1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (C) 2023 Intel Corporation */ 3 4 #include "idpf.h" 5 #include "idpf_virtchnl.h" 6 #include "idpf_ptp.h" 7 8 static const struct net_device_ops idpf_netdev_ops; 9 10 /** 11 * idpf_init_vector_stack - Fill the MSIX vector stack with vector index 12 * @adapter: private data struct 13 * 14 * Return 0 on success, error on failure 15 */ 16 static int idpf_init_vector_stack(struct idpf_adapter *adapter) 17 { 18 struct idpf_vector_lifo *stack; 19 u16 min_vec; 20 u32 i; 21 22 mutex_lock(&adapter->vector_lock); 23 min_vec = adapter->num_msix_entries - adapter->num_avail_msix; 24 stack = &adapter->vector_stack; 25 stack->size = adapter->num_msix_entries; 26 /* set the base and top to point at start of the 'free pool' to 27 * distribute the unused vectors on-demand basis 28 */ 29 stack->base = min_vec; 30 stack->top = min_vec; 31 32 stack->vec_idx = kcalloc(stack->size, sizeof(u16), GFP_KERNEL); 33 if (!stack->vec_idx) { 34 mutex_unlock(&adapter->vector_lock); 35 36 return -ENOMEM; 37 } 38 39 for (i = 0; i < stack->size; i++) 40 stack->vec_idx[i] = i; 41 42 mutex_unlock(&adapter->vector_lock); 43 44 return 0; 45 } 46 47 /** 48 * idpf_deinit_vector_stack - zero out the MSIX vector stack 49 * @adapter: private data struct 50 */ 51 static void idpf_deinit_vector_stack(struct idpf_adapter *adapter) 52 { 53 struct idpf_vector_lifo *stack; 54 55 mutex_lock(&adapter->vector_lock); 56 stack = &adapter->vector_stack; 57 kfree(stack->vec_idx); 58 stack->vec_idx = NULL; 59 mutex_unlock(&adapter->vector_lock); 60 } 61 62 /** 63 * idpf_mb_intr_rel_irq - Free the IRQ association with the OS 64 * @adapter: adapter structure 65 * 66 * This will also disable interrupt mode and queue up mailbox task. Mailbox 67 * task will reschedule itself if not in interrupt mode. 68 */ 69 static void idpf_mb_intr_rel_irq(struct idpf_adapter *adapter) 70 { 71 clear_bit(IDPF_MB_INTR_MODE, adapter->flags); 72 kfree(free_irq(adapter->msix_entries[0].vector, adapter)); 73 queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0); 74 } 75 76 /** 77 * idpf_intr_rel - Release interrupt capabilities and free memory 78 * @adapter: adapter to disable interrupts on 79 */ 80 void idpf_intr_rel(struct idpf_adapter *adapter) 81 { 82 if (!adapter->msix_entries) 83 return; 84 85 idpf_mb_intr_rel_irq(adapter); 86 pci_free_irq_vectors(adapter->pdev); 87 idpf_send_dealloc_vectors_msg(adapter); 88 idpf_deinit_vector_stack(adapter); 89 kfree(adapter->msix_entries); 90 adapter->msix_entries = NULL; 91 kfree(adapter->rdma_msix_entries); 92 adapter->rdma_msix_entries = NULL; 93 } 94 95 /** 96 * idpf_mb_intr_clean - Interrupt handler for the mailbox 97 * @irq: interrupt number 98 * @data: pointer to the adapter structure 99 */ 100 static irqreturn_t idpf_mb_intr_clean(int __always_unused irq, void *data) 101 { 102 struct idpf_adapter *adapter = (struct idpf_adapter *)data; 103 104 queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0); 105 106 return IRQ_HANDLED; 107 } 108 109 /** 110 * idpf_mb_irq_enable - Enable MSIX interrupt for the mailbox 111 * @adapter: adapter to get the hardware address for register write 112 */ 113 static void idpf_mb_irq_enable(struct idpf_adapter *adapter) 114 { 115 struct idpf_intr_reg *intr = &adapter->mb_vector.intr_reg; 116 u32 val; 117 118 val = intr->dyn_ctl_intena_m | intr->dyn_ctl_itridx_m; 119 writel(val, intr->dyn_ctl); 120 writel(intr->icr_ena_ctlq_m, intr->icr_ena); 121 } 122 123 /** 124 * idpf_mb_intr_req_irq - Request irq for the mailbox interrupt 125 * @adapter: adapter structure to pass to the mailbox irq handler 126 */ 127 static int idpf_mb_intr_req_irq(struct idpf_adapter *adapter) 128 { 129 int irq_num, mb_vidx = 0, err; 130 char *name; 131 132 irq_num = adapter->msix_entries[mb_vidx].vector; 133 name = kasprintf(GFP_KERNEL, "%s-%s-%d", 134 dev_driver_string(&adapter->pdev->dev), 135 "Mailbox", mb_vidx); 136 err = request_irq(irq_num, adapter->irq_mb_handler, 0, name, adapter); 137 if (err) { 138 dev_err(&adapter->pdev->dev, 139 "IRQ request for mailbox failed, error: %d\n", err); 140 141 return err; 142 } 143 144 set_bit(IDPF_MB_INTR_MODE, adapter->flags); 145 146 return 0; 147 } 148 149 /** 150 * idpf_mb_intr_init - Initialize the mailbox interrupt 151 * @adapter: adapter structure to store the mailbox vector 152 */ 153 static int idpf_mb_intr_init(struct idpf_adapter *adapter) 154 { 155 adapter->dev_ops.reg_ops.mb_intr_reg_init(adapter); 156 adapter->irq_mb_handler = idpf_mb_intr_clean; 157 158 return idpf_mb_intr_req_irq(adapter); 159 } 160 161 /** 162 * idpf_vector_lifo_push - push MSIX vector index onto stack 163 * @adapter: private data struct 164 * @vec_idx: vector index to store 165 */ 166 static int idpf_vector_lifo_push(struct idpf_adapter *adapter, u16 vec_idx) 167 { 168 struct idpf_vector_lifo *stack = &adapter->vector_stack; 169 170 lockdep_assert_held(&adapter->vector_lock); 171 172 if (stack->top == stack->base) { 173 dev_err(&adapter->pdev->dev, "Exceeded the vector stack limit: %d\n", 174 stack->top); 175 return -EINVAL; 176 } 177 178 stack->vec_idx[--stack->top] = vec_idx; 179 180 return 0; 181 } 182 183 /** 184 * idpf_vector_lifo_pop - pop MSIX vector index from stack 185 * @adapter: private data struct 186 */ 187 static int idpf_vector_lifo_pop(struct idpf_adapter *adapter) 188 { 189 struct idpf_vector_lifo *stack = &adapter->vector_stack; 190 191 lockdep_assert_held(&adapter->vector_lock); 192 193 if (stack->top == stack->size) { 194 dev_err(&adapter->pdev->dev, "No interrupt vectors are available to distribute!\n"); 195 196 return -EINVAL; 197 } 198 199 return stack->vec_idx[stack->top++]; 200 } 201 202 /** 203 * idpf_vector_stash - Store the vector indexes onto the stack 204 * @adapter: private data struct 205 * @q_vector_idxs: vector index array 206 * @vec_info: info related to the number of vectors 207 * 208 * This function is a no-op if there are no vectors indexes to be stashed 209 */ 210 static void idpf_vector_stash(struct idpf_adapter *adapter, u16 *q_vector_idxs, 211 struct idpf_vector_info *vec_info) 212 { 213 int i, base = 0; 214 u16 vec_idx; 215 216 lockdep_assert_held(&adapter->vector_lock); 217 218 if (!vec_info->num_curr_vecs) 219 return; 220 221 /* For default vports, no need to stash vector allocated from the 222 * default pool onto the stack 223 */ 224 if (vec_info->default_vport) 225 base = IDPF_MIN_Q_VEC; 226 227 for (i = vec_info->num_curr_vecs - 1; i >= base ; i--) { 228 vec_idx = q_vector_idxs[i]; 229 idpf_vector_lifo_push(adapter, vec_idx); 230 adapter->num_avail_msix++; 231 } 232 } 233 234 /** 235 * idpf_req_rel_vector_indexes - Request or release MSIX vector indexes 236 * @adapter: driver specific private structure 237 * @q_vector_idxs: vector index array 238 * @vec_info: info related to the number of vectors 239 * 240 * This is the core function to distribute the MSIX vectors acquired from the 241 * OS. It expects the caller to pass the number of vectors required and 242 * also previously allocated. First, it stashes previously allocated vector 243 * indexes on to the stack and then figures out if it can allocate requested 244 * vectors. It can wait on acquiring the mutex lock. If the caller passes 0 as 245 * requested vectors, then this function just stashes the already allocated 246 * vectors and returns 0. 247 * 248 * Returns actual number of vectors allocated on success, error value on failure 249 * If 0 is returned, implies the stack has no vectors to allocate which is also 250 * a failure case for the caller 251 */ 252 int idpf_req_rel_vector_indexes(struct idpf_adapter *adapter, 253 u16 *q_vector_idxs, 254 struct idpf_vector_info *vec_info) 255 { 256 u16 num_req_vecs, num_alloc_vecs = 0, max_vecs; 257 struct idpf_vector_lifo *stack; 258 int i, j, vecid; 259 260 mutex_lock(&adapter->vector_lock); 261 stack = &adapter->vector_stack; 262 num_req_vecs = vec_info->num_req_vecs; 263 264 /* Stash interrupt vector indexes onto the stack if required */ 265 idpf_vector_stash(adapter, q_vector_idxs, vec_info); 266 267 if (!num_req_vecs) 268 goto rel_lock; 269 270 if (vec_info->default_vport) { 271 /* As IDPF_MIN_Q_VEC per default vport is put aside in the 272 * default pool of the stack, use them for default vports 273 */ 274 j = vec_info->index * IDPF_MIN_Q_VEC + IDPF_MBX_Q_VEC; 275 for (i = 0; i < IDPF_MIN_Q_VEC; i++) { 276 q_vector_idxs[num_alloc_vecs++] = stack->vec_idx[j++]; 277 num_req_vecs--; 278 } 279 } 280 281 /* Find if stack has enough vector to allocate */ 282 max_vecs = min(adapter->num_avail_msix, num_req_vecs); 283 284 for (j = 0; j < max_vecs; j++) { 285 vecid = idpf_vector_lifo_pop(adapter); 286 q_vector_idxs[num_alloc_vecs++] = vecid; 287 } 288 adapter->num_avail_msix -= max_vecs; 289 290 rel_lock: 291 mutex_unlock(&adapter->vector_lock); 292 293 return num_alloc_vecs; 294 } 295 296 /** 297 * idpf_intr_req - Request interrupt capabilities 298 * @adapter: adapter to enable interrupts on 299 * 300 * Returns 0 on success, negative on failure 301 */ 302 int idpf_intr_req(struct idpf_adapter *adapter) 303 { 304 u16 num_lan_vecs, min_lan_vecs, num_rdma_vecs = 0, min_rdma_vecs = 0; 305 u16 default_vports = idpf_get_default_vports(adapter); 306 int num_q_vecs, total_vecs, num_vec_ids; 307 int min_vectors, actual_vecs, err; 308 unsigned int vector; 309 u16 *vecids; 310 int i; 311 312 total_vecs = idpf_get_reserved_vecs(adapter); 313 num_lan_vecs = total_vecs; 314 if (idpf_is_rdma_cap_ena(adapter)) { 315 num_rdma_vecs = idpf_get_reserved_rdma_vecs(adapter); 316 min_rdma_vecs = IDPF_MIN_RDMA_VEC; 317 318 if (!num_rdma_vecs) { 319 /* If idpf_get_reserved_rdma_vecs is 0, vectors are 320 * pulled from the LAN pool. 321 */ 322 num_rdma_vecs = min_rdma_vecs; 323 } else if (num_rdma_vecs < min_rdma_vecs) { 324 dev_err(&adapter->pdev->dev, 325 "Not enough vectors reserved for RDMA (min: %u, current: %u)\n", 326 min_rdma_vecs, num_rdma_vecs); 327 return -EINVAL; 328 } 329 } 330 331 num_q_vecs = total_vecs - IDPF_MBX_Q_VEC; 332 333 err = idpf_send_alloc_vectors_msg(adapter, num_q_vecs); 334 if (err) { 335 dev_err(&adapter->pdev->dev, 336 "Failed to allocate %d vectors: %d\n", num_q_vecs, err); 337 338 return -EAGAIN; 339 } 340 341 min_lan_vecs = IDPF_MBX_Q_VEC + IDPF_MIN_Q_VEC * default_vports; 342 min_vectors = min_lan_vecs + min_rdma_vecs; 343 actual_vecs = pci_alloc_irq_vectors(adapter->pdev, min_vectors, 344 total_vecs, PCI_IRQ_MSIX); 345 if (actual_vecs < 0) { 346 dev_err(&adapter->pdev->dev, "Failed to allocate minimum MSIX vectors required: %d\n", 347 min_vectors); 348 err = actual_vecs; 349 goto send_dealloc_vecs; 350 } 351 352 if (idpf_is_rdma_cap_ena(adapter)) { 353 if (actual_vecs < total_vecs) { 354 dev_warn(&adapter->pdev->dev, 355 "Warning: %d vectors requested, only %d available. Defaulting to minimum (%d) for RDMA and remaining for LAN.\n", 356 total_vecs, actual_vecs, IDPF_MIN_RDMA_VEC); 357 num_rdma_vecs = IDPF_MIN_RDMA_VEC; 358 } 359 360 adapter->rdma_msix_entries = kcalloc(num_rdma_vecs, 361 sizeof(struct msix_entry), 362 GFP_KERNEL); 363 if (!adapter->rdma_msix_entries) { 364 err = -ENOMEM; 365 goto free_irq; 366 } 367 } 368 369 num_lan_vecs = actual_vecs - num_rdma_vecs; 370 adapter->msix_entries = kcalloc(num_lan_vecs, sizeof(struct msix_entry), 371 GFP_KERNEL); 372 if (!adapter->msix_entries) { 373 err = -ENOMEM; 374 goto free_rdma_msix; 375 } 376 377 adapter->mb_vector.v_idx = le16_to_cpu(adapter->caps.mailbox_vector_id); 378 379 vecids = kcalloc(actual_vecs, sizeof(u16), GFP_KERNEL); 380 if (!vecids) { 381 err = -ENOMEM; 382 goto free_msix; 383 } 384 385 num_vec_ids = idpf_get_vec_ids(adapter, vecids, actual_vecs, 386 &adapter->req_vec_chunks->vchunks); 387 if (num_vec_ids < actual_vecs) { 388 err = -EINVAL; 389 goto free_vecids; 390 } 391 392 for (vector = 0; vector < num_lan_vecs; vector++) { 393 adapter->msix_entries[vector].entry = vecids[vector]; 394 adapter->msix_entries[vector].vector = 395 pci_irq_vector(adapter->pdev, vector); 396 } 397 for (i = 0; i < num_rdma_vecs; vector++, i++) { 398 adapter->rdma_msix_entries[i].entry = vecids[vector]; 399 adapter->rdma_msix_entries[i].vector = 400 pci_irq_vector(adapter->pdev, vector); 401 } 402 403 /* 'num_avail_msix' is used to distribute excess vectors to the vports 404 * after considering the minimum vectors required per each default 405 * vport 406 */ 407 adapter->num_avail_msix = num_lan_vecs - min_lan_vecs; 408 adapter->num_msix_entries = num_lan_vecs; 409 if (idpf_is_rdma_cap_ena(adapter)) 410 adapter->num_rdma_msix_entries = num_rdma_vecs; 411 412 /* Fill MSIX vector lifo stack with vector indexes */ 413 err = idpf_init_vector_stack(adapter); 414 if (err) 415 goto free_vecids; 416 417 err = idpf_mb_intr_init(adapter); 418 if (err) 419 goto deinit_vec_stack; 420 idpf_mb_irq_enable(adapter); 421 kfree(vecids); 422 423 return 0; 424 425 deinit_vec_stack: 426 idpf_deinit_vector_stack(adapter); 427 free_vecids: 428 kfree(vecids); 429 free_msix: 430 kfree(adapter->msix_entries); 431 adapter->msix_entries = NULL; 432 free_rdma_msix: 433 kfree(adapter->rdma_msix_entries); 434 adapter->rdma_msix_entries = NULL; 435 free_irq: 436 pci_free_irq_vectors(adapter->pdev); 437 send_dealloc_vecs: 438 idpf_send_dealloc_vectors_msg(adapter); 439 440 return err; 441 } 442 443 /** 444 * idpf_find_mac_filter - Search filter list for specific mac filter 445 * @vconfig: Vport config structure 446 * @macaddr: The MAC address 447 * 448 * Returns ptr to the filter object or NULL. Must be called while holding the 449 * mac_filter_list_lock. 450 **/ 451 static struct idpf_mac_filter *idpf_find_mac_filter(struct idpf_vport_config *vconfig, 452 const u8 *macaddr) 453 { 454 struct idpf_mac_filter *f; 455 456 if (!macaddr) 457 return NULL; 458 459 list_for_each_entry(f, &vconfig->user_config.mac_filter_list, list) { 460 if (ether_addr_equal(macaddr, f->macaddr)) 461 return f; 462 } 463 464 return NULL; 465 } 466 467 /** 468 * __idpf_del_mac_filter - Delete a MAC filter from the filter list 469 * @vport_config: Vport config structure 470 * @macaddr: The MAC address 471 * 472 * Returns 0 on success, error value on failure 473 **/ 474 static int __idpf_del_mac_filter(struct idpf_vport_config *vport_config, 475 const u8 *macaddr) 476 { 477 struct idpf_mac_filter *f; 478 479 spin_lock_bh(&vport_config->mac_filter_list_lock); 480 f = idpf_find_mac_filter(vport_config, macaddr); 481 if (f) { 482 list_del(&f->list); 483 kfree(f); 484 } 485 spin_unlock_bh(&vport_config->mac_filter_list_lock); 486 487 return 0; 488 } 489 490 /** 491 * idpf_del_mac_filter - Delete a MAC filter from the filter list 492 * @vport: Main vport structure 493 * @np: Netdev private structure 494 * @macaddr: The MAC address 495 * @async: Don't wait for return message 496 * 497 * Removes filter from list and if interface is up, tells hardware about the 498 * removed filter. 499 **/ 500 static int idpf_del_mac_filter(struct idpf_vport *vport, 501 struct idpf_netdev_priv *np, 502 const u8 *macaddr, bool async) 503 { 504 struct idpf_vport_config *vport_config; 505 struct idpf_mac_filter *f; 506 507 vport_config = np->adapter->vport_config[np->vport_idx]; 508 509 spin_lock_bh(&vport_config->mac_filter_list_lock); 510 f = idpf_find_mac_filter(vport_config, macaddr); 511 if (f) { 512 f->remove = true; 513 } else { 514 spin_unlock_bh(&vport_config->mac_filter_list_lock); 515 516 return -EINVAL; 517 } 518 spin_unlock_bh(&vport_config->mac_filter_list_lock); 519 520 if (np->state == __IDPF_VPORT_UP) { 521 int err; 522 523 err = idpf_add_del_mac_filters(vport, np, false, async); 524 if (err) 525 return err; 526 } 527 528 return __idpf_del_mac_filter(vport_config, macaddr); 529 } 530 531 /** 532 * __idpf_add_mac_filter - Add mac filter helper function 533 * @vport_config: Vport config structure 534 * @macaddr: Address to add 535 * 536 * Takes mac_filter_list_lock spinlock to add new filter to list. 537 */ 538 static int __idpf_add_mac_filter(struct idpf_vport_config *vport_config, 539 const u8 *macaddr) 540 { 541 struct idpf_mac_filter *f; 542 543 spin_lock_bh(&vport_config->mac_filter_list_lock); 544 545 f = idpf_find_mac_filter(vport_config, macaddr); 546 if (f) { 547 f->remove = false; 548 spin_unlock_bh(&vport_config->mac_filter_list_lock); 549 550 return 0; 551 } 552 553 f = kzalloc(sizeof(*f), GFP_ATOMIC); 554 if (!f) { 555 spin_unlock_bh(&vport_config->mac_filter_list_lock); 556 557 return -ENOMEM; 558 } 559 560 ether_addr_copy(f->macaddr, macaddr); 561 list_add_tail(&f->list, &vport_config->user_config.mac_filter_list); 562 f->add = true; 563 564 spin_unlock_bh(&vport_config->mac_filter_list_lock); 565 566 return 0; 567 } 568 569 /** 570 * idpf_add_mac_filter - Add a mac filter to the filter list 571 * @vport: Main vport structure 572 * @np: Netdev private structure 573 * @macaddr: The MAC address 574 * @async: Don't wait for return message 575 * 576 * Returns 0 on success or error on failure. If interface is up, we'll also 577 * send the virtchnl message to tell hardware about the filter. 578 **/ 579 static int idpf_add_mac_filter(struct idpf_vport *vport, 580 struct idpf_netdev_priv *np, 581 const u8 *macaddr, bool async) 582 { 583 struct idpf_vport_config *vport_config; 584 int err; 585 586 vport_config = np->adapter->vport_config[np->vport_idx]; 587 err = __idpf_add_mac_filter(vport_config, macaddr); 588 if (err) 589 return err; 590 591 if (np->state == __IDPF_VPORT_UP) 592 err = idpf_add_del_mac_filters(vport, np, true, async); 593 594 return err; 595 } 596 597 /** 598 * idpf_del_all_mac_filters - Delete all MAC filters in list 599 * @vport: main vport struct 600 * 601 * Takes mac_filter_list_lock spinlock. Deletes all filters 602 */ 603 static void idpf_del_all_mac_filters(struct idpf_vport *vport) 604 { 605 struct idpf_vport_config *vport_config; 606 struct idpf_mac_filter *f, *ftmp; 607 608 vport_config = vport->adapter->vport_config[vport->idx]; 609 spin_lock_bh(&vport_config->mac_filter_list_lock); 610 611 list_for_each_entry_safe(f, ftmp, &vport_config->user_config.mac_filter_list, 612 list) { 613 list_del(&f->list); 614 kfree(f); 615 } 616 617 spin_unlock_bh(&vport_config->mac_filter_list_lock); 618 } 619 620 /** 621 * idpf_restore_mac_filters - Re-add all MAC filters in list 622 * @vport: main vport struct 623 * 624 * Takes mac_filter_list_lock spinlock. Sets add field to true for filters to 625 * resync filters back to HW. 626 */ 627 static void idpf_restore_mac_filters(struct idpf_vport *vport) 628 { 629 struct idpf_vport_config *vport_config; 630 struct idpf_mac_filter *f; 631 632 vport_config = vport->adapter->vport_config[vport->idx]; 633 spin_lock_bh(&vport_config->mac_filter_list_lock); 634 635 list_for_each_entry(f, &vport_config->user_config.mac_filter_list, list) 636 f->add = true; 637 638 spin_unlock_bh(&vport_config->mac_filter_list_lock); 639 640 idpf_add_del_mac_filters(vport, netdev_priv(vport->netdev), 641 true, false); 642 } 643 644 /** 645 * idpf_remove_mac_filters - Remove all MAC filters in list 646 * @vport: main vport struct 647 * 648 * Takes mac_filter_list_lock spinlock. Sets remove field to true for filters 649 * to remove filters in HW. 650 */ 651 static void idpf_remove_mac_filters(struct idpf_vport *vport) 652 { 653 struct idpf_vport_config *vport_config; 654 struct idpf_mac_filter *f; 655 656 vport_config = vport->adapter->vport_config[vport->idx]; 657 spin_lock_bh(&vport_config->mac_filter_list_lock); 658 659 list_for_each_entry(f, &vport_config->user_config.mac_filter_list, list) 660 f->remove = true; 661 662 spin_unlock_bh(&vport_config->mac_filter_list_lock); 663 664 idpf_add_del_mac_filters(vport, netdev_priv(vport->netdev), 665 false, false); 666 } 667 668 /** 669 * idpf_deinit_mac_addr - deinitialize mac address for vport 670 * @vport: main vport structure 671 */ 672 static void idpf_deinit_mac_addr(struct idpf_vport *vport) 673 { 674 struct idpf_vport_config *vport_config; 675 struct idpf_mac_filter *f; 676 677 vport_config = vport->adapter->vport_config[vport->idx]; 678 679 spin_lock_bh(&vport_config->mac_filter_list_lock); 680 681 f = idpf_find_mac_filter(vport_config, vport->default_mac_addr); 682 if (f) { 683 list_del(&f->list); 684 kfree(f); 685 } 686 687 spin_unlock_bh(&vport_config->mac_filter_list_lock); 688 } 689 690 /** 691 * idpf_init_mac_addr - initialize mac address for vport 692 * @vport: main vport structure 693 * @netdev: pointer to netdev struct associated with this vport 694 */ 695 static int idpf_init_mac_addr(struct idpf_vport *vport, 696 struct net_device *netdev) 697 { 698 struct idpf_netdev_priv *np = netdev_priv(netdev); 699 struct idpf_adapter *adapter = vport->adapter; 700 int err; 701 702 if (is_valid_ether_addr(vport->default_mac_addr)) { 703 eth_hw_addr_set(netdev, vport->default_mac_addr); 704 ether_addr_copy(netdev->perm_addr, vport->default_mac_addr); 705 706 return idpf_add_mac_filter(vport, np, vport->default_mac_addr, 707 false); 708 } 709 710 if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, 711 VIRTCHNL2_CAP_MACFILTER)) { 712 dev_err(&adapter->pdev->dev, 713 "MAC address is not provided and capability is not set\n"); 714 715 return -EINVAL; 716 } 717 718 eth_hw_addr_random(netdev); 719 err = idpf_add_mac_filter(vport, np, netdev->dev_addr, false); 720 if (err) 721 return err; 722 723 dev_info(&adapter->pdev->dev, "Invalid MAC address %pM, using random %pM\n", 724 vport->default_mac_addr, netdev->dev_addr); 725 ether_addr_copy(vport->default_mac_addr, netdev->dev_addr); 726 727 return 0; 728 } 729 730 /** 731 * idpf_cfg_netdev - Allocate, configure and register a netdev 732 * @vport: main vport structure 733 * 734 * Returns 0 on success, negative value on failure. 735 */ 736 static int idpf_cfg_netdev(struct idpf_vport *vport) 737 { 738 struct idpf_adapter *adapter = vport->adapter; 739 struct idpf_vport_config *vport_config; 740 netdev_features_t other_offloads = 0; 741 netdev_features_t csum_offloads = 0; 742 netdev_features_t tso_offloads = 0; 743 netdev_features_t dflt_features; 744 struct idpf_netdev_priv *np; 745 struct net_device *netdev; 746 u16 idx = vport->idx; 747 int err; 748 749 vport_config = adapter->vport_config[idx]; 750 751 /* It's possible we already have a netdev allocated and registered for 752 * this vport 753 */ 754 if (test_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags)) { 755 netdev = adapter->netdevs[idx]; 756 np = netdev_priv(netdev); 757 np->vport = vport; 758 np->vport_idx = vport->idx; 759 np->vport_id = vport->vport_id; 760 np->max_tx_hdr_size = idpf_get_max_tx_hdr_size(adapter); 761 vport->netdev = netdev; 762 763 return idpf_init_mac_addr(vport, netdev); 764 } 765 766 netdev = alloc_etherdev_mqs(sizeof(struct idpf_netdev_priv), 767 vport_config->max_q.max_txq, 768 vport_config->max_q.max_rxq); 769 if (!netdev) 770 return -ENOMEM; 771 772 vport->netdev = netdev; 773 np = netdev_priv(netdev); 774 np->vport = vport; 775 np->adapter = adapter; 776 np->vport_idx = vport->idx; 777 np->vport_id = vport->vport_id; 778 np->max_tx_hdr_size = idpf_get_max_tx_hdr_size(adapter); 779 780 spin_lock_init(&np->stats_lock); 781 782 err = idpf_init_mac_addr(vport, netdev); 783 if (err) { 784 free_netdev(vport->netdev); 785 vport->netdev = NULL; 786 787 return err; 788 } 789 790 /* assign netdev_ops */ 791 netdev->netdev_ops = &idpf_netdev_ops; 792 793 /* setup watchdog timeout value to be 5 second */ 794 netdev->watchdog_timeo = 5 * HZ; 795 796 netdev->dev_port = idx; 797 798 /* configure default MTU size */ 799 netdev->min_mtu = ETH_MIN_MTU; 800 netdev->max_mtu = vport->max_mtu; 801 802 dflt_features = NETIF_F_SG | 803 NETIF_F_HIGHDMA; 804 805 if (idpf_is_cap_ena_all(adapter, IDPF_RSS_CAPS, IDPF_CAP_RSS)) 806 dflt_features |= NETIF_F_RXHASH; 807 if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, 808 VIRTCHNL2_CAP_FLOW_STEER) && 809 idpf_vport_is_cap_ena(vport, VIRTCHNL2_VPORT_SIDEBAND_FLOW_STEER)) 810 dflt_features |= NETIF_F_NTUPLE; 811 if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_TX_CSUM_L4V4)) 812 csum_offloads |= NETIF_F_IP_CSUM; 813 if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_TX_CSUM_L4V6)) 814 csum_offloads |= NETIF_F_IPV6_CSUM; 815 if (idpf_is_cap_ena(adapter, IDPF_CSUM_CAPS, IDPF_CAP_RX_CSUM)) 816 csum_offloads |= NETIF_F_RXCSUM; 817 if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_TX_SCTP_CSUM)) 818 csum_offloads |= NETIF_F_SCTP_CRC; 819 820 if (idpf_is_cap_ena(adapter, IDPF_SEG_CAPS, VIRTCHNL2_CAP_SEG_IPV4_TCP)) 821 tso_offloads |= NETIF_F_TSO; 822 if (idpf_is_cap_ena(adapter, IDPF_SEG_CAPS, VIRTCHNL2_CAP_SEG_IPV6_TCP)) 823 tso_offloads |= NETIF_F_TSO6; 824 if (idpf_is_cap_ena_all(adapter, IDPF_SEG_CAPS, 825 VIRTCHNL2_CAP_SEG_IPV4_UDP | 826 VIRTCHNL2_CAP_SEG_IPV6_UDP)) 827 tso_offloads |= NETIF_F_GSO_UDP_L4; 828 if (idpf_is_cap_ena_all(adapter, IDPF_RSC_CAPS, IDPF_CAP_RSC)) 829 other_offloads |= NETIF_F_GRO_HW; 830 if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_LOOPBACK)) 831 other_offloads |= NETIF_F_LOOPBACK; 832 833 netdev->features |= dflt_features | csum_offloads | tso_offloads; 834 netdev->hw_features |= netdev->features | other_offloads; 835 netdev->vlan_features |= netdev->features | other_offloads; 836 netdev->hw_enc_features |= dflt_features | other_offloads; 837 idpf_set_ethtool_ops(netdev); 838 netif_set_affinity_auto(netdev); 839 SET_NETDEV_DEV(netdev, &adapter->pdev->dev); 840 841 /* carrier off on init to avoid Tx hangs */ 842 netif_carrier_off(netdev); 843 844 /* make sure transmit queues start off as stopped */ 845 netif_tx_stop_all_queues(netdev); 846 847 /* The vport can be arbitrarily released so we need to also track 848 * netdevs in the adapter struct 849 */ 850 adapter->netdevs[idx] = netdev; 851 852 return 0; 853 } 854 855 /** 856 * idpf_get_free_slot - get the next non-NULL location index in array 857 * @adapter: adapter in which to look for a free vport slot 858 */ 859 static int idpf_get_free_slot(struct idpf_adapter *adapter) 860 { 861 unsigned int i; 862 863 for (i = 0; i < adapter->max_vports; i++) { 864 if (!adapter->vports[i]) 865 return i; 866 } 867 868 return IDPF_NO_FREE_SLOT; 869 } 870 871 /** 872 * idpf_remove_features - Turn off feature configs 873 * @vport: virtual port structure 874 */ 875 static void idpf_remove_features(struct idpf_vport *vport) 876 { 877 struct idpf_adapter *adapter = vport->adapter; 878 879 if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER)) 880 idpf_remove_mac_filters(vport); 881 } 882 883 /** 884 * idpf_vport_stop - Disable a vport 885 * @vport: vport to disable 886 */ 887 static void idpf_vport_stop(struct idpf_vport *vport) 888 { 889 struct idpf_netdev_priv *np = netdev_priv(vport->netdev); 890 891 if (np->state <= __IDPF_VPORT_DOWN) 892 return; 893 894 netif_carrier_off(vport->netdev); 895 netif_tx_disable(vport->netdev); 896 897 idpf_send_disable_vport_msg(vport); 898 idpf_send_disable_queues_msg(vport); 899 idpf_send_map_unmap_queue_vector_msg(vport, false); 900 /* Normally we ask for queues in create_vport, but if the number of 901 * initially requested queues have changed, for example via ethtool 902 * set channels, we do delete queues and then add the queues back 903 * instead of deleting and reallocating the vport. 904 */ 905 if (test_and_clear_bit(IDPF_VPORT_DEL_QUEUES, vport->flags)) 906 idpf_send_delete_queues_msg(vport); 907 908 idpf_remove_features(vport); 909 910 vport->link_up = false; 911 idpf_vport_intr_deinit(vport); 912 idpf_vport_queues_rel(vport); 913 idpf_vport_intr_rel(vport); 914 np->state = __IDPF_VPORT_DOWN; 915 } 916 917 /** 918 * idpf_stop - Disables a network interface 919 * @netdev: network interface device structure 920 * 921 * The stop entry point is called when an interface is de-activated by the OS, 922 * and the netdevice enters the DOWN state. The hardware is still under the 923 * driver's control, but the netdev interface is disabled. 924 * 925 * Returns success only - not allowed to fail 926 */ 927 static int idpf_stop(struct net_device *netdev) 928 { 929 struct idpf_netdev_priv *np = netdev_priv(netdev); 930 struct idpf_vport *vport; 931 932 if (test_bit(IDPF_REMOVE_IN_PROG, np->adapter->flags)) 933 return 0; 934 935 idpf_vport_ctrl_lock(netdev); 936 vport = idpf_netdev_to_vport(netdev); 937 938 idpf_vport_stop(vport); 939 940 idpf_vport_ctrl_unlock(netdev); 941 942 return 0; 943 } 944 945 /** 946 * idpf_decfg_netdev - Unregister the netdev 947 * @vport: vport for which netdev to be unregistered 948 */ 949 static void idpf_decfg_netdev(struct idpf_vport *vport) 950 { 951 struct idpf_adapter *adapter = vport->adapter; 952 u16 idx = vport->idx; 953 954 kfree(vport->rx_ptype_lkup); 955 vport->rx_ptype_lkup = NULL; 956 957 if (test_and_clear_bit(IDPF_VPORT_REG_NETDEV, 958 adapter->vport_config[idx]->flags)) { 959 unregister_netdev(vport->netdev); 960 free_netdev(vport->netdev); 961 } 962 vport->netdev = NULL; 963 964 adapter->netdevs[idx] = NULL; 965 } 966 967 /** 968 * idpf_vport_rel - Delete a vport and free its resources 969 * @vport: the vport being removed 970 */ 971 static void idpf_vport_rel(struct idpf_vport *vport) 972 { 973 struct idpf_adapter *adapter = vport->adapter; 974 struct idpf_vport_config *vport_config; 975 struct idpf_vector_info vec_info; 976 struct idpf_rss_data *rss_data; 977 struct idpf_vport_max_q max_q; 978 u16 idx = vport->idx; 979 980 vport_config = adapter->vport_config[vport->idx]; 981 idpf_deinit_rss(vport); 982 rss_data = &vport_config->user_config.rss_data; 983 kfree(rss_data->rss_key); 984 rss_data->rss_key = NULL; 985 986 idpf_send_destroy_vport_msg(vport); 987 988 /* Release all max queues allocated to the adapter's pool */ 989 max_q.max_rxq = vport_config->max_q.max_rxq; 990 max_q.max_txq = vport_config->max_q.max_txq; 991 max_q.max_bufq = vport_config->max_q.max_bufq; 992 max_q.max_complq = vport_config->max_q.max_complq; 993 idpf_vport_dealloc_max_qs(adapter, &max_q); 994 995 /* Release all the allocated vectors on the stack */ 996 vec_info.num_req_vecs = 0; 997 vec_info.num_curr_vecs = vport->num_q_vectors; 998 vec_info.default_vport = vport->default_vport; 999 1000 idpf_req_rel_vector_indexes(adapter, vport->q_vector_idxs, &vec_info); 1001 1002 kfree(vport->q_vector_idxs); 1003 vport->q_vector_idxs = NULL; 1004 1005 kfree(adapter->vport_params_recvd[idx]); 1006 adapter->vport_params_recvd[idx] = NULL; 1007 kfree(adapter->vport_params_reqd[idx]); 1008 adapter->vport_params_reqd[idx] = NULL; 1009 if (adapter->vport_config[idx]) { 1010 kfree(adapter->vport_config[idx]->req_qs_chunks); 1011 adapter->vport_config[idx]->req_qs_chunks = NULL; 1012 } 1013 kfree(vport); 1014 adapter->num_alloc_vports--; 1015 } 1016 1017 /** 1018 * idpf_vport_dealloc - cleanup and release a given vport 1019 * @vport: pointer to idpf vport structure 1020 * 1021 * returns nothing 1022 */ 1023 static void idpf_vport_dealloc(struct idpf_vport *vport) 1024 { 1025 struct idpf_adapter *adapter = vport->adapter; 1026 unsigned int i = vport->idx; 1027 1028 idpf_idc_deinit_vport_aux_device(vport->vdev_info); 1029 1030 idpf_deinit_mac_addr(vport); 1031 idpf_vport_stop(vport); 1032 1033 if (!test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags)) 1034 idpf_decfg_netdev(vport); 1035 if (test_bit(IDPF_REMOVE_IN_PROG, adapter->flags)) 1036 idpf_del_all_mac_filters(vport); 1037 1038 if (adapter->netdevs[i]) { 1039 struct idpf_netdev_priv *np = netdev_priv(adapter->netdevs[i]); 1040 1041 np->vport = NULL; 1042 } 1043 1044 idpf_vport_rel(vport); 1045 1046 adapter->vports[i] = NULL; 1047 adapter->next_vport = idpf_get_free_slot(adapter); 1048 } 1049 1050 /** 1051 * idpf_is_hsplit_supported - check whether the header split is supported 1052 * @vport: virtual port to check the capability for 1053 * 1054 * Return: true if it's supported by the HW/FW, false if not. 1055 */ 1056 static bool idpf_is_hsplit_supported(const struct idpf_vport *vport) 1057 { 1058 return idpf_is_queue_model_split(vport->rxq_model) && 1059 idpf_is_cap_ena_all(vport->adapter, IDPF_HSPLIT_CAPS, 1060 IDPF_CAP_HSPLIT); 1061 } 1062 1063 /** 1064 * idpf_vport_get_hsplit - get the current header split feature state 1065 * @vport: virtual port to query the state for 1066 * 1067 * Return: ``ETHTOOL_TCP_DATA_SPLIT_UNKNOWN`` if not supported, 1068 * ``ETHTOOL_TCP_DATA_SPLIT_DISABLED`` if disabled, 1069 * ``ETHTOOL_TCP_DATA_SPLIT_ENABLED`` if active. 1070 */ 1071 u8 idpf_vport_get_hsplit(const struct idpf_vport *vport) 1072 { 1073 const struct idpf_vport_user_config_data *config; 1074 1075 if (!idpf_is_hsplit_supported(vport)) 1076 return ETHTOOL_TCP_DATA_SPLIT_UNKNOWN; 1077 1078 config = &vport->adapter->vport_config[vport->idx]->user_config; 1079 1080 return test_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags) ? 1081 ETHTOOL_TCP_DATA_SPLIT_ENABLED : 1082 ETHTOOL_TCP_DATA_SPLIT_DISABLED; 1083 } 1084 1085 /** 1086 * idpf_vport_set_hsplit - enable or disable header split on a given vport 1087 * @vport: virtual port to configure 1088 * @val: Ethtool flag controlling the header split state 1089 * 1090 * Return: true on success, false if not supported by the HW. 1091 */ 1092 bool idpf_vport_set_hsplit(const struct idpf_vport *vport, u8 val) 1093 { 1094 struct idpf_vport_user_config_data *config; 1095 1096 if (!idpf_is_hsplit_supported(vport)) 1097 return val == ETHTOOL_TCP_DATA_SPLIT_UNKNOWN; 1098 1099 config = &vport->adapter->vport_config[vport->idx]->user_config; 1100 1101 switch (val) { 1102 case ETHTOOL_TCP_DATA_SPLIT_UNKNOWN: 1103 /* Default is to enable */ 1104 case ETHTOOL_TCP_DATA_SPLIT_ENABLED: 1105 __set_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags); 1106 return true; 1107 case ETHTOOL_TCP_DATA_SPLIT_DISABLED: 1108 __clear_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags); 1109 return true; 1110 default: 1111 return false; 1112 } 1113 } 1114 1115 /** 1116 * idpf_vport_alloc - Allocates the next available struct vport in the adapter 1117 * @adapter: board private structure 1118 * @max_q: vport max queue info 1119 * 1120 * returns a pointer to a vport on success, NULL on failure. 1121 */ 1122 static struct idpf_vport *idpf_vport_alloc(struct idpf_adapter *adapter, 1123 struct idpf_vport_max_q *max_q) 1124 { 1125 struct idpf_rss_data *rss_data; 1126 u16 idx = adapter->next_vport; 1127 struct idpf_vport *vport; 1128 u16 num_max_q; 1129 1130 if (idx == IDPF_NO_FREE_SLOT) 1131 return NULL; 1132 1133 vport = kzalloc(sizeof(*vport), GFP_KERNEL); 1134 if (!vport) 1135 return vport; 1136 1137 num_max_q = max(max_q->max_txq, max_q->max_rxq); 1138 if (!adapter->vport_config[idx]) { 1139 struct idpf_vport_config *vport_config; 1140 struct idpf_q_coalesce *q_coal; 1141 1142 vport_config = kzalloc(sizeof(*vport_config), GFP_KERNEL); 1143 if (!vport_config) { 1144 kfree(vport); 1145 1146 return NULL; 1147 } 1148 1149 q_coal = kcalloc(num_max_q, sizeof(*q_coal), GFP_KERNEL); 1150 if (!q_coal) { 1151 kfree(vport_config); 1152 kfree(vport); 1153 1154 return NULL; 1155 } 1156 for (int i = 0; i < num_max_q; i++) { 1157 q_coal[i].tx_intr_mode = IDPF_ITR_DYNAMIC; 1158 q_coal[i].tx_coalesce_usecs = IDPF_ITR_TX_DEF; 1159 q_coal[i].rx_intr_mode = IDPF_ITR_DYNAMIC; 1160 q_coal[i].rx_coalesce_usecs = IDPF_ITR_RX_DEF; 1161 } 1162 vport_config->user_config.q_coalesce = q_coal; 1163 1164 adapter->vport_config[idx] = vport_config; 1165 } 1166 1167 vport->idx = idx; 1168 vport->adapter = adapter; 1169 vport->compln_clean_budget = IDPF_TX_COMPLQ_CLEAN_BUDGET; 1170 vport->default_vport = adapter->num_alloc_vports < 1171 idpf_get_default_vports(adapter); 1172 1173 vport->q_vector_idxs = kcalloc(num_max_q, sizeof(u16), GFP_KERNEL); 1174 if (!vport->q_vector_idxs) 1175 goto free_vport; 1176 1177 idpf_vport_init(vport, max_q); 1178 1179 /* This alloc is done separate from the LUT because it's not strictly 1180 * dependent on how many queues we have. If we change number of queues 1181 * and soft reset we'll need a new LUT but the key can remain the same 1182 * for as long as the vport exists. 1183 */ 1184 rss_data = &adapter->vport_config[idx]->user_config.rss_data; 1185 rss_data->rss_key = kzalloc(rss_data->rss_key_size, GFP_KERNEL); 1186 if (!rss_data->rss_key) 1187 goto free_vector_idxs; 1188 1189 /* Initialize default rss key */ 1190 netdev_rss_key_fill((void *)rss_data->rss_key, rss_data->rss_key_size); 1191 1192 /* fill vport slot in the adapter struct */ 1193 adapter->vports[idx] = vport; 1194 adapter->vport_ids[idx] = idpf_get_vport_id(vport); 1195 1196 adapter->num_alloc_vports++; 1197 /* prepare adapter->next_vport for next use */ 1198 adapter->next_vport = idpf_get_free_slot(adapter); 1199 1200 return vport; 1201 1202 free_vector_idxs: 1203 kfree(vport->q_vector_idxs); 1204 free_vport: 1205 kfree(vport); 1206 1207 return NULL; 1208 } 1209 1210 /** 1211 * idpf_get_stats64 - get statistics for network device structure 1212 * @netdev: network interface device structure 1213 * @stats: main device statistics structure 1214 */ 1215 static void idpf_get_stats64(struct net_device *netdev, 1216 struct rtnl_link_stats64 *stats) 1217 { 1218 struct idpf_netdev_priv *np = netdev_priv(netdev); 1219 1220 spin_lock_bh(&np->stats_lock); 1221 *stats = np->netstats; 1222 spin_unlock_bh(&np->stats_lock); 1223 } 1224 1225 /** 1226 * idpf_statistics_task - Delayed task to get statistics over mailbox 1227 * @work: work_struct handle to our data 1228 */ 1229 void idpf_statistics_task(struct work_struct *work) 1230 { 1231 struct idpf_adapter *adapter; 1232 int i; 1233 1234 adapter = container_of(work, struct idpf_adapter, stats_task.work); 1235 1236 for (i = 0; i < adapter->max_vports; i++) { 1237 struct idpf_vport *vport = adapter->vports[i]; 1238 1239 if (vport && !test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags)) 1240 idpf_send_get_stats_msg(vport); 1241 } 1242 1243 queue_delayed_work(adapter->stats_wq, &adapter->stats_task, 1244 msecs_to_jiffies(10000)); 1245 } 1246 1247 /** 1248 * idpf_mbx_task - Delayed task to handle mailbox responses 1249 * @work: work_struct handle 1250 */ 1251 void idpf_mbx_task(struct work_struct *work) 1252 { 1253 struct idpf_adapter *adapter; 1254 1255 adapter = container_of(work, struct idpf_adapter, mbx_task.work); 1256 1257 if (test_bit(IDPF_MB_INTR_MODE, adapter->flags)) 1258 idpf_mb_irq_enable(adapter); 1259 else 1260 queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 1261 msecs_to_jiffies(300)); 1262 1263 idpf_recv_mb_msg(adapter); 1264 } 1265 1266 /** 1267 * idpf_service_task - Delayed task for handling mailbox responses 1268 * @work: work_struct handle to our data 1269 * 1270 */ 1271 void idpf_service_task(struct work_struct *work) 1272 { 1273 struct idpf_adapter *adapter; 1274 1275 adapter = container_of(work, struct idpf_adapter, serv_task.work); 1276 1277 if (idpf_is_reset_detected(adapter) && 1278 !idpf_is_reset_in_prog(adapter) && 1279 !test_bit(IDPF_REMOVE_IN_PROG, adapter->flags)) { 1280 dev_info(&adapter->pdev->dev, "HW reset detected\n"); 1281 set_bit(IDPF_HR_FUNC_RESET, adapter->flags); 1282 queue_delayed_work(adapter->vc_event_wq, 1283 &adapter->vc_event_task, 1284 msecs_to_jiffies(10)); 1285 } 1286 1287 queue_delayed_work(adapter->serv_wq, &adapter->serv_task, 1288 msecs_to_jiffies(300)); 1289 } 1290 1291 /** 1292 * idpf_restore_features - Restore feature configs 1293 * @vport: virtual port structure 1294 */ 1295 static void idpf_restore_features(struct idpf_vport *vport) 1296 { 1297 struct idpf_adapter *adapter = vport->adapter; 1298 1299 if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER)) 1300 idpf_restore_mac_filters(vport); 1301 } 1302 1303 /** 1304 * idpf_set_real_num_queues - set number of queues for netdev 1305 * @vport: virtual port structure 1306 * 1307 * Returns 0 on success, negative on failure. 1308 */ 1309 static int idpf_set_real_num_queues(struct idpf_vport *vport) 1310 { 1311 int err; 1312 1313 err = netif_set_real_num_rx_queues(vport->netdev, vport->num_rxq); 1314 if (err) 1315 return err; 1316 1317 return netif_set_real_num_tx_queues(vport->netdev, vport->num_txq); 1318 } 1319 1320 /** 1321 * idpf_up_complete - Complete interface up sequence 1322 * @vport: virtual port structure 1323 * 1324 * Returns 0 on success, negative on failure. 1325 */ 1326 static int idpf_up_complete(struct idpf_vport *vport) 1327 { 1328 struct idpf_netdev_priv *np = netdev_priv(vport->netdev); 1329 1330 if (vport->link_up && !netif_carrier_ok(vport->netdev)) { 1331 netif_carrier_on(vport->netdev); 1332 netif_tx_start_all_queues(vport->netdev); 1333 } 1334 1335 np->state = __IDPF_VPORT_UP; 1336 1337 return 0; 1338 } 1339 1340 /** 1341 * idpf_rx_init_buf_tail - Write initial buffer ring tail value 1342 * @vport: virtual port struct 1343 */ 1344 static void idpf_rx_init_buf_tail(struct idpf_vport *vport) 1345 { 1346 int i, j; 1347 1348 for (i = 0; i < vport->num_rxq_grp; i++) { 1349 struct idpf_rxq_group *grp = &vport->rxq_grps[i]; 1350 1351 if (idpf_is_queue_model_split(vport->rxq_model)) { 1352 for (j = 0; j < vport->num_bufqs_per_qgrp; j++) { 1353 const struct idpf_buf_queue *q = 1354 &grp->splitq.bufq_sets[j].bufq; 1355 1356 writel(q->next_to_alloc, q->tail); 1357 } 1358 } else { 1359 for (j = 0; j < grp->singleq.num_rxq; j++) { 1360 const struct idpf_rx_queue *q = 1361 grp->singleq.rxqs[j]; 1362 1363 writel(q->next_to_alloc, q->tail); 1364 } 1365 } 1366 } 1367 } 1368 1369 /** 1370 * idpf_vport_open - Bring up a vport 1371 * @vport: vport to bring up 1372 */ 1373 static int idpf_vport_open(struct idpf_vport *vport) 1374 { 1375 struct idpf_netdev_priv *np = netdev_priv(vport->netdev); 1376 struct idpf_adapter *adapter = vport->adapter; 1377 struct idpf_vport_config *vport_config; 1378 int err; 1379 1380 if (np->state != __IDPF_VPORT_DOWN) 1381 return -EBUSY; 1382 1383 /* we do not allow interface up just yet */ 1384 netif_carrier_off(vport->netdev); 1385 1386 err = idpf_vport_intr_alloc(vport); 1387 if (err) { 1388 dev_err(&adapter->pdev->dev, "Failed to allocate interrupts for vport %u: %d\n", 1389 vport->vport_id, err); 1390 return err; 1391 } 1392 1393 err = idpf_vport_queues_alloc(vport); 1394 if (err) 1395 goto intr_rel; 1396 1397 err = idpf_vport_queue_ids_init(vport); 1398 if (err) { 1399 dev_err(&adapter->pdev->dev, "Failed to initialize queue ids for vport %u: %d\n", 1400 vport->vport_id, err); 1401 goto queues_rel; 1402 } 1403 1404 err = idpf_vport_intr_init(vport); 1405 if (err) { 1406 dev_err(&adapter->pdev->dev, "Failed to initialize interrupts for vport %u: %d\n", 1407 vport->vport_id, err); 1408 goto queues_rel; 1409 } 1410 1411 err = idpf_rx_bufs_init_all(vport); 1412 if (err) { 1413 dev_err(&adapter->pdev->dev, "Failed to initialize RX buffers for vport %u: %d\n", 1414 vport->vport_id, err); 1415 goto queues_rel; 1416 } 1417 1418 err = idpf_queue_reg_init(vport); 1419 if (err) { 1420 dev_err(&adapter->pdev->dev, "Failed to initialize queue registers for vport %u: %d\n", 1421 vport->vport_id, err); 1422 goto queues_rel; 1423 } 1424 1425 idpf_rx_init_buf_tail(vport); 1426 idpf_vport_intr_ena(vport); 1427 1428 err = idpf_send_config_queues_msg(vport); 1429 if (err) { 1430 dev_err(&adapter->pdev->dev, "Failed to configure queues for vport %u, %d\n", 1431 vport->vport_id, err); 1432 goto intr_deinit; 1433 } 1434 1435 err = idpf_send_map_unmap_queue_vector_msg(vport, true); 1436 if (err) { 1437 dev_err(&adapter->pdev->dev, "Failed to map queue vectors for vport %u: %d\n", 1438 vport->vport_id, err); 1439 goto intr_deinit; 1440 } 1441 1442 err = idpf_send_enable_queues_msg(vport); 1443 if (err) { 1444 dev_err(&adapter->pdev->dev, "Failed to enable queues for vport %u: %d\n", 1445 vport->vport_id, err); 1446 goto unmap_queue_vectors; 1447 } 1448 1449 err = idpf_send_enable_vport_msg(vport); 1450 if (err) { 1451 dev_err(&adapter->pdev->dev, "Failed to enable vport %u: %d\n", 1452 vport->vport_id, err); 1453 err = -EAGAIN; 1454 goto disable_queues; 1455 } 1456 1457 idpf_restore_features(vport); 1458 1459 vport_config = adapter->vport_config[vport->idx]; 1460 if (vport_config->user_config.rss_data.rss_lut) 1461 err = idpf_config_rss(vport); 1462 else 1463 err = idpf_init_rss(vport); 1464 if (err) { 1465 dev_err(&adapter->pdev->dev, "Failed to initialize RSS for vport %u: %d\n", 1466 vport->vport_id, err); 1467 goto disable_vport; 1468 } 1469 1470 err = idpf_up_complete(vport); 1471 if (err) { 1472 dev_err(&adapter->pdev->dev, "Failed to complete interface up for vport %u: %d\n", 1473 vport->vport_id, err); 1474 goto deinit_rss; 1475 } 1476 1477 return 0; 1478 1479 deinit_rss: 1480 idpf_deinit_rss(vport); 1481 disable_vport: 1482 idpf_send_disable_vport_msg(vport); 1483 disable_queues: 1484 idpf_send_disable_queues_msg(vport); 1485 unmap_queue_vectors: 1486 idpf_send_map_unmap_queue_vector_msg(vport, false); 1487 intr_deinit: 1488 idpf_vport_intr_deinit(vport); 1489 queues_rel: 1490 idpf_vport_queues_rel(vport); 1491 intr_rel: 1492 idpf_vport_intr_rel(vport); 1493 1494 return err; 1495 } 1496 1497 /** 1498 * idpf_init_task - Delayed initialization task 1499 * @work: work_struct handle to our data 1500 * 1501 * Init task finishes up pending work started in probe. Due to the asynchronous 1502 * nature in which the device communicates with hardware, we may have to wait 1503 * several milliseconds to get a response. Instead of busy polling in probe, 1504 * pulling it out into a delayed work task prevents us from bogging down the 1505 * whole system waiting for a response from hardware. 1506 */ 1507 void idpf_init_task(struct work_struct *work) 1508 { 1509 struct idpf_vport_config *vport_config; 1510 struct idpf_vport_max_q max_q; 1511 struct idpf_adapter *adapter; 1512 struct idpf_netdev_priv *np; 1513 struct idpf_vport *vport; 1514 u16 num_default_vports; 1515 struct pci_dev *pdev; 1516 bool default_vport; 1517 int index, err; 1518 1519 adapter = container_of(work, struct idpf_adapter, init_task.work); 1520 1521 num_default_vports = idpf_get_default_vports(adapter); 1522 if (adapter->num_alloc_vports < num_default_vports) 1523 default_vport = true; 1524 else 1525 default_vport = false; 1526 1527 err = idpf_vport_alloc_max_qs(adapter, &max_q); 1528 if (err) 1529 goto unwind_vports; 1530 1531 err = idpf_send_create_vport_msg(adapter, &max_q); 1532 if (err) { 1533 idpf_vport_dealloc_max_qs(adapter, &max_q); 1534 goto unwind_vports; 1535 } 1536 1537 pdev = adapter->pdev; 1538 vport = idpf_vport_alloc(adapter, &max_q); 1539 if (!vport) { 1540 err = -EFAULT; 1541 dev_err(&pdev->dev, "failed to allocate vport: %d\n", 1542 err); 1543 idpf_vport_dealloc_max_qs(adapter, &max_q); 1544 goto unwind_vports; 1545 } 1546 1547 index = vport->idx; 1548 vport_config = adapter->vport_config[index]; 1549 1550 init_waitqueue_head(&vport->sw_marker_wq); 1551 1552 spin_lock_init(&vport_config->mac_filter_list_lock); 1553 1554 INIT_LIST_HEAD(&vport_config->user_config.mac_filter_list); 1555 INIT_LIST_HEAD(&vport_config->user_config.flow_steer_list); 1556 1557 err = idpf_check_supported_desc_ids(vport); 1558 if (err) { 1559 dev_err(&pdev->dev, "failed to get required descriptor ids\n"); 1560 goto cfg_netdev_err; 1561 } 1562 1563 if (idpf_cfg_netdev(vport)) 1564 goto cfg_netdev_err; 1565 1566 err = idpf_send_get_rx_ptype_msg(vport); 1567 if (err) 1568 goto handle_err; 1569 1570 /* Once state is put into DOWN, driver is ready for dev_open */ 1571 np = netdev_priv(vport->netdev); 1572 np->state = __IDPF_VPORT_DOWN; 1573 if (test_and_clear_bit(IDPF_VPORT_UP_REQUESTED, vport_config->flags)) 1574 idpf_vport_open(vport); 1575 1576 /* Spawn and return 'idpf_init_task' work queue until all the 1577 * default vports are created 1578 */ 1579 if (adapter->num_alloc_vports < num_default_vports) { 1580 queue_delayed_work(adapter->init_wq, &adapter->init_task, 1581 msecs_to_jiffies(5 * (adapter->pdev->devfn & 0x07))); 1582 1583 return; 1584 } 1585 1586 for (index = 0; index < adapter->max_vports; index++) { 1587 struct net_device *netdev = adapter->netdevs[index]; 1588 struct idpf_vport_config *vport_config; 1589 1590 vport_config = adapter->vport_config[index]; 1591 1592 if (!netdev || 1593 test_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags)) 1594 continue; 1595 1596 err = register_netdev(netdev); 1597 if (err) { 1598 dev_err(&pdev->dev, "failed to register netdev for vport %d: %pe\n", 1599 index, ERR_PTR(err)); 1600 continue; 1601 } 1602 set_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags); 1603 } 1604 1605 /* As all the required vports are created, clear the reset flag 1606 * unconditionally here in case we were in reset and the link was down. 1607 */ 1608 clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags); 1609 /* Start the statistics task now */ 1610 queue_delayed_work(adapter->stats_wq, &adapter->stats_task, 1611 msecs_to_jiffies(10 * (pdev->devfn & 0x07))); 1612 1613 return; 1614 1615 handle_err: 1616 idpf_decfg_netdev(vport); 1617 cfg_netdev_err: 1618 idpf_vport_rel(vport); 1619 adapter->vports[index] = NULL; 1620 unwind_vports: 1621 if (default_vport) { 1622 for (index = 0; index < adapter->max_vports; index++) { 1623 if (adapter->vports[index]) 1624 idpf_vport_dealloc(adapter->vports[index]); 1625 } 1626 } 1627 clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags); 1628 } 1629 1630 /** 1631 * idpf_sriov_ena - Enable or change number of VFs 1632 * @adapter: private data struct 1633 * @num_vfs: number of VFs to allocate 1634 */ 1635 static int idpf_sriov_ena(struct idpf_adapter *adapter, int num_vfs) 1636 { 1637 struct device *dev = &adapter->pdev->dev; 1638 int err; 1639 1640 err = idpf_send_set_sriov_vfs_msg(adapter, num_vfs); 1641 if (err) { 1642 dev_err(dev, "Failed to allocate VFs: %d\n", err); 1643 1644 return err; 1645 } 1646 1647 err = pci_enable_sriov(adapter->pdev, num_vfs); 1648 if (err) { 1649 idpf_send_set_sriov_vfs_msg(adapter, 0); 1650 dev_err(dev, "Failed to enable SR-IOV: %d\n", err); 1651 1652 return err; 1653 } 1654 1655 adapter->num_vfs = num_vfs; 1656 1657 return num_vfs; 1658 } 1659 1660 /** 1661 * idpf_sriov_configure - Configure the requested VFs 1662 * @pdev: pointer to a pci_dev structure 1663 * @num_vfs: number of vfs to allocate 1664 * 1665 * Enable or change the number of VFs. Called when the user updates the number 1666 * of VFs in sysfs. 1667 **/ 1668 int idpf_sriov_configure(struct pci_dev *pdev, int num_vfs) 1669 { 1670 struct idpf_adapter *adapter = pci_get_drvdata(pdev); 1671 1672 if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_SRIOV)) { 1673 dev_info(&pdev->dev, "SR-IOV is not supported on this device\n"); 1674 1675 return -EOPNOTSUPP; 1676 } 1677 1678 if (num_vfs) 1679 return idpf_sriov_ena(adapter, num_vfs); 1680 1681 if (pci_vfs_assigned(pdev)) { 1682 dev_warn(&pdev->dev, "Unable to free VFs because some are assigned to VMs\n"); 1683 1684 return -EBUSY; 1685 } 1686 1687 pci_disable_sriov(adapter->pdev); 1688 idpf_send_set_sriov_vfs_msg(adapter, 0); 1689 adapter->num_vfs = 0; 1690 1691 return 0; 1692 } 1693 1694 /** 1695 * idpf_deinit_task - Device deinit routine 1696 * @adapter: Driver specific private structure 1697 * 1698 * Extended remove logic which will be used for 1699 * hard reset as well 1700 */ 1701 void idpf_deinit_task(struct idpf_adapter *adapter) 1702 { 1703 unsigned int i; 1704 1705 /* Wait until the init_task is done else this thread might release 1706 * the resources first and the other thread might end up in a bad state 1707 */ 1708 cancel_delayed_work_sync(&adapter->init_task); 1709 1710 if (!adapter->vports) 1711 return; 1712 1713 cancel_delayed_work_sync(&adapter->stats_task); 1714 1715 for (i = 0; i < adapter->max_vports; i++) { 1716 if (adapter->vports[i]) 1717 idpf_vport_dealloc(adapter->vports[i]); 1718 } 1719 } 1720 1721 /** 1722 * idpf_check_reset_complete - check that reset is complete 1723 * @hw: pointer to hw struct 1724 * @reset_reg: struct with reset registers 1725 * 1726 * Returns 0 if device is ready to use, or -EBUSY if it's in reset. 1727 **/ 1728 static int idpf_check_reset_complete(struct idpf_hw *hw, 1729 struct idpf_reset_reg *reset_reg) 1730 { 1731 struct idpf_adapter *adapter = hw->back; 1732 int i; 1733 1734 for (i = 0; i < 2000; i++) { 1735 u32 reg_val = readl(reset_reg->rstat); 1736 1737 /* 0xFFFFFFFF might be read if other side hasn't cleared the 1738 * register for us yet and 0xFFFFFFFF is not a valid value for 1739 * the register, so treat that as invalid. 1740 */ 1741 if (reg_val != 0xFFFFFFFF && (reg_val & reset_reg->rstat_m)) 1742 return 0; 1743 1744 usleep_range(5000, 10000); 1745 } 1746 1747 dev_warn(&adapter->pdev->dev, "Device reset timeout!\n"); 1748 /* Clear the reset flag unconditionally here since the reset 1749 * technically isn't in progress anymore from the driver's perspective 1750 */ 1751 clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags); 1752 1753 return -EBUSY; 1754 } 1755 1756 /** 1757 * idpf_set_vport_state - Set the vport state to be after the reset 1758 * @adapter: Driver specific private structure 1759 */ 1760 static void idpf_set_vport_state(struct idpf_adapter *adapter) 1761 { 1762 u16 i; 1763 1764 for (i = 0; i < adapter->max_vports; i++) { 1765 struct idpf_netdev_priv *np; 1766 1767 if (!adapter->netdevs[i]) 1768 continue; 1769 1770 np = netdev_priv(adapter->netdevs[i]); 1771 if (np->state == __IDPF_VPORT_UP) 1772 set_bit(IDPF_VPORT_UP_REQUESTED, 1773 adapter->vport_config[i]->flags); 1774 } 1775 } 1776 1777 /** 1778 * idpf_init_hard_reset - Initiate a hardware reset 1779 * @adapter: Driver specific private structure 1780 * 1781 * Deallocate the vports and all the resources associated with them and 1782 * reallocate. Also reinitialize the mailbox. Return 0 on success, 1783 * negative on failure. 1784 */ 1785 static int idpf_init_hard_reset(struct idpf_adapter *adapter) 1786 { 1787 struct idpf_reg_ops *reg_ops = &adapter->dev_ops.reg_ops; 1788 struct device *dev = &adapter->pdev->dev; 1789 struct net_device *netdev; 1790 int err; 1791 u16 i; 1792 1793 mutex_lock(&adapter->vport_ctrl_lock); 1794 1795 dev_info(dev, "Device HW Reset initiated\n"); 1796 1797 /* Avoid TX hangs on reset */ 1798 for (i = 0; i < adapter->max_vports; i++) { 1799 netdev = adapter->netdevs[i]; 1800 if (!netdev) 1801 continue; 1802 1803 netif_carrier_off(netdev); 1804 netif_tx_disable(netdev); 1805 } 1806 1807 /* Prepare for reset */ 1808 if (test_and_clear_bit(IDPF_HR_DRV_LOAD, adapter->flags)) { 1809 reg_ops->trigger_reset(adapter, IDPF_HR_DRV_LOAD); 1810 } else if (test_and_clear_bit(IDPF_HR_FUNC_RESET, adapter->flags)) { 1811 bool is_reset = idpf_is_reset_detected(adapter); 1812 1813 idpf_idc_issue_reset_event(adapter->cdev_info); 1814 1815 idpf_set_vport_state(adapter); 1816 idpf_vc_core_deinit(adapter); 1817 if (!is_reset) 1818 reg_ops->trigger_reset(adapter, IDPF_HR_FUNC_RESET); 1819 idpf_deinit_dflt_mbx(adapter); 1820 } else { 1821 dev_err(dev, "Unhandled hard reset cause\n"); 1822 err = -EBADRQC; 1823 goto unlock_mutex; 1824 } 1825 1826 /* Wait for reset to complete */ 1827 err = idpf_check_reset_complete(&adapter->hw, &adapter->reset_reg); 1828 if (err) { 1829 dev_err(dev, "The driver was unable to contact the device's firmware. Check that the FW is running. Driver state= 0x%x\n", 1830 adapter->state); 1831 goto unlock_mutex; 1832 } 1833 1834 /* Reset is complete and so start building the driver resources again */ 1835 err = idpf_init_dflt_mbx(adapter); 1836 if (err) { 1837 dev_err(dev, "Failed to initialize default mailbox: %d\n", err); 1838 goto unlock_mutex; 1839 } 1840 1841 queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0); 1842 1843 /* Initialize the state machine, also allocate memory and request 1844 * resources 1845 */ 1846 err = idpf_vc_core_init(adapter); 1847 if (err) { 1848 cancel_delayed_work_sync(&adapter->mbx_task); 1849 idpf_deinit_dflt_mbx(adapter); 1850 goto unlock_mutex; 1851 } 1852 1853 /* Wait till all the vports are initialized to release the reset lock, 1854 * else user space callbacks may access uninitialized vports 1855 */ 1856 while (test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags)) 1857 msleep(100); 1858 1859 unlock_mutex: 1860 mutex_unlock(&adapter->vport_ctrl_lock); 1861 1862 /* Wait until all vports are created to init RDMA CORE AUX */ 1863 if (!err) 1864 err = idpf_idc_init(adapter); 1865 1866 return err; 1867 } 1868 1869 /** 1870 * idpf_vc_event_task - Handle virtchannel event logic 1871 * @work: work queue struct 1872 */ 1873 void idpf_vc_event_task(struct work_struct *work) 1874 { 1875 struct idpf_adapter *adapter; 1876 1877 adapter = container_of(work, struct idpf_adapter, vc_event_task.work); 1878 1879 if (test_bit(IDPF_REMOVE_IN_PROG, adapter->flags)) 1880 return; 1881 1882 if (test_bit(IDPF_HR_FUNC_RESET, adapter->flags)) 1883 goto func_reset; 1884 1885 if (test_bit(IDPF_HR_DRV_LOAD, adapter->flags)) 1886 goto drv_load; 1887 1888 return; 1889 1890 func_reset: 1891 idpf_vc_xn_shutdown(adapter->vcxn_mngr); 1892 drv_load: 1893 set_bit(IDPF_HR_RESET_IN_PROG, adapter->flags); 1894 idpf_init_hard_reset(adapter); 1895 } 1896 1897 /** 1898 * idpf_initiate_soft_reset - Initiate a software reset 1899 * @vport: virtual port data struct 1900 * @reset_cause: reason for the soft reset 1901 * 1902 * Soft reset only reallocs vport queue resources. Returns 0 on success, 1903 * negative on failure. 1904 */ 1905 int idpf_initiate_soft_reset(struct idpf_vport *vport, 1906 enum idpf_vport_reset_cause reset_cause) 1907 { 1908 struct idpf_netdev_priv *np = netdev_priv(vport->netdev); 1909 enum idpf_vport_state current_state = np->state; 1910 struct idpf_adapter *adapter = vport->adapter; 1911 struct idpf_vport *new_vport; 1912 int err; 1913 1914 /* If the system is low on memory, we can end up in bad state if we 1915 * free all the memory for queue resources and try to allocate them 1916 * again. Instead, we can pre-allocate the new resources before doing 1917 * anything and bailing if the alloc fails. 1918 * 1919 * Make a clone of the existing vport to mimic its current 1920 * configuration, then modify the new structure with any requested 1921 * changes. Once the allocation of the new resources is done, stop the 1922 * existing vport and copy the configuration to the main vport. If an 1923 * error occurred, the existing vport will be untouched. 1924 * 1925 */ 1926 new_vport = kzalloc(sizeof(*vport), GFP_KERNEL); 1927 if (!new_vport) 1928 return -ENOMEM; 1929 1930 /* This purposely avoids copying the end of the struct because it 1931 * contains wait_queues and mutexes and other stuff we don't want to 1932 * mess with. Nothing below should use those variables from new_vport 1933 * and should instead always refer to them in vport if they need to. 1934 */ 1935 memcpy(new_vport, vport, offsetof(struct idpf_vport, link_up)); 1936 1937 /* Adjust resource parameters prior to reallocating resources */ 1938 switch (reset_cause) { 1939 case IDPF_SR_Q_CHANGE: 1940 err = idpf_vport_adjust_qs(new_vport); 1941 if (err) 1942 goto free_vport; 1943 break; 1944 case IDPF_SR_Q_DESC_CHANGE: 1945 /* Update queue parameters before allocating resources */ 1946 idpf_vport_calc_num_q_desc(new_vport); 1947 break; 1948 case IDPF_SR_MTU_CHANGE: 1949 idpf_idc_vdev_mtu_event(vport->vdev_info, 1950 IIDC_RDMA_EVENT_BEFORE_MTU_CHANGE); 1951 break; 1952 case IDPF_SR_RSC_CHANGE: 1953 break; 1954 default: 1955 dev_err(&adapter->pdev->dev, "Unhandled soft reset cause\n"); 1956 err = -EINVAL; 1957 goto free_vport; 1958 } 1959 1960 if (current_state <= __IDPF_VPORT_DOWN) { 1961 idpf_send_delete_queues_msg(vport); 1962 } else { 1963 set_bit(IDPF_VPORT_DEL_QUEUES, vport->flags); 1964 idpf_vport_stop(vport); 1965 } 1966 1967 idpf_deinit_rss(vport); 1968 /* We're passing in vport here because we need its wait_queue 1969 * to send a message and it should be getting all the vport 1970 * config data out of the adapter but we need to be careful not 1971 * to add code to add_queues to change the vport config within 1972 * vport itself as it will be wiped with a memcpy later. 1973 */ 1974 err = idpf_send_add_queues_msg(vport, new_vport->num_txq, 1975 new_vport->num_complq, 1976 new_vport->num_rxq, 1977 new_vport->num_bufq); 1978 if (err) 1979 goto err_reset; 1980 1981 /* Same comment as above regarding avoiding copying the wait_queues and 1982 * mutexes applies here. We do not want to mess with those if possible. 1983 */ 1984 memcpy(vport, new_vport, offsetof(struct idpf_vport, link_up)); 1985 1986 if (reset_cause == IDPF_SR_Q_CHANGE) 1987 idpf_vport_alloc_vec_indexes(vport); 1988 1989 err = idpf_set_real_num_queues(vport); 1990 if (err) 1991 goto err_open; 1992 1993 if (current_state == __IDPF_VPORT_UP) 1994 err = idpf_vport_open(vport); 1995 1996 goto free_vport; 1997 1998 err_reset: 1999 idpf_send_add_queues_msg(vport, vport->num_txq, vport->num_complq, 2000 vport->num_rxq, vport->num_bufq); 2001 2002 err_open: 2003 if (current_state == __IDPF_VPORT_UP) 2004 idpf_vport_open(vport); 2005 2006 free_vport: 2007 kfree(new_vport); 2008 2009 if (reset_cause == IDPF_SR_MTU_CHANGE) 2010 idpf_idc_vdev_mtu_event(vport->vdev_info, 2011 IIDC_RDMA_EVENT_AFTER_MTU_CHANGE); 2012 2013 return err; 2014 } 2015 2016 /** 2017 * idpf_addr_sync - Callback for dev_(mc|uc)_sync to add address 2018 * @netdev: the netdevice 2019 * @addr: address to add 2020 * 2021 * Called by __dev_(mc|uc)_sync when an address needs to be added. We call 2022 * __dev_(uc|mc)_sync from .set_rx_mode. Kernel takes addr_list_lock spinlock 2023 * meaning we cannot sleep in this context. Due to this, we have to add the 2024 * filter and send the virtchnl message asynchronously without waiting for the 2025 * response from the other side. We won't know whether or not the operation 2026 * actually succeeded until we get the message back. Returns 0 on success, 2027 * negative on failure. 2028 */ 2029 static int idpf_addr_sync(struct net_device *netdev, const u8 *addr) 2030 { 2031 struct idpf_netdev_priv *np = netdev_priv(netdev); 2032 2033 return idpf_add_mac_filter(np->vport, np, addr, true); 2034 } 2035 2036 /** 2037 * idpf_addr_unsync - Callback for dev_(mc|uc)_sync to remove address 2038 * @netdev: the netdevice 2039 * @addr: address to add 2040 * 2041 * Called by __dev_(mc|uc)_sync when an address needs to be added. We call 2042 * __dev_(uc|mc)_sync from .set_rx_mode. Kernel takes addr_list_lock spinlock 2043 * meaning we cannot sleep in this context. Due to this we have to delete the 2044 * filter and send the virtchnl message asynchronously without waiting for the 2045 * return from the other side. We won't know whether or not the operation 2046 * actually succeeded until we get the message back. Returns 0 on success, 2047 * negative on failure. 2048 */ 2049 static int idpf_addr_unsync(struct net_device *netdev, const u8 *addr) 2050 { 2051 struct idpf_netdev_priv *np = netdev_priv(netdev); 2052 2053 /* Under some circumstances, we might receive a request to delete 2054 * our own device address from our uc list. Because we store the 2055 * device address in the VSI's MAC filter list, we need to ignore 2056 * such requests and not delete our device address from this list. 2057 */ 2058 if (ether_addr_equal(addr, netdev->dev_addr)) 2059 return 0; 2060 2061 idpf_del_mac_filter(np->vport, np, addr, true); 2062 2063 return 0; 2064 } 2065 2066 /** 2067 * idpf_set_rx_mode - NDO callback to set the netdev filters 2068 * @netdev: network interface device structure 2069 * 2070 * Stack takes addr_list_lock spinlock before calling our .set_rx_mode. We 2071 * cannot sleep in this context. 2072 */ 2073 static void idpf_set_rx_mode(struct net_device *netdev) 2074 { 2075 struct idpf_netdev_priv *np = netdev_priv(netdev); 2076 struct idpf_vport_user_config_data *config_data; 2077 struct idpf_adapter *adapter; 2078 bool changed = false; 2079 struct device *dev; 2080 int err; 2081 2082 adapter = np->adapter; 2083 dev = &adapter->pdev->dev; 2084 2085 if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER)) { 2086 __dev_uc_sync(netdev, idpf_addr_sync, idpf_addr_unsync); 2087 __dev_mc_sync(netdev, idpf_addr_sync, idpf_addr_unsync); 2088 } 2089 2090 if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_PROMISC)) 2091 return; 2092 2093 config_data = &adapter->vport_config[np->vport_idx]->user_config; 2094 /* IFF_PROMISC enables both unicast and multicast promiscuous, 2095 * while IFF_ALLMULTI only enables multicast such that: 2096 * 2097 * promisc + allmulti = unicast | multicast 2098 * promisc + !allmulti = unicast | multicast 2099 * !promisc + allmulti = multicast 2100 */ 2101 if ((netdev->flags & IFF_PROMISC) && 2102 !test_and_set_bit(__IDPF_PROMISC_UC, config_data->user_flags)) { 2103 changed = true; 2104 dev_info(&adapter->pdev->dev, "Entering promiscuous mode\n"); 2105 if (!test_and_set_bit(__IDPF_PROMISC_MC, adapter->flags)) 2106 dev_info(dev, "Entering multicast promiscuous mode\n"); 2107 } 2108 2109 if (!(netdev->flags & IFF_PROMISC) && 2110 test_and_clear_bit(__IDPF_PROMISC_UC, config_data->user_flags)) { 2111 changed = true; 2112 dev_info(dev, "Leaving promiscuous mode\n"); 2113 } 2114 2115 if (netdev->flags & IFF_ALLMULTI && 2116 !test_and_set_bit(__IDPF_PROMISC_MC, config_data->user_flags)) { 2117 changed = true; 2118 dev_info(dev, "Entering multicast promiscuous mode\n"); 2119 } 2120 2121 if (!(netdev->flags & (IFF_ALLMULTI | IFF_PROMISC)) && 2122 test_and_clear_bit(__IDPF_PROMISC_MC, config_data->user_flags)) { 2123 changed = true; 2124 dev_info(dev, "Leaving multicast promiscuous mode\n"); 2125 } 2126 2127 if (!changed) 2128 return; 2129 2130 err = idpf_set_promiscuous(adapter, config_data, np->vport_id); 2131 if (err) 2132 dev_err(dev, "Failed to set promiscuous mode: %d\n", err); 2133 } 2134 2135 /** 2136 * idpf_vport_manage_rss_lut - disable/enable RSS 2137 * @vport: the vport being changed 2138 * 2139 * In the event of disable request for RSS, this function will zero out RSS 2140 * LUT, while in the event of enable request for RSS, it will reconfigure RSS 2141 * LUT with the default LUT configuration. 2142 */ 2143 static int idpf_vport_manage_rss_lut(struct idpf_vport *vport) 2144 { 2145 bool ena = idpf_is_feature_ena(vport, NETIF_F_RXHASH); 2146 struct idpf_rss_data *rss_data; 2147 u16 idx = vport->idx; 2148 int lut_size; 2149 2150 rss_data = &vport->adapter->vport_config[idx]->user_config.rss_data; 2151 lut_size = rss_data->rss_lut_size * sizeof(u32); 2152 2153 if (ena) { 2154 /* This will contain the default or user configured LUT */ 2155 memcpy(rss_data->rss_lut, rss_data->cached_lut, lut_size); 2156 } else { 2157 /* Save a copy of the current LUT to be restored later if 2158 * requested. 2159 */ 2160 memcpy(rss_data->cached_lut, rss_data->rss_lut, lut_size); 2161 2162 /* Zero out the current LUT to disable */ 2163 memset(rss_data->rss_lut, 0, lut_size); 2164 } 2165 2166 return idpf_config_rss(vport); 2167 } 2168 2169 /** 2170 * idpf_set_features - set the netdev feature flags 2171 * @netdev: ptr to the netdev being adjusted 2172 * @features: the feature set that the stack is suggesting 2173 */ 2174 static int idpf_set_features(struct net_device *netdev, 2175 netdev_features_t features) 2176 { 2177 netdev_features_t changed = netdev->features ^ features; 2178 struct idpf_adapter *adapter; 2179 struct idpf_vport *vport; 2180 int err = 0; 2181 2182 idpf_vport_ctrl_lock(netdev); 2183 vport = idpf_netdev_to_vport(netdev); 2184 2185 adapter = vport->adapter; 2186 2187 if (idpf_is_reset_in_prog(adapter)) { 2188 dev_err(&adapter->pdev->dev, "Device is resetting, changing netdev features temporarily unavailable.\n"); 2189 err = -EBUSY; 2190 goto unlock_mutex; 2191 } 2192 2193 if (changed & NETIF_F_RXHASH) { 2194 netdev->features ^= NETIF_F_RXHASH; 2195 err = idpf_vport_manage_rss_lut(vport); 2196 if (err) 2197 goto unlock_mutex; 2198 } 2199 2200 if (changed & NETIF_F_GRO_HW) { 2201 netdev->features ^= NETIF_F_GRO_HW; 2202 err = idpf_initiate_soft_reset(vport, IDPF_SR_RSC_CHANGE); 2203 if (err) 2204 goto unlock_mutex; 2205 } 2206 2207 if (changed & NETIF_F_LOOPBACK) { 2208 netdev->features ^= NETIF_F_LOOPBACK; 2209 err = idpf_send_ena_dis_loopback_msg(vport); 2210 } 2211 2212 unlock_mutex: 2213 idpf_vport_ctrl_unlock(netdev); 2214 2215 return err; 2216 } 2217 2218 /** 2219 * idpf_open - Called when a network interface becomes active 2220 * @netdev: network interface device structure 2221 * 2222 * The open entry point is called when a network interface is made 2223 * active by the system (IFF_UP). At this point all resources needed 2224 * for transmit and receive operations are allocated, the interrupt 2225 * handler is registered with the OS, the netdev watchdog is enabled, 2226 * and the stack is notified that the interface is ready. 2227 * 2228 * Returns 0 on success, negative value on failure 2229 */ 2230 static int idpf_open(struct net_device *netdev) 2231 { 2232 struct idpf_vport *vport; 2233 int err; 2234 2235 idpf_vport_ctrl_lock(netdev); 2236 vport = idpf_netdev_to_vport(netdev); 2237 2238 err = idpf_set_real_num_queues(vport); 2239 if (err) 2240 goto unlock; 2241 2242 err = idpf_vport_open(vport); 2243 2244 unlock: 2245 idpf_vport_ctrl_unlock(netdev); 2246 2247 return err; 2248 } 2249 2250 /** 2251 * idpf_change_mtu - NDO callback to change the MTU 2252 * @netdev: network interface device structure 2253 * @new_mtu: new value for maximum frame size 2254 * 2255 * Returns 0 on success, negative on failure 2256 */ 2257 static int idpf_change_mtu(struct net_device *netdev, int new_mtu) 2258 { 2259 struct idpf_vport *vport; 2260 int err; 2261 2262 idpf_vport_ctrl_lock(netdev); 2263 vport = idpf_netdev_to_vport(netdev); 2264 2265 WRITE_ONCE(netdev->mtu, new_mtu); 2266 2267 err = idpf_initiate_soft_reset(vport, IDPF_SR_MTU_CHANGE); 2268 2269 idpf_vport_ctrl_unlock(netdev); 2270 2271 return err; 2272 } 2273 2274 /** 2275 * idpf_features_check - Validate packet conforms to limits 2276 * @skb: skb buffer 2277 * @netdev: This port's netdev 2278 * @features: Offload features that the stack believes apply 2279 */ 2280 static netdev_features_t idpf_features_check(struct sk_buff *skb, 2281 struct net_device *netdev, 2282 netdev_features_t features) 2283 { 2284 struct idpf_netdev_priv *np = netdev_priv(netdev); 2285 u16 max_tx_hdr_size = np->max_tx_hdr_size; 2286 size_t len; 2287 2288 /* No point in doing any of this if neither checksum nor GSO are 2289 * being requested for this frame. We can rule out both by just 2290 * checking for CHECKSUM_PARTIAL 2291 */ 2292 if (skb->ip_summed != CHECKSUM_PARTIAL) 2293 return features; 2294 2295 /* We cannot support GSO if the MSS is going to be less than 2296 * 88 bytes. If it is then we need to drop support for GSO. 2297 */ 2298 if (skb_is_gso(skb) && 2299 (skb_shinfo(skb)->gso_size < IDPF_TX_TSO_MIN_MSS)) 2300 features &= ~NETIF_F_GSO_MASK; 2301 2302 /* Ensure MACLEN is <= 126 bytes (63 words) and not an odd size */ 2303 len = skb_network_offset(skb); 2304 if (unlikely(len & ~(126))) 2305 goto unsupported; 2306 2307 len = skb_network_header_len(skb); 2308 if (unlikely(len > max_tx_hdr_size)) 2309 goto unsupported; 2310 2311 if (!skb->encapsulation) 2312 return features; 2313 2314 /* L4TUNLEN can support 127 words */ 2315 len = skb_inner_network_header(skb) - skb_transport_header(skb); 2316 if (unlikely(len & ~(127 * 2))) 2317 goto unsupported; 2318 2319 /* IPLEN can support at most 127 dwords */ 2320 len = skb_inner_network_header_len(skb); 2321 if (unlikely(len > max_tx_hdr_size)) 2322 goto unsupported; 2323 2324 /* No need to validate L4LEN as TCP is the only protocol with a 2325 * a flexible value and we support all possible values supported 2326 * by TCP, which is at most 15 dwords 2327 */ 2328 2329 return features; 2330 2331 unsupported: 2332 return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK); 2333 } 2334 2335 /** 2336 * idpf_set_mac - NDO callback to set port mac address 2337 * @netdev: network interface device structure 2338 * @p: pointer to an address structure 2339 * 2340 * Returns 0 on success, negative on failure 2341 **/ 2342 static int idpf_set_mac(struct net_device *netdev, void *p) 2343 { 2344 struct idpf_netdev_priv *np = netdev_priv(netdev); 2345 struct idpf_vport_config *vport_config; 2346 struct sockaddr *addr = p; 2347 u8 old_mac_addr[ETH_ALEN]; 2348 struct idpf_vport *vport; 2349 int err = 0; 2350 2351 idpf_vport_ctrl_lock(netdev); 2352 vport = idpf_netdev_to_vport(netdev); 2353 2354 if (!idpf_is_cap_ena(vport->adapter, IDPF_OTHER_CAPS, 2355 VIRTCHNL2_CAP_MACFILTER)) { 2356 dev_info(&vport->adapter->pdev->dev, "Setting MAC address is not supported\n"); 2357 err = -EOPNOTSUPP; 2358 goto unlock_mutex; 2359 } 2360 2361 if (!is_valid_ether_addr(addr->sa_data)) { 2362 dev_info(&vport->adapter->pdev->dev, "Invalid MAC address: %pM\n", 2363 addr->sa_data); 2364 err = -EADDRNOTAVAIL; 2365 goto unlock_mutex; 2366 } 2367 2368 if (ether_addr_equal(netdev->dev_addr, addr->sa_data)) 2369 goto unlock_mutex; 2370 2371 ether_addr_copy(old_mac_addr, vport->default_mac_addr); 2372 ether_addr_copy(vport->default_mac_addr, addr->sa_data); 2373 vport_config = vport->adapter->vport_config[vport->idx]; 2374 err = idpf_add_mac_filter(vport, np, addr->sa_data, false); 2375 if (err) { 2376 __idpf_del_mac_filter(vport_config, addr->sa_data); 2377 ether_addr_copy(vport->default_mac_addr, netdev->dev_addr); 2378 goto unlock_mutex; 2379 } 2380 2381 if (is_valid_ether_addr(old_mac_addr)) 2382 __idpf_del_mac_filter(vport_config, old_mac_addr); 2383 2384 eth_hw_addr_set(netdev, addr->sa_data); 2385 2386 unlock_mutex: 2387 idpf_vport_ctrl_unlock(netdev); 2388 2389 return err; 2390 } 2391 2392 /** 2393 * idpf_alloc_dma_mem - Allocate dma memory 2394 * @hw: pointer to hw struct 2395 * @mem: pointer to dma_mem struct 2396 * @size: size of the memory to allocate 2397 */ 2398 void *idpf_alloc_dma_mem(struct idpf_hw *hw, struct idpf_dma_mem *mem, u64 size) 2399 { 2400 struct idpf_adapter *adapter = hw->back; 2401 size_t sz = ALIGN(size, 4096); 2402 2403 /* The control queue resources are freed under a spinlock, contiguous 2404 * pages will avoid IOMMU remapping and the use vmap (and vunmap in 2405 * dma_free_*() path. 2406 */ 2407 mem->va = dma_alloc_attrs(&adapter->pdev->dev, sz, &mem->pa, 2408 GFP_KERNEL, DMA_ATTR_FORCE_CONTIGUOUS); 2409 mem->size = sz; 2410 2411 return mem->va; 2412 } 2413 2414 /** 2415 * idpf_free_dma_mem - Free the allocated dma memory 2416 * @hw: pointer to hw struct 2417 * @mem: pointer to dma_mem struct 2418 */ 2419 void idpf_free_dma_mem(struct idpf_hw *hw, struct idpf_dma_mem *mem) 2420 { 2421 struct idpf_adapter *adapter = hw->back; 2422 2423 dma_free_attrs(&adapter->pdev->dev, mem->size, 2424 mem->va, mem->pa, DMA_ATTR_FORCE_CONTIGUOUS); 2425 mem->size = 0; 2426 mem->va = NULL; 2427 mem->pa = 0; 2428 } 2429 2430 static int idpf_hwtstamp_set(struct net_device *netdev, 2431 struct kernel_hwtstamp_config *config, 2432 struct netlink_ext_ack *extack) 2433 { 2434 struct idpf_vport *vport; 2435 int err; 2436 2437 idpf_vport_ctrl_lock(netdev); 2438 vport = idpf_netdev_to_vport(netdev); 2439 2440 if (!vport->link_up) { 2441 idpf_vport_ctrl_unlock(netdev); 2442 return -EPERM; 2443 } 2444 2445 if (!idpf_ptp_is_vport_tx_tstamp_ena(vport) && 2446 !idpf_ptp_is_vport_rx_tstamp_ena(vport)) { 2447 idpf_vport_ctrl_unlock(netdev); 2448 return -EOPNOTSUPP; 2449 } 2450 2451 err = idpf_ptp_set_timestamp_mode(vport, config); 2452 2453 idpf_vport_ctrl_unlock(netdev); 2454 2455 return err; 2456 } 2457 2458 static int idpf_hwtstamp_get(struct net_device *netdev, 2459 struct kernel_hwtstamp_config *config) 2460 { 2461 struct idpf_vport *vport; 2462 2463 idpf_vport_ctrl_lock(netdev); 2464 vport = idpf_netdev_to_vport(netdev); 2465 2466 if (!vport->link_up) { 2467 idpf_vport_ctrl_unlock(netdev); 2468 return -EPERM; 2469 } 2470 2471 if (!idpf_ptp_is_vport_tx_tstamp_ena(vport) && 2472 !idpf_ptp_is_vport_rx_tstamp_ena(vport)) { 2473 idpf_vport_ctrl_unlock(netdev); 2474 return 0; 2475 } 2476 2477 *config = vport->tstamp_config; 2478 2479 idpf_vport_ctrl_unlock(netdev); 2480 2481 return 0; 2482 } 2483 2484 static const struct net_device_ops idpf_netdev_ops = { 2485 .ndo_open = idpf_open, 2486 .ndo_stop = idpf_stop, 2487 .ndo_start_xmit = idpf_tx_start, 2488 .ndo_features_check = idpf_features_check, 2489 .ndo_set_rx_mode = idpf_set_rx_mode, 2490 .ndo_validate_addr = eth_validate_addr, 2491 .ndo_set_mac_address = idpf_set_mac, 2492 .ndo_change_mtu = idpf_change_mtu, 2493 .ndo_get_stats64 = idpf_get_stats64, 2494 .ndo_set_features = idpf_set_features, 2495 .ndo_tx_timeout = idpf_tx_timeout, 2496 .ndo_hwtstamp_get = idpf_hwtstamp_get, 2497 .ndo_hwtstamp_set = idpf_hwtstamp_set, 2498 }; 2499