1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright(c) 2013 - 2018 Intel Corporation. */ 3 4 #include "i40e.h" 5 6 /*********************notification routines***********************/ 7 8 /** 9 * i40e_vc_vf_broadcast 10 * @pf: pointer to the PF structure 11 * @v_opcode: operation code 12 * @v_retval: return value 13 * @msg: pointer to the msg buffer 14 * @msglen: msg length 15 * 16 * send a message to all VFs on a given PF 17 **/ 18 static void i40e_vc_vf_broadcast(struct i40e_pf *pf, 19 enum virtchnl_ops v_opcode, 20 i40e_status v_retval, u8 *msg, 21 u16 msglen) 22 { 23 struct i40e_hw *hw = &pf->hw; 24 struct i40e_vf *vf = pf->vf; 25 int i; 26 27 for (i = 0; i < pf->num_alloc_vfs; i++, vf++) { 28 int abs_vf_id = vf->vf_id + (int)hw->func_caps.vf_base_id; 29 /* Not all vfs are enabled so skip the ones that are not */ 30 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states) && 31 !test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) 32 continue; 33 34 /* Ignore return value on purpose - a given VF may fail, but 35 * we need to keep going and send to all of them 36 */ 37 i40e_aq_send_msg_to_vf(hw, abs_vf_id, v_opcode, v_retval, 38 msg, msglen, NULL); 39 } 40 } 41 42 /** 43 * i40e_vc_notify_vf_link_state 44 * @vf: pointer to the VF structure 45 * 46 * send a link status message to a single VF 47 **/ 48 static void i40e_vc_notify_vf_link_state(struct i40e_vf *vf) 49 { 50 struct virtchnl_pf_event pfe; 51 struct i40e_pf *pf = vf->pf; 52 struct i40e_hw *hw = &pf->hw; 53 struct i40e_link_status *ls = &pf->hw.phy.link_info; 54 int abs_vf_id = vf->vf_id + (int)hw->func_caps.vf_base_id; 55 56 pfe.event = VIRTCHNL_EVENT_LINK_CHANGE; 57 pfe.severity = PF_EVENT_SEVERITY_INFO; 58 59 /* Always report link is down if the VF queues aren't enabled */ 60 if (!vf->queues_enabled) { 61 pfe.event_data.link_event.link_status = false; 62 pfe.event_data.link_event.link_speed = 0; 63 } else if (vf->link_forced) { 64 pfe.event_data.link_event.link_status = vf->link_up; 65 pfe.event_data.link_event.link_speed = 66 (vf->link_up ? VIRTCHNL_LINK_SPEED_40GB : 0); 67 } else { 68 pfe.event_data.link_event.link_status = 69 ls->link_info & I40E_AQ_LINK_UP; 70 pfe.event_data.link_event.link_speed = 71 i40e_virtchnl_link_speed(ls->link_speed); 72 } 73 74 i40e_aq_send_msg_to_vf(hw, abs_vf_id, VIRTCHNL_OP_EVENT, 75 0, (u8 *)&pfe, sizeof(pfe), NULL); 76 } 77 78 /** 79 * i40e_vc_notify_link_state 80 * @pf: pointer to the PF structure 81 * 82 * send a link status message to all VFs on a given PF 83 **/ 84 void i40e_vc_notify_link_state(struct i40e_pf *pf) 85 { 86 int i; 87 88 for (i = 0; i < pf->num_alloc_vfs; i++) 89 i40e_vc_notify_vf_link_state(&pf->vf[i]); 90 } 91 92 /** 93 * i40e_vc_notify_reset 94 * @pf: pointer to the PF structure 95 * 96 * indicate a pending reset to all VFs on a given PF 97 **/ 98 void i40e_vc_notify_reset(struct i40e_pf *pf) 99 { 100 struct virtchnl_pf_event pfe; 101 102 pfe.event = VIRTCHNL_EVENT_RESET_IMPENDING; 103 pfe.severity = PF_EVENT_SEVERITY_CERTAIN_DOOM; 104 i40e_vc_vf_broadcast(pf, VIRTCHNL_OP_EVENT, 0, 105 (u8 *)&pfe, sizeof(struct virtchnl_pf_event)); 106 } 107 108 /** 109 * i40e_vc_notify_vf_reset 110 * @vf: pointer to the VF structure 111 * 112 * indicate a pending reset to the given VF 113 **/ 114 void i40e_vc_notify_vf_reset(struct i40e_vf *vf) 115 { 116 struct virtchnl_pf_event pfe; 117 int abs_vf_id; 118 119 /* validate the request */ 120 if (!vf || vf->vf_id >= vf->pf->num_alloc_vfs) 121 return; 122 123 /* verify if the VF is in either init or active before proceeding */ 124 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states) && 125 !test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) 126 return; 127 128 abs_vf_id = vf->vf_id + (int)vf->pf->hw.func_caps.vf_base_id; 129 130 pfe.event = VIRTCHNL_EVENT_RESET_IMPENDING; 131 pfe.severity = PF_EVENT_SEVERITY_CERTAIN_DOOM; 132 i40e_aq_send_msg_to_vf(&vf->pf->hw, abs_vf_id, VIRTCHNL_OP_EVENT, 133 0, (u8 *)&pfe, 134 sizeof(struct virtchnl_pf_event), NULL); 135 } 136 /***********************misc routines*****************************/ 137 138 /** 139 * i40e_vc_disable_vf 140 * @vf: pointer to the VF info 141 * 142 * Disable the VF through a SW reset. 143 **/ 144 static inline void i40e_vc_disable_vf(struct i40e_vf *vf) 145 { 146 int i; 147 148 i40e_vc_notify_vf_reset(vf); 149 150 /* We want to ensure that an actual reset occurs initiated after this 151 * function was called. However, we do not want to wait forever, so 152 * we'll give a reasonable time and print a message if we failed to 153 * ensure a reset. 154 */ 155 for (i = 0; i < 20; i++) { 156 if (i40e_reset_vf(vf, false)) 157 return; 158 usleep_range(10000, 20000); 159 } 160 161 dev_warn(&vf->pf->pdev->dev, 162 "Failed to initiate reset for VF %d after 200 milliseconds\n", 163 vf->vf_id); 164 } 165 166 /** 167 * i40e_vc_isvalid_vsi_id 168 * @vf: pointer to the VF info 169 * @vsi_id: VF relative VSI id 170 * 171 * check for the valid VSI id 172 **/ 173 static inline bool i40e_vc_isvalid_vsi_id(struct i40e_vf *vf, u16 vsi_id) 174 { 175 struct i40e_pf *pf = vf->pf; 176 struct i40e_vsi *vsi = i40e_find_vsi_from_id(pf, vsi_id); 177 178 return (vsi && (vsi->vf_id == vf->vf_id)); 179 } 180 181 /** 182 * i40e_vc_isvalid_queue_id 183 * @vf: pointer to the VF info 184 * @vsi_id: vsi id 185 * @qid: vsi relative queue id 186 * 187 * check for the valid queue id 188 **/ 189 static inline bool i40e_vc_isvalid_queue_id(struct i40e_vf *vf, u16 vsi_id, 190 u16 qid) 191 { 192 struct i40e_pf *pf = vf->pf; 193 struct i40e_vsi *vsi = i40e_find_vsi_from_id(pf, vsi_id); 194 195 return (vsi && (qid < vsi->alloc_queue_pairs)); 196 } 197 198 /** 199 * i40e_vc_isvalid_vector_id 200 * @vf: pointer to the VF info 201 * @vector_id: VF relative vector id 202 * 203 * check for the valid vector id 204 **/ 205 static inline bool i40e_vc_isvalid_vector_id(struct i40e_vf *vf, u32 vector_id) 206 { 207 struct i40e_pf *pf = vf->pf; 208 209 return vector_id < pf->hw.func_caps.num_msix_vectors_vf; 210 } 211 212 /***********************vf resource mgmt routines*****************/ 213 214 /** 215 * i40e_vc_get_pf_queue_id 216 * @vf: pointer to the VF info 217 * @vsi_id: id of VSI as provided by the FW 218 * @vsi_queue_id: vsi relative queue id 219 * 220 * return PF relative queue id 221 **/ 222 static u16 i40e_vc_get_pf_queue_id(struct i40e_vf *vf, u16 vsi_id, 223 u8 vsi_queue_id) 224 { 225 struct i40e_pf *pf = vf->pf; 226 struct i40e_vsi *vsi = i40e_find_vsi_from_id(pf, vsi_id); 227 u16 pf_queue_id = I40E_QUEUE_END_OF_LIST; 228 229 if (!vsi) 230 return pf_queue_id; 231 232 if (le16_to_cpu(vsi->info.mapping_flags) & 233 I40E_AQ_VSI_QUE_MAP_NONCONTIG) 234 pf_queue_id = 235 le16_to_cpu(vsi->info.queue_mapping[vsi_queue_id]); 236 else 237 pf_queue_id = le16_to_cpu(vsi->info.queue_mapping[0]) + 238 vsi_queue_id; 239 240 return pf_queue_id; 241 } 242 243 /** 244 * i40e_get_real_pf_qid 245 * @vf: pointer to the VF info 246 * @vsi_id: vsi id 247 * @queue_id: queue number 248 * 249 * wrapper function to get pf_queue_id handling ADq code as well 250 **/ 251 static u16 i40e_get_real_pf_qid(struct i40e_vf *vf, u16 vsi_id, u16 queue_id) 252 { 253 int i; 254 255 if (vf->adq_enabled) { 256 /* Although VF considers all the queues(can be 1 to 16) as its 257 * own but they may actually belong to different VSIs(up to 4). 258 * We need to find which queues belongs to which VSI. 259 */ 260 for (i = 0; i < vf->num_tc; i++) { 261 if (queue_id < vf->ch[i].num_qps) { 262 vsi_id = vf->ch[i].vsi_id; 263 break; 264 } 265 /* find right queue id which is relative to a 266 * given VSI. 267 */ 268 queue_id -= vf->ch[i].num_qps; 269 } 270 } 271 272 return i40e_vc_get_pf_queue_id(vf, vsi_id, queue_id); 273 } 274 275 /** 276 * i40e_config_irq_link_list 277 * @vf: pointer to the VF info 278 * @vsi_id: id of VSI as given by the FW 279 * @vecmap: irq map info 280 * 281 * configure irq link list from the map 282 **/ 283 static void i40e_config_irq_link_list(struct i40e_vf *vf, u16 vsi_id, 284 struct virtchnl_vector_map *vecmap) 285 { 286 unsigned long linklistmap = 0, tempmap; 287 struct i40e_pf *pf = vf->pf; 288 struct i40e_hw *hw = &pf->hw; 289 u16 vsi_queue_id, pf_queue_id; 290 enum i40e_queue_type qtype; 291 u16 next_q, vector_id, size; 292 u32 reg, reg_idx; 293 u16 itr_idx = 0; 294 295 vector_id = vecmap->vector_id; 296 /* setup the head */ 297 if (0 == vector_id) 298 reg_idx = I40E_VPINT_LNKLST0(vf->vf_id); 299 else 300 reg_idx = I40E_VPINT_LNKLSTN( 301 ((pf->hw.func_caps.num_msix_vectors_vf - 1) * vf->vf_id) + 302 (vector_id - 1)); 303 304 if (vecmap->rxq_map == 0 && vecmap->txq_map == 0) { 305 /* Special case - No queues mapped on this vector */ 306 wr32(hw, reg_idx, I40E_VPINT_LNKLST0_FIRSTQ_INDX_MASK); 307 goto irq_list_done; 308 } 309 tempmap = vecmap->rxq_map; 310 for_each_set_bit(vsi_queue_id, &tempmap, I40E_MAX_VSI_QP) { 311 linklistmap |= (BIT(I40E_VIRTCHNL_SUPPORTED_QTYPES * 312 vsi_queue_id)); 313 } 314 315 tempmap = vecmap->txq_map; 316 for_each_set_bit(vsi_queue_id, &tempmap, I40E_MAX_VSI_QP) { 317 linklistmap |= (BIT(I40E_VIRTCHNL_SUPPORTED_QTYPES * 318 vsi_queue_id + 1)); 319 } 320 321 size = I40E_MAX_VSI_QP * I40E_VIRTCHNL_SUPPORTED_QTYPES; 322 next_q = find_first_bit(&linklistmap, size); 323 if (unlikely(next_q == size)) 324 goto irq_list_done; 325 326 vsi_queue_id = next_q / I40E_VIRTCHNL_SUPPORTED_QTYPES; 327 qtype = next_q % I40E_VIRTCHNL_SUPPORTED_QTYPES; 328 pf_queue_id = i40e_get_real_pf_qid(vf, vsi_id, vsi_queue_id); 329 reg = ((qtype << I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_SHIFT) | pf_queue_id); 330 331 wr32(hw, reg_idx, reg); 332 333 while (next_q < size) { 334 switch (qtype) { 335 case I40E_QUEUE_TYPE_RX: 336 reg_idx = I40E_QINT_RQCTL(pf_queue_id); 337 itr_idx = vecmap->rxitr_idx; 338 break; 339 case I40E_QUEUE_TYPE_TX: 340 reg_idx = I40E_QINT_TQCTL(pf_queue_id); 341 itr_idx = vecmap->txitr_idx; 342 break; 343 default: 344 break; 345 } 346 347 next_q = find_next_bit(&linklistmap, size, next_q + 1); 348 if (next_q < size) { 349 vsi_queue_id = next_q / I40E_VIRTCHNL_SUPPORTED_QTYPES; 350 qtype = next_q % I40E_VIRTCHNL_SUPPORTED_QTYPES; 351 pf_queue_id = i40e_get_real_pf_qid(vf, 352 vsi_id, 353 vsi_queue_id); 354 } else { 355 pf_queue_id = I40E_QUEUE_END_OF_LIST; 356 qtype = 0; 357 } 358 359 /* format for the RQCTL & TQCTL regs is same */ 360 reg = (vector_id) | 361 (qtype << I40E_QINT_RQCTL_NEXTQ_TYPE_SHIFT) | 362 (pf_queue_id << I40E_QINT_RQCTL_NEXTQ_INDX_SHIFT) | 363 BIT(I40E_QINT_RQCTL_CAUSE_ENA_SHIFT) | 364 (itr_idx << I40E_QINT_RQCTL_ITR_INDX_SHIFT); 365 wr32(hw, reg_idx, reg); 366 } 367 368 /* if the vf is running in polling mode and using interrupt zero, 369 * need to disable auto-mask on enabling zero interrupt for VFs. 370 */ 371 if ((vf->driver_caps & VIRTCHNL_VF_OFFLOAD_RX_POLLING) && 372 (vector_id == 0)) { 373 reg = rd32(hw, I40E_GLINT_CTL); 374 if (!(reg & I40E_GLINT_CTL_DIS_AUTOMASK_VF0_MASK)) { 375 reg |= I40E_GLINT_CTL_DIS_AUTOMASK_VF0_MASK; 376 wr32(hw, I40E_GLINT_CTL, reg); 377 } 378 } 379 380 irq_list_done: 381 i40e_flush(hw); 382 } 383 384 /** 385 * i40e_release_iwarp_qvlist 386 * @vf: pointer to the VF. 387 * 388 **/ 389 static void i40e_release_iwarp_qvlist(struct i40e_vf *vf) 390 { 391 struct i40e_pf *pf = vf->pf; 392 struct virtchnl_iwarp_qvlist_info *qvlist_info = vf->qvlist_info; 393 u32 msix_vf; 394 u32 i; 395 396 if (!vf->qvlist_info) 397 return; 398 399 msix_vf = pf->hw.func_caps.num_msix_vectors_vf; 400 for (i = 0; i < qvlist_info->num_vectors; i++) { 401 struct virtchnl_iwarp_qv_info *qv_info; 402 u32 next_q_index, next_q_type; 403 struct i40e_hw *hw = &pf->hw; 404 u32 v_idx, reg_idx, reg; 405 406 qv_info = &qvlist_info->qv_info[i]; 407 if (!qv_info) 408 continue; 409 v_idx = qv_info->v_idx; 410 if (qv_info->ceq_idx != I40E_QUEUE_INVALID_IDX) { 411 /* Figure out the queue after CEQ and make that the 412 * first queue. 413 */ 414 reg_idx = (msix_vf - 1) * vf->vf_id + qv_info->ceq_idx; 415 reg = rd32(hw, I40E_VPINT_CEQCTL(reg_idx)); 416 next_q_index = (reg & I40E_VPINT_CEQCTL_NEXTQ_INDX_MASK) 417 >> I40E_VPINT_CEQCTL_NEXTQ_INDX_SHIFT; 418 next_q_type = (reg & I40E_VPINT_CEQCTL_NEXTQ_TYPE_MASK) 419 >> I40E_VPINT_CEQCTL_NEXTQ_TYPE_SHIFT; 420 421 reg_idx = ((msix_vf - 1) * vf->vf_id) + (v_idx - 1); 422 reg = (next_q_index & 423 I40E_VPINT_LNKLSTN_FIRSTQ_INDX_MASK) | 424 (next_q_type << 425 I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_SHIFT); 426 427 wr32(hw, I40E_VPINT_LNKLSTN(reg_idx), reg); 428 } 429 } 430 kfree(vf->qvlist_info); 431 vf->qvlist_info = NULL; 432 } 433 434 /** 435 * i40e_config_iwarp_qvlist 436 * @vf: pointer to the VF info 437 * @qvlist_info: queue and vector list 438 * 439 * Return 0 on success or < 0 on error 440 **/ 441 static int i40e_config_iwarp_qvlist(struct i40e_vf *vf, 442 struct virtchnl_iwarp_qvlist_info *qvlist_info) 443 { 444 struct i40e_pf *pf = vf->pf; 445 struct i40e_hw *hw = &pf->hw; 446 struct virtchnl_iwarp_qv_info *qv_info; 447 u32 v_idx, i, reg_idx, reg; 448 u32 next_q_idx, next_q_type; 449 u32 msix_vf; 450 int ret = 0; 451 452 msix_vf = pf->hw.func_caps.num_msix_vectors_vf; 453 454 if (qvlist_info->num_vectors > msix_vf) { 455 dev_warn(&pf->pdev->dev, 456 "Incorrect number of iwarp vectors %u. Maximum %u allowed.\n", 457 qvlist_info->num_vectors, 458 msix_vf); 459 ret = -EINVAL; 460 goto err_out; 461 } 462 463 kfree(vf->qvlist_info); 464 vf->qvlist_info = kzalloc(struct_size(vf->qvlist_info, qv_info, 465 qvlist_info->num_vectors - 1), 466 GFP_KERNEL); 467 if (!vf->qvlist_info) { 468 ret = -ENOMEM; 469 goto err_out; 470 } 471 vf->qvlist_info->num_vectors = qvlist_info->num_vectors; 472 473 msix_vf = pf->hw.func_caps.num_msix_vectors_vf; 474 for (i = 0; i < qvlist_info->num_vectors; i++) { 475 qv_info = &qvlist_info->qv_info[i]; 476 if (!qv_info) 477 continue; 478 479 /* Validate vector id belongs to this vf */ 480 if (!i40e_vc_isvalid_vector_id(vf, qv_info->v_idx)) { 481 ret = -EINVAL; 482 goto err_free; 483 } 484 485 v_idx = qv_info->v_idx; 486 487 vf->qvlist_info->qv_info[i] = *qv_info; 488 489 reg_idx = ((msix_vf - 1) * vf->vf_id) + (v_idx - 1); 490 /* We might be sharing the interrupt, so get the first queue 491 * index and type, push it down the list by adding the new 492 * queue on top. Also link it with the new queue in CEQCTL. 493 */ 494 reg = rd32(hw, I40E_VPINT_LNKLSTN(reg_idx)); 495 next_q_idx = ((reg & I40E_VPINT_LNKLSTN_FIRSTQ_INDX_MASK) >> 496 I40E_VPINT_LNKLSTN_FIRSTQ_INDX_SHIFT); 497 next_q_type = ((reg & I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_MASK) >> 498 I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_SHIFT); 499 500 if (qv_info->ceq_idx != I40E_QUEUE_INVALID_IDX) { 501 reg_idx = (msix_vf - 1) * vf->vf_id + qv_info->ceq_idx; 502 reg = (I40E_VPINT_CEQCTL_CAUSE_ENA_MASK | 503 (v_idx << I40E_VPINT_CEQCTL_MSIX_INDX_SHIFT) | 504 (qv_info->itr_idx << I40E_VPINT_CEQCTL_ITR_INDX_SHIFT) | 505 (next_q_type << I40E_VPINT_CEQCTL_NEXTQ_TYPE_SHIFT) | 506 (next_q_idx << I40E_VPINT_CEQCTL_NEXTQ_INDX_SHIFT)); 507 wr32(hw, I40E_VPINT_CEQCTL(reg_idx), reg); 508 509 reg_idx = ((msix_vf - 1) * vf->vf_id) + (v_idx - 1); 510 reg = (qv_info->ceq_idx & 511 I40E_VPINT_LNKLSTN_FIRSTQ_INDX_MASK) | 512 (I40E_QUEUE_TYPE_PE_CEQ << 513 I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_SHIFT); 514 wr32(hw, I40E_VPINT_LNKLSTN(reg_idx), reg); 515 } 516 517 if (qv_info->aeq_idx != I40E_QUEUE_INVALID_IDX) { 518 reg = (I40E_VPINT_AEQCTL_CAUSE_ENA_MASK | 519 (v_idx << I40E_VPINT_AEQCTL_MSIX_INDX_SHIFT) | 520 (qv_info->itr_idx << I40E_VPINT_AEQCTL_ITR_INDX_SHIFT)); 521 522 wr32(hw, I40E_VPINT_AEQCTL(vf->vf_id), reg); 523 } 524 } 525 526 return 0; 527 err_free: 528 kfree(vf->qvlist_info); 529 vf->qvlist_info = NULL; 530 err_out: 531 return ret; 532 } 533 534 /** 535 * i40e_config_vsi_tx_queue 536 * @vf: pointer to the VF info 537 * @vsi_id: id of VSI as provided by the FW 538 * @vsi_queue_id: vsi relative queue index 539 * @info: config. info 540 * 541 * configure tx queue 542 **/ 543 static int i40e_config_vsi_tx_queue(struct i40e_vf *vf, u16 vsi_id, 544 u16 vsi_queue_id, 545 struct virtchnl_txq_info *info) 546 { 547 struct i40e_pf *pf = vf->pf; 548 struct i40e_hw *hw = &pf->hw; 549 struct i40e_hmc_obj_txq tx_ctx; 550 struct i40e_vsi *vsi; 551 u16 pf_queue_id; 552 u32 qtx_ctl; 553 int ret = 0; 554 555 if (!i40e_vc_isvalid_vsi_id(vf, info->vsi_id)) { 556 ret = -ENOENT; 557 goto error_context; 558 } 559 pf_queue_id = i40e_vc_get_pf_queue_id(vf, vsi_id, vsi_queue_id); 560 vsi = i40e_find_vsi_from_id(pf, vsi_id); 561 if (!vsi) { 562 ret = -ENOENT; 563 goto error_context; 564 } 565 566 /* clear the context structure first */ 567 memset(&tx_ctx, 0, sizeof(struct i40e_hmc_obj_txq)); 568 569 /* only set the required fields */ 570 tx_ctx.base = info->dma_ring_addr / 128; 571 tx_ctx.qlen = info->ring_len; 572 tx_ctx.rdylist = le16_to_cpu(vsi->info.qs_handle[0]); 573 tx_ctx.rdylist_act = 0; 574 tx_ctx.head_wb_ena = info->headwb_enabled; 575 tx_ctx.head_wb_addr = info->dma_headwb_addr; 576 577 /* clear the context in the HMC */ 578 ret = i40e_clear_lan_tx_queue_context(hw, pf_queue_id); 579 if (ret) { 580 dev_err(&pf->pdev->dev, 581 "Failed to clear VF LAN Tx queue context %d, error: %d\n", 582 pf_queue_id, ret); 583 ret = -ENOENT; 584 goto error_context; 585 } 586 587 /* set the context in the HMC */ 588 ret = i40e_set_lan_tx_queue_context(hw, pf_queue_id, &tx_ctx); 589 if (ret) { 590 dev_err(&pf->pdev->dev, 591 "Failed to set VF LAN Tx queue context %d error: %d\n", 592 pf_queue_id, ret); 593 ret = -ENOENT; 594 goto error_context; 595 } 596 597 /* associate this queue with the PCI VF function */ 598 qtx_ctl = I40E_QTX_CTL_VF_QUEUE; 599 qtx_ctl |= ((hw->pf_id << I40E_QTX_CTL_PF_INDX_SHIFT) 600 & I40E_QTX_CTL_PF_INDX_MASK); 601 qtx_ctl |= (((vf->vf_id + hw->func_caps.vf_base_id) 602 << I40E_QTX_CTL_VFVM_INDX_SHIFT) 603 & I40E_QTX_CTL_VFVM_INDX_MASK); 604 wr32(hw, I40E_QTX_CTL(pf_queue_id), qtx_ctl); 605 i40e_flush(hw); 606 607 error_context: 608 return ret; 609 } 610 611 /** 612 * i40e_config_vsi_rx_queue 613 * @vf: pointer to the VF info 614 * @vsi_id: id of VSI as provided by the FW 615 * @vsi_queue_id: vsi relative queue index 616 * @info: config. info 617 * 618 * configure rx queue 619 **/ 620 static int i40e_config_vsi_rx_queue(struct i40e_vf *vf, u16 vsi_id, 621 u16 vsi_queue_id, 622 struct virtchnl_rxq_info *info) 623 { 624 struct i40e_pf *pf = vf->pf; 625 struct i40e_hw *hw = &pf->hw; 626 struct i40e_hmc_obj_rxq rx_ctx; 627 u16 pf_queue_id; 628 int ret = 0; 629 630 pf_queue_id = i40e_vc_get_pf_queue_id(vf, vsi_id, vsi_queue_id); 631 632 /* clear the context structure first */ 633 memset(&rx_ctx, 0, sizeof(struct i40e_hmc_obj_rxq)); 634 635 /* only set the required fields */ 636 rx_ctx.base = info->dma_ring_addr / 128; 637 rx_ctx.qlen = info->ring_len; 638 639 if (info->splithdr_enabled) { 640 rx_ctx.hsplit_0 = I40E_RX_SPLIT_L2 | 641 I40E_RX_SPLIT_IP | 642 I40E_RX_SPLIT_TCP_UDP | 643 I40E_RX_SPLIT_SCTP; 644 /* header length validation */ 645 if (info->hdr_size > ((2 * 1024) - 64)) { 646 ret = -EINVAL; 647 goto error_param; 648 } 649 rx_ctx.hbuff = info->hdr_size >> I40E_RXQ_CTX_HBUFF_SHIFT; 650 651 /* set split mode 10b */ 652 rx_ctx.dtype = I40E_RX_DTYPE_HEADER_SPLIT; 653 } 654 655 /* databuffer length validation */ 656 if (info->databuffer_size > ((16 * 1024) - 128)) { 657 ret = -EINVAL; 658 goto error_param; 659 } 660 rx_ctx.dbuff = info->databuffer_size >> I40E_RXQ_CTX_DBUFF_SHIFT; 661 662 /* max pkt. length validation */ 663 if (info->max_pkt_size >= (16 * 1024) || info->max_pkt_size < 64) { 664 ret = -EINVAL; 665 goto error_param; 666 } 667 rx_ctx.rxmax = info->max_pkt_size; 668 669 /* enable 32bytes desc always */ 670 rx_ctx.dsize = 1; 671 672 /* default values */ 673 rx_ctx.lrxqthresh = 1; 674 rx_ctx.crcstrip = 1; 675 rx_ctx.prefena = 1; 676 rx_ctx.l2tsel = 1; 677 678 /* clear the context in the HMC */ 679 ret = i40e_clear_lan_rx_queue_context(hw, pf_queue_id); 680 if (ret) { 681 dev_err(&pf->pdev->dev, 682 "Failed to clear VF LAN Rx queue context %d, error: %d\n", 683 pf_queue_id, ret); 684 ret = -ENOENT; 685 goto error_param; 686 } 687 688 /* set the context in the HMC */ 689 ret = i40e_set_lan_rx_queue_context(hw, pf_queue_id, &rx_ctx); 690 if (ret) { 691 dev_err(&pf->pdev->dev, 692 "Failed to set VF LAN Rx queue context %d error: %d\n", 693 pf_queue_id, ret); 694 ret = -ENOENT; 695 goto error_param; 696 } 697 698 error_param: 699 return ret; 700 } 701 702 /** 703 * i40e_alloc_vsi_res 704 * @vf: pointer to the VF info 705 * @idx: VSI index, applies only for ADq mode, zero otherwise 706 * 707 * alloc VF vsi context & resources 708 **/ 709 static int i40e_alloc_vsi_res(struct i40e_vf *vf, u8 idx) 710 { 711 struct i40e_mac_filter *f = NULL; 712 struct i40e_pf *pf = vf->pf; 713 struct i40e_vsi *vsi; 714 u64 max_tx_rate = 0; 715 int ret = 0; 716 717 vsi = i40e_vsi_setup(pf, I40E_VSI_SRIOV, pf->vsi[pf->lan_vsi]->seid, 718 vf->vf_id); 719 720 if (!vsi) { 721 dev_err(&pf->pdev->dev, 722 "add vsi failed for VF %d, aq_err %d\n", 723 vf->vf_id, pf->hw.aq.asq_last_status); 724 ret = -ENOENT; 725 goto error_alloc_vsi_res; 726 } 727 728 if (!idx) { 729 u64 hena = i40e_pf_get_default_rss_hena(pf); 730 u8 broadcast[ETH_ALEN]; 731 732 vf->lan_vsi_idx = vsi->idx; 733 vf->lan_vsi_id = vsi->id; 734 /* If the port VLAN has been configured and then the 735 * VF driver was removed then the VSI port VLAN 736 * configuration was destroyed. Check if there is 737 * a port VLAN and restore the VSI configuration if 738 * needed. 739 */ 740 if (vf->port_vlan_id) 741 i40e_vsi_add_pvid(vsi, vf->port_vlan_id); 742 743 spin_lock_bh(&vsi->mac_filter_hash_lock); 744 if (is_valid_ether_addr(vf->default_lan_addr.addr)) { 745 f = i40e_add_mac_filter(vsi, 746 vf->default_lan_addr.addr); 747 if (!f) 748 dev_info(&pf->pdev->dev, 749 "Could not add MAC filter %pM for VF %d\n", 750 vf->default_lan_addr.addr, vf->vf_id); 751 } 752 eth_broadcast_addr(broadcast); 753 f = i40e_add_mac_filter(vsi, broadcast); 754 if (!f) 755 dev_info(&pf->pdev->dev, 756 "Could not allocate VF broadcast filter\n"); 757 spin_unlock_bh(&vsi->mac_filter_hash_lock); 758 wr32(&pf->hw, I40E_VFQF_HENA1(0, vf->vf_id), (u32)hena); 759 wr32(&pf->hw, I40E_VFQF_HENA1(1, vf->vf_id), (u32)(hena >> 32)); 760 /* program mac filter only for VF VSI */ 761 ret = i40e_sync_vsi_filters(vsi); 762 if (ret) 763 dev_err(&pf->pdev->dev, "Unable to program ucast filters\n"); 764 } 765 766 /* storing VSI index and id for ADq and don't apply the mac filter */ 767 if (vf->adq_enabled) { 768 vf->ch[idx].vsi_idx = vsi->idx; 769 vf->ch[idx].vsi_id = vsi->id; 770 } 771 772 /* Set VF bandwidth if specified */ 773 if (vf->tx_rate) { 774 max_tx_rate = vf->tx_rate; 775 } else if (vf->ch[idx].max_tx_rate) { 776 max_tx_rate = vf->ch[idx].max_tx_rate; 777 } 778 779 if (max_tx_rate) { 780 max_tx_rate = div_u64(max_tx_rate, I40E_BW_CREDIT_DIVISOR); 781 ret = i40e_aq_config_vsi_bw_limit(&pf->hw, vsi->seid, 782 max_tx_rate, 0, NULL); 783 if (ret) 784 dev_err(&pf->pdev->dev, "Unable to set tx rate, VF %d, error code %d.\n", 785 vf->vf_id, ret); 786 } 787 788 error_alloc_vsi_res: 789 return ret; 790 } 791 792 /** 793 * i40e_map_pf_queues_to_vsi 794 * @vf: pointer to the VF info 795 * 796 * PF maps LQPs to a VF by programming VSILAN_QTABLE & VPLAN_QTABLE. This 797 * function takes care of first part VSILAN_QTABLE, mapping pf queues to VSI. 798 **/ 799 static void i40e_map_pf_queues_to_vsi(struct i40e_vf *vf) 800 { 801 struct i40e_pf *pf = vf->pf; 802 struct i40e_hw *hw = &pf->hw; 803 u32 reg, num_tc = 1; /* VF has at least one traffic class */ 804 u16 vsi_id, qps; 805 int i, j; 806 807 if (vf->adq_enabled) 808 num_tc = vf->num_tc; 809 810 for (i = 0; i < num_tc; i++) { 811 if (vf->adq_enabled) { 812 qps = vf->ch[i].num_qps; 813 vsi_id = vf->ch[i].vsi_id; 814 } else { 815 qps = pf->vsi[vf->lan_vsi_idx]->alloc_queue_pairs; 816 vsi_id = vf->lan_vsi_id; 817 } 818 819 for (j = 0; j < 7; j++) { 820 if (j * 2 >= qps) { 821 /* end of list */ 822 reg = 0x07FF07FF; 823 } else { 824 u16 qid = i40e_vc_get_pf_queue_id(vf, 825 vsi_id, 826 j * 2); 827 reg = qid; 828 qid = i40e_vc_get_pf_queue_id(vf, vsi_id, 829 (j * 2) + 1); 830 reg |= qid << 16; 831 } 832 i40e_write_rx_ctl(hw, 833 I40E_VSILAN_QTABLE(j, vsi_id), 834 reg); 835 } 836 } 837 } 838 839 /** 840 * i40e_map_pf_to_vf_queues 841 * @vf: pointer to the VF info 842 * 843 * PF maps LQPs to a VF by programming VSILAN_QTABLE & VPLAN_QTABLE. This 844 * function takes care of the second part VPLAN_QTABLE & completes VF mappings. 845 **/ 846 static void i40e_map_pf_to_vf_queues(struct i40e_vf *vf) 847 { 848 struct i40e_pf *pf = vf->pf; 849 struct i40e_hw *hw = &pf->hw; 850 u32 reg, total_qps = 0; 851 u32 qps, num_tc = 1; /* VF has at least one traffic class */ 852 u16 vsi_id, qid; 853 int i, j; 854 855 if (vf->adq_enabled) 856 num_tc = vf->num_tc; 857 858 for (i = 0; i < num_tc; i++) { 859 if (vf->adq_enabled) { 860 qps = vf->ch[i].num_qps; 861 vsi_id = vf->ch[i].vsi_id; 862 } else { 863 qps = pf->vsi[vf->lan_vsi_idx]->alloc_queue_pairs; 864 vsi_id = vf->lan_vsi_id; 865 } 866 867 for (j = 0; j < qps; j++) { 868 qid = i40e_vc_get_pf_queue_id(vf, vsi_id, j); 869 870 reg = (qid & I40E_VPLAN_QTABLE_QINDEX_MASK); 871 wr32(hw, I40E_VPLAN_QTABLE(total_qps, vf->vf_id), 872 reg); 873 total_qps++; 874 } 875 } 876 } 877 878 /** 879 * i40e_enable_vf_mappings 880 * @vf: pointer to the VF info 881 * 882 * enable VF mappings 883 **/ 884 static void i40e_enable_vf_mappings(struct i40e_vf *vf) 885 { 886 struct i40e_pf *pf = vf->pf; 887 struct i40e_hw *hw = &pf->hw; 888 u32 reg; 889 890 /* Tell the hardware we're using noncontiguous mapping. HW requires 891 * that VF queues be mapped using this method, even when they are 892 * contiguous in real life 893 */ 894 i40e_write_rx_ctl(hw, I40E_VSILAN_QBASE(vf->lan_vsi_id), 895 I40E_VSILAN_QBASE_VSIQTABLE_ENA_MASK); 896 897 /* enable VF vplan_qtable mappings */ 898 reg = I40E_VPLAN_MAPENA_TXRX_ENA_MASK; 899 wr32(hw, I40E_VPLAN_MAPENA(vf->vf_id), reg); 900 901 i40e_map_pf_to_vf_queues(vf); 902 i40e_map_pf_queues_to_vsi(vf); 903 904 i40e_flush(hw); 905 } 906 907 /** 908 * i40e_disable_vf_mappings 909 * @vf: pointer to the VF info 910 * 911 * disable VF mappings 912 **/ 913 static void i40e_disable_vf_mappings(struct i40e_vf *vf) 914 { 915 struct i40e_pf *pf = vf->pf; 916 struct i40e_hw *hw = &pf->hw; 917 int i; 918 919 /* disable qp mappings */ 920 wr32(hw, I40E_VPLAN_MAPENA(vf->vf_id), 0); 921 for (i = 0; i < I40E_MAX_VSI_QP; i++) 922 wr32(hw, I40E_VPLAN_QTABLE(i, vf->vf_id), 923 I40E_QUEUE_END_OF_LIST); 924 i40e_flush(hw); 925 } 926 927 /** 928 * i40e_free_vf_res 929 * @vf: pointer to the VF info 930 * 931 * free VF resources 932 **/ 933 static void i40e_free_vf_res(struct i40e_vf *vf) 934 { 935 struct i40e_pf *pf = vf->pf; 936 struct i40e_hw *hw = &pf->hw; 937 u32 reg_idx, reg; 938 int i, j, msix_vf; 939 940 /* Start by disabling VF's configuration API to prevent the OS from 941 * accessing the VF's VSI after it's freed / invalidated. 942 */ 943 clear_bit(I40E_VF_STATE_INIT, &vf->vf_states); 944 945 /* It's possible the VF had requeuested more queues than the default so 946 * do the accounting here when we're about to free them. 947 */ 948 if (vf->num_queue_pairs > I40E_DEFAULT_QUEUES_PER_VF) { 949 pf->queues_left += vf->num_queue_pairs - 950 I40E_DEFAULT_QUEUES_PER_VF; 951 } 952 953 /* free vsi & disconnect it from the parent uplink */ 954 if (vf->lan_vsi_idx) { 955 i40e_vsi_release(pf->vsi[vf->lan_vsi_idx]); 956 vf->lan_vsi_idx = 0; 957 vf->lan_vsi_id = 0; 958 } 959 960 /* do the accounting and remove additional ADq VSI's */ 961 if (vf->adq_enabled && vf->ch[0].vsi_idx) { 962 for (j = 0; j < vf->num_tc; j++) { 963 /* At this point VSI0 is already released so don't 964 * release it again and only clear their values in 965 * structure variables 966 */ 967 if (j) 968 i40e_vsi_release(pf->vsi[vf->ch[j].vsi_idx]); 969 vf->ch[j].vsi_idx = 0; 970 vf->ch[j].vsi_id = 0; 971 } 972 } 973 msix_vf = pf->hw.func_caps.num_msix_vectors_vf; 974 975 /* disable interrupts so the VF starts in a known state */ 976 for (i = 0; i < msix_vf; i++) { 977 /* format is same for both registers */ 978 if (0 == i) 979 reg_idx = I40E_VFINT_DYN_CTL0(vf->vf_id); 980 else 981 reg_idx = I40E_VFINT_DYN_CTLN(((msix_vf - 1) * 982 (vf->vf_id)) 983 + (i - 1)); 984 wr32(hw, reg_idx, I40E_VFINT_DYN_CTLN_CLEARPBA_MASK); 985 i40e_flush(hw); 986 } 987 988 /* clear the irq settings */ 989 for (i = 0; i < msix_vf; i++) { 990 /* format is same for both registers */ 991 if (0 == i) 992 reg_idx = I40E_VPINT_LNKLST0(vf->vf_id); 993 else 994 reg_idx = I40E_VPINT_LNKLSTN(((msix_vf - 1) * 995 (vf->vf_id)) 996 + (i - 1)); 997 reg = (I40E_VPINT_LNKLSTN_FIRSTQ_TYPE_MASK | 998 I40E_VPINT_LNKLSTN_FIRSTQ_INDX_MASK); 999 wr32(hw, reg_idx, reg); 1000 i40e_flush(hw); 1001 } 1002 /* reset some of the state variables keeping track of the resources */ 1003 vf->num_queue_pairs = 0; 1004 clear_bit(I40E_VF_STATE_MC_PROMISC, &vf->vf_states); 1005 clear_bit(I40E_VF_STATE_UC_PROMISC, &vf->vf_states); 1006 } 1007 1008 /** 1009 * i40e_alloc_vf_res 1010 * @vf: pointer to the VF info 1011 * 1012 * allocate VF resources 1013 **/ 1014 static int i40e_alloc_vf_res(struct i40e_vf *vf) 1015 { 1016 struct i40e_pf *pf = vf->pf; 1017 int total_queue_pairs = 0; 1018 int ret, idx; 1019 1020 if (vf->num_req_queues && 1021 vf->num_req_queues <= pf->queues_left + I40E_DEFAULT_QUEUES_PER_VF) 1022 pf->num_vf_qps = vf->num_req_queues; 1023 else 1024 pf->num_vf_qps = I40E_DEFAULT_QUEUES_PER_VF; 1025 1026 /* allocate hw vsi context & associated resources */ 1027 ret = i40e_alloc_vsi_res(vf, 0); 1028 if (ret) 1029 goto error_alloc; 1030 total_queue_pairs += pf->vsi[vf->lan_vsi_idx]->alloc_queue_pairs; 1031 1032 /* allocate additional VSIs based on tc information for ADq */ 1033 if (vf->adq_enabled) { 1034 if (pf->queues_left >= 1035 (I40E_MAX_VF_QUEUES - I40E_DEFAULT_QUEUES_PER_VF)) { 1036 /* TC 0 always belongs to VF VSI */ 1037 for (idx = 1; idx < vf->num_tc; idx++) { 1038 ret = i40e_alloc_vsi_res(vf, idx); 1039 if (ret) 1040 goto error_alloc; 1041 } 1042 /* send correct number of queues */ 1043 total_queue_pairs = I40E_MAX_VF_QUEUES; 1044 } else { 1045 dev_info(&pf->pdev->dev, "VF %d: Not enough queues to allocate, disabling ADq\n", 1046 vf->vf_id); 1047 vf->adq_enabled = false; 1048 } 1049 } 1050 1051 /* We account for each VF to get a default number of queue pairs. If 1052 * the VF has now requested more, we need to account for that to make 1053 * certain we never request more queues than we actually have left in 1054 * HW. 1055 */ 1056 if (total_queue_pairs > I40E_DEFAULT_QUEUES_PER_VF) 1057 pf->queues_left -= 1058 total_queue_pairs - I40E_DEFAULT_QUEUES_PER_VF; 1059 1060 if (vf->trusted) 1061 set_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps); 1062 else 1063 clear_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps); 1064 1065 /* store the total qps number for the runtime 1066 * VF req validation 1067 */ 1068 vf->num_queue_pairs = total_queue_pairs; 1069 1070 /* VF is now completely initialized */ 1071 set_bit(I40E_VF_STATE_INIT, &vf->vf_states); 1072 1073 error_alloc: 1074 if (ret) 1075 i40e_free_vf_res(vf); 1076 1077 return ret; 1078 } 1079 1080 #define VF_DEVICE_STATUS 0xAA 1081 #define VF_TRANS_PENDING_MASK 0x20 1082 /** 1083 * i40e_quiesce_vf_pci 1084 * @vf: pointer to the VF structure 1085 * 1086 * Wait for VF PCI transactions to be cleared after reset. Returns -EIO 1087 * if the transactions never clear. 1088 **/ 1089 static int i40e_quiesce_vf_pci(struct i40e_vf *vf) 1090 { 1091 struct i40e_pf *pf = vf->pf; 1092 struct i40e_hw *hw = &pf->hw; 1093 int vf_abs_id, i; 1094 u32 reg; 1095 1096 vf_abs_id = vf->vf_id + hw->func_caps.vf_base_id; 1097 1098 wr32(hw, I40E_PF_PCI_CIAA, 1099 VF_DEVICE_STATUS | (vf_abs_id << I40E_PF_PCI_CIAA_VF_NUM_SHIFT)); 1100 for (i = 0; i < 100; i++) { 1101 reg = rd32(hw, I40E_PF_PCI_CIAD); 1102 if ((reg & VF_TRANS_PENDING_MASK) == 0) 1103 return 0; 1104 udelay(1); 1105 } 1106 return -EIO; 1107 } 1108 1109 /** 1110 * i40e_getnum_vf_vsi_vlan_filters 1111 * @vsi: pointer to the vsi 1112 * 1113 * called to get the number of VLANs offloaded on this VF 1114 **/ 1115 static int i40e_getnum_vf_vsi_vlan_filters(struct i40e_vsi *vsi) 1116 { 1117 struct i40e_mac_filter *f; 1118 u16 num_vlans = 0, bkt; 1119 1120 hash_for_each(vsi->mac_filter_hash, bkt, f, hlist) { 1121 if (f->vlan >= 0 && f->vlan <= I40E_MAX_VLANID) 1122 num_vlans++; 1123 } 1124 1125 return num_vlans; 1126 } 1127 1128 /** 1129 * i40e_get_vlan_list_sync 1130 * @vsi: pointer to the VSI 1131 * @num_vlans: number of VLANs in mac_filter_hash, returned to caller 1132 * @vlan_list: list of VLANs present in mac_filter_hash, returned to caller. 1133 * This array is allocated here, but has to be freed in caller. 1134 * 1135 * Called to get number of VLANs and VLAN list present in mac_filter_hash. 1136 **/ 1137 static void i40e_get_vlan_list_sync(struct i40e_vsi *vsi, u16 *num_vlans, 1138 s16 **vlan_list) 1139 { 1140 struct i40e_mac_filter *f; 1141 int i = 0; 1142 int bkt; 1143 1144 spin_lock_bh(&vsi->mac_filter_hash_lock); 1145 *num_vlans = i40e_getnum_vf_vsi_vlan_filters(vsi); 1146 *vlan_list = kcalloc(*num_vlans, sizeof(**vlan_list), GFP_ATOMIC); 1147 if (!(*vlan_list)) 1148 goto err; 1149 1150 hash_for_each(vsi->mac_filter_hash, bkt, f, hlist) { 1151 if (f->vlan < 0 || f->vlan > I40E_MAX_VLANID) 1152 continue; 1153 (*vlan_list)[i++] = f->vlan; 1154 } 1155 err: 1156 spin_unlock_bh(&vsi->mac_filter_hash_lock); 1157 } 1158 1159 /** 1160 * i40e_set_vsi_promisc 1161 * @vf: pointer to the VF struct 1162 * @seid: VSI number 1163 * @multi_enable: set MAC L2 layer multicast promiscuous enable/disable 1164 * for a given VLAN 1165 * @unicast_enable: set MAC L2 layer unicast promiscuous enable/disable 1166 * for a given VLAN 1167 * @vl: List of VLANs - apply filter for given VLANs 1168 * @num_vlans: Number of elements in @vl 1169 **/ 1170 static i40e_status 1171 i40e_set_vsi_promisc(struct i40e_vf *vf, u16 seid, bool multi_enable, 1172 bool unicast_enable, s16 *vl, u16 num_vlans) 1173 { 1174 i40e_status aq_ret, aq_tmp = 0; 1175 struct i40e_pf *pf = vf->pf; 1176 struct i40e_hw *hw = &pf->hw; 1177 int i; 1178 1179 /* No VLAN to set promisc on, set on VSI */ 1180 if (!num_vlans || !vl) { 1181 aq_ret = i40e_aq_set_vsi_multicast_promiscuous(hw, seid, 1182 multi_enable, 1183 NULL); 1184 if (aq_ret) { 1185 int aq_err = pf->hw.aq.asq_last_status; 1186 1187 dev_err(&pf->pdev->dev, 1188 "VF %d failed to set multicast promiscuous mode err %s aq_err %s\n", 1189 vf->vf_id, 1190 i40e_stat_str(&pf->hw, aq_ret), 1191 i40e_aq_str(&pf->hw, aq_err)); 1192 1193 return aq_ret; 1194 } 1195 1196 aq_ret = i40e_aq_set_vsi_unicast_promiscuous(hw, seid, 1197 unicast_enable, 1198 NULL, true); 1199 1200 if (aq_ret) { 1201 int aq_err = pf->hw.aq.asq_last_status; 1202 1203 dev_err(&pf->pdev->dev, 1204 "VF %d failed to set unicast promiscuous mode err %s aq_err %s\n", 1205 vf->vf_id, 1206 i40e_stat_str(&pf->hw, aq_ret), 1207 i40e_aq_str(&pf->hw, aq_err)); 1208 } 1209 1210 return aq_ret; 1211 } 1212 1213 for (i = 0; i < num_vlans; i++) { 1214 aq_ret = i40e_aq_set_vsi_mc_promisc_on_vlan(hw, seid, 1215 multi_enable, 1216 vl[i], NULL); 1217 if (aq_ret) { 1218 int aq_err = pf->hw.aq.asq_last_status; 1219 1220 dev_err(&pf->pdev->dev, 1221 "VF %d failed to set multicast promiscuous mode err %s aq_err %s\n", 1222 vf->vf_id, 1223 i40e_stat_str(&pf->hw, aq_ret), 1224 i40e_aq_str(&pf->hw, aq_err)); 1225 1226 if (!aq_tmp) 1227 aq_tmp = aq_ret; 1228 } 1229 1230 aq_ret = i40e_aq_set_vsi_uc_promisc_on_vlan(hw, seid, 1231 unicast_enable, 1232 vl[i], NULL); 1233 if (aq_ret) { 1234 int aq_err = pf->hw.aq.asq_last_status; 1235 1236 dev_err(&pf->pdev->dev, 1237 "VF %d failed to set unicast promiscuous mode err %s aq_err %s\n", 1238 vf->vf_id, 1239 i40e_stat_str(&pf->hw, aq_ret), 1240 i40e_aq_str(&pf->hw, aq_err)); 1241 1242 if (!aq_tmp) 1243 aq_tmp = aq_ret; 1244 } 1245 } 1246 1247 if (aq_tmp) 1248 aq_ret = aq_tmp; 1249 1250 return aq_ret; 1251 } 1252 1253 /** 1254 * i40e_config_vf_promiscuous_mode 1255 * @vf: pointer to the VF info 1256 * @vsi_id: VSI id 1257 * @allmulti: set MAC L2 layer multicast promiscuous enable/disable 1258 * @alluni: set MAC L2 layer unicast promiscuous enable/disable 1259 * 1260 * Called from the VF to configure the promiscuous mode of 1261 * VF vsis and from the VF reset path to reset promiscuous mode. 1262 **/ 1263 static i40e_status i40e_config_vf_promiscuous_mode(struct i40e_vf *vf, 1264 u16 vsi_id, 1265 bool allmulti, 1266 bool alluni) 1267 { 1268 i40e_status aq_ret = I40E_SUCCESS; 1269 struct i40e_pf *pf = vf->pf; 1270 struct i40e_vsi *vsi; 1271 u16 num_vlans; 1272 s16 *vl; 1273 1274 vsi = i40e_find_vsi_from_id(pf, vsi_id); 1275 if (!i40e_vc_isvalid_vsi_id(vf, vsi_id) || !vsi) 1276 return I40E_ERR_PARAM; 1277 1278 if (vf->port_vlan_id) { 1279 aq_ret = i40e_set_vsi_promisc(vf, vsi->seid, allmulti, 1280 alluni, &vf->port_vlan_id, 1); 1281 return aq_ret; 1282 } else if (i40e_getnum_vf_vsi_vlan_filters(vsi)) { 1283 i40e_get_vlan_list_sync(vsi, &num_vlans, &vl); 1284 1285 if (!vl) 1286 return I40E_ERR_NO_MEMORY; 1287 1288 aq_ret = i40e_set_vsi_promisc(vf, vsi->seid, allmulti, alluni, 1289 vl, num_vlans); 1290 kfree(vl); 1291 return aq_ret; 1292 } 1293 1294 /* no VLANs to set on, set on VSI */ 1295 aq_ret = i40e_set_vsi_promisc(vf, vsi->seid, allmulti, alluni, 1296 NULL, 0); 1297 return aq_ret; 1298 } 1299 1300 /** 1301 * i40e_trigger_vf_reset 1302 * @vf: pointer to the VF structure 1303 * @flr: VFLR was issued or not 1304 * 1305 * Trigger hardware to start a reset for a particular VF. Expects the caller 1306 * to wait the proper amount of time to allow hardware to reset the VF before 1307 * it cleans up and restores VF functionality. 1308 **/ 1309 static void i40e_trigger_vf_reset(struct i40e_vf *vf, bool flr) 1310 { 1311 struct i40e_pf *pf = vf->pf; 1312 struct i40e_hw *hw = &pf->hw; 1313 u32 reg, reg_idx, bit_idx; 1314 1315 /* warn the VF */ 1316 clear_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states); 1317 1318 /* Disable VF's configuration API during reset. The flag is re-enabled 1319 * in i40e_alloc_vf_res(), when it's safe again to access VF's VSI. 1320 * It's normally disabled in i40e_free_vf_res(), but it's safer 1321 * to do it earlier to give some time to finish to any VF config 1322 * functions that may still be running at this point. 1323 */ 1324 clear_bit(I40E_VF_STATE_INIT, &vf->vf_states); 1325 1326 /* In the case of a VFLR, the HW has already reset the VF and we 1327 * just need to clean up, so don't hit the VFRTRIG register. 1328 */ 1329 if (!flr) { 1330 /* reset VF using VPGEN_VFRTRIG reg */ 1331 reg = rd32(hw, I40E_VPGEN_VFRTRIG(vf->vf_id)); 1332 reg |= I40E_VPGEN_VFRTRIG_VFSWR_MASK; 1333 wr32(hw, I40E_VPGEN_VFRTRIG(vf->vf_id), reg); 1334 i40e_flush(hw); 1335 } 1336 /* clear the VFLR bit in GLGEN_VFLRSTAT */ 1337 reg_idx = (hw->func_caps.vf_base_id + vf->vf_id) / 32; 1338 bit_idx = (hw->func_caps.vf_base_id + vf->vf_id) % 32; 1339 wr32(hw, I40E_GLGEN_VFLRSTAT(reg_idx), BIT(bit_idx)); 1340 i40e_flush(hw); 1341 1342 if (i40e_quiesce_vf_pci(vf)) 1343 dev_err(&pf->pdev->dev, "VF %d PCI transactions stuck\n", 1344 vf->vf_id); 1345 } 1346 1347 /** 1348 * i40e_cleanup_reset_vf 1349 * @vf: pointer to the VF structure 1350 * 1351 * Cleanup a VF after the hardware reset is finished. Expects the caller to 1352 * have verified whether the reset is finished properly, and ensure the 1353 * minimum amount of wait time has passed. 1354 **/ 1355 static void i40e_cleanup_reset_vf(struct i40e_vf *vf) 1356 { 1357 struct i40e_pf *pf = vf->pf; 1358 struct i40e_hw *hw = &pf->hw; 1359 u32 reg; 1360 1361 /* disable promisc modes in case they were enabled */ 1362 i40e_config_vf_promiscuous_mode(vf, vf->lan_vsi_id, false, false); 1363 1364 /* free VF resources to begin resetting the VSI state */ 1365 i40e_free_vf_res(vf); 1366 1367 /* Enable hardware by clearing the reset bit in the VPGEN_VFRTRIG reg. 1368 * By doing this we allow HW to access VF memory at any point. If we 1369 * did it any sooner, HW could access memory while it was being freed 1370 * in i40e_free_vf_res(), causing an IOMMU fault. 1371 * 1372 * On the other hand, this needs to be done ASAP, because the VF driver 1373 * is waiting for this to happen and may report a timeout. It's 1374 * harmless, but it gets logged into Guest OS kernel log, so best avoid 1375 * it. 1376 */ 1377 reg = rd32(hw, I40E_VPGEN_VFRTRIG(vf->vf_id)); 1378 reg &= ~I40E_VPGEN_VFRTRIG_VFSWR_MASK; 1379 wr32(hw, I40E_VPGEN_VFRTRIG(vf->vf_id), reg); 1380 1381 /* reallocate VF resources to finish resetting the VSI state */ 1382 if (!i40e_alloc_vf_res(vf)) { 1383 int abs_vf_id = vf->vf_id + hw->func_caps.vf_base_id; 1384 i40e_enable_vf_mappings(vf); 1385 set_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states); 1386 clear_bit(I40E_VF_STATE_DISABLED, &vf->vf_states); 1387 /* Do not notify the client during VF init */ 1388 if (!test_and_clear_bit(I40E_VF_STATE_PRE_ENABLE, 1389 &vf->vf_states)) 1390 i40e_notify_client_of_vf_reset(pf, abs_vf_id); 1391 vf->num_vlan = 0; 1392 } 1393 1394 /* Tell the VF driver the reset is done. This needs to be done only 1395 * after VF has been fully initialized, because the VF driver may 1396 * request resources immediately after setting this flag. 1397 */ 1398 wr32(hw, I40E_VFGEN_RSTAT1(vf->vf_id), VIRTCHNL_VFR_VFACTIVE); 1399 } 1400 1401 /** 1402 * i40e_reset_vf 1403 * @vf: pointer to the VF structure 1404 * @flr: VFLR was issued or not 1405 * 1406 * Returns true if the VF is reset, false otherwise. 1407 **/ 1408 bool i40e_reset_vf(struct i40e_vf *vf, bool flr) 1409 { 1410 struct i40e_pf *pf = vf->pf; 1411 struct i40e_hw *hw = &pf->hw; 1412 bool rsd = false; 1413 u32 reg; 1414 int i; 1415 1416 /* If the VFs have been disabled, this means something else is 1417 * resetting the VF, so we shouldn't continue. 1418 */ 1419 if (test_and_set_bit(__I40E_VF_DISABLE, pf->state)) 1420 return false; 1421 1422 i40e_trigger_vf_reset(vf, flr); 1423 1424 /* poll VPGEN_VFRSTAT reg to make sure 1425 * that reset is complete 1426 */ 1427 for (i = 0; i < 10; i++) { 1428 /* VF reset requires driver to first reset the VF and then 1429 * poll the status register to make sure that the reset 1430 * completed successfully. Due to internal HW FIFO flushes, 1431 * we must wait 10ms before the register will be valid. 1432 */ 1433 usleep_range(10000, 20000); 1434 reg = rd32(hw, I40E_VPGEN_VFRSTAT(vf->vf_id)); 1435 if (reg & I40E_VPGEN_VFRSTAT_VFRD_MASK) { 1436 rsd = true; 1437 break; 1438 } 1439 } 1440 1441 if (flr) 1442 usleep_range(10000, 20000); 1443 1444 if (!rsd) 1445 dev_err(&pf->pdev->dev, "VF reset check timeout on VF %d\n", 1446 vf->vf_id); 1447 usleep_range(10000, 20000); 1448 1449 /* On initial reset, we don't have any queues to disable */ 1450 if (vf->lan_vsi_idx != 0) 1451 i40e_vsi_stop_rings(pf->vsi[vf->lan_vsi_idx]); 1452 1453 i40e_cleanup_reset_vf(vf); 1454 1455 i40e_flush(hw); 1456 clear_bit(__I40E_VF_DISABLE, pf->state); 1457 1458 return true; 1459 } 1460 1461 /** 1462 * i40e_reset_all_vfs 1463 * @pf: pointer to the PF structure 1464 * @flr: VFLR was issued or not 1465 * 1466 * Reset all allocated VFs in one go. First, tell the hardware to reset each 1467 * VF, then do all the waiting in one chunk, and finally finish restoring each 1468 * VF after the wait. This is useful during PF routines which need to reset 1469 * all VFs, as otherwise it must perform these resets in a serialized fashion. 1470 * 1471 * Returns true if any VFs were reset, and false otherwise. 1472 **/ 1473 bool i40e_reset_all_vfs(struct i40e_pf *pf, bool flr) 1474 { 1475 struct i40e_hw *hw = &pf->hw; 1476 struct i40e_vf *vf; 1477 int i, v; 1478 u32 reg; 1479 1480 /* If we don't have any VFs, then there is nothing to reset */ 1481 if (!pf->num_alloc_vfs) 1482 return false; 1483 1484 /* If VFs have been disabled, there is no need to reset */ 1485 if (test_and_set_bit(__I40E_VF_DISABLE, pf->state)) 1486 return false; 1487 1488 /* Begin reset on all VFs at once */ 1489 for (v = 0; v < pf->num_alloc_vfs; v++) 1490 i40e_trigger_vf_reset(&pf->vf[v], flr); 1491 1492 /* HW requires some time to make sure it can flush the FIFO for a VF 1493 * when it resets it. Poll the VPGEN_VFRSTAT register for each VF in 1494 * sequence to make sure that it has completed. We'll keep track of 1495 * the VFs using a simple iterator that increments once that VF has 1496 * finished resetting. 1497 */ 1498 for (i = 0, v = 0; i < 10 && v < pf->num_alloc_vfs; i++) { 1499 usleep_range(10000, 20000); 1500 1501 /* Check each VF in sequence, beginning with the VF to fail 1502 * the previous check. 1503 */ 1504 while (v < pf->num_alloc_vfs) { 1505 vf = &pf->vf[v]; 1506 reg = rd32(hw, I40E_VPGEN_VFRSTAT(vf->vf_id)); 1507 if (!(reg & I40E_VPGEN_VFRSTAT_VFRD_MASK)) 1508 break; 1509 1510 /* If the current VF has finished resetting, move on 1511 * to the next VF in sequence. 1512 */ 1513 v++; 1514 } 1515 } 1516 1517 if (flr) 1518 usleep_range(10000, 20000); 1519 1520 /* Display a warning if at least one VF didn't manage to reset in 1521 * time, but continue on with the operation. 1522 */ 1523 if (v < pf->num_alloc_vfs) 1524 dev_err(&pf->pdev->dev, "VF reset check timeout on VF %d\n", 1525 pf->vf[v].vf_id); 1526 usleep_range(10000, 20000); 1527 1528 /* Begin disabling all the rings associated with VFs, but do not wait 1529 * between each VF. 1530 */ 1531 for (v = 0; v < pf->num_alloc_vfs; v++) { 1532 /* On initial reset, we don't have any queues to disable */ 1533 if (pf->vf[v].lan_vsi_idx == 0) 1534 continue; 1535 1536 i40e_vsi_stop_rings_no_wait(pf->vsi[pf->vf[v].lan_vsi_idx]); 1537 } 1538 1539 /* Now that we've notified HW to disable all of the VF rings, wait 1540 * until they finish. 1541 */ 1542 for (v = 0; v < pf->num_alloc_vfs; v++) { 1543 /* On initial reset, we don't have any queues to disable */ 1544 if (pf->vf[v].lan_vsi_idx == 0) 1545 continue; 1546 1547 i40e_vsi_wait_queues_disabled(pf->vsi[pf->vf[v].lan_vsi_idx]); 1548 } 1549 1550 /* Hw may need up to 50ms to finish disabling the RX queues. We 1551 * minimize the wait by delaying only once for all VFs. 1552 */ 1553 mdelay(50); 1554 1555 /* Finish the reset on each VF */ 1556 for (v = 0; v < pf->num_alloc_vfs; v++) 1557 i40e_cleanup_reset_vf(&pf->vf[v]); 1558 1559 i40e_flush(hw); 1560 clear_bit(__I40E_VF_DISABLE, pf->state); 1561 1562 return true; 1563 } 1564 1565 /** 1566 * i40e_free_vfs 1567 * @pf: pointer to the PF structure 1568 * 1569 * free VF resources 1570 **/ 1571 void i40e_free_vfs(struct i40e_pf *pf) 1572 { 1573 struct i40e_hw *hw = &pf->hw; 1574 u32 reg_idx, bit_idx; 1575 int i, tmp, vf_id; 1576 1577 if (!pf->vf) 1578 return; 1579 while (test_and_set_bit(__I40E_VF_DISABLE, pf->state)) 1580 usleep_range(1000, 2000); 1581 1582 i40e_notify_client_of_vf_enable(pf, 0); 1583 1584 /* Amortize wait time by stopping all VFs at the same time */ 1585 for (i = 0; i < pf->num_alloc_vfs; i++) { 1586 if (test_bit(I40E_VF_STATE_INIT, &pf->vf[i].vf_states)) 1587 continue; 1588 1589 i40e_vsi_stop_rings_no_wait(pf->vsi[pf->vf[i].lan_vsi_idx]); 1590 } 1591 1592 for (i = 0; i < pf->num_alloc_vfs; i++) { 1593 if (test_bit(I40E_VF_STATE_INIT, &pf->vf[i].vf_states)) 1594 continue; 1595 1596 i40e_vsi_wait_queues_disabled(pf->vsi[pf->vf[i].lan_vsi_idx]); 1597 } 1598 1599 /* Disable IOV before freeing resources. This lets any VF drivers 1600 * running in the host get themselves cleaned up before we yank 1601 * the carpet out from underneath their feet. 1602 */ 1603 if (!pci_vfs_assigned(pf->pdev)) 1604 pci_disable_sriov(pf->pdev); 1605 else 1606 dev_warn(&pf->pdev->dev, "VFs are assigned - not disabling SR-IOV\n"); 1607 1608 /* free up VF resources */ 1609 tmp = pf->num_alloc_vfs; 1610 pf->num_alloc_vfs = 0; 1611 for (i = 0; i < tmp; i++) { 1612 if (test_bit(I40E_VF_STATE_INIT, &pf->vf[i].vf_states)) 1613 i40e_free_vf_res(&pf->vf[i]); 1614 /* disable qp mappings */ 1615 i40e_disable_vf_mappings(&pf->vf[i]); 1616 } 1617 1618 kfree(pf->vf); 1619 pf->vf = NULL; 1620 1621 /* This check is for when the driver is unloaded while VFs are 1622 * assigned. Setting the number of VFs to 0 through sysfs is caught 1623 * before this function ever gets called. 1624 */ 1625 if (!pci_vfs_assigned(pf->pdev)) { 1626 /* Acknowledge VFLR for all VFS. Without this, VFs will fail to 1627 * work correctly when SR-IOV gets re-enabled. 1628 */ 1629 for (vf_id = 0; vf_id < tmp; vf_id++) { 1630 reg_idx = (hw->func_caps.vf_base_id + vf_id) / 32; 1631 bit_idx = (hw->func_caps.vf_base_id + vf_id) % 32; 1632 wr32(hw, I40E_GLGEN_VFLRSTAT(reg_idx), BIT(bit_idx)); 1633 } 1634 } 1635 clear_bit(__I40E_VF_DISABLE, pf->state); 1636 } 1637 1638 #ifdef CONFIG_PCI_IOV 1639 /** 1640 * i40e_alloc_vfs 1641 * @pf: pointer to the PF structure 1642 * @num_alloc_vfs: number of VFs to allocate 1643 * 1644 * allocate VF resources 1645 **/ 1646 int i40e_alloc_vfs(struct i40e_pf *pf, u16 num_alloc_vfs) 1647 { 1648 struct i40e_vf *vfs; 1649 int i, ret = 0; 1650 1651 /* Disable interrupt 0 so we don't try to handle the VFLR. */ 1652 i40e_irq_dynamic_disable_icr0(pf); 1653 1654 /* Check to see if we're just allocating resources for extant VFs */ 1655 if (pci_num_vf(pf->pdev) != num_alloc_vfs) { 1656 ret = pci_enable_sriov(pf->pdev, num_alloc_vfs); 1657 if (ret) { 1658 pf->flags &= ~I40E_FLAG_VEB_MODE_ENABLED; 1659 pf->num_alloc_vfs = 0; 1660 goto err_iov; 1661 } 1662 } 1663 /* allocate memory */ 1664 vfs = kcalloc(num_alloc_vfs, sizeof(struct i40e_vf), GFP_KERNEL); 1665 if (!vfs) { 1666 ret = -ENOMEM; 1667 goto err_alloc; 1668 } 1669 pf->vf = vfs; 1670 1671 /* apply default profile */ 1672 for (i = 0; i < num_alloc_vfs; i++) { 1673 vfs[i].pf = pf; 1674 vfs[i].parent_type = I40E_SWITCH_ELEMENT_TYPE_VEB; 1675 vfs[i].vf_id = i; 1676 1677 /* assign default capabilities */ 1678 set_bit(I40E_VIRTCHNL_VF_CAP_L2, &vfs[i].vf_caps); 1679 vfs[i].spoofchk = true; 1680 1681 set_bit(I40E_VF_STATE_PRE_ENABLE, &vfs[i].vf_states); 1682 1683 } 1684 pf->num_alloc_vfs = num_alloc_vfs; 1685 1686 /* VF resources get allocated during reset */ 1687 i40e_reset_all_vfs(pf, false); 1688 1689 i40e_notify_client_of_vf_enable(pf, num_alloc_vfs); 1690 1691 err_alloc: 1692 if (ret) 1693 i40e_free_vfs(pf); 1694 err_iov: 1695 /* Re-enable interrupt 0. */ 1696 i40e_irq_dynamic_enable_icr0(pf); 1697 return ret; 1698 } 1699 1700 #endif 1701 /** 1702 * i40e_pci_sriov_enable 1703 * @pdev: pointer to a pci_dev structure 1704 * @num_vfs: number of VFs to allocate 1705 * 1706 * Enable or change the number of VFs 1707 **/ 1708 static int i40e_pci_sriov_enable(struct pci_dev *pdev, int num_vfs) 1709 { 1710 #ifdef CONFIG_PCI_IOV 1711 struct i40e_pf *pf = pci_get_drvdata(pdev); 1712 int pre_existing_vfs = pci_num_vf(pdev); 1713 int err = 0; 1714 1715 if (test_bit(__I40E_TESTING, pf->state)) { 1716 dev_warn(&pdev->dev, 1717 "Cannot enable SR-IOV virtual functions while the device is undergoing diagnostic testing\n"); 1718 err = -EPERM; 1719 goto err_out; 1720 } 1721 1722 if (pre_existing_vfs && pre_existing_vfs != num_vfs) 1723 i40e_free_vfs(pf); 1724 else if (pre_existing_vfs && pre_existing_vfs == num_vfs) 1725 goto out; 1726 1727 if (num_vfs > pf->num_req_vfs) { 1728 dev_warn(&pdev->dev, "Unable to enable %d VFs. Limited to %d VFs due to device resource constraints.\n", 1729 num_vfs, pf->num_req_vfs); 1730 err = -EPERM; 1731 goto err_out; 1732 } 1733 1734 dev_info(&pdev->dev, "Allocating %d VFs.\n", num_vfs); 1735 err = i40e_alloc_vfs(pf, num_vfs); 1736 if (err) { 1737 dev_warn(&pdev->dev, "Failed to enable SR-IOV: %d\n", err); 1738 goto err_out; 1739 } 1740 1741 out: 1742 return num_vfs; 1743 1744 err_out: 1745 return err; 1746 #endif 1747 return 0; 1748 } 1749 1750 /** 1751 * i40e_pci_sriov_configure 1752 * @pdev: pointer to a pci_dev structure 1753 * @num_vfs: number of VFs to allocate 1754 * 1755 * Enable or change the number of VFs. Called when the user updates the number 1756 * of VFs in sysfs. 1757 **/ 1758 int i40e_pci_sriov_configure(struct pci_dev *pdev, int num_vfs) 1759 { 1760 struct i40e_pf *pf = pci_get_drvdata(pdev); 1761 int ret = 0; 1762 1763 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 1764 dev_warn(&pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 1765 return -EAGAIN; 1766 } 1767 1768 if (num_vfs) { 1769 if (!(pf->flags & I40E_FLAG_VEB_MODE_ENABLED)) { 1770 pf->flags |= I40E_FLAG_VEB_MODE_ENABLED; 1771 i40e_do_reset_safe(pf, I40E_PF_RESET_FLAG); 1772 } 1773 ret = i40e_pci_sriov_enable(pdev, num_vfs); 1774 goto sriov_configure_out; 1775 } 1776 1777 if (!pci_vfs_assigned(pf->pdev)) { 1778 i40e_free_vfs(pf); 1779 pf->flags &= ~I40E_FLAG_VEB_MODE_ENABLED; 1780 i40e_do_reset_safe(pf, I40E_PF_RESET_FLAG); 1781 } else { 1782 dev_warn(&pdev->dev, "Unable to free VFs because some are assigned to VMs.\n"); 1783 ret = -EINVAL; 1784 goto sriov_configure_out; 1785 } 1786 sriov_configure_out: 1787 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 1788 return ret; 1789 } 1790 1791 /***********************virtual channel routines******************/ 1792 1793 /** 1794 * i40e_vc_send_msg_to_vf 1795 * @vf: pointer to the VF info 1796 * @v_opcode: virtual channel opcode 1797 * @v_retval: virtual channel return value 1798 * @msg: pointer to the msg buffer 1799 * @msglen: msg length 1800 * 1801 * send msg to VF 1802 **/ 1803 static int i40e_vc_send_msg_to_vf(struct i40e_vf *vf, u32 v_opcode, 1804 u32 v_retval, u8 *msg, u16 msglen) 1805 { 1806 struct i40e_pf *pf; 1807 struct i40e_hw *hw; 1808 int abs_vf_id; 1809 i40e_status aq_ret; 1810 1811 /* validate the request */ 1812 if (!vf || vf->vf_id >= vf->pf->num_alloc_vfs) 1813 return -EINVAL; 1814 1815 pf = vf->pf; 1816 hw = &pf->hw; 1817 abs_vf_id = vf->vf_id + hw->func_caps.vf_base_id; 1818 1819 /* single place to detect unsuccessful return values */ 1820 if (v_retval) { 1821 vf->num_invalid_msgs++; 1822 dev_info(&pf->pdev->dev, "VF %d failed opcode %d, retval: %d\n", 1823 vf->vf_id, v_opcode, v_retval); 1824 if (vf->num_invalid_msgs > 1825 I40E_DEFAULT_NUM_INVALID_MSGS_ALLOWED) { 1826 dev_err(&pf->pdev->dev, 1827 "Number of invalid messages exceeded for VF %d\n", 1828 vf->vf_id); 1829 dev_err(&pf->pdev->dev, "Use PF Control I/F to enable the VF\n"); 1830 set_bit(I40E_VF_STATE_DISABLED, &vf->vf_states); 1831 } 1832 } else { 1833 vf->num_valid_msgs++; 1834 /* reset the invalid counter, if a valid message is received. */ 1835 vf->num_invalid_msgs = 0; 1836 } 1837 1838 aq_ret = i40e_aq_send_msg_to_vf(hw, abs_vf_id, v_opcode, v_retval, 1839 msg, msglen, NULL); 1840 if (aq_ret) { 1841 dev_info(&pf->pdev->dev, 1842 "Unable to send the message to VF %d aq_err %d\n", 1843 vf->vf_id, pf->hw.aq.asq_last_status); 1844 return -EIO; 1845 } 1846 1847 return 0; 1848 } 1849 1850 /** 1851 * i40e_vc_send_resp_to_vf 1852 * @vf: pointer to the VF info 1853 * @opcode: operation code 1854 * @retval: return value 1855 * 1856 * send resp msg to VF 1857 **/ 1858 static int i40e_vc_send_resp_to_vf(struct i40e_vf *vf, 1859 enum virtchnl_ops opcode, 1860 i40e_status retval) 1861 { 1862 return i40e_vc_send_msg_to_vf(vf, opcode, retval, NULL, 0); 1863 } 1864 1865 /** 1866 * i40e_vc_get_version_msg 1867 * @vf: pointer to the VF info 1868 * @msg: pointer to the msg buffer 1869 * 1870 * called from the VF to request the API version used by the PF 1871 **/ 1872 static int i40e_vc_get_version_msg(struct i40e_vf *vf, u8 *msg) 1873 { 1874 struct virtchnl_version_info info = { 1875 VIRTCHNL_VERSION_MAJOR, VIRTCHNL_VERSION_MINOR 1876 }; 1877 1878 vf->vf_ver = *(struct virtchnl_version_info *)msg; 1879 /* VFs running the 1.0 API expect to get 1.0 back or they will cry. */ 1880 if (VF_IS_V10(&vf->vf_ver)) 1881 info.minor = VIRTCHNL_VERSION_MINOR_NO_VF_CAPS; 1882 return i40e_vc_send_msg_to_vf(vf, VIRTCHNL_OP_VERSION, 1883 I40E_SUCCESS, (u8 *)&info, 1884 sizeof(struct virtchnl_version_info)); 1885 } 1886 1887 /** 1888 * i40e_del_qch - delete all the additional VSIs created as a part of ADq 1889 * @vf: pointer to VF structure 1890 **/ 1891 static void i40e_del_qch(struct i40e_vf *vf) 1892 { 1893 struct i40e_pf *pf = vf->pf; 1894 int i; 1895 1896 /* first element in the array belongs to primary VF VSI and we shouldn't 1897 * delete it. We should however delete the rest of the VSIs created 1898 */ 1899 for (i = 1; i < vf->num_tc; i++) { 1900 if (vf->ch[i].vsi_idx) { 1901 i40e_vsi_release(pf->vsi[vf->ch[i].vsi_idx]); 1902 vf->ch[i].vsi_idx = 0; 1903 vf->ch[i].vsi_id = 0; 1904 } 1905 } 1906 } 1907 1908 /** 1909 * i40e_vc_get_vf_resources_msg 1910 * @vf: pointer to the VF info 1911 * @msg: pointer to the msg buffer 1912 * 1913 * called from the VF to request its resources 1914 **/ 1915 static int i40e_vc_get_vf_resources_msg(struct i40e_vf *vf, u8 *msg) 1916 { 1917 struct virtchnl_vf_resource *vfres = NULL; 1918 struct i40e_pf *pf = vf->pf; 1919 i40e_status aq_ret = 0; 1920 struct i40e_vsi *vsi; 1921 int num_vsis = 1; 1922 size_t len = 0; 1923 int ret; 1924 1925 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 1926 aq_ret = I40E_ERR_PARAM; 1927 goto err; 1928 } 1929 1930 len = struct_size(vfres, vsi_res, num_vsis); 1931 vfres = kzalloc(len, GFP_KERNEL); 1932 if (!vfres) { 1933 aq_ret = I40E_ERR_NO_MEMORY; 1934 len = 0; 1935 goto err; 1936 } 1937 if (VF_IS_V11(&vf->vf_ver)) 1938 vf->driver_caps = *(u32 *)msg; 1939 else 1940 vf->driver_caps = VIRTCHNL_VF_OFFLOAD_L2 | 1941 VIRTCHNL_VF_OFFLOAD_RSS_REG | 1942 VIRTCHNL_VF_OFFLOAD_VLAN; 1943 1944 vfres->vf_cap_flags = VIRTCHNL_VF_OFFLOAD_L2; 1945 vsi = pf->vsi[vf->lan_vsi_idx]; 1946 if (!vsi->info.pvid) 1947 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_VLAN; 1948 1949 if (i40e_vf_client_capable(pf, vf->vf_id) && 1950 (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_IWARP)) { 1951 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_IWARP; 1952 set_bit(I40E_VF_STATE_IWARPENA, &vf->vf_states); 1953 } else { 1954 clear_bit(I40E_VF_STATE_IWARPENA, &vf->vf_states); 1955 } 1956 1957 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_RSS_PF) { 1958 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_RSS_PF; 1959 } else { 1960 if ((pf->hw_features & I40E_HW_RSS_AQ_CAPABLE) && 1961 (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_RSS_AQ)) 1962 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_RSS_AQ; 1963 else 1964 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_RSS_REG; 1965 } 1966 1967 if (pf->hw_features & I40E_HW_MULTIPLE_TCP_UDP_RSS_PCTYPE) { 1968 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_RSS_PCTYPE_V2) 1969 vfres->vf_cap_flags |= 1970 VIRTCHNL_VF_OFFLOAD_RSS_PCTYPE_V2; 1971 } 1972 1973 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_ENCAP) 1974 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_ENCAP; 1975 1976 if ((pf->hw_features & I40E_HW_OUTER_UDP_CSUM_CAPABLE) && 1977 (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_ENCAP_CSUM)) 1978 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_ENCAP_CSUM; 1979 1980 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_RX_POLLING) { 1981 if (pf->flags & I40E_FLAG_MFP_ENABLED) { 1982 dev_err(&pf->pdev->dev, 1983 "VF %d requested polling mode: this feature is supported only when the device is running in single function per port (SFP) mode\n", 1984 vf->vf_id); 1985 aq_ret = I40E_ERR_PARAM; 1986 goto err; 1987 } 1988 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_RX_POLLING; 1989 } 1990 1991 if (pf->hw_features & I40E_HW_WB_ON_ITR_CAPABLE) { 1992 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_WB_ON_ITR) 1993 vfres->vf_cap_flags |= 1994 VIRTCHNL_VF_OFFLOAD_WB_ON_ITR; 1995 } 1996 1997 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_REQ_QUEUES) 1998 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_REQ_QUEUES; 1999 2000 if (vf->driver_caps & VIRTCHNL_VF_OFFLOAD_ADQ) 2001 vfres->vf_cap_flags |= VIRTCHNL_VF_OFFLOAD_ADQ; 2002 2003 vfres->num_vsis = num_vsis; 2004 vfres->num_queue_pairs = vf->num_queue_pairs; 2005 vfres->max_vectors = pf->hw.func_caps.num_msix_vectors_vf; 2006 vfres->rss_key_size = I40E_HKEY_ARRAY_SIZE; 2007 vfres->rss_lut_size = I40E_VF_HLUT_ARRAY_SIZE; 2008 2009 if (vf->lan_vsi_idx) { 2010 vfres->vsi_res[0].vsi_id = vf->lan_vsi_id; 2011 vfres->vsi_res[0].vsi_type = VIRTCHNL_VSI_SRIOV; 2012 vfres->vsi_res[0].num_queue_pairs = vsi->alloc_queue_pairs; 2013 /* VFs only use TC 0 */ 2014 vfres->vsi_res[0].qset_handle 2015 = le16_to_cpu(vsi->info.qs_handle[0]); 2016 ether_addr_copy(vfres->vsi_res[0].default_mac_addr, 2017 vf->default_lan_addr.addr); 2018 } 2019 set_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states); 2020 2021 err: 2022 /* send the response back to the VF */ 2023 ret = i40e_vc_send_msg_to_vf(vf, VIRTCHNL_OP_GET_VF_RESOURCES, 2024 aq_ret, (u8 *)vfres, len); 2025 2026 kfree(vfres); 2027 return ret; 2028 } 2029 2030 /** 2031 * i40e_vc_reset_vf_msg 2032 * @vf: pointer to the VF info 2033 * 2034 * called from the VF to reset itself, 2035 * unlike other virtchnl messages, PF driver 2036 * doesn't send the response back to the VF 2037 **/ 2038 static void i40e_vc_reset_vf_msg(struct i40e_vf *vf) 2039 { 2040 if (test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) 2041 i40e_reset_vf(vf, false); 2042 } 2043 2044 /** 2045 * i40e_vc_config_promiscuous_mode_msg 2046 * @vf: pointer to the VF info 2047 * @msg: pointer to the msg buffer 2048 * 2049 * called from the VF to configure the promiscuous mode of 2050 * VF vsis 2051 **/ 2052 static int i40e_vc_config_promiscuous_mode_msg(struct i40e_vf *vf, u8 *msg) 2053 { 2054 struct virtchnl_promisc_info *info = 2055 (struct virtchnl_promisc_info *)msg; 2056 struct i40e_pf *pf = vf->pf; 2057 i40e_status aq_ret = 0; 2058 bool allmulti = false; 2059 bool alluni = false; 2060 2061 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2062 aq_ret = I40E_ERR_PARAM; 2063 goto err_out; 2064 } 2065 if (!test_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps)) { 2066 dev_err(&pf->pdev->dev, 2067 "Unprivileged VF %d is attempting to configure promiscuous mode\n", 2068 vf->vf_id); 2069 2070 /* Lie to the VF on purpose, because this is an error we can 2071 * ignore. Unprivileged VF is not a virtual channel error. 2072 */ 2073 aq_ret = 0; 2074 goto err_out; 2075 } 2076 2077 if (info->flags > I40E_MAX_VF_PROMISC_FLAGS) { 2078 aq_ret = I40E_ERR_PARAM; 2079 goto err_out; 2080 } 2081 2082 if (!i40e_vc_isvalid_vsi_id(vf, info->vsi_id)) { 2083 aq_ret = I40E_ERR_PARAM; 2084 goto err_out; 2085 } 2086 2087 /* Multicast promiscuous handling*/ 2088 if (info->flags & FLAG_VF_MULTICAST_PROMISC) 2089 allmulti = true; 2090 2091 if (info->flags & FLAG_VF_UNICAST_PROMISC) 2092 alluni = true; 2093 aq_ret = i40e_config_vf_promiscuous_mode(vf, info->vsi_id, allmulti, 2094 alluni); 2095 if (aq_ret) 2096 goto err_out; 2097 2098 if (allmulti) { 2099 if (!test_and_set_bit(I40E_VF_STATE_MC_PROMISC, 2100 &vf->vf_states)) 2101 dev_info(&pf->pdev->dev, 2102 "VF %d successfully set multicast promiscuous mode\n", 2103 vf->vf_id); 2104 } else if (test_and_clear_bit(I40E_VF_STATE_MC_PROMISC, 2105 &vf->vf_states)) 2106 dev_info(&pf->pdev->dev, 2107 "VF %d successfully unset multicast promiscuous mode\n", 2108 vf->vf_id); 2109 2110 if (alluni) { 2111 if (!test_and_set_bit(I40E_VF_STATE_UC_PROMISC, 2112 &vf->vf_states)) 2113 dev_info(&pf->pdev->dev, 2114 "VF %d successfully set unicast promiscuous mode\n", 2115 vf->vf_id); 2116 } else if (test_and_clear_bit(I40E_VF_STATE_UC_PROMISC, 2117 &vf->vf_states)) 2118 dev_info(&pf->pdev->dev, 2119 "VF %d successfully unset unicast promiscuous mode\n", 2120 vf->vf_id); 2121 2122 err_out: 2123 /* send the response to the VF */ 2124 return i40e_vc_send_resp_to_vf(vf, 2125 VIRTCHNL_OP_CONFIG_PROMISCUOUS_MODE, 2126 aq_ret); 2127 } 2128 2129 /** 2130 * i40e_vc_config_queues_msg 2131 * @vf: pointer to the VF info 2132 * @msg: pointer to the msg buffer 2133 * 2134 * called from the VF to configure the rx/tx 2135 * queues 2136 **/ 2137 static int i40e_vc_config_queues_msg(struct i40e_vf *vf, u8 *msg) 2138 { 2139 struct virtchnl_vsi_queue_config_info *qci = 2140 (struct virtchnl_vsi_queue_config_info *)msg; 2141 struct virtchnl_queue_pair_info *qpi; 2142 struct i40e_pf *pf = vf->pf; 2143 u16 vsi_id, vsi_queue_id = 0; 2144 u16 num_qps_all = 0; 2145 i40e_status aq_ret = 0; 2146 int i, j = 0, idx = 0; 2147 2148 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2149 aq_ret = I40E_ERR_PARAM; 2150 goto error_param; 2151 } 2152 2153 if (!i40e_vc_isvalid_vsi_id(vf, qci->vsi_id)) { 2154 aq_ret = I40E_ERR_PARAM; 2155 goto error_param; 2156 } 2157 2158 if (qci->num_queue_pairs > I40E_MAX_VF_QUEUES) { 2159 aq_ret = I40E_ERR_PARAM; 2160 goto error_param; 2161 } 2162 2163 if (vf->adq_enabled) { 2164 for (i = 0; i < I40E_MAX_VF_VSI; i++) 2165 num_qps_all += vf->ch[i].num_qps; 2166 if (num_qps_all != qci->num_queue_pairs) { 2167 aq_ret = I40E_ERR_PARAM; 2168 goto error_param; 2169 } 2170 } 2171 2172 vsi_id = qci->vsi_id; 2173 2174 for (i = 0; i < qci->num_queue_pairs; i++) { 2175 qpi = &qci->qpair[i]; 2176 2177 if (!vf->adq_enabled) { 2178 if (!i40e_vc_isvalid_queue_id(vf, vsi_id, 2179 qpi->txq.queue_id)) { 2180 aq_ret = I40E_ERR_PARAM; 2181 goto error_param; 2182 } 2183 2184 vsi_queue_id = qpi->txq.queue_id; 2185 2186 if (qpi->txq.vsi_id != qci->vsi_id || 2187 qpi->rxq.vsi_id != qci->vsi_id || 2188 qpi->rxq.queue_id != vsi_queue_id) { 2189 aq_ret = I40E_ERR_PARAM; 2190 goto error_param; 2191 } 2192 } 2193 2194 if (vf->adq_enabled) { 2195 if (idx >= ARRAY_SIZE(vf->ch)) { 2196 aq_ret = I40E_ERR_NO_AVAILABLE_VSI; 2197 goto error_param; 2198 } 2199 vsi_id = vf->ch[idx].vsi_id; 2200 } 2201 2202 if (i40e_config_vsi_rx_queue(vf, vsi_id, vsi_queue_id, 2203 &qpi->rxq) || 2204 i40e_config_vsi_tx_queue(vf, vsi_id, vsi_queue_id, 2205 &qpi->txq)) { 2206 aq_ret = I40E_ERR_PARAM; 2207 goto error_param; 2208 } 2209 2210 /* For ADq there can be up to 4 VSIs with max 4 queues each. 2211 * VF does not know about these additional VSIs and all 2212 * it cares is about its own queues. PF configures these queues 2213 * to its appropriate VSIs based on TC mapping 2214 */ 2215 if (vf->adq_enabled) { 2216 if (idx >= ARRAY_SIZE(vf->ch)) { 2217 aq_ret = I40E_ERR_NO_AVAILABLE_VSI; 2218 goto error_param; 2219 } 2220 if (j == (vf->ch[idx].num_qps - 1)) { 2221 idx++; 2222 j = 0; /* resetting the queue count */ 2223 vsi_queue_id = 0; 2224 } else { 2225 j++; 2226 vsi_queue_id++; 2227 } 2228 } 2229 } 2230 /* set vsi num_queue_pairs in use to num configured by VF */ 2231 if (!vf->adq_enabled) { 2232 pf->vsi[vf->lan_vsi_idx]->num_queue_pairs = 2233 qci->num_queue_pairs; 2234 } else { 2235 for (i = 0; i < vf->num_tc; i++) 2236 pf->vsi[vf->ch[i].vsi_idx]->num_queue_pairs = 2237 vf->ch[i].num_qps; 2238 } 2239 2240 error_param: 2241 /* send the response to the VF */ 2242 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_CONFIG_VSI_QUEUES, 2243 aq_ret); 2244 } 2245 2246 /** 2247 * i40e_validate_queue_map - check queue map is valid 2248 * @vf: the VF structure pointer 2249 * @vsi_id: vsi id 2250 * @queuemap: Tx or Rx queue map 2251 * 2252 * check if Tx or Rx queue map is valid 2253 **/ 2254 static int i40e_validate_queue_map(struct i40e_vf *vf, u16 vsi_id, 2255 unsigned long queuemap) 2256 { 2257 u16 vsi_queue_id, queue_id; 2258 2259 for_each_set_bit(vsi_queue_id, &queuemap, I40E_MAX_VSI_QP) { 2260 if (vf->adq_enabled) { 2261 vsi_id = vf->ch[vsi_queue_id / I40E_MAX_VF_VSI].vsi_id; 2262 queue_id = (vsi_queue_id % I40E_DEFAULT_QUEUES_PER_VF); 2263 } else { 2264 queue_id = vsi_queue_id; 2265 } 2266 2267 if (!i40e_vc_isvalid_queue_id(vf, vsi_id, queue_id)) 2268 return -EINVAL; 2269 } 2270 2271 return 0; 2272 } 2273 2274 /** 2275 * i40e_vc_config_irq_map_msg 2276 * @vf: pointer to the VF info 2277 * @msg: pointer to the msg buffer 2278 * 2279 * called from the VF to configure the irq to 2280 * queue map 2281 **/ 2282 static int i40e_vc_config_irq_map_msg(struct i40e_vf *vf, u8 *msg) 2283 { 2284 struct virtchnl_irq_map_info *irqmap_info = 2285 (struct virtchnl_irq_map_info *)msg; 2286 struct virtchnl_vector_map *map; 2287 u16 vsi_id; 2288 i40e_status aq_ret = 0; 2289 int i; 2290 2291 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2292 aq_ret = I40E_ERR_PARAM; 2293 goto error_param; 2294 } 2295 2296 if (irqmap_info->num_vectors > 2297 vf->pf->hw.func_caps.num_msix_vectors_vf) { 2298 aq_ret = I40E_ERR_PARAM; 2299 goto error_param; 2300 } 2301 2302 for (i = 0; i < irqmap_info->num_vectors; i++) { 2303 map = &irqmap_info->vecmap[i]; 2304 /* validate msg params */ 2305 if (!i40e_vc_isvalid_vector_id(vf, map->vector_id) || 2306 !i40e_vc_isvalid_vsi_id(vf, map->vsi_id)) { 2307 aq_ret = I40E_ERR_PARAM; 2308 goto error_param; 2309 } 2310 vsi_id = map->vsi_id; 2311 2312 if (i40e_validate_queue_map(vf, vsi_id, map->rxq_map)) { 2313 aq_ret = I40E_ERR_PARAM; 2314 goto error_param; 2315 } 2316 2317 if (i40e_validate_queue_map(vf, vsi_id, map->txq_map)) { 2318 aq_ret = I40E_ERR_PARAM; 2319 goto error_param; 2320 } 2321 2322 i40e_config_irq_link_list(vf, vsi_id, map); 2323 } 2324 error_param: 2325 /* send the response to the VF */ 2326 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_CONFIG_IRQ_MAP, 2327 aq_ret); 2328 } 2329 2330 /** 2331 * i40e_ctrl_vf_tx_rings 2332 * @vsi: the SRIOV VSI being configured 2333 * @q_map: bit map of the queues to be enabled 2334 * @enable: start or stop the queue 2335 **/ 2336 static int i40e_ctrl_vf_tx_rings(struct i40e_vsi *vsi, unsigned long q_map, 2337 bool enable) 2338 { 2339 struct i40e_pf *pf = vsi->back; 2340 int ret = 0; 2341 u16 q_id; 2342 2343 for_each_set_bit(q_id, &q_map, I40E_MAX_VF_QUEUES) { 2344 ret = i40e_control_wait_tx_q(vsi->seid, pf, 2345 vsi->base_queue + q_id, 2346 false /*is xdp*/, enable); 2347 if (ret) 2348 break; 2349 } 2350 return ret; 2351 } 2352 2353 /** 2354 * i40e_ctrl_vf_rx_rings 2355 * @vsi: the SRIOV VSI being configured 2356 * @q_map: bit map of the queues to be enabled 2357 * @enable: start or stop the queue 2358 **/ 2359 static int i40e_ctrl_vf_rx_rings(struct i40e_vsi *vsi, unsigned long q_map, 2360 bool enable) 2361 { 2362 struct i40e_pf *pf = vsi->back; 2363 int ret = 0; 2364 u16 q_id; 2365 2366 for_each_set_bit(q_id, &q_map, I40E_MAX_VF_QUEUES) { 2367 ret = i40e_control_wait_rx_q(pf, vsi->base_queue + q_id, 2368 enable); 2369 if (ret) 2370 break; 2371 } 2372 return ret; 2373 } 2374 2375 /** 2376 * i40e_vc_validate_vqs_bitmaps - validate Rx/Tx queue bitmaps from VIRTHCHNL 2377 * @vqs: virtchnl_queue_select structure containing bitmaps to validate 2378 * 2379 * Returns true if validation was successful, else false. 2380 */ 2381 static bool i40e_vc_validate_vqs_bitmaps(struct virtchnl_queue_select *vqs) 2382 { 2383 if ((!vqs->rx_queues && !vqs->tx_queues) || 2384 vqs->rx_queues >= BIT(I40E_MAX_VF_QUEUES) || 2385 vqs->tx_queues >= BIT(I40E_MAX_VF_QUEUES)) 2386 return false; 2387 2388 return true; 2389 } 2390 2391 /** 2392 * i40e_vc_enable_queues_msg 2393 * @vf: pointer to the VF info 2394 * @msg: pointer to the msg buffer 2395 * 2396 * called from the VF to enable all or specific queue(s) 2397 **/ 2398 static int i40e_vc_enable_queues_msg(struct i40e_vf *vf, u8 *msg) 2399 { 2400 struct virtchnl_queue_select *vqs = 2401 (struct virtchnl_queue_select *)msg; 2402 struct i40e_pf *pf = vf->pf; 2403 i40e_status aq_ret = 0; 2404 int i; 2405 2406 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2407 aq_ret = I40E_ERR_PARAM; 2408 goto error_param; 2409 } 2410 2411 if (!i40e_vc_isvalid_vsi_id(vf, vqs->vsi_id)) { 2412 aq_ret = I40E_ERR_PARAM; 2413 goto error_param; 2414 } 2415 2416 if (!i40e_vc_validate_vqs_bitmaps(vqs)) { 2417 aq_ret = I40E_ERR_PARAM; 2418 goto error_param; 2419 } 2420 2421 /* Use the queue bit map sent by the VF */ 2422 if (i40e_ctrl_vf_rx_rings(pf->vsi[vf->lan_vsi_idx], vqs->rx_queues, 2423 true)) { 2424 aq_ret = I40E_ERR_TIMEOUT; 2425 goto error_param; 2426 } 2427 if (i40e_ctrl_vf_tx_rings(pf->vsi[vf->lan_vsi_idx], vqs->tx_queues, 2428 true)) { 2429 aq_ret = I40E_ERR_TIMEOUT; 2430 goto error_param; 2431 } 2432 2433 /* need to start the rings for additional ADq VSI's as well */ 2434 if (vf->adq_enabled) { 2435 /* zero belongs to LAN VSI */ 2436 for (i = 1; i < vf->num_tc; i++) { 2437 if (i40e_vsi_start_rings(pf->vsi[vf->ch[i].vsi_idx])) 2438 aq_ret = I40E_ERR_TIMEOUT; 2439 } 2440 } 2441 2442 vf->queues_enabled = true; 2443 2444 error_param: 2445 /* send the response to the VF */ 2446 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ENABLE_QUEUES, 2447 aq_ret); 2448 } 2449 2450 /** 2451 * i40e_vc_disable_queues_msg 2452 * @vf: pointer to the VF info 2453 * @msg: pointer to the msg buffer 2454 * 2455 * called from the VF to disable all or specific 2456 * queue(s) 2457 **/ 2458 static int i40e_vc_disable_queues_msg(struct i40e_vf *vf, u8 *msg) 2459 { 2460 struct virtchnl_queue_select *vqs = 2461 (struct virtchnl_queue_select *)msg; 2462 struct i40e_pf *pf = vf->pf; 2463 i40e_status aq_ret = 0; 2464 2465 /* Immediately mark queues as disabled */ 2466 vf->queues_enabled = false; 2467 2468 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2469 aq_ret = I40E_ERR_PARAM; 2470 goto error_param; 2471 } 2472 2473 if (!i40e_vc_isvalid_vsi_id(vf, vqs->vsi_id)) { 2474 aq_ret = I40E_ERR_PARAM; 2475 goto error_param; 2476 } 2477 2478 if (!i40e_vc_validate_vqs_bitmaps(vqs)) { 2479 aq_ret = I40E_ERR_PARAM; 2480 goto error_param; 2481 } 2482 2483 /* Use the queue bit map sent by the VF */ 2484 if (i40e_ctrl_vf_tx_rings(pf->vsi[vf->lan_vsi_idx], vqs->tx_queues, 2485 false)) { 2486 aq_ret = I40E_ERR_TIMEOUT; 2487 goto error_param; 2488 } 2489 if (i40e_ctrl_vf_rx_rings(pf->vsi[vf->lan_vsi_idx], vqs->rx_queues, 2490 false)) { 2491 aq_ret = I40E_ERR_TIMEOUT; 2492 goto error_param; 2493 } 2494 error_param: 2495 /* send the response to the VF */ 2496 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DISABLE_QUEUES, 2497 aq_ret); 2498 } 2499 2500 /** 2501 * i40e_vc_request_queues_msg 2502 * @vf: pointer to the VF info 2503 * @msg: pointer to the msg buffer 2504 * 2505 * VFs get a default number of queues but can use this message to request a 2506 * different number. If the request is successful, PF will reset the VF and 2507 * return 0. If unsuccessful, PF will send message informing VF of number of 2508 * available queues and return result of sending VF a message. 2509 **/ 2510 static int i40e_vc_request_queues_msg(struct i40e_vf *vf, u8 *msg) 2511 { 2512 struct virtchnl_vf_res_request *vfres = 2513 (struct virtchnl_vf_res_request *)msg; 2514 u16 req_pairs = vfres->num_queue_pairs; 2515 u8 cur_pairs = vf->num_queue_pairs; 2516 struct i40e_pf *pf = vf->pf; 2517 2518 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) 2519 return -EINVAL; 2520 2521 if (req_pairs > I40E_MAX_VF_QUEUES) { 2522 dev_err(&pf->pdev->dev, 2523 "VF %d tried to request more than %d queues.\n", 2524 vf->vf_id, 2525 I40E_MAX_VF_QUEUES); 2526 vfres->num_queue_pairs = I40E_MAX_VF_QUEUES; 2527 } else if (req_pairs - cur_pairs > pf->queues_left) { 2528 dev_warn(&pf->pdev->dev, 2529 "VF %d requested %d more queues, but only %d left.\n", 2530 vf->vf_id, 2531 req_pairs - cur_pairs, 2532 pf->queues_left); 2533 vfres->num_queue_pairs = pf->queues_left + cur_pairs; 2534 } else { 2535 /* successful request */ 2536 vf->num_req_queues = req_pairs; 2537 i40e_vc_notify_vf_reset(vf); 2538 i40e_reset_vf(vf, false); 2539 return 0; 2540 } 2541 2542 return i40e_vc_send_msg_to_vf(vf, VIRTCHNL_OP_REQUEST_QUEUES, 0, 2543 (u8 *)vfres, sizeof(*vfres)); 2544 } 2545 2546 /** 2547 * i40e_vc_get_stats_msg 2548 * @vf: pointer to the VF info 2549 * @msg: pointer to the msg buffer 2550 * 2551 * called from the VF to get vsi stats 2552 **/ 2553 static int i40e_vc_get_stats_msg(struct i40e_vf *vf, u8 *msg) 2554 { 2555 struct virtchnl_queue_select *vqs = 2556 (struct virtchnl_queue_select *)msg; 2557 struct i40e_pf *pf = vf->pf; 2558 struct i40e_eth_stats stats; 2559 i40e_status aq_ret = 0; 2560 struct i40e_vsi *vsi; 2561 2562 memset(&stats, 0, sizeof(struct i40e_eth_stats)); 2563 2564 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 2565 aq_ret = I40E_ERR_PARAM; 2566 goto error_param; 2567 } 2568 2569 if (!i40e_vc_isvalid_vsi_id(vf, vqs->vsi_id)) { 2570 aq_ret = I40E_ERR_PARAM; 2571 goto error_param; 2572 } 2573 2574 vsi = pf->vsi[vf->lan_vsi_idx]; 2575 if (!vsi) { 2576 aq_ret = I40E_ERR_PARAM; 2577 goto error_param; 2578 } 2579 i40e_update_eth_stats(vsi); 2580 stats = vsi->eth_stats; 2581 2582 error_param: 2583 /* send the response back to the VF */ 2584 return i40e_vc_send_msg_to_vf(vf, VIRTCHNL_OP_GET_STATS, aq_ret, 2585 (u8 *)&stats, sizeof(stats)); 2586 } 2587 2588 /* If the VF is not trusted restrict the number of MAC/VLAN it can program 2589 * MAC filters: 16 for multicast, 1 for MAC, 1 for broadcast 2590 */ 2591 #define I40E_VC_MAX_MAC_ADDR_PER_VF (16 + 1 + 1) 2592 #define I40E_VC_MAX_VLAN_PER_VF 16 2593 2594 /** 2595 * i40e_check_vf_permission 2596 * @vf: pointer to the VF info 2597 * @al: MAC address list from virtchnl 2598 * 2599 * Check that the given list of MAC addresses is allowed. Will return -EPERM 2600 * if any address in the list is not valid. Checks the following conditions: 2601 * 2602 * 1) broadcast and zero addresses are never valid 2603 * 2) unicast addresses are not allowed if the VMM has administratively set 2604 * the VF MAC address, unless the VF is marked as privileged. 2605 * 3) There is enough space to add all the addresses. 2606 * 2607 * Note that to guarantee consistency, it is expected this function be called 2608 * while holding the mac_filter_hash_lock, as otherwise the current number of 2609 * addresses might not be accurate. 2610 **/ 2611 static inline int i40e_check_vf_permission(struct i40e_vf *vf, 2612 struct virtchnl_ether_addr_list *al) 2613 { 2614 struct i40e_pf *pf = vf->pf; 2615 struct i40e_vsi *vsi = pf->vsi[vf->lan_vsi_idx]; 2616 int mac2add_cnt = 0; 2617 int i; 2618 2619 for (i = 0; i < al->num_elements; i++) { 2620 struct i40e_mac_filter *f; 2621 u8 *addr = al->list[i].addr; 2622 2623 if (is_broadcast_ether_addr(addr) || 2624 is_zero_ether_addr(addr)) { 2625 dev_err(&pf->pdev->dev, "invalid VF MAC addr %pM\n", 2626 addr); 2627 return I40E_ERR_INVALID_MAC_ADDR; 2628 } 2629 2630 /* If the host VMM administrator has set the VF MAC address 2631 * administratively via the ndo_set_vf_mac command then deny 2632 * permission to the VF to add or delete unicast MAC addresses. 2633 * Unless the VF is privileged and then it can do whatever. 2634 * The VF may request to set the MAC address filter already 2635 * assigned to it so do not return an error in that case. 2636 */ 2637 if (!test_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps) && 2638 !is_multicast_ether_addr(addr) && vf->pf_set_mac && 2639 !ether_addr_equal(addr, vf->default_lan_addr.addr)) { 2640 dev_err(&pf->pdev->dev, 2641 "VF attempting to override administratively set MAC address, bring down and up the VF interface to resume normal operation\n"); 2642 return -EPERM; 2643 } 2644 2645 /*count filters that really will be added*/ 2646 f = i40e_find_mac(vsi, addr); 2647 if (!f) 2648 ++mac2add_cnt; 2649 } 2650 2651 /* If this VF is not privileged, then we can't add more than a limited 2652 * number of addresses. Check to make sure that the additions do not 2653 * push us over the limit. 2654 */ 2655 if (!test_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps) && 2656 (i40e_count_filters(vsi) + mac2add_cnt) > 2657 I40E_VC_MAX_MAC_ADDR_PER_VF) { 2658 dev_err(&pf->pdev->dev, 2659 "Cannot add more MAC addresses, VF is not trusted, switch the VF to trusted to add more functionality\n"); 2660 return -EPERM; 2661 } 2662 return 0; 2663 } 2664 2665 /** 2666 * i40e_vc_add_mac_addr_msg 2667 * @vf: pointer to the VF info 2668 * @msg: pointer to the msg buffer 2669 * 2670 * add guest mac address filter 2671 **/ 2672 static int i40e_vc_add_mac_addr_msg(struct i40e_vf *vf, u8 *msg) 2673 { 2674 struct virtchnl_ether_addr_list *al = 2675 (struct virtchnl_ether_addr_list *)msg; 2676 struct i40e_pf *pf = vf->pf; 2677 struct i40e_vsi *vsi = NULL; 2678 i40e_status ret = 0; 2679 int i; 2680 2681 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2682 !i40e_vc_isvalid_vsi_id(vf, al->vsi_id)) { 2683 ret = I40E_ERR_PARAM; 2684 goto error_param; 2685 } 2686 2687 vsi = pf->vsi[vf->lan_vsi_idx]; 2688 2689 /* Lock once, because all function inside for loop accesses VSI's 2690 * MAC filter list which needs to be protected using same lock. 2691 */ 2692 spin_lock_bh(&vsi->mac_filter_hash_lock); 2693 2694 ret = i40e_check_vf_permission(vf, al); 2695 if (ret) { 2696 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2697 goto error_param; 2698 } 2699 2700 /* add new addresses to the list */ 2701 for (i = 0; i < al->num_elements; i++) { 2702 struct i40e_mac_filter *f; 2703 2704 f = i40e_find_mac(vsi, al->list[i].addr); 2705 if (!f) { 2706 f = i40e_add_mac_filter(vsi, al->list[i].addr); 2707 2708 if (!f) { 2709 dev_err(&pf->pdev->dev, 2710 "Unable to add MAC filter %pM for VF %d\n", 2711 al->list[i].addr, vf->vf_id); 2712 ret = I40E_ERR_PARAM; 2713 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2714 goto error_param; 2715 } 2716 if (is_valid_ether_addr(al->list[i].addr) && 2717 is_zero_ether_addr(vf->default_lan_addr.addr)) 2718 ether_addr_copy(vf->default_lan_addr.addr, 2719 al->list[i].addr); 2720 } 2721 } 2722 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2723 2724 /* program the updated filter list */ 2725 ret = i40e_sync_vsi_filters(vsi); 2726 if (ret) 2727 dev_err(&pf->pdev->dev, "Unable to program VF %d MAC filters, error %d\n", 2728 vf->vf_id, ret); 2729 2730 error_param: 2731 /* send the response to the VF */ 2732 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ADD_ETH_ADDR, 2733 ret); 2734 } 2735 2736 /** 2737 * i40e_vc_del_mac_addr_msg 2738 * @vf: pointer to the VF info 2739 * @msg: pointer to the msg buffer 2740 * 2741 * remove guest mac address filter 2742 **/ 2743 static int i40e_vc_del_mac_addr_msg(struct i40e_vf *vf, u8 *msg) 2744 { 2745 struct virtchnl_ether_addr_list *al = 2746 (struct virtchnl_ether_addr_list *)msg; 2747 bool was_unimac_deleted = false; 2748 struct i40e_pf *pf = vf->pf; 2749 struct i40e_vsi *vsi = NULL; 2750 i40e_status ret = 0; 2751 int i; 2752 2753 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2754 !i40e_vc_isvalid_vsi_id(vf, al->vsi_id)) { 2755 ret = I40E_ERR_PARAM; 2756 goto error_param; 2757 } 2758 2759 for (i = 0; i < al->num_elements; i++) { 2760 if (is_broadcast_ether_addr(al->list[i].addr) || 2761 is_zero_ether_addr(al->list[i].addr)) { 2762 dev_err(&pf->pdev->dev, "Invalid MAC addr %pM for VF %d\n", 2763 al->list[i].addr, vf->vf_id); 2764 ret = I40E_ERR_INVALID_MAC_ADDR; 2765 goto error_param; 2766 } 2767 if (ether_addr_equal(al->list[i].addr, vf->default_lan_addr.addr)) 2768 was_unimac_deleted = true; 2769 } 2770 vsi = pf->vsi[vf->lan_vsi_idx]; 2771 2772 spin_lock_bh(&vsi->mac_filter_hash_lock); 2773 /* delete addresses from the list */ 2774 for (i = 0; i < al->num_elements; i++) 2775 if (i40e_del_mac_filter(vsi, al->list[i].addr)) { 2776 ret = I40E_ERR_INVALID_MAC_ADDR; 2777 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2778 goto error_param; 2779 } 2780 2781 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2782 2783 /* program the updated filter list */ 2784 ret = i40e_sync_vsi_filters(vsi); 2785 if (ret) 2786 dev_err(&pf->pdev->dev, "Unable to program VF %d MAC filters, error %d\n", 2787 vf->vf_id, ret); 2788 2789 if (vf->trusted && was_unimac_deleted) { 2790 struct i40e_mac_filter *f; 2791 struct hlist_node *h; 2792 u8 *macaddr = NULL; 2793 int bkt; 2794 2795 /* set last unicast mac address as default */ 2796 spin_lock_bh(&vsi->mac_filter_hash_lock); 2797 hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) { 2798 if (is_valid_ether_addr(f->macaddr)) 2799 macaddr = f->macaddr; 2800 } 2801 if (macaddr) 2802 ether_addr_copy(vf->default_lan_addr.addr, macaddr); 2803 spin_unlock_bh(&vsi->mac_filter_hash_lock); 2804 } 2805 error_param: 2806 /* send the response to the VF */ 2807 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DEL_ETH_ADDR, ret); 2808 } 2809 2810 /** 2811 * i40e_vc_add_vlan_msg 2812 * @vf: pointer to the VF info 2813 * @msg: pointer to the msg buffer 2814 * 2815 * program guest vlan id 2816 **/ 2817 static int i40e_vc_add_vlan_msg(struct i40e_vf *vf, u8 *msg) 2818 { 2819 struct virtchnl_vlan_filter_list *vfl = 2820 (struct virtchnl_vlan_filter_list *)msg; 2821 struct i40e_pf *pf = vf->pf; 2822 struct i40e_vsi *vsi = NULL; 2823 i40e_status aq_ret = 0; 2824 int i; 2825 2826 if ((vf->num_vlan >= I40E_VC_MAX_VLAN_PER_VF) && 2827 !test_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps)) { 2828 dev_err(&pf->pdev->dev, 2829 "VF is not trusted, switch the VF to trusted to add more VLAN addresses\n"); 2830 goto error_param; 2831 } 2832 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2833 !i40e_vc_isvalid_vsi_id(vf, vfl->vsi_id)) { 2834 aq_ret = I40E_ERR_PARAM; 2835 goto error_param; 2836 } 2837 2838 for (i = 0; i < vfl->num_elements; i++) { 2839 if (vfl->vlan_id[i] > I40E_MAX_VLANID) { 2840 aq_ret = I40E_ERR_PARAM; 2841 dev_err(&pf->pdev->dev, 2842 "invalid VF VLAN id %d\n", vfl->vlan_id[i]); 2843 goto error_param; 2844 } 2845 } 2846 vsi = pf->vsi[vf->lan_vsi_idx]; 2847 if (vsi->info.pvid) { 2848 aq_ret = I40E_ERR_PARAM; 2849 goto error_param; 2850 } 2851 2852 i40e_vlan_stripping_enable(vsi); 2853 for (i = 0; i < vfl->num_elements; i++) { 2854 /* add new VLAN filter */ 2855 int ret = i40e_vsi_add_vlan(vsi, vfl->vlan_id[i]); 2856 if (!ret) 2857 vf->num_vlan++; 2858 2859 if (test_bit(I40E_VF_STATE_UC_PROMISC, &vf->vf_states)) 2860 i40e_aq_set_vsi_uc_promisc_on_vlan(&pf->hw, vsi->seid, 2861 true, 2862 vfl->vlan_id[i], 2863 NULL); 2864 if (test_bit(I40E_VF_STATE_MC_PROMISC, &vf->vf_states)) 2865 i40e_aq_set_vsi_mc_promisc_on_vlan(&pf->hw, vsi->seid, 2866 true, 2867 vfl->vlan_id[i], 2868 NULL); 2869 2870 if (ret) 2871 dev_err(&pf->pdev->dev, 2872 "Unable to add VLAN filter %d for VF %d, error %d\n", 2873 vfl->vlan_id[i], vf->vf_id, ret); 2874 } 2875 2876 error_param: 2877 /* send the response to the VF */ 2878 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ADD_VLAN, aq_ret); 2879 } 2880 2881 /** 2882 * i40e_vc_remove_vlan_msg 2883 * @vf: pointer to the VF info 2884 * @msg: pointer to the msg buffer 2885 * 2886 * remove programmed guest vlan id 2887 **/ 2888 static int i40e_vc_remove_vlan_msg(struct i40e_vf *vf, u8 *msg) 2889 { 2890 struct virtchnl_vlan_filter_list *vfl = 2891 (struct virtchnl_vlan_filter_list *)msg; 2892 struct i40e_pf *pf = vf->pf; 2893 struct i40e_vsi *vsi = NULL; 2894 i40e_status aq_ret = 0; 2895 int i; 2896 2897 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2898 !i40e_vc_isvalid_vsi_id(vf, vfl->vsi_id)) { 2899 aq_ret = I40E_ERR_PARAM; 2900 goto error_param; 2901 } 2902 2903 for (i = 0; i < vfl->num_elements; i++) { 2904 if (vfl->vlan_id[i] > I40E_MAX_VLANID) { 2905 aq_ret = I40E_ERR_PARAM; 2906 goto error_param; 2907 } 2908 } 2909 2910 vsi = pf->vsi[vf->lan_vsi_idx]; 2911 if (vsi->info.pvid) { 2912 if (vfl->num_elements > 1 || vfl->vlan_id[0]) 2913 aq_ret = I40E_ERR_PARAM; 2914 goto error_param; 2915 } 2916 2917 for (i = 0; i < vfl->num_elements; i++) { 2918 i40e_vsi_kill_vlan(vsi, vfl->vlan_id[i]); 2919 vf->num_vlan--; 2920 2921 if (test_bit(I40E_VF_STATE_UC_PROMISC, &vf->vf_states)) 2922 i40e_aq_set_vsi_uc_promisc_on_vlan(&pf->hw, vsi->seid, 2923 false, 2924 vfl->vlan_id[i], 2925 NULL); 2926 if (test_bit(I40E_VF_STATE_MC_PROMISC, &vf->vf_states)) 2927 i40e_aq_set_vsi_mc_promisc_on_vlan(&pf->hw, vsi->seid, 2928 false, 2929 vfl->vlan_id[i], 2930 NULL); 2931 } 2932 2933 error_param: 2934 /* send the response to the VF */ 2935 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DEL_VLAN, aq_ret); 2936 } 2937 2938 /** 2939 * i40e_vc_iwarp_msg 2940 * @vf: pointer to the VF info 2941 * @msg: pointer to the msg buffer 2942 * @msglen: msg length 2943 * 2944 * called from the VF for the iwarp msgs 2945 **/ 2946 static int i40e_vc_iwarp_msg(struct i40e_vf *vf, u8 *msg, u16 msglen) 2947 { 2948 struct i40e_pf *pf = vf->pf; 2949 int abs_vf_id = vf->vf_id + pf->hw.func_caps.vf_base_id; 2950 i40e_status aq_ret = 0; 2951 2952 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2953 !test_bit(I40E_VF_STATE_IWARPENA, &vf->vf_states)) { 2954 aq_ret = I40E_ERR_PARAM; 2955 goto error_param; 2956 } 2957 2958 i40e_notify_client_of_vf_msg(pf->vsi[pf->lan_vsi], abs_vf_id, 2959 msg, msglen); 2960 2961 error_param: 2962 /* send the response to the VF */ 2963 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_IWARP, 2964 aq_ret); 2965 } 2966 2967 /** 2968 * i40e_vc_iwarp_qvmap_msg 2969 * @vf: pointer to the VF info 2970 * @msg: pointer to the msg buffer 2971 * @config: config qvmap or release it 2972 * 2973 * called from the VF for the iwarp msgs 2974 **/ 2975 static int i40e_vc_iwarp_qvmap_msg(struct i40e_vf *vf, u8 *msg, bool config) 2976 { 2977 struct virtchnl_iwarp_qvlist_info *qvlist_info = 2978 (struct virtchnl_iwarp_qvlist_info *)msg; 2979 i40e_status aq_ret = 0; 2980 2981 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 2982 !test_bit(I40E_VF_STATE_IWARPENA, &vf->vf_states)) { 2983 aq_ret = I40E_ERR_PARAM; 2984 goto error_param; 2985 } 2986 2987 if (config) { 2988 if (i40e_config_iwarp_qvlist(vf, qvlist_info)) 2989 aq_ret = I40E_ERR_PARAM; 2990 } else { 2991 i40e_release_iwarp_qvlist(vf); 2992 } 2993 2994 error_param: 2995 /* send the response to the VF */ 2996 return i40e_vc_send_resp_to_vf(vf, 2997 config ? VIRTCHNL_OP_CONFIG_IWARP_IRQ_MAP : 2998 VIRTCHNL_OP_RELEASE_IWARP_IRQ_MAP, 2999 aq_ret); 3000 } 3001 3002 /** 3003 * i40e_vc_config_rss_key 3004 * @vf: pointer to the VF info 3005 * @msg: pointer to the msg buffer 3006 * 3007 * Configure the VF's RSS key 3008 **/ 3009 static int i40e_vc_config_rss_key(struct i40e_vf *vf, u8 *msg) 3010 { 3011 struct virtchnl_rss_key *vrk = 3012 (struct virtchnl_rss_key *)msg; 3013 struct i40e_pf *pf = vf->pf; 3014 struct i40e_vsi *vsi = NULL; 3015 i40e_status aq_ret = 0; 3016 3017 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 3018 !i40e_vc_isvalid_vsi_id(vf, vrk->vsi_id) || 3019 (vrk->key_len != I40E_HKEY_ARRAY_SIZE)) { 3020 aq_ret = I40E_ERR_PARAM; 3021 goto err; 3022 } 3023 3024 vsi = pf->vsi[vf->lan_vsi_idx]; 3025 aq_ret = i40e_config_rss(vsi, vrk->key, NULL, 0); 3026 err: 3027 /* send the response to the VF */ 3028 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_CONFIG_RSS_KEY, 3029 aq_ret); 3030 } 3031 3032 /** 3033 * i40e_vc_config_rss_lut 3034 * @vf: pointer to the VF info 3035 * @msg: pointer to the msg buffer 3036 * 3037 * Configure the VF's RSS LUT 3038 **/ 3039 static int i40e_vc_config_rss_lut(struct i40e_vf *vf, u8 *msg) 3040 { 3041 struct virtchnl_rss_lut *vrl = 3042 (struct virtchnl_rss_lut *)msg; 3043 struct i40e_pf *pf = vf->pf; 3044 struct i40e_vsi *vsi = NULL; 3045 i40e_status aq_ret = 0; 3046 u16 i; 3047 3048 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states) || 3049 !i40e_vc_isvalid_vsi_id(vf, vrl->vsi_id) || 3050 (vrl->lut_entries != I40E_VF_HLUT_ARRAY_SIZE)) { 3051 aq_ret = I40E_ERR_PARAM; 3052 goto err; 3053 } 3054 3055 for (i = 0; i < vrl->lut_entries; i++) 3056 if (vrl->lut[i] >= vf->num_queue_pairs) { 3057 aq_ret = I40E_ERR_PARAM; 3058 goto err; 3059 } 3060 3061 vsi = pf->vsi[vf->lan_vsi_idx]; 3062 aq_ret = i40e_config_rss(vsi, NULL, vrl->lut, I40E_VF_HLUT_ARRAY_SIZE); 3063 /* send the response to the VF */ 3064 err: 3065 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_CONFIG_RSS_LUT, 3066 aq_ret); 3067 } 3068 3069 /** 3070 * i40e_vc_get_rss_hena 3071 * @vf: pointer to the VF info 3072 * @msg: pointer to the msg buffer 3073 * 3074 * Return the RSS HENA bits allowed by the hardware 3075 **/ 3076 static int i40e_vc_get_rss_hena(struct i40e_vf *vf, u8 *msg) 3077 { 3078 struct virtchnl_rss_hena *vrh = NULL; 3079 struct i40e_pf *pf = vf->pf; 3080 i40e_status aq_ret = 0; 3081 int len = 0; 3082 3083 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3084 aq_ret = I40E_ERR_PARAM; 3085 goto err; 3086 } 3087 len = sizeof(struct virtchnl_rss_hena); 3088 3089 vrh = kzalloc(len, GFP_KERNEL); 3090 if (!vrh) { 3091 aq_ret = I40E_ERR_NO_MEMORY; 3092 len = 0; 3093 goto err; 3094 } 3095 vrh->hena = i40e_pf_get_default_rss_hena(pf); 3096 err: 3097 /* send the response back to the VF */ 3098 aq_ret = i40e_vc_send_msg_to_vf(vf, VIRTCHNL_OP_GET_RSS_HENA_CAPS, 3099 aq_ret, (u8 *)vrh, len); 3100 kfree(vrh); 3101 return aq_ret; 3102 } 3103 3104 /** 3105 * i40e_vc_set_rss_hena 3106 * @vf: pointer to the VF info 3107 * @msg: pointer to the msg buffer 3108 * 3109 * Set the RSS HENA bits for the VF 3110 **/ 3111 static int i40e_vc_set_rss_hena(struct i40e_vf *vf, u8 *msg) 3112 { 3113 struct virtchnl_rss_hena *vrh = 3114 (struct virtchnl_rss_hena *)msg; 3115 struct i40e_pf *pf = vf->pf; 3116 struct i40e_hw *hw = &pf->hw; 3117 i40e_status aq_ret = 0; 3118 3119 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3120 aq_ret = I40E_ERR_PARAM; 3121 goto err; 3122 } 3123 i40e_write_rx_ctl(hw, I40E_VFQF_HENA1(0, vf->vf_id), (u32)vrh->hena); 3124 i40e_write_rx_ctl(hw, I40E_VFQF_HENA1(1, vf->vf_id), 3125 (u32)(vrh->hena >> 32)); 3126 3127 /* send the response to the VF */ 3128 err: 3129 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_SET_RSS_HENA, aq_ret); 3130 } 3131 3132 /** 3133 * i40e_vc_enable_vlan_stripping 3134 * @vf: pointer to the VF info 3135 * @msg: pointer to the msg buffer 3136 * 3137 * Enable vlan header stripping for the VF 3138 **/ 3139 static int i40e_vc_enable_vlan_stripping(struct i40e_vf *vf, u8 *msg) 3140 { 3141 i40e_status aq_ret = 0; 3142 struct i40e_vsi *vsi; 3143 3144 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3145 aq_ret = I40E_ERR_PARAM; 3146 goto err; 3147 } 3148 3149 vsi = vf->pf->vsi[vf->lan_vsi_idx]; 3150 i40e_vlan_stripping_enable(vsi); 3151 3152 /* send the response to the VF */ 3153 err: 3154 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ENABLE_VLAN_STRIPPING, 3155 aq_ret); 3156 } 3157 3158 /** 3159 * i40e_vc_disable_vlan_stripping 3160 * @vf: pointer to the VF info 3161 * @msg: pointer to the msg buffer 3162 * 3163 * Disable vlan header stripping for the VF 3164 **/ 3165 static int i40e_vc_disable_vlan_stripping(struct i40e_vf *vf, u8 *msg) 3166 { 3167 i40e_status aq_ret = 0; 3168 struct i40e_vsi *vsi; 3169 3170 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3171 aq_ret = I40E_ERR_PARAM; 3172 goto err; 3173 } 3174 3175 vsi = vf->pf->vsi[vf->lan_vsi_idx]; 3176 i40e_vlan_stripping_disable(vsi); 3177 3178 /* send the response to the VF */ 3179 err: 3180 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DISABLE_VLAN_STRIPPING, 3181 aq_ret); 3182 } 3183 3184 /** 3185 * i40e_validate_cloud_filter 3186 * @vf: pointer to VF structure 3187 * @tc_filter: pointer to filter requested 3188 * 3189 * This function validates cloud filter programmed as TC filter for ADq 3190 **/ 3191 static int i40e_validate_cloud_filter(struct i40e_vf *vf, 3192 struct virtchnl_filter *tc_filter) 3193 { 3194 struct virtchnl_l4_spec mask = tc_filter->mask.tcp_spec; 3195 struct virtchnl_l4_spec data = tc_filter->data.tcp_spec; 3196 struct i40e_pf *pf = vf->pf; 3197 struct i40e_vsi *vsi = NULL; 3198 struct i40e_mac_filter *f; 3199 struct hlist_node *h; 3200 bool found = false; 3201 int bkt; 3202 3203 if (!tc_filter->action) { 3204 dev_info(&pf->pdev->dev, 3205 "VF %d: Currently ADq doesn't support Drop Action\n", 3206 vf->vf_id); 3207 goto err; 3208 } 3209 3210 /* action_meta is TC number here to which the filter is applied */ 3211 if (!tc_filter->action_meta || 3212 tc_filter->action_meta > I40E_MAX_VF_VSI) { 3213 dev_info(&pf->pdev->dev, "VF %d: Invalid TC number %u\n", 3214 vf->vf_id, tc_filter->action_meta); 3215 goto err; 3216 } 3217 3218 /* Check filter if it's programmed for advanced mode or basic mode. 3219 * There are two ADq modes (for VF only), 3220 * 1. Basic mode: intended to allow as many filter options as possible 3221 * to be added to a VF in Non-trusted mode. Main goal is 3222 * to add filters to its own MAC and VLAN id. 3223 * 2. Advanced mode: is for allowing filters to be applied other than 3224 * its own MAC or VLAN. This mode requires the VF to be 3225 * Trusted. 3226 */ 3227 if (mask.dst_mac[0] && !mask.dst_ip[0]) { 3228 vsi = pf->vsi[vf->lan_vsi_idx]; 3229 f = i40e_find_mac(vsi, data.dst_mac); 3230 3231 if (!f) { 3232 dev_info(&pf->pdev->dev, 3233 "Destination MAC %pM doesn't belong to VF %d\n", 3234 data.dst_mac, vf->vf_id); 3235 goto err; 3236 } 3237 3238 if (mask.vlan_id) { 3239 hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, 3240 hlist) { 3241 if (f->vlan == ntohs(data.vlan_id)) { 3242 found = true; 3243 break; 3244 } 3245 } 3246 if (!found) { 3247 dev_info(&pf->pdev->dev, 3248 "VF %d doesn't have any VLAN id %u\n", 3249 vf->vf_id, ntohs(data.vlan_id)); 3250 goto err; 3251 } 3252 } 3253 } else { 3254 /* Check if VF is trusted */ 3255 if (!test_bit(I40E_VIRTCHNL_VF_CAP_PRIVILEGE, &vf->vf_caps)) { 3256 dev_err(&pf->pdev->dev, 3257 "VF %d not trusted, make VF trusted to add advanced mode ADq cloud filters\n", 3258 vf->vf_id); 3259 return I40E_ERR_CONFIG; 3260 } 3261 } 3262 3263 if (mask.dst_mac[0] & data.dst_mac[0]) { 3264 if (is_broadcast_ether_addr(data.dst_mac) || 3265 is_zero_ether_addr(data.dst_mac)) { 3266 dev_info(&pf->pdev->dev, "VF %d: Invalid Dest MAC addr %pM\n", 3267 vf->vf_id, data.dst_mac); 3268 goto err; 3269 } 3270 } 3271 3272 if (mask.src_mac[0] & data.src_mac[0]) { 3273 if (is_broadcast_ether_addr(data.src_mac) || 3274 is_zero_ether_addr(data.src_mac)) { 3275 dev_info(&pf->pdev->dev, "VF %d: Invalid Source MAC addr %pM\n", 3276 vf->vf_id, data.src_mac); 3277 goto err; 3278 } 3279 } 3280 3281 if (mask.dst_port & data.dst_port) { 3282 if (!data.dst_port) { 3283 dev_info(&pf->pdev->dev, "VF %d: Invalid Dest port\n", 3284 vf->vf_id); 3285 goto err; 3286 } 3287 } 3288 3289 if (mask.src_port & data.src_port) { 3290 if (!data.src_port) { 3291 dev_info(&pf->pdev->dev, "VF %d: Invalid Source port\n", 3292 vf->vf_id); 3293 goto err; 3294 } 3295 } 3296 3297 if (tc_filter->flow_type != VIRTCHNL_TCP_V6_FLOW && 3298 tc_filter->flow_type != VIRTCHNL_TCP_V4_FLOW) { 3299 dev_info(&pf->pdev->dev, "VF %d: Invalid Flow type\n", 3300 vf->vf_id); 3301 goto err; 3302 } 3303 3304 if (mask.vlan_id & data.vlan_id) { 3305 if (ntohs(data.vlan_id) > I40E_MAX_VLANID) { 3306 dev_info(&pf->pdev->dev, "VF %d: invalid VLAN ID\n", 3307 vf->vf_id); 3308 goto err; 3309 } 3310 } 3311 3312 return I40E_SUCCESS; 3313 err: 3314 return I40E_ERR_CONFIG; 3315 } 3316 3317 /** 3318 * i40e_find_vsi_from_seid - searches for the vsi with the given seid 3319 * @vf: pointer to the VF info 3320 * @seid: seid of the vsi it is searching for 3321 **/ 3322 static struct i40e_vsi *i40e_find_vsi_from_seid(struct i40e_vf *vf, u16 seid) 3323 { 3324 struct i40e_pf *pf = vf->pf; 3325 struct i40e_vsi *vsi = NULL; 3326 int i; 3327 3328 for (i = 0; i < vf->num_tc ; i++) { 3329 vsi = i40e_find_vsi_from_id(pf, vf->ch[i].vsi_id); 3330 if (vsi && vsi->seid == seid) 3331 return vsi; 3332 } 3333 return NULL; 3334 } 3335 3336 /** 3337 * i40e_del_all_cloud_filters 3338 * @vf: pointer to the VF info 3339 * 3340 * This function deletes all cloud filters 3341 **/ 3342 static void i40e_del_all_cloud_filters(struct i40e_vf *vf) 3343 { 3344 struct i40e_cloud_filter *cfilter = NULL; 3345 struct i40e_pf *pf = vf->pf; 3346 struct i40e_vsi *vsi = NULL; 3347 struct hlist_node *node; 3348 int ret; 3349 3350 hlist_for_each_entry_safe(cfilter, node, 3351 &vf->cloud_filter_list, cloud_node) { 3352 vsi = i40e_find_vsi_from_seid(vf, cfilter->seid); 3353 3354 if (!vsi) { 3355 dev_err(&pf->pdev->dev, "VF %d: no VSI found for matching %u seid, can't delete cloud filter\n", 3356 vf->vf_id, cfilter->seid); 3357 continue; 3358 } 3359 3360 if (cfilter->dst_port) 3361 ret = i40e_add_del_cloud_filter_big_buf(vsi, cfilter, 3362 false); 3363 else 3364 ret = i40e_add_del_cloud_filter(vsi, cfilter, false); 3365 if (ret) 3366 dev_err(&pf->pdev->dev, 3367 "VF %d: Failed to delete cloud filter, err %s aq_err %s\n", 3368 vf->vf_id, i40e_stat_str(&pf->hw, ret), 3369 i40e_aq_str(&pf->hw, 3370 pf->hw.aq.asq_last_status)); 3371 3372 hlist_del(&cfilter->cloud_node); 3373 kfree(cfilter); 3374 vf->num_cloud_filters--; 3375 } 3376 } 3377 3378 /** 3379 * i40e_vc_del_cloud_filter 3380 * @vf: pointer to the VF info 3381 * @msg: pointer to the msg buffer 3382 * 3383 * This function deletes a cloud filter programmed as TC filter for ADq 3384 **/ 3385 static int i40e_vc_del_cloud_filter(struct i40e_vf *vf, u8 *msg) 3386 { 3387 struct virtchnl_filter *vcf = (struct virtchnl_filter *)msg; 3388 struct virtchnl_l4_spec mask = vcf->mask.tcp_spec; 3389 struct virtchnl_l4_spec tcf = vcf->data.tcp_spec; 3390 struct i40e_cloud_filter cfilter, *cf = NULL; 3391 struct i40e_pf *pf = vf->pf; 3392 struct i40e_vsi *vsi = NULL; 3393 struct hlist_node *node; 3394 i40e_status aq_ret = 0; 3395 int i, ret; 3396 3397 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3398 aq_ret = I40E_ERR_PARAM; 3399 goto err; 3400 } 3401 3402 if (!vf->adq_enabled) { 3403 dev_info(&pf->pdev->dev, 3404 "VF %d: ADq not enabled, can't apply cloud filter\n", 3405 vf->vf_id); 3406 aq_ret = I40E_ERR_PARAM; 3407 goto err; 3408 } 3409 3410 if (i40e_validate_cloud_filter(vf, vcf)) { 3411 dev_info(&pf->pdev->dev, 3412 "VF %d: Invalid input, can't apply cloud filter\n", 3413 vf->vf_id); 3414 aq_ret = I40E_ERR_PARAM; 3415 goto err; 3416 } 3417 3418 memset(&cfilter, 0, sizeof(cfilter)); 3419 /* parse destination mac address */ 3420 for (i = 0; i < ETH_ALEN; i++) 3421 cfilter.dst_mac[i] = mask.dst_mac[i] & tcf.dst_mac[i]; 3422 3423 /* parse source mac address */ 3424 for (i = 0; i < ETH_ALEN; i++) 3425 cfilter.src_mac[i] = mask.src_mac[i] & tcf.src_mac[i]; 3426 3427 cfilter.vlan_id = mask.vlan_id & tcf.vlan_id; 3428 cfilter.dst_port = mask.dst_port & tcf.dst_port; 3429 cfilter.src_port = mask.src_port & tcf.src_port; 3430 3431 switch (vcf->flow_type) { 3432 case VIRTCHNL_TCP_V4_FLOW: 3433 cfilter.n_proto = ETH_P_IP; 3434 if (mask.dst_ip[0] & tcf.dst_ip[0]) 3435 memcpy(&cfilter.ip.v4.dst_ip, tcf.dst_ip, 3436 ARRAY_SIZE(tcf.dst_ip)); 3437 else if (mask.src_ip[0] & tcf.dst_ip[0]) 3438 memcpy(&cfilter.ip.v4.src_ip, tcf.src_ip, 3439 ARRAY_SIZE(tcf.dst_ip)); 3440 break; 3441 case VIRTCHNL_TCP_V6_FLOW: 3442 cfilter.n_proto = ETH_P_IPV6; 3443 if (mask.dst_ip[3] & tcf.dst_ip[3]) 3444 memcpy(&cfilter.ip.v6.dst_ip6, tcf.dst_ip, 3445 sizeof(cfilter.ip.v6.dst_ip6)); 3446 if (mask.src_ip[3] & tcf.src_ip[3]) 3447 memcpy(&cfilter.ip.v6.src_ip6, tcf.src_ip, 3448 sizeof(cfilter.ip.v6.src_ip6)); 3449 break; 3450 default: 3451 /* TC filter can be configured based on different combinations 3452 * and in this case IP is not a part of filter config 3453 */ 3454 dev_info(&pf->pdev->dev, "VF %d: Flow type not configured\n", 3455 vf->vf_id); 3456 } 3457 3458 /* get the vsi to which the tc belongs to */ 3459 vsi = pf->vsi[vf->ch[vcf->action_meta].vsi_idx]; 3460 cfilter.seid = vsi->seid; 3461 cfilter.flags = vcf->field_flags; 3462 3463 /* Deleting TC filter */ 3464 if (tcf.dst_port) 3465 ret = i40e_add_del_cloud_filter_big_buf(vsi, &cfilter, false); 3466 else 3467 ret = i40e_add_del_cloud_filter(vsi, &cfilter, false); 3468 if (ret) { 3469 dev_err(&pf->pdev->dev, 3470 "VF %d: Failed to delete cloud filter, err %s aq_err %s\n", 3471 vf->vf_id, i40e_stat_str(&pf->hw, ret), 3472 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status)); 3473 goto err; 3474 } 3475 3476 hlist_for_each_entry_safe(cf, node, 3477 &vf->cloud_filter_list, cloud_node) { 3478 if (cf->seid != cfilter.seid) 3479 continue; 3480 if (mask.dst_port) 3481 if (cfilter.dst_port != cf->dst_port) 3482 continue; 3483 if (mask.dst_mac[0]) 3484 if (!ether_addr_equal(cf->src_mac, cfilter.src_mac)) 3485 continue; 3486 /* for ipv4 data to be valid, only first byte of mask is set */ 3487 if (cfilter.n_proto == ETH_P_IP && mask.dst_ip[0]) 3488 if (memcmp(&cfilter.ip.v4.dst_ip, &cf->ip.v4.dst_ip, 3489 ARRAY_SIZE(tcf.dst_ip))) 3490 continue; 3491 /* for ipv6, mask is set for all sixteen bytes (4 words) */ 3492 if (cfilter.n_proto == ETH_P_IPV6 && mask.dst_ip[3]) 3493 if (memcmp(&cfilter.ip.v6.dst_ip6, &cf->ip.v6.dst_ip6, 3494 sizeof(cfilter.ip.v6.src_ip6))) 3495 continue; 3496 if (mask.vlan_id) 3497 if (cfilter.vlan_id != cf->vlan_id) 3498 continue; 3499 3500 hlist_del(&cf->cloud_node); 3501 kfree(cf); 3502 vf->num_cloud_filters--; 3503 } 3504 3505 err: 3506 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DEL_CLOUD_FILTER, 3507 aq_ret); 3508 } 3509 3510 /** 3511 * i40e_vc_add_cloud_filter 3512 * @vf: pointer to the VF info 3513 * @msg: pointer to the msg buffer 3514 * 3515 * This function adds a cloud filter programmed as TC filter for ADq 3516 **/ 3517 static int i40e_vc_add_cloud_filter(struct i40e_vf *vf, u8 *msg) 3518 { 3519 struct virtchnl_filter *vcf = (struct virtchnl_filter *)msg; 3520 struct virtchnl_l4_spec mask = vcf->mask.tcp_spec; 3521 struct virtchnl_l4_spec tcf = vcf->data.tcp_spec; 3522 struct i40e_cloud_filter *cfilter = NULL; 3523 struct i40e_pf *pf = vf->pf; 3524 struct i40e_vsi *vsi = NULL; 3525 i40e_status aq_ret = 0; 3526 int i, ret; 3527 3528 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3529 aq_ret = I40E_ERR_PARAM; 3530 goto err_out; 3531 } 3532 3533 if (!vf->adq_enabled) { 3534 dev_info(&pf->pdev->dev, 3535 "VF %d: ADq is not enabled, can't apply cloud filter\n", 3536 vf->vf_id); 3537 aq_ret = I40E_ERR_PARAM; 3538 goto err_out; 3539 } 3540 3541 if (i40e_validate_cloud_filter(vf, vcf)) { 3542 dev_info(&pf->pdev->dev, 3543 "VF %d: Invalid input/s, can't apply cloud filter\n", 3544 vf->vf_id); 3545 aq_ret = I40E_ERR_PARAM; 3546 goto err_out; 3547 } 3548 3549 cfilter = kzalloc(sizeof(*cfilter), GFP_KERNEL); 3550 if (!cfilter) 3551 return -ENOMEM; 3552 3553 /* parse destination mac address */ 3554 for (i = 0; i < ETH_ALEN; i++) 3555 cfilter->dst_mac[i] = mask.dst_mac[i] & tcf.dst_mac[i]; 3556 3557 /* parse source mac address */ 3558 for (i = 0; i < ETH_ALEN; i++) 3559 cfilter->src_mac[i] = mask.src_mac[i] & tcf.src_mac[i]; 3560 3561 cfilter->vlan_id = mask.vlan_id & tcf.vlan_id; 3562 cfilter->dst_port = mask.dst_port & tcf.dst_port; 3563 cfilter->src_port = mask.src_port & tcf.src_port; 3564 3565 switch (vcf->flow_type) { 3566 case VIRTCHNL_TCP_V4_FLOW: 3567 cfilter->n_proto = ETH_P_IP; 3568 if (mask.dst_ip[0] & tcf.dst_ip[0]) 3569 memcpy(&cfilter->ip.v4.dst_ip, tcf.dst_ip, 3570 ARRAY_SIZE(tcf.dst_ip)); 3571 else if (mask.src_ip[0] & tcf.dst_ip[0]) 3572 memcpy(&cfilter->ip.v4.src_ip, tcf.src_ip, 3573 ARRAY_SIZE(tcf.dst_ip)); 3574 break; 3575 case VIRTCHNL_TCP_V6_FLOW: 3576 cfilter->n_proto = ETH_P_IPV6; 3577 if (mask.dst_ip[3] & tcf.dst_ip[3]) 3578 memcpy(&cfilter->ip.v6.dst_ip6, tcf.dst_ip, 3579 sizeof(cfilter->ip.v6.dst_ip6)); 3580 if (mask.src_ip[3] & tcf.src_ip[3]) 3581 memcpy(&cfilter->ip.v6.src_ip6, tcf.src_ip, 3582 sizeof(cfilter->ip.v6.src_ip6)); 3583 break; 3584 default: 3585 /* TC filter can be configured based on different combinations 3586 * and in this case IP is not a part of filter config 3587 */ 3588 dev_info(&pf->pdev->dev, "VF %d: Flow type not configured\n", 3589 vf->vf_id); 3590 } 3591 3592 /* get the VSI to which the TC belongs to */ 3593 vsi = pf->vsi[vf->ch[vcf->action_meta].vsi_idx]; 3594 cfilter->seid = vsi->seid; 3595 cfilter->flags = vcf->field_flags; 3596 3597 /* Adding cloud filter programmed as TC filter */ 3598 if (tcf.dst_port) 3599 ret = i40e_add_del_cloud_filter_big_buf(vsi, cfilter, true); 3600 else 3601 ret = i40e_add_del_cloud_filter(vsi, cfilter, true); 3602 if (ret) { 3603 dev_err(&pf->pdev->dev, 3604 "VF %d: Failed to add cloud filter, err %s aq_err %s\n", 3605 vf->vf_id, i40e_stat_str(&pf->hw, ret), 3606 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status)); 3607 goto err_free; 3608 } 3609 3610 INIT_HLIST_NODE(&cfilter->cloud_node); 3611 hlist_add_head(&cfilter->cloud_node, &vf->cloud_filter_list); 3612 /* release the pointer passing it to the collection */ 3613 cfilter = NULL; 3614 vf->num_cloud_filters++; 3615 err_free: 3616 kfree(cfilter); 3617 err_out: 3618 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ADD_CLOUD_FILTER, 3619 aq_ret); 3620 } 3621 3622 /** 3623 * i40e_vc_add_qch_msg: Add queue channel and enable ADq 3624 * @vf: pointer to the VF info 3625 * @msg: pointer to the msg buffer 3626 **/ 3627 static int i40e_vc_add_qch_msg(struct i40e_vf *vf, u8 *msg) 3628 { 3629 struct virtchnl_tc_info *tci = 3630 (struct virtchnl_tc_info *)msg; 3631 struct i40e_pf *pf = vf->pf; 3632 struct i40e_link_status *ls = &pf->hw.phy.link_info; 3633 int i, adq_request_qps = 0; 3634 i40e_status aq_ret = 0; 3635 u64 speed = 0; 3636 3637 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3638 aq_ret = I40E_ERR_PARAM; 3639 goto err; 3640 } 3641 3642 /* ADq cannot be applied if spoof check is ON */ 3643 if (vf->spoofchk) { 3644 dev_err(&pf->pdev->dev, 3645 "Spoof check is ON, turn it OFF to enable ADq\n"); 3646 aq_ret = I40E_ERR_PARAM; 3647 goto err; 3648 } 3649 3650 if (!(vf->driver_caps & VIRTCHNL_VF_OFFLOAD_ADQ)) { 3651 dev_err(&pf->pdev->dev, 3652 "VF %d attempting to enable ADq, but hasn't properly negotiated that capability\n", 3653 vf->vf_id); 3654 aq_ret = I40E_ERR_PARAM; 3655 goto err; 3656 } 3657 3658 /* max number of traffic classes for VF currently capped at 4 */ 3659 if (!tci->num_tc || tci->num_tc > I40E_MAX_VF_VSI) { 3660 dev_err(&pf->pdev->dev, 3661 "VF %d trying to set %u TCs, valid range 1-%u TCs per VF\n", 3662 vf->vf_id, tci->num_tc, I40E_MAX_VF_VSI); 3663 aq_ret = I40E_ERR_PARAM; 3664 goto err; 3665 } 3666 3667 /* validate queues for each TC */ 3668 for (i = 0; i < tci->num_tc; i++) 3669 if (!tci->list[i].count || 3670 tci->list[i].count > I40E_DEFAULT_QUEUES_PER_VF) { 3671 dev_err(&pf->pdev->dev, 3672 "VF %d: TC %d trying to set %u queues, valid range 1-%u queues per TC\n", 3673 vf->vf_id, i, tci->list[i].count, 3674 I40E_DEFAULT_QUEUES_PER_VF); 3675 aq_ret = I40E_ERR_PARAM; 3676 goto err; 3677 } 3678 3679 /* need Max VF queues but already have default number of queues */ 3680 adq_request_qps = I40E_MAX_VF_QUEUES - I40E_DEFAULT_QUEUES_PER_VF; 3681 3682 if (pf->queues_left < adq_request_qps) { 3683 dev_err(&pf->pdev->dev, 3684 "No queues left to allocate to VF %d\n", 3685 vf->vf_id); 3686 aq_ret = I40E_ERR_PARAM; 3687 goto err; 3688 } else { 3689 /* we need to allocate max VF queues to enable ADq so as to 3690 * make sure ADq enabled VF always gets back queues when it 3691 * goes through a reset. 3692 */ 3693 vf->num_queue_pairs = I40E_MAX_VF_QUEUES; 3694 } 3695 3696 /* get link speed in MB to validate rate limit */ 3697 switch (ls->link_speed) { 3698 case VIRTCHNL_LINK_SPEED_100MB: 3699 speed = SPEED_100; 3700 break; 3701 case VIRTCHNL_LINK_SPEED_1GB: 3702 speed = SPEED_1000; 3703 break; 3704 case VIRTCHNL_LINK_SPEED_10GB: 3705 speed = SPEED_10000; 3706 break; 3707 case VIRTCHNL_LINK_SPEED_20GB: 3708 speed = SPEED_20000; 3709 break; 3710 case VIRTCHNL_LINK_SPEED_25GB: 3711 speed = SPEED_25000; 3712 break; 3713 case VIRTCHNL_LINK_SPEED_40GB: 3714 speed = SPEED_40000; 3715 break; 3716 default: 3717 dev_err(&pf->pdev->dev, 3718 "Cannot detect link speed\n"); 3719 aq_ret = I40E_ERR_PARAM; 3720 goto err; 3721 } 3722 3723 /* parse data from the queue channel info */ 3724 vf->num_tc = tci->num_tc; 3725 for (i = 0; i < vf->num_tc; i++) { 3726 if (tci->list[i].max_tx_rate) { 3727 if (tci->list[i].max_tx_rate > speed) { 3728 dev_err(&pf->pdev->dev, 3729 "Invalid max tx rate %llu specified for VF %d.", 3730 tci->list[i].max_tx_rate, 3731 vf->vf_id); 3732 aq_ret = I40E_ERR_PARAM; 3733 goto err; 3734 } else { 3735 vf->ch[i].max_tx_rate = 3736 tci->list[i].max_tx_rate; 3737 } 3738 } 3739 vf->ch[i].num_qps = tci->list[i].count; 3740 } 3741 3742 /* set this flag only after making sure all inputs are sane */ 3743 vf->adq_enabled = true; 3744 /* num_req_queues is set when user changes number of queues via ethtool 3745 * and this causes issue for default VSI(which depends on this variable) 3746 * when ADq is enabled, hence reset it. 3747 */ 3748 vf->num_req_queues = 0; 3749 3750 /* reset the VF in order to allocate resources */ 3751 i40e_vc_notify_vf_reset(vf); 3752 i40e_reset_vf(vf, false); 3753 3754 return I40E_SUCCESS; 3755 3756 /* send the response to the VF */ 3757 err: 3758 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_ENABLE_CHANNELS, 3759 aq_ret); 3760 } 3761 3762 /** 3763 * i40e_vc_del_qch_msg 3764 * @vf: pointer to the VF info 3765 * @msg: pointer to the msg buffer 3766 **/ 3767 static int i40e_vc_del_qch_msg(struct i40e_vf *vf, u8 *msg) 3768 { 3769 struct i40e_pf *pf = vf->pf; 3770 i40e_status aq_ret = 0; 3771 3772 if (!test_bit(I40E_VF_STATE_ACTIVE, &vf->vf_states)) { 3773 aq_ret = I40E_ERR_PARAM; 3774 goto err; 3775 } 3776 3777 if (vf->adq_enabled) { 3778 i40e_del_all_cloud_filters(vf); 3779 i40e_del_qch(vf); 3780 vf->adq_enabled = false; 3781 vf->num_tc = 0; 3782 dev_info(&pf->pdev->dev, 3783 "Deleting Queue Channels and cloud filters for ADq on VF %d\n", 3784 vf->vf_id); 3785 } else { 3786 dev_info(&pf->pdev->dev, "VF %d trying to delete queue channels but ADq isn't enabled\n", 3787 vf->vf_id); 3788 aq_ret = I40E_ERR_PARAM; 3789 } 3790 3791 /* reset the VF in order to allocate resources */ 3792 i40e_vc_notify_vf_reset(vf); 3793 i40e_reset_vf(vf, false); 3794 3795 return I40E_SUCCESS; 3796 3797 err: 3798 return i40e_vc_send_resp_to_vf(vf, VIRTCHNL_OP_DISABLE_CHANNELS, 3799 aq_ret); 3800 } 3801 3802 /** 3803 * i40e_vc_process_vf_msg 3804 * @pf: pointer to the PF structure 3805 * @vf_id: source VF id 3806 * @v_opcode: operation code 3807 * @v_retval: unused return value code 3808 * @msg: pointer to the msg buffer 3809 * @msglen: msg length 3810 * 3811 * called from the common aeq/arq handler to 3812 * process request from VF 3813 **/ 3814 int i40e_vc_process_vf_msg(struct i40e_pf *pf, s16 vf_id, u32 v_opcode, 3815 u32 __always_unused v_retval, u8 *msg, u16 msglen) 3816 { 3817 struct i40e_hw *hw = &pf->hw; 3818 int local_vf_id = vf_id - (s16)hw->func_caps.vf_base_id; 3819 struct i40e_vf *vf; 3820 int ret; 3821 3822 pf->vf_aq_requests++; 3823 if (local_vf_id < 0 || local_vf_id >= pf->num_alloc_vfs) 3824 return -EINVAL; 3825 vf = &(pf->vf[local_vf_id]); 3826 3827 /* Check if VF is disabled. */ 3828 if (test_bit(I40E_VF_STATE_DISABLED, &vf->vf_states)) 3829 return I40E_ERR_PARAM; 3830 3831 /* perform basic checks on the msg */ 3832 ret = virtchnl_vc_validate_vf_msg(&vf->vf_ver, v_opcode, msg, msglen); 3833 3834 if (ret) { 3835 i40e_vc_send_resp_to_vf(vf, v_opcode, I40E_ERR_PARAM); 3836 dev_err(&pf->pdev->dev, "Invalid message from VF %d, opcode %d, len %d\n", 3837 local_vf_id, v_opcode, msglen); 3838 switch (ret) { 3839 case VIRTCHNL_STATUS_ERR_PARAM: 3840 return -EPERM; 3841 default: 3842 return -EINVAL; 3843 } 3844 } 3845 3846 switch (v_opcode) { 3847 case VIRTCHNL_OP_VERSION: 3848 ret = i40e_vc_get_version_msg(vf, msg); 3849 break; 3850 case VIRTCHNL_OP_GET_VF_RESOURCES: 3851 ret = i40e_vc_get_vf_resources_msg(vf, msg); 3852 i40e_vc_notify_vf_link_state(vf); 3853 break; 3854 case VIRTCHNL_OP_RESET_VF: 3855 i40e_vc_reset_vf_msg(vf); 3856 ret = 0; 3857 break; 3858 case VIRTCHNL_OP_CONFIG_PROMISCUOUS_MODE: 3859 ret = i40e_vc_config_promiscuous_mode_msg(vf, msg); 3860 break; 3861 case VIRTCHNL_OP_CONFIG_VSI_QUEUES: 3862 ret = i40e_vc_config_queues_msg(vf, msg); 3863 break; 3864 case VIRTCHNL_OP_CONFIG_IRQ_MAP: 3865 ret = i40e_vc_config_irq_map_msg(vf, msg); 3866 break; 3867 case VIRTCHNL_OP_ENABLE_QUEUES: 3868 ret = i40e_vc_enable_queues_msg(vf, msg); 3869 i40e_vc_notify_vf_link_state(vf); 3870 break; 3871 case VIRTCHNL_OP_DISABLE_QUEUES: 3872 ret = i40e_vc_disable_queues_msg(vf, msg); 3873 break; 3874 case VIRTCHNL_OP_ADD_ETH_ADDR: 3875 ret = i40e_vc_add_mac_addr_msg(vf, msg); 3876 break; 3877 case VIRTCHNL_OP_DEL_ETH_ADDR: 3878 ret = i40e_vc_del_mac_addr_msg(vf, msg); 3879 break; 3880 case VIRTCHNL_OP_ADD_VLAN: 3881 ret = i40e_vc_add_vlan_msg(vf, msg); 3882 break; 3883 case VIRTCHNL_OP_DEL_VLAN: 3884 ret = i40e_vc_remove_vlan_msg(vf, msg); 3885 break; 3886 case VIRTCHNL_OP_GET_STATS: 3887 ret = i40e_vc_get_stats_msg(vf, msg); 3888 break; 3889 case VIRTCHNL_OP_IWARP: 3890 ret = i40e_vc_iwarp_msg(vf, msg, msglen); 3891 break; 3892 case VIRTCHNL_OP_CONFIG_IWARP_IRQ_MAP: 3893 ret = i40e_vc_iwarp_qvmap_msg(vf, msg, true); 3894 break; 3895 case VIRTCHNL_OP_RELEASE_IWARP_IRQ_MAP: 3896 ret = i40e_vc_iwarp_qvmap_msg(vf, msg, false); 3897 break; 3898 case VIRTCHNL_OP_CONFIG_RSS_KEY: 3899 ret = i40e_vc_config_rss_key(vf, msg); 3900 break; 3901 case VIRTCHNL_OP_CONFIG_RSS_LUT: 3902 ret = i40e_vc_config_rss_lut(vf, msg); 3903 break; 3904 case VIRTCHNL_OP_GET_RSS_HENA_CAPS: 3905 ret = i40e_vc_get_rss_hena(vf, msg); 3906 break; 3907 case VIRTCHNL_OP_SET_RSS_HENA: 3908 ret = i40e_vc_set_rss_hena(vf, msg); 3909 break; 3910 case VIRTCHNL_OP_ENABLE_VLAN_STRIPPING: 3911 ret = i40e_vc_enable_vlan_stripping(vf, msg); 3912 break; 3913 case VIRTCHNL_OP_DISABLE_VLAN_STRIPPING: 3914 ret = i40e_vc_disable_vlan_stripping(vf, msg); 3915 break; 3916 case VIRTCHNL_OP_REQUEST_QUEUES: 3917 ret = i40e_vc_request_queues_msg(vf, msg); 3918 break; 3919 case VIRTCHNL_OP_ENABLE_CHANNELS: 3920 ret = i40e_vc_add_qch_msg(vf, msg); 3921 break; 3922 case VIRTCHNL_OP_DISABLE_CHANNELS: 3923 ret = i40e_vc_del_qch_msg(vf, msg); 3924 break; 3925 case VIRTCHNL_OP_ADD_CLOUD_FILTER: 3926 ret = i40e_vc_add_cloud_filter(vf, msg); 3927 break; 3928 case VIRTCHNL_OP_DEL_CLOUD_FILTER: 3929 ret = i40e_vc_del_cloud_filter(vf, msg); 3930 break; 3931 case VIRTCHNL_OP_UNKNOWN: 3932 default: 3933 dev_err(&pf->pdev->dev, "Unsupported opcode %d from VF %d\n", 3934 v_opcode, local_vf_id); 3935 ret = i40e_vc_send_resp_to_vf(vf, v_opcode, 3936 I40E_ERR_NOT_IMPLEMENTED); 3937 break; 3938 } 3939 3940 return ret; 3941 } 3942 3943 /** 3944 * i40e_vc_process_vflr_event 3945 * @pf: pointer to the PF structure 3946 * 3947 * called from the vlfr irq handler to 3948 * free up VF resources and state variables 3949 **/ 3950 int i40e_vc_process_vflr_event(struct i40e_pf *pf) 3951 { 3952 struct i40e_hw *hw = &pf->hw; 3953 u32 reg, reg_idx, bit_idx; 3954 struct i40e_vf *vf; 3955 int vf_id; 3956 3957 if (!test_bit(__I40E_VFLR_EVENT_PENDING, pf->state)) 3958 return 0; 3959 3960 /* Re-enable the VFLR interrupt cause here, before looking for which 3961 * VF got reset. Otherwise, if another VF gets a reset while the 3962 * first one is being processed, that interrupt will be lost, and 3963 * that VF will be stuck in reset forever. 3964 */ 3965 reg = rd32(hw, I40E_PFINT_ICR0_ENA); 3966 reg |= I40E_PFINT_ICR0_ENA_VFLR_MASK; 3967 wr32(hw, I40E_PFINT_ICR0_ENA, reg); 3968 i40e_flush(hw); 3969 3970 clear_bit(__I40E_VFLR_EVENT_PENDING, pf->state); 3971 for (vf_id = 0; vf_id < pf->num_alloc_vfs; vf_id++) { 3972 reg_idx = (hw->func_caps.vf_base_id + vf_id) / 32; 3973 bit_idx = (hw->func_caps.vf_base_id + vf_id) % 32; 3974 /* read GLGEN_VFLRSTAT register to find out the flr VFs */ 3975 vf = &pf->vf[vf_id]; 3976 reg = rd32(hw, I40E_GLGEN_VFLRSTAT(reg_idx)); 3977 if (reg & BIT(bit_idx)) 3978 /* i40e_reset_vf will clear the bit in GLGEN_VFLRSTAT */ 3979 i40e_reset_vf(vf, true); 3980 } 3981 3982 return 0; 3983 } 3984 3985 /** 3986 * i40e_validate_vf 3987 * @pf: the physical function 3988 * @vf_id: VF identifier 3989 * 3990 * Check that the VF is enabled and the VSI exists. 3991 * 3992 * Returns 0 on success, negative on failure 3993 **/ 3994 static int i40e_validate_vf(struct i40e_pf *pf, int vf_id) 3995 { 3996 struct i40e_vsi *vsi; 3997 struct i40e_vf *vf; 3998 int ret = 0; 3999 4000 if (vf_id >= pf->num_alloc_vfs) { 4001 dev_err(&pf->pdev->dev, 4002 "Invalid VF Identifier %d\n", vf_id); 4003 ret = -EINVAL; 4004 goto err_out; 4005 } 4006 vf = &pf->vf[vf_id]; 4007 vsi = i40e_find_vsi_from_id(pf, vf->lan_vsi_id); 4008 if (!vsi) 4009 ret = -EINVAL; 4010 err_out: 4011 return ret; 4012 } 4013 4014 /** 4015 * i40e_ndo_set_vf_mac 4016 * @netdev: network interface device structure 4017 * @vf_id: VF identifier 4018 * @mac: mac address 4019 * 4020 * program VF mac address 4021 **/ 4022 int i40e_ndo_set_vf_mac(struct net_device *netdev, int vf_id, u8 *mac) 4023 { 4024 struct i40e_netdev_priv *np = netdev_priv(netdev); 4025 struct i40e_vsi *vsi = np->vsi; 4026 struct i40e_pf *pf = vsi->back; 4027 struct i40e_mac_filter *f; 4028 struct i40e_vf *vf; 4029 int ret = 0; 4030 struct hlist_node *h; 4031 int bkt; 4032 u8 i; 4033 4034 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4035 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4036 return -EAGAIN; 4037 } 4038 4039 /* validate the request */ 4040 ret = i40e_validate_vf(pf, vf_id); 4041 if (ret) 4042 goto error_param; 4043 4044 vf = &pf->vf[vf_id]; 4045 vsi = pf->vsi[vf->lan_vsi_idx]; 4046 4047 /* When the VF is resetting wait until it is done. 4048 * It can take up to 200 milliseconds, 4049 * but wait for up to 300 milliseconds to be safe. 4050 * If the VF is indeed in reset, the vsi pointer has 4051 * to show on the newly loaded vsi under pf->vsi[id]. 4052 */ 4053 for (i = 0; i < 15; i++) { 4054 if (test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4055 if (i > 0) 4056 vsi = pf->vsi[vf->lan_vsi_idx]; 4057 break; 4058 } 4059 msleep(20); 4060 } 4061 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4062 dev_err(&pf->pdev->dev, "VF %d still in reset. Try again.\n", 4063 vf_id); 4064 ret = -EAGAIN; 4065 goto error_param; 4066 } 4067 4068 if (is_multicast_ether_addr(mac)) { 4069 dev_err(&pf->pdev->dev, 4070 "Invalid Ethernet address %pM for VF %d\n", mac, vf_id); 4071 ret = -EINVAL; 4072 goto error_param; 4073 } 4074 4075 /* Lock once because below invoked function add/del_filter requires 4076 * mac_filter_hash_lock to be held 4077 */ 4078 spin_lock_bh(&vsi->mac_filter_hash_lock); 4079 4080 /* delete the temporary mac address */ 4081 if (!is_zero_ether_addr(vf->default_lan_addr.addr)) 4082 i40e_del_mac_filter(vsi, vf->default_lan_addr.addr); 4083 4084 /* Delete all the filters for this VSI - we're going to kill it 4085 * anyway. 4086 */ 4087 hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) 4088 __i40e_del_filter(vsi, f); 4089 4090 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4091 4092 /* program mac filter */ 4093 if (i40e_sync_vsi_filters(vsi)) { 4094 dev_err(&pf->pdev->dev, "Unable to program ucast filters\n"); 4095 ret = -EIO; 4096 goto error_param; 4097 } 4098 ether_addr_copy(vf->default_lan_addr.addr, mac); 4099 4100 if (is_zero_ether_addr(mac)) { 4101 vf->pf_set_mac = false; 4102 dev_info(&pf->pdev->dev, "Removing MAC on VF %d\n", vf_id); 4103 } else { 4104 vf->pf_set_mac = true; 4105 dev_info(&pf->pdev->dev, "Setting MAC %pM on VF %d\n", 4106 mac, vf_id); 4107 } 4108 4109 /* Force the VF interface down so it has to bring up with new MAC 4110 * address 4111 */ 4112 i40e_vc_disable_vf(vf); 4113 dev_info(&pf->pdev->dev, "Bring down and up the VF interface to make this change effective.\n"); 4114 4115 error_param: 4116 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4117 return ret; 4118 } 4119 4120 /** 4121 * i40e_vsi_has_vlans - True if VSI has configured VLANs 4122 * @vsi: pointer to the vsi 4123 * 4124 * Check if a VSI has configured any VLANs. False if we have a port VLAN or if 4125 * we have no configured VLANs. Do not call while holding the 4126 * mac_filter_hash_lock. 4127 */ 4128 static bool i40e_vsi_has_vlans(struct i40e_vsi *vsi) 4129 { 4130 bool have_vlans; 4131 4132 /* If we have a port VLAN, then the VSI cannot have any VLANs 4133 * configured, as all MAC/VLAN filters will be assigned to the PVID. 4134 */ 4135 if (vsi->info.pvid) 4136 return false; 4137 4138 /* Since we don't have a PVID, we know that if the device is in VLAN 4139 * mode it must be because of a VLAN filter configured on this VSI. 4140 */ 4141 spin_lock_bh(&vsi->mac_filter_hash_lock); 4142 have_vlans = i40e_is_vsi_in_vlan(vsi); 4143 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4144 4145 return have_vlans; 4146 } 4147 4148 /** 4149 * i40e_ndo_set_vf_port_vlan 4150 * @netdev: network interface device structure 4151 * @vf_id: VF identifier 4152 * @vlan_id: mac address 4153 * @qos: priority setting 4154 * @vlan_proto: vlan protocol 4155 * 4156 * program VF vlan id and/or qos 4157 **/ 4158 int i40e_ndo_set_vf_port_vlan(struct net_device *netdev, int vf_id, 4159 u16 vlan_id, u8 qos, __be16 vlan_proto) 4160 { 4161 u16 vlanprio = vlan_id | (qos << I40E_VLAN_PRIORITY_SHIFT); 4162 struct i40e_netdev_priv *np = netdev_priv(netdev); 4163 bool allmulti = false, alluni = false; 4164 struct i40e_pf *pf = np->vsi->back; 4165 struct i40e_vsi *vsi; 4166 struct i40e_vf *vf; 4167 int ret = 0; 4168 4169 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4170 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4171 return -EAGAIN; 4172 } 4173 4174 /* validate the request */ 4175 ret = i40e_validate_vf(pf, vf_id); 4176 if (ret) 4177 goto error_pvid; 4178 4179 if ((vlan_id > I40E_MAX_VLANID) || (qos > 7)) { 4180 dev_err(&pf->pdev->dev, "Invalid VF Parameters\n"); 4181 ret = -EINVAL; 4182 goto error_pvid; 4183 } 4184 4185 if (vlan_proto != htons(ETH_P_8021Q)) { 4186 dev_err(&pf->pdev->dev, "VF VLAN protocol is not supported\n"); 4187 ret = -EPROTONOSUPPORT; 4188 goto error_pvid; 4189 } 4190 4191 vf = &pf->vf[vf_id]; 4192 vsi = pf->vsi[vf->lan_vsi_idx]; 4193 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4194 dev_err(&pf->pdev->dev, "VF %d still in reset. Try again.\n", 4195 vf_id); 4196 ret = -EAGAIN; 4197 goto error_pvid; 4198 } 4199 4200 if (le16_to_cpu(vsi->info.pvid) == vlanprio) 4201 /* duplicate request, so just return success */ 4202 goto error_pvid; 4203 4204 if (i40e_vsi_has_vlans(vsi)) { 4205 dev_err(&pf->pdev->dev, 4206 "VF %d has already configured VLAN filters and the administrator is requesting a port VLAN override.\nPlease unload and reload the VF driver for this change to take effect.\n", 4207 vf_id); 4208 /* Administrator Error - knock the VF offline until he does 4209 * the right thing by reconfiguring his network correctly 4210 * and then reloading the VF driver. 4211 */ 4212 i40e_vc_disable_vf(vf); 4213 /* During reset the VF got a new VSI, so refresh the pointer. */ 4214 vsi = pf->vsi[vf->lan_vsi_idx]; 4215 } 4216 4217 /* Locked once because multiple functions below iterate list */ 4218 spin_lock_bh(&vsi->mac_filter_hash_lock); 4219 4220 /* Check for condition where there was already a port VLAN ID 4221 * filter set and now it is being deleted by setting it to zero. 4222 * Additionally check for the condition where there was a port 4223 * VLAN but now there is a new and different port VLAN being set. 4224 * Before deleting all the old VLAN filters we must add new ones 4225 * with -1 (I40E_VLAN_ANY) or otherwise we're left with all our 4226 * MAC addresses deleted. 4227 */ 4228 if ((!(vlan_id || qos) || 4229 vlanprio != le16_to_cpu(vsi->info.pvid)) && 4230 vsi->info.pvid) { 4231 ret = i40e_add_vlan_all_mac(vsi, I40E_VLAN_ANY); 4232 if (ret) { 4233 dev_info(&vsi->back->pdev->dev, 4234 "add VF VLAN failed, ret=%d aq_err=%d\n", ret, 4235 vsi->back->hw.aq.asq_last_status); 4236 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4237 goto error_pvid; 4238 } 4239 } 4240 4241 if (vsi->info.pvid) { 4242 /* remove all filters on the old VLAN */ 4243 i40e_rm_vlan_all_mac(vsi, (le16_to_cpu(vsi->info.pvid) & 4244 VLAN_VID_MASK)); 4245 } 4246 4247 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4248 4249 /* disable promisc modes in case they were enabled */ 4250 ret = i40e_config_vf_promiscuous_mode(vf, vf->lan_vsi_id, 4251 allmulti, alluni); 4252 if (ret) { 4253 dev_err(&pf->pdev->dev, "Unable to config VF promiscuous mode\n"); 4254 goto error_pvid; 4255 } 4256 4257 if (vlan_id || qos) 4258 ret = i40e_vsi_add_pvid(vsi, vlanprio); 4259 else 4260 i40e_vsi_remove_pvid(vsi); 4261 spin_lock_bh(&vsi->mac_filter_hash_lock); 4262 4263 if (vlan_id) { 4264 dev_info(&pf->pdev->dev, "Setting VLAN %d, QOS 0x%x on VF %d\n", 4265 vlan_id, qos, vf_id); 4266 4267 /* add new VLAN filter for each MAC */ 4268 ret = i40e_add_vlan_all_mac(vsi, vlan_id); 4269 if (ret) { 4270 dev_info(&vsi->back->pdev->dev, 4271 "add VF VLAN failed, ret=%d aq_err=%d\n", ret, 4272 vsi->back->hw.aq.asq_last_status); 4273 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4274 goto error_pvid; 4275 } 4276 4277 /* remove the previously added non-VLAN MAC filters */ 4278 i40e_rm_vlan_all_mac(vsi, I40E_VLAN_ANY); 4279 } 4280 4281 spin_unlock_bh(&vsi->mac_filter_hash_lock); 4282 4283 if (test_bit(I40E_VF_STATE_UC_PROMISC, &vf->vf_states)) 4284 alluni = true; 4285 4286 if (test_bit(I40E_VF_STATE_MC_PROMISC, &vf->vf_states)) 4287 allmulti = true; 4288 4289 /* Schedule the worker thread to take care of applying changes */ 4290 i40e_service_event_schedule(vsi->back); 4291 4292 if (ret) { 4293 dev_err(&pf->pdev->dev, "Unable to update VF vsi context\n"); 4294 goto error_pvid; 4295 } 4296 4297 /* The Port VLAN needs to be saved across resets the same as the 4298 * default LAN MAC address. 4299 */ 4300 vf->port_vlan_id = le16_to_cpu(vsi->info.pvid); 4301 4302 ret = i40e_config_vf_promiscuous_mode(vf, vsi->id, allmulti, alluni); 4303 if (ret) { 4304 dev_err(&pf->pdev->dev, "Unable to config vf promiscuous mode\n"); 4305 goto error_pvid; 4306 } 4307 4308 ret = 0; 4309 4310 error_pvid: 4311 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4312 return ret; 4313 } 4314 4315 /** 4316 * i40e_ndo_set_vf_bw 4317 * @netdev: network interface device structure 4318 * @vf_id: VF identifier 4319 * @min_tx_rate: Minimum Tx rate 4320 * @max_tx_rate: Maximum Tx rate 4321 * 4322 * configure VF Tx rate 4323 **/ 4324 int i40e_ndo_set_vf_bw(struct net_device *netdev, int vf_id, int min_tx_rate, 4325 int max_tx_rate) 4326 { 4327 struct i40e_netdev_priv *np = netdev_priv(netdev); 4328 struct i40e_pf *pf = np->vsi->back; 4329 struct i40e_vsi *vsi; 4330 struct i40e_vf *vf; 4331 int ret = 0; 4332 4333 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4334 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4335 return -EAGAIN; 4336 } 4337 4338 /* validate the request */ 4339 ret = i40e_validate_vf(pf, vf_id); 4340 if (ret) 4341 goto error; 4342 4343 if (min_tx_rate) { 4344 dev_err(&pf->pdev->dev, "Invalid min tx rate (%d) (greater than 0) specified for VF %d.\n", 4345 min_tx_rate, vf_id); 4346 ret = -EINVAL; 4347 goto error; 4348 } 4349 4350 vf = &pf->vf[vf_id]; 4351 vsi = pf->vsi[vf->lan_vsi_idx]; 4352 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4353 dev_err(&pf->pdev->dev, "VF %d still in reset. Try again.\n", 4354 vf_id); 4355 ret = -EAGAIN; 4356 goto error; 4357 } 4358 4359 ret = i40e_set_bw_limit(vsi, vsi->seid, max_tx_rate); 4360 if (ret) 4361 goto error; 4362 4363 vf->tx_rate = max_tx_rate; 4364 error: 4365 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4366 return ret; 4367 } 4368 4369 /** 4370 * i40e_ndo_get_vf_config 4371 * @netdev: network interface device structure 4372 * @vf_id: VF identifier 4373 * @ivi: VF configuration structure 4374 * 4375 * return VF configuration 4376 **/ 4377 int i40e_ndo_get_vf_config(struct net_device *netdev, 4378 int vf_id, struct ifla_vf_info *ivi) 4379 { 4380 struct i40e_netdev_priv *np = netdev_priv(netdev); 4381 struct i40e_vsi *vsi = np->vsi; 4382 struct i40e_pf *pf = vsi->back; 4383 struct i40e_vf *vf; 4384 int ret = 0; 4385 4386 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4387 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4388 return -EAGAIN; 4389 } 4390 4391 /* validate the request */ 4392 ret = i40e_validate_vf(pf, vf_id); 4393 if (ret) 4394 goto error_param; 4395 4396 vf = &pf->vf[vf_id]; 4397 /* first vsi is always the LAN vsi */ 4398 vsi = pf->vsi[vf->lan_vsi_idx]; 4399 if (!vsi) { 4400 ret = -ENOENT; 4401 goto error_param; 4402 } 4403 4404 ivi->vf = vf_id; 4405 4406 ether_addr_copy(ivi->mac, vf->default_lan_addr.addr); 4407 4408 ivi->max_tx_rate = vf->tx_rate; 4409 ivi->min_tx_rate = 0; 4410 ivi->vlan = le16_to_cpu(vsi->info.pvid) & I40E_VLAN_MASK; 4411 ivi->qos = (le16_to_cpu(vsi->info.pvid) & I40E_PRIORITY_MASK) >> 4412 I40E_VLAN_PRIORITY_SHIFT; 4413 if (vf->link_forced == false) 4414 ivi->linkstate = IFLA_VF_LINK_STATE_AUTO; 4415 else if (vf->link_up == true) 4416 ivi->linkstate = IFLA_VF_LINK_STATE_ENABLE; 4417 else 4418 ivi->linkstate = IFLA_VF_LINK_STATE_DISABLE; 4419 ivi->spoofchk = vf->spoofchk; 4420 ivi->trusted = vf->trusted; 4421 ret = 0; 4422 4423 error_param: 4424 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4425 return ret; 4426 } 4427 4428 /** 4429 * i40e_ndo_set_vf_link_state 4430 * @netdev: network interface device structure 4431 * @vf_id: VF identifier 4432 * @link: required link state 4433 * 4434 * Set the link state of a specified VF, regardless of physical link state 4435 **/ 4436 int i40e_ndo_set_vf_link_state(struct net_device *netdev, int vf_id, int link) 4437 { 4438 struct i40e_netdev_priv *np = netdev_priv(netdev); 4439 struct i40e_pf *pf = np->vsi->back; 4440 struct virtchnl_pf_event pfe; 4441 struct i40e_hw *hw = &pf->hw; 4442 struct i40e_vf *vf; 4443 int abs_vf_id; 4444 int ret = 0; 4445 4446 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4447 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4448 return -EAGAIN; 4449 } 4450 4451 /* validate the request */ 4452 if (vf_id >= pf->num_alloc_vfs) { 4453 dev_err(&pf->pdev->dev, "Invalid VF Identifier %d\n", vf_id); 4454 ret = -EINVAL; 4455 goto error_out; 4456 } 4457 4458 vf = &pf->vf[vf_id]; 4459 abs_vf_id = vf->vf_id + hw->func_caps.vf_base_id; 4460 4461 pfe.event = VIRTCHNL_EVENT_LINK_CHANGE; 4462 pfe.severity = PF_EVENT_SEVERITY_INFO; 4463 4464 switch (link) { 4465 case IFLA_VF_LINK_STATE_AUTO: 4466 vf->link_forced = false; 4467 pfe.event_data.link_event.link_status = 4468 pf->hw.phy.link_info.link_info & I40E_AQ_LINK_UP; 4469 pfe.event_data.link_event.link_speed = 4470 (enum virtchnl_link_speed) 4471 pf->hw.phy.link_info.link_speed; 4472 break; 4473 case IFLA_VF_LINK_STATE_ENABLE: 4474 vf->link_forced = true; 4475 vf->link_up = true; 4476 pfe.event_data.link_event.link_status = true; 4477 pfe.event_data.link_event.link_speed = VIRTCHNL_LINK_SPEED_40GB; 4478 break; 4479 case IFLA_VF_LINK_STATE_DISABLE: 4480 vf->link_forced = true; 4481 vf->link_up = false; 4482 pfe.event_data.link_event.link_status = false; 4483 pfe.event_data.link_event.link_speed = 0; 4484 break; 4485 default: 4486 ret = -EINVAL; 4487 goto error_out; 4488 } 4489 /* Notify the VF of its new link state */ 4490 i40e_aq_send_msg_to_vf(hw, abs_vf_id, VIRTCHNL_OP_EVENT, 4491 0, (u8 *)&pfe, sizeof(pfe), NULL); 4492 4493 error_out: 4494 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4495 return ret; 4496 } 4497 4498 /** 4499 * i40e_ndo_set_vf_spoofchk 4500 * @netdev: network interface device structure 4501 * @vf_id: VF identifier 4502 * @enable: flag to enable or disable feature 4503 * 4504 * Enable or disable VF spoof checking 4505 **/ 4506 int i40e_ndo_set_vf_spoofchk(struct net_device *netdev, int vf_id, bool enable) 4507 { 4508 struct i40e_netdev_priv *np = netdev_priv(netdev); 4509 struct i40e_vsi *vsi = np->vsi; 4510 struct i40e_pf *pf = vsi->back; 4511 struct i40e_vsi_context ctxt; 4512 struct i40e_hw *hw = &pf->hw; 4513 struct i40e_vf *vf; 4514 int ret = 0; 4515 4516 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4517 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4518 return -EAGAIN; 4519 } 4520 4521 /* validate the request */ 4522 if (vf_id >= pf->num_alloc_vfs) { 4523 dev_err(&pf->pdev->dev, "Invalid VF Identifier %d\n", vf_id); 4524 ret = -EINVAL; 4525 goto out; 4526 } 4527 4528 vf = &(pf->vf[vf_id]); 4529 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4530 dev_err(&pf->pdev->dev, "VF %d still in reset. Try again.\n", 4531 vf_id); 4532 ret = -EAGAIN; 4533 goto out; 4534 } 4535 4536 if (enable == vf->spoofchk) 4537 goto out; 4538 4539 vf->spoofchk = enable; 4540 memset(&ctxt, 0, sizeof(ctxt)); 4541 ctxt.seid = pf->vsi[vf->lan_vsi_idx]->seid; 4542 ctxt.pf_num = pf->hw.pf_id; 4543 ctxt.info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_SECURITY_VALID); 4544 if (enable) 4545 ctxt.info.sec_flags |= (I40E_AQ_VSI_SEC_FLAG_ENABLE_VLAN_CHK | 4546 I40E_AQ_VSI_SEC_FLAG_ENABLE_MAC_CHK); 4547 ret = i40e_aq_update_vsi_params(hw, &ctxt, NULL); 4548 if (ret) { 4549 dev_err(&pf->pdev->dev, "Error %d updating VSI parameters\n", 4550 ret); 4551 ret = -EIO; 4552 } 4553 out: 4554 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4555 return ret; 4556 } 4557 4558 /** 4559 * i40e_ndo_set_vf_trust 4560 * @netdev: network interface device structure of the pf 4561 * @vf_id: VF identifier 4562 * @setting: trust setting 4563 * 4564 * Enable or disable VF trust setting 4565 **/ 4566 int i40e_ndo_set_vf_trust(struct net_device *netdev, int vf_id, bool setting) 4567 { 4568 struct i40e_netdev_priv *np = netdev_priv(netdev); 4569 struct i40e_pf *pf = np->vsi->back; 4570 struct i40e_vf *vf; 4571 int ret = 0; 4572 4573 if (test_and_set_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state)) { 4574 dev_warn(&pf->pdev->dev, "Unable to configure VFs, other operation is pending.\n"); 4575 return -EAGAIN; 4576 } 4577 4578 /* validate the request */ 4579 if (vf_id >= pf->num_alloc_vfs) { 4580 dev_err(&pf->pdev->dev, "Invalid VF Identifier %d\n", vf_id); 4581 ret = -EINVAL; 4582 goto out; 4583 } 4584 4585 if (pf->flags & I40E_FLAG_MFP_ENABLED) { 4586 dev_err(&pf->pdev->dev, "Trusted VF not supported in MFP mode.\n"); 4587 ret = -EINVAL; 4588 goto out; 4589 } 4590 4591 vf = &pf->vf[vf_id]; 4592 4593 if (setting == vf->trusted) 4594 goto out; 4595 4596 vf->trusted = setting; 4597 i40e_vc_disable_vf(vf); 4598 dev_info(&pf->pdev->dev, "VF %u is now %strusted\n", 4599 vf_id, setting ? "" : "un"); 4600 4601 if (vf->adq_enabled) { 4602 if (!vf->trusted) { 4603 dev_info(&pf->pdev->dev, 4604 "VF %u no longer Trusted, deleting all cloud filters\n", 4605 vf_id); 4606 i40e_del_all_cloud_filters(vf); 4607 } 4608 } 4609 4610 out: 4611 clear_bit(__I40E_VIRTCHNL_OP_PENDING, pf->state); 4612 return ret; 4613 } 4614 4615 /** 4616 * i40e_get_vf_stats - populate some stats for the VF 4617 * @netdev: the netdev of the PF 4618 * @vf_id: the host OS identifier (0-127) 4619 * @vf_stats: pointer to the OS memory to be initialized 4620 */ 4621 int i40e_get_vf_stats(struct net_device *netdev, int vf_id, 4622 struct ifla_vf_stats *vf_stats) 4623 { 4624 struct i40e_netdev_priv *np = netdev_priv(netdev); 4625 struct i40e_pf *pf = np->vsi->back; 4626 struct i40e_eth_stats *stats; 4627 struct i40e_vsi *vsi; 4628 struct i40e_vf *vf; 4629 4630 /* validate the request */ 4631 if (i40e_validate_vf(pf, vf_id)) 4632 return -EINVAL; 4633 4634 vf = &pf->vf[vf_id]; 4635 if (!test_bit(I40E_VF_STATE_INIT, &vf->vf_states)) { 4636 dev_err(&pf->pdev->dev, "VF %d in reset. Try again.\n", vf_id); 4637 return -EBUSY; 4638 } 4639 4640 vsi = pf->vsi[vf->lan_vsi_idx]; 4641 if (!vsi) 4642 return -EINVAL; 4643 4644 i40e_update_eth_stats(vsi); 4645 stats = &vsi->eth_stats; 4646 4647 memset(vf_stats, 0, sizeof(*vf_stats)); 4648 4649 vf_stats->rx_packets = stats->rx_unicast + stats->rx_broadcast + 4650 stats->rx_multicast; 4651 vf_stats->tx_packets = stats->tx_unicast + stats->tx_broadcast + 4652 stats->tx_multicast; 4653 vf_stats->rx_bytes = stats->rx_bytes; 4654 vf_stats->tx_bytes = stats->tx_bytes; 4655 vf_stats->broadcast = stats->rx_broadcast; 4656 vf_stats->multicast = stats->rx_multicast; 4657 vf_stats->rx_dropped = stats->rx_discards; 4658 vf_stats->tx_dropped = stats->tx_discards; 4659 4660 return 0; 4661 } 4662