xref: /f-stack/dpdk/drivers/net/mlx5/mlx5_flow.c (revision 16d80a6d)
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright 2016 6WIND S.A.
3  * Copyright 2016 Mellanox Technologies, Ltd
4  */
5 
6 #include <netinet/in.h>
7 #include <sys/queue.h>
8 #include <stdalign.h>
9 #include <stdint.h>
10 #include <string.h>
11 
12 /* Verbs header. */
13 /* ISO C doesn't support unnamed structs/unions, disabling -pedantic. */
14 #ifdef PEDANTIC
15 #pragma GCC diagnostic ignored "-Wpedantic"
16 #endif
17 #include <infiniband/verbs.h>
18 #ifdef PEDANTIC
19 #pragma GCC diagnostic error "-Wpedantic"
20 #endif
21 
22 #include <rte_common.h>
23 #include <rte_ether.h>
24 #include <rte_eth_ctrl.h>
25 #include <rte_ethdev_driver.h>
26 #include <rte_flow.h>
27 #include <rte_flow_driver.h>
28 #include <rte_malloc.h>
29 #include <rte_ip.h>
30 
31 #include "mlx5.h"
32 #include "mlx5_defs.h"
33 #include "mlx5_prm.h"
34 #include "mlx5_glue.h"
35 #include "mlx5_flow.h"
36 
37 /* Dev ops structure defined in mlx5.c */
38 extern const struct eth_dev_ops mlx5_dev_ops;
39 extern const struct eth_dev_ops mlx5_dev_ops_isolate;
40 
41 /** Device flow drivers. */
42 #ifdef HAVE_IBV_FLOW_DV_SUPPORT
43 extern const struct mlx5_flow_driver_ops mlx5_flow_dv_drv_ops;
44 #endif
45 extern const struct mlx5_flow_driver_ops mlx5_flow_tcf_drv_ops;
46 extern const struct mlx5_flow_driver_ops mlx5_flow_verbs_drv_ops;
47 
48 const struct mlx5_flow_driver_ops mlx5_flow_null_drv_ops;
49 
50 const struct mlx5_flow_driver_ops *flow_drv_ops[] = {
51 	[MLX5_FLOW_TYPE_MIN] = &mlx5_flow_null_drv_ops,
52 #ifdef HAVE_IBV_FLOW_DV_SUPPORT
53 	[MLX5_FLOW_TYPE_DV] = &mlx5_flow_dv_drv_ops,
54 #endif
55 	[MLX5_FLOW_TYPE_TCF] = &mlx5_flow_tcf_drv_ops,
56 	[MLX5_FLOW_TYPE_VERBS] = &mlx5_flow_verbs_drv_ops,
57 	[MLX5_FLOW_TYPE_MAX] = &mlx5_flow_null_drv_ops
58 };
59 
60 enum mlx5_expansion {
61 	MLX5_EXPANSION_ROOT,
62 	MLX5_EXPANSION_ROOT_OUTER,
63 	MLX5_EXPANSION_ROOT_ETH_VLAN,
64 	MLX5_EXPANSION_ROOT_OUTER_ETH_VLAN,
65 	MLX5_EXPANSION_OUTER_ETH,
66 	MLX5_EXPANSION_OUTER_ETH_VLAN,
67 	MLX5_EXPANSION_OUTER_VLAN,
68 	MLX5_EXPANSION_OUTER_IPV4,
69 	MLX5_EXPANSION_OUTER_IPV4_UDP,
70 	MLX5_EXPANSION_OUTER_IPV4_TCP,
71 	MLX5_EXPANSION_OUTER_IPV6,
72 	MLX5_EXPANSION_OUTER_IPV6_UDP,
73 	MLX5_EXPANSION_OUTER_IPV6_TCP,
74 	MLX5_EXPANSION_VXLAN,
75 	MLX5_EXPANSION_VXLAN_GPE,
76 	MLX5_EXPANSION_GRE,
77 	MLX5_EXPANSION_MPLS,
78 	MLX5_EXPANSION_ETH,
79 	MLX5_EXPANSION_ETH_VLAN,
80 	MLX5_EXPANSION_VLAN,
81 	MLX5_EXPANSION_IPV4,
82 	MLX5_EXPANSION_IPV4_UDP,
83 	MLX5_EXPANSION_IPV4_TCP,
84 	MLX5_EXPANSION_IPV6,
85 	MLX5_EXPANSION_IPV6_UDP,
86 	MLX5_EXPANSION_IPV6_TCP,
87 };
88 
89 /** Supported expansion of items. */
90 static const struct rte_flow_expand_node mlx5_support_expansion[] = {
91 	[MLX5_EXPANSION_ROOT] = {
92 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_ETH,
93 						 MLX5_EXPANSION_IPV4,
94 						 MLX5_EXPANSION_IPV6),
95 		.type = RTE_FLOW_ITEM_TYPE_END,
96 	},
97 	[MLX5_EXPANSION_ROOT_OUTER] = {
98 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_OUTER_ETH,
99 						 MLX5_EXPANSION_OUTER_IPV4,
100 						 MLX5_EXPANSION_OUTER_IPV6),
101 		.type = RTE_FLOW_ITEM_TYPE_END,
102 	},
103 	[MLX5_EXPANSION_ROOT_ETH_VLAN] = {
104 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_ETH_VLAN),
105 		.type = RTE_FLOW_ITEM_TYPE_END,
106 	},
107 	[MLX5_EXPANSION_ROOT_OUTER_ETH_VLAN] = {
108 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_OUTER_ETH_VLAN),
109 		.type = RTE_FLOW_ITEM_TYPE_END,
110 	},
111 	[MLX5_EXPANSION_OUTER_ETH] = {
112 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_OUTER_IPV4,
113 						 MLX5_EXPANSION_OUTER_IPV6,
114 						 MLX5_EXPANSION_MPLS),
115 		.type = RTE_FLOW_ITEM_TYPE_ETH,
116 		.rss_types = 0,
117 	},
118 	[MLX5_EXPANSION_OUTER_ETH_VLAN] = {
119 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_OUTER_VLAN),
120 		.type = RTE_FLOW_ITEM_TYPE_ETH,
121 		.rss_types = 0,
122 	},
123 	[MLX5_EXPANSION_OUTER_VLAN] = {
124 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_OUTER_IPV4,
125 						 MLX5_EXPANSION_OUTER_IPV6),
126 		.type = RTE_FLOW_ITEM_TYPE_VLAN,
127 	},
128 	[MLX5_EXPANSION_OUTER_IPV4] = {
129 		.next = RTE_FLOW_EXPAND_RSS_NEXT
130 			(MLX5_EXPANSION_OUTER_IPV4_UDP,
131 			 MLX5_EXPANSION_OUTER_IPV4_TCP,
132 			 MLX5_EXPANSION_GRE),
133 		.type = RTE_FLOW_ITEM_TYPE_IPV4,
134 		.rss_types = ETH_RSS_IPV4 | ETH_RSS_FRAG_IPV4 |
135 			ETH_RSS_NONFRAG_IPV4_OTHER,
136 	},
137 	[MLX5_EXPANSION_OUTER_IPV4_UDP] = {
138 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_VXLAN,
139 						 MLX5_EXPANSION_VXLAN_GPE),
140 		.type = RTE_FLOW_ITEM_TYPE_UDP,
141 		.rss_types = ETH_RSS_NONFRAG_IPV4_UDP,
142 	},
143 	[MLX5_EXPANSION_OUTER_IPV4_TCP] = {
144 		.type = RTE_FLOW_ITEM_TYPE_TCP,
145 		.rss_types = ETH_RSS_NONFRAG_IPV4_TCP,
146 	},
147 	[MLX5_EXPANSION_OUTER_IPV6] = {
148 		.next = RTE_FLOW_EXPAND_RSS_NEXT
149 			(MLX5_EXPANSION_OUTER_IPV6_UDP,
150 			 MLX5_EXPANSION_OUTER_IPV6_TCP),
151 		.type = RTE_FLOW_ITEM_TYPE_IPV6,
152 		.rss_types = ETH_RSS_IPV6 | ETH_RSS_FRAG_IPV6 |
153 			ETH_RSS_NONFRAG_IPV6_OTHER,
154 	},
155 	[MLX5_EXPANSION_OUTER_IPV6_UDP] = {
156 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_VXLAN,
157 						 MLX5_EXPANSION_VXLAN_GPE),
158 		.type = RTE_FLOW_ITEM_TYPE_UDP,
159 		.rss_types = ETH_RSS_NONFRAG_IPV6_UDP,
160 	},
161 	[MLX5_EXPANSION_OUTER_IPV6_TCP] = {
162 		.type = RTE_FLOW_ITEM_TYPE_TCP,
163 		.rss_types = ETH_RSS_NONFRAG_IPV6_TCP,
164 	},
165 	[MLX5_EXPANSION_VXLAN] = {
166 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_ETH),
167 		.type = RTE_FLOW_ITEM_TYPE_VXLAN,
168 	},
169 	[MLX5_EXPANSION_VXLAN_GPE] = {
170 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_ETH,
171 						 MLX5_EXPANSION_IPV4,
172 						 MLX5_EXPANSION_IPV6),
173 		.type = RTE_FLOW_ITEM_TYPE_VXLAN_GPE,
174 	},
175 	[MLX5_EXPANSION_GRE] = {
176 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV4),
177 		.type = RTE_FLOW_ITEM_TYPE_GRE,
178 	},
179 	[MLX5_EXPANSION_MPLS] = {
180 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV4,
181 						 MLX5_EXPANSION_IPV6),
182 		.type = RTE_FLOW_ITEM_TYPE_MPLS,
183 	},
184 	[MLX5_EXPANSION_ETH] = {
185 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV4,
186 						 MLX5_EXPANSION_IPV6),
187 		.type = RTE_FLOW_ITEM_TYPE_ETH,
188 	},
189 	[MLX5_EXPANSION_ETH_VLAN] = {
190 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_VLAN),
191 		.type = RTE_FLOW_ITEM_TYPE_ETH,
192 	},
193 	[MLX5_EXPANSION_VLAN] = {
194 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV4,
195 						 MLX5_EXPANSION_IPV6),
196 		.type = RTE_FLOW_ITEM_TYPE_VLAN,
197 	},
198 	[MLX5_EXPANSION_IPV4] = {
199 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV4_UDP,
200 						 MLX5_EXPANSION_IPV4_TCP),
201 		.type = RTE_FLOW_ITEM_TYPE_IPV4,
202 		.rss_types = ETH_RSS_IPV4 | ETH_RSS_FRAG_IPV4 |
203 			ETH_RSS_NONFRAG_IPV4_OTHER,
204 	},
205 	[MLX5_EXPANSION_IPV4_UDP] = {
206 		.type = RTE_FLOW_ITEM_TYPE_UDP,
207 		.rss_types = ETH_RSS_NONFRAG_IPV4_UDP,
208 	},
209 	[MLX5_EXPANSION_IPV4_TCP] = {
210 		.type = RTE_FLOW_ITEM_TYPE_TCP,
211 		.rss_types = ETH_RSS_NONFRAG_IPV4_TCP,
212 	},
213 	[MLX5_EXPANSION_IPV6] = {
214 		.next = RTE_FLOW_EXPAND_RSS_NEXT(MLX5_EXPANSION_IPV6_UDP,
215 						 MLX5_EXPANSION_IPV6_TCP),
216 		.type = RTE_FLOW_ITEM_TYPE_IPV6,
217 		.rss_types = ETH_RSS_IPV6 | ETH_RSS_FRAG_IPV6 |
218 			ETH_RSS_NONFRAG_IPV6_OTHER,
219 	},
220 	[MLX5_EXPANSION_IPV6_UDP] = {
221 		.type = RTE_FLOW_ITEM_TYPE_UDP,
222 		.rss_types = ETH_RSS_NONFRAG_IPV6_UDP,
223 	},
224 	[MLX5_EXPANSION_IPV6_TCP] = {
225 		.type = RTE_FLOW_ITEM_TYPE_TCP,
226 		.rss_types = ETH_RSS_NONFRAG_IPV6_TCP,
227 	},
228 };
229 
230 static const struct rte_flow_ops mlx5_flow_ops = {
231 	.validate = mlx5_flow_validate,
232 	.create = mlx5_flow_create,
233 	.destroy = mlx5_flow_destroy,
234 	.flush = mlx5_flow_flush,
235 	.isolate = mlx5_flow_isolate,
236 	.query = mlx5_flow_query,
237 };
238 
239 /* Convert FDIR request to Generic flow. */
240 struct mlx5_fdir {
241 	struct rte_flow_attr attr;
242 	struct rte_flow_item items[4];
243 	struct rte_flow_item_eth l2;
244 	struct rte_flow_item_eth l2_mask;
245 	union {
246 		struct rte_flow_item_ipv4 ipv4;
247 		struct rte_flow_item_ipv6 ipv6;
248 	} l3;
249 	union {
250 		struct rte_flow_item_ipv4 ipv4;
251 		struct rte_flow_item_ipv6 ipv6;
252 	} l3_mask;
253 	union {
254 		struct rte_flow_item_udp udp;
255 		struct rte_flow_item_tcp tcp;
256 	} l4;
257 	union {
258 		struct rte_flow_item_udp udp;
259 		struct rte_flow_item_tcp tcp;
260 	} l4_mask;
261 	struct rte_flow_action actions[2];
262 	struct rte_flow_action_queue queue;
263 };
264 
265 /* Map of Verbs to Flow priority with 8 Verbs priorities. */
266 static const uint32_t priority_map_3[][MLX5_PRIORITY_MAP_MAX] = {
267 	{ 0, 1, 2 }, { 2, 3, 4 }, { 5, 6, 7 },
268 };
269 
270 /* Map of Verbs to Flow priority with 16 Verbs priorities. */
271 static const uint32_t priority_map_5[][MLX5_PRIORITY_MAP_MAX] = {
272 	{ 0, 1, 2 }, { 3, 4, 5 }, { 6, 7, 8 },
273 	{ 9, 10, 11 }, { 12, 13, 14 },
274 };
275 
276 /* Tunnel information. */
277 struct mlx5_flow_tunnel_info {
278 	uint64_t tunnel; /**< Tunnel bit (see MLX5_FLOW_*). */
279 	uint32_t ptype; /**< Tunnel Ptype (see RTE_PTYPE_*). */
280 };
281 
282 static struct mlx5_flow_tunnel_info tunnels_info[] = {
283 	{
284 		.tunnel = MLX5_FLOW_LAYER_VXLAN,
285 		.ptype = RTE_PTYPE_TUNNEL_VXLAN | RTE_PTYPE_L4_UDP,
286 	},
287 	{
288 		.tunnel = MLX5_FLOW_LAYER_VXLAN_GPE,
289 		.ptype = RTE_PTYPE_TUNNEL_VXLAN_GPE | RTE_PTYPE_L4_UDP,
290 	},
291 	{
292 		.tunnel = MLX5_FLOW_LAYER_GRE,
293 		.ptype = RTE_PTYPE_TUNNEL_GRE,
294 	},
295 	{
296 		.tunnel = MLX5_FLOW_LAYER_MPLS | MLX5_FLOW_LAYER_OUTER_L4_UDP,
297 		.ptype = RTE_PTYPE_TUNNEL_MPLS_IN_UDP | RTE_PTYPE_L4_UDP,
298 	},
299 	{
300 		.tunnel = MLX5_FLOW_LAYER_MPLS,
301 		.ptype = RTE_PTYPE_TUNNEL_MPLS_IN_GRE,
302 	},
303 };
304 
305 /**
306  * Discover the maximum number of priority available.
307  *
308  * @param[in] dev
309  *   Pointer to the Ethernet device structure.
310  *
311  * @return
312  *   number of supported flow priority on success, a negative errno
313  *   value otherwise and rte_errno is set.
314  */
315 int
316 mlx5_flow_discover_priorities(struct rte_eth_dev *dev)
317 {
318 	struct {
319 		struct ibv_flow_attr attr;
320 		struct ibv_flow_spec_eth eth;
321 		struct ibv_flow_spec_action_drop drop;
322 	} flow_attr = {
323 		.attr = {
324 			.num_of_specs = 2,
325 		},
326 		.eth = {
327 			.type = IBV_FLOW_SPEC_ETH,
328 			.size = sizeof(struct ibv_flow_spec_eth),
329 		},
330 		.drop = {
331 			.size = sizeof(struct ibv_flow_spec_action_drop),
332 			.type = IBV_FLOW_SPEC_ACTION_DROP,
333 		},
334 	};
335 	struct ibv_flow *flow;
336 	struct mlx5_hrxq *drop = mlx5_hrxq_drop_new(dev);
337 	uint16_t vprio[] = { 8, 16 };
338 	int i;
339 	int priority = 0;
340 
341 	if (!drop) {
342 		rte_errno = ENOTSUP;
343 		return -rte_errno;
344 	}
345 	for (i = 0; i != RTE_DIM(vprio); i++) {
346 		flow_attr.attr.priority = vprio[i] - 1;
347 		flow = mlx5_glue->create_flow(drop->qp, &flow_attr.attr);
348 		if (!flow)
349 			break;
350 		claim_zero(mlx5_glue->destroy_flow(flow));
351 		priority = vprio[i];
352 	}
353 	mlx5_hrxq_drop_release(dev);
354 	switch (priority) {
355 	case 8:
356 		priority = RTE_DIM(priority_map_3);
357 		break;
358 	case 16:
359 		priority = RTE_DIM(priority_map_5);
360 		break;
361 	default:
362 		rte_errno = ENOTSUP;
363 		DRV_LOG(ERR,
364 			"port %u verbs maximum priority: %d expected 8/16",
365 			dev->data->port_id, priority);
366 		return -rte_errno;
367 	}
368 	DRV_LOG(INFO, "port %u flow maximum priority: %d",
369 		dev->data->port_id, priority);
370 	return priority;
371 }
372 
373 /**
374  * Adjust flow priority based on the highest layer and the request priority.
375  *
376  * @param[in] dev
377  *   Pointer to the Ethernet device structure.
378  * @param[in] priority
379  *   The rule base priority.
380  * @param[in] subpriority
381  *   The priority based on the items.
382  *
383  * @return
384  *   The new priority.
385  */
386 uint32_t mlx5_flow_adjust_priority(struct rte_eth_dev *dev, int32_t priority,
387 				   uint32_t subpriority)
388 {
389 	uint32_t res = 0;
390 	struct mlx5_priv *priv = dev->data->dev_private;
391 
392 	switch (priv->config.flow_prio) {
393 	case RTE_DIM(priority_map_3):
394 		res = priority_map_3[priority][subpriority];
395 		break;
396 	case RTE_DIM(priority_map_5):
397 		res = priority_map_5[priority][subpriority];
398 		break;
399 	}
400 	return  res;
401 }
402 
403 /**
404  * Verify the @p item specifications (spec, last, mask) are compatible with the
405  * NIC capabilities.
406  *
407  * @param[in] item
408  *   Item specification.
409  * @param[in] mask
410  *   @p item->mask or flow default bit-masks.
411  * @param[in] nic_mask
412  *   Bit-masks covering supported fields by the NIC to compare with user mask.
413  * @param[in] size
414  *   Bit-masks size in bytes.
415  * @param[out] error
416  *   Pointer to error structure.
417  *
418  * @return
419  *   0 on success, a negative errno value otherwise and rte_errno is set.
420  */
421 int
422 mlx5_flow_item_acceptable(const struct rte_flow_item *item,
423 			  const uint8_t *mask,
424 			  const uint8_t *nic_mask,
425 			  unsigned int size,
426 			  struct rte_flow_error *error)
427 {
428 	unsigned int i;
429 
430 	assert(nic_mask);
431 	for (i = 0; i < size; ++i)
432 		if ((nic_mask[i] | mask[i]) != nic_mask[i])
433 			return rte_flow_error_set(error, ENOTSUP,
434 						  RTE_FLOW_ERROR_TYPE_ITEM,
435 						  item,
436 						  "mask enables non supported"
437 						  " bits");
438 	if (!item->spec && (item->mask || item->last))
439 		return rte_flow_error_set(error, EINVAL,
440 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
441 					  "mask/last without a spec is not"
442 					  " supported");
443 	if (item->spec && item->last) {
444 		uint8_t spec[size];
445 		uint8_t last[size];
446 		unsigned int i;
447 		int ret;
448 
449 		for (i = 0; i < size; ++i) {
450 			spec[i] = ((const uint8_t *)item->spec)[i] & mask[i];
451 			last[i] = ((const uint8_t *)item->last)[i] & mask[i];
452 		}
453 		ret = memcmp(spec, last, size);
454 		if (ret != 0)
455 			return rte_flow_error_set(error, EINVAL,
456 						  RTE_FLOW_ERROR_TYPE_ITEM,
457 						  item,
458 						  "range is not valid");
459 	}
460 	return 0;
461 }
462 
463 /**
464  * Adjust the hash fields according to the @p flow information.
465  *
466  * @param[in] dev_flow.
467  *   Pointer to the mlx5_flow.
468  * @param[in] tunnel
469  *   1 when the hash field is for a tunnel item.
470  * @param[in] layer_types
471  *   ETH_RSS_* types.
472  * @param[in] hash_fields
473  *   Item hash fields.
474  *
475  * @return
476  *   The hash fileds that should be used.
477  */
478 uint64_t
479 mlx5_flow_hashfields_adjust(struct mlx5_flow *dev_flow,
480 			    int tunnel __rte_unused, uint64_t layer_types,
481 			    uint64_t hash_fields)
482 {
483 	struct rte_flow *flow = dev_flow->flow;
484 #ifdef HAVE_IBV_DEVICE_TUNNEL_SUPPORT
485 	int rss_request_inner = flow->rss.level >= 2;
486 
487 	/* Check RSS hash level for tunnel. */
488 	if (tunnel && rss_request_inner)
489 		hash_fields |= IBV_RX_HASH_INNER;
490 	else if (tunnel || rss_request_inner)
491 		return 0;
492 #endif
493 	/* Check if requested layer matches RSS hash fields. */
494 	if (!(flow->rss.types & layer_types))
495 		return 0;
496 	return hash_fields;
497 }
498 
499 /**
500  * Lookup and set the ptype in the data Rx part.  A single Ptype can be used,
501  * if several tunnel rules are used on this queue, the tunnel ptype will be
502  * cleared.
503  *
504  * @param rxq_ctrl
505  *   Rx queue to update.
506  */
507 static void
508 flow_rxq_tunnel_ptype_update(struct mlx5_rxq_ctrl *rxq_ctrl)
509 {
510 	unsigned int i;
511 	uint32_t tunnel_ptype = 0;
512 
513 	/* Look up for the ptype to use. */
514 	for (i = 0; i != MLX5_FLOW_TUNNEL; ++i) {
515 		if (!rxq_ctrl->flow_tunnels_n[i])
516 			continue;
517 		if (!tunnel_ptype) {
518 			tunnel_ptype = tunnels_info[i].ptype;
519 		} else {
520 			tunnel_ptype = 0;
521 			break;
522 		}
523 	}
524 	rxq_ctrl->rxq.tunnel = tunnel_ptype;
525 }
526 
527 /**
528  * Set the Rx queue flags (Mark/Flag and Tunnel Ptypes) according to the devive
529  * flow.
530  *
531  * @param[in] dev
532  *   Pointer to the Ethernet device structure.
533  * @param[in] dev_flow
534  *   Pointer to device flow structure.
535  */
536 static void
537 flow_drv_rxq_flags_set(struct rte_eth_dev *dev, struct mlx5_flow *dev_flow)
538 {
539 	struct mlx5_priv *priv = dev->data->dev_private;
540 	struct rte_flow *flow = dev_flow->flow;
541 	const int mark = !!(flow->actions &
542 			    (MLX5_FLOW_ACTION_FLAG | MLX5_FLOW_ACTION_MARK));
543 	const int tunnel = !!(dev_flow->layers & MLX5_FLOW_LAYER_TUNNEL);
544 	unsigned int i;
545 
546 	for (i = 0; i != flow->rss.queue_num; ++i) {
547 		int idx = (*flow->queue)[i];
548 		struct mlx5_rxq_ctrl *rxq_ctrl =
549 			container_of((*priv->rxqs)[idx],
550 				     struct mlx5_rxq_ctrl, rxq);
551 
552 		if (mark) {
553 			rxq_ctrl->rxq.mark = 1;
554 			rxq_ctrl->flow_mark_n++;
555 		}
556 		if (tunnel) {
557 			unsigned int j;
558 
559 			/* Increase the counter matching the flow. */
560 			for (j = 0; j != MLX5_FLOW_TUNNEL; ++j) {
561 				if ((tunnels_info[j].tunnel &
562 				     dev_flow->layers) ==
563 				    tunnels_info[j].tunnel) {
564 					rxq_ctrl->flow_tunnels_n[j]++;
565 					break;
566 				}
567 			}
568 			flow_rxq_tunnel_ptype_update(rxq_ctrl);
569 		}
570 	}
571 }
572 
573 /**
574  * Set the Rx queue flags (Mark/Flag and Tunnel Ptypes) for a flow
575  *
576  * @param[in] dev
577  *   Pointer to the Ethernet device structure.
578  * @param[in] flow
579  *   Pointer to flow structure.
580  */
581 static void
582 flow_rxq_flags_set(struct rte_eth_dev *dev, struct rte_flow *flow)
583 {
584 	struct mlx5_flow *dev_flow;
585 
586 	LIST_FOREACH(dev_flow, &flow->dev_flows, next)
587 		flow_drv_rxq_flags_set(dev, dev_flow);
588 }
589 
590 /**
591  * Clear the Rx queue flags (Mark/Flag and Tunnel Ptype) associated with the
592  * device flow if no other flow uses it with the same kind of request.
593  *
594  * @param dev
595  *   Pointer to Ethernet device.
596  * @param[in] dev_flow
597  *   Pointer to the device flow.
598  */
599 static void
600 flow_drv_rxq_flags_trim(struct rte_eth_dev *dev, struct mlx5_flow *dev_flow)
601 {
602 	struct mlx5_priv *priv = dev->data->dev_private;
603 	struct rte_flow *flow = dev_flow->flow;
604 	const int mark = !!(flow->actions &
605 			    (MLX5_FLOW_ACTION_FLAG | MLX5_FLOW_ACTION_MARK));
606 	const int tunnel = !!(dev_flow->layers & MLX5_FLOW_LAYER_TUNNEL);
607 	unsigned int i;
608 
609 	assert(dev->data->dev_started);
610 	for (i = 0; i != flow->rss.queue_num; ++i) {
611 		int idx = (*flow->queue)[i];
612 		struct mlx5_rxq_ctrl *rxq_ctrl =
613 			container_of((*priv->rxqs)[idx],
614 				     struct mlx5_rxq_ctrl, rxq);
615 
616 		if (mark) {
617 			rxq_ctrl->flow_mark_n--;
618 			rxq_ctrl->rxq.mark = !!rxq_ctrl->flow_mark_n;
619 		}
620 		if (tunnel) {
621 			unsigned int j;
622 
623 			/* Decrease the counter matching the flow. */
624 			for (j = 0; j != MLX5_FLOW_TUNNEL; ++j) {
625 				if ((tunnels_info[j].tunnel &
626 				     dev_flow->layers) ==
627 				    tunnels_info[j].tunnel) {
628 					rxq_ctrl->flow_tunnels_n[j]--;
629 					break;
630 				}
631 			}
632 			flow_rxq_tunnel_ptype_update(rxq_ctrl);
633 		}
634 	}
635 }
636 
637 /**
638  * Clear the Rx queue flags (Mark/Flag and Tunnel Ptype) associated with the
639  * @p flow if no other flow uses it with the same kind of request.
640  *
641  * @param dev
642  *   Pointer to Ethernet device.
643  * @param[in] flow
644  *   Pointer to the flow.
645  */
646 static void
647 flow_rxq_flags_trim(struct rte_eth_dev *dev, struct rte_flow *flow)
648 {
649 	struct mlx5_flow *dev_flow;
650 
651 	LIST_FOREACH(dev_flow, &flow->dev_flows, next)
652 		flow_drv_rxq_flags_trim(dev, dev_flow);
653 }
654 
655 /**
656  * Clear the Mark/Flag and Tunnel ptype information in all Rx queues.
657  *
658  * @param dev
659  *   Pointer to Ethernet device.
660  */
661 static void
662 flow_rxq_flags_clear(struct rte_eth_dev *dev)
663 {
664 	struct mlx5_priv *priv = dev->data->dev_private;
665 	unsigned int i;
666 
667 	for (i = 0; i != priv->rxqs_n; ++i) {
668 		struct mlx5_rxq_ctrl *rxq_ctrl;
669 		unsigned int j;
670 
671 		if (!(*priv->rxqs)[i])
672 			continue;
673 		rxq_ctrl = container_of((*priv->rxqs)[i],
674 					struct mlx5_rxq_ctrl, rxq);
675 		rxq_ctrl->flow_mark_n = 0;
676 		rxq_ctrl->rxq.mark = 0;
677 		for (j = 0; j != MLX5_FLOW_TUNNEL; ++j)
678 			rxq_ctrl->flow_tunnels_n[j] = 0;
679 		rxq_ctrl->rxq.tunnel = 0;
680 	}
681 }
682 
683 /*
684  * Validate the flag action.
685  *
686  * @param[in] action_flags
687  *   Bit-fields that holds the actions detected until now.
688  * @param[in] attr
689  *   Attributes of flow that includes this action.
690  * @param[out] error
691  *   Pointer to error structure.
692  *
693  * @return
694  *   0 on success, a negative errno value otherwise and rte_errno is set.
695  */
696 int
697 mlx5_flow_validate_action_flag(uint64_t action_flags,
698 			       const struct rte_flow_attr *attr,
699 			       struct rte_flow_error *error)
700 {
701 
702 	if (action_flags & MLX5_FLOW_ACTION_DROP)
703 		return rte_flow_error_set(error, EINVAL,
704 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
705 					  "can't drop and flag in same flow");
706 	if (action_flags & MLX5_FLOW_ACTION_MARK)
707 		return rte_flow_error_set(error, EINVAL,
708 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
709 					  "can't mark and flag in same flow");
710 	if (action_flags & MLX5_FLOW_ACTION_FLAG)
711 		return rte_flow_error_set(error, EINVAL,
712 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
713 					  "can't have 2 flag"
714 					  " actions in same flow");
715 	if (attr->egress)
716 		return rte_flow_error_set(error, ENOTSUP,
717 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
718 					  "flag action not supported for "
719 					  "egress");
720 	return 0;
721 }
722 
723 /*
724  * Validate the mark action.
725  *
726  * @param[in] action
727  *   Pointer to the queue action.
728  * @param[in] action_flags
729  *   Bit-fields that holds the actions detected until now.
730  * @param[in] attr
731  *   Attributes of flow that includes this action.
732  * @param[out] error
733  *   Pointer to error structure.
734  *
735  * @return
736  *   0 on success, a negative errno value otherwise and rte_errno is set.
737  */
738 int
739 mlx5_flow_validate_action_mark(const struct rte_flow_action *action,
740 			       uint64_t action_flags,
741 			       const struct rte_flow_attr *attr,
742 			       struct rte_flow_error *error)
743 {
744 	const struct rte_flow_action_mark *mark = action->conf;
745 
746 	if (!mark)
747 		return rte_flow_error_set(error, EINVAL,
748 					  RTE_FLOW_ERROR_TYPE_ACTION,
749 					  action,
750 					  "configuration cannot be null");
751 	if (mark->id >= MLX5_FLOW_MARK_MAX)
752 		return rte_flow_error_set(error, EINVAL,
753 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
754 					  &mark->id,
755 					  "mark id must in 0 <= id < "
756 					  RTE_STR(MLX5_FLOW_MARK_MAX));
757 	if (action_flags & MLX5_FLOW_ACTION_DROP)
758 		return rte_flow_error_set(error, EINVAL,
759 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
760 					  "can't drop and mark in same flow");
761 	if (action_flags & MLX5_FLOW_ACTION_FLAG)
762 		return rte_flow_error_set(error, EINVAL,
763 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
764 					  "can't flag and mark in same flow");
765 	if (action_flags & MLX5_FLOW_ACTION_MARK)
766 		return rte_flow_error_set(error, EINVAL,
767 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
768 					  "can't have 2 mark actions in same"
769 					  " flow");
770 	if (attr->egress)
771 		return rte_flow_error_set(error, ENOTSUP,
772 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
773 					  "mark action not supported for "
774 					  "egress");
775 	return 0;
776 }
777 
778 /*
779  * Validate the drop action.
780  *
781  * @param[in] action_flags
782  *   Bit-fields that holds the actions detected until now.
783  * @param[in] attr
784  *   Attributes of flow that includes this action.
785  * @param[out] error
786  *   Pointer to error structure.
787  *
788  * @return
789  *   0 on success, a negative errno value otherwise and rte_errno is set.
790  */
791 int
792 mlx5_flow_validate_action_drop(uint64_t action_flags,
793 			       const struct rte_flow_attr *attr,
794 			       struct rte_flow_error *error)
795 {
796 	if (action_flags & MLX5_FLOW_ACTION_FLAG)
797 		return rte_flow_error_set(error, EINVAL,
798 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
799 					  "can't drop and flag in same flow");
800 	if (action_flags & MLX5_FLOW_ACTION_MARK)
801 		return rte_flow_error_set(error, EINVAL,
802 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
803 					  "can't drop and mark in same flow");
804 	if (action_flags & MLX5_FLOW_FATE_ACTIONS)
805 		return rte_flow_error_set(error, EINVAL,
806 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
807 					  "can't have 2 fate actions in"
808 					  " same flow");
809 	if (attr->egress)
810 		return rte_flow_error_set(error, ENOTSUP,
811 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
812 					  "drop action not supported for "
813 					  "egress");
814 	return 0;
815 }
816 
817 /*
818  * Validate the queue action.
819  *
820  * @param[in] action
821  *   Pointer to the queue action.
822  * @param[in] action_flags
823  *   Bit-fields that holds the actions detected until now.
824  * @param[in] dev
825  *   Pointer to the Ethernet device structure.
826  * @param[in] attr
827  *   Attributes of flow that includes this action.
828  * @param[out] error
829  *   Pointer to error structure.
830  *
831  * @return
832  *   0 on success, a negative errno value otherwise and rte_errno is set.
833  */
834 int
835 mlx5_flow_validate_action_queue(const struct rte_flow_action *action,
836 				uint64_t action_flags,
837 				struct rte_eth_dev *dev,
838 				const struct rte_flow_attr *attr,
839 				struct rte_flow_error *error)
840 {
841 	struct mlx5_priv *priv = dev->data->dev_private;
842 	const struct rte_flow_action_queue *queue = action->conf;
843 
844 	if (action_flags & MLX5_FLOW_FATE_ACTIONS)
845 		return rte_flow_error_set(error, EINVAL,
846 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
847 					  "can't have 2 fate actions in"
848 					  " same flow");
849 	if (queue->index >= priv->rxqs_n)
850 		return rte_flow_error_set(error, EINVAL,
851 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
852 					  &queue->index,
853 					  "queue index out of range");
854 	if (!(*priv->rxqs)[queue->index])
855 		return rte_flow_error_set(error, EINVAL,
856 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
857 					  &queue->index,
858 					  "queue is not configured");
859 	if (attr->egress)
860 		return rte_flow_error_set(error, ENOTSUP,
861 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
862 					  "queue action not supported for "
863 					  "egress");
864 	return 0;
865 }
866 
867 /*
868  * Validate the rss action.
869  *
870  * @param[in] action
871  *   Pointer to the queue action.
872  * @param[in] action_flags
873  *   Bit-fields that holds the actions detected until now.
874  * @param[in] dev
875  *   Pointer to the Ethernet device structure.
876  * @param[in] attr
877  *   Attributes of flow that includes this action.
878  * @param[in] item_flags
879  *   Items that were detected.
880  * @param[out] error
881  *   Pointer to error structure.
882  *
883  * @return
884  *   0 on success, a negative errno value otherwise and rte_errno is set.
885  */
886 int
887 mlx5_flow_validate_action_rss(const struct rte_flow_action *action,
888 			      uint64_t action_flags,
889 			      struct rte_eth_dev *dev,
890 			      const struct rte_flow_attr *attr,
891 			      uint64_t item_flags,
892 			      struct rte_flow_error *error)
893 {
894 	struct mlx5_priv *priv = dev->data->dev_private;
895 	const struct rte_flow_action_rss *rss = action->conf;
896 	int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
897 	unsigned int i;
898 
899 	if (action_flags & MLX5_FLOW_FATE_ACTIONS)
900 		return rte_flow_error_set(error, EINVAL,
901 					  RTE_FLOW_ERROR_TYPE_ACTION, NULL,
902 					  "can't have 2 fate actions"
903 					  " in same flow");
904 	if (rss->func != RTE_ETH_HASH_FUNCTION_DEFAULT &&
905 	    rss->func != RTE_ETH_HASH_FUNCTION_TOEPLITZ)
906 		return rte_flow_error_set(error, ENOTSUP,
907 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
908 					  &rss->func,
909 					  "RSS hash function not supported");
910 #ifdef HAVE_IBV_DEVICE_TUNNEL_SUPPORT
911 	if (rss->level > 2)
912 #else
913 	if (rss->level > 1)
914 #endif
915 		return rte_flow_error_set(error, ENOTSUP,
916 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
917 					  &rss->level,
918 					  "tunnel RSS is not supported");
919 	/* allow RSS key_len 0 in case of NULL (default) RSS key. */
920 	if (rss->key_len == 0 && rss->key != NULL)
921 		return rte_flow_error_set(error, ENOTSUP,
922 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
923 					  &rss->key_len,
924 					  "RSS hash key length 0");
925 	if (rss->key_len > 0 && rss->key_len < MLX5_RSS_HASH_KEY_LEN)
926 		return rte_flow_error_set(error, ENOTSUP,
927 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
928 					  &rss->key_len,
929 					  "RSS hash key too small");
930 	if (rss->key_len > MLX5_RSS_HASH_KEY_LEN)
931 		return rte_flow_error_set(error, ENOTSUP,
932 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
933 					  &rss->key_len,
934 					  "RSS hash key too large");
935 	if (rss->queue_num > priv->config.ind_table_max_size)
936 		return rte_flow_error_set(error, ENOTSUP,
937 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
938 					  &rss->queue_num,
939 					  "number of queues too large");
940 	if (rss->types & MLX5_RSS_HF_MASK)
941 		return rte_flow_error_set(error, ENOTSUP,
942 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF,
943 					  &rss->types,
944 					  "some RSS protocols are not"
945 					  " supported");
946 	for (i = 0; i != rss->queue_num; ++i) {
947 		if (!(*priv->rxqs)[rss->queue[i]])
948 			return rte_flow_error_set
949 				(error, EINVAL, RTE_FLOW_ERROR_TYPE_ACTION_CONF,
950 				 &rss->queue[i], "queue is not configured");
951 	}
952 	if (attr->egress)
953 		return rte_flow_error_set(error, ENOTSUP,
954 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
955 					  "rss action not supported for "
956 					  "egress");
957 	if (rss->level > 1 &&  !tunnel)
958 		return rte_flow_error_set(error, EINVAL,
959 					  RTE_FLOW_ERROR_TYPE_ACTION_CONF, NULL,
960 					  "inner RSS is not supported for "
961 					  "non-tunnel flows");
962 	return 0;
963 }
964 
965 /*
966  * Validate the count action.
967  *
968  * @param[in] dev
969  *   Pointer to the Ethernet device structure.
970  * @param[in] attr
971  *   Attributes of flow that includes this action.
972  * @param[out] error
973  *   Pointer to error structure.
974  *
975  * @return
976  *   0 on success, a negative errno value otherwise and rte_errno is set.
977  */
978 int
979 mlx5_flow_validate_action_count(struct rte_eth_dev *dev __rte_unused,
980 				const struct rte_flow_attr *attr,
981 				struct rte_flow_error *error)
982 {
983 	if (attr->egress)
984 		return rte_flow_error_set(error, ENOTSUP,
985 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
986 					  "count action not supported for "
987 					  "egress");
988 	return 0;
989 }
990 
991 /**
992  * Verify the @p attributes will be correctly understood by the NIC and store
993  * them in the @p flow if everything is correct.
994  *
995  * @param[in] dev
996  *   Pointer to the Ethernet device structure.
997  * @param[in] attributes
998  *   Pointer to flow attributes
999  * @param[out] error
1000  *   Pointer to error structure.
1001  *
1002  * @return
1003  *   0 on success, a negative errno value otherwise and rte_errno is set.
1004  */
1005 int
1006 mlx5_flow_validate_attributes(struct rte_eth_dev *dev,
1007 			      const struct rte_flow_attr *attributes,
1008 			      struct rte_flow_error *error)
1009 {
1010 	struct mlx5_priv *priv = dev->data->dev_private;
1011 	uint32_t priority_max = priv->config.flow_prio - 1;
1012 
1013 	if (attributes->group)
1014 		return rte_flow_error_set(error, ENOTSUP,
1015 					  RTE_FLOW_ERROR_TYPE_ATTR_GROUP,
1016 					  NULL, "groups is not supported");
1017 	if (attributes->priority != MLX5_FLOW_PRIO_RSVD &&
1018 	    attributes->priority >= priority_max)
1019 		return rte_flow_error_set(error, ENOTSUP,
1020 					  RTE_FLOW_ERROR_TYPE_ATTR_PRIORITY,
1021 					  NULL, "priority out of range");
1022 	if (attributes->egress)
1023 		return rte_flow_error_set(error, ENOTSUP,
1024 					  RTE_FLOW_ERROR_TYPE_ATTR_EGRESS, NULL,
1025 					  "egress is not supported");
1026 	if (attributes->transfer)
1027 		return rte_flow_error_set(error, ENOTSUP,
1028 					  RTE_FLOW_ERROR_TYPE_ATTR_TRANSFER,
1029 					  NULL, "transfer is not supported");
1030 	if (!attributes->ingress)
1031 		return rte_flow_error_set(error, EINVAL,
1032 					  RTE_FLOW_ERROR_TYPE_ATTR_INGRESS,
1033 					  NULL,
1034 					  "ingress attribute is mandatory");
1035 	return 0;
1036 }
1037 
1038 /**
1039  * Validate Ethernet item.
1040  *
1041  * @param[in] item
1042  *   Item specification.
1043  * @param[in] item_flags
1044  *   Bit-fields that holds the items detected until now.
1045  * @param[out] error
1046  *   Pointer to error structure.
1047  *
1048  * @return
1049  *   0 on success, a negative errno value otherwise and rte_errno is set.
1050  */
1051 int
1052 mlx5_flow_validate_item_eth(const struct rte_flow_item *item,
1053 			    uint64_t item_flags,
1054 			    struct rte_flow_error *error)
1055 {
1056 	const struct rte_flow_item_eth *mask = item->mask;
1057 	const struct rte_flow_item_eth nic_mask = {
1058 		.dst.addr_bytes = "\xff\xff\xff\xff\xff\xff",
1059 		.src.addr_bytes = "\xff\xff\xff\xff\xff\xff",
1060 		.type = RTE_BE16(0xffff),
1061 	};
1062 	int ret;
1063 	int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1064 	const uint64_t ethm = tunnel ? MLX5_FLOW_LAYER_INNER_L2	:
1065 				       MLX5_FLOW_LAYER_OUTER_L2;
1066 
1067 	if (item_flags & ethm)
1068 		return rte_flow_error_set(error, ENOTSUP,
1069 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1070 					  "multiple L2 layers not supported");
1071 	if (!mask)
1072 		mask = &rte_flow_item_eth_mask;
1073 	ret = mlx5_flow_item_acceptable(item, (const uint8_t *)mask,
1074 					(const uint8_t *)&nic_mask,
1075 					sizeof(struct rte_flow_item_eth),
1076 					error);
1077 	return ret;
1078 }
1079 
1080 /**
1081  * Validate VLAN item.
1082  *
1083  * @param[in] item
1084  *   Item specification.
1085  * @param[in] item_flags
1086  *   Bit-fields that holds the items detected until now.
1087  * @param[out] error
1088  *   Pointer to error structure.
1089  *
1090  * @return
1091  *   0 on success, a negative errno value otherwise and rte_errno is set.
1092  */
1093 int
1094 mlx5_flow_validate_item_vlan(const struct rte_flow_item *item,
1095 			     uint64_t item_flags,
1096 			     struct rte_flow_error *error)
1097 {
1098 	const struct rte_flow_item_vlan *spec = item->spec;
1099 	const struct rte_flow_item_vlan *mask = item->mask;
1100 	const struct rte_flow_item_vlan nic_mask = {
1101 		.tci = RTE_BE16(0x0fff),
1102 		.inner_type = RTE_BE16(0xffff),
1103 	};
1104 	uint16_t vlan_tag = 0;
1105 	const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1106 	int ret;
1107 	const uint64_t l34m = tunnel ? (MLX5_FLOW_LAYER_INNER_L3 |
1108 					MLX5_FLOW_LAYER_INNER_L4) :
1109 				       (MLX5_FLOW_LAYER_OUTER_L3 |
1110 					MLX5_FLOW_LAYER_OUTER_L4);
1111 	const uint64_t vlanm = tunnel ? MLX5_FLOW_LAYER_INNER_VLAN :
1112 					MLX5_FLOW_LAYER_OUTER_VLAN;
1113 
1114 	if (item_flags & vlanm)
1115 		return rte_flow_error_set(error, EINVAL,
1116 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1117 					  "multiple VLAN layers not supported");
1118 	else if ((item_flags & l34m) != 0)
1119 		return rte_flow_error_set(error, EINVAL,
1120 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1121 					  "L2 layer cannot follow L3/L4 layer");
1122 	if (!mask)
1123 		mask = &rte_flow_item_vlan_mask;
1124 	ret = mlx5_flow_item_acceptable(item, (const uint8_t *)mask,
1125 					(const uint8_t *)&nic_mask,
1126 					sizeof(struct rte_flow_item_vlan),
1127 					error);
1128 	if (ret)
1129 		return ret;
1130 	if (spec) {
1131 		vlan_tag = spec->tci;
1132 		vlan_tag &= mask->tci;
1133 	}
1134 	/*
1135 	 * From verbs perspective an empty VLAN is equivalent
1136 	 * to a packet without VLAN layer.
1137 	 */
1138 	if (!vlan_tag)
1139 		return rte_flow_error_set(error, EINVAL,
1140 					  RTE_FLOW_ERROR_TYPE_ITEM_SPEC,
1141 					  item->spec,
1142 					  "VLAN cannot be empty");
1143 	return 0;
1144 }
1145 
1146 /**
1147  * Validate IPV4 item.
1148  *
1149  * @param[in] item
1150  *   Item specification.
1151  * @param[in] item_flags
1152  *   Bit-fields that holds the items detected until now.
1153  * @param[out] error
1154  *   Pointer to error structure.
1155  *
1156  * @return
1157  *   0 on success, a negative errno value otherwise and rte_errno is set.
1158  */
1159 int
1160 mlx5_flow_validate_item_ipv4(const struct rte_flow_item *item,
1161 			     uint64_t item_flags,
1162 			     struct rte_flow_error *error)
1163 {
1164 	const struct rte_flow_item_ipv4 *mask = item->mask;
1165 	const struct rte_flow_item_ipv4 nic_mask = {
1166 		.hdr = {
1167 			.src_addr = RTE_BE32(0xffffffff),
1168 			.dst_addr = RTE_BE32(0xffffffff),
1169 			.type_of_service = 0xff,
1170 			.next_proto_id = 0xff,
1171 		},
1172 	};
1173 	const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1174 	const uint64_t l3m = tunnel ? MLX5_FLOW_LAYER_INNER_L3 :
1175 				      MLX5_FLOW_LAYER_OUTER_L3;
1176 	const uint64_t l4m = tunnel ? MLX5_FLOW_LAYER_INNER_L4 :
1177 				      MLX5_FLOW_LAYER_OUTER_L4;
1178 	int ret;
1179 
1180 	if (item_flags & l3m)
1181 		return rte_flow_error_set(error, ENOTSUP,
1182 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1183 					  "multiple L3 layers not supported");
1184 	else if (item_flags & l4m)
1185 		return rte_flow_error_set(error, EINVAL,
1186 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1187 					  "L3 cannot follow an L4 layer.");
1188 	if (!mask)
1189 		mask = &rte_flow_item_ipv4_mask;
1190 	else if (mask->hdr.next_proto_id != 0 &&
1191 		 mask->hdr.next_proto_id != 0xff)
1192 		return rte_flow_error_set(error, EINVAL,
1193 					  RTE_FLOW_ERROR_TYPE_ITEM_MASK, mask,
1194 					  "partial mask is not supported"
1195 					  " for protocol");
1196 	ret = mlx5_flow_item_acceptable(item, (const uint8_t *)mask,
1197 					(const uint8_t *)&nic_mask,
1198 					sizeof(struct rte_flow_item_ipv4),
1199 					error);
1200 	if (ret < 0)
1201 		return ret;
1202 	return 0;
1203 }
1204 
1205 /**
1206  * Validate IPV6 item.
1207  *
1208  * @param[in] item
1209  *   Item specification.
1210  * @param[in] item_flags
1211  *   Bit-fields that holds the items detected until now.
1212  * @param[out] error
1213  *   Pointer to error structure.
1214  *
1215  * @return
1216  *   0 on success, a negative errno value otherwise and rte_errno is set.
1217  */
1218 int
1219 mlx5_flow_validate_item_ipv6(const struct rte_flow_item *item,
1220 			     uint64_t item_flags,
1221 			     struct rte_flow_error *error)
1222 {
1223 	const struct rte_flow_item_ipv6 *mask = item->mask;
1224 	const struct rte_flow_item_ipv6 nic_mask = {
1225 		.hdr = {
1226 			.src_addr =
1227 				"\xff\xff\xff\xff\xff\xff\xff\xff"
1228 				"\xff\xff\xff\xff\xff\xff\xff\xff",
1229 			.dst_addr =
1230 				"\xff\xff\xff\xff\xff\xff\xff\xff"
1231 				"\xff\xff\xff\xff\xff\xff\xff\xff",
1232 			.vtc_flow = RTE_BE32(0xffffffff),
1233 			.proto = 0xff,
1234 			.hop_limits = 0xff,
1235 		},
1236 	};
1237 	const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1238 	const uint64_t l3m = tunnel ? MLX5_FLOW_LAYER_INNER_L3 :
1239 				      MLX5_FLOW_LAYER_OUTER_L3;
1240 	const uint64_t l4m = tunnel ? MLX5_FLOW_LAYER_INNER_L4 :
1241 				      MLX5_FLOW_LAYER_OUTER_L4;
1242 	int ret;
1243 
1244 	if (item_flags & l3m)
1245 		return rte_flow_error_set(error, ENOTSUP,
1246 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1247 					  "multiple L3 layers not supported");
1248 	else if (item_flags & l4m)
1249 		return rte_flow_error_set(error, EINVAL,
1250 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1251 					  "L3 cannot follow an L4 layer.");
1252 	if (!mask)
1253 		mask = &rte_flow_item_ipv6_mask;
1254 	ret = mlx5_flow_item_acceptable(item, (const uint8_t *)mask,
1255 					(const uint8_t *)&nic_mask,
1256 					sizeof(struct rte_flow_item_ipv6),
1257 					error);
1258 	if (ret < 0)
1259 		return ret;
1260 	return 0;
1261 }
1262 
1263 /**
1264  * Validate UDP item.
1265  *
1266  * @param[in] item
1267  *   Item specification.
1268  * @param[in] item_flags
1269  *   Bit-fields that holds the items detected until now.
1270  * @param[in] target_protocol
1271  *   The next protocol in the previous item.
1272  * @param[in] flow_mask
1273  *   mlx5 flow-specific (TCF, DV, verbs, etc.) supported header fields mask.
1274  * @param[out] error
1275  *   Pointer to error structure.
1276  *
1277  * @return
1278  *   0 on success, a negative errno value otherwise and rte_errno is set.
1279  */
1280 int
1281 mlx5_flow_validate_item_udp(const struct rte_flow_item *item,
1282 			    uint64_t item_flags,
1283 			    uint8_t target_protocol,
1284 			    struct rte_flow_error *error)
1285 {
1286 	const struct rte_flow_item_udp *mask = item->mask;
1287 	const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1288 	const uint64_t l3m = tunnel ? MLX5_FLOW_LAYER_INNER_L3 :
1289 				      MLX5_FLOW_LAYER_OUTER_L3;
1290 	const uint64_t l4m = tunnel ? MLX5_FLOW_LAYER_INNER_L4 :
1291 				      MLX5_FLOW_LAYER_OUTER_L4;
1292 	int ret;
1293 
1294 	if (target_protocol != 0xff && target_protocol != IPPROTO_UDP)
1295 		return rte_flow_error_set(error, EINVAL,
1296 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1297 					  "protocol filtering not compatible"
1298 					  " with UDP layer");
1299 	if (!(item_flags & l3m))
1300 		return rte_flow_error_set(error, EINVAL,
1301 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1302 					  "L3 is mandatory to filter on L4");
1303 	if (item_flags & l4m)
1304 		return rte_flow_error_set(error, EINVAL,
1305 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1306 					  "multiple L4 layers not supported");
1307 	if (!mask)
1308 		mask = &rte_flow_item_udp_mask;
1309 	ret = mlx5_flow_item_acceptable
1310 		(item, (const uint8_t *)mask,
1311 		 (const uint8_t *)&rte_flow_item_udp_mask,
1312 		 sizeof(struct rte_flow_item_udp), error);
1313 	if (ret < 0)
1314 		return ret;
1315 	return 0;
1316 }
1317 
1318 /**
1319  * Validate TCP item.
1320  *
1321  * @param[in] item
1322  *   Item specification.
1323  * @param[in] item_flags
1324  *   Bit-fields that holds the items detected until now.
1325  * @param[in] target_protocol
1326  *   The next protocol in the previous item.
1327  * @param[out] error
1328  *   Pointer to error structure.
1329  *
1330  * @return
1331  *   0 on success, a negative errno value otherwise and rte_errno is set.
1332  */
1333 int
1334 mlx5_flow_validate_item_tcp(const struct rte_flow_item *item,
1335 			    uint64_t item_flags,
1336 			    uint8_t target_protocol,
1337 			    const struct rte_flow_item_tcp *flow_mask,
1338 			    struct rte_flow_error *error)
1339 {
1340 	const struct rte_flow_item_tcp *mask = item->mask;
1341 	const int tunnel = !!(item_flags & MLX5_FLOW_LAYER_TUNNEL);
1342 	const uint64_t l3m = tunnel ? MLX5_FLOW_LAYER_INNER_L3 :
1343 				      MLX5_FLOW_LAYER_OUTER_L3;
1344 	const uint64_t l4m = tunnel ? MLX5_FLOW_LAYER_INNER_L4 :
1345 				      MLX5_FLOW_LAYER_OUTER_L4;
1346 	int ret;
1347 
1348 	assert(flow_mask);
1349 	if (target_protocol != 0xff && target_protocol != IPPROTO_TCP)
1350 		return rte_flow_error_set(error, EINVAL,
1351 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1352 					  "protocol filtering not compatible"
1353 					  " with TCP layer");
1354 	if (!(item_flags & l3m))
1355 		return rte_flow_error_set(error, EINVAL,
1356 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1357 					  "L3 is mandatory to filter on L4");
1358 	if (item_flags & l4m)
1359 		return rte_flow_error_set(error, EINVAL,
1360 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1361 					  "multiple L4 layers not supported");
1362 	if (!mask)
1363 		mask = &rte_flow_item_tcp_mask;
1364 	ret = mlx5_flow_item_acceptable
1365 		(item, (const uint8_t *)mask,
1366 		 (const uint8_t *)flow_mask,
1367 		 sizeof(struct rte_flow_item_tcp), error);
1368 	if (ret < 0)
1369 		return ret;
1370 	return 0;
1371 }
1372 
1373 /**
1374  * Validate VXLAN item.
1375  *
1376  * @param[in] item
1377  *   Item specification.
1378  * @param[in] item_flags
1379  *   Bit-fields that holds the items detected until now.
1380  * @param[in] target_protocol
1381  *   The next protocol in the previous item.
1382  * @param[out] error
1383  *   Pointer to error structure.
1384  *
1385  * @return
1386  *   0 on success, a negative errno value otherwise and rte_errno is set.
1387  */
1388 int
1389 mlx5_flow_validate_item_vxlan(const struct rte_flow_item *item,
1390 			      uint64_t item_flags,
1391 			      struct rte_flow_error *error)
1392 {
1393 	const struct rte_flow_item_vxlan *spec = item->spec;
1394 	const struct rte_flow_item_vxlan *mask = item->mask;
1395 	int ret;
1396 	union vni {
1397 		uint32_t vlan_id;
1398 		uint8_t vni[4];
1399 	} id = { .vlan_id = 0, };
1400 	uint32_t vlan_id = 0;
1401 
1402 
1403 	if (item_flags & MLX5_FLOW_LAYER_TUNNEL)
1404 		return rte_flow_error_set(error, ENOTSUP,
1405 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1406 					  "multiple tunnel layers not"
1407 					  " supported");
1408 	/*
1409 	 * Verify only UDPv4 is present as defined in
1410 	 * https://tools.ietf.org/html/rfc7348
1411 	 */
1412 	if (!(item_flags & MLX5_FLOW_LAYER_OUTER_L4_UDP))
1413 		return rte_flow_error_set(error, EINVAL,
1414 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1415 					  "no outer UDP layer found");
1416 	if (!mask)
1417 		mask = &rte_flow_item_vxlan_mask;
1418 	ret = mlx5_flow_item_acceptable
1419 		(item, (const uint8_t *)mask,
1420 		 (const uint8_t *)&rte_flow_item_vxlan_mask,
1421 		 sizeof(struct rte_flow_item_vxlan),
1422 		 error);
1423 	if (ret < 0)
1424 		return ret;
1425 	if (spec) {
1426 		memcpy(&id.vni[1], spec->vni, 3);
1427 		vlan_id = id.vlan_id;
1428 		memcpy(&id.vni[1], mask->vni, 3);
1429 		vlan_id &= id.vlan_id;
1430 	}
1431 	/*
1432 	 * Tunnel id 0 is equivalent as not adding a VXLAN layer, if
1433 	 * only this layer is defined in the Verbs specification it is
1434 	 * interpreted as wildcard and all packets will match this
1435 	 * rule, if it follows a full stack layer (ex: eth / ipv4 /
1436 	 * udp), all packets matching the layers before will also
1437 	 * match this rule.  To avoid such situation, VNI 0 is
1438 	 * currently refused.
1439 	 */
1440 	if (!vlan_id)
1441 		return rte_flow_error_set(error, ENOTSUP,
1442 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1443 					  "VXLAN vni cannot be 0");
1444 	if (!(item_flags & MLX5_FLOW_LAYER_OUTER))
1445 		return rte_flow_error_set(error, ENOTSUP,
1446 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1447 					  "VXLAN tunnel must be fully defined");
1448 	return 0;
1449 }
1450 
1451 /**
1452  * Validate VXLAN_GPE item.
1453  *
1454  * @param[in] item
1455  *   Item specification.
1456  * @param[in] item_flags
1457  *   Bit-fields that holds the items detected until now.
1458  * @param[in] priv
1459  *   Pointer to the private data structure.
1460  * @param[in] target_protocol
1461  *   The next protocol in the previous item.
1462  * @param[out] error
1463  *   Pointer to error structure.
1464  *
1465  * @return
1466  *   0 on success, a negative errno value otherwise and rte_errno is set.
1467  */
1468 int
1469 mlx5_flow_validate_item_vxlan_gpe(const struct rte_flow_item *item,
1470 				  uint64_t item_flags,
1471 				  struct rte_eth_dev *dev,
1472 				  struct rte_flow_error *error)
1473 {
1474 	struct mlx5_priv *priv = dev->data->dev_private;
1475 	const struct rte_flow_item_vxlan_gpe *spec = item->spec;
1476 	const struct rte_flow_item_vxlan_gpe *mask = item->mask;
1477 	int ret;
1478 	union vni {
1479 		uint32_t vlan_id;
1480 		uint8_t vni[4];
1481 	} id = { .vlan_id = 0, };
1482 	uint32_t vlan_id = 0;
1483 
1484 	if (!priv->config.l3_vxlan_en)
1485 		return rte_flow_error_set(error, ENOTSUP,
1486 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1487 					  "L3 VXLAN is not enabled by device"
1488 					  " parameter and/or not configured in"
1489 					  " firmware");
1490 	if (item_flags & MLX5_FLOW_LAYER_TUNNEL)
1491 		return rte_flow_error_set(error, ENOTSUP,
1492 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1493 					  "multiple tunnel layers not"
1494 					  " supported");
1495 	/*
1496 	 * Verify only UDPv4 is present as defined in
1497 	 * https://tools.ietf.org/html/rfc7348
1498 	 */
1499 	if (!(item_flags & MLX5_FLOW_LAYER_OUTER_L4_UDP))
1500 		return rte_flow_error_set(error, EINVAL,
1501 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1502 					  "no outer UDP layer found");
1503 	if (!mask)
1504 		mask = &rte_flow_item_vxlan_gpe_mask;
1505 	ret = mlx5_flow_item_acceptable
1506 		(item, (const uint8_t *)mask,
1507 		 (const uint8_t *)&rte_flow_item_vxlan_gpe_mask,
1508 		 sizeof(struct rte_flow_item_vxlan_gpe),
1509 		 error);
1510 	if (ret < 0)
1511 		return ret;
1512 	if (spec) {
1513 		if (spec->protocol)
1514 			return rte_flow_error_set(error, ENOTSUP,
1515 						  RTE_FLOW_ERROR_TYPE_ITEM,
1516 						  item,
1517 						  "VxLAN-GPE protocol"
1518 						  " not supported");
1519 		memcpy(&id.vni[1], spec->vni, 3);
1520 		vlan_id = id.vlan_id;
1521 		memcpy(&id.vni[1], mask->vni, 3);
1522 		vlan_id &= id.vlan_id;
1523 	}
1524 	/*
1525 	 * Tunnel id 0 is equivalent as not adding a VXLAN layer, if only this
1526 	 * layer is defined in the Verbs specification it is interpreted as
1527 	 * wildcard and all packets will match this rule, if it follows a full
1528 	 * stack layer (ex: eth / ipv4 / udp), all packets matching the layers
1529 	 * before will also match this rule.  To avoid such situation, VNI 0
1530 	 * is currently refused.
1531 	 */
1532 	if (!vlan_id)
1533 		return rte_flow_error_set(error, ENOTSUP,
1534 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1535 					  "VXLAN-GPE vni cannot be 0");
1536 	if (!(item_flags & MLX5_FLOW_LAYER_OUTER))
1537 		return rte_flow_error_set(error, ENOTSUP,
1538 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1539 					  "VXLAN-GPE tunnel must be fully"
1540 					  " defined");
1541 	return 0;
1542 }
1543 
1544 /**
1545  * Validate GRE item.
1546  *
1547  * @param[in] item
1548  *   Item specification.
1549  * @param[in] item_flags
1550  *   Bit flags to mark detected items.
1551  * @param[in] target_protocol
1552  *   The next protocol in the previous item.
1553  * @param[out] error
1554  *   Pointer to error structure.
1555  *
1556  * @return
1557  *   0 on success, a negative errno value otherwise and rte_errno is set.
1558  */
1559 int
1560 mlx5_flow_validate_item_gre(const struct rte_flow_item *item,
1561 			    uint64_t item_flags,
1562 			    uint8_t target_protocol,
1563 			    struct rte_flow_error *error)
1564 {
1565 	const struct rte_flow_item_gre *spec __rte_unused = item->spec;
1566 	const struct rte_flow_item_gre *mask = item->mask;
1567 	int ret;
1568 
1569 	if (target_protocol != 0xff && target_protocol != IPPROTO_GRE)
1570 		return rte_flow_error_set(error, EINVAL,
1571 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1572 					  "protocol filtering not compatible"
1573 					  " with this GRE layer");
1574 	if (item_flags & MLX5_FLOW_LAYER_TUNNEL)
1575 		return rte_flow_error_set(error, ENOTSUP,
1576 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1577 					  "multiple tunnel layers not"
1578 					  " supported");
1579 	if (!(item_flags & MLX5_FLOW_LAYER_OUTER_L3))
1580 		return rte_flow_error_set(error, ENOTSUP,
1581 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1582 					  "L3 Layer is missing");
1583 	if (!mask)
1584 		mask = &rte_flow_item_gre_mask;
1585 	ret = mlx5_flow_item_acceptable
1586 		(item, (const uint8_t *)mask,
1587 		 (const uint8_t *)&rte_flow_item_gre_mask,
1588 		 sizeof(struct rte_flow_item_gre), error);
1589 	if (ret < 0)
1590 		return ret;
1591 #ifndef HAVE_IBV_DEVICE_MPLS_SUPPORT
1592 	if (spec && (spec->protocol & mask->protocol))
1593 		return rte_flow_error_set(error, ENOTSUP,
1594 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1595 					  "without MPLS support the"
1596 					  " specification cannot be used for"
1597 					  " filtering");
1598 #endif
1599 	return 0;
1600 }
1601 
1602 /**
1603  * Validate MPLS item.
1604  *
1605  * @param[in] dev
1606  *   Pointer to the rte_eth_dev structure.
1607  * @param[in] item
1608  *   Item specification.
1609  * @param[in] item_flags
1610  *   Bit-fields that holds the items detected until now.
1611  * @param[in] prev_layer
1612  *   The protocol layer indicated in previous item.
1613  * @param[out] error
1614  *   Pointer to error structure.
1615  *
1616  * @return
1617  *   0 on success, a negative errno value otherwise and rte_errno is set.
1618  */
1619 int
1620 mlx5_flow_validate_item_mpls(struct rte_eth_dev *dev __rte_unused,
1621 			     const struct rte_flow_item *item __rte_unused,
1622 			     uint64_t item_flags __rte_unused,
1623 			     uint64_t prev_layer __rte_unused,
1624 			     struct rte_flow_error *error)
1625 {
1626 #ifdef HAVE_IBV_DEVICE_MPLS_SUPPORT
1627 	const struct rte_flow_item_mpls *mask = item->mask;
1628 	struct mlx5_priv *priv = dev->data->dev_private;
1629 	int ret;
1630 
1631 	if (!priv->config.mpls_en)
1632 		return rte_flow_error_set(error, ENOTSUP,
1633 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1634 					  "MPLS not supported or"
1635 					  " disabled in firmware"
1636 					  " configuration.");
1637 	/* MPLS over IP, UDP, GRE is allowed */
1638 	if (!(prev_layer & (MLX5_FLOW_LAYER_OUTER_L3 |
1639 			    MLX5_FLOW_LAYER_OUTER_L4_UDP |
1640 			    MLX5_FLOW_LAYER_GRE)))
1641 		return rte_flow_error_set(error, EINVAL,
1642 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1643 					  "protocol filtering not compatible"
1644 					  " with MPLS layer");
1645 	/* Multi-tunnel isn't allowed but MPLS over GRE is an exception. */
1646 	if ((item_flags & MLX5_FLOW_LAYER_TUNNEL) &&
1647 	    !(item_flags & MLX5_FLOW_LAYER_GRE))
1648 		return rte_flow_error_set(error, ENOTSUP,
1649 					  RTE_FLOW_ERROR_TYPE_ITEM, item,
1650 					  "multiple tunnel layers not"
1651 					  " supported");
1652 	if (!mask)
1653 		mask = &rte_flow_item_mpls_mask;
1654 	ret = mlx5_flow_item_acceptable
1655 		(item, (const uint8_t *)mask,
1656 		 (const uint8_t *)&rte_flow_item_mpls_mask,
1657 		 sizeof(struct rte_flow_item_mpls), error);
1658 	if (ret < 0)
1659 		return ret;
1660 	return 0;
1661 #endif
1662 	return rte_flow_error_set(error, ENOTSUP,
1663 				  RTE_FLOW_ERROR_TYPE_ITEM, item,
1664 				  "MPLS is not supported by Verbs, please"
1665 				  " update.");
1666 }
1667 
1668 static int
1669 flow_null_validate(struct rte_eth_dev *dev __rte_unused,
1670 		   const struct rte_flow_attr *attr __rte_unused,
1671 		   const struct rte_flow_item items[] __rte_unused,
1672 		   const struct rte_flow_action actions[] __rte_unused,
1673 		   struct rte_flow_error *error __rte_unused)
1674 {
1675 	rte_errno = ENOTSUP;
1676 	return -rte_errno;
1677 }
1678 
1679 static struct mlx5_flow *
1680 flow_null_prepare(const struct rte_flow_attr *attr __rte_unused,
1681 		  const struct rte_flow_item items[] __rte_unused,
1682 		  const struct rte_flow_action actions[] __rte_unused,
1683 		  struct rte_flow_error *error __rte_unused)
1684 {
1685 	rte_errno = ENOTSUP;
1686 	return NULL;
1687 }
1688 
1689 static int
1690 flow_null_translate(struct rte_eth_dev *dev __rte_unused,
1691 		    struct mlx5_flow *dev_flow __rte_unused,
1692 		    const struct rte_flow_attr *attr __rte_unused,
1693 		    const struct rte_flow_item items[] __rte_unused,
1694 		    const struct rte_flow_action actions[] __rte_unused,
1695 		    struct rte_flow_error *error __rte_unused)
1696 {
1697 	rte_errno = ENOTSUP;
1698 	return -rte_errno;
1699 }
1700 
1701 static int
1702 flow_null_apply(struct rte_eth_dev *dev __rte_unused,
1703 		struct rte_flow *flow __rte_unused,
1704 		struct rte_flow_error *error __rte_unused)
1705 {
1706 	rte_errno = ENOTSUP;
1707 	return -rte_errno;
1708 }
1709 
1710 static void
1711 flow_null_remove(struct rte_eth_dev *dev __rte_unused,
1712 		 struct rte_flow *flow __rte_unused)
1713 {
1714 }
1715 
1716 static void
1717 flow_null_destroy(struct rte_eth_dev *dev __rte_unused,
1718 		  struct rte_flow *flow __rte_unused)
1719 {
1720 }
1721 
1722 static int
1723 flow_null_query(struct rte_eth_dev *dev __rte_unused,
1724 		struct rte_flow *flow __rte_unused,
1725 		const struct rte_flow_action *actions __rte_unused,
1726 		void *data __rte_unused,
1727 		struct rte_flow_error *error __rte_unused)
1728 {
1729 	rte_errno = ENOTSUP;
1730 	return -rte_errno;
1731 }
1732 
1733 /* Void driver to protect from null pointer reference. */
1734 const struct mlx5_flow_driver_ops mlx5_flow_null_drv_ops = {
1735 	.validate = flow_null_validate,
1736 	.prepare = flow_null_prepare,
1737 	.translate = flow_null_translate,
1738 	.apply = flow_null_apply,
1739 	.remove = flow_null_remove,
1740 	.destroy = flow_null_destroy,
1741 	.query = flow_null_query,
1742 };
1743 
1744 /**
1745  * Select flow driver type according to flow attributes and device
1746  * configuration.
1747  *
1748  * @param[in] dev
1749  *   Pointer to the dev structure.
1750  * @param[in] attr
1751  *   Pointer to the flow attributes.
1752  *
1753  * @return
1754  *   flow driver type, MLX5_FLOW_TYPE_MAX otherwise.
1755  */
1756 static enum mlx5_flow_drv_type
1757 flow_get_drv_type(struct rte_eth_dev *dev, const struct rte_flow_attr *attr)
1758 {
1759 	struct mlx5_priv *priv = dev->data->dev_private;
1760 	enum mlx5_flow_drv_type type = MLX5_FLOW_TYPE_MAX;
1761 
1762 	if (attr->transfer)
1763 		type = MLX5_FLOW_TYPE_TCF;
1764 	else
1765 		type = priv->config.dv_flow_en ? MLX5_FLOW_TYPE_DV :
1766 						 MLX5_FLOW_TYPE_VERBS;
1767 	return type;
1768 }
1769 
1770 #define flow_get_drv_ops(type) flow_drv_ops[type]
1771 
1772 /**
1773  * Flow driver validation API. This abstracts calling driver specific functions.
1774  * The type of flow driver is determined according to flow attributes.
1775  *
1776  * @param[in] dev
1777  *   Pointer to the dev structure.
1778  * @param[in] attr
1779  *   Pointer to the flow attributes.
1780  * @param[in] items
1781  *   Pointer to the list of items.
1782  * @param[in] actions
1783  *   Pointer to the list of actions.
1784  * @param[out] error
1785  *   Pointer to the error structure.
1786  *
1787  * @return
1788  *   0 on success, a negative errno value otherwise and rte_errno is set.
1789  */
1790 static inline int
1791 flow_drv_validate(struct rte_eth_dev *dev,
1792 		  const struct rte_flow_attr *attr,
1793 		  const struct rte_flow_item items[],
1794 		  const struct rte_flow_action actions[],
1795 		  struct rte_flow_error *error)
1796 {
1797 	const struct mlx5_flow_driver_ops *fops;
1798 	enum mlx5_flow_drv_type type = flow_get_drv_type(dev, attr);
1799 
1800 	fops = flow_get_drv_ops(type);
1801 	return fops->validate(dev, attr, items, actions, error);
1802 }
1803 
1804 /**
1805  * Flow driver preparation API. This abstracts calling driver specific
1806  * functions. Parent flow (rte_flow) should have driver type (drv_type). It
1807  * calculates the size of memory required for device flow, allocates the memory,
1808  * initializes the device flow and returns the pointer.
1809  *
1810  * @note
1811  *   This function initializes device flow structure such as dv, tcf or verbs in
1812  *   struct mlx5_flow. However, it is caller's responsibility to initialize the
1813  *   rest. For example, adding returning device flow to flow->dev_flow list and
1814  *   setting backward reference to the flow should be done out of this function.
1815  *   layers field is not filled either.
1816  *
1817  * @param[in] attr
1818  *   Pointer to the flow attributes.
1819  * @param[in] items
1820  *   Pointer to the list of items.
1821  * @param[in] actions
1822  *   Pointer to the list of actions.
1823  * @param[out] error
1824  *   Pointer to the error structure.
1825  *
1826  * @return
1827  *   Pointer to device flow on success, otherwise NULL and rte_errno is set.
1828  */
1829 static inline struct mlx5_flow *
1830 flow_drv_prepare(const struct rte_flow *flow,
1831 		 const struct rte_flow_attr *attr,
1832 		 const struct rte_flow_item items[],
1833 		 const struct rte_flow_action actions[],
1834 		 struct rte_flow_error *error)
1835 {
1836 	const struct mlx5_flow_driver_ops *fops;
1837 	enum mlx5_flow_drv_type type = flow->drv_type;
1838 
1839 	assert(type > MLX5_FLOW_TYPE_MIN && type < MLX5_FLOW_TYPE_MAX);
1840 	fops = flow_get_drv_ops(type);
1841 	return fops->prepare(attr, items, actions, error);
1842 }
1843 
1844 /**
1845  * Flow driver translation API. This abstracts calling driver specific
1846  * functions. Parent flow (rte_flow) should have driver type (drv_type). It
1847  * translates a generic flow into a driver flow. flow_drv_prepare() must
1848  * precede.
1849  *
1850  * @note
1851  *   dev_flow->layers could be filled as a result of parsing during translation
1852  *   if needed by flow_drv_apply(). dev_flow->flow->actions can also be filled
1853  *   if necessary. As a flow can have multiple dev_flows by RSS flow expansion,
1854  *   flow->actions could be overwritten even though all the expanded dev_flows
1855  *   have the same actions.
1856  *
1857  * @param[in] dev
1858  *   Pointer to the rte dev structure.
1859  * @param[in, out] dev_flow
1860  *   Pointer to the mlx5 flow.
1861  * @param[in] attr
1862  *   Pointer to the flow attributes.
1863  * @param[in] items
1864  *   Pointer to the list of items.
1865  * @param[in] actions
1866  *   Pointer to the list of actions.
1867  * @param[out] error
1868  *   Pointer to the error structure.
1869  *
1870  * @return
1871  *   0 on success, a negative errno value otherwise and rte_errno is set.
1872  */
1873 static inline int
1874 flow_drv_translate(struct rte_eth_dev *dev, struct mlx5_flow *dev_flow,
1875 		   const struct rte_flow_attr *attr,
1876 		   const struct rte_flow_item items[],
1877 		   const struct rte_flow_action actions[],
1878 		   struct rte_flow_error *error)
1879 {
1880 	const struct mlx5_flow_driver_ops *fops;
1881 	enum mlx5_flow_drv_type type = dev_flow->flow->drv_type;
1882 
1883 	assert(type > MLX5_FLOW_TYPE_MIN && type < MLX5_FLOW_TYPE_MAX);
1884 	fops = flow_get_drv_ops(type);
1885 	return fops->translate(dev, dev_flow, attr, items, actions, error);
1886 }
1887 
1888 /**
1889  * Flow driver apply API. This abstracts calling driver specific functions.
1890  * Parent flow (rte_flow) should have driver type (drv_type). It applies
1891  * translated driver flows on to device. flow_drv_translate() must precede.
1892  *
1893  * @param[in] dev
1894  *   Pointer to Ethernet device structure.
1895  * @param[in, out] flow
1896  *   Pointer to flow structure.
1897  * @param[out] error
1898  *   Pointer to error structure.
1899  *
1900  * @return
1901  *   0 on success, a negative errno value otherwise and rte_errno is set.
1902  */
1903 static inline int
1904 flow_drv_apply(struct rte_eth_dev *dev, struct rte_flow *flow,
1905 	       struct rte_flow_error *error)
1906 {
1907 	const struct mlx5_flow_driver_ops *fops;
1908 	enum mlx5_flow_drv_type type = flow->drv_type;
1909 
1910 	assert(type > MLX5_FLOW_TYPE_MIN && type < MLX5_FLOW_TYPE_MAX);
1911 	fops = flow_get_drv_ops(type);
1912 	return fops->apply(dev, flow, error);
1913 }
1914 
1915 /**
1916  * Flow driver remove API. This abstracts calling driver specific functions.
1917  * Parent flow (rte_flow) should have driver type (drv_type). It removes a flow
1918  * on device. All the resources of the flow should be freed by calling
1919  * flow_drv_destroy().
1920  *
1921  * @param[in] dev
1922  *   Pointer to Ethernet device.
1923  * @param[in, out] flow
1924  *   Pointer to flow structure.
1925  */
1926 static inline void
1927 flow_drv_remove(struct rte_eth_dev *dev, struct rte_flow *flow)
1928 {
1929 	const struct mlx5_flow_driver_ops *fops;
1930 	enum mlx5_flow_drv_type type = flow->drv_type;
1931 
1932 	assert(type > MLX5_FLOW_TYPE_MIN && type < MLX5_FLOW_TYPE_MAX);
1933 	fops = flow_get_drv_ops(type);
1934 	fops->remove(dev, flow);
1935 }
1936 
1937 /**
1938  * Flow driver destroy API. This abstracts calling driver specific functions.
1939  * Parent flow (rte_flow) should have driver type (drv_type). It removes a flow
1940  * on device and releases resources of the flow.
1941  *
1942  * @param[in] dev
1943  *   Pointer to Ethernet device.
1944  * @param[in, out] flow
1945  *   Pointer to flow structure.
1946  */
1947 static inline void
1948 flow_drv_destroy(struct rte_eth_dev *dev, struct rte_flow *flow)
1949 {
1950 	const struct mlx5_flow_driver_ops *fops;
1951 	enum mlx5_flow_drv_type type = flow->drv_type;
1952 
1953 	assert(type > MLX5_FLOW_TYPE_MIN && type < MLX5_FLOW_TYPE_MAX);
1954 	fops = flow_get_drv_ops(type);
1955 	fops->destroy(dev, flow);
1956 }
1957 
1958 /**
1959  * Validate a flow supported by the NIC.
1960  *
1961  * @see rte_flow_validate()
1962  * @see rte_flow_ops
1963  */
1964 int
1965 mlx5_flow_validate(struct rte_eth_dev *dev,
1966 		   const struct rte_flow_attr *attr,
1967 		   const struct rte_flow_item items[],
1968 		   const struct rte_flow_action actions[],
1969 		   struct rte_flow_error *error)
1970 {
1971 	int ret;
1972 
1973 	ret = flow_drv_validate(dev, attr, items, actions, error);
1974 	if (ret < 0)
1975 		return ret;
1976 	return 0;
1977 }
1978 
1979 /**
1980  * Get RSS action from the action list.
1981  *
1982  * @param[in] actions
1983  *   Pointer to the list of actions.
1984  *
1985  * @return
1986  *   Pointer to the RSS action if exist, else return NULL.
1987  */
1988 static const struct rte_flow_action_rss*
1989 flow_get_rss_action(const struct rte_flow_action actions[])
1990 {
1991 	for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
1992 		switch (actions->type) {
1993 		case RTE_FLOW_ACTION_TYPE_RSS:
1994 			return (const struct rte_flow_action_rss *)
1995 			       actions->conf;
1996 		default:
1997 			break;
1998 		}
1999 	}
2000 	return NULL;
2001 }
2002 
2003 static unsigned int
2004 find_graph_root(const struct rte_flow_item pattern[], uint32_t rss_level)
2005 {
2006 	const struct rte_flow_item *item;
2007 	unsigned int has_vlan = 0;
2008 
2009 	for (item = pattern; item->type != RTE_FLOW_ITEM_TYPE_END; item++) {
2010 		if (item->type == RTE_FLOW_ITEM_TYPE_VLAN) {
2011 			has_vlan = 1;
2012 			break;
2013 		}
2014 	}
2015 	if (has_vlan)
2016 		return rss_level < 2 ? MLX5_EXPANSION_ROOT_ETH_VLAN :
2017 				       MLX5_EXPANSION_ROOT_OUTER_ETH_VLAN;
2018 	return rss_level < 2 ? MLX5_EXPANSION_ROOT :
2019 			       MLX5_EXPANSION_ROOT_OUTER;
2020 }
2021 
2022 /**
2023  * Create a flow and add it to @p list.
2024  *
2025  * @param dev
2026  *   Pointer to Ethernet device.
2027  * @param list
2028  *   Pointer to a TAILQ flow list.
2029  * @param[in] attr
2030  *   Flow rule attributes.
2031  * @param[in] items
2032  *   Pattern specification (list terminated by the END pattern item).
2033  * @param[in] actions
2034  *   Associated actions (list terminated by the END action).
2035  * @param[out] error
2036  *   Perform verbose error reporting if not NULL.
2037  *
2038  * @return
2039  *   A flow on success, NULL otherwise and rte_errno is set.
2040  */
2041 static struct rte_flow *
2042 flow_list_create(struct rte_eth_dev *dev, struct mlx5_flows *list,
2043 		 const struct rte_flow_attr *attr,
2044 		 const struct rte_flow_item items[],
2045 		 const struct rte_flow_action actions[],
2046 		 struct rte_flow_error *error)
2047 {
2048 	struct rte_flow *flow = NULL;
2049 	struct mlx5_flow *dev_flow;
2050 	const struct rte_flow_action_rss *rss;
2051 	union {
2052 		struct rte_flow_expand_rss buf;
2053 		uint8_t buffer[2048];
2054 	} expand_buffer;
2055 	struct rte_flow_expand_rss *buf = &expand_buffer.buf;
2056 	int ret;
2057 	uint32_t i;
2058 	uint32_t flow_size;
2059 
2060 	ret = flow_drv_validate(dev, attr, items, actions, error);
2061 	if (ret < 0)
2062 		return NULL;
2063 	flow_size = sizeof(struct rte_flow);
2064 	rss = flow_get_rss_action(actions);
2065 	if (rss)
2066 		flow_size += RTE_ALIGN_CEIL(rss->queue_num * sizeof(uint16_t),
2067 					    sizeof(void *));
2068 	else
2069 		flow_size += RTE_ALIGN_CEIL(sizeof(uint16_t), sizeof(void *));
2070 	flow = rte_calloc(__func__, 1, flow_size, 0);
2071 	flow->drv_type = flow_get_drv_type(dev, attr);
2072 	assert(flow->drv_type > MLX5_FLOW_TYPE_MIN &&
2073 	       flow->drv_type < MLX5_FLOW_TYPE_MAX);
2074 	flow->queue = (void *)(flow + 1);
2075 	LIST_INIT(&flow->dev_flows);
2076 	if (rss && rss->types) {
2077 		unsigned int graph_root;
2078 
2079 		graph_root = find_graph_root(items, rss->level);
2080 		ret = rte_flow_expand_rss(buf, sizeof(expand_buffer.buffer),
2081 					  items, rss->types,
2082 					  mlx5_support_expansion,
2083 					  graph_root);
2084 		assert(ret > 0 &&
2085 		       (unsigned int)ret < sizeof(expand_buffer.buffer));
2086 	} else {
2087 		buf->entries = 1;
2088 		buf->entry[0].pattern = (void *)(uintptr_t)items;
2089 	}
2090 	for (i = 0; i < buf->entries; ++i) {
2091 		dev_flow = flow_drv_prepare(flow, attr, buf->entry[i].pattern,
2092 					    actions, error);
2093 		if (!dev_flow)
2094 			goto error;
2095 		dev_flow->flow = flow;
2096 		LIST_INSERT_HEAD(&flow->dev_flows, dev_flow, next);
2097 		ret = flow_drv_translate(dev, dev_flow, attr,
2098 					 buf->entry[i].pattern,
2099 					 actions, error);
2100 		if (ret < 0)
2101 			goto error;
2102 	}
2103 	if (dev->data->dev_started) {
2104 		ret = flow_drv_apply(dev, flow, error);
2105 		if (ret < 0)
2106 			goto error;
2107 	}
2108 	TAILQ_INSERT_TAIL(list, flow, next);
2109 	flow_rxq_flags_set(dev, flow);
2110 	return flow;
2111 error:
2112 	ret = rte_errno; /* Save rte_errno before cleanup. */
2113 	assert(flow);
2114 	flow_drv_destroy(dev, flow);
2115 	rte_free(flow);
2116 	rte_errno = ret; /* Restore rte_errno. */
2117 	return NULL;
2118 }
2119 
2120 /**
2121  * Create a flow.
2122  *
2123  * @see rte_flow_create()
2124  * @see rte_flow_ops
2125  */
2126 struct rte_flow *
2127 mlx5_flow_create(struct rte_eth_dev *dev,
2128 		 const struct rte_flow_attr *attr,
2129 		 const struct rte_flow_item items[],
2130 		 const struct rte_flow_action actions[],
2131 		 struct rte_flow_error *error)
2132 {
2133 	struct mlx5_priv *priv = (struct mlx5_priv *)dev->data->dev_private;
2134 
2135 	return flow_list_create(dev, &priv->flows,
2136 				attr, items, actions, error);
2137 }
2138 
2139 /**
2140  * Destroy a flow in a list.
2141  *
2142  * @param dev
2143  *   Pointer to Ethernet device.
2144  * @param list
2145  *   Pointer to a TAILQ flow list.
2146  * @param[in] flow
2147  *   Flow to destroy.
2148  */
2149 static void
2150 flow_list_destroy(struct rte_eth_dev *dev, struct mlx5_flows *list,
2151 		  struct rte_flow *flow)
2152 {
2153 	/*
2154 	 * Update RX queue flags only if port is started, otherwise it is
2155 	 * already clean.
2156 	 */
2157 	if (dev->data->dev_started)
2158 		flow_rxq_flags_trim(dev, flow);
2159 	flow_drv_destroy(dev, flow);
2160 	TAILQ_REMOVE(list, flow, next);
2161 	rte_free(flow->fdir);
2162 	rte_free(flow);
2163 }
2164 
2165 /**
2166  * Destroy all flows.
2167  *
2168  * @param dev
2169  *   Pointer to Ethernet device.
2170  * @param list
2171  *   Pointer to a TAILQ flow list.
2172  */
2173 void
2174 mlx5_flow_list_flush(struct rte_eth_dev *dev, struct mlx5_flows *list)
2175 {
2176 	while (!TAILQ_EMPTY(list)) {
2177 		struct rte_flow *flow;
2178 
2179 		flow = TAILQ_FIRST(list);
2180 		flow_list_destroy(dev, list, flow);
2181 	}
2182 }
2183 
2184 /**
2185  * Remove all flows.
2186  *
2187  * @param dev
2188  *   Pointer to Ethernet device.
2189  * @param list
2190  *   Pointer to a TAILQ flow list.
2191  */
2192 void
2193 mlx5_flow_stop(struct rte_eth_dev *dev, struct mlx5_flows *list)
2194 {
2195 	struct rte_flow *flow;
2196 
2197 	TAILQ_FOREACH_REVERSE(flow, list, mlx5_flows, next)
2198 		flow_drv_remove(dev, flow);
2199 	flow_rxq_flags_clear(dev);
2200 }
2201 
2202 /**
2203  * Add all flows.
2204  *
2205  * @param dev
2206  *   Pointer to Ethernet device.
2207  * @param list
2208  *   Pointer to a TAILQ flow list.
2209  *
2210  * @return
2211  *   0 on success, a negative errno value otherwise and rte_errno is set.
2212  */
2213 int
2214 mlx5_flow_start(struct rte_eth_dev *dev, struct mlx5_flows *list)
2215 {
2216 	struct rte_flow *flow;
2217 	struct rte_flow_error error;
2218 	int ret = 0;
2219 
2220 	TAILQ_FOREACH(flow, list, next) {
2221 		ret = flow_drv_apply(dev, flow, &error);
2222 		if (ret < 0)
2223 			goto error;
2224 		flow_rxq_flags_set(dev, flow);
2225 	}
2226 	return 0;
2227 error:
2228 	ret = rte_errno; /* Save rte_errno before cleanup. */
2229 	mlx5_flow_stop(dev, list);
2230 	rte_errno = ret; /* Restore rte_errno. */
2231 	return -rte_errno;
2232 }
2233 
2234 /**
2235  * Verify the flow list is empty
2236  *
2237  * @param dev
2238  *  Pointer to Ethernet device.
2239  *
2240  * @return the number of flows not released.
2241  */
2242 int
2243 mlx5_flow_verify(struct rte_eth_dev *dev)
2244 {
2245 	struct mlx5_priv *priv = dev->data->dev_private;
2246 	struct rte_flow *flow;
2247 	int ret = 0;
2248 
2249 	TAILQ_FOREACH(flow, &priv->flows, next) {
2250 		DRV_LOG(DEBUG, "port %u flow %p still referenced",
2251 			dev->data->port_id, (void *)flow);
2252 		++ret;
2253 	}
2254 	return ret;
2255 }
2256 
2257 /**
2258  * Enable a control flow configured from the control plane.
2259  *
2260  * @param dev
2261  *   Pointer to Ethernet device.
2262  * @param eth_spec
2263  *   An Ethernet flow spec to apply.
2264  * @param eth_mask
2265  *   An Ethernet flow mask to apply.
2266  * @param vlan_spec
2267  *   A VLAN flow spec to apply.
2268  * @param vlan_mask
2269  *   A VLAN flow mask to apply.
2270  *
2271  * @return
2272  *   0 on success, a negative errno value otherwise and rte_errno is set.
2273  */
2274 int
2275 mlx5_ctrl_flow_vlan(struct rte_eth_dev *dev,
2276 		    struct rte_flow_item_eth *eth_spec,
2277 		    struct rte_flow_item_eth *eth_mask,
2278 		    struct rte_flow_item_vlan *vlan_spec,
2279 		    struct rte_flow_item_vlan *vlan_mask)
2280 {
2281 	struct mlx5_priv *priv = dev->data->dev_private;
2282 	const struct rte_flow_attr attr = {
2283 		.ingress = 1,
2284 		.priority = MLX5_FLOW_PRIO_RSVD,
2285 	};
2286 	struct rte_flow_item items[] = {
2287 		{
2288 			.type = RTE_FLOW_ITEM_TYPE_ETH,
2289 			.spec = eth_spec,
2290 			.last = NULL,
2291 			.mask = eth_mask,
2292 		},
2293 		{
2294 			.type = (vlan_spec) ? RTE_FLOW_ITEM_TYPE_VLAN :
2295 					      RTE_FLOW_ITEM_TYPE_END,
2296 			.spec = vlan_spec,
2297 			.last = NULL,
2298 			.mask = vlan_mask,
2299 		},
2300 		{
2301 			.type = RTE_FLOW_ITEM_TYPE_END,
2302 		},
2303 	};
2304 	uint16_t queue[priv->reta_idx_n];
2305 	struct rte_flow_action_rss action_rss = {
2306 		.func = RTE_ETH_HASH_FUNCTION_DEFAULT,
2307 		.level = 0,
2308 		.types = priv->rss_conf.rss_hf,
2309 		.key_len = priv->rss_conf.rss_key_len,
2310 		.queue_num = priv->reta_idx_n,
2311 		.key = priv->rss_conf.rss_key,
2312 		.queue = queue,
2313 	};
2314 	struct rte_flow_action actions[] = {
2315 		{
2316 			.type = RTE_FLOW_ACTION_TYPE_RSS,
2317 			.conf = &action_rss,
2318 		},
2319 		{
2320 			.type = RTE_FLOW_ACTION_TYPE_END,
2321 		},
2322 	};
2323 	struct rte_flow *flow;
2324 	struct rte_flow_error error;
2325 	unsigned int i;
2326 
2327 	if (!priv->reta_idx_n || !priv->rxqs_n) {
2328 		rte_errno = EINVAL;
2329 		return -rte_errno;
2330 	}
2331 	for (i = 0; i != priv->reta_idx_n; ++i)
2332 		queue[i] = (*priv->reta_idx)[i];
2333 	flow = flow_list_create(dev, &priv->ctrl_flows,
2334 				&attr, items, actions, &error);
2335 	if (!flow)
2336 		return -rte_errno;
2337 	return 0;
2338 }
2339 
2340 /**
2341  * Enable a flow control configured from the control plane.
2342  *
2343  * @param dev
2344  *   Pointer to Ethernet device.
2345  * @param eth_spec
2346  *   An Ethernet flow spec to apply.
2347  * @param eth_mask
2348  *   An Ethernet flow mask to apply.
2349  *
2350  * @return
2351  *   0 on success, a negative errno value otherwise and rte_errno is set.
2352  */
2353 int
2354 mlx5_ctrl_flow(struct rte_eth_dev *dev,
2355 	       struct rte_flow_item_eth *eth_spec,
2356 	       struct rte_flow_item_eth *eth_mask)
2357 {
2358 	return mlx5_ctrl_flow_vlan(dev, eth_spec, eth_mask, NULL, NULL);
2359 }
2360 
2361 /**
2362  * Destroy a flow.
2363  *
2364  * @see rte_flow_destroy()
2365  * @see rte_flow_ops
2366  */
2367 int
2368 mlx5_flow_destroy(struct rte_eth_dev *dev,
2369 		  struct rte_flow *flow,
2370 		  struct rte_flow_error *error __rte_unused)
2371 {
2372 	struct mlx5_priv *priv = dev->data->dev_private;
2373 
2374 	flow_list_destroy(dev, &priv->flows, flow);
2375 	return 0;
2376 }
2377 
2378 /**
2379  * Destroy all flows.
2380  *
2381  * @see rte_flow_flush()
2382  * @see rte_flow_ops
2383  */
2384 int
2385 mlx5_flow_flush(struct rte_eth_dev *dev,
2386 		struct rte_flow_error *error __rte_unused)
2387 {
2388 	struct mlx5_priv *priv = dev->data->dev_private;
2389 
2390 	mlx5_flow_list_flush(dev, &priv->flows);
2391 	return 0;
2392 }
2393 
2394 /**
2395  * Isolated mode.
2396  *
2397  * @see rte_flow_isolate()
2398  * @see rte_flow_ops
2399  */
2400 int
2401 mlx5_flow_isolate(struct rte_eth_dev *dev,
2402 		  int enable,
2403 		  struct rte_flow_error *error)
2404 {
2405 	struct mlx5_priv *priv = dev->data->dev_private;
2406 
2407 	if (dev->data->dev_started) {
2408 		rte_flow_error_set(error, EBUSY,
2409 				   RTE_FLOW_ERROR_TYPE_UNSPECIFIED,
2410 				   NULL,
2411 				   "port must be stopped first");
2412 		return -rte_errno;
2413 	}
2414 	priv->isolated = !!enable;
2415 	if (enable)
2416 		dev->dev_ops = &mlx5_dev_ops_isolate;
2417 	else
2418 		dev->dev_ops = &mlx5_dev_ops;
2419 	return 0;
2420 }
2421 
2422 /**
2423  * Query a flow.
2424  *
2425  * @see rte_flow_query()
2426  * @see rte_flow_ops
2427  */
2428 static int
2429 flow_drv_query(struct rte_eth_dev *dev,
2430 	       struct rte_flow *flow,
2431 	       const struct rte_flow_action *actions,
2432 	       void *data,
2433 	       struct rte_flow_error *error)
2434 {
2435 	const struct mlx5_flow_driver_ops *fops;
2436 	enum mlx5_flow_drv_type ftype = flow->drv_type;
2437 
2438 	assert(ftype > MLX5_FLOW_TYPE_MIN && ftype < MLX5_FLOW_TYPE_MAX);
2439 	fops = flow_get_drv_ops(ftype);
2440 
2441 	return fops->query(dev, flow, actions, data, error);
2442 }
2443 
2444 /**
2445  * Query a flow.
2446  *
2447  * @see rte_flow_query()
2448  * @see rte_flow_ops
2449  */
2450 int
2451 mlx5_flow_query(struct rte_eth_dev *dev,
2452 		struct rte_flow *flow,
2453 		const struct rte_flow_action *actions,
2454 		void *data,
2455 		struct rte_flow_error *error)
2456 {
2457 	int ret;
2458 
2459 	ret = flow_drv_query(dev, flow, actions, data, error);
2460 	if (ret < 0)
2461 		return ret;
2462 	return 0;
2463 }
2464 
2465 /**
2466  * Convert a flow director filter to a generic flow.
2467  *
2468  * @param dev
2469  *   Pointer to Ethernet device.
2470  * @param fdir_filter
2471  *   Flow director filter to add.
2472  * @param attributes
2473  *   Generic flow parameters structure.
2474  *
2475  * @return
2476  *   0 on success, a negative errno value otherwise and rte_errno is set.
2477  */
2478 static int
2479 flow_fdir_filter_convert(struct rte_eth_dev *dev,
2480 			 const struct rte_eth_fdir_filter *fdir_filter,
2481 			 struct mlx5_fdir *attributes)
2482 {
2483 	struct mlx5_priv *priv = dev->data->dev_private;
2484 	const struct rte_eth_fdir_input *input = &fdir_filter->input;
2485 	const struct rte_eth_fdir_masks *mask =
2486 		&dev->data->dev_conf.fdir_conf.mask;
2487 
2488 	/* Validate queue number. */
2489 	if (fdir_filter->action.rx_queue >= priv->rxqs_n) {
2490 		DRV_LOG(ERR, "port %u invalid queue number %d",
2491 			dev->data->port_id, fdir_filter->action.rx_queue);
2492 		rte_errno = EINVAL;
2493 		return -rte_errno;
2494 	}
2495 	attributes->attr.ingress = 1;
2496 	attributes->items[0] = (struct rte_flow_item) {
2497 		.type = RTE_FLOW_ITEM_TYPE_ETH,
2498 		.spec = &attributes->l2,
2499 		.mask = &attributes->l2_mask,
2500 	};
2501 	switch (fdir_filter->action.behavior) {
2502 	case RTE_ETH_FDIR_ACCEPT:
2503 		attributes->actions[0] = (struct rte_flow_action){
2504 			.type = RTE_FLOW_ACTION_TYPE_QUEUE,
2505 			.conf = &attributes->queue,
2506 		};
2507 		break;
2508 	case RTE_ETH_FDIR_REJECT:
2509 		attributes->actions[0] = (struct rte_flow_action){
2510 			.type = RTE_FLOW_ACTION_TYPE_DROP,
2511 		};
2512 		break;
2513 	default:
2514 		DRV_LOG(ERR, "port %u invalid behavior %d",
2515 			dev->data->port_id,
2516 			fdir_filter->action.behavior);
2517 		rte_errno = ENOTSUP;
2518 		return -rte_errno;
2519 	}
2520 	attributes->queue.index = fdir_filter->action.rx_queue;
2521 	/* Handle L3. */
2522 	switch (fdir_filter->input.flow_type) {
2523 	case RTE_ETH_FLOW_NONFRAG_IPV4_UDP:
2524 	case RTE_ETH_FLOW_NONFRAG_IPV4_TCP:
2525 	case RTE_ETH_FLOW_NONFRAG_IPV4_OTHER:
2526 		attributes->l3.ipv4.hdr = (struct ipv4_hdr){
2527 			.src_addr = input->flow.ip4_flow.src_ip,
2528 			.dst_addr = input->flow.ip4_flow.dst_ip,
2529 			.time_to_live = input->flow.ip4_flow.ttl,
2530 			.type_of_service = input->flow.ip4_flow.tos,
2531 		};
2532 		attributes->l3_mask.ipv4.hdr = (struct ipv4_hdr){
2533 			.src_addr = mask->ipv4_mask.src_ip,
2534 			.dst_addr = mask->ipv4_mask.dst_ip,
2535 			.time_to_live = mask->ipv4_mask.ttl,
2536 			.type_of_service = mask->ipv4_mask.tos,
2537 			.next_proto_id = mask->ipv4_mask.proto,
2538 		};
2539 		attributes->items[1] = (struct rte_flow_item){
2540 			.type = RTE_FLOW_ITEM_TYPE_IPV4,
2541 			.spec = &attributes->l3,
2542 			.mask = &attributes->l3_mask,
2543 		};
2544 		break;
2545 	case RTE_ETH_FLOW_NONFRAG_IPV6_UDP:
2546 	case RTE_ETH_FLOW_NONFRAG_IPV6_TCP:
2547 	case RTE_ETH_FLOW_NONFRAG_IPV6_OTHER:
2548 		attributes->l3.ipv6.hdr = (struct ipv6_hdr){
2549 			.hop_limits = input->flow.ipv6_flow.hop_limits,
2550 			.proto = input->flow.ipv6_flow.proto,
2551 		};
2552 
2553 		memcpy(attributes->l3.ipv6.hdr.src_addr,
2554 		       input->flow.ipv6_flow.src_ip,
2555 		       RTE_DIM(attributes->l3.ipv6.hdr.src_addr));
2556 		memcpy(attributes->l3.ipv6.hdr.dst_addr,
2557 		       input->flow.ipv6_flow.dst_ip,
2558 		       RTE_DIM(attributes->l3.ipv6.hdr.src_addr));
2559 		memcpy(attributes->l3_mask.ipv6.hdr.src_addr,
2560 		       mask->ipv6_mask.src_ip,
2561 		       RTE_DIM(attributes->l3_mask.ipv6.hdr.src_addr));
2562 		memcpy(attributes->l3_mask.ipv6.hdr.dst_addr,
2563 		       mask->ipv6_mask.dst_ip,
2564 		       RTE_DIM(attributes->l3_mask.ipv6.hdr.src_addr));
2565 		attributes->items[1] = (struct rte_flow_item){
2566 			.type = RTE_FLOW_ITEM_TYPE_IPV6,
2567 			.spec = &attributes->l3,
2568 			.mask = &attributes->l3_mask,
2569 		};
2570 		break;
2571 	default:
2572 		DRV_LOG(ERR, "port %u invalid flow type%d",
2573 			dev->data->port_id, fdir_filter->input.flow_type);
2574 		rte_errno = ENOTSUP;
2575 		return -rte_errno;
2576 	}
2577 	/* Handle L4. */
2578 	switch (fdir_filter->input.flow_type) {
2579 	case RTE_ETH_FLOW_NONFRAG_IPV4_UDP:
2580 		attributes->l4.udp.hdr = (struct udp_hdr){
2581 			.src_port = input->flow.udp4_flow.src_port,
2582 			.dst_port = input->flow.udp4_flow.dst_port,
2583 		};
2584 		attributes->l4_mask.udp.hdr = (struct udp_hdr){
2585 			.src_port = mask->src_port_mask,
2586 			.dst_port = mask->dst_port_mask,
2587 		};
2588 		attributes->items[2] = (struct rte_flow_item){
2589 			.type = RTE_FLOW_ITEM_TYPE_UDP,
2590 			.spec = &attributes->l4,
2591 			.mask = &attributes->l4_mask,
2592 		};
2593 		break;
2594 	case RTE_ETH_FLOW_NONFRAG_IPV4_TCP:
2595 		attributes->l4.tcp.hdr = (struct tcp_hdr){
2596 			.src_port = input->flow.tcp4_flow.src_port,
2597 			.dst_port = input->flow.tcp4_flow.dst_port,
2598 		};
2599 		attributes->l4_mask.tcp.hdr = (struct tcp_hdr){
2600 			.src_port = mask->src_port_mask,
2601 			.dst_port = mask->dst_port_mask,
2602 		};
2603 		attributes->items[2] = (struct rte_flow_item){
2604 			.type = RTE_FLOW_ITEM_TYPE_TCP,
2605 			.spec = &attributes->l4,
2606 			.mask = &attributes->l4_mask,
2607 		};
2608 		break;
2609 	case RTE_ETH_FLOW_NONFRAG_IPV6_UDP:
2610 		attributes->l4.udp.hdr = (struct udp_hdr){
2611 			.src_port = input->flow.udp6_flow.src_port,
2612 			.dst_port = input->flow.udp6_flow.dst_port,
2613 		};
2614 		attributes->l4_mask.udp.hdr = (struct udp_hdr){
2615 			.src_port = mask->src_port_mask,
2616 			.dst_port = mask->dst_port_mask,
2617 		};
2618 		attributes->items[2] = (struct rte_flow_item){
2619 			.type = RTE_FLOW_ITEM_TYPE_UDP,
2620 			.spec = &attributes->l4,
2621 			.mask = &attributes->l4_mask,
2622 		};
2623 		break;
2624 	case RTE_ETH_FLOW_NONFRAG_IPV6_TCP:
2625 		attributes->l4.tcp.hdr = (struct tcp_hdr){
2626 			.src_port = input->flow.tcp6_flow.src_port,
2627 			.dst_port = input->flow.tcp6_flow.dst_port,
2628 		};
2629 		attributes->l4_mask.tcp.hdr = (struct tcp_hdr){
2630 			.src_port = mask->src_port_mask,
2631 			.dst_port = mask->dst_port_mask,
2632 		};
2633 		attributes->items[2] = (struct rte_flow_item){
2634 			.type = RTE_FLOW_ITEM_TYPE_TCP,
2635 			.spec = &attributes->l4,
2636 			.mask = &attributes->l4_mask,
2637 		};
2638 		break;
2639 	case RTE_ETH_FLOW_NONFRAG_IPV4_OTHER:
2640 	case RTE_ETH_FLOW_NONFRAG_IPV6_OTHER:
2641 		break;
2642 	default:
2643 		DRV_LOG(ERR, "port %u invalid flow type%d",
2644 			dev->data->port_id, fdir_filter->input.flow_type);
2645 		rte_errno = ENOTSUP;
2646 		return -rte_errno;
2647 	}
2648 	return 0;
2649 }
2650 
2651 #define FLOW_FDIR_CMP(f1, f2, fld) \
2652 	memcmp(&(f1)->fld, &(f2)->fld, sizeof(f1->fld))
2653 
2654 /**
2655  * Compare two FDIR flows. If items and actions are identical, the two flows are
2656  * regarded as same.
2657  *
2658  * @param dev
2659  *   Pointer to Ethernet device.
2660  * @param f1
2661  *   FDIR flow to compare.
2662  * @param f2
2663  *   FDIR flow to compare.
2664  *
2665  * @return
2666  *   Zero on match, 1 otherwise.
2667  */
2668 static int
2669 flow_fdir_cmp(const struct mlx5_fdir *f1, const struct mlx5_fdir *f2)
2670 {
2671 	if (FLOW_FDIR_CMP(f1, f2, attr) ||
2672 	    FLOW_FDIR_CMP(f1, f2, l2) ||
2673 	    FLOW_FDIR_CMP(f1, f2, l2_mask) ||
2674 	    FLOW_FDIR_CMP(f1, f2, l3) ||
2675 	    FLOW_FDIR_CMP(f1, f2, l3_mask) ||
2676 	    FLOW_FDIR_CMP(f1, f2, l4) ||
2677 	    FLOW_FDIR_CMP(f1, f2, l4_mask) ||
2678 	    FLOW_FDIR_CMP(f1, f2, actions[0].type))
2679 		return 1;
2680 	if (f1->actions[0].type == RTE_FLOW_ACTION_TYPE_QUEUE &&
2681 	    FLOW_FDIR_CMP(f1, f2, queue))
2682 		return 1;
2683 	return 0;
2684 }
2685 
2686 /**
2687  * Search device flow list to find out a matched FDIR flow.
2688  *
2689  * @param dev
2690  *   Pointer to Ethernet device.
2691  * @param fdir_flow
2692  *   FDIR flow to lookup.
2693  *
2694  * @return
2695  *   Pointer of flow if found, NULL otherwise.
2696  */
2697 static struct rte_flow *
2698 flow_fdir_filter_lookup(struct rte_eth_dev *dev, struct mlx5_fdir *fdir_flow)
2699 {
2700 	struct mlx5_priv *priv = dev->data->dev_private;
2701 	struct rte_flow *flow = NULL;
2702 
2703 	assert(fdir_flow);
2704 	TAILQ_FOREACH(flow, &priv->flows, next) {
2705 		if (flow->fdir && !flow_fdir_cmp(flow->fdir, fdir_flow)) {
2706 			DRV_LOG(DEBUG, "port %u found FDIR flow %p",
2707 				dev->data->port_id, (void *)flow);
2708 			break;
2709 		}
2710 	}
2711 	return flow;
2712 }
2713 
2714 /**
2715  * Add new flow director filter and store it in list.
2716  *
2717  * @param dev
2718  *   Pointer to Ethernet device.
2719  * @param fdir_filter
2720  *   Flow director filter to add.
2721  *
2722  * @return
2723  *   0 on success, a negative errno value otherwise and rte_errno is set.
2724  */
2725 static int
2726 flow_fdir_filter_add(struct rte_eth_dev *dev,
2727 		     const struct rte_eth_fdir_filter *fdir_filter)
2728 {
2729 	struct mlx5_priv *priv = dev->data->dev_private;
2730 	struct mlx5_fdir *fdir_flow;
2731 	struct rte_flow *flow;
2732 	int ret;
2733 
2734 	fdir_flow = rte_zmalloc(__func__, sizeof(*fdir_flow), 0);
2735 	if (!fdir_flow) {
2736 		rte_errno = ENOMEM;
2737 		return -rte_errno;
2738 	}
2739 	ret = flow_fdir_filter_convert(dev, fdir_filter, fdir_flow);
2740 	if (ret)
2741 		goto error;
2742 	flow = flow_fdir_filter_lookup(dev, fdir_flow);
2743 	if (flow) {
2744 		rte_errno = EEXIST;
2745 		goto error;
2746 	}
2747 	flow = flow_list_create(dev, &priv->flows, &fdir_flow->attr,
2748 				fdir_flow->items, fdir_flow->actions, NULL);
2749 	if (!flow)
2750 		goto error;
2751 	assert(!flow->fdir);
2752 	flow->fdir = fdir_flow;
2753 	DRV_LOG(DEBUG, "port %u created FDIR flow %p",
2754 		dev->data->port_id, (void *)flow);
2755 	return 0;
2756 error:
2757 	rte_free(fdir_flow);
2758 	return -rte_errno;
2759 }
2760 
2761 /**
2762  * Delete specific filter.
2763  *
2764  * @param dev
2765  *   Pointer to Ethernet device.
2766  * @param fdir_filter
2767  *   Filter to be deleted.
2768  *
2769  * @return
2770  *   0 on success, a negative errno value otherwise and rte_errno is set.
2771  */
2772 static int
2773 flow_fdir_filter_delete(struct rte_eth_dev *dev,
2774 			const struct rte_eth_fdir_filter *fdir_filter)
2775 {
2776 	struct mlx5_priv *priv = dev->data->dev_private;
2777 	struct rte_flow *flow;
2778 	struct mlx5_fdir fdir_flow = {
2779 		.attr.group = 0,
2780 	};
2781 	int ret;
2782 
2783 	ret = flow_fdir_filter_convert(dev, fdir_filter, &fdir_flow);
2784 	if (ret)
2785 		return -rte_errno;
2786 	flow = flow_fdir_filter_lookup(dev, &fdir_flow);
2787 	if (!flow) {
2788 		rte_errno = ENOENT;
2789 		return -rte_errno;
2790 	}
2791 	flow_list_destroy(dev, &priv->flows, flow);
2792 	DRV_LOG(DEBUG, "port %u deleted FDIR flow %p",
2793 		dev->data->port_id, (void *)flow);
2794 	return 0;
2795 }
2796 
2797 /**
2798  * Update queue for specific filter.
2799  *
2800  * @param dev
2801  *   Pointer to Ethernet device.
2802  * @param fdir_filter
2803  *   Filter to be updated.
2804  *
2805  * @return
2806  *   0 on success, a negative errno value otherwise and rte_errno is set.
2807  */
2808 static int
2809 flow_fdir_filter_update(struct rte_eth_dev *dev,
2810 			const struct rte_eth_fdir_filter *fdir_filter)
2811 {
2812 	int ret;
2813 
2814 	ret = flow_fdir_filter_delete(dev, fdir_filter);
2815 	if (ret)
2816 		return ret;
2817 	return flow_fdir_filter_add(dev, fdir_filter);
2818 }
2819 
2820 /**
2821  * Flush all filters.
2822  *
2823  * @param dev
2824  *   Pointer to Ethernet device.
2825  */
2826 static void
2827 flow_fdir_filter_flush(struct rte_eth_dev *dev)
2828 {
2829 	struct mlx5_priv *priv = dev->data->dev_private;
2830 
2831 	mlx5_flow_list_flush(dev, &priv->flows);
2832 }
2833 
2834 /**
2835  * Get flow director information.
2836  *
2837  * @param dev
2838  *   Pointer to Ethernet device.
2839  * @param[out] fdir_info
2840  *   Resulting flow director information.
2841  */
2842 static void
2843 flow_fdir_info_get(struct rte_eth_dev *dev, struct rte_eth_fdir_info *fdir_info)
2844 {
2845 	struct rte_eth_fdir_masks *mask =
2846 		&dev->data->dev_conf.fdir_conf.mask;
2847 
2848 	fdir_info->mode = dev->data->dev_conf.fdir_conf.mode;
2849 	fdir_info->guarant_spc = 0;
2850 	rte_memcpy(&fdir_info->mask, mask, sizeof(fdir_info->mask));
2851 	fdir_info->max_flexpayload = 0;
2852 	fdir_info->flow_types_mask[0] = 0;
2853 	fdir_info->flex_payload_unit = 0;
2854 	fdir_info->max_flex_payload_segment_num = 0;
2855 	fdir_info->flex_payload_limit = 0;
2856 	memset(&fdir_info->flex_conf, 0, sizeof(fdir_info->flex_conf));
2857 }
2858 
2859 /**
2860  * Deal with flow director operations.
2861  *
2862  * @param dev
2863  *   Pointer to Ethernet device.
2864  * @param filter_op
2865  *   Operation to perform.
2866  * @param arg
2867  *   Pointer to operation-specific structure.
2868  *
2869  * @return
2870  *   0 on success, a negative errno value otherwise and rte_errno is set.
2871  */
2872 static int
2873 flow_fdir_ctrl_func(struct rte_eth_dev *dev, enum rte_filter_op filter_op,
2874 		    void *arg)
2875 {
2876 	enum rte_fdir_mode fdir_mode =
2877 		dev->data->dev_conf.fdir_conf.mode;
2878 
2879 	if (filter_op == RTE_ETH_FILTER_NOP)
2880 		return 0;
2881 	if (fdir_mode != RTE_FDIR_MODE_PERFECT &&
2882 	    fdir_mode != RTE_FDIR_MODE_PERFECT_MAC_VLAN) {
2883 		DRV_LOG(ERR, "port %u flow director mode %d not supported",
2884 			dev->data->port_id, fdir_mode);
2885 		rte_errno = EINVAL;
2886 		return -rte_errno;
2887 	}
2888 	switch (filter_op) {
2889 	case RTE_ETH_FILTER_ADD:
2890 		return flow_fdir_filter_add(dev, arg);
2891 	case RTE_ETH_FILTER_UPDATE:
2892 		return flow_fdir_filter_update(dev, arg);
2893 	case RTE_ETH_FILTER_DELETE:
2894 		return flow_fdir_filter_delete(dev, arg);
2895 	case RTE_ETH_FILTER_FLUSH:
2896 		flow_fdir_filter_flush(dev);
2897 		break;
2898 	case RTE_ETH_FILTER_INFO:
2899 		flow_fdir_info_get(dev, arg);
2900 		break;
2901 	default:
2902 		DRV_LOG(DEBUG, "port %u unknown operation %u",
2903 			dev->data->port_id, filter_op);
2904 		rte_errno = EINVAL;
2905 		return -rte_errno;
2906 	}
2907 	return 0;
2908 }
2909 
2910 /**
2911  * Manage filter operations.
2912  *
2913  * @param dev
2914  *   Pointer to Ethernet device structure.
2915  * @param filter_type
2916  *   Filter type.
2917  * @param filter_op
2918  *   Operation to perform.
2919  * @param arg
2920  *   Pointer to operation-specific structure.
2921  *
2922  * @return
2923  *   0 on success, a negative errno value otherwise and rte_errno is set.
2924  */
2925 int
2926 mlx5_dev_filter_ctrl(struct rte_eth_dev *dev,
2927 		     enum rte_filter_type filter_type,
2928 		     enum rte_filter_op filter_op,
2929 		     void *arg)
2930 {
2931 	switch (filter_type) {
2932 	case RTE_ETH_FILTER_GENERIC:
2933 		if (filter_op != RTE_ETH_FILTER_GET) {
2934 			rte_errno = EINVAL;
2935 			return -rte_errno;
2936 		}
2937 		*(const void **)arg = &mlx5_flow_ops;
2938 		return 0;
2939 	case RTE_ETH_FILTER_FDIR:
2940 		return flow_fdir_ctrl_func(dev, filter_op, arg);
2941 	default:
2942 		DRV_LOG(ERR, "port %u filter type (%d) not supported",
2943 			dev->data->port_id, filter_type);
2944 		rte_errno = ENOTSUP;
2945 		return -rte_errno;
2946 	}
2947 	return 0;
2948 }
2949