_counter_pool *) *
293                                      (n_valid + MLX5_CNT_CONTAINER_RESIZE);
294                         pools = mlx5_malloc(MLX5_MEM_ZERO, size, 0,
295                                             SOCKET_ID_ANY);
296                         if (!pools)
297                                 return 0;
298                         if (n_valid) {
299                                 memcpy(pools, cont->pools,
300                                        sizeof(struct mlx5_flow_counter_pool *) *
301                                        n_valid);
302                                 mlx5_free(cont->pools);
303                         }
304                         cont->pools = pools;
305                         cont->n += MLX5_CNT_CONTAINER_RESIZE;
306                 }
307                 /* Allocate memory for new pool*/
308                 size = sizeof(*pool) + (sizeof(*cnt_ext) + sizeof(*cnt)) *
309                        MLX5_COUNTERS_PER_POOL;
310                 pool = mlx5_malloc(MLX5_MEM_ZERO, size, 0, SOCKET_ID_ANY);
311                 if (!pool)
312                         return 0;
313                 pool->type |= CNT_POOL_TYPE_EXT;
314                 for (i = 0; i < MLX5_COUNTERS_PER_POOL; ++i) {
315                         cnt = MLX5_POOL_GET_CNT(pool, i);
316                         TAILQ_INSERT_HEAD(&pool->counters[0], cnt, next);
317                 }
318                 cnt = MLX5_POOL_GET_CNT(pool, 0);
319                 cont->pools[n_valid] = pool;
320                 pool_idx = n_valid;
321                 rte_atomic16_add(&cont->n_valid, 1);
322                 TAILQ_INSERT_HEAD(&cont->pool_list, pool, next);
323         }
324         i = MLX5_CNT_ARRAY_IDX(pool, cnt);
325         cnt_ext = MLX5_GET_POOL_CNT_EXT(pool, i);
326         cnt_ext->id = id;
327         cnt_ext->shared = shared;
328         cnt_ext->ref_cnt = 1;
329         cnt->hits = 0;
330         cnt->bytes = 0;
331         /* Create counter with Verbs. */
332         ret = flow_verbs_counter_create(dev, cnt_ext);
333         if (!ret) {
334                 TAILQ_REMOVE(&pool->counters[0], cnt, next);
335                 return MLX5_MAKE_CNT_IDX(pool_idx, i);
336         }
337         /* Some error occurred in Verbs library. */
338         rte_errno = -ret;
339         return 0;
340 }
341
342 /**
343  * Release a flow counter.
344  *
345  * @param[in] dev
346  *   Pointer to the Ethernet device structure.
347  * @param[in] counter
348  *   Index to the counter handler.
349  */
350 static void
351 flow_verbs_counter_release(struct rte_eth_dev *dev, uint32_t counter)
352 {
353         struct mlx5_flow_counter_pool *pool;
354         struct mlx5_flow_counter *cnt;
355         struct mlx5_flow_counter_ext *cnt_ext;
356
357         cnt = flow_verbs_counter_get_by_idx(dev, counter,
358                                             &pool);
359         cnt_ext = MLX5_CNT_TO_CNT_EXT(pool, cnt);
360         if (--cnt_ext->ref_cnt == 0) {
361 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42)
362                 claim_zero(mlx5_glue->destroy_counter_set(cnt_ext->cs));
363                 cnt_ext->cs = NULL;
364 #elif defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
365                 claim_zero(mlx5_glue->destroy_counters(cnt_ext->cs));
366                 cnt_ext->cs = NULL;
367 #endif
368                 TAILQ_INSERT_HEAD(&pool->counters[0], cnt, next);
369         }
370 }
371
372 /**
373  * Query a flow counter via Verbs library call.
374  *
375  * @see rte_flow_query()
376  * @see rte_flow_ops
377  */
378 static int
379 flow_verbs_counter_query(struct rte_eth_dev *dev __rte_unused,
380                          struct rte_flow *flow, void *data,
381                          struct rte_flow_error *error)
382 {
383 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42) || \
384         defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
385         if (flow->counter) {
386                 struct mlx5_flow_counter_pool *pool;
387                 struct mlx5_flow_counter *cnt = flow_verbs_counter_get_by_idx
388                                                 (dev, flow->counter, &pool);
389                 struct mlx5_flow_counter_ext *cnt_ext = MLX5_CNT_TO_CNT_EXT
390                                                 (pool, cnt);
391                 struct rte_flow_query_count *qc = data;
392                 uint64_t counters[2] = {0, 0};
393 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42)
394                 struct ibv_query_counter_set_attr query_cs_attr = {
395                         .cs = cnt_ext->cs,
396                         .query_flags = IBV_COUNTER_SET_FORCE_UPDATE,
397                 };
398                 struct ibv_counter_set_data query_out = {
399                         .out = counters,
400                         .outlen = 2 * sizeof(uint64_t),
401                 };
402                 int err = mlx5_glue->query_counter_set(&query_cs_attr,
403                                                        &query_out);
404 #elif defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
405                 int err = mlx5_glue->query_counters
406                                (cnt_ext->cs, counters,
407                                 RTE_DIM(counters),
408                                 IBV_READ_COUNTERS_ATTR_PREFER_CACHED);
409 #endif
410                 if (err)
411                         return rte_flow_error_set
412                                 (error, err,
413                                  RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
414                                  NULL,
415                                  "cannot read counter");
416                 qc->hits_set = 1;
417                 qc->bytes_set = 1;
418                 qc->hits = counters[0] - cnt->hits;
419                 qc->bytes = counters[1] - cnt->bytes;
420                 if (qc->reset) {
421                         cnt->hits = counters[0];
422                         cnt->bytes = counters[1];
423                 }
424                 return 0;
425         }
426         return rte_flow_error_set(error, EINVAL,
427                                   RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
428                                   NULL,
429                                   "flow does not have counter");
430 #else
431         (void)flow;
432         (void)data;
433         return rte_flow_error_set(error, ENOTSUP,
434                                   RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
435                                   NULL,
436                                   "counters are not available");
437 #endif
438 }
439
440 /**
441  * Add a verbs item specification into @p verbs.
442  *
443  * @param[out] verbs
444  *   Pointer to verbs structure.
445  * @param[in] src
446  *   Create specification.
447  * @param[in] size
448  *   Size in bytes of the specification to copy.
449  */
450 static void
451 flow_verbs_spec_add(struct mlx5_flow_verbs_workspace *verbs,
452                     void *src, unsigned int size)
453 {
454         void *dst;
455
456         if (!verbs)
457                 return;
458         MLX5_ASSERT(verbs->specs);
459         dst = (void *)(verbs->specs + verbs->size);
460         memcpy(dst, src, size);
461         ++verbs->attr.num_of_specs;
462         verbs->size += size;
463 }
464
465 /**
466  * Convert the @p item into a Verbs specification. This function assumes that
467  * the input is valid and that there is space to insert the requested item
468  * into the flow.
469  *
470  * @param[in, out] dev_flow
471  *   Pointer to dev_flow structure.
472  * @param[in] item
473  *   Item specification.
474  * @param[in] item_flags
475  *   Parsed item flags.
476  */
477 static void
478 flow_verbs_translate_item_eth(struct mlx5_flow *dev_flow,
479                               const struct rte_flow_item *item,
480                               uint64_t item_flags)
481 {
482         const struct rte_flow_item_eth *spec = item->spec;
483         const struct rte_flow_item_eth *mask = item->mask;
484         const unsigned int size = sizeof(struct ibv_flow_spec_eth);
485         struct ibv_flow_spec_eth eth = {
486                 .type = IBV_FLOW_SPEC_ETH | VERBS_SPEC_INNER(item_flags),
487                 .size = size,
488         };
489
490         if (!mask)
491                 mask = &rte_flow_item_eth_mask;
492         if (spec) {
493                 unsigned int i;
494
495                 memcpy(&eth.val.dst_mac, spec->dst.addr_bytes,
496                         RTE_ETHER_ADDR_LEN);
497                 memcpy(&eth.val.src_mac, spec->src.addr_bytes,
498                         RTE_ETHER_ADDR_LEN);
499                 eth.val.ether_type = spec->type;
500                 memcpy(&eth.mask.dst_mac, mask->dst.addr_bytes,
501                         RTE_ETHER_ADDR_LEN);
502                 memcpy(&eth.mask.src_mac, mask->src.addr_bytes,
503                         RTE_ETHER_ADDR_LEN);
504                 eth.mask.ether_type = mask->type;
505                 /* Remove unwanted bits from values. */
506                 for (i = 0; i < RTE_ETHER_ADDR_LEN; ++i) {
507                         eth.val.dst_mac[i] &= eth.mask.dst_mac[i];
508                         eth.val.src_mac[i] &= eth.mask.src_mac[i];
509                 }
510                 eth.val.ether_type &= eth.mask.ether_type;
511         }
512         flow_verbs_spec_add(&dev_flow->verbs, &eth, size);
513 }
514
515 /**
516  * Update the VLAN tag in the Verbs Ethernet specification.
517  * This function assumes that the input is valid and there is space to add
518  * the requested item.
519  *
520  * @param[in, out] attr
521  *   Pointer to Verbs attributes structure.
522  * @param[in] eth
523  *   Verbs structure containing the VLAN information to copy.
524  */
525 static void
526 flow_verbs_item_vlan_update(struct ibv_flow_attr *attr,
527                             struct ibv_flow_spec_eth *eth)
528 {
529         unsigned int i;
530         const enum ibv_flow_spec_type search = eth->type;
531         struct ibv_spec_header *hdr = (struct ibv_spec_header *)
532                 ((uint8_t *)attr + sizeof(struct ibv_flow_attr));
533
534         for (i = 0; i != attr->num_of_specs; ++i) {
535                 if (hdr->type == search) {
536                         struct ibv_flow_spec_eth *e =
537                                 (struct ibv_flow_spec_eth *)hdr;
538
539                         e->val.vlan_tag = eth->val.vlan_tag;
540                         e->mask.vlan_tag = eth->mask.vlan_tag;
541                         e->val.ether_type = eth->val.ether_type;
542                         e->mask.ether_type = eth->mask.ether_type;
543                         break;
544                 }
545                 hdr = (struct ibv_spec_header *)((uint8_t *)hdr + hdr->size);
546         }
547 }
548
549 /**
550  * Convert the @p item into a Verbs specification. This function assumes that
551  * the input is valid and that there is space to insert the requested item
552  * into the flow.
553  *
554  * @param[in, out] dev_flow
555  *   Pointer to dev_flow structure.
556  * @param[in] item
557  *   Item specification.
558  * @param[in] item_flags
559  *   Parsed item flags.
560  */
561 static void
562 flow_verbs_translate_item_vlan(struct mlx5_flow *dev_flow,
563                                const struct rte_flow_item *item,
564                                uint64_t item_flags)
565 {
566         const struct rte_flow_item_vlan *spec = item->spec;
567         const struct rte_flow_item_vlan *mask = item->mask;
568         unsigned int size = sizeof(struct ibv_flow_spec_eth);
569         const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
570         struct ibv_flow_spec_eth eth = {
571                 .type = IBV_FLOW_SPEC_ETH | VERBS_SPEC_INNER(item_flags),
572                 .size = size,
573         };
574         const uint32_t l2m = tunnel ? MLX5_FLOW_LAYER_INNER_L2 :
575                                       MLX5_FLOW_LAYER_OUTER_L2;
576
577         if (!mask)
578                 mask = &rte_flow_item_vlan_mask;
579         if (spec) {
580                 eth.val.vlan_tag = spec->tci;
581                 eth.mask.vlan_tag = mask->tci;
582                 eth.val.vlan_tag &= eth.mask.vlan_tag;
583                 eth.val.ether_type = spec->inner_type;
584                 eth.mask.ether_type = mask->inner_type;
585                 eth.val.ether_type &= eth.mask.ether_type;
586         }
587         if (!(item_flags & l2m))
588                 flow_verbs_spec_add(&dev_flow->verbs, &eth, size);
589         else
590                 flow_verbs_item_vlan_update(&dev_flow->verbs.attr, &eth);
591         if (!tunnel)
592                 dev_flow->handle->vf_vlan.tag =
593                         rte_be_to_cpu_16(spec->tci) & 0x0fff;
594 }
595
596 /**
597  * Convert the @p item into a Verbs specification. This function assumes that
598  * the input is valid and that there is space to insert the requested item
599  * into the flow.
600  *
601  * @param[in, out] dev_flow
602  *   Pointer to dev_flow structure.
603  * @param[in] item
604  *   Item specification.
605  * @param[in] item_flags
606  *   Parsed item flags.
607  */
608 static void
609 flow_verbs_translate_item_ipv4(struct mlx5_flow *dev_flow,
610                                const struct rte_flow_item *item,
611                                uint64_t item_flags)
612 {
613         const struct rte_flow_item_ipv4 *spec = item->spec;
614         const struct rte_flow_item_ipv4 *mask = item->mask;
615         unsigned int size = sizeof(struct ibv_flow_spec_ipv4_ext);
616         struct ibv_flow_spec_ipv4_ext ipv4 = {
617                 .type = IBV_FLOW_SPEC_IPV4_EXT | VERBS_SPEC_INNER(item_flags),
618                 .size = size,
619         };
620
621         if (!mask)
622                 mask = &rte_flow_item_ipv4_mask;
623         if (spec) {
624                 ipv4.val = (struct ibv_flow_ipv4_ext_filter){
625                         .src_ip = spec->hdr.src_addr,
626                         .dst_ip = spec->hdr.dst_addr,
627                         .proto = spec->hdr.next_proto_id,
628                         .tos = spec->hdr.type_of_service,
629                 };
630                 ipv4.mask = (struct ibv_flow_ipv4_ext_filter){
631                         .src_ip = mask->hdr.src_addr,
632                         .dst_ip = mask->hdr.dst_addr,
633                         .proto = mask->hdr.next_proto_id,
634                         .tos = mask->hdr.type_of_service,
635                 };
636                 /* Remove unwanted bits from values. */
637                 ipv4.val.src_ip &= ipv4.mask.src_ip;
638                 ipv4.val.dst_ip &= ipv4.mask.dst_ip;
639                 ipv4.val.proto &= ipv4.mask.proto;
640                 ipv4.val.tos &= ipv4.mask.tos;
641         }
642         flow_verbs_spec_add(&dev_flow->verbs, &ipv4, size);
643 }
644
645 /**
646  * Convert the @p item into a Verbs specification. This function assumes that
647  * the input is valid and that there is space to insert the requested item
648  * into the flow.
649  *
650  * @param[in, out] dev_flow
651  *   Pointer to dev_flow structure.
652  * @param[in] item
653  *   Item specification.
654  * @param[in] item_flags
655  *   Parsed item flags.
656  */
657 static void
658 flow_verbs_translate_item_ipv6(struct mlx5_flow *dev_flow,
659                                const struct rte_flow_item *item,
660                                uint64_t item_flags)
661 {
662         const struct rte_flow_item_ipv6 *spec = item->spec;
663         const struct rte_flow_item_ipv6 *mask = item->mask;
664         unsigned int size = sizeof(struct ibv_flow_spec_ipv6);
665         struct ibv_flow_spec_ipv6 ipv6 = {
666                 .type = IBV_FLOW_SPEC_IPV6 | VERBS_SPEC_INNER(item_flags),
667                 .size = size,
668         };
669
670         if (!mask)
671                 mask = &rte_flow_item_ipv6_mask;
672         if (spec) {
673                 unsigned int i;
674                 uint32_t vtc_flow_val;
675                 uint32_t vtc_flow_mask;
676
677                 memcpy(&ipv6.val.src_ip, spec->hdr.src_addr,
678                        RTE_DIM(ipv6.val.src_ip));
679                 memcpy(&ipv6.val.dst_ip, spec->hdr.dst_addr,
680                        RTE_DIM(ipv6.val.dst_ip));
681                 memcpy(&ipv6.mask.src_ip, mask->hdr.src_addr,
682                        RTE_DIM(ipv6.mask.src_ip));
683                 memcpy(&ipv6.mask.dst_ip, mask->hdr.dst_addr,
684                        RTE_DIM(ipv6.mask.dst_ip));
685                 vtc_flow_val = rte_be_to_cpu_32(spec->hdr.vtc_flow);
686                 vtc_flow_mask = rte_be_to_cpu_32(mask->hdr.vtc_flow);
687                 ipv6.val.flow_label =
688                         rte_cpu_to_be_32((vtc_flow_val & RTE_IPV6_HDR_FL_MASK) >>
689                                          RTE_IPV6_HDR_FL_SHIFT);
690                 ipv6.val.traffic_class = (vtc_flow_val & RTE_IPV6_HDR_TC_MASK) >>
691                                          RTE_IPV6_HDR_TC_SHIFT;
692                 ipv6.val.next_hdr = spec->hdr.proto;
693                 ipv6.mask.flow_label =
694                         rte_cpu_to_be_32((vtc_flow_mask & RTE_IPV6_HDR_FL_MASK) >>
695                                          RTE_IPV6_HDR_FL_SHIFT);
696                 ipv6.mask.traffic_class = (vtc_flow_mask & RTE_IPV6_HDR_TC_MASK) >>
697                                           RTE_IPV6_HDR_TC_SHIFT;
698                 ipv6.mask.next_hdr = mask->hdr.proto;
699                 /* Remove unwanted bits from values. */
700                 for (i = 0; i < RTE_DIM(ipv6.val.src_ip); ++i) {
701                         ipv6.val.src_ip[i] &= ipv6.mask.src_ip[i];
702                         ipv6.val.dst_ip[i] &= ipv6.mask.dst_ip[i];
703                 }
704                 ipv6.val.flow_label &= ipv6.mask.flow_label;
705                 ipv6.val.traffic_class &= ipv6.mask.traffic_class;
706                 ipv6.val.next_hdr &= ipv6.mask.next_hdr;
707         }
708         flow_verbs_spec_add(&dev_flow->verbs, &ipv6, size);
709 }
710
711 /**
712  * Convert the @p item into a Verbs specification. This function assumes that
713  * the input is valid and that there is space to insert the requested item
714  * into the flow.
715  *
716  * @param[in, out] dev_flow
717  *   Pointer to dev_flow structure.
718  * @param[in] item
719  *   Item specification.
720  * @param[in] item_flags
721  *   Parsed item flags.
722  */
723 static void
724 flow_verbs_translate_item_tcp(struct mlx5_flow *dev_flow,
725                               const struct rte_flow_item *item,
726                               uint64_t item_flags __rte_unused)
727 {
728         const struct rte_flow_item_tcp *spec = item->spec;
729         const struct rte_flow_item_tcp *mask = item->mask;
730         unsigned int size = sizeof(struct ibv_flow_spec_tcp_udp);
731         struct ibv_flow_spec_tcp_udp tcp = {
732                 .type = IBV_FLOW_SPEC_TCP | VERBS_SPEC_INNER(item_flags),
733                 .size = size,
734         };
735
736         if (!mask)
737                 mask = &rte_flow_item_tcp_mask;
738         if (spec) {
739                 tcp.val.dst_port = spec->hdr.dst_port;
740                 tcp.val.src_port = spec->hdr.src_port;
741                 tcp.mask.dst_port = mask->hdr.dst_port;
742                 tcp.mask.src_port = mask->hdr.src_port;
743                 /* Remove unwanted bits from values. */
744                 tcp.val.src_port &= tcp.mask.src_port;
745                 tcp.val.dst_port &= tcp.mask.dst_port;
746         }
747         flow_verbs_spec_add(&dev_flow->verbs, &tcp, size);
748 }
749
750 /**
751  * Convert the @p item into a Verbs specification. This function assumes that
752  * the input is valid and that there is space to insert the requested item
753  * into the flow.
754  *
755  * @param[in, out] dev_flow
756  *   Pointer to dev_flow structure.
757  * @param[in] item
758  *   Item specification.
759  * @param[in] item_flags
760  *   Parsed item flags.
761  */
762 static void
763 flow_verbs_translate_item_udp(struct mlx5_flow *dev_flow,
764                               const struct rte_flow_item *item,
765                               uint64_t item_flags __rte_unused)
766 {
767         const struct rte_flow_item_udp *spec = item->spec;
768         const struct rte_flow_item_udp *mask = item->mask;
769         unsigned int size = sizeof(struct ibv_flow_spec_tcp_udp);
770         struct ibv_flow_spec_tcp_udp udp = {
771                 .type = IBV_FLOW_SPEC_UDP | VERBS_SPEC_INNER(item_flags),
772                 .size = size,
773         };
774
775         if (!mask)
776                 mask = &rte_flow_item_udp_mask;
777         if (spec) {
778                 udp.val.dst_port = spec->hdr.dst_port;
779                 udp.val.src_port = spec->hdr.src_port;
780                 udp.mask.dst_port = mask->hdr.dst_port;
781                 udp.mask.src_port = mask->hdr.src_port;
782                 /* Remove unwanted bits from values. */
783                 udp.val.src_port &= udp.mask.src_port;
784                 udp.val.dst_port &= udp.mask.dst_port;
785         }
786         item++;
787         while (item->type == RTE_FLOW_ITEM_TYPE_VOID)
788                 item++;
789         if (!(udp.val.dst_port & udp.mask.dst_port)) {
790                 switch ((item)->type) {
791                 case RTE_FLOW_ITEM_TYPE_VXLAN:
792                         udp.val.dst_port = htons(MLX5_UDP_PORT_VXLAN);
793                         udp.mask.dst_port = 0xffff;
794                         break;
795                 case RTE_FLOW_ITEM_TYPE_VXLAN_GPE:
796                         udp.val.dst_port = htons(MLX5_UDP_PORT_VXLAN_GPE);
797                         udp.mask.dst_port = 0xffff;
798                         break;
799                 case RTE_FLOW_ITEM_TYPE_MPLS:
800                         udp.val.dst_port = htons(MLX5_UDP_PORT_MPLS);
801                         udp.mask.dst_port = 0xffff;
802                         break;
803                 default:
804                         break;
805                 }
806         }
807
808         flow_verbs_spec_add(&dev_flow->verbs, &udp, size);
809 }
810
811 /**
812  * Convert the @p item into a Verbs specification. This function assumes that
813  * the input is valid and that there is space to insert the requested item
814  * into the flow.
815  *
816  * @param[in, out] dev_flow
817  *   Pointer to dev_flow structure.
818  * @param[in] item
819  *   Item specification.
820  * @param[in] item_flags
821  *   Parsed item flags.
822  */
823 static void
824 flow_verbs_translate_item_vxlan(struct mlx5_flow *dev_flow,
825                                 const struct rte_flow_item *item,
826                                 uint64_t item_flags __rte_unused)
827 {
828         const struct rte_flow_item_vxlan *spec = item->spec;
829         const struct rte_flow_item_vxlan *mask = item->mask;
830         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
831         struct ibv_flow_spec_tunnel vxlan = {
832                 .type = IBV_FLOW_SPEC_VXLAN_TUNNEL,
833                 .size = size,
834         };
835         union vni {
836                 uint32_t vlan_id;
837                 uint8_t vni[4];
838         } id = { .vlan_id = 0, };
839
840         if (!mask)
841                 mask = &rte_flow_item_vxlan_mask;
842         if (spec) {
843                 memcpy(&id.vni[1], spec->vni, 3);
844                 vxlan.val.tunnel_id = id.vlan_id;
845                 memcpy(&id.vni[1], mask->vni, 3);
846                 vxlan.mask.tunnel_id = id.vlan_id;
847                 /* Remove unwanted bits from values. */
848                 vxlan.val.tunnel_id &= vxlan.mask.tunnel_id;
849         }
850         flow_verbs_spec_add(&dev_flow->verbs, &vxlan, size);
851 }
852
853 /**
854  * Convert the @p item into a Verbs specification. This function assumes that
855  * the input is valid and that there is space to insert the requested item
856  * into the flow.
857  *
858  * @param[in, out] dev_flow
859  *   Pointer to dev_flow structure.
860  * @param[in] item
861  *   Item specification.
862  * @param[in] item_flags
863  *   Parsed item flags.
864  */
865 static void
866 flow_verbs_translate_item_vxlan_gpe(struct mlx5_flow *dev_flow,
867                                     const struct rte_flow_item *item,
868                                     uint64_t item_flags __rte_unused)
869 {
870         const struct rte_flow_item_vxlan_gpe *spec = item->spec;
871         const struct rte_flow_item_vxlan_gpe *mask = item->mask;
872         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
873         struct ibv_flow_spec_tunnel vxlan_gpe = {
874                 .type = IBV_FLOW_SPEC_VXLAN_TUNNEL,
875                 .size = size,
876         };
877         union vni {
878                 uint32_t vlan_id;
879                 uint8_t vni[4];
880         } id = { .vlan_id = 0, };
881
882         if (!mask)
883                 mask = &rte_flow_item_vxlan_gpe_mask;
884         if (spec) {
885                 memcpy(&id.vni[1], spec->vni, 3);
886                 vxlan_gpe.val.tunnel_id = id.vlan_id;
887                 memcpy(&id.vni[1], mask->vni, 3);
888                 vxlan_gpe.mask.tunnel_id = id.vlan_id;
889                 /* Remove unwanted bits from values. */
890                 vxlan_gpe.val.tunnel_id &= vxlan_gpe.mask.tunnel_id;
891         }
892         flow_verbs_spec_add(&dev_flow->verbs, &vxlan_gpe, size);
893 }
894
895 /**
896  * Update the protocol in Verbs IPv4/IPv6 spec.
897  *
898  * @param[in, out] attr
899  *   Pointer to Verbs attributes structure.
900  * @param[in] search
901  *   Specification type to search in order to update the IP protocol.
902  * @param[in] protocol
903  *   Protocol value to set if none is present in the specification.
904  */
905 static void
906 flow_verbs_item_gre_ip_protocol_update(struct ibv_flow_attr *attr,
907                                        enum ibv_flow_spec_type search,
908                                        uint8_t protocol)
909 {
910         unsigned int i;
911         struct ibv_spec_header *hdr = (struct ibv_spec_header *)
912                 ((uint8_t *)attr + sizeof(struct ibv_flow_attr));
913
914         if (!attr)
915                 return;
916         for (i = 0; i != attr->num_of_specs; ++i) {
917                 if (hdr->type == search) {
918                         union {
919                                 struct ibv_flow_spec_ipv4_ext *ipv4;
920                                 struct ibv_flow_spec_ipv6 *ipv6;
921                         } ip;
922
923                         switch (search) {
924                         case IBV_FLOW_SPEC_IPV4_EXT:
925                                 ip.ipv4 = (struct ibv_flow_spec_ipv4_ext *)hdr;
926                                 if (!ip.ipv4->val.proto) {
927                                         ip.ipv4->val.proto = protocol;
928                                         ip.ipv4->mask.proto = 0xff;
929                                 }
930                                 break;
931                         case IBV_FLOW_SPEC_IPV6:
932                                 ip.ipv6 = (struct ibv_flow_spec_ipv6 *)hdr;
933                                 if (!ip.ipv6->val.next_hdr) {
934                                         ip.ipv6->val.next_hdr = protocol;
935                                         ip.ipv6->mask.next_hdr = 0xff;
936                                 }
937                                 break;
938                         default:
939                                 break;
940                         }
941                         break;
942                 }
943                 hdr = (struct ibv_spec_header *)((uint8_t *)hdr + hdr->size);
944         }
945 }
946
947 /**
948  * Convert the @p item into a Verbs specification. This function assumes that
949  * the input is valid and that there is space to insert the requested item
950  * into the flow.
951  *
952  * @param[in, out] dev_flow
953  *   Pointer to dev_flow structure.
954  * @param[in] item
955  *   Item specification.
956  * @param[in] item_flags
957  *   Parsed item flags.
958  */
959 static void
960 flow_verbs_translate_item_gre(struct mlx5_flow *dev_flow,
961                               const struct rte_flow_item *item __rte_unused,
962                               uint64_t item_flags)
963 {
964         struct mlx5_flow_verbs_workspace *verbs = &dev_flow->verbs;
965 #ifndef HAVE_IBV_DEVICE_MPLS_SUPPORT
966         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
967         struct ibv_flow_spec_tunnel tunnel = {
968                 .type = IBV_FLOW_SPEC_VXLAN_TUNNEL,
969                 .size = size,
970         };
971 #else
972         const struct rte_flow_item_gre *spec = item->spec;
973         const struct rte_flow_item_gre *mask = item->mask;
974         unsigned int size = sizeof(struct ibv_flow_spec_gre);
975         struct ibv_flow_spec_gre tunnel = {
976                 .type = IBV_FLOW_SPEC_GRE,
977                 .size = size,
978         };
979
980         if (!mask)
981                 mask = &rte_flow_item_gre_mask;
982         if (spec) {
983                 tunnel.val.c_ks_res0_ver = spec->c_rsvd0_ver;
984                 tunnel.val.protocol = spec->protocol;
985                 tunnel.mask.c_ks_res0_ver = mask->c_rsvd0_ver;
986                 tunnel.mask.protocol = mask->protocol;
987                 /* Remove unwanted bits from values. */
988                 tunnel.val.c_ks_res0_ver &= tunnel.mask.c_ks_res0_ver;
989                 tunnel.val.protocol &= tunnel.mask.protocol;
990                 tunnel.val.key &= tunnel.mask.key;
991         }
992 #endif
993         if (item_flags & MLX5_FLOW_LAYER_OUTER_L3_IPV4)
994                 flow_verbs_item_gre_ip_protocol_update(&verbs->attr,
995                                                        IBV_FLOW_SPEC_IPV4_EXT,
996                                                        IPPROTO_GRE);
997         else
998                 flow_verbs_item_gre_ip_protocol_update(&verbs->attr,
999                                                        IBV_FLOW_SPEC_IPV6,
1000                                                        IPPROTO_GRE);
1001         flow_verbs_spec_add(verbs, &tunnel, size);
1002 }
1003
1004 /**
1005  * Convert the @p action into a Verbs specification. This function assumes that
1006  * the input is valid and that there is space to insert the requested action
1007  * into the flow. This function also return the action that was added.
1008  *
1009  * @param[in, out] dev_flow
1010  *   Pointer to dev_flow structure.
1011  * @param[in] item
1012  *   Item specification.
1013  * @param[in] item_flags
1014  *   Parsed item flags.
1015  */
1016 static void
1017 flow_verbs_translate_item_mpls(struct mlx5_flow *dev_flow __rte_unused,
1018                                const struct rte_flow_item *item __rte_unused,
1019                                uint64_t item_flags __rte_unused)
1020 {
1021 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
1022         const struct rte_flow_item_mpls *spec = item->spec;
1023         const struct rte_flow_item_mpls *mask = item->mask;
1024         unsigned int size = sizeof(struct ibv_flow_spec_mpls);
1025         struct ibv_flow_spec_mpls mpls = {
1026                 .type = IBV_FLOW_SPEC_MPLS,
1027                 .size = size,
1028         };
1029
1030         if (!mask)
1031                 mask = &rte_flow_item_mpls_mask;
1032         if (spec) {
1033                 memcpy(&mpls.val.label, spec, sizeof(mpls.val.label));
1034                 memcpy(&mpls.mask.label, mask, sizeof(mpls.mask.label));
1035                 /* Remove unwanted bits from values.  */
1036                 mpls.val.label &= mpls.mask.label;
1037         }
1038         flow_verbs_spec_add(&dev_flow->verbs, &mpls, size);
1039 #endif
1040 }
1041
1042 /**
1043  * Convert the @p action into a Verbs specification. This function assumes that
1044  * the input is valid and that there is space to insert the requested action
1045  * into the flow.
1046  *
1047  * @param[in] dev_flow
1048  *   Pointer to mlx5_flow.
1049  * @param[in] action
1050  *   Action configuration.
1051  */
1052 static void
1053 flow_verbs_translate_action_drop
1054         (struct mlx5_flow *dev_flow,
1055          const struct rte_flow_action *action __rte_unused)
1056 {
1057         unsigned int size = sizeof(struct ibv_flow_spec_action_drop);
1058         struct ibv_flow_spec_action_drop drop = {
1059                         .type = IBV_FLOW_SPEC_ACTION_DROP,
1060                         .size = size,
1061         };
1062
1063         flow_verbs_spec_add(&dev_flow->verbs, &drop, size);
1064 }
1065
1066 /**
1067  * Convert the @p action into a Verbs specification. This function assumes that
1068  * the input is valid and that there is space to insert the requested action
1069  * into the flow.
1070  *
1071  * @param[in] rss_desc
1072  *   Pointer to mlx5_flow_rss_desc.
1073  * @param[in] action
1074  *   Action configuration.
1075  */
1076 static void
1077 flow_verbs_translate_action_queue(struct mlx5_flow_rss_desc *rss_desc,
1078                                   const struct rte_flow_action *action)
1079 {
1080         const struct rte_flow_action_queue *queue = action->conf;
1081
1082         rss_desc->queue[0] = queue->index;
1083         rss_desc->queue_num = 1;
1084 }
1085
1086 /**
1087  * Convert the @p action into a Verbs specification. This function assumes that
1088  * the input is valid and that there is space to insert the requested action
1089  * into the flow.
1090  *
1091  * @param[in] rss_desc
1092  *   Pointer to mlx5_flow_rss_desc.
1093  * @param[in] action
1094  *   Action configuration.
1095  */
1096 static void
1097 flow_verbs_translate_action_rss(struct mlx5_flow_rss_desc *rss_desc,
1098                                 const struct rte_flow_action *action)
1099 {
1100         const struct rte_flow_action_rss *rss = action->conf;
1101         const uint8_t *rss_key;
1102
1103         memcpy(rss_desc->queue, rss->queue, rss->queue_num * sizeof(uint16_t));
1104         rss_desc->queue_num = rss->queue_num;
1105         /* NULL RSS key indicates default RSS key. */
1106         rss_key = !rss->key ? rss_hash_default_key : rss->key;
1107         memcpy(rss_desc->key, rss_key, MLX5_RSS_HASH_KEY_LEN);
1108         /*
1109          * rss->level and rss.types should be set in advance when expanding
1110          * items for RSS.
1111          */
1112 }
1113
1114 /**
1115  * Convert the @p action into a Verbs specification. This function assumes that
1116  * the input is valid and that there is space to insert the requested action
1117  * into the flow.
1118  *
1119  * @param[in] dev_flow
1120  *   Pointer to mlx5_flow.
1121  * @param[in] action
1122  *   Action configuration.
1123  */
1124 static void
1125 flow_verbs_translate_action_flag
1126         (struct mlx5_flow *dev_flow,
1127          const struct rte_flow_action *action __rte_unused)
1128 {
1129         unsigned int size = sizeof(struct ibv_flow_spec_action_tag);
1130         struct ibv_flow_spec_action_tag tag = {
1131                 .type = IBV_FLOW_SPEC_ACTION_TAG,
1132                 .size = size,
1133                 .tag_id = mlx5_flow_mark_set(MLX5_FLOW_MARK_DEFAULT),
1134         };
1135
1136         flow_verbs_spec_add(&dev_flow->verbs, &tag, size);
1137 }
1138
1139 /**
1140  * Convert the @p action into a Verbs specification. This function assumes that
1141  * the input is valid and that there is space to insert the requested action
1142  * into the flow.
1143  *
1144  * @param[in] dev_flow
1145  *   Pointer to mlx5_flow.
1146  * @param[in] action
1147  *   Action configuration.
1148  */
1149 static void
1150 flow_verbs_translate_action_mark(struct mlx5_flow *dev_flow,
1151                                  const struct rte_flow_action *action)
1152 {
1153         const struct rte_flow_action_mark *mark = action->conf;
1154         unsigned int size = sizeof(struct ibv_flow_spec_action_tag);
1155         struct ibv_flow_spec_action_tag tag = {
1156                 .type = IBV_FLOW_SPEC_ACTION_TAG,
1157                 .size = size,
1158                 .tag_id = mlx5_flow_mark_set(mark->id),
1159         };
1160
1161         flow_verbs_spec_add(&dev_flow->verbs, &tag, size);
1162 }
1163
1164 /**
1165  * Convert the @p action into a Verbs specification. This function assumes that
1166  * the input is valid and that there is space to insert the requested action
1167  * into the flow.
1168  *
1169  * @param[in] dev
1170  *   Pointer to the Ethernet device structure.
1171  * @param[in] action
1172  *   Action configuration.
1173  * @param[in] dev_flow
1174  *   Pointer to mlx5_flow.
1175  * @param[out] error
1176  *   Pointer to error structure.
1177  *
1178  * @return
1179  *   0 On success else a negative errno value is returned and rte_errno is set.
1180  */
1181 static int
1182 flow_verbs_translate_action_count(struct mlx5_flow *dev_flow,
1183                                   const struct rte_flow_action *action,
1184                                   struct rte_eth_dev *dev,
1185                                   struct rte_flow_error *error)
1186 {
1187         const struct rte_flow_action_count *count = action->conf;
1188         struct rte_flow *flow = dev_flow->flow;
1189 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42) || \
1190         defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
1191         struct mlx5_flow_counter_pool *pool;
1192         struct mlx5_flow_counter *cnt = NULL;
1193         struct mlx5_flow_counter_ext *cnt_ext;
1194         unsigned int size = sizeof(struct ibv_flow_spec_counter_action);
1195         struct ibv_flow_spec_counter_action counter = {
1196                 .type = IBV_FLOW_SPEC_ACTION_COUNT,
1197                 .size = size,
1198         };
1199 #endif
1200
1201         if (!flow->counter) {
1202                 flow->counter = flow_verbs_counter_new(dev, count->shared,
1203                                                        count->id);
1204                 if (!flow->counter)
1205                         return rte_flow_error_set(error, rte_errno,
1206                                                   RTE_FLOW_ERROR_TYPE_ACTION,
1207                                                   action,
1208                                                   "cannot get counter"
1209                                                   " context.");
1210         }
1211 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42)
1212         cnt = flow_verbs_counter_get_by_idx(dev, flow->counter, &pool);
1213         cnt_ext = MLX5_CNT_TO_CNT_EXT(pool, cnt);
1214         counter.counter_set_handle = cnt_ext->cs->handle;
1215         flow_verbs_spec_add(&dev_flow->verbs, &counter, size);
1216 #elif defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
1217         cnt = flow_verbs_counter_get_by_idx(dev, flow->counter, &pool);
1218         cnt_ext = MLX5_CNT_TO_CNT_EXT(pool, cnt);
1219         counter.counters = cnt_ext->cs;
1220         flow_verbs_spec_add(&dev_flow->verbs, &counter, size);
1221 #endif
1222         return 0;
1223 }
1224
1225 /**
1226  * Internal validation function. For validating both actions and items.
1227  *
1228  * @param[in] dev
1229  *   Pointer to the Ethernet device structure.
1230  * @param[in] attr
1231  *   Pointer to the flow attributes.
1232  * @param[in] items
1233  *   Pointer to the list of items.
1234  * @param[in] actions
1235  *   Pointer to the list of actions.
1236  * @param[in] external
1237  *   This flow rule is created by request external to PMD.
1238  * @param[in] hairpin
1239  *   Number of hairpin TX actions, 0 means classic flow.
1240  * @param[out] error
1241  *   Pointer to the error structure.
1242  *
1243  * @return
1244  *   0 on success, a negative errno value otherwise and rte_errno is set.
1245  */
1246 static int
1247 flow_verbs_validate(struct rte_eth_dev *dev,
1248                     const struct rte_flow_attr *attr,
1249                     const struct rte_flow_item items[],
1250                     const struct rte_flow_action actions[],
1251                     bool external __rte_unused,
1252                     int hairpin __rte_unused,
1253                     struct rte_flow_error *error)
1254 {
1255         int ret;
1256         uint64_t action_flags = 0;
1257         uint64_t item_flags = 0;
1258         uint64_t last_item = 0;
1259         uint8_t next_protocol = 0xff;
1260         uint16_t ether_type = 0;
1261
1262         if (items == NULL)
1263                 return -1;
1264         ret = mlx5_flow_validate_attributes(dev, attr, error);
1265         if (ret < 0)
1266                 return ret;
1267         for (; items->type != RTE_FLOW_ITEM_TYPE_END; items++) {
1268                 int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1269                 int ret = 0;
1270
1271                 switch (items->type) {
1272                 case RTE_FLOW_ITEM_TYPE_VOID:
1273                         break;
1274                 case RTE_FLOW_ITEM_TYPE_ETH:
1275                         ret = mlx5_flow_validate_item_eth(items, item_flags,
1276                                                           error);
1277                         if (ret < 0)
1278                                 return ret;
1279                         last_item = tunnel ? MLX5_FLOW_LAYER_INNER_L2 :
1280                                              MLX5_FLOW_LAYER_OUTER_L2;
1281                         if (items->mask != NULL && items->spec != NULL) {
1282                                 ether_type =
1283                                         ((const struct rte_flow_item_eth *)
1284                                          items->spec)->type;
1285                                 ether_type &=
1286                                         ((const struct rte_flow_item_eth *)
1287                                          items->mask)->type;
1288                                 ether_type = rte_be_to_cpu_16(ether_type);
1289                         } else {
1290                                 ether_type = 0;
1291                         }
1292                         break;
1293                 case RTE_FLOW_ITEM_TYPE_VLAN:
1294                         ret = mlx5_flow_validate_item_vlan(items, item_flags,
1295                                                            dev, error);
1296                         if (ret < 0)
1297                                 return ret;
1298                         last_item = tunnel ? (MLX5_FLOW_LAYER_INNER_L2 |
1299                                               MLX5_FLOW_LAYER_INNER_VLAN) :
1300                                              (MLX5_FLOW_LAYER_OUTER_L2 |
1301                                               MLX5_FLOW_LAYER_OUTER_VLAN);
1302                         if (items->mask != NULL && items->spec != NULL) {
1303                                 ether_type =
1304                                         ((const struct rte_flow_item_vlan *)
1305                                          items->spec)->inner_type;
1306                                 ether_type &=
1307                                         ((const struct rte_flow_item_vlan *)
1308                                          items->mask)->inner_type;
1309                                 ether_type = rte_be_to_cpu_16(ether_type);
1310                         } else {
1311                                 ether_type = 0;
1312                         }
1313                         break;
1314                 case RTE_FLOW_ITEM_TYPE_IPV4:
1315                         ret = mlx5_flow_validate_item_ipv4(items, item_flags,
1316                                                            last_item,
1317                                                            ether_type, NULL,
1318                                                            error);
1319                         if (ret < 0)
1320                                 return ret;
1321                         last_item = tunnel ? MLX5_FLOW_LAYER_INNER_L3_IPV4 :
1322                                              MLX5_FLOW_LAYER_OUTER_L3_IPV4;
1323                         if (items->mask != NULL &&
1324                             ((const struct rte_flow_item_ipv4 *)
1325                              items->mask)->hdr.next_proto_id) {
1326                                 next_protocol =
1327                                         ((const struct rte_flow_item_ipv4 *)
1328                                          (items->spec))->hdr.next_proto_id;
1329                                 next_protocol &=
1330                                         ((const struct rte_flow_item_ipv4 *)
1331                                          (items->mask))->hdr.next_proto_id;
1332                         } else {
1333                                 /* Reset for inner layer. */
1334                                 next_protocol = 0xff;
1335                         }
1336                         break;
1337                 case RTE_FLOW_ITEM_TYPE_IPV6:
1338                         ret = mlx5_flow_validate_item_ipv6(items, item_flags,
1339                                                            last_item,
1340                                                            ether_type, NULL,
1341                                                            error);
1342                         if (ret < 0)
1343                                 return ret;
1344                         last_item = tunnel ? MLX5_FLOW_LAYER_INNER_L3_IPV6 :
1345                                              MLX5_FLOW_LAYER_OUTER_L3_IPV6;
1346                         if (items->mask != NULL &&
1347                             ((const struct rte_flow_item_ipv6 *)
1348                              items->mask)->hdr.proto) {
1349                                 next_protocol =
1350                                         ((const struct rte_flow_item_ipv6 *)
1351                                          items->spec)->hdr.proto;
1352                                 next_protocol &=
1353                                         ((const struct rte_flow_item_ipv6 *)
1354                                          items->mask)->hdr.proto;
1355                         } else {
1356                                 /* Reset for inner layer. */
1357                                 next_protocol = 0xff;
1358                         }
1359                         break;
1360                 case RTE_FLOW_ITEM_TYPE_UDP:
1361                         ret = mlx5_flow_validate_item_udp(items, item_flags,
1362                                                           next_protocol,
1363                                                           error);
1364                         if (ret < 0)
1365                                 return ret;
1366                         last_item = tunnel ? MLX5_FLOW_LAYER_INNER_L4_UDP :
1367                                              MLX5_FLOW_LAYER_OUTER_L4_UDP;
1368                         break;
1369                 case RTE_FLOW_ITEM_TYPE_TCP:
1370                         ret = mlx5_flow_validate_item_tcp
1371                                                 (items, item_flags,
1372                                                  next_protocol,
1373                                                  &rte_flow_item_tcp_mask,
1374                                                  error);
1375                         if (ret < 0)
1376                                 return ret;
1377                         last_item = tunnel ? MLX5_FLOW_LAYER_INNER_L4_TCP :
1378                                              MLX5_FLOW_LAYER_OUTER_L4_TCP;
1379                         break;
1380                 case RTE_FLOW_ITEM_TYPE_VXLAN:
1381                         ret = mlx5_flow_validate_item_vxlan(items, item_flags,
1382                                                             error);
1383                         if (ret < 0)
1384                                 return ret;
1385                         last_item = MLX5_FLOW_LAYER_VXLAN;
1386                         break;
1387                 case RTE_FLOW_ITEM_TYPE_VXLAN_GPE:
1388                         ret = mlx5_flow_validate_item_vxlan_gpe(items,
1389                                                                 item_flags,
1390                                                                 dev, error);
1391                         if (ret < 0)
1392                                 return ret;
1393                         last_item = MLX5_FLOW_LAYER_VXLAN_GPE;
1394                         break;
1395                 case RTE_FLOW_ITEM_TYPE_GRE:
1396                         ret = mlx5_flow_validate_item_gre(items, item_flags,
1397                                                           next_protocol, error);
1398                         if (ret < 0)
1399                                 return ret;
1400                         last_item = MLX5_FLOW_LAYER_GRE;
1401                         break;
1402                 case RTE_FLOW_ITEM_TYPE_MPLS:
1403                         ret = mlx5_flow_validate_item_mpls(dev, items,
1404                                                            item_flags,
1405                                                            last_item, error);
1406                         if (ret < 0)
1407                                 return ret;
1408                         last_item = MLX5_FLOW_LAYER_MPLS;
1409                         break;
1410                 default:
1411                         return rte_flow_error_set(error, ENOTSUP,
1412                                                   RTE_FLOW_ERROR_TYPE_ITEM,
1413                                                   NULL, "item not supported");
1414                 }
1415                 item_flags |= last_item;
1416         }
1417         for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
1418                 switch (actions->type) {
1419                 case RTE_FLOW_ACTION_TYPE_VOID:
1420                         break;
1421                 case RTE_FLOW_ACTION_TYPE_FLAG:
1422                         ret = mlx5_flow_validate_action_flag(action_flags,
1423                                                              attr,
1424                                                              error);
1425                         if (ret < 0)
1426                                 return ret;
1427                         action_flags |= MLX5_FLOW_ACTION_FLAG;
1428                         break;
1429                 case RTE_FLOW_ACTION_TYPE_MARK:
1430                         ret = mlx5_flow_validate_action_mark(actions,
1431                                                              action_flags,
1432                                                              attr,
1433                                                              error);
1434                         if (ret < 0)
1435                                 return ret;
1436                         action_flags |= MLX5_FLOW_ACTION_MARK;
1437                         break;
1438                 case RTE_FLOW_ACTION_TYPE_DROP:
1439                         ret = mlx5_flow_validate_action_drop(action_flags,
1440                                                              attr,
1441                                                              error);
1442                         if (ret < 0)
1443                                 return ret;
1444                         action_flags |= MLX5_FLOW_ACTION_DROP;
1445                         break;
1446                 case RTE_FLOW_ACTION_TYPE_QUEUE:
1447                         ret = mlx5_flow_validate_action_queue(actions,
1448                                                               action_flags, dev,
1449                                                               attr,
1450                                                               error);
1451                         if (ret < 0)
1452                                 return ret;
1453                         action_flags |= MLX5_FLOW_ACTION_QUEUE;
1454                         break;
1455                 case RTE_FLOW_ACTION_TYPE_RSS:
1456                         ret = mlx5_flow_validate_action_rss(actions,
1457                                                             action_flags, dev,
1458                                                             attr, item_flags,
1459                                                             error);
1460                         if (ret < 0)
1461                                 return ret;
1462                         action_flags |= MLX5_FLOW_ACTION_RSS;
1463                         break;
1464                 case RTE_FLOW_ACTION_TYPE_COUNT:
1465                         ret = mlx5_flow_validate_action_count(dev, attr, error);
1466                         if (ret < 0)
1467                                 return ret;
1468                         action_flags |= MLX5_FLOW_ACTION_COUNT;
1469                         break;
1470                 default:
1471                         return rte_flow_error_set(error, ENOTSUP,
1472                                                   RTE_FLOW_ERROR_TYPE_ACTION,
1473                                                   actions,
1474                                                   "action not supported");
1475                 }
1476         }
1477         /*
1478          * Validate the drop action mutual exclusion with other actions.
1479          * Drop action is mutually-exclusive with any other action, except for
1480          * Count action.
1481          */
1482         if ((action_flags & MLX5_FLOW_ACTION_DROP) &&
1483             (action_flags & ~(MLX5_FLOW_ACTION_DROP | MLX5_FLOW_ACTION_COUNT)))
1484                 return rte_flow_error_set(error, EINVAL,
1485                                           RTE_FLOW_ERROR_TYPE_ACTION, NULL,
1486                                           "Drop action is mutually-exclusive "
1487                                           "with any other action, except for "
1488                                           "Count action");
1489         if (!(action_flags & MLX5_FLOW_FATE_ACTIONS))
1490                 return rte_flow_error_set(error, EINVAL,
1491                                           RTE_FLOW_ERROR_TYPE_ACTION, actions,
1492                                           "no fate action is found");
1493         return 0;
1494 }
1495
1496 /**
1497  * Calculate the required bytes that are needed for the action part of the verbs
1498  * flow.
1499  *
1500  * @param[in] actions
1501  *   Pointer to the list of actions.
1502  *
1503  * @return
1504  *   The size of the memory needed for all actions.
1505  */
1506 static int
1507 flow_verbs_get_actions_size(const struct rte_flow_action actions[])
1508 {
1509         int size = 0;
1510
1511         for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
1512                 switch (actions->type) {
1513                 case RTE_FLOW_ACTION_TYPE_VOID:
1514                         break;
1515                 case RTE_FLOW_ACTION_TYPE_FLAG:
1516                         size += sizeof(struct ibv_flow_spec_action_tag);
1517                         break;
1518                 case RTE_FLOW_ACTION_TYPE_MARK:
1519                         size += sizeof(struct ibv_flow_spec_action_tag);
1520                         break;
1521                 case RTE_FLOW_ACTION_TYPE_DROP:
1522                         size += sizeof(struct ibv_flow_spec_action_drop);
1523                         break;
1524                 case RTE_FLOW_ACTION_TYPE_QUEUE:
1525                         break;
1526                 case RTE_FLOW_ACTION_TYPE_RSS:
1527                         break;
1528                 case RTE_FLOW_ACTION_TYPE_COUNT:
1529 #if defined(HAVE_IBV_DEVICE_COUNTERS_SET_V42) || \
1530         defined(HAVE_IBV_DEVICE_COUNTERS_SET_V45)
1531                         size += sizeof(struct ibv_flow_spec_counter_action);
1532 #endif
1533                         break;
1534                 default:
1535                         break;
1536                 }
1537         }
1538         return size;
1539 }
1540
1541 /**
1542  * Calculate the required bytes that are needed for the item part of the verbs
1543  * flow.
1544  *
1545  * @param[in] items
1546  *   Pointer to the list of items.
1547  *
1548  * @return
1549  *   The size of the memory needed for all items.
1550  */
1551 static int
1552 flow_verbs_get_items_size(const struct rte_flow_item items[])
1553 {
1554         int size = 0;
1555
1556         for (; items->type != RTE_FLOW_ITEM_TYPE_END; items++) {
1557                 switch (items->type) {
1558                 case RTE_FLOW_ITEM_TYPE_VOID:
1559                         break;
1560                 case RTE_FLOW_ITEM_TYPE_ETH:
1561                         size += sizeof(struct ibv_flow_spec_eth);
1562                         break;
1563                 case RTE_FLOW_ITEM_TYPE_VLAN:
1564                         size += sizeof(struct ibv_flow_spec_eth);
1565                         break;
1566                 case RTE_FLOW_ITEM_TYPE_IPV4:
1567                         size += sizeof(struct ibv_flow_spec_ipv4_ext);
1568                         break;
1569                 case RTE_FLOW_ITEM_TYPE_IPV6:
1570                         size += sizeof(struct ibv_flow_spec_ipv6);
1571                         break;
1572                 case RTE_FLOW_ITEM_TYPE_UDP:
1573                         size += sizeof(struct ibv_flow_spec_tcp_udp);
1574                         break;
1575                 case RTE_FLOW_ITEM_TYPE_TCP:
1576                         size += sizeof(struct ibv_flow_spec_tcp_udp);
1577                         break;
1578                 case RTE_FLOW_ITEM_TYPE_VXLAN:
1579                         size += sizeof(struct ibv_flow_spec_tunnel);
1580                         break;
1581                 case RTE_FLOW_ITEM_TYPE_VXLAN_GPE:
1582                         size += sizeof(struct ibv_flow_spec_tunnel);
1583                         break;
1584 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
1585                 case RTE_FLOW_ITEM_TYPE_GRE:
1586                         size += sizeof(struct ibv_flow_spec_gre);
1587                         break;
1588                 case RTE_FLOW_ITEM_TYPE_MPLS:
1589                         size += sizeof(struct ibv_flow_spec_mpls);
1590                         break;
1591 #else
1592                 case RTE_FLOW_ITEM_TYPE_GRE:
1593                         size += sizeof(struct ibv_flow_spec_tunnel);
1594                         break;
1595 #endif
1596                 default:
1597                         break;
1598                 }
1599         }
1600         return size;
1601 }
1602
1603 /**
1604  * Internal preparation function. Allocate mlx5_flow with the required size.
1605  * The required size is calculate based on the actions and items. This function
1606  * also returns the detected actions and items for later use.
1607  *
1608  * @param[in] dev
1609  *   Pointer to Ethernet device.
1610  * @param[in] attr
1611  *   Pointer to the flow attributes.
1612  * @param[in] items
1613  *   Pointer to the list of items.
1614  * @param[in] actions
1615  *   Pointer to the list of actions.
1616  * @param[out] error
1617  *   Pointer to the error structure.
1618  *
1619  * @return
1620  *   Pointer to mlx5_flow object on success, otherwise NULL and rte_errno
1621  *   is set.
1622  */
1623 static struct mlx5_flow *
1624 flow_verbs_prepare(struct rte_eth_dev *dev,
1625                    const struct rte_flow_attr *attr __rte_unused,
1626                    const struct rte_flow_item items[],
1627                    const struct rte_flow_action actions[],
1628                    struct rte_flow_error *error)
1629 {
1630         size_t size = 0;
1631         uint32_t handle_idx = 0;
1632         struct mlx5_flow *dev_flow;
1633         struct mlx5_flow_handle *dev_handle;
1634         struct mlx5_priv *priv = dev->data->dev_private;
1635
1636         size += flow_verbs_get_actions_size(actions);
1637         size += flow_verbs_get_items_size(items);
1638         if (size > MLX5_VERBS_MAX_SPEC_ACT_SIZE) {
1639                 rte_flow_error_set(error, E2BIG,
1640                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
1641                                    "Verbs spec/action size too large");
1642                 return NULL;
1643         }
1644         /* In case of corrupting the memory. */
1645         if (priv->flow_idx >= MLX5_NUM_MAX_DEV_FLOWS) {
1646                 rte_flow_error_set(error, ENOSPC,
1647                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
1648                                    "not free temporary device flow");
1649                 return NULL;
1650         }
1651         dev_handle = mlx5_ipool_zmalloc(priv->sh->ipool[MLX5_IPOOL_MLX5_FLOW],
1652                                    &handle_idx);
1653         if (!dev_handle) {
1654                 rte_flow_error_set(error, ENOMEM,
1655                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
1656                                    "not enough memory to create flow handle");
1657                 return NULL;
1658         }
1659         /* No multi-thread supporting. */
1660         dev_flow = &((struct mlx5_flow *)priv->inter_flows)[priv->flow_idx++];
1661         dev_flow->handle = dev_handle;
1662         dev_flow->handle_idx = handle_idx;
1663         /* Memcpy is used, only size needs to be cleared to 0. */
1664         dev_flow->verbs.size = 0;
1665         dev_flow->verbs.attr.num_of_specs = 0;
1666         dev_flow->ingress = attr->ingress;
1667         dev_flow->hash_fields = 0;
1668         /* Need to set transfer attribute: not supported in Verbs mode. */
1669         return dev_flow;
1670 }
1671
1672 /**
1673  * Fill the flow with verb spec.
1674  *
1675  * @param[in] dev
1676  *   Pointer to Ethernet device.
1677  * @param[in, out] dev_flow
1678  *   Pointer to the mlx5 flow.
1679  * @param[in] attr
1680  *   Pointer to the flow attributes.
1681  * @param[in] items
1682  *   Pointer to the list of items.
1683  * @param[in] actions
1684  *   Pointer to the list of actions.
1685  * @param[out] error
1686  *   Pointer to the error structure.
1687  *
1688  * @return
1689  *   0 on success, else a negative errno value otherwise and rte_errno is set.
1690  */
1691 static int
1692 flow_verbs_translate(struct rte_eth_dev *dev,
1693                      struct mlx5_flow *dev_flow,
1694                      const struct rte_flow_attr *attr,
1695                      const struct rte_flow_item items[],
1696                      const struct rte_flow_action actions[],
1697                      struct rte_flow_error *error)
1698 {
1699         uint64_t item_flags = 0;
1700         uint64_t action_flags = 0;
1701         uint64_t priority = attr->priority;
1702         uint32_t subpriority = 0;
1703         struct mlx5_priv *priv = dev->data->dev_private;
1704         struct mlx5_flow_rss_desc *rss_desc = &((struct mlx5_flow_rss_desc *)
1705                                               priv->rss_desc)
1706                                               [!!priv->flow_nested_idx];
1707
1708         if (priority == MLX5_FLOW_PRIO_RSVD)
1709                 priority = priv->config.flow_prio - 1;
1710         for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
1711                 int ret;
1712
1713                 switch (actions->type) {
1714                 case RTE_FLOW_ACTION_TYPE_VOID:
1715                         break;
1716                 case RTE_FLOW_ACTION_TYPE_FLAG:
1717                         flow_verbs_translate_action_flag(dev_flow, actions);
1718                         action_flags |= MLX5_FLOW_ACTION_FLAG;
1719                         dev_flow->handle->mark = 1;
1720                         break;
1721                 case RTE_FLOW_ACTION_TYPE_MARK:
1722                         flow_verbs_translate_action_mark(dev_flow, actions);
1723                         action_flags |= MLX5_FLOW_ACTION_MARK;
1724                         dev_flow->handle->mark = 1;
1725                         break;
1726                 case RTE_FLOW_ACTION_TYPE_DROP:
1727                         flow_verbs_translate_action_drop(dev_flow, actions);
1728                         action_flags |= MLX5_FLOW_ACTION_DROP;
1729                         dev_flow->handle->fate_action = MLX5_FLOW_FATE_DROP;
1730                         break;
1731                 case RTE_FLOW_ACTION_TYPE_QUEUE:
1732                         flow_verbs_translate_action_queue(rss_desc, actions);
1733                         action_flags |= MLX5_FLOW_ACTION_QUEUE;
1734                         dev_flow->handle->fate_action = MLX5_FLOW_FATE_QUEUE;
1735                         break;
1736                 case RTE_FLOW_ACTION_TYPE_RSS:
1737                         flow_verbs_translate_action_rss(rss_desc, actions);
1738                         action_flags |= MLX5_FLOW_ACTION_RSS;
1739                         dev_flow->handle->fate_action = MLX5_FLOW_FATE_QUEUE;
1740                         break;
1741                 case RTE_FLOW_ACTION_TYPE_COUNT:
1742                         ret = flow_verbs_translate_action_count(dev_flow,
1743                                                                 actions,
1744                                                                 dev, error);
1745                         if (ret < 0)
1746                                 return ret;
1747                         action_flags |= MLX5_FLOW_ACTION_COUNT;
1748                         break;
1749                 default:
1750                         return rte_flow_error_set(error, ENOTSUP,
1751                                                   RTE_FLOW_ERROR_TYPE_ACTION,
1752                                                   actions,
1753                                                   "action not supported");
1754                 }
1755         }
1756         dev_flow->act_flags = action_flags;
1757         for (; items->type != RTE_FLOW_ITEM_TYPE_END; items++) {
1758                 int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1759
1760                 switch (items->type) {
1761                 case RTE_FLOW_ITEM_TYPE_VOID:
1762                         break;
1763                 case RTE_FLOW_ITEM_TYPE_ETH:
1764                         flow_verbs_translate_item_eth(dev_flow, items,
1765                                                       item_flags);
1766                         subpriority = MLX5_PRIORITY_MAP_L2;
1767                         item_flags |= tunnel ? MLX5_FLOW_LAYER_INNER_L2 :
1768                                                MLX5_FLOW_LAYER_OUTER_L2;
1769                         break;
1770                 case RTE_FLOW_ITEM_TYPE_VLAN:
1771                         flow_verbs_translate_item_vlan(dev_flow, items,
1772                                                        item_flags);
1773                         subpriority = MLX5_PRIORITY_MAP_L2;
1774                         item_flags |= tunnel ? (MLX5_FLOW_LAYER_INNER_L2 |
1775                                                 MLX5_FLOW_LAYER_INNER_VLAN) :
1776                                                (MLX5_FLOW_LAYER_OUTER_L2 |
1777                                                 MLX5_FLOW_LAYER_OUTER_VLAN);
1778                         break;
1779                 case RTE_FLOW_ITEM_TYPE_IPV4:
1780                         flow_verbs_translate_item_ipv4(dev_flow, items,
1781                                                        item_flags);
1782                         subpriority = MLX5_PRIORITY_MAP_L3;
1783                         dev_flow->hash_fields |=
1784                                 mlx5_flow_hashfields_adjust
1785                                         (rss_desc, tunnel,
1786                                          MLX5_IPV4_LAYER_TYPES,
1787                                          MLX5_IPV4_IBV_RX_HASH);
1788                         item_flags |= tunnel ? MLX5_FLOW_LAYER_INNER_L3_IPV4 :
1789                                                MLX5_FLOW_LAYER_OUTER_L3_IPV4;
1790                         break;
1791                 case RTE_FLOW_ITEM_TYPE_IPV6:
1792                         flow_verbs_translate_item_ipv6(dev_flow, items,
1793                                                        item_flags);
1794                         subpriority = MLX5_PRIORITY_MAP_L3;
1795                         dev_flow->hash_fields |=
1796                                 mlx5_flow_hashfields_adjust
1797                                         (rss_desc, tunnel,
1798                                          MLX5_IPV6_LAYER_TYPES,
1799                                          MLX5_IPV6_IBV_RX_HASH);
1800                         item_flags |= tunnel ? MLX5_FLOW_LAYER_INNER_L3_IPV6 :
1801                                                MLX5_FLOW_LAYER_OUTER_L3_IPV6;
1802                         break;
1803                 case RTE_FLOW_ITEM_TYPE_TCP:
1804                         flow_verbs_translate_item_tcp(dev_flow, items,
1805                                                       item_flags);
1806                         subpriority = MLX5_PRIORITY_MAP_L4;
1807                         dev_flow->hash_fields |=
1808                                 mlx5_flow_hashfields_adjust
1809                                         (rss_desc, tunnel, ETH_RSS_TCP,
1810                                          (IBV_RX_HASH_SRC_PORT_TCP |
1811                                           IBV_RX_HASH_DST_PORT_TCP));
1812                         item_flags |= tunnel ? MLX5_FLOW_LAYER_INNER_L4_TCP :
1813                                                MLX5_FLOW_LAYER_OUTER_L4_TCP;
1814                         break;
1815                 case RTE_FLOW_ITEM_TYPE_UDP:
1816                         flow_verbs_translate_item_udp(dev_flow, items,
1817                                                       item_flags);
1818                         subpriority = MLX5_PRIORITY_MAP_L4;
1819                         dev_flow->hash_fields |=
1820                                 mlx5_flow_hashfields_adjust
1821                                         (rss_desc, tunnel, ETH_RSS_UDP,
1822                                          (IBV_RX_HASH_SRC_PORT_UDP |
1823                                           IBV_RX_HASH_DST_PORT_UDP));
1824                         item_flags |= tunnel ? MLX5_FLOW_LAYER_INNER_L4_UDP :
1825                                                MLX5_FLOW_LAYER_OUTER_L4_UDP;
1826                         break;
1827                 case RTE_FLOW_ITEM_TYPE_VXLAN:
1828                         flow_verbs_translate_item_vxlan(dev_flow, items,
1829                                                         item_flags);
1830                         subpriority = MLX5_TUNNEL_PRIO_GET(rss_desc);
1831                         item_flags |= MLX5_FLOW_LAYER_VXLAN;
1832                         break;
1833                 case RTE_FLOW_ITEM_TYPE_VXLAN_GPE:
1834                         flow_verbs_translate_item_vxlan_gpe(dev_flow, items,
1835                                                             item_flags);
1836                         subpriority = MLX5_TUNNEL_PRIO_GET(rss_desc);
1837                         item_flags |= MLX5_FLOW_LAYER_VXLAN_GPE;
1838                         break;
1839                 case RTE_FLOW_ITEM_TYPE_GRE:
1840                         flow_verbs_translate_item_gre(dev_flow, items,
1841                                                       item_flags);
1842                         subpriority = MLX5_TUNNEL_PRIO_GET(rss_desc);
1843                         item_flags |= MLX5_FLOW_LAYER_GRE;
1844                         break;
1845                 case RTE_FLOW_ITEM_TYPE_MPLS:
1846                         flow_verbs_translate_item_mpls(dev_flow, items,
1847                                                        item_flags);
1848                         subpriority = MLX5_TUNNEL_PRIO_GET(rss_desc);
1849                         item_flags |= MLX5_FLOW_LAYER_MPLS;
1850                         break;
1851                 default:
1852                         return rte_flow_error_set(error, ENOTSUP,
1853                                                   RTE_FLOW_ERROR_TYPE_ITEM,
1854                                                   NULL,
1855                                                   "item not supported");
1856                 }
1857         }
1858         dev_flow->handle->layers = item_flags;
1859         /* Other members of attr will be ignored. */
1860         dev_flow->verbs.attr.priority =
1861                 mlx5_flow_adjust_priority(dev, priority, subpriority);
1862         dev_flow->verbs.attr.port = (uint8_t)priv->dev_port;
1863         return 0;
1864 }
1865
1866 /**
1867  * Remove the flow from the NIC but keeps it in memory.
1868  *
1869  * @param[in] dev
1870  *   Pointer to the Ethernet device structure.
1871  * @param[in, out] flow
1872  *   Pointer to flow structure.
1873  */
1874 static void
1875 flow_verbs_remove(struct rte_eth_dev *dev, struct rte_flow *flow)
1876 {
1877         struct mlx5_priv *priv = dev->data->dev_private;
1878         struct mlx5_flow_handle *handle;
1879         uint32_t handle_idx;
1880
1881         if (!flow)
1882                 return;
1883         SILIST_FOREACH(priv->sh->ipool[MLX5_IPOOL_MLX5_FLOW], flow->dev_handles,
1884                        handle_idx, handle, next) {
1885                 if (handle->drv_flow) {
1886                         claim_zero(mlx5_glue->destroy_flow(handle->drv_flow));
1887                         handle->drv_flow = NULL;
1888                 }
1889                 /* hrxq is union, don't touch it only the flag is set. */
1890                 if (handle->rix_hrxq) {
1891                         if (handle->fate_action == MLX5_FLOW_FATE_DROP) {
1892                                 mlx5_hrxq_drop_release(dev);
1893                                 handle->rix_hrxq = 0;
1894                         } else if (handle->fate_action ==
1895                                    MLX5_FLOW_FATE_QUEUE) {
1896                                 mlx5_hrxq_release(dev, handle->rix_hrxq);
1897                                 handle->rix_hrxq = 0;
1898                         }
1899                 }
1900                 if (handle->vf_vlan.tag && handle->vf_vlan.created)
1901                         mlx5_vlan_vmwa_release(dev, &handle->vf_vlan);
1902         }
1903 }
1904
1905 /**
1906  * Remove the flow from the NIC and the memory.
1907  *
1908  * @param[in] dev
1909  *   Pointer to the Ethernet device structure.
1910  * @param[in, out] flow
1911  *   Pointer to flow structure.
1912  */
1913 static void
1914 flow_verbs_destroy(struct rte_eth_dev *dev, struct rte_flow *flow)
1915 {
1916         struct mlx5_priv *priv = dev->data->dev_private;
1917         struct mlx5_flow_handle *handle;
1918
1919         if (!flow)
1920                 return;
1921         flow_verbs_remove(dev, flow);
1922         while (flow->dev_handles) {
1923                 uint32_t tmp_idx = flow->dev_handles;
1924
1925                 handle = mlx5_ipool_get(priv->sh->ipool[MLX5_IPOOL_MLX5_FLOW],
1926                                    tmp_idx);
1927                 if (!handle)
1928                         return;
1929                 flow->dev_handles = handle->next.next;
1930                 mlx5_ipool_free(priv->sh->ipool[MLX5_IPOOL_MLX5_FLOW],
1931                            tmp_idx);
1932         }
1933         if (flow->counter) {
1934                 flow_verbs_counter_release(dev, flow->counter);
1935                 flow->counter = 0;
1936         }
1937 }
1938
1939 /**
1940  * Apply the flow to the NIC.
1941  *
1942  * @param[in] dev
1943  *   Pointer to the Ethernet device structure.
1944  * @param[in, out] flow
1945  *   Pointer to flow structure.
1946  * @param[out] error
1947  *   Pointer to error structure.
1948  *
1949  * @return
1950  *   0 on success, a negative errno value otherwise and rte_errno is set.
1951  */
1952 static int
1953 flow_verbs_apply(struct rte_eth_dev *dev, struct rte_flow *flow,
1954                  struct rte_flow_error *error)
1955 {
1956         struct mlx5_priv *priv = dev->data->dev_private;
1957         struct mlx5_flow_handle *handle;
1958         struct mlx5_flow *dev_flow;
1959         struct mlx5_hrxq *hrxq;
1960         uint32_t dev_handles;
1961         int err;
1962         int idx;
1963
1964         for (idx = priv->flow_idx - 1; idx >= priv->flow_nested_idx; idx--) {
1965                 dev_flow = &((struct mlx5_flow *)priv->inter_flows)[idx];
1966                 handle = dev_flow->handle;
1967                 if (handle->fate_action == MLX5_FLOW_FATE_DROP) {
1968                         hrxq = mlx5_hrxq_drop_new(dev);
1969                         if (!hrxq) {
1970                                 rte_flow_error_set
1971                                         (error, errno,
1972                                          RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
1973                                          "cannot get drop hash queue");
1974                                 goto error;
1975                         }
1976                 } else {
1977                         uint32_t hrxq_idx;
1978                         struct mlx5_flow_rss_desc *rss_desc =
1979                                 &((struct mlx5_flow_rss_desc *)priv->rss_desc)
1980                                 [!!priv->flow_nested_idx];
1981
1982                         MLX5_ASSERT(rss_desc->queue_num);
1983                         hrxq_idx = mlx5_hrxq_get(dev, rss_desc->key,
1984                                              MLX5_RSS_HASH_KEY_LEN,
1985                                              dev_flow->hash_fields,
1986                                              rss_desc->queue,
1987                                              rss_desc->queue_num);
1988                         if (!hrxq_idx)
1989                                 hrxq_idx = mlx5_hrxq_new(dev, rss_desc->key,
1990                                                 MLX5_RSS_HASH_KEY_LEN,
1991                                                 dev_flow->hash_fields,
1992                                                 rss_desc->queue,
1993                                                 rss_desc->queue_num,
1994                                                 !!(handle->layers &
1995                                                 MLX5_FLOW_LAYER_TUNNEL));
1996                         hrxq = mlx5_ipool_get(priv->sh->ipool[MLX5_IPOOL_HRXQ],
1997                                          hrxq_idx);
1998                         if (!hrxq) {
1999                                 rte_flow_error_set
2000                                         (error, rte_errno,
2001                                          RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
2002                                          "cannot get hash queue");
2003                                 goto error;
2004                         }
2005                         handle->rix_hrxq = hrxq_idx;
2006                 }
2007                 MLX5_ASSERT(hrxq);
2008                 handle->drv_flow = mlx5_glue->create_flow
2009                                         (hrxq->qp, &dev_flow->verbs.attr);
2010                 if (!handle->drv_flow) {
2011                         rte_flow_error_set(error, errno,
2012                                            RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
2013                                            NULL,
2014                                            "hardware refuses to create flow");
2015                         goto error;
2016                 }
2017                 if (priv->vmwa_context &&
2018                     handle->vf_vlan.tag && !handle->vf_vlan.created) {
2019                         /*
2020                          * The rule contains the VLAN pattern.
2021                          * For VF we are going to create VLAN
2022                          * interface to make hypervisor set correct
2023                          * e-Switch vport context.
2024                          */
2025                         mlx5_vlan_vmwa_acquire(dev, &handle->vf_vlan);
2026                 }
2027         }
2028         return 0;
2029 error:
2030         err = rte_errno; /* Save rte_errno before cleanup. */
2031         SILIST_FOREACH(priv->sh->ipool[MLX5_IPOOL_MLX5_FLOW], flow->dev_handles,
2032                        dev_handles, handle, next) {
2033                 /* hrxq is union, don't touch it only the flag is set. */
2034                 if (handle->rix_hrxq) {
2035                         if (handle->fate_action == MLX5_FLOW_FATE_DROP) {
2036                                 mlx5_hrxq_drop_release(dev);
2037                                 handle->rix_hrxq = 0;
2038                         } else if (handle->fate_action ==
2039                                    MLX5_FLOW_FATE_QUEUE) {
2040                                 mlx5_hrxq_release(dev, handle->rix_hrxq);
2041                                 handle->rix_hrxq = 0;
2042                         }
2043                 }
2044                 if (handle->vf_vlan.tag && handle->vf_vlan.created)
2045                         mlx5_vlan_vmwa_release(dev, &handle->vf_vlan);
2046         }
2047         rte_errno = err; /* Restore rte_errno. */
2048         return -rte_errno;
2049 }
2050
2051 /**
2052  * Query a flow.
2053  *
2054  * @see rte_flow_query()
2055  * @see rte_flow_ops
2056  */
2057 static int
2058 flow_verbs_query(struct rte_eth_dev *dev,
2059                  struct rte_flow *flow,
2060                  const struct rte_flow_action *actions,
2061                  void *data,
2062                  struct rte_flow_error *error)
2063 {
2064         int ret = -EINVAL;
2065
2066         for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
2067                 switch (actions->type) {
2068                 case RTE_FLOW_ACTION_TYPE_VOID:
2069                         break;
2070                 case RTE_FLOW_ACTION_TYPE_COUNT:
2071                         ret = flow_verbs_counter_query(dev, flow, data, error);
2072                         break;
2073                 default:
2074                         return rte_flow_error_set(error, ENOTSUP,
2075                                                   RTE_FLOW_ERROR_TYPE_ACTION,
2076                                                   actions,
2077                                                   "action not supported");
2078                 }
2079         }
2080         return ret;
2081 }
2082
2083 const struct mlx5_flow_driver_ops mlx5_flow_verbs_drv_ops = {
2084         .validate = flow_verbs_validate,
2085         .prepare = flow_verbs_prepare,
2086         .translate = flow_verbs_translate,
2087         .apply = flow_verbs_apply,
2088         .remove = flow_verbs_remove,
2089         .destroy = flow_verbs_destroy,
2090         .query = flow_verbs_query,
2091 };