net/mlx5: fix build without tunnel RSS support
[dpdk.git] / drivers / net / mlx5 / mlx5_flow.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright 2016 6WIND S.A.
3  * Copyright 2016 Mellanox Technologies, Ltd
4  */
5
6 #include <sys/queue.h>
7 #include <stdint.h>
8 #include <string.h>
9
10 /* Verbs header. */
11 /* ISO C doesn't support unnamed structs/unions, disabling -pedantic. */
12 #ifdef PEDANTIC
13 #pragma GCC diagnostic ignored "-Wpedantic"
14 #endif
15 #include <infiniband/verbs.h>
16 #ifdef PEDANTIC
17 #pragma GCC diagnostic error "-Wpedantic"
18 #endif
19
20 #include <rte_common.h>
21 #include <rte_ether.h>
22 #include <rte_eth_ctrl.h>
23 #include <rte_ethdev_driver.h>
24 #include <rte_flow.h>
25 #include <rte_flow_driver.h>
26 #include <rte_malloc.h>
27 #include <rte_ip.h>
28
29 #include "mlx5.h"
30 #include "mlx5_defs.h"
31 #include "mlx5_prm.h"
32 #include "mlx5_glue.h"
33
34 /* Flow priority for control plane flows. */
35 #define MLX5_CTRL_FLOW_PRIORITY 1
36
37 /* Internet Protocol versions. */
38 #define MLX5_IPV4 4
39 #define MLX5_IPV6 6
40 #define MLX5_GRE 47
41
42 #ifndef HAVE_IBV_DEVICE_COUNTERS_SET_SUPPORT
43 struct ibv_flow_spec_counter_action {
44         int dummy;
45 };
46 #endif
47
48 /* Dev ops structure defined in mlx5.c */
49 extern const struct eth_dev_ops mlx5_dev_ops;
50 extern const struct eth_dev_ops mlx5_dev_ops_isolate;
51
52 /** Structure give to the conversion functions. */
53 struct mlx5_flow_data {
54         struct rte_eth_dev *dev; /** Ethernet device. */
55         struct mlx5_flow_parse *parser; /** Parser context. */
56         struct rte_flow_error *error; /** Error context. */
57 };
58
59 static int
60 mlx5_flow_create_eth(const struct rte_flow_item *item,
61                      const void *default_mask,
62                      struct mlx5_flow_data *data);
63
64 static int
65 mlx5_flow_create_vlan(const struct rte_flow_item *item,
66                       const void *default_mask,
67                       struct mlx5_flow_data *data);
68
69 static int
70 mlx5_flow_create_ipv4(const struct rte_flow_item *item,
71                       const void *default_mask,
72                       struct mlx5_flow_data *data);
73
74 static int
75 mlx5_flow_create_ipv6(const struct rte_flow_item *item,
76                       const void *default_mask,
77                       struct mlx5_flow_data *data);
78
79 static int
80 mlx5_flow_create_udp(const struct rte_flow_item *item,
81                      const void *default_mask,
82                      struct mlx5_flow_data *data);
83
84 static int
85 mlx5_flow_create_tcp(const struct rte_flow_item *item,
86                      const void *default_mask,
87                      struct mlx5_flow_data *data);
88
89 static int
90 mlx5_flow_create_vxlan(const struct rte_flow_item *item,
91                        const void *default_mask,
92                        struct mlx5_flow_data *data);
93
94 static int
95 mlx5_flow_create_vxlan_gpe(const struct rte_flow_item *item,
96                            const void *default_mask,
97                            struct mlx5_flow_data *data);
98
99 static int
100 mlx5_flow_create_gre(const struct rte_flow_item *item,
101                      const void *default_mask,
102                      struct mlx5_flow_data *data);
103
104 static int
105 mlx5_flow_create_mpls(const struct rte_flow_item *item,
106                       const void *default_mask,
107                       struct mlx5_flow_data *data);
108
109 struct mlx5_flow_parse;
110
111 static void
112 mlx5_flow_create_copy(struct mlx5_flow_parse *parser, void *src,
113                       unsigned int size);
114
115 static int
116 mlx5_flow_create_flag_mark(struct mlx5_flow_parse *parser, uint32_t mark_id);
117
118 static int
119 mlx5_flow_create_count(struct rte_eth_dev *dev, struct mlx5_flow_parse *parser);
120
121 /* Hash RX queue types. */
122 enum hash_rxq_type {
123         HASH_RXQ_TCPV4,
124         HASH_RXQ_UDPV4,
125         HASH_RXQ_IPV4,
126         HASH_RXQ_TCPV6,
127         HASH_RXQ_UDPV6,
128         HASH_RXQ_IPV6,
129         HASH_RXQ_ETH,
130         HASH_RXQ_TUNNEL,
131 };
132
133 /* Initialization data for hash RX queue. */
134 struct hash_rxq_init {
135         uint64_t hash_fields; /* Fields that participate in the hash. */
136         uint64_t dpdk_rss_hf; /* Matching DPDK RSS hash fields. */
137         unsigned int flow_priority; /* Flow priority to use. */
138         unsigned int ip_version; /* Internet protocol. */
139 };
140
141 /* Initialization data for hash RX queues. */
142 const struct hash_rxq_init hash_rxq_init[] = {
143         [HASH_RXQ_TCPV4] = {
144                 .hash_fields = (IBV_RX_HASH_SRC_IPV4 |
145                                 IBV_RX_HASH_DST_IPV4 |
146                                 IBV_RX_HASH_SRC_PORT_TCP |
147                                 IBV_RX_HASH_DST_PORT_TCP),
148                 .dpdk_rss_hf = ETH_RSS_NONFRAG_IPV4_TCP,
149                 .flow_priority = 0,
150                 .ip_version = MLX5_IPV4,
151         },
152         [HASH_RXQ_UDPV4] = {
153                 .hash_fields = (IBV_RX_HASH_SRC_IPV4 |
154                                 IBV_RX_HASH_DST_IPV4 |
155                                 IBV_RX_HASH_SRC_PORT_UDP |
156                                 IBV_RX_HASH_DST_PORT_UDP),
157                 .dpdk_rss_hf = ETH_RSS_NONFRAG_IPV4_UDP,
158                 .flow_priority = 0,
159                 .ip_version = MLX5_IPV4,
160         },
161         [HASH_RXQ_IPV4] = {
162                 .hash_fields = (IBV_RX_HASH_SRC_IPV4 |
163                                 IBV_RX_HASH_DST_IPV4),
164                 .dpdk_rss_hf = (ETH_RSS_IPV4 |
165                                 ETH_RSS_FRAG_IPV4),
166                 .flow_priority = 1,
167                 .ip_version = MLX5_IPV4,
168         },
169         [HASH_RXQ_TCPV6] = {
170                 .hash_fields = (IBV_RX_HASH_SRC_IPV6 |
171                                 IBV_RX_HASH_DST_IPV6 |
172                                 IBV_RX_HASH_SRC_PORT_TCP |
173                                 IBV_RX_HASH_DST_PORT_TCP),
174                 .dpdk_rss_hf = ETH_RSS_NONFRAG_IPV6_TCP,
175                 .flow_priority = 0,
176                 .ip_version = MLX5_IPV6,
177         },
178         [HASH_RXQ_UDPV6] = {
179                 .hash_fields = (IBV_RX_HASH_SRC_IPV6 |
180                                 IBV_RX_HASH_DST_IPV6 |
181                                 IBV_RX_HASH_SRC_PORT_UDP |
182                                 IBV_RX_HASH_DST_PORT_UDP),
183                 .dpdk_rss_hf = ETH_RSS_NONFRAG_IPV6_UDP,
184                 .flow_priority = 0,
185                 .ip_version = MLX5_IPV6,
186         },
187         [HASH_RXQ_IPV6] = {
188                 .hash_fields = (IBV_RX_HASH_SRC_IPV6 |
189                                 IBV_RX_HASH_DST_IPV6),
190                 .dpdk_rss_hf = (ETH_RSS_IPV6 |
191                                 ETH_RSS_FRAG_IPV6),
192                 .flow_priority = 1,
193                 .ip_version = MLX5_IPV6,
194         },
195         [HASH_RXQ_ETH] = {
196                 .hash_fields = 0,
197                 .dpdk_rss_hf = 0,
198                 .flow_priority = 2,
199         },
200 };
201
202 /* Number of entries in hash_rxq_init[]. */
203 const unsigned int hash_rxq_init_n = RTE_DIM(hash_rxq_init);
204
205 /** Structure for holding counter stats. */
206 struct mlx5_flow_counter_stats {
207         uint64_t hits; /**< Number of packets matched by the rule. */
208         uint64_t bytes; /**< Number of bytes matched by the rule. */
209 };
210
211 /** Structure for Drop queue. */
212 struct mlx5_hrxq_drop {
213         struct ibv_rwq_ind_table *ind_table; /**< Indirection table. */
214         struct ibv_qp *qp; /**< Verbs queue pair. */
215         struct ibv_wq *wq; /**< Verbs work queue. */
216         struct ibv_cq *cq; /**< Verbs completion queue. */
217 };
218
219 /* Flows structures. */
220 struct mlx5_flow {
221         uint64_t hash_fields; /**< Fields that participate in the hash. */
222         struct ibv_flow_attr *ibv_attr; /**< Pointer to Verbs attributes. */
223         struct ibv_flow *ibv_flow; /**< Verbs flow. */
224         struct mlx5_hrxq *hrxq; /**< Hash Rx queues. */
225 };
226
227 /* Drop flows structures. */
228 struct mlx5_flow_drop {
229         struct ibv_flow_attr *ibv_attr; /**< Pointer to Verbs attributes. */
230         struct ibv_flow *ibv_flow; /**< Verbs flow. */
231 };
232
233 struct rte_flow {
234         TAILQ_ENTRY(rte_flow) next; /**< Pointer to the next flow structure. */
235         uint32_t mark:1; /**< Set if the flow is marked. */
236         uint32_t drop:1; /**< Drop queue. */
237         struct rte_flow_action_rss rss_conf; /**< RSS configuration */
238         uint16_t (*queues)[]; /**< Queues indexes to use. */
239         uint8_t rss_key[40]; /**< copy of the RSS key. */
240         uint32_t tunnel; /**< Tunnel type of RTE_PTYPE_TUNNEL_XXX. */
241         struct ibv_counter_set *cs; /**< Holds the counters for the rule. */
242         struct mlx5_flow_counter_stats counter_stats;/**<The counter stats. */
243         struct mlx5_flow frxq[RTE_DIM(hash_rxq_init)];
244         /**< Flow with Rx queue. */
245 };
246
247 /** Static initializer for items. */
248 #define ITEMS(...) \
249         (const enum rte_flow_item_type []){ \
250                 __VA_ARGS__, RTE_FLOW_ITEM_TYPE_END, \
251         }
252
253 #define IS_TUNNEL(type) ( \
254         (type) == RTE_FLOW_ITEM_TYPE_VXLAN || \
255         (type) == RTE_FLOW_ITEM_TYPE_VXLAN_GPE || \
256         (type) == RTE_FLOW_ITEM_TYPE_GRE || \
257         (type) == RTE_FLOW_ITEM_TYPE_MPLS)
258
259 const uint32_t flow_ptype[] = {
260         [RTE_FLOW_ITEM_TYPE_VXLAN] = RTE_PTYPE_TUNNEL_VXLAN,
261         [RTE_FLOW_ITEM_TYPE_VXLAN_GPE] = RTE_PTYPE_TUNNEL_VXLAN_GPE,
262         [RTE_FLOW_ITEM_TYPE_GRE] = RTE_PTYPE_TUNNEL_GRE,
263         [RTE_FLOW_ITEM_TYPE_MPLS] = RTE_PTYPE_TUNNEL_MPLS_IN_GRE,
264 };
265
266 #define PTYPE_IDX(t) ((RTE_PTYPE_TUNNEL_MASK & (t)) >> 12)
267
268 const uint32_t ptype_ext[] = {
269         [PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN)] = RTE_PTYPE_TUNNEL_VXLAN |
270                                               RTE_PTYPE_L4_UDP,
271         [PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN_GPE)] = RTE_PTYPE_TUNNEL_VXLAN_GPE |
272                                                   RTE_PTYPE_L4_UDP,
273         [PTYPE_IDX(RTE_PTYPE_TUNNEL_GRE)] = RTE_PTYPE_TUNNEL_GRE,
274         [PTYPE_IDX(RTE_PTYPE_TUNNEL_MPLS_IN_GRE)] =
275                 RTE_PTYPE_TUNNEL_MPLS_IN_GRE,
276         [PTYPE_IDX(RTE_PTYPE_TUNNEL_MPLS_IN_UDP)] =
277                 RTE_PTYPE_TUNNEL_MPLS_IN_GRE | RTE_PTYPE_L4_UDP,
278 };
279
280 /** Structure to generate a simple graph of layers supported by the NIC. */
281 struct mlx5_flow_items {
282         /** List of possible actions for these items. */
283         const enum rte_flow_action_type *const actions;
284         /** Bit-masks corresponding to the possibilities for the item. */
285         const void *mask;
286         /**
287          * Default bit-masks to use when item->mask is not provided. When
288          * \default_mask is also NULL, the full supported bit-mask (\mask) is
289          * used instead.
290          */
291         const void *default_mask;
292         /** Bit-masks size in bytes. */
293         const unsigned int mask_sz;
294         /**
295          * Conversion function from rte_flow to NIC specific flow.
296          *
297          * @param item
298          *   rte_flow item to convert.
299          * @param default_mask
300          *   Default bit-masks to use when item->mask is not provided.
301          * @param data
302          *   Internal structure to store the conversion.
303          *
304          * @return
305          *   0 on success, a negative errno value otherwise and rte_errno is
306          *   set.
307          */
308         int (*convert)(const struct rte_flow_item *item,
309                        const void *default_mask,
310                        struct mlx5_flow_data *data);
311         /** Size in bytes of the destination structure. */
312         const unsigned int dst_sz;
313         /** List of possible following items.  */
314         const enum rte_flow_item_type *const items;
315 };
316
317 /** Valid action for this PMD. */
318 static const enum rte_flow_action_type valid_actions[] = {
319         RTE_FLOW_ACTION_TYPE_DROP,
320         RTE_FLOW_ACTION_TYPE_QUEUE,
321         RTE_FLOW_ACTION_TYPE_MARK,
322         RTE_FLOW_ACTION_TYPE_FLAG,
323 #ifdef HAVE_IBV_DEVICE_COUNTERS_SET_SUPPORT
324         RTE_FLOW_ACTION_TYPE_COUNT,
325 #endif
326         RTE_FLOW_ACTION_TYPE_END,
327 };
328
329 /** Graph of supported items and associated actions. */
330 static const struct mlx5_flow_items mlx5_flow_items[] = {
331         [RTE_FLOW_ITEM_TYPE_END] = {
332                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_ETH,
333                                RTE_FLOW_ITEM_TYPE_VXLAN,
334                                RTE_FLOW_ITEM_TYPE_VXLAN_GPE,
335                                RTE_FLOW_ITEM_TYPE_GRE),
336         },
337         [RTE_FLOW_ITEM_TYPE_ETH] = {
338                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_VLAN,
339                                RTE_FLOW_ITEM_TYPE_IPV4,
340                                RTE_FLOW_ITEM_TYPE_IPV6),
341                 .actions = valid_actions,
342                 .mask = &(const struct rte_flow_item_eth){
343                         .dst.addr_bytes = "\xff\xff\xff\xff\xff\xff",
344                         .src.addr_bytes = "\xff\xff\xff\xff\xff\xff",
345                         .type = -1,
346                 },
347                 .default_mask = &rte_flow_item_eth_mask,
348                 .mask_sz = sizeof(struct rte_flow_item_eth),
349                 .convert = mlx5_flow_create_eth,
350                 .dst_sz = sizeof(struct ibv_flow_spec_eth),
351         },
352         [RTE_FLOW_ITEM_TYPE_VLAN] = {
353                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_IPV4,
354                                RTE_FLOW_ITEM_TYPE_IPV6),
355                 .actions = valid_actions,
356                 .mask = &(const struct rte_flow_item_vlan){
357                         .tci = -1,
358                         .inner_type = -1,
359                 },
360                 .default_mask = &rte_flow_item_vlan_mask,
361                 .mask_sz = sizeof(struct rte_flow_item_vlan),
362                 .convert = mlx5_flow_create_vlan,
363                 .dst_sz = 0,
364         },
365         [RTE_FLOW_ITEM_TYPE_IPV4] = {
366                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_UDP,
367                                RTE_FLOW_ITEM_TYPE_TCP,
368                                RTE_FLOW_ITEM_TYPE_GRE),
369                 .actions = valid_actions,
370                 .mask = &(const struct rte_flow_item_ipv4){
371                         .hdr = {
372                                 .src_addr = -1,
373                                 .dst_addr = -1,
374                                 .type_of_service = -1,
375                                 .next_proto_id = -1,
376                         },
377                 },
378                 .default_mask = &rte_flow_item_ipv4_mask,
379                 .mask_sz = sizeof(struct rte_flow_item_ipv4),
380                 .convert = mlx5_flow_create_ipv4,
381                 .dst_sz = sizeof(struct ibv_flow_spec_ipv4_ext),
382         },
383         [RTE_FLOW_ITEM_TYPE_IPV6] = {
384                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_UDP,
385                                RTE_FLOW_ITEM_TYPE_TCP,
386                                RTE_FLOW_ITEM_TYPE_GRE),
387                 .actions = valid_actions,
388                 .mask = &(const struct rte_flow_item_ipv6){
389                         .hdr = {
390                                 .src_addr = {
391                                         0xff, 0xff, 0xff, 0xff,
392                                         0xff, 0xff, 0xff, 0xff,
393                                         0xff, 0xff, 0xff, 0xff,
394                                         0xff, 0xff, 0xff, 0xff,
395                                 },
396                                 .dst_addr = {
397                                         0xff, 0xff, 0xff, 0xff,
398                                         0xff, 0xff, 0xff, 0xff,
399                                         0xff, 0xff, 0xff, 0xff,
400                                         0xff, 0xff, 0xff, 0xff,
401                                 },
402                                 .vtc_flow = -1,
403                                 .proto = -1,
404                                 .hop_limits = -1,
405                         },
406                 },
407                 .default_mask = &rte_flow_item_ipv6_mask,
408                 .mask_sz = sizeof(struct rte_flow_item_ipv6),
409                 .convert = mlx5_flow_create_ipv6,
410                 .dst_sz = sizeof(struct ibv_flow_spec_ipv6),
411         },
412         [RTE_FLOW_ITEM_TYPE_UDP] = {
413                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_VXLAN,
414                                RTE_FLOW_ITEM_TYPE_VXLAN_GPE,
415                                RTE_FLOW_ITEM_TYPE_MPLS),
416                 .actions = valid_actions,
417                 .mask = &(const struct rte_flow_item_udp){
418                         .hdr = {
419                                 .src_port = -1,
420                                 .dst_port = -1,
421                         },
422                 },
423                 .default_mask = &rte_flow_item_udp_mask,
424                 .mask_sz = sizeof(struct rte_flow_item_udp),
425                 .convert = mlx5_flow_create_udp,
426                 .dst_sz = sizeof(struct ibv_flow_spec_tcp_udp),
427         },
428         [RTE_FLOW_ITEM_TYPE_TCP] = {
429                 .actions = valid_actions,
430                 .mask = &(const struct rte_flow_item_tcp){
431                         .hdr = {
432                                 .src_port = -1,
433                                 .dst_port = -1,
434                         },
435                 },
436                 .default_mask = &rte_flow_item_tcp_mask,
437                 .mask_sz = sizeof(struct rte_flow_item_tcp),
438                 .convert = mlx5_flow_create_tcp,
439                 .dst_sz = sizeof(struct ibv_flow_spec_tcp_udp),
440         },
441         [RTE_FLOW_ITEM_TYPE_GRE] = {
442                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_ETH,
443                                RTE_FLOW_ITEM_TYPE_IPV4,
444                                RTE_FLOW_ITEM_TYPE_IPV6,
445                                RTE_FLOW_ITEM_TYPE_MPLS),
446                 .actions = valid_actions,
447                 .mask = &(const struct rte_flow_item_gre){
448                         .protocol = -1,
449                 },
450                 .default_mask = &rte_flow_item_gre_mask,
451                 .mask_sz = sizeof(struct rte_flow_item_gre),
452                 .convert = mlx5_flow_create_gre,
453 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
454                 .dst_sz = sizeof(struct ibv_flow_spec_gre),
455 #else
456                 .dst_sz = sizeof(struct ibv_flow_spec_tunnel),
457 #endif
458         },
459         [RTE_FLOW_ITEM_TYPE_MPLS] = {
460                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_ETH,
461                                RTE_FLOW_ITEM_TYPE_IPV4,
462                                RTE_FLOW_ITEM_TYPE_IPV6),
463                 .actions = valid_actions,
464                 .mask = &(const struct rte_flow_item_mpls){
465                         .label_tc_s = "\xff\xff\xf0",
466                 },
467                 .default_mask = &rte_flow_item_mpls_mask,
468                 .mask_sz = sizeof(struct rte_flow_item_mpls),
469                 .convert = mlx5_flow_create_mpls,
470 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
471                 .dst_sz = sizeof(struct ibv_flow_spec_mpls),
472 #endif
473         },
474         [RTE_FLOW_ITEM_TYPE_VXLAN] = {
475                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_ETH,
476                                RTE_FLOW_ITEM_TYPE_IPV4, /* For L3 VXLAN. */
477                                RTE_FLOW_ITEM_TYPE_IPV6), /* For L3 VXLAN. */
478                 .actions = valid_actions,
479                 .mask = &(const struct rte_flow_item_vxlan){
480                         .vni = "\xff\xff\xff",
481                 },
482                 .default_mask = &rte_flow_item_vxlan_mask,
483                 .mask_sz = sizeof(struct rte_flow_item_vxlan),
484                 .convert = mlx5_flow_create_vxlan,
485                 .dst_sz = sizeof(struct ibv_flow_spec_tunnel),
486         },
487         [RTE_FLOW_ITEM_TYPE_VXLAN_GPE] = {
488                 .items = ITEMS(RTE_FLOW_ITEM_TYPE_ETH,
489                                RTE_FLOW_ITEM_TYPE_IPV4,
490                                RTE_FLOW_ITEM_TYPE_IPV6),
491                 .actions = valid_actions,
492                 .mask = &(const struct rte_flow_item_vxlan_gpe){
493                         .vni = "\xff\xff\xff",
494                 },
495                 .default_mask = &rte_flow_item_vxlan_gpe_mask,
496                 .mask_sz = sizeof(struct rte_flow_item_vxlan_gpe),
497                 .convert = mlx5_flow_create_vxlan_gpe,
498                 .dst_sz = sizeof(struct ibv_flow_spec_tunnel),
499         },
500 };
501
502 /** Structure to pass to the conversion function. */
503 struct mlx5_flow_parse {
504         uint32_t inner; /**< Verbs value, set once tunnel is encountered. */
505         uint32_t create:1;
506         /**< Whether resources should remain after a validate. */
507         uint32_t drop:1; /**< Target is a drop queue. */
508         uint32_t mark:1; /**< Mark is present in the flow. */
509         uint32_t count:1; /**< Count is present in the flow. */
510         uint32_t mark_id; /**< Mark identifier. */
511         struct rte_flow_action_rss rss_conf; /**< RSS configuration */
512         uint16_t queues[RTE_MAX_QUEUES_PER_PORT]; /**< Queues indexes to use. */
513         uint8_t rss_key[40]; /**< copy of the RSS key. */
514         enum hash_rxq_type layer; /**< Last pattern layer detected. */
515         enum hash_rxq_type out_layer; /**< Last outer pattern layer detected. */
516         uint32_t tunnel; /**< Tunnel type of RTE_PTYPE_TUNNEL_XXX. */
517         struct ibv_counter_set *cs; /**< Holds the counter set for the rule */
518         struct {
519                 struct ibv_flow_attr *ibv_attr;
520                 /**< Pointer to Verbs attributes. */
521                 unsigned int offset;
522                 /**< Current position or total size of the attribute. */
523                 uint64_t hash_fields; /**< Verbs hash fields. */
524         } queue[RTE_DIM(hash_rxq_init)];
525 };
526
527 static const struct rte_flow_ops mlx5_flow_ops = {
528         .validate = mlx5_flow_validate,
529         .create = mlx5_flow_create,
530         .destroy = mlx5_flow_destroy,
531         .flush = mlx5_flow_flush,
532 #ifdef HAVE_IBV_DEVICE_COUNTERS_SET_SUPPORT
533         .query = mlx5_flow_query,
534 #else
535         .query = NULL,
536 #endif
537         .isolate = mlx5_flow_isolate,
538 };
539
540 /* Convert FDIR request to Generic flow. */
541 struct mlx5_fdir {
542         struct rte_flow_attr attr;
543         struct rte_flow_action actions[2];
544         struct rte_flow_item items[4];
545         struct rte_flow_item_eth l2;
546         struct rte_flow_item_eth l2_mask;
547         union {
548                 struct rte_flow_item_ipv4 ipv4;
549                 struct rte_flow_item_ipv6 ipv6;
550         } l3;
551         union {
552                 struct rte_flow_item_ipv4 ipv4;
553                 struct rte_flow_item_ipv6 ipv6;
554         } l3_mask;
555         union {
556                 struct rte_flow_item_udp udp;
557                 struct rte_flow_item_tcp tcp;
558         } l4;
559         union {
560                 struct rte_flow_item_udp udp;
561                 struct rte_flow_item_tcp tcp;
562         } l4_mask;
563         struct rte_flow_action_queue queue;
564 };
565
566 /* Verbs specification header. */
567 struct ibv_spec_header {
568         enum ibv_flow_spec_type type;
569         uint16_t size;
570 };
571
572 /**
573  * Check item is fully supported by the NIC matching capability.
574  *
575  * @param item[in]
576  *   Item specification.
577  * @param mask[in]
578  *   Bit-masks covering supported fields to compare with spec, last and mask in
579  *   \item.
580  * @param size
581  *   Bit-Mask size in bytes.
582  *
583  * @return
584  *   0 on success, a negative errno value otherwise and rte_errno is set.
585  */
586 static int
587 mlx5_flow_item_validate(const struct rte_flow_item *item,
588                         const uint8_t *mask, unsigned int size)
589 {
590         unsigned int i;
591         const uint8_t *spec = item->spec;
592         const uint8_t *last = item->last;
593         const uint8_t *m = item->mask ? item->mask : mask;
594
595         if (!spec && (item->mask || last))
596                 goto error;
597         if (!spec)
598                 return 0;
599         /*
600          * Single-pass check to make sure that:
601          * - item->mask is supported, no bits are set outside mask.
602          * - Both masked item->spec and item->last are equal (no range
603          *   supported).
604          */
605         for (i = 0; i < size; i++) {
606                 if (!m[i])
607                         continue;
608                 if ((m[i] | mask[i]) != mask[i])
609                         goto error;
610                 if (last && ((spec[i] & m[i]) != (last[i] & m[i])))
611                         goto error;
612         }
613         return 0;
614 error:
615         rte_errno = ENOTSUP;
616         return -rte_errno;
617 }
618
619 /**
620  * Extract attribute to the parser.
621  *
622  * @param[in] attr
623  *   Flow rule attributes.
624  * @param[out] error
625  *   Perform verbose error reporting if not NULL.
626  *
627  * @return
628  *   0 on success, a negative errno value otherwise and rte_errno is set.
629  */
630 static int
631 mlx5_flow_convert_attributes(const struct rte_flow_attr *attr,
632                              struct rte_flow_error *error)
633 {
634         if (attr->group) {
635                 rte_flow_error_set(error, ENOTSUP,
636                                    RTE_FLOW_ERROR_TYPE_ATTR_GROUP,
637                                    NULL,
638                                    "groups are not supported");
639                 return -rte_errno;
640         }
641         if (attr->priority && attr->priority != MLX5_CTRL_FLOW_PRIORITY) {
642                 rte_flow_error_set(error, ENOTSUP,
643                                    RTE_FLOW_ERROR_TYPE_ATTR_PRIORITY,
644                                    NULL,
645                                    "priorities are not supported");
646                 return -rte_errno;
647         }
648         if (attr->egress) {
649                 rte_flow_error_set(error, ENOTSUP,
650                                    RTE_FLOW_ERROR_TYPE_ATTR_EGRESS,
651                                    NULL,
652                                    "egress is not supported");
653                 return -rte_errno;
654         }
655         if (attr->transfer) {
656                 rte_flow_error_set(error, ENOTSUP,
657                                    RTE_FLOW_ERROR_TYPE_ATTR_TRANSFER,
658                                    NULL,
659                                    "transfer is not supported");
660                 return -rte_errno;
661         }
662         if (!attr->ingress) {
663                 rte_flow_error_set(error, ENOTSUP,
664                                    RTE_FLOW_ERROR_TYPE_ATTR_INGRESS,
665                                    NULL,
666                                    "only ingress is supported");
667                 return -rte_errno;
668         }
669         return 0;
670 }
671
672 /**
673  * Extract actions request to the parser.
674  *
675  * @param dev
676  *   Pointer to Ethernet device.
677  * @param[in] actions
678  *   Associated actions (list terminated by the END action).
679  * @param[out] error
680  *   Perform verbose error reporting if not NULL.
681  * @param[in, out] parser
682  *   Internal parser structure.
683  *
684  * @return
685  *   0 on success, a negative errno value otherwise and rte_errno is set.
686  */
687 static int
688 mlx5_flow_convert_actions(struct rte_eth_dev *dev,
689                           const struct rte_flow_action actions[],
690                           struct rte_flow_error *error,
691                           struct mlx5_flow_parse *parser)
692 {
693         enum { FATE = 1, MARK = 2, COUNT = 4, };
694         uint32_t overlap = 0;
695         struct priv *priv = dev->data->dev_private;
696
697         for (; actions->type != RTE_FLOW_ACTION_TYPE_END; ++actions) {
698                 if (actions->type == RTE_FLOW_ACTION_TYPE_VOID) {
699                         continue;
700                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_DROP) {
701                         if (overlap & FATE)
702                                 goto exit_action_overlap;
703                         overlap |= FATE;
704                         parser->drop = 1;
705                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_QUEUE) {
706                         const struct rte_flow_action_queue *queue =
707                                 (const struct rte_flow_action_queue *)
708                                 actions->conf;
709
710                         if (overlap & FATE)
711                                 goto exit_action_overlap;
712                         overlap |= FATE;
713                         if (!queue || (queue->index > (priv->rxqs_n - 1)))
714                                 goto exit_action_not_supported;
715                         parser->queues[0] = queue->index;
716                         parser->rss_conf = (struct rte_flow_action_rss){
717                                 .queue_num = 1,
718                                 .queue = parser->queues,
719                         };
720                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_RSS) {
721                         const struct rte_flow_action_rss *rss =
722                                 (const struct rte_flow_action_rss *)
723                                 actions->conf;
724                         const uint8_t *rss_key;
725                         uint32_t rss_key_len;
726                         uint16_t n;
727
728                         if (overlap & FATE)
729                                 goto exit_action_overlap;
730                         overlap |= FATE;
731                         if (rss->func &&
732                             rss->func != RTE_ETH_HASH_FUNCTION_TOEPLITZ) {
733                                 rte_flow_error_set(error, EINVAL,
734                                                    RTE_FLOW_ERROR_TYPE_ACTION,
735                                                    actions,
736                                                    "the only supported RSS hash"
737                                                    " function is Toeplitz");
738                                 return -rte_errno;
739                         }
740 #ifndef HAVE_IBV_DEVICE_TUNNEL_SUPPORT
741                         if (parser->rss_conf.level > 1) {
742                                 rte_flow_error_set(error, EINVAL,
743                                                    RTE_FLOW_ERROR_TYPE_ACTION,
744                                                    actions,
745                                                    "a nonzero RSS encapsulation"
746                                                    " level is not supported");
747                                 return -rte_errno;
748                         }
749 #endif
750                         if (parser->rss_conf.level > 2) {
751                                 rte_flow_error_set(error, EINVAL,
752                                                    RTE_FLOW_ERROR_TYPE_ACTION,
753                                                    actions,
754                                                    "RSS encapsulation level"
755                                                    " > 1 is not supported");
756                                 return -rte_errno;
757                         }
758                         if (rss->types & MLX5_RSS_HF_MASK) {
759                                 rte_flow_error_set(error, EINVAL,
760                                                    RTE_FLOW_ERROR_TYPE_ACTION,
761                                                    actions,
762                                                    "unsupported RSS type"
763                                                    " requested");
764                                 return -rte_errno;
765                         }
766                         if (rss->key_len) {
767                                 rss_key_len = rss->key_len;
768                                 rss_key = rss->key;
769                         } else {
770                                 rss_key_len = rss_hash_default_key_len;
771                                 rss_key = rss_hash_default_key;
772                         }
773                         if (rss_key_len != RTE_DIM(parser->rss_key)) {
774                                 rte_flow_error_set(error, EINVAL,
775                                                    RTE_FLOW_ERROR_TYPE_ACTION,
776                                                    actions,
777                                                    "RSS hash key must be"
778                                                    " exactly 40 bytes long");
779                                 return -rte_errno;
780                         }
781                         if (!rss->queue_num) {
782                                 rte_flow_error_set(error, EINVAL,
783                                                    RTE_FLOW_ERROR_TYPE_ACTION,
784                                                    actions,
785                                                    "no valid queues");
786                                 return -rte_errno;
787                         }
788                         if (rss->queue_num > RTE_DIM(parser->queues)) {
789                                 rte_flow_error_set(error, EINVAL,
790                                                    RTE_FLOW_ERROR_TYPE_ACTION,
791                                                    actions,
792                                                    "too many queues for RSS"
793                                                    " context");
794                                 return -rte_errno;
795                         }
796                         for (n = 0; n < rss->queue_num; ++n) {
797                                 if (rss->queue[n] >= priv->rxqs_n) {
798                                         rte_flow_error_set(error, EINVAL,
799                                                    RTE_FLOW_ERROR_TYPE_ACTION,
800                                                    actions,
801                                                    "queue id > number of"
802                                                    " queues");
803                                         return -rte_errno;
804                                 }
805                         }
806                         parser->rss_conf = (struct rte_flow_action_rss){
807                                 .func = RTE_ETH_HASH_FUNCTION_DEFAULT,
808                                 .level = rss->level,
809                                 .types = rss->types,
810                                 .key_len = rss_key_len,
811                                 .queue_num = rss->queue_num,
812                                 .key = memcpy(parser->rss_key, rss_key,
813                                               sizeof(*rss_key) * rss_key_len),
814                                 .queue = memcpy(parser->queues, rss->queue,
815                                                 sizeof(*rss->queue) *
816                                                 rss->queue_num),
817                         };
818                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_MARK) {
819                         const struct rte_flow_action_mark *mark =
820                                 (const struct rte_flow_action_mark *)
821                                 actions->conf;
822
823                         if (overlap & MARK)
824                                 goto exit_action_overlap;
825                         overlap |= MARK;
826                         if (!mark) {
827                                 rte_flow_error_set(error, EINVAL,
828                                                    RTE_FLOW_ERROR_TYPE_ACTION,
829                                                    actions,
830                                                    "mark must be defined");
831                                 return -rte_errno;
832                         } else if (mark->id >= MLX5_FLOW_MARK_MAX) {
833                                 rte_flow_error_set(error, ENOTSUP,
834                                                    RTE_FLOW_ERROR_TYPE_ACTION,
835                                                    actions,
836                                                    "mark must be between 0"
837                                                    " and 16777199");
838                                 return -rte_errno;
839                         }
840                         parser->mark = 1;
841                         parser->mark_id = mark->id;
842                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_FLAG) {
843                         if (overlap & MARK)
844                                 goto exit_action_overlap;
845                         overlap |= MARK;
846                         parser->mark = 1;
847                 } else if (actions->type == RTE_FLOW_ACTION_TYPE_COUNT &&
848                            priv->config.flow_counter_en) {
849                         if (overlap & COUNT)
850                                 goto exit_action_overlap;
851                         overlap |= COUNT;
852                         parser->count = 1;
853                 } else {
854                         goto exit_action_not_supported;
855                 }
856         }
857         /* When fate is unknown, drop traffic. */
858         if (!(overlap & FATE))
859                 parser->drop = 1;
860         if (parser->drop && parser->mark)
861                 parser->mark = 0;
862         if (!parser->rss_conf.queue_num && !parser->drop) {
863                 rte_flow_error_set(error, ENOTSUP, RTE_FLOW_ERROR_TYPE_HANDLE,
864                                    NULL, "no valid action");
865                 return -rte_errno;
866         }
867         return 0;
868 exit_action_not_supported:
869         rte_flow_error_set(error, ENOTSUP, RTE_FLOW_ERROR_TYPE_ACTION,
870                            actions, "action not supported");
871         return -rte_errno;
872 exit_action_overlap:
873         rte_flow_error_set(error, ENOTSUP, RTE_FLOW_ERROR_TYPE_ACTION,
874                            actions, "overlapping actions are not supported");
875         return -rte_errno;
876 }
877
878 /**
879  * Validate items.
880  *
881  * @param[in] items
882  *   Pattern specification (list terminated by the END pattern item).
883  * @param[out] error
884  *   Perform verbose error reporting if not NULL.
885  * @param[in, out] parser
886  *   Internal parser structure.
887  *
888  * @return
889  *   0 on success, a negative errno value otherwise and rte_errno is set.
890  */
891 static int
892 mlx5_flow_convert_items_validate(struct rte_eth_dev *dev,
893                                  const struct rte_flow_item items[],
894                                  struct rte_flow_error *error,
895                                  struct mlx5_flow_parse *parser)
896 {
897         struct priv *priv = dev->data->dev_private;
898         const struct mlx5_flow_items *cur_item = mlx5_flow_items;
899         unsigned int i;
900         unsigned int last_voids = 0;
901         int ret = 0;
902
903         /* Initialise the offsets to start after verbs attribute. */
904         for (i = 0; i != hash_rxq_init_n; ++i)
905                 parser->queue[i].offset = sizeof(struct ibv_flow_attr);
906         for (; items->type != RTE_FLOW_ITEM_TYPE_END; ++items) {
907                 const struct mlx5_flow_items *token = NULL;
908                 unsigned int n;
909
910                 if (items->type == RTE_FLOW_ITEM_TYPE_VOID) {
911                         last_voids++;
912                         continue;
913                 }
914                 for (i = 0;
915                      cur_item->items &&
916                      cur_item->items[i] != RTE_FLOW_ITEM_TYPE_END;
917                      ++i) {
918                         if (cur_item->items[i] == items->type) {
919                                 token = &mlx5_flow_items[items->type];
920                                 break;
921                         }
922                 }
923                 if (!token) {
924                         ret = -ENOTSUP;
925                         goto exit_item_not_supported;
926                 }
927                 cur_item = token;
928                 ret = mlx5_flow_item_validate(items,
929                                               (const uint8_t *)cur_item->mask,
930                                               cur_item->mask_sz);
931                 if (ret)
932                         goto exit_item_not_supported;
933                 if (IS_TUNNEL(items->type)) {
934                         if (parser->tunnel &&
935                             !((items - last_voids - 1)->type ==
936                               RTE_FLOW_ITEM_TYPE_GRE && items->type ==
937                               RTE_FLOW_ITEM_TYPE_MPLS)) {
938                                 rte_flow_error_set(error, ENOTSUP,
939                                                    RTE_FLOW_ERROR_TYPE_ITEM,
940                                                    items,
941                                                    "Cannot recognize multiple"
942                                                    " tunnel encapsulations.");
943                                 return -rte_errno;
944                         }
945                         if (items->type == RTE_FLOW_ITEM_TYPE_MPLS &&
946                             !priv->config.mpls_en) {
947                                 rte_flow_error_set(error, ENOTSUP,
948                                                    RTE_FLOW_ERROR_TYPE_ITEM,
949                                                    items,
950                                                    "MPLS not supported or"
951                                                    " disabled in firmware"
952                                                    " configuration.");
953                                 return -rte_errno;
954                         }
955                         if (!priv->config.tunnel_en &&
956                             parser->rss_conf.level > 1) {
957                                 rte_flow_error_set(error, ENOTSUP,
958                                         RTE_FLOW_ERROR_TYPE_ITEM,
959                                         items,
960                                         "RSS on tunnel is not supported");
961                                 return -rte_errno;
962                         }
963                         parser->inner = IBV_FLOW_SPEC_INNER;
964                         parser->tunnel = flow_ptype[items->type];
965                 }
966                 if (parser->drop) {
967                         parser->queue[HASH_RXQ_ETH].offset += cur_item->dst_sz;
968                 } else {
969                         for (n = 0; n != hash_rxq_init_n; ++n)
970                                 parser->queue[n].offset += cur_item->dst_sz;
971                 }
972                 last_voids = 0;
973         }
974         if (parser->drop) {
975                 parser->queue[HASH_RXQ_ETH].offset +=
976                         sizeof(struct ibv_flow_spec_action_drop);
977         }
978         if (parser->mark) {
979                 for (i = 0; i != hash_rxq_init_n; ++i)
980                         parser->queue[i].offset +=
981                                 sizeof(struct ibv_flow_spec_action_tag);
982         }
983         if (parser->count) {
984                 unsigned int size = sizeof(struct ibv_flow_spec_counter_action);
985
986                 for (i = 0; i != hash_rxq_init_n; ++i)
987                         parser->queue[i].offset += size;
988         }
989         return 0;
990 exit_item_not_supported:
991         return rte_flow_error_set(error, -ret, RTE_FLOW_ERROR_TYPE_ITEM,
992                                   items, "item not supported");
993 }
994
995 /**
996  * Allocate memory space to store verbs flow attributes.
997  *
998  * @param[in] size
999  *   Amount of byte to allocate.
1000  * @param[out] error
1001  *   Perform verbose error reporting if not NULL.
1002  *
1003  * @return
1004  *   A verbs flow attribute on success, NULL otherwise and rte_errno is set.
1005  */
1006 static struct ibv_flow_attr *
1007 mlx5_flow_convert_allocate(unsigned int size, struct rte_flow_error *error)
1008 {
1009         struct ibv_flow_attr *ibv_attr;
1010
1011         ibv_attr = rte_calloc(__func__, 1, size, 0);
1012         if (!ibv_attr) {
1013                 rte_flow_error_set(error, ENOMEM,
1014                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
1015                                    NULL,
1016                                    "cannot allocate verbs spec attributes");
1017                 return NULL;
1018         }
1019         return ibv_attr;
1020 }
1021
1022 /**
1023  * Make inner packet matching with an higher priority from the non Inner
1024  * matching.
1025  *
1026  * @param dev
1027  *   Pointer to Ethernet device.
1028  * @param[in, out] parser
1029  *   Internal parser structure.
1030  * @param attr
1031  *   User flow attribute.
1032  */
1033 static void
1034 mlx5_flow_update_priority(struct rte_eth_dev *dev,
1035                           struct mlx5_flow_parse *parser,
1036                           const struct rte_flow_attr *attr)
1037 {
1038         struct priv *priv = dev->data->dev_private;
1039         unsigned int i;
1040         uint16_t priority;
1041
1042         /*                      8 priorities    >= 16 priorities
1043          * Control flow:        4-7             8-15
1044          * User normal flow:    1-3             4-7
1045          * User tunnel flow:    0-2             0-3
1046          */
1047         priority = attr->priority * MLX5_VERBS_FLOW_PRIO_8;
1048         if (priv->config.max_verbs_prio == MLX5_VERBS_FLOW_PRIO_8)
1049                 priority /= 2;
1050         /*
1051          * Lower non-tunnel flow Verbs priority 1 if only support 8 Verbs
1052          * priorities, lower 4 otherwise.
1053          */
1054         if (!parser->inner) {
1055                 if (priv->config.max_verbs_prio == MLX5_VERBS_FLOW_PRIO_8)
1056                         priority += 1;
1057                 else
1058                         priority += MLX5_VERBS_FLOW_PRIO_8 / 2;
1059         }
1060         if (parser->drop) {
1061                 parser->queue[HASH_RXQ_ETH].ibv_attr->priority = priority +
1062                                 hash_rxq_init[HASH_RXQ_ETH].flow_priority;
1063                 return;
1064         }
1065         for (i = 0; i != hash_rxq_init_n; ++i) {
1066                 if (!parser->queue[i].ibv_attr)
1067                         continue;
1068                 parser->queue[i].ibv_attr->priority = priority +
1069                                 hash_rxq_init[i].flow_priority;
1070         }
1071 }
1072
1073 /**
1074  * Finalise verbs flow attributes.
1075  *
1076  * @param[in, out] parser
1077  *   Internal parser structure.
1078  */
1079 static void
1080 mlx5_flow_convert_finalise(struct mlx5_flow_parse *parser)
1081 {
1082         unsigned int i;
1083         uint32_t inner = parser->inner;
1084
1085         /* Don't create extra flows for outer RSS. */
1086         if (parser->tunnel && parser->rss_conf.level < 2)
1087                 return;
1088         /*
1089          * Fill missing layers in verbs specifications, or compute the correct
1090          * offset to allocate the memory space for the attributes and
1091          * specifications.
1092          */
1093         for (i = 0; i != hash_rxq_init_n - 1; ++i) {
1094                 union {
1095                         struct ibv_flow_spec_ipv4_ext ipv4;
1096                         struct ibv_flow_spec_ipv6 ipv6;
1097                         struct ibv_flow_spec_tcp_udp udp_tcp;
1098                         struct ibv_flow_spec_eth eth;
1099                 } specs;
1100                 void *dst;
1101                 uint16_t size;
1102
1103                 if (i == parser->layer)
1104                         continue;
1105                 if (parser->layer == HASH_RXQ_ETH ||
1106                     parser->layer == HASH_RXQ_TUNNEL) {
1107                         if (hash_rxq_init[i].ip_version == MLX5_IPV4) {
1108                                 size = sizeof(struct ibv_flow_spec_ipv4_ext);
1109                                 specs.ipv4 = (struct ibv_flow_spec_ipv4_ext){
1110                                         .type = inner | IBV_FLOW_SPEC_IPV4_EXT,
1111                                         .size = size,
1112                                 };
1113                         } else {
1114                                 size = sizeof(struct ibv_flow_spec_ipv6);
1115                                 specs.ipv6 = (struct ibv_flow_spec_ipv6){
1116                                         .type = inner | IBV_FLOW_SPEC_IPV6,
1117                                         .size = size,
1118                                 };
1119                         }
1120                         if (parser->queue[i].ibv_attr) {
1121                                 dst = (void *)((uintptr_t)
1122                                                parser->queue[i].ibv_attr +
1123                                                parser->queue[i].offset);
1124                                 memcpy(dst, &specs, size);
1125                                 ++parser->queue[i].ibv_attr->num_of_specs;
1126                         }
1127                         parser->queue[i].offset += size;
1128                 }
1129                 if ((i == HASH_RXQ_UDPV4) || (i == HASH_RXQ_TCPV4) ||
1130                     (i == HASH_RXQ_UDPV6) || (i == HASH_RXQ_TCPV6)) {
1131                         size = sizeof(struct ibv_flow_spec_tcp_udp);
1132                         specs.udp_tcp = (struct ibv_flow_spec_tcp_udp) {
1133                                 .type = inner | ((i == HASH_RXQ_UDPV4 ||
1134                                           i == HASH_RXQ_UDPV6) ?
1135                                          IBV_FLOW_SPEC_UDP :
1136                                          IBV_FLOW_SPEC_TCP),
1137                                 .size = size,
1138                         };
1139                         if (parser->queue[i].ibv_attr) {
1140                                 dst = (void *)((uintptr_t)
1141                                                parser->queue[i].ibv_attr +
1142                                                parser->queue[i].offset);
1143                                 memcpy(dst, &specs, size);
1144                                 ++parser->queue[i].ibv_attr->num_of_specs;
1145                         }
1146                         parser->queue[i].offset += size;
1147                 }
1148         }
1149 }
1150
1151 /**
1152  * Update flows according to pattern and RSS hash fields.
1153  *
1154  * @param[in, out] parser
1155  *   Internal parser structure.
1156  *
1157  * @return
1158  *   0 on success, a negative errno value otherwise and rte_errno is set.
1159  */
1160 static int
1161 mlx5_flow_convert_rss(struct mlx5_flow_parse *parser)
1162 {
1163         unsigned int i;
1164         enum hash_rxq_type start;
1165         enum hash_rxq_type layer;
1166         int outer = parser->tunnel && parser->rss_conf.level < 2;
1167         uint64_t rss = parser->rss_conf.types;
1168
1169         /* Default to outer RSS. */
1170         if (!parser->rss_conf.level)
1171                 parser->rss_conf.level = 1;
1172         layer = outer ? parser->out_layer : parser->layer;
1173         if (layer == HASH_RXQ_TUNNEL)
1174                 layer = HASH_RXQ_ETH;
1175         if (outer) {
1176                 /* Only one hash type for outer RSS. */
1177                 if (rss && layer == HASH_RXQ_ETH) {
1178                         start = HASH_RXQ_TCPV4;
1179                 } else if (rss && layer != HASH_RXQ_ETH &&
1180                            !(rss & hash_rxq_init[layer].dpdk_rss_hf)) {
1181                         /* If RSS not match L4 pattern, try L3 RSS. */
1182                         if (layer < HASH_RXQ_IPV4)
1183                                 layer = HASH_RXQ_IPV4;
1184                         else if (layer > HASH_RXQ_IPV4 && layer < HASH_RXQ_IPV6)
1185                                 layer = HASH_RXQ_IPV6;
1186                         start = layer;
1187                 } else {
1188                         start = layer;
1189                 }
1190                 /* Scan first valid hash type. */
1191                 for (i = start; rss && i <= layer; ++i) {
1192                         if (!parser->queue[i].ibv_attr)
1193                                 continue;
1194                         if (hash_rxq_init[i].dpdk_rss_hf & rss)
1195                                 break;
1196                 }
1197                 if (rss && i <= layer)
1198                         parser->queue[layer].hash_fields =
1199                                         hash_rxq_init[i].hash_fields;
1200                 /* Trim unused hash types. */
1201                 for (i = 0; i != hash_rxq_init_n; ++i) {
1202                         if (parser->queue[i].ibv_attr && i != layer) {
1203                                 rte_free(parser->queue[i].ibv_attr);
1204                                 parser->queue[i].ibv_attr = NULL;
1205                         }
1206                 }
1207         } else {
1208                 /* Expand for inner or normal RSS. */
1209                 if (rss && (layer == HASH_RXQ_ETH || layer == HASH_RXQ_IPV4))
1210                         start = HASH_RXQ_TCPV4;
1211                 else if (rss && layer == HASH_RXQ_IPV6)
1212                         start = HASH_RXQ_TCPV6;
1213                 else
1214                         start = layer;
1215                 /* For L4 pattern, try L3 RSS if no L4 RSS. */
1216                 /* Trim unused hash types. */
1217                 for (i = 0; i != hash_rxq_init_n; ++i) {
1218                         if (!parser->queue[i].ibv_attr)
1219                                 continue;
1220                         if (i < start || i > layer) {
1221                                 rte_free(parser->queue[i].ibv_attr);
1222                                 parser->queue[i].ibv_attr = NULL;
1223                                 continue;
1224                         }
1225                         if (!rss)
1226                                 continue;
1227                         if (hash_rxq_init[i].dpdk_rss_hf & rss) {
1228                                 parser->queue[i].hash_fields =
1229                                                 hash_rxq_init[i].hash_fields;
1230                         } else if (i != layer) {
1231                                 /* Remove unused RSS expansion. */
1232                                 rte_free(parser->queue[i].ibv_attr);
1233                                 parser->queue[i].ibv_attr = NULL;
1234                         } else if (layer < HASH_RXQ_IPV4 &&
1235                                    (hash_rxq_init[HASH_RXQ_IPV4].dpdk_rss_hf &
1236                                     rss)) {
1237                                 /* Allow IPv4 RSS on L4 pattern. */
1238                                 parser->queue[i].hash_fields =
1239                                         hash_rxq_init[HASH_RXQ_IPV4]
1240                                                 .hash_fields;
1241                         } else if (i > HASH_RXQ_IPV4 && i < HASH_RXQ_IPV6 &&
1242                                    (hash_rxq_init[HASH_RXQ_IPV6].dpdk_rss_hf &
1243                                     rss)) {
1244                                 /* Allow IPv4 RSS on L4 pattern. */
1245                                 parser->queue[i].hash_fields =
1246                                         hash_rxq_init[HASH_RXQ_IPV6]
1247                                                 .hash_fields;
1248                         }
1249                 }
1250         }
1251         return 0;
1252 }
1253
1254 /**
1255  * Validate and convert a flow supported by the NIC.
1256  *
1257  * @param dev
1258  *   Pointer to Ethernet device.
1259  * @param[in] attr
1260  *   Flow rule attributes.
1261  * @param[in] pattern
1262  *   Pattern specification (list terminated by the END pattern item).
1263  * @param[in] actions
1264  *   Associated actions (list terminated by the END action).
1265  * @param[out] error
1266  *   Perform verbose error reporting if not NULL.
1267  * @param[in, out] parser
1268  *   Internal parser structure.
1269  *
1270  * @return
1271  *   0 on success, a negative errno value otherwise and rte_errno is set.
1272  */
1273 static int
1274 mlx5_flow_convert(struct rte_eth_dev *dev,
1275                   const struct rte_flow_attr *attr,
1276                   const struct rte_flow_item items[],
1277                   const struct rte_flow_action actions[],
1278                   struct rte_flow_error *error,
1279                   struct mlx5_flow_parse *parser)
1280 {
1281         const struct mlx5_flow_items *cur_item = mlx5_flow_items;
1282         unsigned int i;
1283         int ret;
1284
1285         /* First step. Validate the attributes, items and actions. */
1286         *parser = (struct mlx5_flow_parse){
1287                 .create = parser->create,
1288                 .layer = HASH_RXQ_ETH,
1289                 .mark_id = MLX5_FLOW_MARK_DEFAULT,
1290         };
1291         ret = mlx5_flow_convert_attributes(attr, error);
1292         if (ret)
1293                 return ret;
1294         ret = mlx5_flow_convert_actions(dev, actions, error, parser);
1295         if (ret)
1296                 return ret;
1297         ret = mlx5_flow_convert_items_validate(dev, items, error, parser);
1298         if (ret)
1299                 return ret;
1300         mlx5_flow_convert_finalise(parser);
1301         /*
1302          * Second step.
1303          * Allocate the memory space to store verbs specifications.
1304          */
1305         if (parser->drop) {
1306                 unsigned int offset = parser->queue[HASH_RXQ_ETH].offset;
1307
1308                 parser->queue[HASH_RXQ_ETH].ibv_attr =
1309                         mlx5_flow_convert_allocate(offset, error);
1310                 if (!parser->queue[HASH_RXQ_ETH].ibv_attr)
1311                         goto exit_enomem;
1312                 parser->queue[HASH_RXQ_ETH].offset =
1313                         sizeof(struct ibv_flow_attr);
1314         } else {
1315                 for (i = 0; i != hash_rxq_init_n; ++i) {
1316                         unsigned int offset;
1317
1318                         offset = parser->queue[i].offset;
1319                         parser->queue[i].ibv_attr =
1320                                 mlx5_flow_convert_allocate(offset, error);
1321                         if (!parser->queue[i].ibv_attr)
1322                                 goto exit_enomem;
1323                         parser->queue[i].offset = sizeof(struct ibv_flow_attr);
1324                 }
1325         }
1326         /* Third step. Conversion parse, fill the specifications. */
1327         parser->inner = 0;
1328         parser->tunnel = 0;
1329         parser->layer = HASH_RXQ_ETH;
1330         for (; items->type != RTE_FLOW_ITEM_TYPE_END; ++items) {
1331                 struct mlx5_flow_data data = {
1332                         .dev = dev,
1333                         .parser = parser,
1334                         .error = error,
1335                 };
1336
1337                 if (items->type == RTE_FLOW_ITEM_TYPE_VOID)
1338                         continue;
1339                 cur_item = &mlx5_flow_items[items->type];
1340                 ret = cur_item->convert(items,
1341                                         (cur_item->default_mask ?
1342                                          cur_item->default_mask :
1343                                          cur_item->mask),
1344                                          &data);
1345                 if (ret)
1346                         goto exit_free;
1347         }
1348         if (!parser->drop) {
1349                 /* RSS check, remove unused hash types. */
1350                 ret = mlx5_flow_convert_rss(parser);
1351                 if (ret)
1352                         goto exit_free;
1353                 /* Complete missing specification. */
1354                 mlx5_flow_convert_finalise(parser);
1355         }
1356         mlx5_flow_update_priority(dev, parser, attr);
1357         if (parser->mark)
1358                 mlx5_flow_create_flag_mark(parser, parser->mark_id);
1359         if (parser->count && parser->create) {
1360                 mlx5_flow_create_count(dev, parser);
1361                 if (!parser->cs)
1362                         goto exit_count_error;
1363         }
1364 exit_free:
1365         /* Only verification is expected, all resources should be released. */
1366         if (!parser->create) {
1367                 for (i = 0; i != hash_rxq_init_n; ++i) {
1368                         if (parser->queue[i].ibv_attr) {
1369                                 rte_free(parser->queue[i].ibv_attr);
1370                                 parser->queue[i].ibv_attr = NULL;
1371                         }
1372                 }
1373         }
1374         return ret;
1375 exit_enomem:
1376         for (i = 0; i != hash_rxq_init_n; ++i) {
1377                 if (parser->queue[i].ibv_attr) {
1378                         rte_free(parser->queue[i].ibv_attr);
1379                         parser->queue[i].ibv_attr = NULL;
1380                 }
1381         }
1382         rte_flow_error_set(error, ENOMEM, RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
1383                            NULL, "cannot allocate verbs spec attributes");
1384         return -rte_errno;
1385 exit_count_error:
1386         rte_flow_error_set(error, EINVAL, RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
1387                            NULL, "cannot create counter");
1388         return -rte_errno;
1389 }
1390
1391 /**
1392  * Copy the specification created into the flow.
1393  *
1394  * @param parser
1395  *   Internal parser structure.
1396  * @param src
1397  *   Create specification.
1398  * @param size
1399  *   Size in bytes of the specification to copy.
1400  */
1401 static void
1402 mlx5_flow_create_copy(struct mlx5_flow_parse *parser, void *src,
1403                       unsigned int size)
1404 {
1405         unsigned int i;
1406         void *dst;
1407
1408         for (i = 0; i != hash_rxq_init_n; ++i) {
1409                 if (!parser->queue[i].ibv_attr)
1410                         continue;
1411                 dst = (void *)((uintptr_t)parser->queue[i].ibv_attr +
1412                                 parser->queue[i].offset);
1413                 memcpy(dst, src, size);
1414                 ++parser->queue[i].ibv_attr->num_of_specs;
1415                 parser->queue[i].offset += size;
1416         }
1417 }
1418
1419 /**
1420  * Convert Ethernet item to Verbs specification.
1421  *
1422  * @param item[in]
1423  *   Item specification.
1424  * @param default_mask[in]
1425  *   Default bit-masks to use when item->mask is not provided.
1426  * @param data[in, out]
1427  *   User structure.
1428  *
1429  * @return
1430  *   0 on success, a negative errno value otherwise and rte_errno is set.
1431  */
1432 static int
1433 mlx5_flow_create_eth(const struct rte_flow_item *item,
1434                      const void *default_mask,
1435                      struct mlx5_flow_data *data)
1436 {
1437         const struct rte_flow_item_eth *spec = item->spec;
1438         const struct rte_flow_item_eth *mask = item->mask;
1439         struct mlx5_flow_parse *parser = data->parser;
1440         const unsigned int eth_size = sizeof(struct ibv_flow_spec_eth);
1441         struct ibv_flow_spec_eth eth = {
1442                 .type = parser->inner | IBV_FLOW_SPEC_ETH,
1443                 .size = eth_size,
1444         };
1445
1446         parser->layer = HASH_RXQ_ETH;
1447         if (spec) {
1448                 unsigned int i;
1449
1450                 if (!mask)
1451                         mask = default_mask;
1452                 memcpy(&eth.val.dst_mac, spec->dst.addr_bytes, ETHER_ADDR_LEN);
1453                 memcpy(&eth.val.src_mac, spec->src.addr_bytes, ETHER_ADDR_LEN);
1454                 eth.val.ether_type = spec->type;
1455                 memcpy(&eth.mask.dst_mac, mask->dst.addr_bytes, ETHER_ADDR_LEN);
1456                 memcpy(&eth.mask.src_mac, mask->src.addr_bytes, ETHER_ADDR_LEN);
1457                 eth.mask.ether_type = mask->type;
1458                 /* Remove unwanted bits from values. */
1459                 for (i = 0; i < ETHER_ADDR_LEN; ++i) {
1460                         eth.val.dst_mac[i] &= eth.mask.dst_mac[i];
1461                         eth.val.src_mac[i] &= eth.mask.src_mac[i];
1462                 }
1463                 eth.val.ether_type &= eth.mask.ether_type;
1464         }
1465         mlx5_flow_create_copy(parser, &eth, eth_size);
1466         return 0;
1467 }
1468
1469 /**
1470  * Convert VLAN item to Verbs specification.
1471  *
1472  * @param item[in]
1473  *   Item specification.
1474  * @param default_mask[in]
1475  *   Default bit-masks to use when item->mask is not provided.
1476  * @param data[in, out]
1477  *   User structure.
1478  *
1479  * @return
1480  *   0 on success, a negative errno value otherwise and rte_errno is set.
1481  */
1482 static int
1483 mlx5_flow_create_vlan(const struct rte_flow_item *item,
1484                       const void *default_mask,
1485                       struct mlx5_flow_data *data)
1486 {
1487         const struct rte_flow_item_vlan *spec = item->spec;
1488         const struct rte_flow_item_vlan *mask = item->mask;
1489         struct mlx5_flow_parse *parser = data->parser;
1490         struct ibv_flow_spec_eth *eth;
1491         const unsigned int eth_size = sizeof(struct ibv_flow_spec_eth);
1492         const char *msg = "VLAN cannot be empty";
1493
1494         if (spec) {
1495                 unsigned int i;
1496                 if (!mask)
1497                         mask = default_mask;
1498
1499                 for (i = 0; i != hash_rxq_init_n; ++i) {
1500                         if (!parser->queue[i].ibv_attr)
1501                                 continue;
1502
1503                         eth = (void *)((uintptr_t)parser->queue[i].ibv_attr +
1504                                        parser->queue[i].offset - eth_size);
1505                         eth->val.vlan_tag = spec->tci;
1506                         eth->mask.vlan_tag = mask->tci;
1507                         eth->val.vlan_tag &= eth->mask.vlan_tag;
1508                         /*
1509                          * From verbs perspective an empty VLAN is equivalent
1510                          * to a packet without VLAN layer.
1511                          */
1512                         if (!eth->mask.vlan_tag)
1513                                 goto error;
1514                         /* Outer TPID cannot be matched. */
1515                         if (eth->mask.ether_type) {
1516                                 msg = "VLAN TPID matching is not supported";
1517                                 goto error;
1518                         }
1519                         eth->val.ether_type = spec->inner_type;
1520                         eth->mask.ether_type = mask->inner_type;
1521                         eth->val.ether_type &= eth->mask.ether_type;
1522                 }
1523                 return 0;
1524         }
1525 error:
1526         return rte_flow_error_set(data->error, EINVAL, RTE_FLOW_ERROR_TYPE_ITEM,
1527                                   item, msg);
1528 }
1529
1530 /**
1531  * Convert IPv4 item to Verbs specification.
1532  *
1533  * @param item[in]
1534  *   Item specification.
1535  * @param default_mask[in]
1536  *   Default bit-masks to use when item->mask is not provided.
1537  * @param data[in, out]
1538  *   User structure.
1539  *
1540  * @return
1541  *   0 on success, a negative errno value otherwise and rte_errno is set.
1542  */
1543 static int
1544 mlx5_flow_create_ipv4(const struct rte_flow_item *item,
1545                       const void *default_mask,
1546                       struct mlx5_flow_data *data)
1547 {
1548         struct priv *priv = data->dev->data->dev_private;
1549         const struct rte_flow_item_ipv4 *spec = item->spec;
1550         const struct rte_flow_item_ipv4 *mask = item->mask;
1551         struct mlx5_flow_parse *parser = data->parser;
1552         unsigned int ipv4_size = sizeof(struct ibv_flow_spec_ipv4_ext);
1553         struct ibv_flow_spec_ipv4_ext ipv4 = {
1554                 .type = parser->inner | IBV_FLOW_SPEC_IPV4_EXT,
1555                 .size = ipv4_size,
1556         };
1557
1558         if (parser->layer == HASH_RXQ_TUNNEL &&
1559             parser->tunnel == ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN)] &&
1560             !priv->config.l3_vxlan_en)
1561                 return rte_flow_error_set(data->error, EINVAL,
1562                                           RTE_FLOW_ERROR_TYPE_ITEM,
1563                                           item,
1564                                           "L3 VXLAN not enabled by device"
1565                                           " parameter and/or not configured"
1566                                           " in firmware");
1567         parser->layer = HASH_RXQ_IPV4;
1568         if (spec) {
1569                 if (!mask)
1570                         mask = default_mask;
1571                 ipv4.val = (struct ibv_flow_ipv4_ext_filter){
1572                         .src_ip = spec->hdr.src_addr,
1573                         .dst_ip = spec->hdr.dst_addr,
1574                         .proto = spec->hdr.next_proto_id,
1575                         .tos = spec->hdr.type_of_service,
1576                 };
1577                 ipv4.mask = (struct ibv_flow_ipv4_ext_filter){
1578                         .src_ip = mask->hdr.src_addr,
1579                         .dst_ip = mask->hdr.dst_addr,
1580                         .proto = mask->hdr.next_proto_id,
1581                         .tos = mask->hdr.type_of_service,
1582                 };
1583                 /* Remove unwanted bits from values. */
1584                 ipv4.val.src_ip &= ipv4.mask.src_ip;
1585                 ipv4.val.dst_ip &= ipv4.mask.dst_ip;
1586                 ipv4.val.proto &= ipv4.mask.proto;
1587                 ipv4.val.tos &= ipv4.mask.tos;
1588         }
1589         mlx5_flow_create_copy(parser, &ipv4, ipv4_size);
1590         return 0;
1591 }
1592
1593 /**
1594  * Convert IPv6 item to Verbs specification.
1595  *
1596  * @param item[in]
1597  *   Item specification.
1598  * @param default_mask[in]
1599  *   Default bit-masks to use when item->mask is not provided.
1600  * @param data[in, out]
1601  *   User structure.
1602  *
1603  * @return
1604  *   0 on success, a negative errno value otherwise and rte_errno is set.
1605  */
1606 static int
1607 mlx5_flow_create_ipv6(const struct rte_flow_item *item,
1608                       const void *default_mask,
1609                       struct mlx5_flow_data *data)
1610 {
1611         struct priv *priv = data->dev->data->dev_private;
1612         const struct rte_flow_item_ipv6 *spec = item->spec;
1613         const struct rte_flow_item_ipv6 *mask = item->mask;
1614         struct mlx5_flow_parse *parser = data->parser;
1615         unsigned int ipv6_size = sizeof(struct ibv_flow_spec_ipv6);
1616         struct ibv_flow_spec_ipv6 ipv6 = {
1617                 .type = parser->inner | IBV_FLOW_SPEC_IPV6,
1618                 .size = ipv6_size,
1619         };
1620
1621         if (parser->layer == HASH_RXQ_TUNNEL &&
1622             parser->tunnel == ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN)] &&
1623             !priv->config.l3_vxlan_en)
1624                 return rte_flow_error_set(data->error, EINVAL,
1625                                           RTE_FLOW_ERROR_TYPE_ITEM,
1626                                           item,
1627                                           "L3 VXLAN not enabled by device"
1628                                           " parameter and/or not configured"
1629                                           " in firmware");
1630         parser->layer = HASH_RXQ_IPV6;
1631         if (spec) {
1632                 unsigned int i;
1633                 uint32_t vtc_flow_val;
1634                 uint32_t vtc_flow_mask;
1635
1636                 if (!mask)
1637                         mask = default_mask;
1638                 memcpy(&ipv6.val.src_ip, spec->hdr.src_addr,
1639                        RTE_DIM(ipv6.val.src_ip));
1640                 memcpy(&ipv6.val.dst_ip, spec->hdr.dst_addr,
1641                        RTE_DIM(ipv6.val.dst_ip));
1642                 memcpy(&ipv6.mask.src_ip, mask->hdr.src_addr,
1643                        RTE_DIM(ipv6.mask.src_ip));
1644                 memcpy(&ipv6.mask.dst_ip, mask->hdr.dst_addr,
1645                        RTE_DIM(ipv6.mask.dst_ip));
1646                 vtc_flow_val = rte_be_to_cpu_32(spec->hdr.vtc_flow);
1647                 vtc_flow_mask = rte_be_to_cpu_32(mask->hdr.vtc_flow);
1648                 ipv6.val.flow_label =
1649                         rte_cpu_to_be_32((vtc_flow_val & IPV6_HDR_FL_MASK) >>
1650                                          IPV6_HDR_FL_SHIFT);
1651                 ipv6.val.traffic_class = (vtc_flow_val & IPV6_HDR_TC_MASK) >>
1652                                          IPV6_HDR_TC_SHIFT;
1653                 ipv6.val.next_hdr = spec->hdr.proto;
1654                 ipv6.val.hop_limit = spec->hdr.hop_limits;
1655                 ipv6.mask.flow_label =
1656                         rte_cpu_to_be_32((vtc_flow_mask & IPV6_HDR_FL_MASK) >>
1657                                          IPV6_HDR_FL_SHIFT);
1658                 ipv6.mask.traffic_class = (vtc_flow_mask & IPV6_HDR_TC_MASK) >>
1659                                           IPV6_HDR_TC_SHIFT;
1660                 ipv6.mask.next_hdr = mask->hdr.proto;
1661                 ipv6.mask.hop_limit = mask->hdr.hop_limits;
1662                 /* Remove unwanted bits from values. */
1663                 for (i = 0; i < RTE_DIM(ipv6.val.src_ip); ++i) {
1664                         ipv6.val.src_ip[i] &= ipv6.mask.src_ip[i];
1665                         ipv6.val.dst_ip[i] &= ipv6.mask.dst_ip[i];
1666                 }
1667                 ipv6.val.flow_label &= ipv6.mask.flow_label;
1668                 ipv6.val.traffic_class &= ipv6.mask.traffic_class;
1669                 ipv6.val.next_hdr &= ipv6.mask.next_hdr;
1670                 ipv6.val.hop_limit &= ipv6.mask.hop_limit;
1671         }
1672         mlx5_flow_create_copy(parser, &ipv6, ipv6_size);
1673         return 0;
1674 }
1675
1676 /**
1677  * Convert UDP item to Verbs specification.
1678  *
1679  * @param item[in]
1680  *   Item specification.
1681  * @param default_mask[in]
1682  *   Default bit-masks to use when item->mask is not provided.
1683  * @param data[in, out]
1684  *   User structure.
1685  *
1686  * @return
1687  *   0 on success, a negative errno value otherwise and rte_errno is set.
1688  */
1689 static int
1690 mlx5_flow_create_udp(const struct rte_flow_item *item,
1691                      const void *default_mask,
1692                      struct mlx5_flow_data *data)
1693 {
1694         const struct rte_flow_item_udp *spec = item->spec;
1695         const struct rte_flow_item_udp *mask = item->mask;
1696         struct mlx5_flow_parse *parser = data->parser;
1697         unsigned int udp_size = sizeof(struct ibv_flow_spec_tcp_udp);
1698         struct ibv_flow_spec_tcp_udp udp = {
1699                 .type = parser->inner | IBV_FLOW_SPEC_UDP,
1700                 .size = udp_size,
1701         };
1702
1703         if (parser->layer == HASH_RXQ_IPV4)
1704                 parser->layer = HASH_RXQ_UDPV4;
1705         else
1706                 parser->layer = HASH_RXQ_UDPV6;
1707         if (spec) {
1708                 if (!mask)
1709                         mask = default_mask;
1710                 udp.val.dst_port = spec->hdr.dst_port;
1711                 udp.val.src_port = spec->hdr.src_port;
1712                 udp.mask.dst_port = mask->hdr.dst_port;
1713                 udp.mask.src_port = mask->hdr.src_port;
1714                 /* Remove unwanted bits from values. */
1715                 udp.val.src_port &= udp.mask.src_port;
1716                 udp.val.dst_port &= udp.mask.dst_port;
1717         }
1718         mlx5_flow_create_copy(parser, &udp, udp_size);
1719         return 0;
1720 }
1721
1722 /**
1723  * Convert TCP item to Verbs specification.
1724  *
1725  * @param item[in]
1726  *   Item specification.
1727  * @param default_mask[in]
1728  *   Default bit-masks to use when item->mask is not provided.
1729  * @param data[in, out]
1730  *   User structure.
1731  *
1732  * @return
1733  *   0 on success, a negative errno value otherwise and rte_errno is set.
1734  */
1735 static int
1736 mlx5_flow_create_tcp(const struct rte_flow_item *item,
1737                      const void *default_mask,
1738                      struct mlx5_flow_data *data)
1739 {
1740         const struct rte_flow_item_tcp *spec = item->spec;
1741         const struct rte_flow_item_tcp *mask = item->mask;
1742         struct mlx5_flow_parse *parser = data->parser;
1743         unsigned int tcp_size = sizeof(struct ibv_flow_spec_tcp_udp);
1744         struct ibv_flow_spec_tcp_udp tcp = {
1745                 .type = parser->inner | IBV_FLOW_SPEC_TCP,
1746                 .size = tcp_size,
1747         };
1748
1749         if (parser->layer == HASH_RXQ_IPV4)
1750                 parser->layer = HASH_RXQ_TCPV4;
1751         else
1752                 parser->layer = HASH_RXQ_TCPV6;
1753         if (spec) {
1754                 if (!mask)
1755                         mask = default_mask;
1756                 tcp.val.dst_port = spec->hdr.dst_port;
1757                 tcp.val.src_port = spec->hdr.src_port;
1758                 tcp.mask.dst_port = mask->hdr.dst_port;
1759                 tcp.mask.src_port = mask->hdr.src_port;
1760                 /* Remove unwanted bits from values. */
1761                 tcp.val.src_port &= tcp.mask.src_port;
1762                 tcp.val.dst_port &= tcp.mask.dst_port;
1763         }
1764         mlx5_flow_create_copy(parser, &tcp, tcp_size);
1765         return 0;
1766 }
1767
1768 /**
1769  * Convert VXLAN item to Verbs specification.
1770  *
1771  * @param item[in]
1772  *   Item specification.
1773  * @param default_mask[in]
1774  *   Default bit-masks to use when item->mask is not provided.
1775  * @param data[in, out]
1776  *   User structure.
1777  *
1778  * @return
1779  *   0 on success, a negative errno value otherwise and rte_errno is set.
1780  */
1781 static int
1782 mlx5_flow_create_vxlan(const struct rte_flow_item *item,
1783                        const void *default_mask,
1784                        struct mlx5_flow_data *data)
1785 {
1786         const struct rte_flow_item_vxlan *spec = item->spec;
1787         const struct rte_flow_item_vxlan *mask = item->mask;
1788         struct mlx5_flow_parse *parser = data->parser;
1789         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
1790         struct ibv_flow_spec_tunnel vxlan = {
1791                 .type = parser->inner | IBV_FLOW_SPEC_VXLAN_TUNNEL,
1792                 .size = size,
1793         };
1794         union vni {
1795                 uint32_t vlan_id;
1796                 uint8_t vni[4];
1797         } id;
1798
1799         id.vni[0] = 0;
1800         parser->inner = IBV_FLOW_SPEC_INNER;
1801         parser->tunnel = ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN)];
1802         parser->out_layer = parser->layer;
1803         parser->layer = HASH_RXQ_TUNNEL;
1804         /* Default VXLAN to outer RSS. */
1805         if (!parser->rss_conf.level)
1806                 parser->rss_conf.level = 1;
1807         if (spec) {
1808                 if (!mask)
1809                         mask = default_mask;
1810                 memcpy(&id.vni[1], spec->vni, 3);
1811                 vxlan.val.tunnel_id = id.vlan_id;
1812                 memcpy(&id.vni[1], mask->vni, 3);
1813                 vxlan.mask.tunnel_id = id.vlan_id;
1814                 /* Remove unwanted bits from values. */
1815                 vxlan.val.tunnel_id &= vxlan.mask.tunnel_id;
1816         }
1817         /*
1818          * Tunnel id 0 is equivalent as not adding a VXLAN layer, if only this
1819          * layer is defined in the Verbs specification it is interpreted as
1820          * wildcard and all packets will match this rule, if it follows a full
1821          * stack layer (ex: eth / ipv4 / udp), all packets matching the layers
1822          * before will also match this rule.
1823          * To avoid such situation, VNI 0 is currently refused.
1824          */
1825         /* Only allow tunnel w/o tunnel id pattern after proper outer spec. */
1826         if (parser->out_layer == HASH_RXQ_ETH && !vxlan.val.tunnel_id)
1827                 return rte_flow_error_set(data->error, EINVAL,
1828                                           RTE_FLOW_ERROR_TYPE_ITEM,
1829                                           item,
1830                                           "VxLAN vni cannot be 0");
1831         mlx5_flow_create_copy(parser, &vxlan, size);
1832         return 0;
1833 }
1834
1835 /**
1836  * Convert VXLAN-GPE item to Verbs specification.
1837  *
1838  * @param item[in]
1839  *   Item specification.
1840  * @param default_mask[in]
1841  *   Default bit-masks to use when item->mask is not provided.
1842  * @param data[in, out]
1843  *   User structure.
1844  *
1845  * @return
1846  *   0 on success, a negative errno value otherwise and rte_errno is set.
1847  */
1848 static int
1849 mlx5_flow_create_vxlan_gpe(const struct rte_flow_item *item,
1850                            const void *default_mask,
1851                            struct mlx5_flow_data *data)
1852 {
1853         struct priv *priv = data->dev->data->dev_private;
1854         const struct rte_flow_item_vxlan_gpe *spec = item->spec;
1855         const struct rte_flow_item_vxlan_gpe *mask = item->mask;
1856         struct mlx5_flow_parse *parser = data->parser;
1857         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
1858         struct ibv_flow_spec_tunnel vxlan = {
1859                 .type = parser->inner | IBV_FLOW_SPEC_VXLAN_TUNNEL,
1860                 .size = size,
1861         };
1862         union vni {
1863                 uint32_t vlan_id;
1864                 uint8_t vni[4];
1865         } id;
1866
1867         if (!priv->config.l3_vxlan_en)
1868                 return rte_flow_error_set(data->error, EINVAL,
1869                                           RTE_FLOW_ERROR_TYPE_ITEM,
1870                                           item,
1871                                           "L3 VXLAN not enabled by device"
1872                                           " parameter and/or not configured"
1873                                           " in firmware");
1874         id.vni[0] = 0;
1875         parser->inner = IBV_FLOW_SPEC_INNER;
1876         parser->tunnel = ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_VXLAN_GPE)];
1877         parser->out_layer = parser->layer;
1878         parser->layer = HASH_RXQ_TUNNEL;
1879         /* Default VXLAN-GPE to outer RSS. */
1880         if (!parser->rss_conf.level)
1881                 parser->rss_conf.level = 1;
1882         if (spec) {
1883                 if (!mask)
1884                         mask = default_mask;
1885                 memcpy(&id.vni[1], spec->vni, 3);
1886                 vxlan.val.tunnel_id = id.vlan_id;
1887                 memcpy(&id.vni[1], mask->vni, 3);
1888                 vxlan.mask.tunnel_id = id.vlan_id;
1889                 if (spec->protocol)
1890                         return rte_flow_error_set(data->error, EINVAL,
1891                                                   RTE_FLOW_ERROR_TYPE_ITEM,
1892                                                   item,
1893                                                   "VxLAN-GPE protocol not"
1894                                                   " supported");
1895                 /* Remove unwanted bits from values. */
1896                 vxlan.val.tunnel_id &= vxlan.mask.tunnel_id;
1897         }
1898         /*
1899          * Tunnel id 0 is equivalent as not adding a VXLAN layer, if only this
1900          * layer is defined in the Verbs specification it is interpreted as
1901          * wildcard and all packets will match this rule, if it follows a full
1902          * stack layer (ex: eth / ipv4 / udp), all packets matching the layers
1903          * before will also match this rule.
1904          * To avoid such situation, VNI 0 is currently refused.
1905          */
1906         /* Only allow tunnel w/o tunnel id pattern after proper outer spec. */
1907         if (parser->out_layer == HASH_RXQ_ETH && !vxlan.val.tunnel_id)
1908                 return rte_flow_error_set(data->error, EINVAL,
1909                                           RTE_FLOW_ERROR_TYPE_ITEM,
1910                                           item,
1911                                           "VxLAN-GPE vni cannot be 0");
1912         mlx5_flow_create_copy(parser, &vxlan, size);
1913         return 0;
1914 }
1915
1916 /**
1917  * Convert GRE item to Verbs specification.
1918  *
1919  * @param item[in]
1920  *   Item specification.
1921  * @param default_mask[in]
1922  *   Default bit-masks to use when item->mask is not provided.
1923  * @param data[in, out]
1924  *   User structure.
1925  *
1926  * @return
1927  *   0 on success, a negative errno value otherwise and rte_errno is set.
1928  */
1929 static int
1930 mlx5_flow_create_gre(const struct rte_flow_item *item,
1931                      const void *default_mask,
1932                      struct mlx5_flow_data *data)
1933 {
1934         struct mlx5_flow_parse *parser = data->parser;
1935 #ifndef HAVE_IBV_DEVICE_MPLS_SUPPORT
1936         (void)default_mask;
1937         unsigned int size = sizeof(struct ibv_flow_spec_tunnel);
1938         struct ibv_flow_spec_tunnel tunnel = {
1939                 .type = parser->inner | IBV_FLOW_SPEC_VXLAN_TUNNEL,
1940                 .size = size,
1941         };
1942 #else
1943         const struct rte_flow_item_gre *spec = item->spec;
1944         const struct rte_flow_item_gre *mask = item->mask;
1945         unsigned int size = sizeof(struct ibv_flow_spec_gre);
1946         struct ibv_flow_spec_gre tunnel = {
1947                 .type = parser->inner | IBV_FLOW_SPEC_GRE,
1948                 .size = size,
1949         };
1950 #endif
1951         struct ibv_flow_spec_ipv4_ext *ipv4;
1952         struct ibv_flow_spec_ipv6 *ipv6;
1953         unsigned int i;
1954
1955         parser->inner = IBV_FLOW_SPEC_INNER;
1956         parser->tunnel = ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_GRE)];
1957         parser->out_layer = parser->layer;
1958         parser->layer = HASH_RXQ_TUNNEL;
1959         /* Default GRE to inner RSS. */
1960         if (!parser->rss_conf.level)
1961                 parser->rss_conf.level = 2;
1962 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
1963         if (spec) {
1964                 if (!mask)
1965                         mask = default_mask;
1966                 tunnel.val.c_ks_res0_ver = spec->c_rsvd0_ver;
1967                 tunnel.val.protocol = spec->protocol;
1968                 tunnel.mask.c_ks_res0_ver = mask->c_rsvd0_ver;
1969                 tunnel.mask.protocol = mask->protocol;
1970                 /* Remove unwanted bits from values. */
1971                 tunnel.val.c_ks_res0_ver &= tunnel.mask.c_ks_res0_ver;
1972                 tunnel.val.protocol &= tunnel.mask.protocol;
1973                 tunnel.val.key &= tunnel.mask.key;
1974         }
1975 #endif
1976         /* Update encapsulation IP layer protocol. */
1977         for (i = 0; i != hash_rxq_init_n; ++i) {
1978                 if (!parser->queue[i].ibv_attr)
1979                         continue;
1980                 if (parser->out_layer == HASH_RXQ_IPV4) {
1981                         ipv4 = (void *)((uintptr_t)parser->queue[i].ibv_attr +
1982                                 parser->queue[i].offset -
1983                                 sizeof(struct ibv_flow_spec_ipv4_ext));
1984                         if (ipv4->mask.proto && ipv4->val.proto != MLX5_GRE)
1985                                 break;
1986                         ipv4->val.proto = MLX5_GRE;
1987                         ipv4->mask.proto = 0xff;
1988                 } else if (parser->out_layer == HASH_RXQ_IPV6) {
1989                         ipv6 = (void *)((uintptr_t)parser->queue[i].ibv_attr +
1990                                 parser->queue[i].offset -
1991                                 sizeof(struct ibv_flow_spec_ipv6));
1992                         if (ipv6->mask.next_hdr &&
1993                             ipv6->val.next_hdr != MLX5_GRE)
1994                                 break;
1995                         ipv6->val.next_hdr = MLX5_GRE;
1996                         ipv6->mask.next_hdr = 0xff;
1997                 }
1998         }
1999         if (i != hash_rxq_init_n)
2000                 return rte_flow_error_set(data->error, EINVAL,
2001                                           RTE_FLOW_ERROR_TYPE_ITEM,
2002                                           item,
2003                                           "IP protocol of GRE must be 47");
2004         mlx5_flow_create_copy(parser, &tunnel, size);
2005         return 0;
2006 }
2007
2008 /**
2009  * Convert MPLS item to Verbs specification.
2010  * MPLS tunnel types currently supported are MPLS-in-GRE and MPLS-in-UDP.
2011  *
2012  * @param item[in]
2013  *   Item specification.
2014  * @param default_mask[in]
2015  *   Default bit-masks to use when item->mask is not provided.
2016  * @param data[in, out]
2017  *   User structure.
2018  *
2019  * @return
2020  *   0 on success, a negative errno value otherwise and rte_errno is set.
2021  */
2022 static int
2023 mlx5_flow_create_mpls(const struct rte_flow_item *item,
2024                       const void *default_mask,
2025                       struct mlx5_flow_data *data)
2026 {
2027 #ifndef HAVE_IBV_DEVICE_MPLS_SUPPORT
2028         (void)default_mask;
2029         return rte_flow_error_set(data->error, ENOTSUP,
2030                                   RTE_FLOW_ERROR_TYPE_ITEM,
2031                                   item,
2032                                   "MPLS is not supported by driver");
2033 #else
2034         const struct rte_flow_item_mpls *spec = item->spec;
2035         const struct rte_flow_item_mpls *mask = item->mask;
2036         struct mlx5_flow_parse *parser = data->parser;
2037         unsigned int size = sizeof(struct ibv_flow_spec_mpls);
2038         struct ibv_flow_spec_mpls mpls = {
2039                 .type = IBV_FLOW_SPEC_MPLS,
2040                 .size = size,
2041         };
2042
2043         parser->inner = IBV_FLOW_SPEC_INNER;
2044         if (parser->layer == HASH_RXQ_UDPV4 ||
2045             parser->layer == HASH_RXQ_UDPV6) {
2046                 parser->tunnel =
2047                         ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_MPLS_IN_UDP)];
2048                 parser->out_layer = parser->layer;
2049         } else {
2050                 parser->tunnel =
2051                         ptype_ext[PTYPE_IDX(RTE_PTYPE_TUNNEL_MPLS_IN_GRE)];
2052                 /* parser->out_layer stays as in GRE out_layer. */
2053         }
2054         parser->layer = HASH_RXQ_TUNNEL;
2055         /*
2056          * For MPLS-in-GRE, RSS level should have been set.
2057          * For MPLS-in-UDP, use outer RSS.
2058          */
2059         if (!parser->rss_conf.level)
2060                 parser->rss_conf.level = 1;
2061         if (spec) {
2062                 if (!mask)
2063                         mask = default_mask;
2064                 /*
2065                  * The verbs label field includes the entire MPLS header:
2066                  * bits 0:19 - label value field.
2067                  * bits 20:22 - traffic class field.
2068                  * bits 23 - bottom of stack bit.
2069                  * bits 24:31 - ttl field.
2070                  */
2071                 mpls.val.label = *(const uint32_t *)spec;
2072                 mpls.mask.label = *(const uint32_t *)mask;
2073                 /* Remove unwanted bits from values. */
2074                 mpls.val.label &= mpls.mask.label;
2075         }
2076         mlx5_flow_create_copy(parser, &mpls, size);
2077         return 0;
2078 #endif
2079 }
2080
2081 /**
2082  * Convert mark/flag action to Verbs specification.
2083  *
2084  * @param parser
2085  *   Internal parser structure.
2086  * @param mark_id
2087  *   Mark identifier.
2088  *
2089  * @return
2090  *   0 on success, a negative errno value otherwise and rte_errno is set.
2091  */
2092 static int
2093 mlx5_flow_create_flag_mark(struct mlx5_flow_parse *parser, uint32_t mark_id)
2094 {
2095         unsigned int size = sizeof(struct ibv_flow_spec_action_tag);
2096         struct ibv_flow_spec_action_tag tag = {
2097                 .type = IBV_FLOW_SPEC_ACTION_TAG,
2098                 .size = size,
2099                 .tag_id = mlx5_flow_mark_set(mark_id),
2100         };
2101
2102         assert(parser->mark);
2103         mlx5_flow_create_copy(parser, &tag, size);
2104         return 0;
2105 }
2106
2107 /**
2108  * Convert count action to Verbs specification.
2109  *
2110  * @param dev
2111  *   Pointer to Ethernet device.
2112  * @param parser
2113  *   Pointer to MLX5 flow parser structure.
2114  *
2115  * @return
2116  *   0 on success, a negative errno value otherwise and rte_errno is set.
2117  */
2118 static int
2119 mlx5_flow_create_count(struct rte_eth_dev *dev __rte_unused,
2120                        struct mlx5_flow_parse *parser __rte_unused)
2121 {
2122 #ifdef HAVE_IBV_DEVICE_COUNTERS_SET_SUPPORT
2123         struct priv *priv = dev->data->dev_private;
2124         unsigned int size = sizeof(struct ibv_flow_spec_counter_action);
2125         struct ibv_counter_set_init_attr init_attr = {0};
2126         struct ibv_flow_spec_counter_action counter = {
2127                 .type = IBV_FLOW_SPEC_ACTION_COUNT,
2128                 .size = size,
2129                 .counter_set_handle = 0,
2130         };
2131
2132         init_attr.counter_set_id = 0;
2133         parser->cs = mlx5_glue->create_counter_set(priv->ctx, &init_attr);
2134         if (!parser->cs) {
2135                 rte_errno = EINVAL;
2136                 return -rte_errno;
2137         }
2138         counter.counter_set_handle = parser->cs->handle;
2139         mlx5_flow_create_copy(parser, &counter, size);
2140 #endif
2141         return 0;
2142 }
2143
2144 /**
2145  * Complete flow rule creation with a drop queue.
2146  *
2147  * @param dev
2148  *   Pointer to Ethernet device.
2149  * @param parser
2150  *   Internal parser structure.
2151  * @param flow
2152  *   Pointer to the rte_flow.
2153  * @param[out] error
2154  *   Perform verbose error reporting if not NULL.
2155  *
2156  * @return
2157  *   0 on success, a negative errno value otherwise and rte_errno is set.
2158  */
2159 static int
2160 mlx5_flow_create_action_queue_drop(struct rte_eth_dev *dev,
2161                                    struct mlx5_flow_parse *parser,
2162                                    struct rte_flow *flow,
2163                                    struct rte_flow_error *error)
2164 {
2165         struct priv *priv = dev->data->dev_private;
2166         struct ibv_flow_spec_action_drop *drop;
2167         unsigned int size = sizeof(struct ibv_flow_spec_action_drop);
2168
2169         assert(priv->pd);
2170         assert(priv->ctx);
2171         flow->drop = 1;
2172         drop = (void *)((uintptr_t)parser->queue[HASH_RXQ_ETH].ibv_attr +
2173                         parser->queue[HASH_RXQ_ETH].offset);
2174         *drop = (struct ibv_flow_spec_action_drop){
2175                         .type = IBV_FLOW_SPEC_ACTION_DROP,
2176                         .size = size,
2177         };
2178         ++parser->queue[HASH_RXQ_ETH].ibv_attr->num_of_specs;
2179         parser->queue[HASH_RXQ_ETH].offset += size;
2180         flow->frxq[HASH_RXQ_ETH].ibv_attr =
2181                 parser->queue[HASH_RXQ_ETH].ibv_attr;
2182         if (parser->count)
2183                 flow->cs = parser->cs;
2184         if (!dev->data->dev_started)
2185                 return 0;
2186         parser->queue[HASH_RXQ_ETH].ibv_attr = NULL;
2187         flow->frxq[HASH_RXQ_ETH].ibv_flow =
2188                 mlx5_glue->create_flow(priv->flow_drop_queue->qp,
2189                                        flow->frxq[HASH_RXQ_ETH].ibv_attr);
2190         if (!flow->frxq[HASH_RXQ_ETH].ibv_flow) {
2191                 rte_flow_error_set(error, ENOMEM, RTE_FLOW_ERROR_TYPE_HANDLE,
2192                                    NULL, "flow rule creation failure");
2193                 goto error;
2194         }
2195         return 0;
2196 error:
2197         assert(flow);
2198         if (flow->frxq[HASH_RXQ_ETH].ibv_flow) {
2199                 claim_zero(mlx5_glue->destroy_flow
2200                            (flow->frxq[HASH_RXQ_ETH].ibv_flow));
2201                 flow->frxq[HASH_RXQ_ETH].ibv_flow = NULL;
2202         }
2203         if (flow->frxq[HASH_RXQ_ETH].ibv_attr) {
2204                 rte_free(flow->frxq[HASH_RXQ_ETH].ibv_attr);
2205                 flow->frxq[HASH_RXQ_ETH].ibv_attr = NULL;
2206         }
2207         if (flow->cs) {
2208                 claim_zero(mlx5_glue->destroy_counter_set(flow->cs));
2209                 flow->cs = NULL;
2210                 parser->cs = NULL;
2211         }
2212         return -rte_errno;
2213 }
2214
2215 /**
2216  * Create hash Rx queues when RSS is enabled.
2217  *
2218  * @param dev
2219  *   Pointer to Ethernet device.
2220  * @param parser
2221  *   Internal parser structure.
2222  * @param flow
2223  *   Pointer to the rte_flow.
2224  * @param[out] error
2225  *   Perform verbose error reporting if not NULL.
2226  *
2227  * @return
2228  *   0 on success, a negative errno value otherwise and rte_errno is set.
2229  */
2230 static int
2231 mlx5_flow_create_action_queue_rss(struct rte_eth_dev *dev,
2232                                   struct mlx5_flow_parse *parser,
2233                                   struct rte_flow *flow,
2234                                   struct rte_flow_error *error)
2235 {
2236         unsigned int i;
2237
2238         for (i = 0; i != hash_rxq_init_n; ++i) {
2239                 if (!parser->queue[i].ibv_attr)
2240                         continue;
2241                 flow->frxq[i].ibv_attr = parser->queue[i].ibv_attr;
2242                 parser->queue[i].ibv_attr = NULL;
2243                 flow->frxq[i].hash_fields = parser->queue[i].hash_fields;
2244                 if (!dev->data->dev_started)
2245                         continue;
2246                 flow->frxq[i].hrxq =
2247                         mlx5_hrxq_get(dev,
2248                                       parser->rss_conf.key,
2249                                       parser->rss_conf.key_len,
2250                                       flow->frxq[i].hash_fields,
2251                                       parser->rss_conf.queue,
2252                                       parser->rss_conf.queue_num,
2253                                       parser->tunnel,
2254                                       parser->rss_conf.level);
2255                 if (flow->frxq[i].hrxq)
2256                         continue;
2257                 flow->frxq[i].hrxq =
2258                         mlx5_hrxq_new(dev,
2259                                       parser->rss_conf.key,
2260                                       parser->rss_conf.key_len,
2261                                       flow->frxq[i].hash_fields,
2262                                       parser->rss_conf.queue,
2263                                       parser->rss_conf.queue_num,
2264                                       parser->tunnel,
2265                                       parser->rss_conf.level);
2266                 if (!flow->frxq[i].hrxq) {
2267                         return rte_flow_error_set(error, ENOMEM,
2268                                                   RTE_FLOW_ERROR_TYPE_HANDLE,
2269                                                   NULL,
2270                                                   "cannot create hash rxq");
2271                 }
2272         }
2273         return 0;
2274 }
2275
2276 /**
2277  * RXQ update after flow rule creation.
2278  *
2279  * @param dev
2280  *   Pointer to Ethernet device.
2281  * @param flow
2282  *   Pointer to the flow rule.
2283  */
2284 static void
2285 mlx5_flow_create_update_rxqs(struct rte_eth_dev *dev, struct rte_flow *flow)
2286 {
2287         struct priv *priv = dev->data->dev_private;
2288         unsigned int i;
2289         unsigned int j;
2290
2291         if (!dev->data->dev_started)
2292                 return;
2293         for (i = 0; i != flow->rss_conf.queue_num; ++i) {
2294                 struct mlx5_rxq_data *rxq_data = (*priv->rxqs)
2295                                                  [(*flow->queues)[i]];
2296                 struct mlx5_rxq_ctrl *rxq_ctrl =
2297                         container_of(rxq_data, struct mlx5_rxq_ctrl, rxq);
2298                 uint8_t tunnel = PTYPE_IDX(flow->tunnel);
2299
2300                 rxq_data->mark |= flow->mark;
2301                 if (!tunnel)
2302                         continue;
2303                 rxq_ctrl->tunnel_types[tunnel] += 1;
2304                 /* Clear tunnel type if more than one tunnel types set. */
2305                 for (j = 0; j != RTE_DIM(rxq_ctrl->tunnel_types); ++j) {
2306                         if (j == tunnel)
2307                                 continue;
2308                         if (rxq_ctrl->tunnel_types[j] > 0) {
2309                                 rxq_data->tunnel = 0;
2310                                 break;
2311                         }
2312                 }
2313                 if (j == RTE_DIM(rxq_ctrl->tunnel_types))
2314                         rxq_data->tunnel = flow->tunnel;
2315         }
2316 }
2317
2318 /**
2319  * Dump flow hash RX queue detail.
2320  *
2321  * @param dev
2322  *   Pointer to Ethernet device.
2323  * @param flow
2324  *   Pointer to the rte_flow.
2325  * @param hrxq_idx
2326  *   Hash RX queue index.
2327  */
2328 static void
2329 mlx5_flow_dump(struct rte_eth_dev *dev __rte_unused,
2330                struct rte_flow *flow __rte_unused,
2331                unsigned int hrxq_idx __rte_unused)
2332 {
2333 #ifndef NDEBUG
2334         uintptr_t spec_ptr;
2335         uint16_t j;
2336         char buf[256];
2337         uint8_t off;
2338         uint64_t extra_hash_fields = 0;
2339
2340 #ifdef HAVE_IBV_DEVICE_TUNNEL_SUPPORT
2341         if (flow->tunnel && flow->rss_conf.level > 1)
2342                 extra_hash_fields = (uint32_t)IBV_RX_HASH_INNER;
2343 #endif
2344         spec_ptr = (uintptr_t)(flow->frxq[hrxq_idx].ibv_attr + 1);
2345         for (j = 0, off = 0; j < flow->frxq[hrxq_idx].ibv_attr->num_of_specs;
2346              j++) {
2347                 struct ibv_flow_spec *spec = (void *)spec_ptr;
2348                 off += sprintf(buf + off, " %x(%hu)", spec->hdr.type,
2349                                spec->hdr.size);
2350                 spec_ptr += spec->hdr.size;
2351         }
2352         DRV_LOG(DEBUG,
2353                 "port %u Verbs flow %p type %u: hrxq:%p qp:%p ind:%p,"
2354                 " hash:%" PRIx64 "/%u specs:%hhu(%hu), priority:%hu, type:%d,"
2355                 " flags:%x, comp_mask:%x specs:%s",
2356                 dev->data->port_id, (void *)flow, hrxq_idx,
2357                 (void *)flow->frxq[hrxq_idx].hrxq,
2358                 (void *)flow->frxq[hrxq_idx].hrxq->qp,
2359                 (void *)flow->frxq[hrxq_idx].hrxq->ind_table,
2360                 (flow->frxq[hrxq_idx].hash_fields | extra_hash_fields),
2361                 flow->rss_conf.queue_num,
2362                 flow->frxq[hrxq_idx].ibv_attr->num_of_specs,
2363                 flow->frxq[hrxq_idx].ibv_attr->size,
2364                 flow->frxq[hrxq_idx].ibv_attr->priority,
2365                 flow->frxq[hrxq_idx].ibv_attr->type,
2366                 flow->frxq[hrxq_idx].ibv_attr->flags,
2367                 flow->frxq[hrxq_idx].ibv_attr->comp_mask,
2368                 buf);
2369 #endif
2370 }
2371
2372 /**
2373  * Complete flow rule creation.
2374  *
2375  * @param dev
2376  *   Pointer to Ethernet device.
2377  * @param parser
2378  *   Internal parser structure.
2379  * @param flow
2380  *   Pointer to the rte_flow.
2381  * @param[out] error
2382  *   Perform verbose error reporting if not NULL.
2383  *
2384  * @return
2385  *   0 on success, a negative errno value otherwise and rte_errno is set.
2386  */
2387 static int
2388 mlx5_flow_create_action_queue(struct rte_eth_dev *dev,
2389                               struct mlx5_flow_parse *parser,
2390                               struct rte_flow *flow,
2391                               struct rte_flow_error *error)
2392 {
2393         struct priv *priv __rte_unused = dev->data->dev_private;
2394         int ret;
2395         unsigned int i;
2396         unsigned int flows_n = 0;
2397
2398         assert(priv->pd);
2399         assert(priv->ctx);
2400         assert(!parser->drop);
2401         ret = mlx5_flow_create_action_queue_rss(dev, parser, flow, error);
2402         if (ret)
2403                 goto error;
2404         if (parser->count)
2405                 flow->cs = parser->cs;
2406         if (!dev->data->dev_started)
2407                 return 0;
2408         for (i = 0; i != hash_rxq_init_n; ++i) {
2409                 if (!flow->frxq[i].hrxq)
2410                         continue;
2411                 flow->frxq[i].ibv_flow =
2412                         mlx5_glue->create_flow(flow->frxq[i].hrxq->qp,
2413                                                flow->frxq[i].ibv_attr);
2414                 mlx5_flow_dump(dev, flow, i);
2415                 if (!flow->frxq[i].ibv_flow) {
2416                         rte_flow_error_set(error, ENOMEM,
2417                                            RTE_FLOW_ERROR_TYPE_HANDLE,
2418                                            NULL, "flow rule creation failure");
2419                         goto error;
2420                 }
2421                 ++flows_n;
2422         }
2423         if (!flows_n) {
2424                 rte_flow_error_set(error, EINVAL, RTE_FLOW_ERROR_TYPE_HANDLE,
2425                                    NULL, "internal error in flow creation");
2426                 goto error;
2427         }
2428         mlx5_flow_create_update_rxqs(dev, flow);
2429         return 0;
2430 error:
2431         ret = rte_errno; /* Save rte_errno before cleanup. */
2432         assert(flow);
2433         for (i = 0; i != hash_rxq_init_n; ++i) {
2434                 if (flow->frxq[i].ibv_flow) {
2435                         struct ibv_flow *ibv_flow = flow->frxq[i].ibv_flow;
2436
2437                         claim_zero(mlx5_glue->destroy_flow(ibv_flow));
2438                 }
2439                 if (flow->frxq[i].hrxq)
2440                         mlx5_hrxq_release(dev, flow->frxq[i].hrxq);
2441                 if (flow->frxq[i].ibv_attr)
2442                         rte_free(flow->frxq[i].ibv_attr);
2443         }
2444         if (flow->cs) {
2445                 claim_zero(mlx5_glue->destroy_counter_set(flow->cs));
2446                 flow->cs = NULL;
2447                 parser->cs = NULL;
2448         }
2449         rte_errno = ret; /* Restore rte_errno. */
2450         return -rte_errno;
2451 }
2452
2453 /**
2454  * Convert a flow.
2455  *
2456  * @param dev
2457  *   Pointer to Ethernet device.
2458  * @param list
2459  *   Pointer to a TAILQ flow list.
2460  * @param[in] attr
2461  *   Flow rule attributes.
2462  * @param[in] pattern
2463  *   Pattern specification (list terminated by the END pattern item).
2464  * @param[in] actions
2465  *   Associated actions (list terminated by the END action).
2466  * @param[out] error
2467  *   Perform verbose error reporting if not NULL.
2468  *
2469  * @return
2470  *   A flow on success, NULL otherwise and rte_errno is set.
2471  */
2472 static struct rte_flow *
2473 mlx5_flow_list_create(struct rte_eth_dev *dev,
2474                       struct mlx5_flows *list,
2475                       const struct rte_flow_attr *attr,
2476                       const struct rte_flow_item items[],
2477                       const struct rte_flow_action actions[],
2478                       struct rte_flow_error *error)
2479 {
2480         struct mlx5_flow_parse parser = { .create = 1, };
2481         struct rte_flow *flow = NULL;
2482         unsigned int i;
2483         int ret;
2484
2485         ret = mlx5_flow_convert(dev, attr, items, actions, error, &parser);
2486         if (ret)
2487                 goto exit;
2488         flow = rte_calloc(__func__, 1,
2489                           sizeof(*flow) +
2490                           parser.rss_conf.queue_num * sizeof(uint16_t),
2491                           0);
2492         if (!flow) {
2493                 rte_flow_error_set(error, ENOMEM,
2494                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
2495                                    NULL,
2496                                    "cannot allocate flow memory");
2497                 return NULL;
2498         }
2499         /* Copy configuration. */
2500         flow->queues = (uint16_t (*)[])(flow + 1);
2501         flow->tunnel = parser.tunnel;
2502         flow->rss_conf = (struct rte_flow_action_rss){
2503                 .func = RTE_ETH_HASH_FUNCTION_DEFAULT,
2504                 .level = 0,
2505                 .types = parser.rss_conf.types,
2506                 .key_len = parser.rss_conf.key_len,
2507                 .queue_num = parser.rss_conf.queue_num,
2508                 .key = memcpy(flow->rss_key, parser.rss_conf.key,
2509                               sizeof(*parser.rss_conf.key) *
2510                               parser.rss_conf.key_len),
2511                 .queue = memcpy(flow->queues, parser.rss_conf.queue,
2512                                 sizeof(*parser.rss_conf.queue) *
2513                                 parser.rss_conf.queue_num),
2514         };
2515         flow->mark = parser.mark;
2516         /* finalise the flow. */
2517         if (parser.drop)
2518                 ret = mlx5_flow_create_action_queue_drop(dev, &parser, flow,
2519                                                          error);
2520         else
2521                 ret = mlx5_flow_create_action_queue(dev, &parser, flow, error);
2522         if (ret)
2523                 goto exit;
2524         TAILQ_INSERT_TAIL(list, flow, next);
2525         DRV_LOG(DEBUG, "port %u flow created %p", dev->data->port_id,
2526                 (void *)flow);
2527         return flow;
2528 exit:
2529         DRV_LOG(ERR, "port %u flow creation error: %s", dev->data->port_id,
2530                 error->message);
2531         for (i = 0; i != hash_rxq_init_n; ++i) {
2532                 if (parser.queue[i].ibv_attr)
2533                         rte_free(parser.queue[i].ibv_attr);
2534         }
2535         rte_free(flow);
2536         return NULL;
2537 }
2538
2539 /**
2540  * Validate a flow supported by the NIC.
2541  *
2542  * @see rte_flow_validate()
2543  * @see rte_flow_ops
2544  */
2545 int
2546 mlx5_flow_validate(struct rte_eth_dev *dev,
2547                    const struct rte_flow_attr *attr,
2548                    const struct rte_flow_item items[],
2549                    const struct rte_flow_action actions[],
2550                    struct rte_flow_error *error)
2551 {
2552         struct mlx5_flow_parse parser = { .create = 0, };
2553
2554         return mlx5_flow_convert(dev, attr, items, actions, error, &parser);
2555 }
2556
2557 /**
2558  * Create a flow.
2559  *
2560  * @see rte_flow_create()
2561  * @see rte_flow_ops
2562  */
2563 struct rte_flow *
2564 mlx5_flow_create(struct rte_eth_dev *dev,
2565                  const struct rte_flow_attr *attr,
2566                  const struct rte_flow_item items[],
2567                  const struct rte_flow_action actions[],
2568                  struct rte_flow_error *error)
2569 {
2570         struct priv *priv = dev->data->dev_private;
2571
2572         return mlx5_flow_list_create(dev, &priv->flows, attr, items, actions,
2573                                      error);
2574 }
2575
2576 /**
2577  * Destroy a flow in a list.
2578  *
2579  * @param dev
2580  *   Pointer to Ethernet device.
2581  * @param list
2582  *   Pointer to a TAILQ flow list.
2583  * @param[in] flow
2584  *   Flow to destroy.
2585  */
2586 static void
2587 mlx5_flow_list_destroy(struct rte_eth_dev *dev, struct mlx5_flows *list,
2588                        struct rte_flow *flow)
2589 {
2590         struct priv *priv = dev->data->dev_private;
2591         unsigned int i;
2592
2593         if (flow->drop || !dev->data->dev_started)
2594                 goto free;
2595         for (i = 0; flow->tunnel && i != flow->rss_conf.queue_num; ++i) {
2596                 /* Update queue tunnel type. */
2597                 struct mlx5_rxq_data *rxq_data = (*priv->rxqs)
2598                                                  [(*flow->queues)[i]];
2599                 struct mlx5_rxq_ctrl *rxq_ctrl =
2600                         container_of(rxq_data, struct mlx5_rxq_ctrl, rxq);
2601                 uint8_t tunnel = PTYPE_IDX(flow->tunnel);
2602
2603                 assert(rxq_ctrl->tunnel_types[tunnel] > 0);
2604                 rxq_ctrl->tunnel_types[tunnel] -= 1;
2605                 if (!rxq_ctrl->tunnel_types[tunnel]) {
2606                         /* Update tunnel type. */
2607                         uint8_t j;
2608                         uint8_t types = 0;
2609                         uint8_t last;
2610
2611                         for (j = 0; j < RTE_DIM(rxq_ctrl->tunnel_types); j++)
2612                                 if (rxq_ctrl->tunnel_types[j]) {
2613                                         types += 1;
2614                                         last = j;
2615                                 }
2616                         /* Keep same if more than one tunnel types left. */
2617                         if (types == 1)
2618                                 rxq_data->tunnel = ptype_ext[last];
2619                         else if (types == 0)
2620                                 /* No tunnel type left. */
2621                                 rxq_data->tunnel = 0;
2622                 }
2623         }
2624         for (i = 0; flow->mark && i != flow->rss_conf.queue_num; ++i) {
2625                 struct rte_flow *tmp;
2626                 int mark = 0;
2627
2628                 /*
2629                  * To remove the mark from the queue, the queue must not be
2630                  * present in any other marked flow (RSS or not).
2631                  */
2632                 TAILQ_FOREACH(tmp, list, next) {
2633                         unsigned int j;
2634                         uint16_t *tqs = NULL;
2635                         uint16_t tq_n = 0;
2636
2637                         if (!tmp->mark)
2638                                 continue;
2639                         for (j = 0; j != hash_rxq_init_n; ++j) {
2640                                 if (!tmp->frxq[j].hrxq)
2641                                         continue;
2642                                 tqs = tmp->frxq[j].hrxq->ind_table->queues;
2643                                 tq_n = tmp->frxq[j].hrxq->ind_table->queues_n;
2644                         }
2645                         if (!tq_n)
2646                                 continue;
2647                         for (j = 0; (j != tq_n) && !mark; j++)
2648                                 if (tqs[j] == (*flow->queues)[i])
2649                                         mark = 1;
2650                 }
2651                 (*priv->rxqs)[(*flow->queues)[i]]->mark = mark;
2652         }
2653 free:
2654         if (flow->drop) {
2655                 if (flow->frxq[HASH_RXQ_ETH].ibv_flow)
2656                         claim_zero(mlx5_glue->destroy_flow
2657                                    (flow->frxq[HASH_RXQ_ETH].ibv_flow));
2658                 rte_free(flow->frxq[HASH_RXQ_ETH].ibv_attr);
2659         } else {
2660                 for (i = 0; i != hash_rxq_init_n; ++i) {
2661                         struct mlx5_flow *frxq = &flow->frxq[i];
2662
2663                         if (frxq->ibv_flow)
2664                                 claim_zero(mlx5_glue->destroy_flow
2665                                            (frxq->ibv_flow));
2666                         if (frxq->hrxq)
2667                                 mlx5_hrxq_release(dev, frxq->hrxq);
2668                         if (frxq->ibv_attr)
2669                                 rte_free(frxq->ibv_attr);
2670                 }
2671         }
2672         if (flow->cs) {
2673                 claim_zero(mlx5_glue->destroy_counter_set(flow->cs));
2674                 flow->cs = NULL;
2675         }
2676         TAILQ_REMOVE(list, flow, next);
2677         DRV_LOG(DEBUG, "port %u flow destroyed %p", dev->data->port_id,
2678                 (void *)flow);
2679         rte_free(flow);
2680 }
2681
2682 /**
2683  * Destroy all flows.
2684  *
2685  * @param dev
2686  *   Pointer to Ethernet device.
2687  * @param list
2688  *   Pointer to a TAILQ flow list.
2689  */
2690 void
2691 mlx5_flow_list_flush(struct rte_eth_dev *dev, struct mlx5_flows *list)
2692 {
2693         while (!TAILQ_EMPTY(list)) {
2694                 struct rte_flow *flow;
2695
2696                 flow = TAILQ_FIRST(list);
2697                 mlx5_flow_list_destroy(dev, list, flow);
2698         }
2699 }
2700
2701 /**
2702  * Create drop queue.
2703  *
2704  * @param dev
2705  *   Pointer to Ethernet device.
2706  *
2707  * @return
2708  *   0 on success, a negative errno value otherwise and rte_errno is set.
2709  */
2710 int
2711 mlx5_flow_create_drop_queue(struct rte_eth_dev *dev)
2712 {
2713         struct priv *priv = dev->data->dev_private;
2714         struct mlx5_hrxq_drop *fdq = NULL;
2715
2716         assert(priv->pd);
2717         assert(priv->ctx);
2718         fdq = rte_calloc(__func__, 1, sizeof(*fdq), 0);
2719         if (!fdq) {
2720                 DRV_LOG(WARNING,
2721                         "port %u cannot allocate memory for drop queue",
2722                         dev->data->port_id);
2723                 rte_errno = ENOMEM;
2724                 return -rte_errno;
2725         }
2726         fdq->cq = mlx5_glue->create_cq(priv->ctx, 1, NULL, NULL, 0);
2727         if (!fdq->cq) {
2728                 DRV_LOG(WARNING, "port %u cannot allocate CQ for drop queue",
2729                         dev->data->port_id);
2730                 rte_errno = errno;
2731                 goto error;
2732         }
2733         fdq->wq = mlx5_glue->create_wq
2734                 (priv->ctx,
2735                  &(struct ibv_wq_init_attr){
2736                         .wq_type = IBV_WQT_RQ,
2737                         .max_wr = 1,
2738                         .max_sge = 1,
2739                         .pd = priv->pd,
2740                         .cq = fdq->cq,
2741                  });
2742         if (!fdq->wq) {
2743                 DRV_LOG(WARNING, "port %u cannot allocate WQ for drop queue",
2744                         dev->data->port_id);
2745                 rte_errno = errno;
2746                 goto error;
2747         }
2748         fdq->ind_table = mlx5_glue->create_rwq_ind_table
2749                 (priv->ctx,
2750                  &(struct ibv_rwq_ind_table_init_attr){
2751                         .log_ind_tbl_size = 0,
2752                         .ind_tbl = &fdq->wq,
2753                         .comp_mask = 0,
2754                  });
2755         if (!fdq->ind_table) {
2756                 DRV_LOG(WARNING,
2757                         "port %u cannot allocate indirection table for drop"
2758                         " queue",
2759                         dev->data->port_id);
2760                 rte_errno = errno;
2761                 goto error;
2762         }
2763         fdq->qp = mlx5_glue->create_qp_ex
2764                 (priv->ctx,
2765                  &(struct ibv_qp_init_attr_ex){
2766                         .qp_type = IBV_QPT_RAW_PACKET,
2767                         .comp_mask =
2768                                 IBV_QP_INIT_ATTR_PD |
2769                                 IBV_QP_INIT_ATTR_IND_TABLE |
2770                                 IBV_QP_INIT_ATTR_RX_HASH,
2771                         .rx_hash_conf = (struct ibv_rx_hash_conf){
2772                                 .rx_hash_function =
2773                                         IBV_RX_HASH_FUNC_TOEPLITZ,
2774                                 .rx_hash_key_len = rss_hash_default_key_len,
2775                                 .rx_hash_key = rss_hash_default_key,
2776                                 .rx_hash_fields_mask = 0,
2777                                 },
2778                         .rwq_ind_tbl = fdq->ind_table,
2779                         .pd = priv->pd
2780                  });
2781         if (!fdq->qp) {
2782                 DRV_LOG(WARNING, "port %u cannot allocate QP for drop queue",
2783                         dev->data->port_id);
2784                 rte_errno = errno;
2785                 goto error;
2786         }
2787         priv->flow_drop_queue = fdq;
2788         return 0;
2789 error:
2790         if (fdq->qp)
2791                 claim_zero(mlx5_glue->destroy_qp(fdq->qp));
2792         if (fdq->ind_table)
2793                 claim_zero(mlx5_glue->destroy_rwq_ind_table(fdq->ind_table));
2794         if (fdq->wq)
2795                 claim_zero(mlx5_glue->destroy_wq(fdq->wq));
2796         if (fdq->cq)
2797                 claim_zero(mlx5_glue->destroy_cq(fdq->cq));
2798         if (fdq)
2799                 rte_free(fdq);
2800         priv->flow_drop_queue = NULL;
2801         return -rte_errno;
2802 }
2803
2804 /**
2805  * Delete drop queue.
2806  *
2807  * @param dev
2808  *   Pointer to Ethernet device.
2809  */
2810 void
2811 mlx5_flow_delete_drop_queue(struct rte_eth_dev *dev)
2812 {
2813         struct priv *priv = dev->data->dev_private;
2814         struct mlx5_hrxq_drop *fdq = priv->flow_drop_queue;
2815
2816         if (!fdq)
2817                 return;
2818         if (fdq->qp)
2819                 claim_zero(mlx5_glue->destroy_qp(fdq->qp));
2820         if (fdq->ind_table)
2821                 claim_zero(mlx5_glue->destroy_rwq_ind_table(fdq->ind_table));
2822         if (fdq->wq)
2823                 claim_zero(mlx5_glue->destroy_wq(fdq->wq));
2824         if (fdq->cq)
2825                 claim_zero(mlx5_glue->destroy_cq(fdq->cq));
2826         rte_free(fdq);
2827         priv->flow_drop_queue = NULL;
2828 }
2829
2830 /**
2831  * Remove all flows.
2832  *
2833  * @param dev
2834  *   Pointer to Ethernet device.
2835  * @param list
2836  *   Pointer to a TAILQ flow list.
2837  */
2838 void
2839 mlx5_flow_stop(struct rte_eth_dev *dev, struct mlx5_flows *list)
2840 {
2841         struct priv *priv = dev->data->dev_private;
2842         struct rte_flow *flow;
2843         unsigned int i;
2844
2845         TAILQ_FOREACH_REVERSE(flow, list, mlx5_flows, next) {
2846                 struct mlx5_ind_table_ibv *ind_tbl = NULL;
2847
2848                 if (flow->drop) {
2849                         if (!flow->frxq[HASH_RXQ_ETH].ibv_flow)
2850                                 continue;
2851                         claim_zero(mlx5_glue->destroy_flow
2852                                    (flow->frxq[HASH_RXQ_ETH].ibv_flow));
2853                         flow->frxq[HASH_RXQ_ETH].ibv_flow = NULL;
2854                         DRV_LOG(DEBUG, "port %u flow %p removed",
2855                                 dev->data->port_id, (void *)flow);
2856                         /* Next flow. */
2857                         continue;
2858                 }
2859                 /* Verify the flow has not already been cleaned. */
2860                 for (i = 0; i != hash_rxq_init_n; ++i) {
2861                         if (!flow->frxq[i].ibv_flow)
2862                                 continue;
2863                         /*
2864                          * Indirection table may be necessary to remove the
2865                          * flags in the Rx queues.
2866                          * This helps to speed-up the process by avoiding
2867                          * another loop.
2868                          */
2869                         ind_tbl = flow->frxq[i].hrxq->ind_table;
2870                         break;
2871                 }
2872                 if (i == hash_rxq_init_n)
2873                         return;
2874                 if (flow->mark) {
2875                         assert(ind_tbl);
2876                         for (i = 0; i != ind_tbl->queues_n; ++i)
2877                                 (*priv->rxqs)[ind_tbl->queues[i]]->mark = 0;
2878                 }
2879                 for (i = 0; i != hash_rxq_init_n; ++i) {
2880                         if (!flow->frxq[i].ibv_flow)
2881                                 continue;
2882                         claim_zero(mlx5_glue->destroy_flow
2883                                    (flow->frxq[i].ibv_flow));
2884                         flow->frxq[i].ibv_flow = NULL;
2885                         mlx5_hrxq_release(dev, flow->frxq[i].hrxq);
2886                         flow->frxq[i].hrxq = NULL;
2887                 }
2888                 DRV_LOG(DEBUG, "port %u flow %p removed", dev->data->port_id,
2889                         (void *)flow);
2890         }
2891         /* Cleanup Rx queue tunnel info. */
2892         for (i = 0; i != priv->rxqs_n; ++i) {
2893                 struct mlx5_rxq_data *q = (*priv->rxqs)[i];
2894                 struct mlx5_rxq_ctrl *rxq_ctrl =
2895                         container_of(q, struct mlx5_rxq_ctrl, rxq);
2896
2897                 if (!q)
2898                         continue;
2899                 memset((void *)rxq_ctrl->tunnel_types, 0,
2900                        sizeof(rxq_ctrl->tunnel_types));
2901                 q->tunnel = 0;
2902         }
2903 }
2904
2905 /**
2906  * Add all flows.
2907  *
2908  * @param dev
2909  *   Pointer to Ethernet device.
2910  * @param list
2911  *   Pointer to a TAILQ flow list.
2912  *
2913  * @return
2914  *   0 on success, a negative errno value otherwise and rte_errno is set.
2915  */
2916 int
2917 mlx5_flow_start(struct rte_eth_dev *dev, struct mlx5_flows *list)
2918 {
2919         struct priv *priv = dev->data->dev_private;
2920         struct rte_flow *flow;
2921
2922         TAILQ_FOREACH(flow, list, next) {
2923                 unsigned int i;
2924
2925                 if (flow->drop) {
2926                         flow->frxq[HASH_RXQ_ETH].ibv_flow =
2927                                 mlx5_glue->create_flow
2928                                 (priv->flow_drop_queue->qp,
2929                                  flow->frxq[HASH_RXQ_ETH].ibv_attr);
2930                         if (!flow->frxq[HASH_RXQ_ETH].ibv_flow) {
2931                                 DRV_LOG(DEBUG,
2932                                         "port %u flow %p cannot be applied",
2933                                         dev->data->port_id, (void *)flow);
2934                                 rte_errno = EINVAL;
2935                                 return -rte_errno;
2936                         }
2937                         DRV_LOG(DEBUG, "port %u flow %p applied",
2938                                 dev->data->port_id, (void *)flow);
2939                         /* Next flow. */
2940                         continue;
2941                 }
2942                 for (i = 0; i != hash_rxq_init_n; ++i) {
2943                         if (!flow->frxq[i].ibv_attr)
2944                                 continue;
2945                         flow->frxq[i].hrxq =
2946                                 mlx5_hrxq_get(dev, flow->rss_conf.key,
2947                                               flow->rss_conf.key_len,
2948                                               flow->frxq[i].hash_fields,
2949                                               flow->rss_conf.queue,
2950                                               flow->rss_conf.queue_num,
2951                                               flow->tunnel,
2952                                               flow->rss_conf.level);
2953                         if (flow->frxq[i].hrxq)
2954                                 goto flow_create;
2955                         flow->frxq[i].hrxq =
2956                                 mlx5_hrxq_new(dev, flow->rss_conf.key,
2957                                               flow->rss_conf.key_len,
2958                                               flow->frxq[i].hash_fields,
2959                                               flow->rss_conf.queue,
2960                                               flow->rss_conf.queue_num,
2961                                               flow->tunnel,
2962                                               flow->rss_conf.level);
2963                         if (!flow->frxq[i].hrxq) {
2964                                 DRV_LOG(DEBUG,
2965                                         "port %u flow %p cannot create hash"
2966                                         " rxq",
2967                                         dev->data->port_id, (void *)flow);
2968                                 rte_errno = EINVAL;
2969                                 return -rte_errno;
2970                         }
2971 flow_create:
2972                         mlx5_flow_dump(dev, flow, i);
2973                         flow->frxq[i].ibv_flow =
2974                                 mlx5_glue->create_flow(flow->frxq[i].hrxq->qp,
2975                                                        flow->frxq[i].ibv_attr);
2976                         if (!flow->frxq[i].ibv_flow) {
2977                                 DRV_LOG(DEBUG,
2978                                         "port %u flow %p type %u cannot be"
2979                                         " applied",
2980                                         dev->data->port_id, (void *)flow, i);
2981                                 rte_errno = EINVAL;
2982                                 return -rte_errno;
2983                         }
2984                 }
2985                 mlx5_flow_create_update_rxqs(dev, flow);
2986         }
2987         return 0;
2988 }
2989
2990 /**
2991  * Verify the flow list is empty
2992  *
2993  * @param dev
2994  *  Pointer to Ethernet device.
2995  *
2996  * @return the number of flows not released.
2997  */
2998 int
2999 mlx5_flow_verify(struct rte_eth_dev *dev)
3000 {
3001         struct priv *priv = dev->data->dev_private;
3002         struct rte_flow *flow;
3003         int ret = 0;
3004
3005         TAILQ_FOREACH(flow, &priv->flows, next) {
3006                 DRV_LOG(DEBUG, "port %u flow %p still referenced",
3007                         dev->data->port_id, (void *)flow);
3008                 ++ret;
3009         }
3010         return ret;
3011 }
3012
3013 /**
3014  * Enable a control flow configured from the control plane.
3015  *
3016  * @param dev
3017  *   Pointer to Ethernet device.
3018  * @param eth_spec
3019  *   An Ethernet flow spec to apply.
3020  * @param eth_mask
3021  *   An Ethernet flow mask to apply.
3022  * @param vlan_spec
3023  *   A VLAN flow spec to apply.
3024  * @param vlan_mask
3025  *   A VLAN flow mask to apply.
3026  *
3027  * @return
3028  *   0 on success, a negative errno value otherwise and rte_errno is set.
3029  */
3030 int
3031 mlx5_ctrl_flow_vlan(struct rte_eth_dev *dev,
3032                     struct rte_flow_item_eth *eth_spec,
3033                     struct rte_flow_item_eth *eth_mask,
3034                     struct rte_flow_item_vlan *vlan_spec,
3035                     struct rte_flow_item_vlan *vlan_mask)
3036 {
3037         struct priv *priv = dev->data->dev_private;
3038         const struct rte_flow_attr attr = {
3039                 .ingress = 1,
3040                 .priority = MLX5_CTRL_FLOW_PRIORITY,
3041         };
3042         struct rte_flow_item items[] = {
3043                 {
3044                         .type = RTE_FLOW_ITEM_TYPE_ETH,
3045                         .spec = eth_spec,
3046                         .last = NULL,
3047                         .mask = eth_mask,
3048                 },
3049                 {
3050                         .type = (vlan_spec) ? RTE_FLOW_ITEM_TYPE_VLAN :
3051                                 RTE_FLOW_ITEM_TYPE_END,
3052                         .spec = vlan_spec,
3053                         .last = NULL,
3054                         .mask = vlan_mask,
3055                 },
3056                 {
3057                         .type = RTE_FLOW_ITEM_TYPE_END,
3058                 },
3059         };
3060         uint16_t queue[priv->reta_idx_n];
3061         struct rte_flow_action_rss action_rss = {
3062                 .func = RTE_ETH_HASH_FUNCTION_DEFAULT,
3063                 .level = 0,
3064                 .types = priv->rss_conf.rss_hf,
3065                 .key_len = priv->rss_conf.rss_key_len,
3066                 .queue_num = priv->reta_idx_n,
3067                 .key = priv->rss_conf.rss_key,
3068                 .queue = queue,
3069         };
3070         struct rte_flow_action actions[] = {
3071                 {
3072                         .type = RTE_FLOW_ACTION_TYPE_RSS,
3073                         .conf = &action_rss,
3074                 },
3075                 {
3076                         .type = RTE_FLOW_ACTION_TYPE_END,
3077                 },
3078         };
3079         struct rte_flow *flow;
3080         struct rte_flow_error error;
3081         unsigned int i;
3082
3083         if (!priv->reta_idx_n) {
3084                 rte_errno = EINVAL;
3085                 return -rte_errno;
3086         }
3087         for (i = 0; i != priv->reta_idx_n; ++i)
3088                 queue[i] = (*priv->reta_idx)[i];
3089         flow = mlx5_flow_list_create(dev, &priv->ctrl_flows, &attr, items,
3090                                      actions, &error);
3091         if (!flow)
3092                 return -rte_errno;
3093         return 0;
3094 }
3095
3096 /**
3097  * Enable a flow control configured from the control plane.
3098  *
3099  * @param dev
3100  *   Pointer to Ethernet device.
3101  * @param eth_spec
3102  *   An Ethernet flow spec to apply.
3103  * @param eth_mask
3104  *   An Ethernet flow mask to apply.
3105  *
3106  * @return
3107  *   0 on success, a negative errno value otherwise and rte_errno is set.
3108  */
3109 int
3110 mlx5_ctrl_flow(struct rte_eth_dev *dev,
3111                struct rte_flow_item_eth *eth_spec,
3112                struct rte_flow_item_eth *eth_mask)
3113 {
3114         return mlx5_ctrl_flow_vlan(dev, eth_spec, eth_mask, NULL, NULL);
3115 }
3116
3117 /**
3118  * Destroy a flow.
3119  *
3120  * @see rte_flow_destroy()
3121  * @see rte_flow_ops
3122  */
3123 int
3124 mlx5_flow_destroy(struct rte_eth_dev *dev,
3125                   struct rte_flow *flow,
3126                   struct rte_flow_error *error __rte_unused)
3127 {
3128         struct priv *priv = dev->data->dev_private;
3129
3130         mlx5_flow_list_destroy(dev, &priv->flows, flow);
3131         return 0;
3132 }
3133
3134 /**
3135  * Destroy all flows.
3136  *
3137  * @see rte_flow_flush()
3138  * @see rte_flow_ops
3139  */
3140 int
3141 mlx5_flow_flush(struct rte_eth_dev *dev,
3142                 struct rte_flow_error *error __rte_unused)
3143 {
3144         struct priv *priv = dev->data->dev_private;
3145
3146         mlx5_flow_list_flush(dev, &priv->flows);
3147         return 0;
3148 }
3149
3150 #ifdef HAVE_IBV_DEVICE_COUNTERS_SET_SUPPORT
3151 /**
3152  * Query flow counter.
3153  *
3154  * @param cs
3155  *   the counter set.
3156  * @param counter_value
3157  *   returned data from the counter.
3158  *
3159  * @return
3160  *   0 on success, a negative errno value otherwise and rte_errno is set.
3161  */
3162 static int
3163 mlx5_flow_query_count(struct ibv_counter_set *cs,
3164                       struct mlx5_flow_counter_stats *counter_stats,
3165                       struct rte_flow_query_count *query_count,
3166                       struct rte_flow_error *error)
3167 {
3168         uint64_t counters[2];
3169         struct ibv_query_counter_set_attr query_cs_attr = {
3170                 .cs = cs,
3171                 .query_flags = IBV_COUNTER_SET_FORCE_UPDATE,
3172         };
3173         struct ibv_counter_set_data query_out = {
3174                 .out = counters,
3175                 .outlen = 2 * sizeof(uint64_t),
3176         };
3177         int err = mlx5_glue->query_counter_set(&query_cs_attr, &query_out);
3178
3179         if (err)
3180                 return rte_flow_error_set(error, err,
3181                                           RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
3182                                           NULL,
3183                                           "cannot read counter");
3184         query_count->hits_set = 1;
3185         query_count->bytes_set = 1;
3186         query_count->hits = counters[0] - counter_stats->hits;
3187         query_count->bytes = counters[1] - counter_stats->bytes;
3188         if (query_count->reset) {
3189                 counter_stats->hits = counters[0];
3190                 counter_stats->bytes = counters[1];
3191         }
3192         return 0;
3193 }
3194
3195 /**
3196  * Query a flows.
3197  *
3198  * @see rte_flow_query()
3199  * @see rte_flow_ops
3200  */
3201 int
3202 mlx5_flow_query(struct rte_eth_dev *dev __rte_unused,
3203                 struct rte_flow *flow,
3204                 const struct rte_flow_action *action __rte_unused,
3205                 void *data,
3206                 struct rte_flow_error *error)
3207 {
3208         if (flow->cs) {
3209                 int ret;
3210
3211                 ret = mlx5_flow_query_count(flow->cs,
3212                                             &flow->counter_stats,
3213                                             (struct rte_flow_query_count *)data,
3214                                             error);
3215                 if (ret)
3216                         return ret;
3217         } else {
3218                 return rte_flow_error_set(error, EINVAL,
3219                                           RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
3220                                           NULL,
3221                                           "no counter found for flow");
3222         }
3223         return 0;
3224 }
3225 #endif
3226
3227 /**
3228  * Isolated mode.
3229  *
3230  * @see rte_flow_isolate()
3231  * @see rte_flow_ops
3232  */
3233 int
3234 mlx5_flow_isolate(struct rte_eth_dev *dev,
3235                   int enable,
3236                   struct rte_flow_error *error)
3237 {
3238         struct priv *priv = dev->data->dev_private;
3239
3240         if (dev->data->dev_started) {
3241                 rte_flow_error_set(error, EBUSY,
3242                                    RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
3243                                    NULL,
3244                                    "port must be stopped first");
3245                 return -rte_errno;
3246         }
3247         priv->isolated = !!enable;
3248         if (enable)
3249                 dev->dev_ops = &mlx5_dev_ops_isolate;
3250         else
3251                 dev->dev_ops = &mlx5_dev_ops;
3252         return 0;
3253 }
3254
3255 /**
3256  * Convert a flow director filter to a generic flow.
3257  *
3258  * @param dev
3259  *   Pointer to Ethernet device.
3260  * @param fdir_filter
3261  *   Flow director filter to add.
3262  * @param attributes
3263  *   Generic flow parameters structure.
3264  *
3265  * @return
3266  *   0 on success, a negative errno value otherwise and rte_errno is set.
3267  */
3268 static int
3269 mlx5_fdir_filter_convert(struct rte_eth_dev *dev,
3270                          const struct rte_eth_fdir_filter *fdir_filter,
3271                          struct mlx5_fdir *attributes)
3272 {
3273         struct priv *priv = dev->data->dev_private;
3274         const struct rte_eth_fdir_input *input = &fdir_filter->input;
3275         const struct rte_eth_fdir_masks *mask =
3276                 &dev->data->dev_conf.fdir_conf.mask;
3277
3278         /* Validate queue number. */
3279         if (fdir_filter->action.rx_queue >= priv->rxqs_n) {
3280                 DRV_LOG(ERR, "port %u invalid queue number %d",
3281                         dev->data->port_id, fdir_filter->action.rx_queue);
3282                 rte_errno = EINVAL;
3283                 return -rte_errno;
3284         }
3285         attributes->attr.ingress = 1;
3286         attributes->items[0] = (struct rte_flow_item) {
3287                 .type = RTE_FLOW_ITEM_TYPE_ETH,
3288                 .spec = &attributes->l2,
3289                 .mask = &attributes->l2_mask,
3290         };
3291         switch (fdir_filter->action.behavior) {
3292         case RTE_ETH_FDIR_ACCEPT:
3293                 attributes->actions[0] = (struct rte_flow_action){
3294                         .type = RTE_FLOW_ACTION_TYPE_QUEUE,
3295                         .conf = &attributes->queue,
3296                 };
3297                 break;
3298         case RTE_ETH_FDIR_REJECT:
3299                 attributes->actions[0] = (struct rte_flow_action){
3300                         .type = RTE_FLOW_ACTION_TYPE_DROP,
3301                 };
3302                 break;
3303         default:
3304                 DRV_LOG(ERR, "port %u invalid behavior %d",
3305                         dev->data->port_id,
3306                         fdir_filter->action.behavior);
3307                 rte_errno = ENOTSUP;
3308                 return -rte_errno;
3309         }
3310         attributes->queue.index = fdir_filter->action.rx_queue;
3311         /* Handle L3. */
3312         switch (fdir_filter->input.flow_type) {
3313         case RTE_ETH_FLOW_NONFRAG_IPV4_UDP:
3314         case RTE_ETH_FLOW_NONFRAG_IPV4_TCP:
3315         case RTE_ETH_FLOW_NONFRAG_IPV4_OTHER:
3316                 attributes->l3.ipv4.hdr = (struct ipv4_hdr){
3317                         .src_addr = input->flow.ip4_flow.src_ip,
3318                         .dst_addr = input->flow.ip4_flow.dst_ip,
3319                         .time_to_live = input->flow.ip4_flow.ttl,
3320                         .type_of_service = input->flow.ip4_flow.tos,
3321                         .next_proto_id = input->flow.ip4_flow.proto,
3322                 };
3323                 attributes->l3_mask.ipv4.hdr = (struct ipv4_hdr){
3324                         .src_addr = mask->ipv4_mask.src_ip,
3325                         .dst_addr = mask->ipv4_mask.dst_ip,
3326                         .time_to_live = mask->ipv4_mask.ttl,
3327                         .type_of_service = mask->ipv4_mask.tos,
3328                         .next_proto_id = mask->ipv4_mask.proto,
3329                 };
3330                 attributes->items[1] = (struct rte_flow_item){
3331                         .type = RTE_FLOW_ITEM_TYPE_IPV4,
3332                         .spec = &attributes->l3,
3333                         .mask = &attributes->l3_mask,
3334                 };
3335                 break;
3336         case RTE_ETH_FLOW_NONFRAG_IPV6_UDP:
3337         case RTE_ETH_FLOW_NONFRAG_IPV6_TCP:
3338         case RTE_ETH_FLOW_NONFRAG_IPV6_OTHER:
3339                 attributes->l3.ipv6.hdr = (struct ipv6_hdr){
3340                         .hop_limits = input->flow.ipv6_flow.hop_limits,
3341                         .proto = input->flow.ipv6_flow.proto,
3342                 };
3343
3344                 memcpy(attributes->l3.ipv6.hdr.src_addr,
3345                        input->flow.ipv6_flow.src_ip,
3346                        RTE_DIM(attributes->l3.ipv6.hdr.src_addr));
3347                 memcpy(attributes->l3.ipv6.hdr.dst_addr,
3348                        input->flow.ipv6_flow.dst_ip,
3349                        RTE_DIM(attributes->l3.ipv6.hdr.src_addr));
3350                 memcpy(attributes->l3_mask.ipv6.hdr.src_addr,
3351                        mask->ipv6_mask.src_ip,
3352                        RTE_DIM(attributes->l3_mask.ipv6.hdr.src_addr));
3353                 memcpy(attributes->l3_mask.ipv6.hdr.dst_addr,
3354                        mask->ipv6_mask.dst_ip,
3355                        RTE_DIM(attributes->l3_mask.ipv6.hdr.src_addr));
3356                 attributes->items[1] = (struct rte_flow_item){
3357                         .type = RTE_FLOW_ITEM_TYPE_IPV6,
3358                         .spec = &attributes->l3,
3359                         .mask = &attributes->l3_mask,
3360                 };
3361                 break;
3362         default:
3363                 DRV_LOG(ERR, "port %u invalid flow type%d",
3364                         dev->data->port_id, fdir_filter->input.flow_type);
3365                 rte_errno = ENOTSUP;
3366                 return -rte_errno;
3367         }
3368         /* Handle L4. */
3369         switch (fdir_filter->input.flow_type) {
3370         case RTE_ETH_FLOW_NONFRAG_IPV4_UDP:
3371                 attributes->l4.udp.hdr = (struct udp_hdr){
3372                         .src_port = input->flow.udp4_flow.src_port,
3373                         .dst_port = input->flow.udp4_flow.dst_port,
3374                 };
3375                 attributes->l4_mask.udp.hdr = (struct udp_hdr){
3376                         .src_port = mask->src_port_mask,
3377                         .dst_port = mask->dst_port_mask,
3378                 };
3379                 attributes->items[2] = (struct rte_flow_item){
3380                         .type = RTE_FLOW_ITEM_TYPE_UDP,
3381                         .spec = &attributes->l4,
3382                         .mask = &attributes->l4_mask,
3383                 };
3384                 break;
3385         case RTE_ETH_FLOW_NONFRAG_IPV4_TCP:
3386                 attributes->l4.tcp.hdr = (struct tcp_hdr){
3387                         .src_port = input->flow.tcp4_flow.src_port,
3388                         .dst_port = input->flow.tcp4_flow.dst_port,
3389                 };
3390                 attributes->l4_mask.tcp.hdr = (struct tcp_hdr){
3391                         .src_port = mask->src_port_mask,
3392                         .dst_port = mask->dst_port_mask,
3393                 };
3394                 attributes->items[2] = (struct rte_flow_item){
3395                         .type = RTE_FLOW_ITEM_TYPE_TCP,
3396                         .spec = &attributes->l4,
3397                         .mask = &attributes->l4_mask,
3398                 };
3399                 break;
3400         case RTE_ETH_FLOW_NONFRAG_IPV6_UDP:
3401                 attributes->l4.udp.hdr = (struct udp_hdr){
3402                         .src_port = input->flow.udp6_flow.src_port,
3403                         .dst_port = input->flow.udp6_flow.dst_port,
3404                 };
3405                 attributes->l4_mask.udp.hdr = (struct udp_hdr){
3406                         .src_port = mask->src_port_mask,
3407                         .dst_port = mask->dst_port_mask,
3408                 };
3409                 attributes->items[2] = (struct rte_flow_item){
3410                         .type = RTE_FLOW_ITEM_TYPE_UDP,
3411                         .spec = &attributes->l4,
3412                         .mask = &attributes->l4_mask,
3413                 };
3414                 break;
3415         case RTE_ETH_FLOW_NONFRAG_IPV6_TCP:
3416                 attributes->l4.tcp.hdr = (struct tcp_hdr){
3417                         .src_port = input->flow.tcp6_flow.src_port,
3418                         .dst_port = input->flow.tcp6_flow.dst_port,
3419                 };
3420                 attributes->l4_mask.tcp.hdr = (struct tcp_hdr){
3421                         .src_port = mask->src_port_mask,
3422                         .dst_port = mask->dst_port_mask,
3423                 };
3424                 attributes->items[2] = (struct rte_flow_item){
3425                         .type = RTE_FLOW_ITEM_TYPE_TCP,
3426                         .spec = &attributes->l4,
3427                         .mask = &attributes->l4_mask,
3428                 };
3429                 break;
3430         case RTE_ETH_FLOW_NONFRAG_IPV4_OTHER:
3431         case RTE_ETH_FLOW_NONFRAG_IPV6_OTHER:
3432                 break;
3433         default:
3434                 DRV_LOG(ERR, "port %u invalid flow type%d",
3435                         dev->data->port_id, fdir_filter->input.flow_type);
3436                 rte_errno = ENOTSUP;
3437                 return -rte_errno;
3438         }
3439         return 0;
3440 }
3441
3442 /**
3443  * Add new flow director filter and store it in list.
3444  *
3445  * @param dev
3446  *   Pointer to Ethernet device.
3447  * @param fdir_filter
3448  *   Flow director filter to add.
3449  *
3450  * @return
3451  *   0 on success, a negative errno value otherwise and rte_errno is set.
3452  */
3453 static int
3454 mlx5_fdir_filter_add(struct rte_eth_dev *dev,
3455                      const struct rte_eth_fdir_filter *fdir_filter)
3456 {
3457         struct priv *priv = dev->data->dev_private;
3458         struct mlx5_fdir attributes = {
3459                 .attr.group = 0,
3460                 .l2_mask = {
3461                         .dst.addr_bytes = "\x00\x00\x00\x00\x00\x00",
3462                         .src.addr_bytes = "\x00\x00\x00\x00\x00\x00",
3463                         .type = 0,
3464                 },
3465         };
3466         struct mlx5_flow_parse parser = {
3467                 .layer = HASH_RXQ_ETH,
3468         };
3469         struct rte_flow_error error;
3470         struct rte_flow *flow;
3471         int ret;
3472
3473         ret = mlx5_fdir_filter_convert(dev, fdir_filter, &attributes);
3474         if (ret)
3475                 return ret;
3476         ret = mlx5_flow_convert(dev, &attributes.attr, attributes.items,
3477                                 attributes.actions, &error, &parser);
3478         if (ret)
3479                 return ret;
3480         flow = mlx5_flow_list_create(dev, &priv->flows, &attributes.attr,
3481                                      attributes.items, attributes.actions,
3482                                      &error);
3483         if (flow) {
3484                 DRV_LOG(DEBUG, "port %u FDIR created %p", dev->data->port_id,
3485                         (void *)flow);
3486                 return 0;
3487         }
3488         return -rte_errno;
3489 }
3490
3491 /**
3492  * Delete specific filter.
3493  *
3494  * @param dev
3495  *   Pointer to Ethernet device.
3496  * @param fdir_filter
3497  *   Filter to be deleted.
3498  *
3499  * @return
3500  *   0 on success, a negative errno value otherwise and rte_errno is set.
3501  */
3502 static int
3503 mlx5_fdir_filter_delete(struct rte_eth_dev *dev,
3504                         const struct rte_eth_fdir_filter *fdir_filter)
3505 {
3506         struct priv *priv = dev->data->dev_private;
3507         struct mlx5_fdir attributes = {
3508                 .attr.group = 0,
3509         };
3510         struct mlx5_flow_parse parser = {
3511                 .create = 1,
3512                 .layer = HASH_RXQ_ETH,
3513         };
3514         struct rte_flow_error error;
3515         struct rte_flow *flow;
3516         unsigned int i;
3517         int ret;
3518
3519         ret = mlx5_fdir_filter_convert(dev, fdir_filter, &attributes);
3520         if (ret)
3521                 return ret;
3522         ret = mlx5_flow_convert(dev, &attributes.attr, attributes.items,
3523                                 attributes.actions, &error, &parser);
3524         if (ret)
3525                 goto exit;
3526         /*
3527          * Special case for drop action which is only set in the
3528          * specifications when the flow is created.  In this situation the
3529          * drop specification is missing.
3530          */
3531         if (parser.drop) {
3532                 struct ibv_flow_spec_action_drop *drop;
3533
3534                 drop = (void *)((uintptr_t)parser.queue[HASH_RXQ_ETH].ibv_attr +
3535                                 parser.queue[HASH_RXQ_ETH].offset);
3536                 *drop = (struct ibv_flow_spec_action_drop){
3537                         .type = IBV_FLOW_SPEC_ACTION_DROP,
3538                         .size = sizeof(struct ibv_flow_spec_action_drop),
3539                 };
3540                 parser.queue[HASH_RXQ_ETH].ibv_attr->num_of_specs++;
3541         }
3542         TAILQ_FOREACH(flow, &priv->flows, next) {
3543                 struct ibv_flow_attr *attr;
3544                 struct ibv_spec_header *attr_h;
3545                 void *spec;
3546                 struct ibv_flow_attr *flow_attr;
3547                 struct ibv_spec_header *flow_h;
3548                 void *flow_spec;
3549                 unsigned int specs_n;
3550                 unsigned int queue_id = parser.drop ? HASH_RXQ_ETH :
3551                                                       parser.layer;
3552
3553                 attr = parser.queue[queue_id].ibv_attr;
3554                 flow_attr = flow->frxq[queue_id].ibv_attr;
3555                 /* Compare first the attributes. */
3556                 if (!flow_attr ||
3557                     memcmp(attr, flow_attr, sizeof(struct ibv_flow_attr)))
3558                         continue;
3559                 if (attr->num_of_specs == 0)
3560                         continue;
3561                 spec = (void *)((uintptr_t)attr +
3562                                 sizeof(struct ibv_flow_attr));
3563                 flow_spec = (void *)((uintptr_t)flow_attr +
3564                                      sizeof(struct ibv_flow_attr));
3565                 specs_n = RTE_MIN(attr->num_of_specs, flow_attr->num_of_specs);
3566                 for (i = 0; i != specs_n; ++i) {
3567                         attr_h = spec;
3568                         flow_h = flow_spec;
3569                         if (memcmp(spec, flow_spec,
3570                                    RTE_MIN(attr_h->size, flow_h->size)))
3571                                 goto wrong_flow;
3572                         spec = (void *)((uintptr_t)spec + attr_h->size);
3573                         flow_spec = (void *)((uintptr_t)flow_spec +
3574                                              flow_h->size);
3575                 }
3576                 /* At this point, the flow match. */
3577                 break;
3578 wrong_flow:
3579                 /* The flow does not match. */
3580                 continue;
3581         }
3582         ret = rte_errno; /* Save rte_errno before cleanup. */
3583         if (flow)
3584                 mlx5_flow_list_destroy(dev, &priv->flows, flow);
3585 exit:
3586         for (i = 0; i != hash_rxq_init_n; ++i) {
3587                 if (parser.queue[i].ibv_attr)
3588                         rte_free(parser.queue[i].ibv_attr);
3589         }
3590         rte_errno = ret; /* Restore rte_errno. */
3591         return -rte_errno;
3592 }
3593
3594 /**
3595  * Update queue for specific filter.
3596  *
3597  * @param dev
3598  *   Pointer to Ethernet device.
3599  * @param fdir_filter
3600  *   Filter to be updated.
3601  *
3602  * @return
3603  *   0 on success, a negative errno value otherwise and rte_errno is set.
3604  */
3605 static int
3606 mlx5_fdir_filter_update(struct rte_eth_dev *dev,
3607                         const struct rte_eth_fdir_filter *fdir_filter)
3608 {
3609         int ret;
3610
3611         ret = mlx5_fdir_filter_delete(dev, fdir_filter);
3612         if (ret)
3613                 return ret;
3614         return mlx5_fdir_filter_add(dev, fdir_filter);
3615 }
3616
3617 /**
3618  * Flush all filters.
3619  *
3620  * @param dev
3621  *   Pointer to Ethernet device.
3622  */
3623 static void
3624 mlx5_fdir_filter_flush(struct rte_eth_dev *dev)
3625 {
3626         struct priv *priv = dev->data->dev_private;
3627
3628         mlx5_flow_list_flush(dev, &priv->flows);
3629 }
3630
3631 /**
3632  * Get flow director information.
3633  *
3634  * @param dev
3635  *   Pointer to Ethernet device.
3636  * @param[out] fdir_info
3637  *   Resulting flow director information.
3638  */
3639 static void
3640 mlx5_fdir_info_get(struct rte_eth_dev *dev, struct rte_eth_fdir_info *fdir_info)
3641 {
3642         struct rte_eth_fdir_masks *mask =
3643                 &dev->data->dev_conf.fdir_conf.mask;
3644
3645         fdir_info->mode = dev->data->dev_conf.fdir_conf.mode;
3646         fdir_info->guarant_spc = 0;
3647         rte_memcpy(&fdir_info->mask, mask, sizeof(fdir_info->mask));
3648         fdir_info->max_flexpayload = 0;
3649         fdir_info->flow_types_mask[0] = 0;
3650         fdir_info->flex_payload_unit = 0;
3651         fdir_info->max_flex_payload_segment_num = 0;
3652         fdir_info->flex_payload_limit = 0;
3653         memset(&fdir_info->flex_conf, 0, sizeof(fdir_info->flex_conf));
3654 }
3655
3656 /**
3657  * Deal with flow director operations.
3658  *
3659  * @param dev
3660  *   Pointer to Ethernet device.
3661  * @param filter_op
3662  *   Operation to perform.
3663  * @param arg
3664  *   Pointer to operation-specific structure.
3665  *
3666  * @return
3667  *   0 on success, a negative errno value otherwise and rte_errno is set.
3668  */
3669 static int
3670 mlx5_fdir_ctrl_func(struct rte_eth_dev *dev, enum rte_filter_op filter_op,
3671                     void *arg)
3672 {
3673         enum rte_fdir_mode fdir_mode =
3674                 dev->data->dev_conf.fdir_conf.mode;
3675
3676         if (filter_op == RTE_ETH_FILTER_NOP)
3677                 return 0;
3678         if (fdir_mode != RTE_FDIR_MODE_PERFECT &&
3679             fdir_mode != RTE_FDIR_MODE_PERFECT_MAC_VLAN) {
3680                 DRV_LOG(ERR, "port %u flow director mode %d not supported",
3681                         dev->data->port_id, fdir_mode);
3682                 rte_errno = EINVAL;
3683                 return -rte_errno;
3684         }
3685         switch (filter_op) {
3686         case RTE_ETH_FILTER_ADD:
3687                 return mlx5_fdir_filter_add(dev, arg);
3688         case RTE_ETH_FILTER_UPDATE:
3689                 return mlx5_fdir_filter_update(dev, arg);
3690         case RTE_ETH_FILTER_DELETE:
3691                 return mlx5_fdir_filter_delete(dev, arg);
3692         case RTE_ETH_FILTER_FLUSH:
3693                 mlx5_fdir_filter_flush(dev);
3694                 break;
3695         case RTE_ETH_FILTER_INFO:
3696                 mlx5_fdir_info_get(dev, arg);
3697                 break;
3698         default:
3699                 DRV_LOG(DEBUG, "port %u unknown operation %u",
3700                         dev->data->port_id, filter_op);
3701                 rte_errno = EINVAL;
3702                 return -rte_errno;
3703         }
3704         return 0;
3705 }
3706
3707 /**
3708  * Manage filter operations.
3709  *
3710  * @param dev
3711  *   Pointer to Ethernet device structure.
3712  * @param filter_type
3713  *   Filter type.
3714  * @param filter_op
3715  *   Operation to perform.
3716  * @param arg
3717  *   Pointer to operation-specific structure.
3718  *
3719  * @return
3720  *   0 on success, a negative errno value otherwise and rte_errno is set.
3721  */
3722 int
3723 mlx5_dev_filter_ctrl(struct rte_eth_dev *dev,
3724                      enum rte_filter_type filter_type,
3725                      enum rte_filter_op filter_op,
3726                      void *arg)
3727 {
3728         switch (filter_type) {
3729         case RTE_ETH_FILTER_GENERIC:
3730                 if (filter_op != RTE_ETH_FILTER_GET) {
3731                         rte_errno = EINVAL;
3732                         return -rte_errno;
3733                 }
3734                 *(const void **)arg = &mlx5_flow_ops;
3735                 return 0;
3736         case RTE_ETH_FILTER_FDIR:
3737                 return mlx5_fdir_ctrl_func(dev, filter_op, arg);
3738         default:
3739                 DRV_LOG(ERR, "port %u filter type (%d) not supported",
3740                         dev->data->port_id, filter_type);
3741                 rte_errno = ENOTSUP;
3742                 return -rte_errno;
3743         }
3744         return 0;
3745 }
3746
3747 /**
3748  * Detect number of Verbs flow priorities supported.
3749  *
3750  * @param dev
3751  *   Pointer to Ethernet device.
3752  *
3753  * @return
3754  *   number of supported Verbs flow priority.
3755  */
3756 unsigned int
3757 mlx5_get_max_verbs_prio(struct rte_eth_dev *dev)
3758 {
3759         struct priv *priv = dev->data->dev_private;
3760         unsigned int verb_priorities = MLX5_VERBS_FLOW_PRIO_8;
3761         struct {
3762                 struct ibv_flow_attr attr;
3763                 struct ibv_flow_spec_eth eth;
3764                 struct ibv_flow_spec_action_drop drop;
3765         } flow_attr = {
3766                 .attr = {
3767                         .num_of_specs = 2,
3768                 },
3769                 .eth = {
3770                         .type = IBV_FLOW_SPEC_ETH,
3771                         .size = sizeof(struct ibv_flow_spec_eth),
3772                 },
3773                 .drop = {
3774                         .size = sizeof(struct ibv_flow_spec_action_drop),
3775                         .type = IBV_FLOW_SPEC_ACTION_DROP,
3776                 },
3777         };
3778         struct ibv_flow *flow;
3779
3780         do {
3781                 flow_attr.attr.priority = verb_priorities - 1;
3782                 flow = mlx5_glue->create_flow(priv->flow_drop_queue->qp,
3783                                               &flow_attr.attr);
3784                 if (flow) {
3785                         claim_zero(mlx5_glue->destroy_flow(flow));
3786                         /* Try more priorities. */
3787                         verb_priorities *= 2;
3788                 } else {
3789                         /* Failed, restore last right number. */
3790                         verb_priorities /= 2;
3791                         break;
3792                 }
3793         } while (1);
3794         DRV_LOG(DEBUG, "port %u Verbs flow priorities: %d,"
3795                 " user flow priorities: %d",
3796                 dev->data->port_id, verb_priorities, MLX5_CTRL_FLOW_PRIORITY);
3797         return verb_priorities;
3798 }