1 /* SPDX-License-Identifier: BSD-3-Clause 2 * Copyright 2015 6WIND S.A. 3 * Copyright 2015 Mellanox Technologies, Ltd 4 */ 5 6 #include <stddef.h> 7 #include <unistd.h> 8 #include <string.h> 9 #include <stdint.h> 10 #include <stdlib.h> 11 #include <errno.h> 12 13 #include <rte_malloc.h> 14 #include <ethdev_driver.h> 15 #include <ethdev_pci.h> 16 #include <rte_pci.h> 17 #include <rte_bus_pci.h> 18 #include <rte_common.h> 19 #include <rte_kvargs.h> 20 #include <rte_rwlock.h> 21 #include <rte_spinlock.h> 22 #include <rte_string_fns.h> 23 #include <rte_alarm.h> 24 #include <rte_cycles.h> 25 26 #include <mlx5_glue.h> 27 #include <mlx5_devx_cmds.h> 28 #include <mlx5_common.h> 29 #include <mlx5_common_os.h> 30 #include <mlx5_common_mp.h> 31 #include <mlx5_common_pci.h> 32 #include <mlx5_malloc.h> 33 34 #include "mlx5_defs.h" 35 #include "mlx5.h" 36 #include "mlx5_utils.h" 37 #include "mlx5_rxtx.h" 38 #include "mlx5_rx.h" 39 #include "mlx5_tx.h" 40 #include "mlx5_autoconf.h" 41 #include "mlx5_mr.h" 42 #include "mlx5_flow.h" 43 #include "mlx5_flow_os.h" 44 #include "rte_pmd_mlx5.h" 45 46 /* Device parameter to enable RX completion queue compression. */ 47 #define MLX5_RXQ_CQE_COMP_EN "rxq_cqe_comp_en" 48 49 /* Device parameter to enable padding Rx packet to cacheline size. */ 50 #define MLX5_RXQ_PKT_PAD_EN "rxq_pkt_pad_en" 51 52 /* Device parameter to enable Multi-Packet Rx queue. */ 53 #define MLX5_RX_MPRQ_EN "mprq_en" 54 55 /* Device parameter to configure log 2 of the number of strides for MPRQ. */ 56 #define MLX5_RX_MPRQ_LOG_STRIDE_NUM "mprq_log_stride_num" 57 58 /* Device parameter to configure log 2 of the stride size for MPRQ. */ 59 #define MLX5_RX_MPRQ_LOG_STRIDE_SIZE "mprq_log_stride_size" 60 61 /* Device parameter to limit the size of memcpy'd packet for MPRQ. */ 62 #define MLX5_RX_MPRQ_MAX_MEMCPY_LEN "mprq_max_memcpy_len" 63 64 /* Device parameter to set the minimum number of Rx queues to enable MPRQ. */ 65 #define MLX5_RXQS_MIN_MPRQ "rxqs_min_mprq" 66 67 /* Device parameter to configure inline send. Deprecated, ignored.*/ 68 #define MLX5_TXQ_INLINE "txq_inline" 69 70 /* Device parameter to limit packet size to inline with ordinary SEND. */ 71 #define MLX5_TXQ_INLINE_MAX "txq_inline_max" 72 73 /* Device parameter to configure minimal data size to inline. */ 74 #define MLX5_TXQ_INLINE_MIN "txq_inline_min" 75 76 /* Device parameter to limit packet size to inline with Enhanced MPW. */ 77 #define MLX5_TXQ_INLINE_MPW "txq_inline_mpw" 78 79 /* 80 * Device parameter to configure the number of TX queues threshold for 81 * enabling inline send. 82 */ 83 #define MLX5_TXQS_MIN_INLINE "txqs_min_inline" 84 85 /* 86 * Device parameter to configure the number of TX queues threshold for 87 * enabling vectorized Tx, deprecated, ignored (no vectorized Tx routines). 88 */ 89 #define MLX5_TXQS_MAX_VEC "txqs_max_vec" 90 91 /* Device parameter to enable multi-packet send WQEs. */ 92 #define MLX5_TXQ_MPW_EN "txq_mpw_en" 93 94 /* 95 * Device parameter to force doorbell register mapping 96 * to non-cahed region eliminating the extra write memory barrier. 97 */ 98 #define MLX5_TX_DB_NC "tx_db_nc" 99 100 /* 101 * Device parameter to include 2 dsegs in the title WQEBB. 102 * Deprecated, ignored. 103 */ 104 #define MLX5_TXQ_MPW_HDR_DSEG_EN "txq_mpw_hdr_dseg_en" 105 106 /* 107 * Device parameter to limit the size of inlining packet. 108 * Deprecated, ignored. 109 */ 110 #define MLX5_TXQ_MAX_INLINE_LEN "txq_max_inline_len" 111 112 /* 113 * Device parameter to enable Tx scheduling on timestamps 114 * and specify the packet pacing granularity in nanoseconds. 115 */ 116 #define MLX5_TX_PP "tx_pp" 117 118 /* 119 * Device parameter to specify skew in nanoseconds on Tx datapath, 120 * it represents the time between SQ start WQE processing and 121 * appearing actual packet data on the wire. 122 */ 123 #define MLX5_TX_SKEW "tx_skew" 124 125 /* 126 * Device parameter to enable hardware Tx vector. 127 * Deprecated, ignored (no vectorized Tx routines anymore). 128 */ 129 #define MLX5_TX_VEC_EN "tx_vec_en" 130 131 /* Device parameter to enable hardware Rx vector. */ 132 #define MLX5_RX_VEC_EN "rx_vec_en" 133 134 /* Allow L3 VXLAN flow creation. */ 135 #define MLX5_L3_VXLAN_EN "l3_vxlan_en" 136 137 /* Activate DV E-Switch flow steering. */ 138 #define MLX5_DV_ESW_EN "dv_esw_en" 139 140 /* Activate DV flow steering. */ 141 #define MLX5_DV_FLOW_EN "dv_flow_en" 142 143 /* Enable extensive flow metadata support. */ 144 #define MLX5_DV_XMETA_EN "dv_xmeta_en" 145 146 /* Device parameter to let the user manage the lacp traffic of bonded device */ 147 #define MLX5_LACP_BY_USER "lacp_by_user" 148 149 /* Activate Netlink support in VF mode. */ 150 #define MLX5_VF_NL_EN "vf_nl_en" 151 152 /* Enable extending memsegs when creating a MR. */ 153 #define MLX5_MR_EXT_MEMSEG_EN "mr_ext_memseg_en" 154 155 /* Select port representors to instantiate. */ 156 #define MLX5_REPRESENTOR "representor" 157 158 /* Device parameter to configure the maximum number of dump files per queue. */ 159 #define MLX5_MAX_DUMP_FILES_NUM "max_dump_files_num" 160 161 /* Configure timeout of LRO session (in microseconds). */ 162 #define MLX5_LRO_TIMEOUT_USEC "lro_timeout_usec" 163 164 /* 165 * Device parameter to configure the total data buffer size for a single 166 * hairpin queue (logarithm value). 167 */ 168 #define MLX5_HP_BUF_SIZE "hp_buf_log_sz" 169 170 /* Flow memory reclaim mode. */ 171 #define MLX5_RECLAIM_MEM "reclaim_mem_mode" 172 173 /* The default memory allocator used in PMD. */ 174 #define MLX5_SYS_MEM_EN "sys_mem_en" 175 /* Decap will be used or not. */ 176 #define MLX5_DECAP_EN "decap_en" 177 178 /* Shared memory between primary and secondary processes. */ 179 struct mlx5_shared_data *mlx5_shared_data; 180 181 /** Driver-specific log messages type. */ 182 int mlx5_logtype; 183 184 static LIST_HEAD(, mlx5_dev_ctx_shared) mlx5_dev_ctx_list = 185 LIST_HEAD_INITIALIZER(); 186 static pthread_mutex_t mlx5_dev_ctx_list_mutex; 187 static const struct mlx5_indexed_pool_config mlx5_ipool_cfg[] = { 188 #if defined(HAVE_IBV_FLOW_DV_SUPPORT) || !defined(HAVE_INFINIBAND_VERBS_H) 189 [MLX5_IPOOL_DECAP_ENCAP] = { 190 .size = sizeof(struct mlx5_flow_dv_encap_decap_resource), 191 .trunk_size = 64, 192 .grow_trunk = 3, 193 .grow_shift = 2, 194 .need_lock = 1, 195 .release_mem_en = 1, 196 .malloc = mlx5_malloc, 197 .free = mlx5_free, 198 .type = "mlx5_encap_decap_ipool", 199 }, 200 [MLX5_IPOOL_PUSH_VLAN] = { 201 .size = sizeof(struct mlx5_flow_dv_push_vlan_action_resource), 202 .trunk_size = 64, 203 .grow_trunk = 3, 204 .grow_shift = 2, 205 .need_lock = 1, 206 .release_mem_en = 1, 207 .malloc = mlx5_malloc, 208 .free = mlx5_free, 209 .type = "mlx5_push_vlan_ipool", 210 }, 211 [MLX5_IPOOL_TAG] = { 212 .size = sizeof(struct mlx5_flow_dv_tag_resource), 213 .trunk_size = 64, 214 .grow_trunk = 3, 215 .grow_shift = 2, 216 .need_lock = 1, 217 .release_mem_en = 1, 218 .malloc = mlx5_malloc, 219 .free = mlx5_free, 220 .type = "mlx5_tag_ipool", 221 }, 222 [MLX5_IPOOL_PORT_ID] = { 223 .size = sizeof(struct mlx5_flow_dv_port_id_action_resource), 224 .trunk_size = 64, 225 .grow_trunk = 3, 226 .grow_shift = 2, 227 .need_lock = 1, 228 .release_mem_en = 1, 229 .malloc = mlx5_malloc, 230 .free = mlx5_free, 231 .type = "mlx5_port_id_ipool", 232 }, 233 [MLX5_IPOOL_JUMP] = { 234 .size = sizeof(struct mlx5_flow_tbl_data_entry), 235 .trunk_size = 64, 236 .grow_trunk = 3, 237 .grow_shift = 2, 238 .need_lock = 1, 239 .release_mem_en = 1, 240 .malloc = mlx5_malloc, 241 .free = mlx5_free, 242 .type = "mlx5_jump_ipool", 243 }, 244 [MLX5_IPOOL_SAMPLE] = { 245 .size = sizeof(struct mlx5_flow_dv_sample_resource), 246 .trunk_size = 64, 247 .grow_trunk = 3, 248 .grow_shift = 2, 249 .need_lock = 1, 250 .release_mem_en = 1, 251 .malloc = mlx5_malloc, 252 .free = mlx5_free, 253 .type = "mlx5_sample_ipool", 254 }, 255 [MLX5_IPOOL_DEST_ARRAY] = { 256 .size = sizeof(struct mlx5_flow_dv_dest_array_resource), 257 .trunk_size = 64, 258 .grow_trunk = 3, 259 .grow_shift = 2, 260 .need_lock = 1, 261 .release_mem_en = 1, 262 .malloc = mlx5_malloc, 263 .free = mlx5_free, 264 .type = "mlx5_dest_array_ipool", 265 }, 266 [MLX5_IPOOL_TUNNEL_ID] = { 267 .size = sizeof(struct mlx5_flow_tunnel), 268 .trunk_size = MLX5_MAX_TUNNELS, 269 .need_lock = 1, 270 .release_mem_en = 1, 271 .type = "mlx5_tunnel_offload", 272 }, 273 [MLX5_IPOOL_TNL_TBL_ID] = { 274 .size = 0, 275 .need_lock = 1, 276 .type = "mlx5_flow_tnl_tbl_ipool", 277 }, 278 #endif 279 [MLX5_IPOOL_MTR] = { 280 /** 281 * The ipool index should grow continually from small to big, 282 * for meter idx, so not set grow_trunk to avoid meter index 283 * not jump continually. 284 */ 285 .size = sizeof(struct mlx5_legacy_flow_meter), 286 .trunk_size = 64, 287 .need_lock = 1, 288 .release_mem_en = 1, 289 .malloc = mlx5_malloc, 290 .free = mlx5_free, 291 .type = "mlx5_meter_ipool", 292 }, 293 [MLX5_IPOOL_MCP] = { 294 .size = sizeof(struct mlx5_flow_mreg_copy_resource), 295 .trunk_size = 64, 296 .grow_trunk = 3, 297 .grow_shift = 2, 298 .need_lock = 1, 299 .release_mem_en = 1, 300 .malloc = mlx5_malloc, 301 .free = mlx5_free, 302 .type = "mlx5_mcp_ipool", 303 }, 304 [MLX5_IPOOL_HRXQ] = { 305 .size = (sizeof(struct mlx5_hrxq) + MLX5_RSS_HASH_KEY_LEN), 306 .trunk_size = 64, 307 .grow_trunk = 3, 308 .grow_shift = 2, 309 .need_lock = 1, 310 .release_mem_en = 1, 311 .malloc = mlx5_malloc, 312 .free = mlx5_free, 313 .type = "mlx5_hrxq_ipool", 314 }, 315 [MLX5_IPOOL_MLX5_FLOW] = { 316 /* 317 * MLX5_IPOOL_MLX5_FLOW size varies for DV and VERBS flows. 318 * It set in run time according to PCI function configuration. 319 */ 320 .size = 0, 321 .trunk_size = 64, 322 .grow_trunk = 3, 323 .grow_shift = 2, 324 .need_lock = 1, 325 .release_mem_en = 1, 326 .malloc = mlx5_malloc, 327 .free = mlx5_free, 328 .type = "mlx5_flow_handle_ipool", 329 }, 330 [MLX5_IPOOL_RTE_FLOW] = { 331 .size = sizeof(struct rte_flow), 332 .trunk_size = 4096, 333 .need_lock = 1, 334 .release_mem_en = 1, 335 .malloc = mlx5_malloc, 336 .free = mlx5_free, 337 .type = "rte_flow_ipool", 338 }, 339 [MLX5_IPOOL_RSS_EXPANTION_FLOW_ID] = { 340 .size = 0, 341 .need_lock = 1, 342 .type = "mlx5_flow_rss_id_ipool", 343 }, 344 [MLX5_IPOOL_RSS_SHARED_ACTIONS] = { 345 .size = sizeof(struct mlx5_shared_action_rss), 346 .trunk_size = 64, 347 .grow_trunk = 3, 348 .grow_shift = 2, 349 .need_lock = 1, 350 .release_mem_en = 1, 351 .malloc = mlx5_malloc, 352 .free = mlx5_free, 353 .type = "mlx5_shared_action_rss", 354 }, 355 [MLX5_IPOOL_MTR_POLICY] = { 356 /** 357 * The ipool index should grow continually from small to big, 358 * for policy idx, so not set grow_trunk to avoid policy index 359 * not jump continually. 360 */ 361 .size = sizeof(struct mlx5_flow_meter_sub_policy), 362 .trunk_size = 64, 363 .need_lock = 1, 364 .release_mem_en = 1, 365 .malloc = mlx5_malloc, 366 .free = mlx5_free, 367 .type = "mlx5_meter_policy_ipool", 368 }, 369 }; 370 371 372 #define MLX5_FLOW_MIN_ID_POOL_SIZE 512 373 #define MLX5_ID_GENERATION_ARRAY_FACTOR 16 374 375 #define MLX5_FLOW_TABLE_HLIST_ARRAY_SIZE 4096 376 377 /** 378 * Decide whether representor ID is a HPF(host PF) port on BF2. 379 * 380 * @param dev 381 * Pointer to Ethernet device structure. 382 * 383 * @return 384 * Non-zero if HPF, otherwise 0. 385 */ 386 bool 387 mlx5_is_hpf(struct rte_eth_dev *dev) 388 { 389 struct mlx5_priv *priv = dev->data->dev_private; 390 uint16_t repr = MLX5_REPRESENTOR_REPR(priv->representor_id); 391 int type = MLX5_REPRESENTOR_TYPE(priv->representor_id); 392 393 return priv->representor != 0 && type == RTE_ETH_REPRESENTOR_VF && 394 MLX5_REPRESENTOR_REPR(-1) == repr; 395 } 396 397 /** 398 * Initialize the ASO aging management structure. 399 * 400 * @param[in] sh 401 * Pointer to mlx5_dev_ctx_shared object to free 402 * 403 * @return 404 * 0 on success, a negative errno value otherwise and rte_errno is set. 405 */ 406 int 407 mlx5_flow_aso_age_mng_init(struct mlx5_dev_ctx_shared *sh) 408 { 409 int err; 410 411 if (sh->aso_age_mng) 412 return 0; 413 sh->aso_age_mng = mlx5_malloc(MLX5_MEM_ZERO, sizeof(*sh->aso_age_mng), 414 RTE_CACHE_LINE_SIZE, SOCKET_ID_ANY); 415 if (!sh->aso_age_mng) { 416 DRV_LOG(ERR, "aso_age_mng allocation was failed."); 417 rte_errno = ENOMEM; 418 return -ENOMEM; 419 } 420 err = mlx5_aso_queue_init(sh, ASO_OPC_MOD_FLOW_HIT); 421 if (err) { 422 mlx5_free(sh->aso_age_mng); 423 return -1; 424 } 425 rte_spinlock_init(&sh->aso_age_mng->resize_sl); 426 rte_spinlock_init(&sh->aso_age_mng->free_sl); 427 LIST_INIT(&sh->aso_age_mng->free); 428 return 0; 429 } 430 431 /** 432 * Close and release all the resources of the ASO aging management structure. 433 * 434 * @param[in] sh 435 * Pointer to mlx5_dev_ctx_shared object to free. 436 */ 437 static void 438 mlx5_flow_aso_age_mng_close(struct mlx5_dev_ctx_shared *sh) 439 { 440 int i, j; 441 442 mlx5_aso_flow_hit_queue_poll_stop(sh); 443 mlx5_aso_queue_uninit(sh, ASO_OPC_MOD_FLOW_HIT); 444 if (sh->aso_age_mng->pools) { 445 struct mlx5_aso_age_pool *pool; 446 447 for (i = 0; i < sh->aso_age_mng->next; ++i) { 448 pool = sh->aso_age_mng->pools[i]; 449 claim_zero(mlx5_devx_cmd_destroy 450 (pool->flow_hit_aso_obj)); 451 for (j = 0; j < MLX5_COUNTERS_PER_POOL; ++j) 452 if (pool->actions[j].dr_action) 453 claim_zero 454 (mlx5_flow_os_destroy_flow_action 455 (pool->actions[j].dr_action)); 456 mlx5_free(pool); 457 } 458 mlx5_free(sh->aso_age_mng->pools); 459 } 460 mlx5_free(sh->aso_age_mng); 461 } 462 463 /** 464 * Initialize the shared aging list information per port. 465 * 466 * @param[in] sh 467 * Pointer to mlx5_dev_ctx_shared object. 468 */ 469 static void 470 mlx5_flow_aging_init(struct mlx5_dev_ctx_shared *sh) 471 { 472 uint32_t i; 473 struct mlx5_age_info *age_info; 474 475 for (i = 0; i < sh->max_port; i++) { 476 age_info = &sh->port[i].age_info; 477 age_info->flags = 0; 478 TAILQ_INIT(&age_info->aged_counters); 479 LIST_INIT(&age_info->aged_aso); 480 rte_spinlock_init(&age_info->aged_sl); 481 MLX5_AGE_SET(age_info, MLX5_AGE_TRIGGER); 482 } 483 } 484 485 /** 486 * Initialize the counters management structure. 487 * 488 * @param[in] sh 489 * Pointer to mlx5_dev_ctx_shared object to free 490 */ 491 static void 492 mlx5_flow_counters_mng_init(struct mlx5_dev_ctx_shared *sh) 493 { 494 int i; 495 496 memset(&sh->cmng, 0, sizeof(sh->cmng)); 497 TAILQ_INIT(&sh->cmng.flow_counters); 498 sh->cmng.min_id = MLX5_CNT_BATCH_OFFSET; 499 sh->cmng.max_id = -1; 500 sh->cmng.last_pool_idx = POOL_IDX_INVALID; 501 rte_spinlock_init(&sh->cmng.pool_update_sl); 502 for (i = 0; i < MLX5_COUNTER_TYPE_MAX; i++) { 503 TAILQ_INIT(&sh->cmng.counters[i]); 504 rte_spinlock_init(&sh->cmng.csl[i]); 505 } 506 } 507 508 /** 509 * Destroy all the resources allocated for a counter memory management. 510 * 511 * @param[in] mng 512 * Pointer to the memory management structure. 513 */ 514 static void 515 mlx5_flow_destroy_counter_stat_mem_mng(struct mlx5_counter_stats_mem_mng *mng) 516 { 517 uint8_t *mem = (uint8_t *)(uintptr_t)mng->raws[0].data; 518 519 LIST_REMOVE(mng, next); 520 claim_zero(mlx5_devx_cmd_destroy(mng->dm)); 521 claim_zero(mlx5_os_umem_dereg(mng->umem)); 522 mlx5_free(mem); 523 } 524 525 /** 526 * Close and release all the resources of the counters management. 527 * 528 * @param[in] sh 529 * Pointer to mlx5_dev_ctx_shared object to free. 530 */ 531 static void 532 mlx5_flow_counters_mng_close(struct mlx5_dev_ctx_shared *sh) 533 { 534 struct mlx5_counter_stats_mem_mng *mng; 535 int i, j; 536 int retries = 1024; 537 538 rte_errno = 0; 539 while (--retries) { 540 rte_eal_alarm_cancel(mlx5_flow_query_alarm, sh); 541 if (rte_errno != EINPROGRESS) 542 break; 543 rte_pause(); 544 } 545 546 if (sh->cmng.pools) { 547 struct mlx5_flow_counter_pool *pool; 548 uint16_t n_valid = sh->cmng.n_valid; 549 bool fallback = sh->cmng.counter_fallback; 550 551 for (i = 0; i < n_valid; ++i) { 552 pool = sh->cmng.pools[i]; 553 if (!fallback && pool->min_dcs) 554 claim_zero(mlx5_devx_cmd_destroy 555 (pool->min_dcs)); 556 for (j = 0; j < MLX5_COUNTERS_PER_POOL; ++j) { 557 struct mlx5_flow_counter *cnt = 558 MLX5_POOL_GET_CNT(pool, j); 559 560 if (cnt->action) 561 claim_zero 562 (mlx5_flow_os_destroy_flow_action 563 (cnt->action)); 564 if (fallback && MLX5_POOL_GET_CNT 565 (pool, j)->dcs_when_free) 566 claim_zero(mlx5_devx_cmd_destroy 567 (cnt->dcs_when_free)); 568 } 569 mlx5_free(pool); 570 } 571 mlx5_free(sh->cmng.pools); 572 } 573 mng = LIST_FIRST(&sh->cmng.mem_mngs); 574 while (mng) { 575 mlx5_flow_destroy_counter_stat_mem_mng(mng); 576 mng = LIST_FIRST(&sh->cmng.mem_mngs); 577 } 578 memset(&sh->cmng, 0, sizeof(sh->cmng)); 579 } 580 581 /** 582 * Initialize the aso flow meters management structure. 583 * 584 * @param[in] sh 585 * Pointer to mlx5_dev_ctx_shared object to free 586 */ 587 int 588 mlx5_aso_flow_mtrs_mng_init(struct mlx5_dev_ctx_shared *sh) 589 { 590 if (!sh->mtrmng) { 591 sh->mtrmng = mlx5_malloc(MLX5_MEM_ZERO, 592 sizeof(*sh->mtrmng), 593 RTE_CACHE_LINE_SIZE, SOCKET_ID_ANY); 594 if (!sh->mtrmng) { 595 DRV_LOG(ERR, 596 "meter management allocation was failed."); 597 rte_errno = ENOMEM; 598 return -ENOMEM; 599 } 600 if (sh->meter_aso_en) { 601 rte_spinlock_init(&sh->mtrmng->pools_mng.mtrsl); 602 LIST_INIT(&sh->mtrmng->pools_mng.meters); 603 sh->mtrmng->policy_idx_tbl = 604 mlx5_l3t_create(MLX5_L3T_TYPE_DWORD); 605 } 606 sh->mtrmng->def_policy_id = MLX5_INVALID_POLICY_ID; 607 } 608 return 0; 609 } 610 611 /** 612 * Close and release all the resources of 613 * the ASO flow meter management structure. 614 * 615 * @param[in] sh 616 * Pointer to mlx5_dev_ctx_shared object to free. 617 */ 618 static void 619 mlx5_aso_flow_mtrs_mng_close(struct mlx5_dev_ctx_shared *sh) 620 { 621 struct mlx5_aso_mtr_pool *mtr_pool; 622 struct mlx5_flow_mtr_mng *mtrmng = sh->mtrmng; 623 uint32_t idx; 624 #ifdef HAVE_MLX5_DR_CREATE_ACTION_ASO 625 struct mlx5_aso_mtr *aso_mtr; 626 int i; 627 #endif /* HAVE_MLX5_DR_CREATE_ACTION_ASO */ 628 629 if (sh->meter_aso_en) { 630 mlx5_aso_queue_uninit(sh, ASO_OPC_MOD_POLICER); 631 idx = mtrmng->pools_mng.n_valid; 632 while (idx--) { 633 mtr_pool = mtrmng->pools_mng.pools[idx]; 634 #ifdef HAVE_MLX5_DR_CREATE_ACTION_ASO 635 for (i = 0; i < MLX5_ASO_MTRS_PER_POOL; i++) { 636 aso_mtr = &mtr_pool->mtrs[i]; 637 if (aso_mtr->fm.meter_action) 638 claim_zero 639 (mlx5_glue->destroy_flow_action 640 (aso_mtr->fm.meter_action)); 641 } 642 #endif /* HAVE_MLX5_DR_CREATE_ACTION_ASO */ 643 claim_zero(mlx5_devx_cmd_destroy 644 (mtr_pool->devx_obj)); 645 mtrmng->pools_mng.n_valid--; 646 mlx5_free(mtr_pool); 647 } 648 mlx5_free(sh->mtrmng->pools_mng.pools); 649 } 650 mlx5_free(sh->mtrmng); 651 sh->mtrmng = NULL; 652 } 653 654 /* Send FLOW_AGED event if needed. */ 655 void 656 mlx5_age_event_prepare(struct mlx5_dev_ctx_shared *sh) 657 { 658 struct mlx5_age_info *age_info; 659 uint32_t i; 660 661 for (i = 0; i < sh->max_port; i++) { 662 age_info = &sh->port[i].age_info; 663 if (!MLX5_AGE_GET(age_info, MLX5_AGE_EVENT_NEW)) 664 continue; 665 if (MLX5_AGE_GET(age_info, MLX5_AGE_TRIGGER)) 666 rte_eth_dev_callback_process 667 (&rte_eth_devices[sh->port[i].devx_ih_port_id], 668 RTE_ETH_EVENT_FLOW_AGED, NULL); 669 age_info->flags = 0; 670 } 671 } 672 673 /** 674 * Initialize the flow resources' indexed mempool. 675 * 676 * @param[in] sh 677 * Pointer to mlx5_dev_ctx_shared object. 678 * @param[in] sh 679 * Pointer to user dev config. 680 */ 681 static void 682 mlx5_flow_ipool_create(struct mlx5_dev_ctx_shared *sh, 683 const struct mlx5_dev_config *config) 684 { 685 uint8_t i; 686 struct mlx5_indexed_pool_config cfg; 687 688 for (i = 0; i < MLX5_IPOOL_MAX; ++i) { 689 cfg = mlx5_ipool_cfg[i]; 690 switch (i) { 691 default: 692 break; 693 /* 694 * Set MLX5_IPOOL_MLX5_FLOW ipool size 695 * according to PCI function flow configuration. 696 */ 697 case MLX5_IPOOL_MLX5_FLOW: 698 cfg.size = config->dv_flow_en ? 699 sizeof(struct mlx5_flow_handle) : 700 MLX5_FLOW_HANDLE_VERBS_SIZE; 701 break; 702 } 703 if (config->reclaim_mode) 704 cfg.release_mem_en = 1; 705 sh->ipool[i] = mlx5_ipool_create(&cfg); 706 } 707 } 708 709 /** 710 * Release the flow resources' indexed mempool. 711 * 712 * @param[in] sh 713 * Pointer to mlx5_dev_ctx_shared object. 714 */ 715 static void 716 mlx5_flow_ipool_destroy(struct mlx5_dev_ctx_shared *sh) 717 { 718 uint8_t i; 719 720 for (i = 0; i < MLX5_IPOOL_MAX; ++i) 721 mlx5_ipool_destroy(sh->ipool[i]); 722 } 723 724 /* 725 * Check if dynamic flex parser for eCPRI already exists. 726 * 727 * @param dev 728 * Pointer to Ethernet device structure. 729 * 730 * @return 731 * true on exists, false on not. 732 */ 733 bool 734 mlx5_flex_parser_ecpri_exist(struct rte_eth_dev *dev) 735 { 736 struct mlx5_priv *priv = dev->data->dev_private; 737 struct mlx5_flex_parser_profiles *prf = 738 &priv->sh->fp[MLX5_FLEX_PARSER_ECPRI_0]; 739 740 return !!prf->obj; 741 } 742 743 /* 744 * Allocation of a flex parser for eCPRI. Once created, this parser related 745 * resources will be held until the device is closed. 746 * 747 * @param dev 748 * Pointer to Ethernet device structure. 749 * 750 * @return 751 * 0 on success, a negative errno value otherwise and rte_errno is set. 752 */ 753 int 754 mlx5_flex_parser_ecpri_alloc(struct rte_eth_dev *dev) 755 { 756 struct mlx5_priv *priv = dev->data->dev_private; 757 struct mlx5_flex_parser_profiles *prf = 758 &priv->sh->fp[MLX5_FLEX_PARSER_ECPRI_0]; 759 struct mlx5_devx_graph_node_attr node = { 760 .modify_field_select = 0, 761 }; 762 uint32_t ids[8]; 763 int ret; 764 765 if (!priv->config.hca_attr.parse_graph_flex_node) { 766 DRV_LOG(ERR, "Dynamic flex parser is not supported " 767 "for device %s.", priv->dev_data->name); 768 return -ENOTSUP; 769 } 770 node.header_length_mode = MLX5_GRAPH_NODE_LEN_FIXED; 771 /* 8 bytes now: 4B common header + 4B message body header. */ 772 node.header_length_base_value = 0x8; 773 /* After MAC layer: Ether / VLAN. */ 774 node.in[0].arc_parse_graph_node = MLX5_GRAPH_ARC_NODE_MAC; 775 /* Type of compared condition should be 0xAEFE in the L2 layer. */ 776 node.in[0].compare_condition_value = RTE_ETHER_TYPE_ECPRI; 777 /* Sample #0: type in common header. */ 778 node.sample[0].flow_match_sample_en = 1; 779 /* Fixed offset. */ 780 node.sample[0].flow_match_sample_offset_mode = 0x0; 781 /* Only the 2nd byte will be used. */ 782 node.sample[0].flow_match_sample_field_base_offset = 0x0; 783 /* Sample #1: message payload. */ 784 node.sample[1].flow_match_sample_en = 1; 785 /* Fixed offset. */ 786 node.sample[1].flow_match_sample_offset_mode = 0x0; 787 /* 788 * Only the first two bytes will be used right now, and its offset will 789 * start after the common header that with the length of a DW(u32). 790 */ 791 node.sample[1].flow_match_sample_field_base_offset = sizeof(uint32_t); 792 prf->obj = mlx5_devx_cmd_create_flex_parser(priv->sh->ctx, &node); 793 if (!prf->obj) { 794 DRV_LOG(ERR, "Failed to create flex parser node object."); 795 return (rte_errno == 0) ? -ENODEV : -rte_errno; 796 } 797 prf->num = 2; 798 ret = mlx5_devx_cmd_query_parse_samples(prf->obj, ids, prf->num); 799 if (ret) { 800 DRV_LOG(ERR, "Failed to query sample IDs."); 801 return (rte_errno == 0) ? -ENODEV : -rte_errno; 802 } 803 prf->offset[0] = 0x0; 804 prf->offset[1] = sizeof(uint32_t); 805 prf->ids[0] = ids[0]; 806 prf->ids[1] = ids[1]; 807 return 0; 808 } 809 810 /* 811 * Destroy the flex parser node, including the parser itself, input / output 812 * arcs and DW samples. Resources could be reused then. 813 * 814 * @param dev 815 * Pointer to Ethernet device structure. 816 */ 817 static void 818 mlx5_flex_parser_ecpri_release(struct rte_eth_dev *dev) 819 { 820 struct mlx5_priv *priv = dev->data->dev_private; 821 struct mlx5_flex_parser_profiles *prf = 822 &priv->sh->fp[MLX5_FLEX_PARSER_ECPRI_0]; 823 824 if (prf->obj) 825 mlx5_devx_cmd_destroy(prf->obj); 826 prf->obj = NULL; 827 } 828 829 /* 830 * Allocate Rx and Tx UARs in robust fashion. 831 * This routine handles the following UAR allocation issues: 832 * 833 * - tries to allocate the UAR with the most appropriate memory 834 * mapping type from the ones supported by the host 835 * 836 * - tries to allocate the UAR with non-NULL base address 837 * OFED 5.0.x and Upstream rdma_core before v29 returned the NULL as 838 * UAR base address if UAR was not the first object in the UAR page. 839 * It caused the PMD failure and we should try to get another UAR 840 * till we get the first one with non-NULL base address returned. 841 */ 842 static int 843 mlx5_alloc_rxtx_uars(struct mlx5_dev_ctx_shared *sh, 844 const struct mlx5_dev_config *config) 845 { 846 uint32_t uar_mapping, retry; 847 int err = 0; 848 void *base_addr; 849 850 for (retry = 0; retry < MLX5_ALLOC_UAR_RETRY; ++retry) { 851 #ifdef MLX5DV_UAR_ALLOC_TYPE_NC 852 /* Control the mapping type according to the settings. */ 853 uar_mapping = (config->dbnc == MLX5_TXDB_NCACHED) ? 854 MLX5DV_UAR_ALLOC_TYPE_NC : 855 MLX5DV_UAR_ALLOC_TYPE_BF; 856 #else 857 RTE_SET_USED(config); 858 /* 859 * It seems we have no way to control the memory mapping type 860 * for the UAR, the default "Write-Combining" type is supposed. 861 * The UAR initialization on queue creation queries the 862 * actual mapping type done by Verbs/kernel and setups the 863 * PMD datapath accordingly. 864 */ 865 uar_mapping = 0; 866 #endif 867 sh->tx_uar = mlx5_glue->devx_alloc_uar(sh->ctx, uar_mapping); 868 #ifdef MLX5DV_UAR_ALLOC_TYPE_NC 869 if (!sh->tx_uar && 870 uar_mapping == MLX5DV_UAR_ALLOC_TYPE_BF) { 871 if (config->dbnc == MLX5_TXDB_CACHED || 872 config->dbnc == MLX5_TXDB_HEURISTIC) 873 DRV_LOG(WARNING, "Devarg tx_db_nc setting " 874 "is not supported by DevX"); 875 /* 876 * In some environments like virtual machine 877 * the Write Combining mapped might be not supported 878 * and UAR allocation fails. We try "Non-Cached" 879 * mapping for the case. The tx_burst routines take 880 * the UAR mapping type into account on UAR setup 881 * on queue creation. 882 */ 883 DRV_LOG(DEBUG, "Failed to allocate Tx DevX UAR (BF)"); 884 uar_mapping = MLX5DV_UAR_ALLOC_TYPE_NC; 885 sh->tx_uar = mlx5_glue->devx_alloc_uar 886 (sh->ctx, uar_mapping); 887 } else if (!sh->tx_uar && 888 uar_mapping == MLX5DV_UAR_ALLOC_TYPE_NC) { 889 if (config->dbnc == MLX5_TXDB_NCACHED) 890 DRV_LOG(WARNING, "Devarg tx_db_nc settings " 891 "is not supported by DevX"); 892 /* 893 * If Verbs/kernel does not support "Non-Cached" 894 * try the "Write-Combining". 895 */ 896 DRV_LOG(DEBUG, "Failed to allocate Tx DevX UAR (NC)"); 897 uar_mapping = MLX5DV_UAR_ALLOC_TYPE_BF; 898 sh->tx_uar = mlx5_glue->devx_alloc_uar 899 (sh->ctx, uar_mapping); 900 } 901 #endif 902 if (!sh->tx_uar) { 903 DRV_LOG(ERR, "Failed to allocate Tx DevX UAR (BF/NC)"); 904 err = ENOMEM; 905 goto exit; 906 } 907 base_addr = mlx5_os_get_devx_uar_base_addr(sh->tx_uar); 908 if (base_addr) 909 break; 910 /* 911 * The UARs are allocated by rdma_core within the 912 * IB device context, on context closure all UARs 913 * will be freed, should be no memory/object leakage. 914 */ 915 DRV_LOG(DEBUG, "Retrying to allocate Tx DevX UAR"); 916 sh->tx_uar = NULL; 917 } 918 /* Check whether we finally succeeded with valid UAR allocation. */ 919 if (!sh->tx_uar) { 920 DRV_LOG(ERR, "Failed to allocate Tx DevX UAR (NULL base)"); 921 err = ENOMEM; 922 goto exit; 923 } 924 for (retry = 0; retry < MLX5_ALLOC_UAR_RETRY; ++retry) { 925 uar_mapping = 0; 926 sh->devx_rx_uar = mlx5_glue->devx_alloc_uar 927 (sh->ctx, uar_mapping); 928 #ifdef MLX5DV_UAR_ALLOC_TYPE_NC 929 if (!sh->devx_rx_uar && 930 uar_mapping == MLX5DV_UAR_ALLOC_TYPE_BF) { 931 /* 932 * Rx UAR is used to control interrupts only, 933 * should be no datapath noticeable impact, 934 * can try "Non-Cached" mapping safely. 935 */ 936 DRV_LOG(DEBUG, "Failed to allocate Rx DevX UAR (BF)"); 937 uar_mapping = MLX5DV_UAR_ALLOC_TYPE_NC; 938 sh->devx_rx_uar = mlx5_glue->devx_alloc_uar 939 (sh->ctx, uar_mapping); 940 } 941 #endif 942 if (!sh->devx_rx_uar) { 943 DRV_LOG(ERR, "Failed to allocate Rx DevX UAR (BF/NC)"); 944 err = ENOMEM; 945 goto exit; 946 } 947 base_addr = mlx5_os_get_devx_uar_base_addr(sh->devx_rx_uar); 948 if (base_addr) 949 break; 950 /* 951 * The UARs are allocated by rdma_core within the 952 * IB device context, on context closure all UARs 953 * will be freed, should be no memory/object leakage. 954 */ 955 DRV_LOG(DEBUG, "Retrying to allocate Rx DevX UAR"); 956 sh->devx_rx_uar = NULL; 957 } 958 /* Check whether we finally succeeded with valid UAR allocation. */ 959 if (!sh->devx_rx_uar) { 960 DRV_LOG(ERR, "Failed to allocate Rx DevX UAR (NULL base)"); 961 err = ENOMEM; 962 } 963 exit: 964 return err; 965 } 966 967 /** 968 * Allocate shared device context. If there is multiport device the 969 * master and representors will share this context, if there is single 970 * port dedicated device, the context will be used by only given 971 * port due to unification. 972 * 973 * Routine first searches the context for the specified device name, 974 * if found the shared context assumed and reference counter is incremented. 975 * If no context found the new one is created and initialized with specified 976 * device context and parameters. 977 * 978 * @param[in] spawn 979 * Pointer to the device attributes (name, port, etc). 980 * @param[in] config 981 * Pointer to device configuration structure. 982 * 983 * @return 984 * Pointer to mlx5_dev_ctx_shared object on success, 985 * otherwise NULL and rte_errno is set. 986 */ 987 struct mlx5_dev_ctx_shared * 988 mlx5_alloc_shared_dev_ctx(const struct mlx5_dev_spawn_data *spawn, 989 const struct mlx5_dev_config *config) 990 { 991 struct mlx5_dev_ctx_shared *sh; 992 int err = 0; 993 uint32_t i; 994 struct mlx5_devx_tis_attr tis_attr = { 0 }; 995 996 MLX5_ASSERT(spawn); 997 /* Secondary process should not create the shared context. */ 998 MLX5_ASSERT(rte_eal_process_type() == RTE_PROC_PRIMARY); 999 pthread_mutex_lock(&mlx5_dev_ctx_list_mutex); 1000 /* Search for IB context by device name. */ 1001 LIST_FOREACH(sh, &mlx5_dev_ctx_list, next) { 1002 if (!strcmp(sh->ibdev_name, 1003 mlx5_os_get_dev_device_name(spawn->phys_dev))) { 1004 sh->refcnt++; 1005 goto exit; 1006 } 1007 } 1008 /* No device found, we have to create new shared context. */ 1009 MLX5_ASSERT(spawn->max_port); 1010 sh = mlx5_malloc(MLX5_MEM_ZERO | MLX5_MEM_RTE, 1011 sizeof(struct mlx5_dev_ctx_shared) + 1012 spawn->max_port * 1013 sizeof(struct mlx5_dev_shared_port), 1014 RTE_CACHE_LINE_SIZE, SOCKET_ID_ANY); 1015 if (!sh) { 1016 DRV_LOG(ERR, "shared context allocation failure"); 1017 rte_errno = ENOMEM; 1018 goto exit; 1019 } 1020 if (spawn->bond_info) 1021 sh->bond = *spawn->bond_info; 1022 err = mlx5_os_open_device(spawn, config, sh); 1023 if (!sh->ctx) 1024 goto error; 1025 err = mlx5_os_get_dev_attr(sh->ctx, &sh->device_attr); 1026 if (err) { 1027 DRV_LOG(DEBUG, "mlx5_os_get_dev_attr() failed"); 1028 goto error; 1029 } 1030 sh->refcnt = 1; 1031 sh->max_port = spawn->max_port; 1032 strncpy(sh->ibdev_name, mlx5_os_get_ctx_device_name(sh->ctx), 1033 sizeof(sh->ibdev_name) - 1); 1034 strncpy(sh->ibdev_path, mlx5_os_get_ctx_device_path(sh->ctx), 1035 sizeof(sh->ibdev_path) - 1); 1036 /* 1037 * Setting port_id to max unallowed value means 1038 * there is no interrupt subhandler installed for 1039 * the given port index i. 1040 */ 1041 for (i = 0; i < sh->max_port; i++) { 1042 sh->port[i].ih_port_id = RTE_MAX_ETHPORTS; 1043 sh->port[i].devx_ih_port_id = RTE_MAX_ETHPORTS; 1044 } 1045 sh->pd = mlx5_os_alloc_pd(sh->ctx); 1046 if (sh->pd == NULL) { 1047 DRV_LOG(ERR, "PD allocation failure"); 1048 err = ENOMEM; 1049 goto error; 1050 } 1051 if (sh->devx) { 1052 err = mlx5_os_get_pdn(sh->pd, &sh->pdn); 1053 if (err) { 1054 DRV_LOG(ERR, "Fail to extract pdn from PD"); 1055 goto error; 1056 } 1057 sh->td = mlx5_devx_cmd_create_td(sh->ctx); 1058 if (!sh->td) { 1059 DRV_LOG(ERR, "TD allocation failure"); 1060 err = ENOMEM; 1061 goto error; 1062 } 1063 tis_attr.transport_domain = sh->td->id; 1064 sh->tis = mlx5_devx_cmd_create_tis(sh->ctx, &tis_attr); 1065 if (!sh->tis) { 1066 DRV_LOG(ERR, "TIS allocation failure"); 1067 err = ENOMEM; 1068 goto error; 1069 } 1070 err = mlx5_alloc_rxtx_uars(sh, config); 1071 if (err) 1072 goto error; 1073 MLX5_ASSERT(sh->tx_uar); 1074 MLX5_ASSERT(mlx5_os_get_devx_uar_base_addr(sh->tx_uar)); 1075 1076 MLX5_ASSERT(sh->devx_rx_uar); 1077 MLX5_ASSERT(mlx5_os_get_devx_uar_base_addr(sh->devx_rx_uar)); 1078 } 1079 #ifndef RTE_ARCH_64 1080 /* Initialize UAR access locks for 32bit implementations. */ 1081 rte_spinlock_init(&sh->uar_lock_cq); 1082 for (i = 0; i < MLX5_UAR_PAGE_NUM_MAX; i++) 1083 rte_spinlock_init(&sh->uar_lock[i]); 1084 #endif 1085 /* 1086 * Once the device is added to the list of memory event 1087 * callback, its global MR cache table cannot be expanded 1088 * on the fly because of deadlock. If it overflows, lookup 1089 * should be done by searching MR list linearly, which is slow. 1090 * 1091 * At this point the device is not added to the memory 1092 * event list yet, context is just being created. 1093 */ 1094 err = mlx5_mr_btree_init(&sh->share_cache.cache, 1095 MLX5_MR_BTREE_CACHE_N * 2, 1096 spawn->pci_dev->device.numa_node); 1097 if (err) { 1098 err = rte_errno; 1099 goto error; 1100 } 1101 mlx5_os_set_reg_mr_cb(&sh->share_cache.reg_mr_cb, 1102 &sh->share_cache.dereg_mr_cb); 1103 mlx5_os_dev_shared_handler_install(sh); 1104 sh->cnt_id_tbl = mlx5_l3t_create(MLX5_L3T_TYPE_DWORD); 1105 if (!sh->cnt_id_tbl) { 1106 err = rte_errno; 1107 goto error; 1108 } 1109 if (LIST_EMPTY(&mlx5_dev_ctx_list)) { 1110 err = mlx5_flow_os_init_workspace_once(); 1111 if (err) 1112 goto error; 1113 } 1114 mlx5_flow_aging_init(sh); 1115 mlx5_flow_counters_mng_init(sh); 1116 mlx5_flow_ipool_create(sh, config); 1117 /* Add device to memory callback list. */ 1118 rte_rwlock_write_lock(&mlx5_shared_data->mem_event_rwlock); 1119 LIST_INSERT_HEAD(&mlx5_shared_data->mem_event_cb_list, 1120 sh, mem_event_cb); 1121 rte_rwlock_write_unlock(&mlx5_shared_data->mem_event_rwlock); 1122 /* Add context to the global device list. */ 1123 LIST_INSERT_HEAD(&mlx5_dev_ctx_list, sh, next); 1124 rte_spinlock_init(&sh->geneve_tlv_opt_sl); 1125 exit: 1126 pthread_mutex_unlock(&mlx5_dev_ctx_list_mutex); 1127 return sh; 1128 error: 1129 pthread_mutex_destroy(&sh->txpp.mutex); 1130 pthread_mutex_unlock(&mlx5_dev_ctx_list_mutex); 1131 MLX5_ASSERT(sh); 1132 if (sh->cnt_id_tbl) 1133 mlx5_l3t_destroy(sh->cnt_id_tbl); 1134 if (sh->tis) 1135 claim_zero(mlx5_devx_cmd_destroy(sh->tis)); 1136 if (sh->td) 1137 claim_zero(mlx5_devx_cmd_destroy(sh->td)); 1138 if (sh->devx_rx_uar) 1139 mlx5_glue->devx_free_uar(sh->devx_rx_uar); 1140 if (sh->tx_uar) 1141 mlx5_glue->devx_free_uar(sh->tx_uar); 1142 if (sh->pd) 1143 claim_zero(mlx5_os_dealloc_pd(sh->pd)); 1144 if (sh->ctx) 1145 claim_zero(mlx5_glue->close_device(sh->ctx)); 1146 mlx5_free(sh); 1147 MLX5_ASSERT(err > 0); 1148 rte_errno = err; 1149 return NULL; 1150 } 1151 1152 /** 1153 * Free shared IB device context. Decrement counter and if zero free 1154 * all allocated resources and close handles. 1155 * 1156 * @param[in] sh 1157 * Pointer to mlx5_dev_ctx_shared object to free 1158 */ 1159 void 1160 mlx5_free_shared_dev_ctx(struct mlx5_dev_ctx_shared *sh) 1161 { 1162 pthread_mutex_lock(&mlx5_dev_ctx_list_mutex); 1163 #ifdef RTE_LIBRTE_MLX5_DEBUG 1164 /* Check the object presence in the list. */ 1165 struct mlx5_dev_ctx_shared *lctx; 1166 1167 LIST_FOREACH(lctx, &mlx5_dev_ctx_list, next) 1168 if (lctx == sh) 1169 break; 1170 MLX5_ASSERT(lctx); 1171 if (lctx != sh) { 1172 DRV_LOG(ERR, "Freeing non-existing shared IB context"); 1173 goto exit; 1174 } 1175 #endif 1176 MLX5_ASSERT(sh); 1177 MLX5_ASSERT(sh->refcnt); 1178 /* Secondary process should not free the shared context. */ 1179 MLX5_ASSERT(rte_eal_process_type() == RTE_PROC_PRIMARY); 1180 if (--sh->refcnt) 1181 goto exit; 1182 /* Remove from memory callback device list. */ 1183 rte_rwlock_write_lock(&mlx5_shared_data->mem_event_rwlock); 1184 LIST_REMOVE(sh, mem_event_cb); 1185 rte_rwlock_write_unlock(&mlx5_shared_data->mem_event_rwlock); 1186 /* Release created Memory Regions. */ 1187 mlx5_mr_release_cache(&sh->share_cache); 1188 /* Remove context from the global device list. */ 1189 LIST_REMOVE(sh, next); 1190 /* Release flow workspaces objects on the last device. */ 1191 if (LIST_EMPTY(&mlx5_dev_ctx_list)) 1192 mlx5_flow_os_release_workspace(); 1193 pthread_mutex_unlock(&mlx5_dev_ctx_list_mutex); 1194 /* 1195 * Ensure there is no async event handler installed. 1196 * Only primary process handles async device events. 1197 **/ 1198 mlx5_flow_counters_mng_close(sh); 1199 if (sh->aso_age_mng) { 1200 mlx5_flow_aso_age_mng_close(sh); 1201 sh->aso_age_mng = NULL; 1202 } 1203 if (sh->mtrmng) 1204 mlx5_aso_flow_mtrs_mng_close(sh); 1205 mlx5_flow_ipool_destroy(sh); 1206 mlx5_os_dev_shared_handler_uninstall(sh); 1207 if (sh->cnt_id_tbl) { 1208 mlx5_l3t_destroy(sh->cnt_id_tbl); 1209 sh->cnt_id_tbl = NULL; 1210 } 1211 if (sh->tx_uar) { 1212 mlx5_glue->devx_free_uar(sh->tx_uar); 1213 sh->tx_uar = NULL; 1214 } 1215 if (sh->pd) 1216 claim_zero(mlx5_os_dealloc_pd(sh->pd)); 1217 if (sh->tis) 1218 claim_zero(mlx5_devx_cmd_destroy(sh->tis)); 1219 if (sh->td) 1220 claim_zero(mlx5_devx_cmd_destroy(sh->td)); 1221 if (sh->devx_rx_uar) 1222 mlx5_glue->devx_free_uar(sh->devx_rx_uar); 1223 if (sh->ctx) 1224 claim_zero(mlx5_glue->close_device(sh->ctx)); 1225 MLX5_ASSERT(sh->geneve_tlv_option_resource == NULL); 1226 pthread_mutex_destroy(&sh->txpp.mutex); 1227 mlx5_free(sh); 1228 return; 1229 exit: 1230 pthread_mutex_unlock(&mlx5_dev_ctx_list_mutex); 1231 } 1232 1233 /** 1234 * Destroy table hash list. 1235 * 1236 * @param[in] priv 1237 * Pointer to the private device data structure. 1238 */ 1239 void 1240 mlx5_free_table_hash_list(struct mlx5_priv *priv) 1241 { 1242 struct mlx5_dev_ctx_shared *sh = priv->sh; 1243 1244 if (!sh->flow_tbls) 1245 return; 1246 mlx5_hlist_destroy(sh->flow_tbls); 1247 } 1248 1249 /** 1250 * Initialize flow table hash list and create the root tables entry 1251 * for each domain. 1252 * 1253 * @param[in] priv 1254 * Pointer to the private device data structure. 1255 * 1256 * @return 1257 * Zero on success, positive error code otherwise. 1258 */ 1259 int 1260 mlx5_alloc_table_hash_list(struct mlx5_priv *priv __rte_unused) 1261 { 1262 int err = 0; 1263 /* Tables are only used in DV and DR modes. */ 1264 #if defined(HAVE_IBV_FLOW_DV_SUPPORT) || !defined(HAVE_INFINIBAND_VERBS_H) 1265 struct mlx5_dev_ctx_shared *sh = priv->sh; 1266 char s[MLX5_HLIST_NAMESIZE]; 1267 1268 MLX5_ASSERT(sh); 1269 snprintf(s, sizeof(s), "%s_flow_table", priv->sh->ibdev_name); 1270 sh->flow_tbls = mlx5_hlist_create(s, MLX5_FLOW_TABLE_HLIST_ARRAY_SIZE, 1271 0, 0, flow_dv_tbl_create_cb, 1272 flow_dv_tbl_match_cb, 1273 flow_dv_tbl_remove_cb); 1274 if (!sh->flow_tbls) { 1275 DRV_LOG(ERR, "flow tables with hash creation failed."); 1276 err = ENOMEM; 1277 return err; 1278 } 1279 sh->flow_tbls->ctx = sh; 1280 #ifndef HAVE_MLX5DV_DR 1281 struct rte_flow_error error; 1282 struct rte_eth_dev *dev = &rte_eth_devices[priv->dev_data->port_id]; 1283 1284 /* 1285 * In case we have not DR support, the zero tables should be created 1286 * because DV expect to see them even if they cannot be created by 1287 * RDMA-CORE. 1288 */ 1289 if (!flow_dv_tbl_resource_get(dev, 0, 0, 0, 0, 1290 NULL, 0, 1, 0, &error) || 1291 !flow_dv_tbl_resource_get(dev, 0, 1, 0, 0, 1292 NULL, 0, 1, 0, &error) || 1293 !flow_dv_tbl_resource_get(dev, 0, 0, 1, 0, 1294 NULL, 0, 1, 0, &error)) { 1295 err = ENOMEM; 1296 goto error; 1297 } 1298 return err; 1299 error: 1300 mlx5_free_table_hash_list(priv); 1301 #endif /* HAVE_MLX5DV_DR */ 1302 #endif 1303 return err; 1304 } 1305 1306 /** 1307 * Retrieve integer value from environment variable. 1308 * 1309 * @param[in] name 1310 * Environment variable name. 1311 * 1312 * @return 1313 * Integer value, 0 if the variable is not set. 1314 */ 1315 int 1316 mlx5_getenv_int(const char *name) 1317 { 1318 const char *val = getenv(name); 1319 1320 if (val == NULL) 1321 return 0; 1322 return atoi(val); 1323 } 1324 1325 /** 1326 * DPDK callback to add udp tunnel port 1327 * 1328 * @param[in] dev 1329 * A pointer to eth_dev 1330 * @param[in] udp_tunnel 1331 * A pointer to udp tunnel 1332 * 1333 * @return 1334 * 0 on valid udp ports and tunnels, -ENOTSUP otherwise. 1335 */ 1336 int 1337 mlx5_udp_tunnel_port_add(struct rte_eth_dev *dev __rte_unused, 1338 struct rte_eth_udp_tunnel *udp_tunnel) 1339 { 1340 MLX5_ASSERT(udp_tunnel != NULL); 1341 if (udp_tunnel->prot_type == RTE_TUNNEL_TYPE_VXLAN && 1342 udp_tunnel->udp_port == 4789) 1343 return 0; 1344 if (udp_tunnel->prot_type == RTE_TUNNEL_TYPE_VXLAN_GPE && 1345 udp_tunnel->udp_port == 4790) 1346 return 0; 1347 return -ENOTSUP; 1348 } 1349 1350 /** 1351 * Initialize process private data structure. 1352 * 1353 * @param dev 1354 * Pointer to Ethernet device structure. 1355 * 1356 * @return 1357 * 0 on success, a negative errno value otherwise and rte_errno is set. 1358 */ 1359 int 1360 mlx5_proc_priv_init(struct rte_eth_dev *dev) 1361 { 1362 struct mlx5_priv *priv = dev->data->dev_private; 1363 struct mlx5_proc_priv *ppriv; 1364 size_t ppriv_size; 1365 1366 /* 1367 * UAR register table follows the process private structure. BlueFlame 1368 * registers for Tx queues are stored in the table. 1369 */ 1370 ppriv_size = 1371 sizeof(struct mlx5_proc_priv) + priv->txqs_n * sizeof(void *); 1372 ppriv = mlx5_malloc(MLX5_MEM_RTE | MLX5_MEM_ZERO, ppriv_size, 1373 RTE_CACHE_LINE_SIZE, dev->device->numa_node); 1374 if (!ppriv) { 1375 rte_errno = ENOMEM; 1376 return -rte_errno; 1377 } 1378 ppriv->uar_table_sz = priv->txqs_n; 1379 dev->process_private = ppriv; 1380 return 0; 1381 } 1382 1383 /** 1384 * Un-initialize process private data structure. 1385 * 1386 * @param dev 1387 * Pointer to Ethernet device structure. 1388 */ 1389 void 1390 mlx5_proc_priv_uninit(struct rte_eth_dev *dev) 1391 { 1392 if (!dev->process_private) 1393 return; 1394 mlx5_free(dev->process_private); 1395 dev->process_private = NULL; 1396 } 1397 1398 /** 1399 * DPDK callback to close the device. 1400 * 1401 * Destroy all queues and objects, free memory. 1402 * 1403 * @param dev 1404 * Pointer to Ethernet device structure. 1405 */ 1406 int 1407 mlx5_dev_close(struct rte_eth_dev *dev) 1408 { 1409 struct mlx5_priv *priv = dev->data->dev_private; 1410 unsigned int i; 1411 int ret; 1412 1413 if (rte_eal_process_type() == RTE_PROC_SECONDARY) { 1414 /* Check if process_private released. */ 1415 if (!dev->process_private) 1416 return 0; 1417 mlx5_tx_uar_uninit_secondary(dev); 1418 mlx5_proc_priv_uninit(dev); 1419 rte_eth_dev_release_port(dev); 1420 return 0; 1421 } 1422 if (!priv->sh) 1423 return 0; 1424 DRV_LOG(DEBUG, "port %u closing device \"%s\"", 1425 dev->data->port_id, 1426 ((priv->sh->ctx != NULL) ? 1427 mlx5_os_get_ctx_device_name(priv->sh->ctx) : "")); 1428 /* 1429 * If default mreg copy action is removed at the stop stage, 1430 * the search will return none and nothing will be done anymore. 1431 */ 1432 mlx5_flow_stop_default(dev); 1433 mlx5_traffic_disable(dev); 1434 /* 1435 * If all the flows are already flushed in the device stop stage, 1436 * then this will return directly without any action. 1437 */ 1438 mlx5_flow_list_flush(dev, &priv->flows, true); 1439 mlx5_action_handle_flush(dev); 1440 mlx5_flow_meter_flush(dev, NULL); 1441 /* Prevent crashes when queues are still in use. */ 1442 dev->rx_pkt_burst = removed_rx_burst; 1443 dev->tx_pkt_burst = removed_tx_burst; 1444 rte_wmb(); 1445 /* Disable datapath on secondary process. */ 1446 mlx5_mp_os_req_stop_rxtx(dev); 1447 /* Free the eCPRI flex parser resource. */ 1448 mlx5_flex_parser_ecpri_release(dev); 1449 if (priv->rxqs != NULL) { 1450 /* XXX race condition if mlx5_rx_burst() is still running. */ 1451 rte_delay_us_sleep(1000); 1452 for (i = 0; (i != priv->rxqs_n); ++i) 1453 mlx5_rxq_release(dev, i); 1454 priv->rxqs_n = 0; 1455 priv->rxqs = NULL; 1456 } 1457 if (priv->txqs != NULL) { 1458 /* XXX race condition if mlx5_tx_burst() is still running. */ 1459 rte_delay_us_sleep(1000); 1460 for (i = 0; (i != priv->txqs_n); ++i) 1461 mlx5_txq_release(dev, i); 1462 priv->txqs_n = 0; 1463 priv->txqs = NULL; 1464 } 1465 mlx5_proc_priv_uninit(dev); 1466 if (priv->q_counters) { 1467 mlx5_devx_cmd_destroy(priv->q_counters); 1468 priv->q_counters = NULL; 1469 } 1470 if (priv->drop_queue.hrxq) 1471 mlx5_drop_action_destroy(dev); 1472 if (priv->mreg_cp_tbl) 1473 mlx5_hlist_destroy(priv->mreg_cp_tbl); 1474 mlx5_mprq_free_mp(dev); 1475 mlx5_os_free_shared_dr(priv); 1476 if (priv->rss_conf.rss_key != NULL) 1477 mlx5_free(priv->rss_conf.rss_key); 1478 if (priv->reta_idx != NULL) 1479 mlx5_free(priv->reta_idx); 1480 if (priv->config.vf) 1481 mlx5_os_mac_addr_flush(dev); 1482 if (priv->nl_socket_route >= 0) 1483 close(priv->nl_socket_route); 1484 if (priv->nl_socket_rdma >= 0) 1485 close(priv->nl_socket_rdma); 1486 if (priv->vmwa_context) 1487 mlx5_vlan_vmwa_exit(priv->vmwa_context); 1488 ret = mlx5_hrxq_verify(dev); 1489 if (ret) 1490 DRV_LOG(WARNING, "port %u some hash Rx queue still remain", 1491 dev->data->port_id); 1492 ret = mlx5_ind_table_obj_verify(dev); 1493 if (ret) 1494 DRV_LOG(WARNING, "port %u some indirection table still remain", 1495 dev->data->port_id); 1496 ret = mlx5_rxq_obj_verify(dev); 1497 if (ret) 1498 DRV_LOG(WARNING, "port %u some Rx queue objects still remain", 1499 dev->data->port_id); 1500 ret = mlx5_rxq_verify(dev); 1501 if (ret) 1502 DRV_LOG(WARNING, "port %u some Rx queues still remain", 1503 dev->data->port_id); 1504 ret = mlx5_txq_obj_verify(dev); 1505 if (ret) 1506 DRV_LOG(WARNING, "port %u some Verbs Tx queue still remain", 1507 dev->data->port_id); 1508 ret = mlx5_txq_verify(dev); 1509 if (ret) 1510 DRV_LOG(WARNING, "port %u some Tx queues still remain", 1511 dev->data->port_id); 1512 ret = mlx5_flow_verify(dev); 1513 if (ret) 1514 DRV_LOG(WARNING, "port %u some flows still remain", 1515 dev->data->port_id); 1516 mlx5_cache_list_destroy(&priv->hrxqs); 1517 /* 1518 * Free the shared context in last turn, because the cleanup 1519 * routines above may use some shared fields, like 1520 * mlx5_os_mac_addr_flush() uses ibdev_path for retrieveing 1521 * ifindex if Netlink fails. 1522 */ 1523 mlx5_free_shared_dev_ctx(priv->sh); 1524 if (priv->domain_id != RTE_ETH_DEV_SWITCH_DOMAIN_ID_INVALID) { 1525 unsigned int c = 0; 1526 uint16_t port_id; 1527 1528 MLX5_ETH_FOREACH_DEV(port_id, priv->pci_dev) { 1529 struct mlx5_priv *opriv = 1530 rte_eth_devices[port_id].data->dev_private; 1531 1532 if (!opriv || 1533 opriv->domain_id != priv->domain_id || 1534 &rte_eth_devices[port_id] == dev) 1535 continue; 1536 ++c; 1537 break; 1538 } 1539 if (!c) 1540 claim_zero(rte_eth_switch_domain_free(priv->domain_id)); 1541 } 1542 memset(priv, 0, sizeof(*priv)); 1543 priv->domain_id = RTE_ETH_DEV_SWITCH_DOMAIN_ID_INVALID; 1544 /* 1545 * Reset mac_addrs to NULL such that it is not freed as part of 1546 * rte_eth_dev_release_port(). mac_addrs is part of dev_private so 1547 * it is freed when dev_private is freed. 1548 */ 1549 dev->data->mac_addrs = NULL; 1550 return 0; 1551 } 1552 1553 const struct eth_dev_ops mlx5_dev_ops = { 1554 .dev_configure = mlx5_dev_configure, 1555 .dev_start = mlx5_dev_start, 1556 .dev_stop = mlx5_dev_stop, 1557 .dev_set_link_down = mlx5_set_link_down, 1558 .dev_set_link_up = mlx5_set_link_up, 1559 .dev_close = mlx5_dev_close, 1560 .promiscuous_enable = mlx5_promiscuous_enable, 1561 .promiscuous_disable = mlx5_promiscuous_disable, 1562 .allmulticast_enable = mlx5_allmulticast_enable, 1563 .allmulticast_disable = mlx5_allmulticast_disable, 1564 .link_update = mlx5_link_update, 1565 .stats_get = mlx5_stats_get, 1566 .stats_reset = mlx5_stats_reset, 1567 .xstats_get = mlx5_xstats_get, 1568 .xstats_reset = mlx5_xstats_reset, 1569 .xstats_get_names = mlx5_xstats_get_names, 1570 .fw_version_get = mlx5_fw_version_get, 1571 .dev_infos_get = mlx5_dev_infos_get, 1572 .representor_info_get = mlx5_representor_info_get, 1573 .read_clock = mlx5_txpp_read_clock, 1574 .dev_supported_ptypes_get = mlx5_dev_supported_ptypes_get, 1575 .vlan_filter_set = mlx5_vlan_filter_set, 1576 .rx_queue_setup = mlx5_rx_queue_setup, 1577 .rx_hairpin_queue_setup = mlx5_rx_hairpin_queue_setup, 1578 .tx_queue_setup = mlx5_tx_queue_setup, 1579 .tx_hairpin_queue_setup = mlx5_tx_hairpin_queue_setup, 1580 .rx_queue_release = mlx5_rx_queue_release, 1581 .tx_queue_release = mlx5_tx_queue_release, 1582 .rx_queue_start = mlx5_rx_queue_start, 1583 .rx_queue_stop = mlx5_rx_queue_stop, 1584 .tx_queue_start = mlx5_tx_queue_start, 1585 .tx_queue_stop = mlx5_tx_queue_stop, 1586 .flow_ctrl_get = mlx5_dev_get_flow_ctrl, 1587 .flow_ctrl_set = mlx5_dev_set_flow_ctrl, 1588 .mac_addr_remove = mlx5_mac_addr_remove, 1589 .mac_addr_add = mlx5_mac_addr_add, 1590 .mac_addr_set = mlx5_mac_addr_set, 1591 .set_mc_addr_list = mlx5_set_mc_addr_list, 1592 .mtu_set = mlx5_dev_set_mtu, 1593 .vlan_strip_queue_set = mlx5_vlan_strip_queue_set, 1594 .vlan_offload_set = mlx5_vlan_offload_set, 1595 .reta_update = mlx5_dev_rss_reta_update, 1596 .reta_query = mlx5_dev_rss_reta_query, 1597 .rss_hash_update = mlx5_rss_hash_update, 1598 .rss_hash_conf_get = mlx5_rss_hash_conf_get, 1599 .flow_ops_get = mlx5_flow_ops_get, 1600 .rxq_info_get = mlx5_rxq_info_get, 1601 .txq_info_get = mlx5_txq_info_get, 1602 .rx_burst_mode_get = mlx5_rx_burst_mode_get, 1603 .tx_burst_mode_get = mlx5_tx_burst_mode_get, 1604 .rx_queue_intr_enable = mlx5_rx_intr_enable, 1605 .rx_queue_intr_disable = mlx5_rx_intr_disable, 1606 .is_removed = mlx5_is_removed, 1607 .udp_tunnel_port_add = mlx5_udp_tunnel_port_add, 1608 .get_module_info = mlx5_get_module_info, 1609 .get_module_eeprom = mlx5_get_module_eeprom, 1610 .hairpin_cap_get = mlx5_hairpin_cap_get, 1611 .mtr_ops_get = mlx5_flow_meter_ops_get, 1612 .hairpin_bind = mlx5_hairpin_bind, 1613 .hairpin_unbind = mlx5_hairpin_unbind, 1614 .hairpin_get_peer_ports = mlx5_hairpin_get_peer_ports, 1615 .hairpin_queue_peer_update = mlx5_hairpin_queue_peer_update, 1616 .hairpin_queue_peer_bind = mlx5_hairpin_queue_peer_bind, 1617 .hairpin_queue_peer_unbind = mlx5_hairpin_queue_peer_unbind, 1618 }; 1619 1620 /* Available operations from secondary process. */ 1621 const struct eth_dev_ops mlx5_dev_sec_ops = { 1622 .stats_get = mlx5_stats_get, 1623 .stats_reset = mlx5_stats_reset, 1624 .xstats_get = mlx5_xstats_get, 1625 .xstats_reset = mlx5_xstats_reset, 1626 .xstats_get_names = mlx5_xstats_get_names, 1627 .fw_version_get = mlx5_fw_version_get, 1628 .dev_infos_get = mlx5_dev_infos_get, 1629 .read_clock = mlx5_txpp_read_clock, 1630 .rx_queue_start = mlx5_rx_queue_start, 1631 .rx_queue_stop = mlx5_rx_queue_stop, 1632 .tx_queue_start = mlx5_tx_queue_start, 1633 .tx_queue_stop = mlx5_tx_queue_stop, 1634 .rxq_info_get = mlx5_rxq_info_get, 1635 .txq_info_get = mlx5_txq_info_get, 1636 .rx_burst_mode_get = mlx5_rx_burst_mode_get, 1637 .tx_burst_mode_get = mlx5_tx_burst_mode_get, 1638 .get_module_info = mlx5_get_module_info, 1639 .get_module_eeprom = mlx5_get_module_eeprom, 1640 }; 1641 1642 /* Available operations in flow isolated mode. */ 1643 const struct eth_dev_ops mlx5_dev_ops_isolate = { 1644 .dev_configure = mlx5_dev_configure, 1645 .dev_start = mlx5_dev_start, 1646 .dev_stop = mlx5_dev_stop, 1647 .dev_set_link_down = mlx5_set_link_down, 1648 .dev_set_link_up = mlx5_set_link_up, 1649 .dev_close = mlx5_dev_close, 1650 .promiscuous_enable = mlx5_promiscuous_enable, 1651 .promiscuous_disable = mlx5_promiscuous_disable, 1652 .allmulticast_enable = mlx5_allmulticast_enable, 1653 .allmulticast_disable = mlx5_allmulticast_disable, 1654 .link_update = mlx5_link_update, 1655 .stats_get = mlx5_stats_get, 1656 .stats_reset = mlx5_stats_reset, 1657 .xstats_get = mlx5_xstats_get, 1658 .xstats_reset = mlx5_xstats_reset, 1659 .xstats_get_names = mlx5_xstats_get_names, 1660 .fw_version_get = mlx5_fw_version_get, 1661 .dev_infos_get = mlx5_dev_infos_get, 1662 .read_clock = mlx5_txpp_read_clock, 1663 .dev_supported_ptypes_get = mlx5_dev_supported_ptypes_get, 1664 .vlan_filter_set = mlx5_vlan_filter_set, 1665 .rx_queue_setup = mlx5_rx_queue_setup, 1666 .rx_hairpin_queue_setup = mlx5_rx_hairpin_queue_setup, 1667 .tx_queue_setup = mlx5_tx_queue_setup, 1668 .tx_hairpin_queue_setup = mlx5_tx_hairpin_queue_setup, 1669 .rx_queue_release = mlx5_rx_queue_release, 1670 .tx_queue_release = mlx5_tx_queue_release, 1671 .rx_queue_start = mlx5_rx_queue_start, 1672 .rx_queue_stop = mlx5_rx_queue_stop, 1673 .tx_queue_start = mlx5_tx_queue_start, 1674 .tx_queue_stop = mlx5_tx_queue_stop, 1675 .flow_ctrl_get = mlx5_dev_get_flow_ctrl, 1676 .flow_ctrl_set = mlx5_dev_set_flow_ctrl, 1677 .mac_addr_remove = mlx5_mac_addr_remove, 1678 .mac_addr_add = mlx5_mac_addr_add, 1679 .mac_addr_set = mlx5_mac_addr_set, 1680 .set_mc_addr_list = mlx5_set_mc_addr_list, 1681 .mtu_set = mlx5_dev_set_mtu, 1682 .vlan_strip_queue_set = mlx5_vlan_strip_queue_set, 1683 .vlan_offload_set = mlx5_vlan_offload_set, 1684 .flow_ops_get = mlx5_flow_ops_get, 1685 .rxq_info_get = mlx5_rxq_info_get, 1686 .txq_info_get = mlx5_txq_info_get, 1687 .rx_burst_mode_get = mlx5_rx_burst_mode_get, 1688 .tx_burst_mode_get = mlx5_tx_burst_mode_get, 1689 .rx_queue_intr_enable = mlx5_rx_intr_enable, 1690 .rx_queue_intr_disable = mlx5_rx_intr_disable, 1691 .is_removed = mlx5_is_removed, 1692 .get_module_info = mlx5_get_module_info, 1693 .get_module_eeprom = mlx5_get_module_eeprom, 1694 .hairpin_cap_get = mlx5_hairpin_cap_get, 1695 .mtr_ops_get = mlx5_flow_meter_ops_get, 1696 .hairpin_bind = mlx5_hairpin_bind, 1697 .hairpin_unbind = mlx5_hairpin_unbind, 1698 .hairpin_get_peer_ports = mlx5_hairpin_get_peer_ports, 1699 .hairpin_queue_peer_update = mlx5_hairpin_queue_peer_update, 1700 .hairpin_queue_peer_bind = mlx5_hairpin_queue_peer_bind, 1701 .hairpin_queue_peer_unbind = mlx5_hairpin_queue_peer_unbind, 1702 }; 1703 1704 /** 1705 * Verify and store value for device argument. 1706 * 1707 * @param[in] key 1708 * Key argument to verify. 1709 * @param[in] val 1710 * Value associated with key. 1711 * @param opaque 1712 * User data. 1713 * 1714 * @return 1715 * 0 on success, a negative errno value otherwise and rte_errno is set. 1716 */ 1717 static int 1718 mlx5_args_check(const char *key, const char *val, void *opaque) 1719 { 1720 struct mlx5_dev_config *config = opaque; 1721 unsigned long mod; 1722 signed long tmp; 1723 1724 /* No-op, port representors are processed in mlx5_dev_spawn(). */ 1725 if (!strcmp(MLX5_REPRESENTOR, key)) 1726 return 0; 1727 errno = 0; 1728 tmp = strtol(val, NULL, 0); 1729 if (errno) { 1730 rte_errno = errno; 1731 DRV_LOG(WARNING, "%s: \"%s\" is not a valid integer", key, val); 1732 return -rte_errno; 1733 } 1734 if (tmp < 0 && strcmp(MLX5_TX_PP, key) && strcmp(MLX5_TX_SKEW, key)) { 1735 /* Negative values are acceptable for some keys only. */ 1736 rte_errno = EINVAL; 1737 DRV_LOG(WARNING, "%s: invalid negative value \"%s\"", key, val); 1738 return -rte_errno; 1739 } 1740 mod = tmp >= 0 ? tmp : -tmp; 1741 if (strcmp(MLX5_RXQ_CQE_COMP_EN, key) == 0) { 1742 if (tmp > MLX5_CQE_RESP_FORMAT_L34H_STRIDX) { 1743 DRV_LOG(ERR, "invalid CQE compression " 1744 "format parameter"); 1745 rte_errno = EINVAL; 1746 return -rte_errno; 1747 } 1748 config->cqe_comp = !!tmp; 1749 config->cqe_comp_fmt = tmp; 1750 } else if (strcmp(MLX5_RXQ_PKT_PAD_EN, key) == 0) { 1751 config->hw_padding = !!tmp; 1752 } else if (strcmp(MLX5_RX_MPRQ_EN, key) == 0) { 1753 config->mprq.enabled = !!tmp; 1754 } else if (strcmp(MLX5_RX_MPRQ_LOG_STRIDE_NUM, key) == 0) { 1755 config->mprq.stride_num_n = tmp; 1756 } else if (strcmp(MLX5_RX_MPRQ_LOG_STRIDE_SIZE, key) == 0) { 1757 config->mprq.stride_size_n = tmp; 1758 } else if (strcmp(MLX5_RX_MPRQ_MAX_MEMCPY_LEN, key) == 0) { 1759 config->mprq.max_memcpy_len = tmp; 1760 } else if (strcmp(MLX5_RXQS_MIN_MPRQ, key) == 0) { 1761 config->mprq.min_rxqs_num = tmp; 1762 } else if (strcmp(MLX5_TXQ_INLINE, key) == 0) { 1763 DRV_LOG(WARNING, "%s: deprecated parameter," 1764 " converted to txq_inline_max", key); 1765 config->txq_inline_max = tmp; 1766 } else if (strcmp(MLX5_TXQ_INLINE_MAX, key) == 0) { 1767 config->txq_inline_max = tmp; 1768 } else if (strcmp(MLX5_TXQ_INLINE_MIN, key) == 0) { 1769 config->txq_inline_min = tmp; 1770 } else if (strcmp(MLX5_TXQ_INLINE_MPW, key) == 0) { 1771 config->txq_inline_mpw = tmp; 1772 } else if (strcmp(MLX5_TXQS_MIN_INLINE, key) == 0) { 1773 config->txqs_inline = tmp; 1774 } else if (strcmp(MLX5_TXQS_MAX_VEC, key) == 0) { 1775 DRV_LOG(WARNING, "%s: deprecated parameter, ignored", key); 1776 } else if (strcmp(MLX5_TXQ_MPW_EN, key) == 0) { 1777 config->mps = !!tmp; 1778 } else if (strcmp(MLX5_TX_DB_NC, key) == 0) { 1779 if (tmp != MLX5_TXDB_CACHED && 1780 tmp != MLX5_TXDB_NCACHED && 1781 tmp != MLX5_TXDB_HEURISTIC) { 1782 DRV_LOG(ERR, "invalid Tx doorbell " 1783 "mapping parameter"); 1784 rte_errno = EINVAL; 1785 return -rte_errno; 1786 } 1787 config->dbnc = tmp; 1788 } else if (strcmp(MLX5_TXQ_MPW_HDR_DSEG_EN, key) == 0) { 1789 DRV_LOG(WARNING, "%s: deprecated parameter, ignored", key); 1790 } else if (strcmp(MLX5_TXQ_MAX_INLINE_LEN, key) == 0) { 1791 DRV_LOG(WARNING, "%s: deprecated parameter," 1792 " converted to txq_inline_mpw", key); 1793 config->txq_inline_mpw = tmp; 1794 } else if (strcmp(MLX5_TX_VEC_EN, key) == 0) { 1795 DRV_LOG(WARNING, "%s: deprecated parameter, ignored", key); 1796 } else if (strcmp(MLX5_TX_PP, key) == 0) { 1797 if (!mod) { 1798 DRV_LOG(ERR, "Zero Tx packet pacing parameter"); 1799 rte_errno = EINVAL; 1800 return -rte_errno; 1801 } 1802 config->tx_pp = tmp; 1803 } else if (strcmp(MLX5_TX_SKEW, key) == 0) { 1804 config->tx_skew = tmp; 1805 } else if (strcmp(MLX5_RX_VEC_EN, key) == 0) { 1806 config->rx_vec_en = !!tmp; 1807 } else if (strcmp(MLX5_L3_VXLAN_EN, key) == 0) { 1808 config->l3_vxlan_en = !!tmp; 1809 } else if (strcmp(MLX5_VF_NL_EN, key) == 0) { 1810 config->vf_nl_en = !!tmp; 1811 } else if (strcmp(MLX5_DV_ESW_EN, key) == 0) { 1812 config->dv_esw_en = !!tmp; 1813 } else if (strcmp(MLX5_DV_FLOW_EN, key) == 0) { 1814 config->dv_flow_en = !!tmp; 1815 } else if (strcmp(MLX5_DV_XMETA_EN, key) == 0) { 1816 if (tmp != MLX5_XMETA_MODE_LEGACY && 1817 tmp != MLX5_XMETA_MODE_META16 && 1818 tmp != MLX5_XMETA_MODE_META32 && 1819 tmp != MLX5_XMETA_MODE_MISS_INFO) { 1820 DRV_LOG(ERR, "invalid extensive " 1821 "metadata parameter"); 1822 rte_errno = EINVAL; 1823 return -rte_errno; 1824 } 1825 if (tmp != MLX5_XMETA_MODE_MISS_INFO) 1826 config->dv_xmeta_en = tmp; 1827 else 1828 config->dv_miss_info = 1; 1829 } else if (strcmp(MLX5_LACP_BY_USER, key) == 0) { 1830 config->lacp_by_user = !!tmp; 1831 } else if (strcmp(MLX5_MR_EXT_MEMSEG_EN, key) == 0) { 1832 config->mr_ext_memseg_en = !!tmp; 1833 } else if (strcmp(MLX5_MAX_DUMP_FILES_NUM, key) == 0) { 1834 config->max_dump_files_num = tmp; 1835 } else if (strcmp(MLX5_LRO_TIMEOUT_USEC, key) == 0) { 1836 config->lro.timeout = tmp; 1837 } else if (strcmp(MLX5_CLASS_ARG_NAME, key) == 0) { 1838 DRV_LOG(DEBUG, "class argument is %s.", val); 1839 } else if (strcmp(MLX5_HP_BUF_SIZE, key) == 0) { 1840 config->log_hp_size = tmp; 1841 } else if (strcmp(MLX5_RECLAIM_MEM, key) == 0) { 1842 if (tmp != MLX5_RCM_NONE && 1843 tmp != MLX5_RCM_LIGHT && 1844 tmp != MLX5_RCM_AGGR) { 1845 DRV_LOG(ERR, "Unrecognize %s: \"%s\"", key, val); 1846 rte_errno = EINVAL; 1847 return -rte_errno; 1848 } 1849 config->reclaim_mode = tmp; 1850 } else if (strcmp(MLX5_SYS_MEM_EN, key) == 0) { 1851 config->sys_mem_en = !!tmp; 1852 } else if (strcmp(MLX5_DECAP_EN, key) == 0) { 1853 config->decap_en = !!tmp; 1854 } else { 1855 DRV_LOG(WARNING, "%s: unknown parameter", key); 1856 rte_errno = EINVAL; 1857 return -rte_errno; 1858 } 1859 return 0; 1860 } 1861 1862 /** 1863 * Parse device parameters. 1864 * 1865 * @param config 1866 * Pointer to device configuration structure. 1867 * @param devargs 1868 * Device arguments structure. 1869 * 1870 * @return 1871 * 0 on success, a negative errno value otherwise and rte_errno is set. 1872 */ 1873 int 1874 mlx5_args(struct mlx5_dev_config *config, struct rte_devargs *devargs) 1875 { 1876 const char **params = (const char *[]){ 1877 MLX5_RXQ_CQE_COMP_EN, 1878 MLX5_RXQ_PKT_PAD_EN, 1879 MLX5_RX_MPRQ_EN, 1880 MLX5_RX_MPRQ_LOG_STRIDE_NUM, 1881 MLX5_RX_MPRQ_LOG_STRIDE_SIZE, 1882 MLX5_RX_MPRQ_MAX_MEMCPY_LEN, 1883 MLX5_RXQS_MIN_MPRQ, 1884 MLX5_TXQ_INLINE, 1885 MLX5_TXQ_INLINE_MIN, 1886 MLX5_TXQ_INLINE_MAX, 1887 MLX5_TXQ_INLINE_MPW, 1888 MLX5_TXQS_MIN_INLINE, 1889 MLX5_TXQS_MAX_VEC, 1890 MLX5_TXQ_MPW_EN, 1891 MLX5_TXQ_MPW_HDR_DSEG_EN, 1892 MLX5_TXQ_MAX_INLINE_LEN, 1893 MLX5_TX_DB_NC, 1894 MLX5_TX_PP, 1895 MLX5_TX_SKEW, 1896 MLX5_TX_VEC_EN, 1897 MLX5_RX_VEC_EN, 1898 MLX5_L3_VXLAN_EN, 1899 MLX5_VF_NL_EN, 1900 MLX5_DV_ESW_EN, 1901 MLX5_DV_FLOW_EN, 1902 MLX5_DV_XMETA_EN, 1903 MLX5_LACP_BY_USER, 1904 MLX5_MR_EXT_MEMSEG_EN, 1905 MLX5_REPRESENTOR, 1906 MLX5_MAX_DUMP_FILES_NUM, 1907 MLX5_LRO_TIMEOUT_USEC, 1908 MLX5_CLASS_ARG_NAME, 1909 MLX5_HP_BUF_SIZE, 1910 MLX5_RECLAIM_MEM, 1911 MLX5_SYS_MEM_EN, 1912 MLX5_DECAP_EN, 1913 NULL, 1914 }; 1915 struct rte_kvargs *kvlist; 1916 int ret = 0; 1917 int i; 1918 1919 if (devargs == NULL) 1920 return 0; 1921 /* Following UGLY cast is done to pass checkpatch. */ 1922 kvlist = rte_kvargs_parse(devargs->args, params); 1923 if (kvlist == NULL) { 1924 rte_errno = EINVAL; 1925 return -rte_errno; 1926 } 1927 /* Process parameters. */ 1928 for (i = 0; (params[i] != NULL); ++i) { 1929 if (rte_kvargs_count(kvlist, params[i])) { 1930 ret = rte_kvargs_process(kvlist, params[i], 1931 mlx5_args_check, config); 1932 if (ret) { 1933 rte_errno = EINVAL; 1934 rte_kvargs_free(kvlist); 1935 return -rte_errno; 1936 } 1937 } 1938 } 1939 rte_kvargs_free(kvlist); 1940 return 0; 1941 } 1942 1943 /** 1944 * Configures the minimal amount of data to inline into WQE 1945 * while sending packets. 1946 * 1947 * - the txq_inline_min has the maximal priority, if this 1948 * key is specified in devargs 1949 * - if DevX is enabled the inline mode is queried from the 1950 * device (HCA attributes and NIC vport context if needed). 1951 * - otherwise L2 mode (18 bytes) is assumed for ConnectX-4/4 Lx 1952 * and none (0 bytes) for other NICs 1953 * 1954 * @param spawn 1955 * Verbs device parameters (name, port, switch_info) to spawn. 1956 * @param config 1957 * Device configuration parameters. 1958 */ 1959 void 1960 mlx5_set_min_inline(struct mlx5_dev_spawn_data *spawn, 1961 struct mlx5_dev_config *config) 1962 { 1963 if (config->txq_inline_min != MLX5_ARG_UNSET) { 1964 /* Application defines size of inlined data explicitly. */ 1965 switch (spawn->pci_dev->id.device_id) { 1966 case PCI_DEVICE_ID_MELLANOX_CONNECTX4: 1967 case PCI_DEVICE_ID_MELLANOX_CONNECTX4VF: 1968 if (config->txq_inline_min < 1969 (int)MLX5_INLINE_HSIZE_L2) { 1970 DRV_LOG(DEBUG, 1971 "txq_inline_mix aligned to minimal" 1972 " ConnectX-4 required value %d", 1973 (int)MLX5_INLINE_HSIZE_L2); 1974 config->txq_inline_min = MLX5_INLINE_HSIZE_L2; 1975 } 1976 break; 1977 } 1978 goto exit; 1979 } 1980 if (config->hca_attr.eth_net_offloads) { 1981 /* We have DevX enabled, inline mode queried successfully. */ 1982 switch (config->hca_attr.wqe_inline_mode) { 1983 case MLX5_CAP_INLINE_MODE_L2: 1984 /* outer L2 header must be inlined. */ 1985 config->txq_inline_min = MLX5_INLINE_HSIZE_L2; 1986 goto exit; 1987 case MLX5_CAP_INLINE_MODE_NOT_REQUIRED: 1988 /* No inline data are required by NIC. */ 1989 config->txq_inline_min = MLX5_INLINE_HSIZE_NONE; 1990 config->hw_vlan_insert = 1991 config->hca_attr.wqe_vlan_insert; 1992 DRV_LOG(DEBUG, "Tx VLAN insertion is supported"); 1993 goto exit; 1994 case MLX5_CAP_INLINE_MODE_VPORT_CONTEXT: 1995 /* inline mode is defined by NIC vport context. */ 1996 if (!config->hca_attr.eth_virt) 1997 break; 1998 switch (config->hca_attr.vport_inline_mode) { 1999 case MLX5_INLINE_MODE_NONE: 2000 config->txq_inline_min = 2001 MLX5_INLINE_HSIZE_NONE; 2002 goto exit; 2003 case MLX5_INLINE_MODE_L2: 2004 config->txq_inline_min = 2005 MLX5_INLINE_HSIZE_L2; 2006 goto exit; 2007 case MLX5_INLINE_MODE_IP: 2008 config->txq_inline_min = 2009 MLX5_INLINE_HSIZE_L3; 2010 goto exit; 2011 case MLX5_INLINE_MODE_TCP_UDP: 2012 config->txq_inline_min = 2013 MLX5_INLINE_HSIZE_L4; 2014 goto exit; 2015 case MLX5_INLINE_MODE_INNER_L2: 2016 config->txq_inline_min = 2017 MLX5_INLINE_HSIZE_INNER_L2; 2018 goto exit; 2019 case MLX5_INLINE_MODE_INNER_IP: 2020 config->txq_inline_min = 2021 MLX5_INLINE_HSIZE_INNER_L3; 2022 goto exit; 2023 case MLX5_INLINE_MODE_INNER_TCP_UDP: 2024 config->txq_inline_min = 2025 MLX5_INLINE_HSIZE_INNER_L4; 2026 goto exit; 2027 } 2028 } 2029 } 2030 /* 2031 * We get here if we are unable to deduce 2032 * inline data size with DevX. Try PCI ID 2033 * to determine old NICs. 2034 */ 2035 switch (spawn->pci_dev->id.device_id) { 2036 case PCI_DEVICE_ID_MELLANOX_CONNECTX4: 2037 case PCI_DEVICE_ID_MELLANOX_CONNECTX4VF: 2038 case PCI_DEVICE_ID_MELLANOX_CONNECTX4LX: 2039 case PCI_DEVICE_ID_MELLANOX_CONNECTX4LXVF: 2040 config->txq_inline_min = MLX5_INLINE_HSIZE_L2; 2041 config->hw_vlan_insert = 0; 2042 break; 2043 case PCI_DEVICE_ID_MELLANOX_CONNECTX5: 2044 case PCI_DEVICE_ID_MELLANOX_CONNECTX5VF: 2045 case PCI_DEVICE_ID_MELLANOX_CONNECTX5EX: 2046 case PCI_DEVICE_ID_MELLANOX_CONNECTX5EXVF: 2047 /* 2048 * These NICs support VLAN insertion from WQE and 2049 * report the wqe_vlan_insert flag. But there is the bug 2050 * and PFC control may be broken, so disable feature. 2051 */ 2052 config->hw_vlan_insert = 0; 2053 config->txq_inline_min = MLX5_INLINE_HSIZE_NONE; 2054 break; 2055 default: 2056 config->txq_inline_min = MLX5_INLINE_HSIZE_NONE; 2057 break; 2058 } 2059 exit: 2060 DRV_LOG(DEBUG, "min tx inline configured: %d", config->txq_inline_min); 2061 } 2062 2063 /** 2064 * Configures the metadata mask fields in the shared context. 2065 * 2066 * @param [in] dev 2067 * Pointer to Ethernet device. 2068 */ 2069 void 2070 mlx5_set_metadata_mask(struct rte_eth_dev *dev) 2071 { 2072 struct mlx5_priv *priv = dev->data->dev_private; 2073 struct mlx5_dev_ctx_shared *sh = priv->sh; 2074 uint32_t meta, mark, reg_c0; 2075 2076 reg_c0 = ~priv->vport_meta_mask; 2077 switch (priv->config.dv_xmeta_en) { 2078 case MLX5_XMETA_MODE_LEGACY: 2079 meta = UINT32_MAX; 2080 mark = MLX5_FLOW_MARK_MASK; 2081 break; 2082 case MLX5_XMETA_MODE_META16: 2083 meta = reg_c0 >> rte_bsf32(reg_c0); 2084 mark = MLX5_FLOW_MARK_MASK; 2085 break; 2086 case MLX5_XMETA_MODE_META32: 2087 meta = UINT32_MAX; 2088 mark = (reg_c0 >> rte_bsf32(reg_c0)) & MLX5_FLOW_MARK_MASK; 2089 break; 2090 default: 2091 meta = 0; 2092 mark = 0; 2093 MLX5_ASSERT(false); 2094 break; 2095 } 2096 if (sh->dv_mark_mask && sh->dv_mark_mask != mark) 2097 DRV_LOG(WARNING, "metadata MARK mask mismatche %08X:%08X", 2098 sh->dv_mark_mask, mark); 2099 else 2100 sh->dv_mark_mask = mark; 2101 if (sh->dv_meta_mask && sh->dv_meta_mask != meta) 2102 DRV_LOG(WARNING, "metadata META mask mismatche %08X:%08X", 2103 sh->dv_meta_mask, meta); 2104 else 2105 sh->dv_meta_mask = meta; 2106 if (sh->dv_regc0_mask && sh->dv_regc0_mask != reg_c0) 2107 DRV_LOG(WARNING, "metadata reg_c0 mask mismatche %08X:%08X", 2108 sh->dv_meta_mask, reg_c0); 2109 else 2110 sh->dv_regc0_mask = reg_c0; 2111 DRV_LOG(DEBUG, "metadata mode %u", priv->config.dv_xmeta_en); 2112 DRV_LOG(DEBUG, "metadata MARK mask %08X", sh->dv_mark_mask); 2113 DRV_LOG(DEBUG, "metadata META mask %08X", sh->dv_meta_mask); 2114 DRV_LOG(DEBUG, "metadata reg_c0 mask %08X", sh->dv_regc0_mask); 2115 } 2116 2117 int 2118 rte_pmd_mlx5_get_dyn_flag_names(char *names[], unsigned int n) 2119 { 2120 static const char *const dynf_names[] = { 2121 RTE_PMD_MLX5_FINE_GRANULARITY_INLINE, 2122 RTE_MBUF_DYNFLAG_METADATA_NAME, 2123 RTE_MBUF_DYNFLAG_TX_TIMESTAMP_NAME 2124 }; 2125 unsigned int i; 2126 2127 if (n < RTE_DIM(dynf_names)) 2128 return -ENOMEM; 2129 for (i = 0; i < RTE_DIM(dynf_names); i++) { 2130 if (names[i] == NULL) 2131 return -EINVAL; 2132 strcpy(names[i], dynf_names[i]); 2133 } 2134 return RTE_DIM(dynf_names); 2135 } 2136 2137 /** 2138 * Comparison callback to sort device data. 2139 * 2140 * This is meant to be used with qsort(). 2141 * 2142 * @param a[in] 2143 * Pointer to pointer to first data object. 2144 * @param b[in] 2145 * Pointer to pointer to second data object. 2146 * 2147 * @return 2148 * 0 if both objects are equal, less than 0 if the first argument is less 2149 * than the second, greater than 0 otherwise. 2150 */ 2151 int 2152 mlx5_dev_check_sibling_config(struct mlx5_priv *priv, 2153 struct mlx5_dev_config *config) 2154 { 2155 struct mlx5_dev_ctx_shared *sh = priv->sh; 2156 struct mlx5_dev_config *sh_conf = NULL; 2157 uint16_t port_id; 2158 2159 MLX5_ASSERT(sh); 2160 /* Nothing to compare for the single/first device. */ 2161 if (sh->refcnt == 1) 2162 return 0; 2163 /* Find the device with shared context. */ 2164 MLX5_ETH_FOREACH_DEV(port_id, priv->pci_dev) { 2165 struct mlx5_priv *opriv = 2166 rte_eth_devices[port_id].data->dev_private; 2167 2168 if (opriv && opriv != priv && opriv->sh == sh) { 2169 sh_conf = &opriv->config; 2170 break; 2171 } 2172 } 2173 if (!sh_conf) 2174 return 0; 2175 if (sh_conf->dv_flow_en ^ config->dv_flow_en) { 2176 DRV_LOG(ERR, "\"dv_flow_en\" configuration mismatch" 2177 " for shared %s context", sh->ibdev_name); 2178 rte_errno = EINVAL; 2179 return rte_errno; 2180 } 2181 if (sh_conf->dv_xmeta_en ^ config->dv_xmeta_en) { 2182 DRV_LOG(ERR, "\"dv_xmeta_en\" configuration mismatch" 2183 " for shared %s context", sh->ibdev_name); 2184 rte_errno = EINVAL; 2185 return rte_errno; 2186 } 2187 return 0; 2188 } 2189 2190 /** 2191 * Look for the ethernet device belonging to mlx5 driver. 2192 * 2193 * @param[in] port_id 2194 * port_id to start looking for device. 2195 * @param[in] pci_dev 2196 * Pointer to the hint PCI device. When device is being probed 2197 * the its siblings (master and preceding representors might 2198 * not have assigned driver yet (because the mlx5_os_pci_probe() 2199 * is not completed yet, for this case match on hint PCI 2200 * device may be used to detect sibling device. 2201 * 2202 * @return 2203 * port_id of found device, RTE_MAX_ETHPORT if not found. 2204 */ 2205 uint16_t 2206 mlx5_eth_find_next(uint16_t port_id, struct rte_pci_device *pci_dev) 2207 { 2208 while (port_id < RTE_MAX_ETHPORTS) { 2209 struct rte_eth_dev *dev = &rte_eth_devices[port_id]; 2210 2211 if (dev->state != RTE_ETH_DEV_UNUSED && 2212 dev->device && 2213 (dev->device == &pci_dev->device || 2214 (dev->device->driver && 2215 dev->device->driver->name && 2216 !strcmp(dev->device->driver->name, MLX5_PCI_DRIVER_NAME)))) 2217 break; 2218 port_id++; 2219 } 2220 if (port_id >= RTE_MAX_ETHPORTS) 2221 return RTE_MAX_ETHPORTS; 2222 return port_id; 2223 } 2224 2225 /** 2226 * DPDK callback to remove a PCI device. 2227 * 2228 * This function removes all Ethernet devices belong to a given PCI device. 2229 * 2230 * @param[in] pci_dev 2231 * Pointer to the PCI device. 2232 * 2233 * @return 2234 * 0 on success, the function cannot fail. 2235 */ 2236 static int 2237 mlx5_pci_remove(struct rte_pci_device *pci_dev) 2238 { 2239 uint16_t port_id; 2240 int ret = 0; 2241 2242 RTE_ETH_FOREACH_DEV_OF(port_id, &pci_dev->device) { 2243 /* 2244 * mlx5_dev_close() is not registered to secondary process, 2245 * call the close function explicitly for secondary process. 2246 */ 2247 if (rte_eal_process_type() == RTE_PROC_SECONDARY) 2248 ret |= mlx5_dev_close(&rte_eth_devices[port_id]); 2249 else 2250 ret |= rte_eth_dev_close(port_id); 2251 } 2252 return ret == 0 ? 0 : -EIO; 2253 } 2254 2255 static const struct rte_pci_id mlx5_pci_id_map[] = { 2256 { 2257 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2258 PCI_DEVICE_ID_MELLANOX_CONNECTX4) 2259 }, 2260 { 2261 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2262 PCI_DEVICE_ID_MELLANOX_CONNECTX4VF) 2263 }, 2264 { 2265 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2266 PCI_DEVICE_ID_MELLANOX_CONNECTX4LX) 2267 }, 2268 { 2269 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2270 PCI_DEVICE_ID_MELLANOX_CONNECTX4LXVF) 2271 }, 2272 { 2273 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2274 PCI_DEVICE_ID_MELLANOX_CONNECTX5) 2275 }, 2276 { 2277 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2278 PCI_DEVICE_ID_MELLANOX_CONNECTX5VF) 2279 }, 2280 { 2281 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2282 PCI_DEVICE_ID_MELLANOX_CONNECTX5EX) 2283 }, 2284 { 2285 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2286 PCI_DEVICE_ID_MELLANOX_CONNECTX5EXVF) 2287 }, 2288 { 2289 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2290 PCI_DEVICE_ID_MELLANOX_CONNECTX5BF) 2291 }, 2292 { 2293 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2294 PCI_DEVICE_ID_MELLANOX_CONNECTX5BFVF) 2295 }, 2296 { 2297 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2298 PCI_DEVICE_ID_MELLANOX_CONNECTX6) 2299 }, 2300 { 2301 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2302 PCI_DEVICE_ID_MELLANOX_CONNECTX6VF) 2303 }, 2304 { 2305 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2306 PCI_DEVICE_ID_MELLANOX_CONNECTX6DX) 2307 }, 2308 { 2309 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2310 PCI_DEVICE_ID_MELLANOX_CONNECTXVF) 2311 }, 2312 { 2313 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2314 PCI_DEVICE_ID_MELLANOX_CONNECTX6DXBF) 2315 }, 2316 { 2317 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2318 PCI_DEVICE_ID_MELLANOX_CONNECTX6LX) 2319 }, 2320 { 2321 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2322 PCI_DEVICE_ID_MELLANOX_CONNECTX7) 2323 }, 2324 { 2325 RTE_PCI_DEVICE(PCI_VENDOR_ID_MELLANOX, 2326 PCI_DEVICE_ID_MELLANOX_CONNECTX7BF) 2327 }, 2328 { 2329 .vendor_id = 0 2330 } 2331 }; 2332 2333 static struct mlx5_pci_driver mlx5_driver = { 2334 .driver_class = MLX5_CLASS_NET, 2335 .pci_driver = { 2336 .driver = { 2337 .name = MLX5_PCI_DRIVER_NAME, 2338 }, 2339 .id_table = mlx5_pci_id_map, 2340 .probe = mlx5_os_pci_probe, 2341 .remove = mlx5_pci_remove, 2342 .dma_map = mlx5_dma_map, 2343 .dma_unmap = mlx5_dma_unmap, 2344 .drv_flags = PCI_DRV_FLAGS, 2345 }, 2346 }; 2347 2348 /* Initialize driver log type. */ 2349 RTE_LOG_REGISTER(mlx5_logtype, pmd.net.mlx5, NOTICE) 2350 2351 /** 2352 * Driver initialization routine. 2353 */ 2354 RTE_INIT(rte_mlx5_pmd_init) 2355 { 2356 pthread_mutex_init(&mlx5_dev_ctx_list_mutex, NULL); 2357 mlx5_common_init(); 2358 /* Build the static tables for Verbs conversion. */ 2359 mlx5_set_ptype_table(); 2360 mlx5_set_cksum_table(); 2361 mlx5_set_swp_types_table(); 2362 if (mlx5_glue) 2363 mlx5_pci_driver_register(&mlx5_driver); 2364 } 2365 2366 RTE_PMD_EXPORT_NAME(net_mlx5, __COUNTER__); 2367 RTE_PMD_REGISTER_PCI_TABLE(net_mlx5, mlx5_pci_id_map); 2368 RTE_PMD_REGISTER_KMOD_DEP(net_mlx5, "* ib_uverbs & mlx5_core & mlx5_ib"); 2369