1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright (c) 2018-2023, Intel Corporation. */ 3 4 /* Intel(R) Ethernet Connection E800 Series Linux Driver */ 5 6 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 7 8 #include <generated/utsrelease.h> 9 #include <linux/crash_dump.h> 10 #include "ice.h" 11 #include "ice_base.h" 12 #include "ice_lib.h" 13 #include "ice_fltr.h" 14 #include "ice_dcb_lib.h" 15 #include "ice_dcb_nl.h" 16 #include "devlink/devlink.h" 17 #include "devlink/port.h" 18 #include "ice_sf_eth.h" 19 #include "ice_hwmon.h" 20 /* Including ice_trace.h with CREATE_TRACE_POINTS defined will generate the 21 * ice tracepoint functions. This must be done exactly once across the 22 * ice driver. 23 */ 24 #define CREATE_TRACE_POINTS 25 #include "ice_trace.h" 26 #include "ice_eswitch.h" 27 #include "ice_tc_lib.h" 28 #include "ice_vsi_vlan_ops.h" 29 #include <net/xdp_sock_drv.h> 30 31 #define DRV_SUMMARY "Intel(R) Ethernet Connection E800 Series Linux Driver" 32 static const char ice_driver_string[] = DRV_SUMMARY; 33 static const char ice_copyright[] = "Copyright (c) 2018, Intel Corporation."; 34 35 /* DDP Package file located in firmware search paths (e.g. /lib/firmware/) */ 36 #define ICE_DDP_PKG_PATH "intel/ice/ddp/" 37 #define ICE_DDP_PKG_FILE ICE_DDP_PKG_PATH "ice.pkg" 38 39 MODULE_DESCRIPTION(DRV_SUMMARY); 40 MODULE_IMPORT_NS("LIBETH"); 41 MODULE_IMPORT_NS("LIBETH_XDP"); 42 MODULE_IMPORT_NS("LIBIE"); 43 MODULE_IMPORT_NS("LIBIE_ADMINQ"); 44 MODULE_IMPORT_NS("LIBIE_FWLOG"); 45 MODULE_LICENSE("GPL v2"); 46 MODULE_FIRMWARE(ICE_DDP_PKG_FILE); 47 48 static int debug = -1; 49 module_param(debug, int, 0644); 50 #ifndef CONFIG_DYNAMIC_DEBUG 51 MODULE_PARM_DESC(debug, "netif level (0=none,...,16=all), hw debug_mask (0x8XXXXXXX)"); 52 #else 53 MODULE_PARM_DESC(debug, "netif level (0=none,...,16=all)"); 54 #endif /* !CONFIG_DYNAMIC_DEBUG */ 55 56 DEFINE_STATIC_KEY_FALSE(ice_xdp_locking_key); 57 EXPORT_SYMBOL(ice_xdp_locking_key); 58 59 /** 60 * ice_hw_to_dev - Get device pointer from the hardware structure 61 * @hw: pointer to the device HW structure 62 * 63 * Used to access the device pointer from compilation units which can't easily 64 * include the definition of struct ice_pf without leading to circular header 65 * dependencies. 66 */ 67 struct device *ice_hw_to_dev(struct ice_hw *hw) 68 { 69 struct ice_pf *pf = container_of(hw, struct ice_pf, hw); 70 71 return &pf->pdev->dev; 72 } 73 74 static struct workqueue_struct *ice_wq; 75 struct workqueue_struct *ice_lag_wq; 76 static const struct net_device_ops ice_netdev_safe_mode_ops; 77 static const struct net_device_ops ice_netdev_ops; 78 79 static void ice_rebuild(struct ice_pf *pf, enum ice_reset_req reset_type); 80 81 static void ice_vsi_release_all(struct ice_pf *pf); 82 83 static int ice_rebuild_channels(struct ice_pf *pf); 84 static void ice_remove_q_channels(struct ice_vsi *vsi, bool rem_adv_fltr); 85 86 static int 87 ice_indr_setup_tc_cb(struct net_device *netdev, struct Qdisc *sch, 88 void *cb_priv, enum tc_setup_type type, void *type_data, 89 void *data, 90 void (*cleanup)(struct flow_block_cb *block_cb)); 91 92 bool netif_is_ice(const struct net_device *dev) 93 { 94 return dev && (dev->netdev_ops == &ice_netdev_ops || 95 dev->netdev_ops == &ice_netdev_safe_mode_ops); 96 } 97 98 /** 99 * ice_get_tx_pending - returns number of Tx descriptors not processed 100 * @ring: the ring of descriptors 101 */ 102 static u16 ice_get_tx_pending(struct ice_tx_ring *ring) 103 { 104 u16 head, tail; 105 106 head = ring->next_to_clean; 107 tail = ring->next_to_use; 108 109 if (head != tail) 110 return (head < tail) ? 111 tail - head : (tail + ring->count - head); 112 return 0; 113 } 114 115 /** 116 * ice_check_for_hang_subtask - check for and recover hung queues 117 * @pf: pointer to PF struct 118 */ 119 static void ice_check_for_hang_subtask(struct ice_pf *pf) 120 { 121 struct ice_vsi *vsi = NULL; 122 struct ice_hw *hw; 123 unsigned int i; 124 int packets; 125 u32 v; 126 127 ice_for_each_vsi(pf, v) 128 if (pf->vsi[v] && pf->vsi[v]->type == ICE_VSI_PF) { 129 vsi = pf->vsi[v]; 130 break; 131 } 132 133 if (!vsi || test_bit(ICE_VSI_DOWN, vsi->state)) 134 return; 135 136 if (!(vsi->netdev && netif_carrier_ok(vsi->netdev))) 137 return; 138 139 hw = &vsi->back->hw; 140 141 ice_for_each_txq(vsi, i) { 142 struct ice_tx_ring *tx_ring = vsi->tx_rings[i]; 143 struct ice_ring_stats *ring_stats; 144 145 if (!tx_ring) 146 continue; 147 if (ice_ring_ch_enabled(tx_ring)) 148 continue; 149 150 ring_stats = tx_ring->ring_stats; 151 if (!ring_stats) 152 continue; 153 154 if (tx_ring->desc) { 155 /* If packet counter has not changed the queue is 156 * likely stalled, so force an interrupt for this 157 * queue. 158 * 159 * prev_pkt would be negative if there was no 160 * pending work. 161 */ 162 packets = ice_stats_read(ring_stats, pkts) & INT_MAX; 163 if (ring_stats->tx.prev_pkt == packets) { 164 /* Trigger sw interrupt to revive the queue */ 165 ice_trigger_sw_intr(hw, tx_ring->q_vector); 166 continue; 167 } 168 169 /* Memory barrier between read of packet count and call 170 * to ice_get_tx_pending() 171 */ 172 smp_rmb(); 173 ring_stats->tx.prev_pkt = 174 ice_get_tx_pending(tx_ring) ? packets : -1; 175 } 176 } 177 } 178 179 /** 180 * ice_init_mac_fltr - Set initial MAC filters 181 * @pf: board private structure 182 * 183 * Set initial set of MAC filters for PF VSI; configure filters for permanent 184 * address and broadcast address. If an error is encountered, netdevice will be 185 * unregistered. 186 */ 187 static int ice_init_mac_fltr(struct ice_pf *pf) 188 { 189 struct ice_vsi *vsi; 190 u8 *perm_addr; 191 192 vsi = ice_get_main_vsi(pf); 193 if (!vsi) 194 return -EINVAL; 195 196 perm_addr = vsi->port_info->mac.perm_addr; 197 return ice_fltr_add_mac_and_broadcast(vsi, perm_addr, ICE_FWD_TO_VSI); 198 } 199 200 /** 201 * ice_add_mac_to_sync_list - creates list of MAC addresses to be synced 202 * @netdev: the net device on which the sync is happening 203 * @addr: MAC address to sync 204 * 205 * This is a callback function which is called by the in kernel device sync 206 * functions (like __dev_uc_sync, __dev_mc_sync, etc). This function only 207 * populates the tmp_sync_list, which is later used by ice_add_mac to add the 208 * MAC filters from the hardware. 209 */ 210 static int ice_add_mac_to_sync_list(struct net_device *netdev, const u8 *addr) 211 { 212 struct ice_netdev_priv *np = netdev_priv(netdev); 213 struct ice_vsi *vsi = np->vsi; 214 215 if (ice_fltr_add_mac_to_list(vsi, &vsi->tmp_sync_list, addr, 216 ICE_FWD_TO_VSI)) 217 return -EINVAL; 218 219 return 0; 220 } 221 222 /** 223 * ice_add_mac_to_unsync_list - creates list of MAC addresses to be unsynced 224 * @netdev: the net device on which the unsync is happening 225 * @addr: MAC address to unsync 226 * 227 * This is a callback function which is called by the in kernel device unsync 228 * functions (like __dev_uc_unsync, __dev_mc_unsync, etc). This function only 229 * populates the tmp_unsync_list, which is later used by ice_remove_mac to 230 * delete the MAC filters from the hardware. 231 */ 232 static int ice_add_mac_to_unsync_list(struct net_device *netdev, const u8 *addr) 233 { 234 struct ice_netdev_priv *np = netdev_priv(netdev); 235 struct ice_vsi *vsi = np->vsi; 236 237 /* Under some circumstances, we might receive a request to delete our 238 * own device address from our uc list. Because we store the device 239 * address in the VSI's MAC filter list, we need to ignore such 240 * requests and not delete our device address from this list. 241 */ 242 if (ether_addr_equal(addr, netdev->dev_addr)) 243 return 0; 244 245 if (ice_fltr_add_mac_to_list(vsi, &vsi->tmp_unsync_list, addr, 246 ICE_FWD_TO_VSI)) 247 return -EINVAL; 248 249 return 0; 250 } 251 252 /** 253 * ice_vsi_fltr_changed - check if filter state changed 254 * @vsi: VSI to be checked 255 * 256 * returns true if filter state has changed, false otherwise. 257 */ 258 static bool ice_vsi_fltr_changed(struct ice_vsi *vsi) 259 { 260 return test_bit(ICE_VSI_UMAC_FLTR_CHANGED, vsi->state) || 261 test_bit(ICE_VSI_MMAC_FLTR_CHANGED, vsi->state); 262 } 263 264 /** 265 * ice_set_promisc - Enable promiscuous mode for a given PF 266 * @vsi: the VSI being configured 267 * @promisc_m: mask of promiscuous config bits 268 * 269 */ 270 static int ice_set_promisc(struct ice_vsi *vsi, u8 promisc_m) 271 { 272 int status; 273 274 if (vsi->type != ICE_VSI_PF) 275 return 0; 276 277 if (ice_vsi_has_non_zero_vlans(vsi)) { 278 promisc_m |= (ICE_PROMISC_VLAN_RX | ICE_PROMISC_VLAN_TX); 279 status = ice_fltr_set_vlan_vsi_promisc(&vsi->back->hw, vsi, 280 promisc_m); 281 } else { 282 status = ice_fltr_set_vsi_promisc(&vsi->back->hw, vsi->idx, 283 promisc_m, 0); 284 } 285 if (status && status != -EEXIST) 286 return status; 287 288 netdev_dbg(vsi->netdev, "set promisc filter bits for VSI %i: 0x%x\n", 289 vsi->vsi_num, promisc_m); 290 return 0; 291 } 292 293 /** 294 * ice_clear_promisc - Disable promiscuous mode for a given PF 295 * @vsi: the VSI being configured 296 * @promisc_m: mask of promiscuous config bits 297 * 298 */ 299 static int ice_clear_promisc(struct ice_vsi *vsi, u8 promisc_m) 300 { 301 int status; 302 303 if (vsi->type != ICE_VSI_PF) 304 return 0; 305 306 if (ice_vsi_has_non_zero_vlans(vsi)) { 307 promisc_m |= (ICE_PROMISC_VLAN_RX | ICE_PROMISC_VLAN_TX); 308 status = ice_fltr_clear_vlan_vsi_promisc(&vsi->back->hw, vsi, 309 promisc_m); 310 } else { 311 status = ice_fltr_clear_vsi_promisc(&vsi->back->hw, vsi->idx, 312 promisc_m, 0); 313 } 314 315 netdev_dbg(vsi->netdev, "clear promisc filter bits for VSI %i: 0x%x\n", 316 vsi->vsi_num, promisc_m); 317 return status; 318 } 319 320 /** 321 * ice_vsi_sync_fltr - Update the VSI filter list to the HW 322 * @vsi: ptr to the VSI 323 * 324 * Push any outstanding VSI filter changes through the AdminQ. 325 */ 326 static int ice_vsi_sync_fltr(struct ice_vsi *vsi) 327 { 328 struct ice_vsi_vlan_ops *vlan_ops = ice_get_compat_vsi_vlan_ops(vsi); 329 struct device *dev = ice_pf_to_dev(vsi->back); 330 struct net_device *netdev = vsi->netdev; 331 bool promisc_forced_on = false; 332 struct ice_pf *pf = vsi->back; 333 struct ice_hw *hw = &pf->hw; 334 u32 changed_flags = 0; 335 int err; 336 337 if (!vsi->netdev) 338 return -EINVAL; 339 340 while (test_and_set_bit(ICE_CFG_BUSY, vsi->state)) 341 usleep_range(1000, 2000); 342 343 changed_flags = vsi->current_netdev_flags ^ vsi->netdev->flags; 344 vsi->current_netdev_flags = vsi->netdev->flags; 345 346 INIT_LIST_HEAD(&vsi->tmp_sync_list); 347 INIT_LIST_HEAD(&vsi->tmp_unsync_list); 348 349 if (ice_vsi_fltr_changed(vsi)) { 350 clear_bit(ICE_VSI_UMAC_FLTR_CHANGED, vsi->state); 351 clear_bit(ICE_VSI_MMAC_FLTR_CHANGED, vsi->state); 352 353 /* grab the netdev's addr_list_lock */ 354 netif_addr_lock_bh(netdev); 355 __dev_uc_sync(netdev, ice_add_mac_to_sync_list, 356 ice_add_mac_to_unsync_list); 357 __dev_mc_sync(netdev, ice_add_mac_to_sync_list, 358 ice_add_mac_to_unsync_list); 359 /* our temp lists are populated. release lock */ 360 netif_addr_unlock_bh(netdev); 361 } 362 363 /* Remove MAC addresses in the unsync list */ 364 err = ice_fltr_remove_mac_list(vsi, &vsi->tmp_unsync_list); 365 ice_fltr_free_list(dev, &vsi->tmp_unsync_list); 366 if (err) { 367 netdev_err(netdev, "Failed to delete MAC filters\n"); 368 /* if we failed because of alloc failures, just bail */ 369 if (err == -ENOMEM) 370 goto out; 371 } 372 373 /* Add MAC addresses in the sync list */ 374 err = ice_fltr_add_mac_list(vsi, &vsi->tmp_sync_list); 375 ice_fltr_free_list(dev, &vsi->tmp_sync_list); 376 /* If filter is added successfully or already exists, do not go into 377 * 'if' condition and report it as error. Instead continue processing 378 * rest of the function. 379 */ 380 if (err && err != -EEXIST) { 381 netdev_err(netdev, "Failed to add MAC filters\n"); 382 /* If there is no more space for new umac filters, VSI 383 * should go into promiscuous mode. There should be some 384 * space reserved for promiscuous filters. 385 */ 386 if (hw->adminq.sq_last_status == LIBIE_AQ_RC_ENOSPC && 387 !test_and_set_bit(ICE_FLTR_OVERFLOW_PROMISC, 388 vsi->state)) { 389 promisc_forced_on = true; 390 netdev_warn(netdev, "Reached MAC filter limit, forcing promisc mode on VSI %d\n", 391 vsi->vsi_num); 392 } else { 393 goto out; 394 } 395 } 396 err = 0; 397 /* check for changes in promiscuous modes */ 398 if (changed_flags & IFF_ALLMULTI) { 399 if (vsi->current_netdev_flags & IFF_ALLMULTI) { 400 err = ice_set_promisc(vsi, ICE_MCAST_PROMISC_BITS); 401 if (err) { 402 vsi->current_netdev_flags &= ~IFF_ALLMULTI; 403 goto out_promisc; 404 } 405 } else { 406 /* !(vsi->current_netdev_flags & IFF_ALLMULTI) */ 407 err = ice_clear_promisc(vsi, ICE_MCAST_PROMISC_BITS); 408 if (err) { 409 vsi->current_netdev_flags |= IFF_ALLMULTI; 410 goto out_promisc; 411 } 412 } 413 } 414 415 if (((changed_flags & IFF_PROMISC) || promisc_forced_on) || 416 test_bit(ICE_VSI_PROMISC_CHANGED, vsi->state)) { 417 clear_bit(ICE_VSI_PROMISC_CHANGED, vsi->state); 418 if (vsi->current_netdev_flags & IFF_PROMISC) { 419 /* Apply Rx filter rule to get traffic from wire */ 420 if (!ice_is_dflt_vsi_in_use(vsi->port_info)) { 421 err = ice_set_dflt_vsi(vsi); 422 if (err && err != -EEXIST) { 423 netdev_err(netdev, "Error %d setting default VSI %i Rx rule\n", 424 err, vsi->vsi_num); 425 vsi->current_netdev_flags &= 426 ~IFF_PROMISC; 427 goto out_promisc; 428 } 429 err = 0; 430 vlan_ops->dis_rx_filtering(vsi); 431 432 /* promiscuous mode implies allmulticast so 433 * that VSIs that are in promiscuous mode are 434 * subscribed to multicast packets coming to 435 * the port 436 */ 437 err = ice_set_promisc(vsi, 438 ICE_MCAST_PROMISC_BITS); 439 if (err) 440 goto out_promisc; 441 } 442 } else { 443 /* Clear Rx filter to remove traffic from wire */ 444 if (ice_is_vsi_dflt_vsi(vsi)) { 445 err = ice_clear_dflt_vsi(vsi); 446 if (err) { 447 netdev_err(netdev, "Error %d clearing default VSI %i Rx rule\n", 448 err, vsi->vsi_num); 449 vsi->current_netdev_flags |= 450 IFF_PROMISC; 451 goto out_promisc; 452 } 453 if (vsi->netdev->features & 454 NETIF_F_HW_VLAN_CTAG_FILTER) 455 vlan_ops->ena_rx_filtering(vsi); 456 } 457 458 /* disable allmulti here, but only if allmulti is not 459 * still enabled for the netdev 460 */ 461 if (!(vsi->current_netdev_flags & IFF_ALLMULTI)) { 462 err = ice_clear_promisc(vsi, 463 ICE_MCAST_PROMISC_BITS); 464 if (err) { 465 netdev_err(netdev, "Error %d clearing multicast promiscuous on VSI %i\n", 466 err, vsi->vsi_num); 467 } 468 } 469 } 470 } 471 goto exit; 472 473 out_promisc: 474 set_bit(ICE_VSI_PROMISC_CHANGED, vsi->state); 475 goto exit; 476 out: 477 /* if something went wrong then set the changed flag so we try again */ 478 set_bit(ICE_VSI_UMAC_FLTR_CHANGED, vsi->state); 479 set_bit(ICE_VSI_MMAC_FLTR_CHANGED, vsi->state); 480 exit: 481 clear_bit(ICE_CFG_BUSY, vsi->state); 482 return err; 483 } 484 485 /** 486 * ice_sync_fltr_subtask - Sync the VSI filter list with HW 487 * @pf: board private structure 488 */ 489 static void ice_sync_fltr_subtask(struct ice_pf *pf) 490 { 491 int v; 492 493 if (!pf || !(test_bit(ICE_FLAG_FLTR_SYNC, pf->flags))) 494 return; 495 496 clear_bit(ICE_FLAG_FLTR_SYNC, pf->flags); 497 498 ice_for_each_vsi(pf, v) 499 if (pf->vsi[v] && ice_vsi_fltr_changed(pf->vsi[v]) && 500 ice_vsi_sync_fltr(pf->vsi[v])) { 501 /* come back and try again later */ 502 set_bit(ICE_FLAG_FLTR_SYNC, pf->flags); 503 break; 504 } 505 } 506 507 /** 508 * ice_pf_dis_all_vsi - Pause all VSIs on a PF 509 * @pf: the PF 510 * @locked: is the rtnl_lock already held 511 */ 512 static void ice_pf_dis_all_vsi(struct ice_pf *pf, bool locked) 513 { 514 int node; 515 int v; 516 517 ice_for_each_vsi(pf, v) 518 if (pf->vsi[v]) 519 ice_dis_vsi(pf->vsi[v], locked); 520 521 for (node = 0; node < ICE_MAX_PF_AGG_NODES; node++) 522 pf->pf_agg_node[node].num_vsis = 0; 523 524 for (node = 0; node < ICE_MAX_VF_AGG_NODES; node++) 525 pf->vf_agg_node[node].num_vsis = 0; 526 } 527 528 /** 529 * ice_prepare_for_reset - prep for reset 530 * @pf: board private structure 531 * @reset_type: reset type requested 532 * 533 * Inform or close all dependent features in prep for reset. 534 */ 535 static void 536 ice_prepare_for_reset(struct ice_pf *pf, enum ice_reset_req reset_type) 537 { 538 struct ice_hw *hw = &pf->hw; 539 struct ice_vsi *vsi; 540 struct ice_vf *vf; 541 unsigned int bkt; 542 543 dev_dbg(ice_pf_to_dev(pf), "reset_type=%d\n", reset_type); 544 545 /* already prepared for reset */ 546 if (test_bit(ICE_PREPARED_FOR_RESET, pf->state)) 547 return; 548 549 synchronize_irq(pf->oicr_irq.virq); 550 551 ice_unplug_aux_dev(pf); 552 553 /* Notify VFs of impending reset */ 554 if (ice_check_sq_alive(hw, &hw->mailboxq)) 555 ice_vc_notify_reset(pf); 556 557 /* Disable VFs until reset is completed */ 558 mutex_lock(&pf->vfs.table_lock); 559 ice_for_each_vf(pf, bkt, vf) 560 ice_set_vf_state_dis(vf); 561 mutex_unlock(&pf->vfs.table_lock); 562 563 if (ice_is_eswitch_mode_switchdev(pf)) { 564 rtnl_lock(); 565 ice_eswitch_br_fdb_flush(pf->eswitch.br_offloads->bridge); 566 rtnl_unlock(); 567 } 568 569 /* release ADQ specific HW and SW resources */ 570 vsi = ice_get_main_vsi(pf); 571 if (!vsi) 572 goto skip; 573 574 /* to be on safe side, reset orig_rss_size so that normal flow 575 * of deciding rss_size can take precedence 576 */ 577 vsi->orig_rss_size = 0; 578 579 if (test_bit(ICE_FLAG_TC_MQPRIO, pf->flags)) { 580 if (reset_type == ICE_RESET_PFR) { 581 vsi->old_ena_tc = vsi->all_enatc; 582 vsi->old_numtc = vsi->all_numtc; 583 } else { 584 ice_remove_q_channels(vsi, true); 585 586 /* for other reset type, do not support channel rebuild 587 * hence reset needed info 588 */ 589 vsi->old_ena_tc = 0; 590 vsi->all_enatc = 0; 591 vsi->old_numtc = 0; 592 vsi->all_numtc = 0; 593 vsi->req_txq = 0; 594 vsi->req_rxq = 0; 595 clear_bit(ICE_FLAG_TC_MQPRIO, pf->flags); 596 memset(&vsi->mqprio_qopt, 0, sizeof(vsi->mqprio_qopt)); 597 } 598 } 599 600 if (vsi->netdev) 601 netif_device_detach(vsi->netdev); 602 skip: 603 604 /* clear SW filtering DB */ 605 ice_clear_hw_tbls(hw); 606 /* disable the VSIs and their queues that are not already DOWN */ 607 set_bit(ICE_VSI_REBUILD_PENDING, ice_get_main_vsi(pf)->state); 608 ice_pf_dis_all_vsi(pf, false); 609 610 if (test_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags)) 611 ice_ptp_prepare_for_reset(pf, reset_type); 612 613 if (ice_is_feature_supported(pf, ICE_F_GNSS)) 614 ice_gnss_exit(pf); 615 616 if (hw->port_info) 617 ice_sched_clear_port(hw->port_info); 618 619 ice_shutdown_all_ctrlq(hw, false); 620 621 set_bit(ICE_PREPARED_FOR_RESET, pf->state); 622 } 623 624 /** 625 * ice_do_reset - Initiate one of many types of resets 626 * @pf: board private structure 627 * @reset_type: reset type requested before this function was called. 628 */ 629 static void ice_do_reset(struct ice_pf *pf, enum ice_reset_req reset_type) 630 { 631 struct device *dev = ice_pf_to_dev(pf); 632 struct ice_hw *hw = &pf->hw; 633 634 dev_dbg(dev, "reset_type 0x%x requested\n", reset_type); 635 636 if (pf->lag && pf->lag->bonded && reset_type == ICE_RESET_PFR) { 637 dev_dbg(dev, "PFR on a bonded interface, promoting to CORER\n"); 638 reset_type = ICE_RESET_CORER; 639 } 640 641 ice_prepare_for_reset(pf, reset_type); 642 643 /* trigger the reset */ 644 if (ice_reset(hw, reset_type)) { 645 dev_err(dev, "reset %d failed\n", reset_type); 646 set_bit(ICE_RESET_FAILED, pf->state); 647 clear_bit(ICE_RESET_OICR_RECV, pf->state); 648 clear_bit(ICE_PREPARED_FOR_RESET, pf->state); 649 clear_bit(ICE_PFR_REQ, pf->state); 650 clear_bit(ICE_CORER_REQ, pf->state); 651 clear_bit(ICE_GLOBR_REQ, pf->state); 652 wake_up(&pf->reset_wait_queue); 653 return; 654 } 655 656 /* PFR is a bit of a special case because it doesn't result in an OICR 657 * interrupt. So for PFR, rebuild after the reset and clear the reset- 658 * associated state bits. 659 */ 660 if (reset_type == ICE_RESET_PFR) { 661 pf->pfr_count++; 662 ice_rebuild(pf, reset_type); 663 clear_bit(ICE_PREPARED_FOR_RESET, pf->state); 664 clear_bit(ICE_PFR_REQ, pf->state); 665 wake_up(&pf->reset_wait_queue); 666 ice_reset_all_vfs(pf); 667 } 668 } 669 670 /** 671 * ice_reset_subtask - Set up for resetting the device and driver 672 * @pf: board private structure 673 */ 674 static void ice_reset_subtask(struct ice_pf *pf) 675 { 676 enum ice_reset_req reset_type = ICE_RESET_INVAL; 677 678 /* When a CORER/GLOBR/EMPR is about to happen, the hardware triggers an 679 * OICR interrupt. The OICR handler (ice_misc_intr) determines what type 680 * of reset is pending and sets bits in pf->state indicating the reset 681 * type and ICE_RESET_OICR_RECV. So, if the latter bit is set 682 * prepare for pending reset if not already (for PF software-initiated 683 * global resets the software should already be prepared for it as 684 * indicated by ICE_PREPARED_FOR_RESET; for global resets initiated 685 * by firmware or software on other PFs, that bit is not set so prepare 686 * for the reset now), poll for reset done, rebuild and return. 687 */ 688 if (test_bit(ICE_RESET_OICR_RECV, pf->state)) { 689 /* Perform the largest reset requested */ 690 if (test_and_clear_bit(ICE_CORER_RECV, pf->state)) 691 reset_type = ICE_RESET_CORER; 692 if (test_and_clear_bit(ICE_GLOBR_RECV, pf->state)) 693 reset_type = ICE_RESET_GLOBR; 694 if (test_and_clear_bit(ICE_EMPR_RECV, pf->state)) 695 reset_type = ICE_RESET_EMPR; 696 /* return if no valid reset type requested */ 697 if (reset_type == ICE_RESET_INVAL) 698 return; 699 ice_prepare_for_reset(pf, reset_type); 700 701 /* make sure we are ready to rebuild */ 702 if (ice_check_reset(&pf->hw)) { 703 set_bit(ICE_RESET_FAILED, pf->state); 704 } else { 705 /* done with reset. start rebuild */ 706 pf->hw.reset_ongoing = false; 707 ice_rebuild(pf, reset_type); 708 /* clear bit to resume normal operations, but 709 * ICE_NEEDS_RESTART bit is set in case rebuild failed 710 */ 711 clear_bit(ICE_RESET_OICR_RECV, pf->state); 712 clear_bit(ICE_PREPARED_FOR_RESET, pf->state); 713 clear_bit(ICE_PFR_REQ, pf->state); 714 clear_bit(ICE_CORER_REQ, pf->state); 715 clear_bit(ICE_GLOBR_REQ, pf->state); 716 wake_up(&pf->reset_wait_queue); 717 ice_reset_all_vfs(pf); 718 } 719 720 return; 721 } 722 723 /* No pending resets to finish processing. Check for new resets */ 724 if (test_bit(ICE_PFR_REQ, pf->state)) { 725 reset_type = ICE_RESET_PFR; 726 if (pf->lag && pf->lag->bonded) { 727 dev_dbg(ice_pf_to_dev(pf), "PFR on a bonded interface, promoting to CORER\n"); 728 reset_type = ICE_RESET_CORER; 729 } 730 } 731 if (test_bit(ICE_CORER_REQ, pf->state)) 732 reset_type = ICE_RESET_CORER; 733 if (test_bit(ICE_GLOBR_REQ, pf->state)) 734 reset_type = ICE_RESET_GLOBR; 735 /* If no valid reset type requested just return */ 736 if (reset_type == ICE_RESET_INVAL) 737 return; 738 739 /* reset if not already down or busy */ 740 if (!test_bit(ICE_DOWN, pf->state) && 741 !test_bit(ICE_CFG_BUSY, pf->state)) { 742 ice_do_reset(pf, reset_type); 743 } 744 } 745 746 /** 747 * ice_print_topo_conflict - print topology conflict message 748 * @vsi: the VSI whose topology status is being checked 749 */ 750 static void ice_print_topo_conflict(struct ice_vsi *vsi) 751 { 752 switch (vsi->port_info->phy.link_info.topo_media_conflict) { 753 case ICE_AQ_LINK_TOPO_CONFLICT: 754 case ICE_AQ_LINK_MEDIA_CONFLICT: 755 case ICE_AQ_LINK_TOPO_UNREACH_PRT: 756 case ICE_AQ_LINK_TOPO_UNDRUTIL_PRT: 757 case ICE_AQ_LINK_TOPO_UNDRUTIL_MEDIA: 758 netdev_info(vsi->netdev, "Potential misconfiguration of the Ethernet port detected. If it was not intended, please use the Intel (R) Ethernet Port Configuration Tool to address the issue.\n"); 759 break; 760 case ICE_AQ_LINK_TOPO_UNSUPP_MEDIA: 761 if (test_bit(ICE_FLAG_LINK_LENIENT_MODE_ENA, vsi->back->flags)) 762 netdev_warn(vsi->netdev, "An unsupported module type was detected. Refer to the Intel(R) Ethernet Adapters and Devices User Guide for a list of supported modules\n"); 763 else 764 netdev_err(vsi->netdev, "Rx/Tx is disabled on this device because an unsupported module type was detected. Refer to the Intel(R) Ethernet Adapters and Devices User Guide for a list of supported modules.\n"); 765 break; 766 default: 767 break; 768 } 769 } 770 771 /** 772 * ice_print_link_msg - print link up or down message 773 * @vsi: the VSI whose link status is being queried 774 * @isup: boolean for if the link is now up or down 775 */ 776 void ice_print_link_msg(struct ice_vsi *vsi, bool isup) 777 { 778 struct ice_aqc_get_phy_caps_data *caps; 779 const char *an_advertised; 780 const char *fec_req; 781 const char *speed; 782 const char *fec; 783 const char *fc; 784 const char *an; 785 int status; 786 787 if (!vsi) 788 return; 789 790 if (vsi->current_isup == isup) 791 return; 792 793 vsi->current_isup = isup; 794 795 if (!isup) { 796 netdev_info(vsi->netdev, "NIC Link is Down\n"); 797 return; 798 } 799 800 switch (vsi->port_info->phy.link_info.link_speed) { 801 case ICE_AQ_LINK_SPEED_200GB: 802 speed = "200 G"; 803 break; 804 case ICE_AQ_LINK_SPEED_100GB: 805 speed = "100 G"; 806 break; 807 case ICE_AQ_LINK_SPEED_50GB: 808 speed = "50 G"; 809 break; 810 case ICE_AQ_LINK_SPEED_40GB: 811 speed = "40 G"; 812 break; 813 case ICE_AQ_LINK_SPEED_25GB: 814 speed = "25 G"; 815 break; 816 case ICE_AQ_LINK_SPEED_20GB: 817 speed = "20 G"; 818 break; 819 case ICE_AQ_LINK_SPEED_10GB: 820 speed = "10 G"; 821 break; 822 case ICE_AQ_LINK_SPEED_5GB: 823 speed = "5 G"; 824 break; 825 case ICE_AQ_LINK_SPEED_2500MB: 826 speed = "2.5 G"; 827 break; 828 case ICE_AQ_LINK_SPEED_1000MB: 829 speed = "1 G"; 830 break; 831 case ICE_AQ_LINK_SPEED_100MB: 832 speed = "100 M"; 833 break; 834 default: 835 speed = "Unknown "; 836 break; 837 } 838 839 switch (vsi->port_info->fc.current_mode) { 840 case ICE_FC_FULL: 841 fc = "Rx/Tx"; 842 break; 843 case ICE_FC_TX_PAUSE: 844 fc = "Tx"; 845 break; 846 case ICE_FC_RX_PAUSE: 847 fc = "Rx"; 848 break; 849 case ICE_FC_NONE: 850 fc = "None"; 851 break; 852 default: 853 fc = "Unknown"; 854 break; 855 } 856 857 /* Get FEC mode based on negotiated link info */ 858 switch (vsi->port_info->phy.link_info.fec_info) { 859 case ICE_AQ_LINK_25G_RS_528_FEC_EN: 860 case ICE_AQ_LINK_25G_RS_544_FEC_EN: 861 fec = "RS-FEC"; 862 break; 863 case ICE_AQ_LINK_25G_KR_FEC_EN: 864 fec = "FC-FEC/BASE-R"; 865 break; 866 default: 867 fec = "NONE"; 868 break; 869 } 870 871 /* check if autoneg completed, might be false due to not supported */ 872 if (vsi->port_info->phy.link_info.an_info & ICE_AQ_AN_COMPLETED) 873 an = "True"; 874 else 875 an = "False"; 876 877 /* Get FEC mode requested based on PHY caps last SW configuration */ 878 caps = kzalloc_obj(*caps); 879 if (!caps) { 880 fec_req = "Unknown"; 881 an_advertised = "Unknown"; 882 goto done; 883 } 884 885 status = ice_aq_get_phy_caps(vsi->port_info, false, 886 ICE_AQC_REPORT_ACTIVE_CFG, caps, NULL); 887 if (status) 888 netdev_info(vsi->netdev, "Get phy capability failed.\n"); 889 890 an_advertised = ice_is_phy_caps_an_enabled(caps) ? "On" : "Off"; 891 892 if (caps->link_fec_options & ICE_AQC_PHY_FEC_25G_RS_528_REQ || 893 caps->link_fec_options & ICE_AQC_PHY_FEC_25G_RS_544_REQ) 894 fec_req = "RS-FEC"; 895 else if (caps->link_fec_options & ICE_AQC_PHY_FEC_10G_KR_40G_KR4_REQ || 896 caps->link_fec_options & ICE_AQC_PHY_FEC_25G_KR_REQ) 897 fec_req = "FC-FEC/BASE-R"; 898 else 899 fec_req = "NONE"; 900 901 kfree(caps); 902 903 done: 904 netdev_info(vsi->netdev, "NIC Link is up %sbps Full Duplex, Requested FEC: %s, Negotiated FEC: %s, Autoneg Advertised: %s, Autoneg Negotiated: %s, Flow Control: %s\n", 905 speed, fec_req, fec, an_advertised, an, fc); 906 ice_print_topo_conflict(vsi); 907 } 908 909 /** 910 * ice_vsi_link_event - update the VSI's netdev 911 * @vsi: the VSI on which the link event occurred 912 * @link_up: whether or not the VSI needs to be set up or down 913 */ 914 static void ice_vsi_link_event(struct ice_vsi *vsi, bool link_up) 915 { 916 if (!vsi) 917 return; 918 919 if (test_bit(ICE_VSI_DOWN, vsi->state) || !vsi->netdev) 920 return; 921 922 if (vsi->type == ICE_VSI_PF) { 923 if (link_up == netif_carrier_ok(vsi->netdev)) 924 return; 925 926 if (link_up) { 927 netif_carrier_on(vsi->netdev); 928 netif_tx_wake_all_queues(vsi->netdev); 929 } else { 930 netif_carrier_off(vsi->netdev); 931 netif_tx_stop_all_queues(vsi->netdev); 932 } 933 } 934 } 935 936 /** 937 * ice_set_dflt_mib - send a default config MIB to the FW 938 * @pf: private PF struct 939 * 940 * This function sends a default configuration MIB to the FW. 941 * 942 * If this function errors out at any point, the driver is still able to 943 * function. The main impact is that LFC may not operate as expected. 944 * Therefore an error state in this function should be treated with a DBG 945 * message and continue on with driver rebuild/reenable. 946 */ 947 static void ice_set_dflt_mib(struct ice_pf *pf) 948 { 949 struct device *dev = ice_pf_to_dev(pf); 950 u8 mib_type, *buf, *lldpmib = NULL; 951 u16 len, typelen, offset = 0; 952 struct ice_lldp_org_tlv *tlv; 953 struct ice_hw *hw = &pf->hw; 954 u32 ouisubtype; 955 956 mib_type = SET_LOCAL_MIB_TYPE_LOCAL_MIB; 957 lldpmib = kzalloc(ICE_LLDPDU_SIZE, GFP_KERNEL); 958 if (!lldpmib) { 959 dev_dbg(dev, "%s Failed to allocate MIB memory\n", 960 __func__); 961 return; 962 } 963 964 /* Add ETS CFG TLV */ 965 tlv = (struct ice_lldp_org_tlv *)lldpmib; 966 typelen = ((ICE_TLV_TYPE_ORG << ICE_LLDP_TLV_TYPE_S) | 967 ICE_IEEE_ETS_TLV_LEN); 968 tlv->typelen = htons(typelen); 969 ouisubtype = ((ICE_IEEE_8021QAZ_OUI << ICE_LLDP_TLV_OUI_S) | 970 ICE_IEEE_SUBTYPE_ETS_CFG); 971 tlv->ouisubtype = htonl(ouisubtype); 972 973 buf = tlv->tlvinfo; 974 buf[0] = 0; 975 976 /* ETS CFG all UPs map to TC 0. Next 4 (1 - 4) Octets = 0. 977 * Octets 5 - 12 are BW values, set octet 5 to 100% BW. 978 * Octets 13 - 20 are TSA values - leave as zeros 979 */ 980 buf[5] = 0x64; 981 len = FIELD_GET(ICE_LLDP_TLV_LEN_M, typelen); 982 offset += len + 2; 983 tlv = (struct ice_lldp_org_tlv *) 984 ((char *)tlv + sizeof(tlv->typelen) + len); 985 986 /* Add ETS REC TLV */ 987 buf = tlv->tlvinfo; 988 tlv->typelen = htons(typelen); 989 990 ouisubtype = ((ICE_IEEE_8021QAZ_OUI << ICE_LLDP_TLV_OUI_S) | 991 ICE_IEEE_SUBTYPE_ETS_REC); 992 tlv->ouisubtype = htonl(ouisubtype); 993 994 /* First octet of buf is reserved 995 * Octets 1 - 4 map UP to TC - all UPs map to zero 996 * Octets 5 - 12 are BW values - set TC 0 to 100%. 997 * Octets 13 - 20 are TSA value - leave as zeros 998 */ 999 buf[5] = 0x64; 1000 offset += len + 2; 1001 tlv = (struct ice_lldp_org_tlv *) 1002 ((char *)tlv + sizeof(tlv->typelen) + len); 1003 1004 /* Add PFC CFG TLV */ 1005 typelen = ((ICE_TLV_TYPE_ORG << ICE_LLDP_TLV_TYPE_S) | 1006 ICE_IEEE_PFC_TLV_LEN); 1007 tlv->typelen = htons(typelen); 1008 1009 ouisubtype = ((ICE_IEEE_8021QAZ_OUI << ICE_LLDP_TLV_OUI_S) | 1010 ICE_IEEE_SUBTYPE_PFC_CFG); 1011 tlv->ouisubtype = htonl(ouisubtype); 1012 1013 /* Octet 1 left as all zeros - PFC disabled */ 1014 buf[0] = 0x08; 1015 len = FIELD_GET(ICE_LLDP_TLV_LEN_M, typelen); 1016 offset += len + 2; 1017 1018 if (ice_aq_set_lldp_mib(hw, mib_type, (void *)lldpmib, offset, NULL)) 1019 dev_dbg(dev, "%s Failed to set default LLDP MIB\n", __func__); 1020 1021 kfree(lldpmib); 1022 } 1023 1024 /** 1025 * ice_check_phy_fw_load - check if PHY FW load failed 1026 * @pf: pointer to PF struct 1027 * @link_cfg_err: bitmap from the link info structure 1028 * 1029 * check if external PHY FW load failed and print an error message if it did 1030 */ 1031 static void ice_check_phy_fw_load(struct ice_pf *pf, u8 link_cfg_err) 1032 { 1033 if (!(link_cfg_err & ICE_AQ_LINK_EXTERNAL_PHY_LOAD_FAILURE)) { 1034 clear_bit(ICE_FLAG_PHY_FW_LOAD_FAILED, pf->flags); 1035 return; 1036 } 1037 1038 if (test_bit(ICE_FLAG_PHY_FW_LOAD_FAILED, pf->flags)) 1039 return; 1040 1041 if (link_cfg_err & ICE_AQ_LINK_EXTERNAL_PHY_LOAD_FAILURE) { 1042 dev_err(ice_pf_to_dev(pf), "Device failed to load the FW for the external PHY. Please download and install the latest NVM for your device and try again\n"); 1043 set_bit(ICE_FLAG_PHY_FW_LOAD_FAILED, pf->flags); 1044 } 1045 } 1046 1047 /** 1048 * ice_check_module_power 1049 * @pf: pointer to PF struct 1050 * @link_cfg_err: bitmap from the link info structure 1051 * 1052 * check module power level returned by a previous call to aq_get_link_info 1053 * and print error messages if module power level is not supported 1054 */ 1055 static void ice_check_module_power(struct ice_pf *pf, u8 link_cfg_err) 1056 { 1057 /* if module power level is supported, clear the flag */ 1058 if (!(link_cfg_err & (ICE_AQ_LINK_INVAL_MAX_POWER_LIMIT | 1059 ICE_AQ_LINK_MODULE_POWER_UNSUPPORTED))) { 1060 clear_bit(ICE_FLAG_MOD_POWER_UNSUPPORTED, pf->flags); 1061 return; 1062 } 1063 1064 /* if ICE_FLAG_MOD_POWER_UNSUPPORTED was previously set and the 1065 * above block didn't clear this bit, there's nothing to do 1066 */ 1067 if (test_bit(ICE_FLAG_MOD_POWER_UNSUPPORTED, pf->flags)) 1068 return; 1069 1070 if (link_cfg_err & ICE_AQ_LINK_INVAL_MAX_POWER_LIMIT) { 1071 dev_err(ice_pf_to_dev(pf), "The installed module is incompatible with the device's NVM image. Cannot start link\n"); 1072 set_bit(ICE_FLAG_MOD_POWER_UNSUPPORTED, pf->flags); 1073 } else if (link_cfg_err & ICE_AQ_LINK_MODULE_POWER_UNSUPPORTED) { 1074 dev_err(ice_pf_to_dev(pf), "The module's power requirements exceed the device's power supply. Cannot start link\n"); 1075 set_bit(ICE_FLAG_MOD_POWER_UNSUPPORTED, pf->flags); 1076 } 1077 } 1078 1079 /** 1080 * ice_check_link_cfg_err - check if link configuration failed 1081 * @pf: pointer to the PF struct 1082 * @link_cfg_err: bitmap from the link info structure 1083 * 1084 * print if any link configuration failure happens due to the value in the 1085 * link_cfg_err parameter in the link info structure 1086 */ 1087 static void ice_check_link_cfg_err(struct ice_pf *pf, u8 link_cfg_err) 1088 { 1089 ice_check_module_power(pf, link_cfg_err); 1090 ice_check_phy_fw_load(pf, link_cfg_err); 1091 } 1092 1093 /** 1094 * ice_link_event - process the link event 1095 * @pf: PF that the link event is associated with 1096 * @pi: port_info for the port that the link event is associated with 1097 * @link_up: true if the physical link is up and false if it is down 1098 * @link_speed: current link speed received from the link event 1099 * 1100 * Returns 0 on success and negative on failure 1101 */ 1102 static int 1103 ice_link_event(struct ice_pf *pf, struct ice_port_info *pi, bool link_up, 1104 u16 link_speed) 1105 { 1106 struct device *dev = ice_pf_to_dev(pf); 1107 struct ice_phy_info *phy_info; 1108 struct ice_vsi *vsi; 1109 u16 old_link_speed; 1110 bool old_link; 1111 int status; 1112 1113 phy_info = &pi->phy; 1114 phy_info->link_info_old = phy_info->link_info; 1115 1116 old_link = !!(phy_info->link_info_old.link_info & ICE_AQ_LINK_UP); 1117 old_link_speed = phy_info->link_info_old.link_speed; 1118 1119 /* update the link info structures and re-enable link events, 1120 * don't bail on failure due to other book keeping needed 1121 */ 1122 status = ice_update_link_info(pi); 1123 if (status) 1124 dev_dbg(dev, "Failed to update link status on port %d, err %d aq_err %s\n", 1125 pi->lport, status, 1126 libie_aq_str(pi->hw->adminq.sq_last_status)); 1127 1128 ice_check_link_cfg_err(pf, pi->phy.link_info.link_cfg_err); 1129 1130 /* Check if the link state is up after updating link info, and treat 1131 * this event as an UP event since the link is actually UP now. 1132 */ 1133 if (phy_info->link_info.link_info & ICE_AQ_LINK_UP) 1134 link_up = true; 1135 1136 vsi = ice_get_main_vsi(pf); 1137 if (!vsi || !vsi->port_info) 1138 return -EINVAL; 1139 1140 /* turn off PHY if media was removed */ 1141 if (!test_bit(ICE_FLAG_NO_MEDIA, pf->flags) && 1142 !(pi->phy.link_info.link_info & ICE_AQ_MEDIA_AVAILABLE)) { 1143 set_bit(ICE_FLAG_NO_MEDIA, pf->flags); 1144 ice_set_link(vsi, false); 1145 } 1146 1147 /* if the old link up/down and speed is the same as the new */ 1148 if (link_up == old_link && link_speed == old_link_speed) 1149 return 0; 1150 1151 if (!link_up && old_link) 1152 pf->link_down_events++; 1153 1154 ice_ptp_link_change(pf, link_up); 1155 1156 if (ice_is_dcb_active(pf)) { 1157 if (test_bit(ICE_FLAG_DCB_ENA, pf->flags)) 1158 ice_dcb_rebuild(pf); 1159 } else { 1160 if (link_up) 1161 ice_set_dflt_mib(pf); 1162 } 1163 ice_vsi_link_event(vsi, link_up); 1164 ice_print_link_msg(vsi, link_up); 1165 1166 ice_vc_notify_link_state(pf); 1167 1168 return 0; 1169 } 1170 1171 /** 1172 * ice_watchdog_subtask - periodic tasks not using event driven scheduling 1173 * @pf: board private structure 1174 */ 1175 static void ice_watchdog_subtask(struct ice_pf *pf) 1176 { 1177 int i; 1178 1179 /* if interface is down do nothing */ 1180 if (test_bit(ICE_DOWN, pf->state) || 1181 test_bit(ICE_CFG_BUSY, pf->state)) 1182 return; 1183 1184 /* make sure we don't do these things too often */ 1185 if (time_before(jiffies, 1186 pf->serv_tmr_prev + pf->serv_tmr_period)) 1187 return; 1188 1189 pf->serv_tmr_prev = jiffies; 1190 1191 /* Update the stats for active netdevs so the network stack 1192 * can look at updated numbers whenever it cares to 1193 */ 1194 ice_update_pf_stats(pf); 1195 ice_for_each_vsi(pf, i) 1196 if (pf->vsi[i] && pf->vsi[i]->netdev) 1197 ice_update_vsi_stats(pf->vsi[i]); 1198 } 1199 1200 /** 1201 * ice_init_link_events - enable/initialize link events 1202 * @pi: pointer to the port_info instance 1203 * 1204 * Returns -EIO on failure, 0 on success 1205 */ 1206 static int ice_init_link_events(struct ice_port_info *pi) 1207 { 1208 u16 mask; 1209 1210 mask = ~((u16)(ICE_AQ_LINK_EVENT_UPDOWN | ICE_AQ_LINK_EVENT_MEDIA_NA | 1211 ICE_AQ_LINK_EVENT_MODULE_QUAL_FAIL | 1212 ICE_AQ_LINK_EVENT_PHY_FW_LOAD_FAIL)); 1213 1214 if (ice_aq_set_event_mask(pi->hw, pi->lport, mask, NULL)) { 1215 dev_dbg(ice_hw_to_dev(pi->hw), "Failed to set link event mask for port %d\n", 1216 pi->lport); 1217 return -EIO; 1218 } 1219 1220 if (ice_aq_get_link_info(pi, true, NULL, NULL)) { 1221 dev_dbg(ice_hw_to_dev(pi->hw), "Failed to enable link events for port %d\n", 1222 pi->lport); 1223 return -EIO; 1224 } 1225 1226 return 0; 1227 } 1228 1229 /** 1230 * ice_handle_link_event - handle link event via ARQ 1231 * @pf: PF that the link event is associated with 1232 * @event: event structure containing link status info 1233 */ 1234 static int 1235 ice_handle_link_event(struct ice_pf *pf, struct ice_rq_event_info *event) 1236 { 1237 struct ice_aqc_get_link_status_data *link_data; 1238 struct ice_port_info *port_info; 1239 int status; 1240 1241 link_data = (struct ice_aqc_get_link_status_data *)event->msg_buf; 1242 port_info = pf->hw.port_info; 1243 if (!port_info) 1244 return -EINVAL; 1245 1246 status = ice_link_event(pf, port_info, 1247 !!(link_data->link_info & ICE_AQ_LINK_UP), 1248 le16_to_cpu(link_data->link_speed)); 1249 if (status) 1250 dev_dbg(ice_pf_to_dev(pf), "Could not process link event, error %d\n", 1251 status); 1252 1253 return status; 1254 } 1255 1256 /** 1257 * ice_aq_prep_for_event - Prepare to wait for an AdminQ event from firmware 1258 * @pf: pointer to the PF private structure 1259 * @task: intermediate helper storage and identifier for waiting 1260 * @opcode: the opcode to wait for 1261 * 1262 * Prepares to wait for a specific AdminQ completion event on the ARQ for 1263 * a given PF. Actual wait would be done by a call to ice_aq_wait_for_event(). 1264 * 1265 * Calls are separated to allow caller registering for event before sending 1266 * the command, which mitigates a race between registering and FW responding. 1267 * 1268 * To obtain only the descriptor contents, pass an task->event with null 1269 * msg_buf. If the complete data buffer is desired, allocate the 1270 * task->event.msg_buf with enough space ahead of time. 1271 */ 1272 void ice_aq_prep_for_event(struct ice_pf *pf, struct ice_aq_task *task, 1273 u16 opcode) 1274 { 1275 INIT_HLIST_NODE(&task->entry); 1276 task->opcode = opcode; 1277 task->state = ICE_AQ_TASK_WAITING; 1278 1279 spin_lock_bh(&pf->aq_wait_lock); 1280 hlist_add_head(&task->entry, &pf->aq_wait_list); 1281 spin_unlock_bh(&pf->aq_wait_lock); 1282 } 1283 1284 /** 1285 * ice_aq_wait_for_event - Wait for an AdminQ event from firmware 1286 * @pf: pointer to the PF private structure 1287 * @task: ptr prepared by ice_aq_prep_for_event() 1288 * @timeout: how long to wait, in jiffies 1289 * 1290 * Waits for a specific AdminQ completion event on the ARQ for a given PF. The 1291 * current thread will be put to sleep until the specified event occurs or 1292 * until the given timeout is reached. 1293 * 1294 * Returns: zero on success, or a negative error code on failure. 1295 */ 1296 int ice_aq_wait_for_event(struct ice_pf *pf, struct ice_aq_task *task, 1297 unsigned long timeout) 1298 { 1299 enum ice_aq_task_state *state = &task->state; 1300 struct device *dev = ice_pf_to_dev(pf); 1301 unsigned long start = jiffies; 1302 long ret; 1303 int err; 1304 1305 ret = wait_event_interruptible_timeout(pf->aq_wait_queue, 1306 *state != ICE_AQ_TASK_WAITING, 1307 timeout); 1308 switch (*state) { 1309 case ICE_AQ_TASK_NOT_PREPARED: 1310 WARN(1, "call to %s without ice_aq_prep_for_event()", __func__); 1311 err = -EINVAL; 1312 break; 1313 case ICE_AQ_TASK_WAITING: 1314 err = ret < 0 ? ret : -ETIMEDOUT; 1315 break; 1316 case ICE_AQ_TASK_CANCELED: 1317 err = ret < 0 ? ret : -ECANCELED; 1318 break; 1319 case ICE_AQ_TASK_COMPLETE: 1320 err = ret < 0 ? ret : 0; 1321 break; 1322 default: 1323 WARN(1, "Unexpected AdminQ wait task state %u", *state); 1324 err = -EINVAL; 1325 break; 1326 } 1327 1328 dev_dbg(dev, "Waited %u msecs (max %u msecs) for firmware response to op 0x%04x\n", 1329 jiffies_to_msecs(jiffies - start), 1330 jiffies_to_msecs(timeout), 1331 task->opcode); 1332 1333 spin_lock_bh(&pf->aq_wait_lock); 1334 hlist_del(&task->entry); 1335 spin_unlock_bh(&pf->aq_wait_lock); 1336 1337 return err; 1338 } 1339 1340 /** 1341 * ice_aq_check_events - Check if any thread is waiting for an AdminQ event 1342 * @pf: pointer to the PF private structure 1343 * @opcode: the opcode of the event 1344 * @event: the event to check 1345 * 1346 * Loops over the current list of pending threads waiting for an AdminQ event. 1347 * For each matching task, copy the contents of the event into the task 1348 * structure and wake up the thread. 1349 * 1350 * If multiple threads wait for the same opcode, they will all be woken up. 1351 * 1352 * Note that event->msg_buf will only be duplicated if the event has a buffer 1353 * with enough space already allocated. Otherwise, only the descriptor and 1354 * message length will be copied. 1355 * 1356 * Returns: true if an event was found, false otherwise 1357 */ 1358 static void ice_aq_check_events(struct ice_pf *pf, u16 opcode, 1359 struct ice_rq_event_info *event) 1360 { 1361 struct ice_rq_event_info *task_ev; 1362 struct ice_aq_task *task; 1363 bool found = false; 1364 1365 spin_lock_bh(&pf->aq_wait_lock); 1366 hlist_for_each_entry(task, &pf->aq_wait_list, entry) { 1367 if (task->state != ICE_AQ_TASK_WAITING) 1368 continue; 1369 if (task->opcode != opcode) 1370 continue; 1371 1372 task_ev = &task->event; 1373 memcpy(&task_ev->desc, &event->desc, sizeof(event->desc)); 1374 task_ev->msg_len = event->msg_len; 1375 1376 /* Only copy the data buffer if a destination was set */ 1377 if (task_ev->msg_buf && task_ev->buf_len >= event->buf_len) { 1378 memcpy(task_ev->msg_buf, event->msg_buf, 1379 event->buf_len); 1380 task_ev->buf_len = event->buf_len; 1381 } 1382 1383 task->state = ICE_AQ_TASK_COMPLETE; 1384 found = true; 1385 } 1386 spin_unlock_bh(&pf->aq_wait_lock); 1387 1388 if (found) 1389 wake_up(&pf->aq_wait_queue); 1390 } 1391 1392 /** 1393 * ice_aq_cancel_waiting_tasks - Immediately cancel all waiting tasks 1394 * @pf: the PF private structure 1395 * 1396 * Set all waiting tasks to ICE_AQ_TASK_CANCELED, and wake up their threads. 1397 * This will then cause ice_aq_wait_for_event to exit with -ECANCELED. 1398 */ 1399 static void ice_aq_cancel_waiting_tasks(struct ice_pf *pf) 1400 { 1401 struct ice_aq_task *task; 1402 1403 spin_lock_bh(&pf->aq_wait_lock); 1404 hlist_for_each_entry(task, &pf->aq_wait_list, entry) 1405 task->state = ICE_AQ_TASK_CANCELED; 1406 spin_unlock_bh(&pf->aq_wait_lock); 1407 1408 wake_up(&pf->aq_wait_queue); 1409 } 1410 1411 #define ICE_MBX_OVERFLOW_WATERMARK 64 1412 1413 /** 1414 * __ice_clean_ctrlq - helper function to clean controlq rings 1415 * @pf: ptr to struct ice_pf 1416 * @q_type: specific Control queue type 1417 */ 1418 static int __ice_clean_ctrlq(struct ice_pf *pf, enum ice_ctl_q q_type) 1419 { 1420 struct device *dev = ice_pf_to_dev(pf); 1421 struct ice_rq_event_info event; 1422 struct ice_hw *hw = &pf->hw; 1423 struct ice_ctl_q_info *cq; 1424 u16 pending, i = 0; 1425 const char *qtype; 1426 u32 oldval, val; 1427 1428 /* Do not clean control queue if/when PF reset fails */ 1429 if (test_bit(ICE_RESET_FAILED, pf->state)) 1430 return 0; 1431 1432 switch (q_type) { 1433 case ICE_CTL_Q_ADMIN: 1434 cq = &hw->adminq; 1435 qtype = "Admin"; 1436 break; 1437 case ICE_CTL_Q_SB: 1438 cq = &hw->sbq; 1439 qtype = "Sideband"; 1440 break; 1441 case ICE_CTL_Q_MAILBOX: 1442 cq = &hw->mailboxq; 1443 qtype = "Mailbox"; 1444 /* we are going to try to detect a malicious VF, so set the 1445 * state to begin detection 1446 */ 1447 hw->mbx_snapshot.mbx_buf.state = ICE_MAL_VF_DETECT_STATE_NEW_SNAPSHOT; 1448 break; 1449 default: 1450 dev_warn(dev, "Unknown control queue type 0x%x\n", q_type); 1451 return 0; 1452 } 1453 1454 /* check for error indications - PF_xx_AxQLEN register layout for 1455 * FW/MBX/SB are identical so just use defines for PF_FW_AxQLEN. 1456 */ 1457 val = rd32(hw, cq->rq.len); 1458 if (val & (PF_FW_ARQLEN_ARQVFE_M | PF_FW_ARQLEN_ARQOVFL_M | 1459 PF_FW_ARQLEN_ARQCRIT_M)) { 1460 oldval = val; 1461 if (val & PF_FW_ARQLEN_ARQVFE_M) 1462 dev_dbg(dev, "%s Receive Queue VF Error detected\n", 1463 qtype); 1464 if (val & PF_FW_ARQLEN_ARQOVFL_M) { 1465 dev_dbg(dev, "%s Receive Queue Overflow Error detected\n", 1466 qtype); 1467 } 1468 if (val & PF_FW_ARQLEN_ARQCRIT_M) 1469 dev_dbg(dev, "%s Receive Queue Critical Error detected\n", 1470 qtype); 1471 val &= ~(PF_FW_ARQLEN_ARQVFE_M | PF_FW_ARQLEN_ARQOVFL_M | 1472 PF_FW_ARQLEN_ARQCRIT_M); 1473 if (oldval != val) 1474 wr32(hw, cq->rq.len, val); 1475 } 1476 1477 val = rd32(hw, cq->sq.len); 1478 if (val & (PF_FW_ATQLEN_ATQVFE_M | PF_FW_ATQLEN_ATQOVFL_M | 1479 PF_FW_ATQLEN_ATQCRIT_M)) { 1480 oldval = val; 1481 if (val & PF_FW_ATQLEN_ATQVFE_M) 1482 dev_dbg(dev, "%s Send Queue VF Error detected\n", 1483 qtype); 1484 if (val & PF_FW_ATQLEN_ATQOVFL_M) { 1485 dev_dbg(dev, "%s Send Queue Overflow Error detected\n", 1486 qtype); 1487 } 1488 if (val & PF_FW_ATQLEN_ATQCRIT_M) 1489 dev_dbg(dev, "%s Send Queue Critical Error detected\n", 1490 qtype); 1491 val &= ~(PF_FW_ATQLEN_ATQVFE_M | PF_FW_ATQLEN_ATQOVFL_M | 1492 PF_FW_ATQLEN_ATQCRIT_M); 1493 if (oldval != val) 1494 wr32(hw, cq->sq.len, val); 1495 } 1496 1497 event.buf_len = cq->rq_buf_size; 1498 event.msg_buf = kzalloc(event.buf_len, GFP_KERNEL); 1499 if (!event.msg_buf) 1500 return 0; 1501 1502 do { 1503 struct ice_mbx_data data = {}; 1504 u16 opcode; 1505 int ret; 1506 1507 ret = ice_clean_rq_elem(hw, cq, &event, &pending); 1508 if (ret == -EALREADY) 1509 break; 1510 if (ret) { 1511 dev_err(dev, "%s Receive Queue event error %d\n", qtype, 1512 ret); 1513 break; 1514 } 1515 1516 opcode = le16_to_cpu(event.desc.opcode); 1517 1518 /* Notify any thread that might be waiting for this event */ 1519 ice_aq_check_events(pf, opcode, &event); 1520 1521 switch (opcode) { 1522 case ice_aqc_opc_get_link_status: 1523 if (ice_handle_link_event(pf, &event)) 1524 dev_err(dev, "Could not handle link event\n"); 1525 break; 1526 case ice_aqc_opc_event_lan_overflow: 1527 ice_vf_lan_overflow_event(pf, &event); 1528 break; 1529 case ice_mbx_opc_send_msg_to_pf: 1530 if (ice_is_feature_supported(pf, ICE_F_MBX_LIMIT)) { 1531 ice_vc_process_vf_msg(pf, &event, NULL); 1532 ice_mbx_vf_dec_trig_e830(hw, &event); 1533 } else { 1534 u16 val = hw->mailboxq.num_rq_entries; 1535 1536 data.max_num_msgs_mbx = val; 1537 val = ICE_MBX_OVERFLOW_WATERMARK; 1538 data.async_watermark_val = val; 1539 data.num_msg_proc = i; 1540 data.num_pending_arq = pending; 1541 1542 ice_vc_process_vf_msg(pf, &event, &data); 1543 } 1544 break; 1545 case ice_aqc_opc_fw_logs_event: 1546 libie_get_fwlog_data(&hw->fwlog, event.msg_buf, 1547 le16_to_cpu(event.desc.datalen)); 1548 break; 1549 case ice_aqc_opc_lldp_set_mib_change: 1550 ice_dcb_process_lldp_set_mib_change(pf, &event); 1551 break; 1552 case ice_aqc_opc_get_health_status: 1553 ice_process_health_status_event(pf, &event); 1554 break; 1555 default: 1556 dev_dbg(dev, "%s Receive Queue unknown event 0x%04x ignored\n", 1557 qtype, opcode); 1558 break; 1559 } 1560 } while (pending && (i++ < ICE_DFLT_IRQ_WORK)); 1561 1562 kfree(event.msg_buf); 1563 1564 return pending && (i == ICE_DFLT_IRQ_WORK); 1565 } 1566 1567 /** 1568 * ice_ctrlq_pending - check if there is a difference between ntc and ntu 1569 * @hw: pointer to hardware info 1570 * @cq: control queue information 1571 * 1572 * returns true if there are pending messages in a queue, false if there aren't 1573 */ 1574 static bool ice_ctrlq_pending(struct ice_hw *hw, struct ice_ctl_q_info *cq) 1575 { 1576 u16 ntu; 1577 1578 ntu = (u16)(rd32(hw, cq->rq.head) & cq->rq.head_mask); 1579 return cq->rq.next_to_clean != ntu; 1580 } 1581 1582 /** 1583 * ice_clean_adminq_subtask - clean the AdminQ rings 1584 * @pf: board private structure 1585 */ 1586 static void ice_clean_adminq_subtask(struct ice_pf *pf) 1587 { 1588 struct ice_hw *hw = &pf->hw; 1589 1590 if (!test_bit(ICE_ADMINQ_EVENT_PENDING, pf->state)) 1591 return; 1592 1593 if (__ice_clean_ctrlq(pf, ICE_CTL_Q_ADMIN)) 1594 return; 1595 1596 clear_bit(ICE_ADMINQ_EVENT_PENDING, pf->state); 1597 1598 /* There might be a situation where new messages arrive to a control 1599 * queue between processing the last message and clearing the 1600 * EVENT_PENDING bit. So before exiting, check queue head again (using 1601 * ice_ctrlq_pending) and process new messages if any. 1602 */ 1603 if (ice_ctrlq_pending(hw, &hw->adminq)) 1604 __ice_clean_ctrlq(pf, ICE_CTL_Q_ADMIN); 1605 1606 ice_flush(hw); 1607 } 1608 1609 /** 1610 * ice_clean_mailboxq_subtask - clean the MailboxQ rings 1611 * @pf: board private structure 1612 */ 1613 static void ice_clean_mailboxq_subtask(struct ice_pf *pf) 1614 { 1615 struct ice_hw *hw = &pf->hw; 1616 1617 if (!test_bit(ICE_MAILBOXQ_EVENT_PENDING, pf->state)) 1618 return; 1619 1620 if (__ice_clean_ctrlq(pf, ICE_CTL_Q_MAILBOX)) 1621 return; 1622 1623 clear_bit(ICE_MAILBOXQ_EVENT_PENDING, pf->state); 1624 1625 if (ice_ctrlq_pending(hw, &hw->mailboxq)) 1626 __ice_clean_ctrlq(pf, ICE_CTL_Q_MAILBOX); 1627 1628 ice_flush(hw); 1629 } 1630 1631 /** 1632 * ice_clean_sbq_subtask - clean the Sideband Queue rings 1633 * @pf: board private structure 1634 */ 1635 static void ice_clean_sbq_subtask(struct ice_pf *pf) 1636 { 1637 struct ice_hw *hw = &pf->hw; 1638 1639 /* if mac_type is not generic, sideband is not supported 1640 * and there's nothing to do here 1641 */ 1642 if (!ice_is_generic_mac(hw)) { 1643 clear_bit(ICE_SIDEBANDQ_EVENT_PENDING, pf->state); 1644 return; 1645 } 1646 1647 if (!test_bit(ICE_SIDEBANDQ_EVENT_PENDING, pf->state)) 1648 return; 1649 1650 if (__ice_clean_ctrlq(pf, ICE_CTL_Q_SB)) 1651 return; 1652 1653 clear_bit(ICE_SIDEBANDQ_EVENT_PENDING, pf->state); 1654 1655 if (ice_ctrlq_pending(hw, &hw->sbq)) 1656 __ice_clean_ctrlq(pf, ICE_CTL_Q_SB); 1657 1658 ice_flush(hw); 1659 } 1660 1661 /** 1662 * ice_service_task_schedule - schedule the service task to wake up 1663 * @pf: board private structure 1664 * 1665 * If not already scheduled, this puts the task into the work queue. 1666 */ 1667 void ice_service_task_schedule(struct ice_pf *pf) 1668 { 1669 if (!test_bit(ICE_SERVICE_DIS, pf->state) && 1670 !test_and_set_bit(ICE_SERVICE_SCHED, pf->state) && 1671 !test_bit(ICE_NEEDS_RESTART, pf->state)) 1672 queue_work(ice_wq, &pf->serv_task); 1673 } 1674 1675 /** 1676 * ice_service_task_complete - finish up the service task 1677 * @pf: board private structure 1678 */ 1679 static void ice_service_task_complete(struct ice_pf *pf) 1680 { 1681 WARN_ON(!test_bit(ICE_SERVICE_SCHED, pf->state)); 1682 1683 /* force memory (pf->state) to sync before next service task */ 1684 smp_mb__before_atomic(); 1685 clear_bit(ICE_SERVICE_SCHED, pf->state); 1686 } 1687 1688 /** 1689 * ice_service_task_stop - stop service task and cancel works 1690 * @pf: board private structure 1691 * 1692 * Return 0 if the ICE_SERVICE_DIS bit was not already set, 1693 * 1 otherwise. 1694 */ 1695 static int ice_service_task_stop(struct ice_pf *pf) 1696 { 1697 int ret; 1698 1699 ret = test_and_set_bit(ICE_SERVICE_DIS, pf->state); 1700 1701 if (pf->serv_tmr.function) 1702 timer_delete_sync(&pf->serv_tmr); 1703 if (pf->serv_task.func) 1704 cancel_work_sync(&pf->serv_task); 1705 1706 clear_bit(ICE_SERVICE_SCHED, pf->state); 1707 return ret; 1708 } 1709 1710 /** 1711 * ice_service_task_restart - restart service task and schedule works 1712 * @pf: board private structure 1713 * 1714 * This function is needed for suspend and resume works (e.g WoL scenario) 1715 */ 1716 static void ice_service_task_restart(struct ice_pf *pf) 1717 { 1718 clear_bit(ICE_SERVICE_DIS, pf->state); 1719 ice_service_task_schedule(pf); 1720 } 1721 1722 /** 1723 * ice_service_timer - timer callback to schedule service task 1724 * @t: pointer to timer_list 1725 */ 1726 static void ice_service_timer(struct timer_list *t) 1727 { 1728 struct ice_pf *pf = timer_container_of(pf, t, serv_tmr); 1729 1730 mod_timer(&pf->serv_tmr, round_jiffies(pf->serv_tmr_period + jiffies)); 1731 ice_service_task_schedule(pf); 1732 } 1733 1734 /** 1735 * ice_mdd_maybe_reset_vf - reset VF after MDD event 1736 * @pf: pointer to the PF structure 1737 * @vf: pointer to the VF structure 1738 * @reset_vf_tx: whether Tx MDD has occurred 1739 * @reset_vf_rx: whether Rx MDD has occurred 1740 * 1741 * Since the queue can get stuck on VF MDD events, the PF can be configured to 1742 * automatically reset the VF by enabling the private ethtool flag 1743 * mdd-auto-reset-vf. 1744 */ 1745 static void ice_mdd_maybe_reset_vf(struct ice_pf *pf, struct ice_vf *vf, 1746 bool reset_vf_tx, bool reset_vf_rx) 1747 { 1748 struct device *dev = ice_pf_to_dev(pf); 1749 1750 if (!test_bit(ICE_FLAG_MDD_AUTO_RESET_VF, pf->flags)) 1751 return; 1752 1753 /* VF MDD event counters will be cleared by reset, so print the event 1754 * prior to reset. 1755 */ 1756 if (reset_vf_tx) 1757 ice_print_vf_tx_mdd_event(vf); 1758 1759 if (reset_vf_rx) 1760 ice_print_vf_rx_mdd_event(vf); 1761 1762 dev_info(dev, "PF-to-VF reset on PF %d VF %d due to MDD event\n", 1763 pf->hw.pf_id, vf->vf_id); 1764 ice_reset_vf(vf, ICE_VF_RESET_NOTIFY | ICE_VF_RESET_LOCK); 1765 } 1766 1767 /** 1768 * ice_handle_mdd_event - handle malicious driver detect event 1769 * @pf: pointer to the PF structure 1770 * 1771 * Called from service task. OICR interrupt handler indicates MDD event. 1772 * VF MDD logging is guarded by net_ratelimit. Additional PF and VF log 1773 * messages are wrapped by netif_msg_[rx|tx]_err. Since VF Rx MDD events 1774 * disable the queue, the PF can be configured to reset the VF using ethtool 1775 * private flag mdd-auto-reset-vf. 1776 */ 1777 static void ice_handle_mdd_event(struct ice_pf *pf) 1778 { 1779 struct device *dev = ice_pf_to_dev(pf); 1780 struct ice_hw *hw = &pf->hw; 1781 struct ice_vf *vf; 1782 unsigned int bkt; 1783 u32 reg; 1784 1785 if (!test_and_clear_bit(ICE_MDD_EVENT_PENDING, pf->state)) { 1786 /* Since the VF MDD event logging is rate limited, check if 1787 * there are pending MDD events. 1788 */ 1789 ice_print_vfs_mdd_events(pf); 1790 return; 1791 } 1792 1793 /* find what triggered an MDD event */ 1794 reg = rd32(hw, GL_MDET_TX_PQM); 1795 if (reg & GL_MDET_TX_PQM_VALID_M) { 1796 u8 pf_num = FIELD_GET(GL_MDET_TX_PQM_PF_NUM_M, reg); 1797 u16 vf_num = FIELD_GET(GL_MDET_TX_PQM_VF_NUM_M, reg); 1798 u8 event = FIELD_GET(GL_MDET_TX_PQM_MAL_TYPE_M, reg); 1799 u16 queue = FIELD_GET(GL_MDET_TX_PQM_QNUM_M, reg); 1800 1801 if (netif_msg_tx_err(pf)) 1802 dev_info(dev, "Malicious Driver Detection event %d on TX queue %d PF# %d VF# %d\n", 1803 event, queue, pf_num, vf_num); 1804 ice_report_mdd_event(pf, ICE_MDD_SRC_TX_PQM, pf_num, vf_num, 1805 event, queue); 1806 wr32(hw, GL_MDET_TX_PQM, 0xffffffff); 1807 } 1808 1809 reg = rd32(hw, GL_MDET_TX_TCLAN_BY_MAC(hw)); 1810 if (reg & GL_MDET_TX_TCLAN_VALID_M) { 1811 u8 pf_num = FIELD_GET(GL_MDET_TX_TCLAN_PF_NUM_M, reg); 1812 u16 vf_num = FIELD_GET(GL_MDET_TX_TCLAN_VF_NUM_M, reg); 1813 u8 event = FIELD_GET(GL_MDET_TX_TCLAN_MAL_TYPE_M, reg); 1814 u16 queue = FIELD_GET(GL_MDET_TX_TCLAN_QNUM_M, reg); 1815 1816 if (netif_msg_tx_err(pf)) 1817 dev_info(dev, "Malicious Driver Detection event %d on TX queue %d PF# %d VF# %d\n", 1818 event, queue, pf_num, vf_num); 1819 ice_report_mdd_event(pf, ICE_MDD_SRC_TX_TCLAN, pf_num, vf_num, 1820 event, queue); 1821 wr32(hw, GL_MDET_TX_TCLAN_BY_MAC(hw), U32_MAX); 1822 } 1823 1824 reg = rd32(hw, GL_MDET_RX); 1825 if (reg & GL_MDET_RX_VALID_M) { 1826 u8 pf_num = FIELD_GET(GL_MDET_RX_PF_NUM_M, reg); 1827 u16 vf_num = FIELD_GET(GL_MDET_RX_VF_NUM_M, reg); 1828 u8 event = FIELD_GET(GL_MDET_RX_MAL_TYPE_M, reg); 1829 u16 queue = FIELD_GET(GL_MDET_RX_QNUM_M, reg); 1830 1831 if (netif_msg_rx_err(pf)) 1832 dev_info(dev, "Malicious Driver Detection event %d on RX queue %d PF# %d VF# %d\n", 1833 event, queue, pf_num, vf_num); 1834 ice_report_mdd_event(pf, ICE_MDD_SRC_RX, pf_num, vf_num, event, 1835 queue); 1836 wr32(hw, GL_MDET_RX, 0xffffffff); 1837 } 1838 1839 /* check to see if this PF caused an MDD event */ 1840 reg = rd32(hw, PF_MDET_TX_PQM); 1841 if (reg & PF_MDET_TX_PQM_VALID_M) { 1842 wr32(hw, PF_MDET_TX_PQM, 0xFFFF); 1843 if (netif_msg_tx_err(pf)) 1844 dev_info(dev, "Malicious Driver Detection event TX_PQM detected on PF\n"); 1845 } 1846 1847 reg = rd32(hw, PF_MDET_TX_TCLAN_BY_MAC(hw)); 1848 if (reg & PF_MDET_TX_TCLAN_VALID_M) { 1849 wr32(hw, PF_MDET_TX_TCLAN_BY_MAC(hw), 0xffff); 1850 if (netif_msg_tx_err(pf)) 1851 dev_info(dev, "Malicious Driver Detection event TX_TCLAN detected on PF\n"); 1852 } 1853 1854 reg = rd32(hw, PF_MDET_RX); 1855 if (reg & PF_MDET_RX_VALID_M) { 1856 wr32(hw, PF_MDET_RX, 0xFFFF); 1857 if (netif_msg_rx_err(pf)) 1858 dev_info(dev, "Malicious Driver Detection event RX detected on PF\n"); 1859 } 1860 1861 /* Check to see if one of the VFs caused an MDD event, and then 1862 * increment counters and set print pending 1863 */ 1864 mutex_lock(&pf->vfs.table_lock); 1865 ice_for_each_vf(pf, bkt, vf) { 1866 bool reset_vf_tx = false, reset_vf_rx = false; 1867 1868 reg = rd32(hw, VP_MDET_TX_PQM(vf->vf_id)); 1869 if (reg & VP_MDET_TX_PQM_VALID_M) { 1870 wr32(hw, VP_MDET_TX_PQM(vf->vf_id), 0xFFFF); 1871 vf->mdd_tx_events.count++; 1872 set_bit(ICE_MDD_VF_PRINT_PENDING, pf->state); 1873 if (netif_msg_tx_err(pf)) 1874 dev_info(dev, "Malicious Driver Detection event TX_PQM detected on VF %d\n", 1875 vf->vf_id); 1876 1877 reset_vf_tx = true; 1878 } 1879 1880 reg = rd32(hw, VP_MDET_TX_TCLAN(vf->vf_id)); 1881 if (reg & VP_MDET_TX_TCLAN_VALID_M) { 1882 wr32(hw, VP_MDET_TX_TCLAN(vf->vf_id), 0xFFFF); 1883 vf->mdd_tx_events.count++; 1884 set_bit(ICE_MDD_VF_PRINT_PENDING, pf->state); 1885 if (netif_msg_tx_err(pf)) 1886 dev_info(dev, "Malicious Driver Detection event TX_TCLAN detected on VF %d\n", 1887 vf->vf_id); 1888 1889 reset_vf_tx = true; 1890 } 1891 1892 reg = rd32(hw, VP_MDET_TX_TDPU(vf->vf_id)); 1893 if (reg & VP_MDET_TX_TDPU_VALID_M) { 1894 wr32(hw, VP_MDET_TX_TDPU(vf->vf_id), 0xFFFF); 1895 vf->mdd_tx_events.count++; 1896 set_bit(ICE_MDD_VF_PRINT_PENDING, pf->state); 1897 if (netif_msg_tx_err(pf)) 1898 dev_info(dev, "Malicious Driver Detection event TX_TDPU detected on VF %d\n", 1899 vf->vf_id); 1900 1901 reset_vf_tx = true; 1902 } 1903 1904 reg = rd32(hw, VP_MDET_RX(vf->vf_id)); 1905 if (reg & VP_MDET_RX_VALID_M) { 1906 wr32(hw, VP_MDET_RX(vf->vf_id), 0xFFFF); 1907 vf->mdd_rx_events.count++; 1908 set_bit(ICE_MDD_VF_PRINT_PENDING, pf->state); 1909 if (netif_msg_rx_err(pf)) 1910 dev_info(dev, "Malicious Driver Detection event RX detected on VF %d\n", 1911 vf->vf_id); 1912 1913 reset_vf_rx = true; 1914 } 1915 1916 if (reset_vf_tx || reset_vf_rx) 1917 ice_mdd_maybe_reset_vf(pf, vf, reset_vf_tx, 1918 reset_vf_rx); 1919 } 1920 mutex_unlock(&pf->vfs.table_lock); 1921 1922 ice_print_vfs_mdd_events(pf); 1923 } 1924 1925 /** 1926 * ice_init_nvm_phy_type - Initialize the NVM PHY type 1927 * @pi: port info structure 1928 * 1929 * Initialize nvm_phy_type_[low|high] for link lenient mode support 1930 */ 1931 static int ice_init_nvm_phy_type(struct ice_port_info *pi) 1932 { 1933 struct ice_aqc_get_phy_caps_data *pcaps; 1934 struct ice_pf *pf = pi->hw->back; 1935 int err; 1936 1937 pcaps = kzalloc_obj(*pcaps); 1938 if (!pcaps) 1939 return -ENOMEM; 1940 1941 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_TOPO_CAP_NO_MEDIA, 1942 pcaps, NULL); 1943 1944 if (err) { 1945 dev_err(ice_pf_to_dev(pf), "Get PHY capability failed.\n"); 1946 goto out; 1947 } 1948 1949 pf->nvm_phy_type_hi = pcaps->phy_type_high; 1950 pf->nvm_phy_type_lo = pcaps->phy_type_low; 1951 1952 out: 1953 kfree(pcaps); 1954 return err; 1955 } 1956 1957 /** 1958 * ice_init_link_dflt_override - Initialize link default override 1959 * @pi: port info structure 1960 * 1961 * Initialize link default override and PHY total port shutdown during probe 1962 */ 1963 static void ice_init_link_dflt_override(struct ice_port_info *pi) 1964 { 1965 struct ice_link_default_override_tlv *ldo; 1966 struct ice_pf *pf = pi->hw->back; 1967 1968 ldo = &pf->link_dflt_override; 1969 if (ice_get_link_default_override(ldo, pi)) 1970 return; 1971 1972 if (!(ldo->options & ICE_LINK_OVERRIDE_PORT_DIS)) 1973 return; 1974 1975 /* Enable Total Port Shutdown (override/replace link-down-on-close 1976 * ethtool private flag) for ports with Port Disable bit set. 1977 */ 1978 set_bit(ICE_FLAG_TOTAL_PORT_SHUTDOWN_ENA, pf->flags); 1979 set_bit(ICE_FLAG_LINK_DOWN_ON_CLOSE_ENA, pf->flags); 1980 } 1981 1982 /** 1983 * ice_init_phy_cfg_dflt_override - Initialize PHY cfg default override settings 1984 * @pi: port info structure 1985 * 1986 * If default override is enabled, initialize the user PHY cfg speed and FEC 1987 * settings using the default override mask from the NVM. 1988 * 1989 * The PHY should only be configured with the default override settings the 1990 * first time media is available. The ICE_LINK_DEFAULT_OVERRIDE_PENDING state 1991 * is used to indicate that the user PHY cfg default override is initialized 1992 * and the PHY has not been configured with the default override settings. The 1993 * state is set here, and cleared in ice_phy_cfg the first time the PHY is 1994 * configured. 1995 * 1996 * This function should be called only if the FW doesn't support default 1997 * configuration mode, as reported by ice_fw_supports_report_dflt_cfg. 1998 */ 1999 static void ice_init_phy_cfg_dflt_override(struct ice_port_info *pi) 2000 { 2001 struct ice_link_default_override_tlv *ldo; 2002 struct ice_aqc_set_phy_cfg_data *cfg; 2003 struct ice_phy_info *phy = &pi->phy; 2004 struct ice_pf *pf = pi->hw->back; 2005 2006 ldo = &pf->link_dflt_override; 2007 2008 /* If link default override is enabled, use to mask NVM PHY capabilities 2009 * for speed and FEC default configuration. 2010 */ 2011 cfg = &phy->curr_user_phy_cfg; 2012 2013 if (ldo->phy_type_low || ldo->phy_type_high) { 2014 cfg->phy_type_low = pf->nvm_phy_type_lo & 2015 cpu_to_le64(ldo->phy_type_low); 2016 cfg->phy_type_high = pf->nvm_phy_type_hi & 2017 cpu_to_le64(ldo->phy_type_high); 2018 } 2019 cfg->link_fec_opt = ldo->fec_options; 2020 phy->curr_user_fec_req = ICE_FEC_AUTO; 2021 2022 set_bit(ICE_LINK_DEFAULT_OVERRIDE_PENDING, pf->state); 2023 } 2024 2025 /** 2026 * ice_init_phy_user_cfg - Initialize the PHY user configuration 2027 * @pi: port info structure 2028 * 2029 * Initialize the current user PHY configuration, speed, FEC, and FC requested 2030 * mode to default. The PHY defaults are from get PHY capabilities topology 2031 * with media so call when media is first available. An error is returned if 2032 * called when media is not available. The PHY initialization completed state is 2033 * set here. 2034 * 2035 * These configurations are used when setting PHY 2036 * configuration. The user PHY configuration is updated on set PHY 2037 * configuration. Returns 0 on success, negative on failure 2038 */ 2039 static int ice_init_phy_user_cfg(struct ice_port_info *pi) 2040 { 2041 struct ice_aqc_get_phy_caps_data *pcaps; 2042 struct ice_phy_info *phy = &pi->phy; 2043 struct ice_pf *pf = pi->hw->back; 2044 int err; 2045 2046 if (!(phy->link_info.link_info & ICE_AQ_MEDIA_AVAILABLE)) 2047 return -EIO; 2048 2049 pcaps = kzalloc_obj(*pcaps); 2050 if (!pcaps) 2051 return -ENOMEM; 2052 2053 if (ice_fw_supports_report_dflt_cfg(pi->hw)) 2054 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_DFLT_CFG, 2055 pcaps, NULL); 2056 else 2057 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_TOPO_CAP_MEDIA, 2058 pcaps, NULL); 2059 if (err) { 2060 dev_err(ice_pf_to_dev(pf), "Get PHY capability failed.\n"); 2061 goto err_out; 2062 } 2063 2064 ice_copy_phy_caps_to_cfg(pi, pcaps, &pi->phy.curr_user_phy_cfg); 2065 2066 /* check if lenient mode is supported and enabled */ 2067 if (ice_fw_supports_link_override(pi->hw) && 2068 !(pcaps->module_compliance_enforcement & 2069 ICE_AQC_MOD_ENFORCE_STRICT_MODE)) { 2070 set_bit(ICE_FLAG_LINK_LENIENT_MODE_ENA, pf->flags); 2071 2072 /* if the FW supports default PHY configuration mode, then the driver 2073 * does not have to apply link override settings. If not, 2074 * initialize user PHY configuration with link override values 2075 */ 2076 if (!ice_fw_supports_report_dflt_cfg(pi->hw) && 2077 (pf->link_dflt_override.options & ICE_LINK_OVERRIDE_EN)) { 2078 ice_init_phy_cfg_dflt_override(pi); 2079 goto out; 2080 } 2081 } 2082 2083 /* if link default override is not enabled, set user flow control and 2084 * FEC settings based on what get_phy_caps returned 2085 */ 2086 phy->curr_user_fec_req = ice_caps_to_fec_mode(pcaps->caps, 2087 pcaps->link_fec_options); 2088 phy->curr_user_fc_req = ice_caps_to_fc_mode(pcaps->caps); 2089 2090 out: 2091 phy->curr_user_speed_req = ICE_AQ_LINK_SPEED_M; 2092 set_bit(ICE_PHY_INIT_COMPLETE, pf->state); 2093 err_out: 2094 kfree(pcaps); 2095 return err; 2096 } 2097 2098 /** 2099 * ice_phy_cfg - configure PHY 2100 * @vsi: VSI of PHY 2101 * @link_en: true/false indicates to set link to enable/disable 2102 * 2103 * Set the PHY configuration. If the current PHY configuration is the same as 2104 * the curr_user_phy_cfg and link_en hasn't changed, then do nothing to avoid 2105 * link flap. Otherwise configure the PHY based get PHY capabilities for 2106 * topology with media and link_en. 2107 * 2108 * Return: 0 on success, negative on failure 2109 */ 2110 static int ice_phy_cfg(struct ice_vsi *vsi, bool link_en) 2111 { 2112 struct device *dev = ice_pf_to_dev(vsi->back); 2113 struct ice_port_info *pi = vsi->port_info; 2114 struct ice_aqc_get_phy_caps_data *pcaps; 2115 struct ice_aqc_set_phy_cfg_data *cfg; 2116 struct ice_phy_info *phy = &pi->phy; 2117 struct ice_pf *pf = vsi->back; 2118 int err; 2119 2120 /* Ensure we have media as we cannot configure a medialess port */ 2121 if (!(phy->link_info.link_info & ICE_AQ_MEDIA_AVAILABLE)) 2122 return -ENOMEDIUM; 2123 2124 ice_print_topo_conflict(vsi); 2125 2126 if (!test_bit(ICE_FLAG_LINK_LENIENT_MODE_ENA, pf->flags) && 2127 phy->link_info.topo_media_conflict == ICE_AQ_LINK_TOPO_UNSUPP_MEDIA) 2128 return -EPERM; 2129 2130 pcaps = kzalloc_obj(*pcaps); 2131 if (!pcaps) 2132 return -ENOMEM; 2133 2134 /* Get current PHY config */ 2135 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_ACTIVE_CFG, pcaps, 2136 NULL); 2137 if (err) { 2138 dev_err(dev, "Failed to get PHY configuration, VSI %d error %d\n", 2139 vsi->vsi_num, err); 2140 goto done; 2141 } 2142 2143 /* Configuration has not changed. There's nothing to do. */ 2144 if (link_en == !!(pcaps->caps & ICE_AQC_PHY_EN_LINK) && 2145 ice_phy_caps_equals_cfg(pcaps, &phy->curr_user_phy_cfg)) 2146 goto done; 2147 2148 /* Use PHY topology as baseline for configuration */ 2149 memset(pcaps, 0, sizeof(*pcaps)); 2150 if (ice_fw_supports_report_dflt_cfg(pi->hw)) 2151 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_DFLT_CFG, 2152 pcaps, NULL); 2153 else 2154 err = ice_aq_get_phy_caps(pi, false, ICE_AQC_REPORT_TOPO_CAP_MEDIA, 2155 pcaps, NULL); 2156 if (err) { 2157 dev_err(dev, "Failed to get PHY caps, VSI %d error %d\n", 2158 vsi->vsi_num, err); 2159 goto done; 2160 } 2161 2162 cfg = kzalloc_obj(*cfg); 2163 if (!cfg) { 2164 err = -ENOMEM; 2165 goto done; 2166 } 2167 2168 ice_copy_phy_caps_to_cfg(pi, pcaps, cfg); 2169 2170 /* Speed - If default override pending, use curr_user_phy_cfg set in 2171 * ice_init_phy_user_cfg_ldo. 2172 */ 2173 if (test_and_clear_bit(ICE_LINK_DEFAULT_OVERRIDE_PENDING, 2174 vsi->back->state)) { 2175 cfg->phy_type_low = phy->curr_user_phy_cfg.phy_type_low; 2176 cfg->phy_type_high = phy->curr_user_phy_cfg.phy_type_high; 2177 } else { 2178 u64 phy_low = 0, phy_high = 0; 2179 2180 ice_update_phy_type(&phy_low, &phy_high, 2181 pi->phy.curr_user_speed_req); 2182 cfg->phy_type_low = pcaps->phy_type_low & cpu_to_le64(phy_low); 2183 cfg->phy_type_high = pcaps->phy_type_high & 2184 cpu_to_le64(phy_high); 2185 } 2186 2187 /* Can't provide what was requested; use PHY capabilities */ 2188 if (!cfg->phy_type_low && !cfg->phy_type_high) { 2189 cfg->phy_type_low = pcaps->phy_type_low; 2190 cfg->phy_type_high = pcaps->phy_type_high; 2191 } 2192 2193 /* FEC */ 2194 ice_cfg_phy_fec(pi, cfg, phy->curr_user_fec_req); 2195 2196 /* Can't provide what was requested; use PHY capabilities */ 2197 if (cfg->link_fec_opt != 2198 (cfg->link_fec_opt & pcaps->link_fec_options)) { 2199 cfg->caps |= pcaps->caps & ICE_AQC_PHY_EN_AUTO_FEC; 2200 cfg->link_fec_opt = pcaps->link_fec_options; 2201 } 2202 2203 /* Flow Control - always supported; no need to check against 2204 * capabilities 2205 */ 2206 ice_cfg_phy_fc(pi, cfg, phy->curr_user_fc_req); 2207 2208 /* Enable/Disable link and link update */ 2209 cfg->caps |= ICE_AQ_PHY_ENA_AUTO_LINK_UPDT; 2210 if (link_en) 2211 cfg->caps |= ICE_AQ_PHY_ENA_LINK; 2212 else 2213 cfg->caps &= ~ICE_AQ_PHY_ENA_LINK; 2214 2215 err = ice_aq_set_phy_cfg(&pf->hw, pi, cfg, NULL); 2216 if (err) 2217 dev_err(dev, "Failed to set phy config, VSI %d error %d\n", 2218 vsi->vsi_num, err); 2219 2220 kfree(cfg); 2221 done: 2222 kfree(pcaps); 2223 return err; 2224 } 2225 2226 /** 2227 * ice_check_media_subtask - Check for media 2228 * @pf: pointer to PF struct 2229 * 2230 * If media is available, then initialize PHY user configuration if it is not 2231 * been, and configure the PHY if the interface is up. 2232 */ 2233 static void ice_check_media_subtask(struct ice_pf *pf) 2234 { 2235 struct ice_port_info *pi; 2236 struct ice_vsi *vsi; 2237 int err; 2238 2239 /* No need to check for media if it's already present */ 2240 if (!test_bit(ICE_FLAG_NO_MEDIA, pf->flags)) 2241 return; 2242 2243 vsi = ice_get_main_vsi(pf); 2244 if (!vsi) 2245 return; 2246 2247 /* Refresh link info and check if media is present */ 2248 pi = vsi->port_info; 2249 err = ice_update_link_info(pi); 2250 if (err) 2251 return; 2252 2253 ice_check_link_cfg_err(pf, pi->phy.link_info.link_cfg_err); 2254 2255 if (pi->phy.link_info.link_info & ICE_AQ_MEDIA_AVAILABLE) { 2256 if (!test_bit(ICE_PHY_INIT_COMPLETE, pf->state)) 2257 ice_init_phy_user_cfg(pi); 2258 2259 /* PHY settings are reset on media insertion, reconfigure 2260 * PHY to preserve settings. 2261 */ 2262 if (test_bit(ICE_VSI_DOWN, vsi->state) && 2263 test_bit(ICE_FLAG_LINK_DOWN_ON_CLOSE_ENA, vsi->back->flags)) 2264 return; 2265 2266 err = ice_phy_cfg(vsi, true); 2267 if (!err) 2268 clear_bit(ICE_FLAG_NO_MEDIA, pf->flags); 2269 2270 /* A Link Status Event will be generated; the event handler 2271 * will complete bringing the interface up 2272 */ 2273 } 2274 } 2275 2276 static void ice_service_task_recovery_mode(struct work_struct *work) 2277 { 2278 struct ice_pf *pf = container_of(work, struct ice_pf, serv_task); 2279 2280 set_bit(ICE_ADMINQ_EVENT_PENDING, pf->state); 2281 ice_clean_adminq_subtask(pf); 2282 2283 ice_service_task_complete(pf); 2284 2285 mod_timer(&pf->serv_tmr, jiffies + msecs_to_jiffies(100)); 2286 } 2287 2288 /** 2289 * ice_service_task - manage and run subtasks 2290 * @work: pointer to work_struct contained by the PF struct 2291 */ 2292 static void ice_service_task(struct work_struct *work) 2293 { 2294 struct ice_pf *pf = container_of(work, struct ice_pf, serv_task); 2295 unsigned long start_time = jiffies; 2296 2297 if (pf->health_reporters.tx_hang_buf.tx_ring) { 2298 ice_report_tx_hang(pf); 2299 pf->health_reporters.tx_hang_buf.tx_ring = NULL; 2300 } 2301 2302 ice_reset_subtask(pf); 2303 2304 /* bail if a reset/recovery cycle is pending or rebuild failed */ 2305 if (ice_is_reset_in_progress(pf->state) || 2306 test_bit(ICE_SUSPENDED, pf->state) || 2307 test_bit(ICE_NEEDS_RESTART, pf->state)) { 2308 ice_service_task_complete(pf); 2309 return; 2310 } 2311 2312 if (test_and_clear_bit(ICE_AUX_ERR_PENDING, pf->state)) { 2313 struct iidc_rdma_event *event; 2314 2315 event = kzalloc_obj(*event); 2316 if (event) { 2317 set_bit(IIDC_RDMA_EVENT_CRIT_ERR, event->type); 2318 /* report the entire OICR value to AUX driver */ 2319 swap(event->reg, pf->oicr_err_reg); 2320 ice_send_event_to_aux(pf, event); 2321 kfree(event); 2322 } 2323 } 2324 2325 /* unplug aux dev per request, if an unplug request came in 2326 * while processing a plug request, this will handle it 2327 */ 2328 if (test_and_clear_bit(ICE_FLAG_UNPLUG_AUX_DEV, pf->flags)) 2329 ice_unplug_aux_dev(pf); 2330 2331 /* Plug aux device per request */ 2332 if (test_and_clear_bit(ICE_FLAG_PLUG_AUX_DEV, pf->flags)) 2333 ice_plug_aux_dev(pf); 2334 2335 if (test_and_clear_bit(ICE_FLAG_MTU_CHANGED, pf->flags)) { 2336 struct iidc_rdma_event *event; 2337 2338 event = kzalloc_obj(*event); 2339 if (event) { 2340 set_bit(IIDC_RDMA_EVENT_AFTER_MTU_CHANGE, event->type); 2341 ice_send_event_to_aux(pf, event); 2342 kfree(event); 2343 } 2344 } 2345 2346 ice_clean_adminq_subtask(pf); 2347 ice_check_media_subtask(pf); 2348 ice_check_for_hang_subtask(pf); 2349 ice_sync_fltr_subtask(pf); 2350 ice_handle_mdd_event(pf); 2351 ice_watchdog_subtask(pf); 2352 2353 if (ice_is_safe_mode(pf)) { 2354 ice_service_task_complete(pf); 2355 return; 2356 } 2357 2358 ice_process_vflr_event(pf); 2359 ice_clean_mailboxq_subtask(pf); 2360 ice_clean_sbq_subtask(pf); 2361 ice_sync_arfs_fltrs(pf); 2362 ice_flush_fdir_ctx(pf); 2363 2364 /* Clear ICE_SERVICE_SCHED flag to allow scheduling next event */ 2365 ice_service_task_complete(pf); 2366 2367 /* If the tasks have taken longer than one service timer period 2368 * or there is more work to be done, reset the service timer to 2369 * schedule the service task now. 2370 */ 2371 if (time_after(jiffies, (start_time + pf->serv_tmr_period)) || 2372 test_bit(ICE_MDD_EVENT_PENDING, pf->state) || 2373 test_bit(ICE_VFLR_EVENT_PENDING, pf->state) || 2374 test_bit(ICE_MAILBOXQ_EVENT_PENDING, pf->state) || 2375 test_bit(ICE_FD_VF_FLUSH_CTX, pf->state) || 2376 test_bit(ICE_SIDEBANDQ_EVENT_PENDING, pf->state) || 2377 test_bit(ICE_ADMINQ_EVENT_PENDING, pf->state)) 2378 mod_timer(&pf->serv_tmr, jiffies); 2379 } 2380 2381 /** 2382 * ice_set_ctrlq_len - helper function to set controlq length 2383 * @hw: pointer to the HW instance 2384 */ 2385 static void ice_set_ctrlq_len(struct ice_hw *hw) 2386 { 2387 hw->adminq.num_rq_entries = ICE_AQ_LEN; 2388 hw->adminq.num_sq_entries = ICE_AQ_LEN; 2389 hw->adminq.rq_buf_size = ICE_AQ_MAX_BUF_LEN; 2390 hw->adminq.sq_buf_size = ICE_AQ_MAX_BUF_LEN; 2391 hw->mailboxq.num_rq_entries = PF_MBX_ARQLEN_ARQLEN_M; 2392 hw->mailboxq.num_sq_entries = ICE_MBXSQ_LEN; 2393 hw->mailboxq.rq_buf_size = ICE_MBXQ_MAX_BUF_LEN; 2394 hw->mailboxq.sq_buf_size = ICE_MBXQ_MAX_BUF_LEN; 2395 hw->sbq.num_rq_entries = ICE_SBQ_LEN; 2396 hw->sbq.num_sq_entries = ICE_SBQ_LEN; 2397 hw->sbq.rq_buf_size = ICE_SBQ_MAX_BUF_LEN; 2398 hw->sbq.sq_buf_size = ICE_SBQ_MAX_BUF_LEN; 2399 } 2400 2401 /** 2402 * ice_schedule_reset - schedule a reset 2403 * @pf: board private structure 2404 * @reset: reset being requested 2405 */ 2406 int ice_schedule_reset(struct ice_pf *pf, enum ice_reset_req reset) 2407 { 2408 struct device *dev = ice_pf_to_dev(pf); 2409 2410 /* bail out if earlier reset has failed */ 2411 if (test_bit(ICE_RESET_FAILED, pf->state)) { 2412 dev_dbg(dev, "earlier reset has failed\n"); 2413 return -EIO; 2414 } 2415 /* bail if reset/recovery already in progress */ 2416 if (ice_is_reset_in_progress(pf->state)) { 2417 dev_dbg(dev, "Reset already in progress\n"); 2418 return -EBUSY; 2419 } 2420 2421 switch (reset) { 2422 case ICE_RESET_PFR: 2423 set_bit(ICE_PFR_REQ, pf->state); 2424 break; 2425 case ICE_RESET_CORER: 2426 set_bit(ICE_CORER_REQ, pf->state); 2427 break; 2428 case ICE_RESET_GLOBR: 2429 set_bit(ICE_GLOBR_REQ, pf->state); 2430 break; 2431 default: 2432 return -EINVAL; 2433 } 2434 2435 ice_service_task_schedule(pf); 2436 return 0; 2437 } 2438 2439 /** 2440 * ice_vsi_ena_irq - Enable IRQ for the given VSI 2441 * @vsi: the VSI being configured 2442 */ 2443 static int ice_vsi_ena_irq(struct ice_vsi *vsi) 2444 { 2445 struct ice_hw *hw = &vsi->back->hw; 2446 int i; 2447 2448 ice_for_each_q_vector(vsi, i) 2449 ice_irq_dynamic_ena(hw, vsi, vsi->q_vectors[i]); 2450 2451 ice_flush(hw); 2452 return 0; 2453 } 2454 2455 /** 2456 * ice_vsi_req_irq_msix - get MSI-X vectors from the OS for the VSI 2457 * @vsi: the VSI being configured 2458 * @basename: name for the vector 2459 */ 2460 static int ice_vsi_req_irq_msix(struct ice_vsi *vsi, char *basename) 2461 { 2462 int q_vectors = vsi->num_q_vectors; 2463 struct ice_pf *pf = vsi->back; 2464 struct device *dev; 2465 int rx_int_idx = 0; 2466 int tx_int_idx = 0; 2467 int vector, err; 2468 int irq_num; 2469 2470 dev = ice_pf_to_dev(pf); 2471 for (vector = 0; vector < q_vectors; vector++) { 2472 struct ice_q_vector *q_vector = vsi->q_vectors[vector]; 2473 2474 irq_num = q_vector->irq.virq; 2475 2476 if (q_vector->tx.tx_ring && q_vector->rx.rx_ring) { 2477 snprintf(q_vector->name, sizeof(q_vector->name) - 1, 2478 "%s-%s-%d", basename, "TxRx", rx_int_idx++); 2479 tx_int_idx++; 2480 } else if (q_vector->rx.rx_ring) { 2481 snprintf(q_vector->name, sizeof(q_vector->name) - 1, 2482 "%s-%s-%d", basename, "rx", rx_int_idx++); 2483 } else if (q_vector->tx.tx_ring) { 2484 snprintf(q_vector->name, sizeof(q_vector->name) - 1, 2485 "%s-%s-%d", basename, "tx", tx_int_idx++); 2486 } else { 2487 /* skip this unused q_vector */ 2488 continue; 2489 } 2490 if (vsi->type == ICE_VSI_CTRL && vsi->vf) 2491 err = devm_request_irq(dev, irq_num, vsi->irq_handler, 2492 IRQF_SHARED, q_vector->name, 2493 q_vector); 2494 else 2495 err = devm_request_irq(dev, irq_num, vsi->irq_handler, 2496 0, q_vector->name, q_vector); 2497 if (err) { 2498 netdev_err(vsi->netdev, "MSIX request_irq failed, error: %d\n", 2499 err); 2500 goto free_q_irqs; 2501 } 2502 } 2503 2504 err = ice_set_cpu_rx_rmap(vsi); 2505 if (err) { 2506 netdev_err(vsi->netdev, "Failed to setup CPU RMAP on VSI %u: %pe\n", 2507 vsi->vsi_num, ERR_PTR(err)); 2508 goto free_q_irqs; 2509 } 2510 2511 vsi->irqs_ready = true; 2512 return 0; 2513 2514 free_q_irqs: 2515 while (vector--) { 2516 irq_num = vsi->q_vectors[vector]->irq.virq; 2517 devm_free_irq(dev, irq_num, &vsi->q_vectors[vector]); 2518 } 2519 return err; 2520 } 2521 2522 /** 2523 * ice_xdp_alloc_setup_rings - Allocate and setup Tx rings for XDP 2524 * @vsi: VSI to setup Tx rings used by XDP 2525 * 2526 * Return 0 on success and negative value on error 2527 */ 2528 static int ice_xdp_alloc_setup_rings(struct ice_vsi *vsi) 2529 { 2530 struct device *dev = ice_pf_to_dev(vsi->back); 2531 struct ice_tx_desc *tx_desc; 2532 int i, j; 2533 2534 ice_for_each_xdp_txq(vsi, i) { 2535 u16 xdp_q_idx = vsi->alloc_txq + i; 2536 struct ice_ring_stats *ring_stats; 2537 struct ice_tx_ring *xdp_ring; 2538 2539 xdp_ring = kzalloc_obj(*xdp_ring); 2540 if (!xdp_ring) 2541 goto free_xdp_rings; 2542 2543 ring_stats = kzalloc_obj(*ring_stats); 2544 if (!ring_stats) { 2545 ice_free_tx_ring(xdp_ring); 2546 goto free_xdp_rings; 2547 } 2548 2549 xdp_ring->ring_stats = ring_stats; 2550 xdp_ring->q_index = xdp_q_idx; 2551 xdp_ring->reg_idx = vsi->txq_map[xdp_q_idx]; 2552 xdp_ring->vsi = vsi; 2553 xdp_ring->netdev = NULL; 2554 xdp_ring->dev = dev; 2555 xdp_ring->count = vsi->num_tx_desc; 2556 WRITE_ONCE(vsi->xdp_rings[i], xdp_ring); 2557 if (ice_setup_tx_ring(xdp_ring)) 2558 goto free_xdp_rings; 2559 ice_set_ring_xdp(xdp_ring); 2560 spin_lock_init(&xdp_ring->tx_lock); 2561 for (j = 0; j < xdp_ring->count; j++) { 2562 tx_desc = ICE_TX_DESC(xdp_ring, j); 2563 tx_desc->cmd_type_offset_bsz = 0; 2564 } 2565 } 2566 2567 return 0; 2568 2569 free_xdp_rings: 2570 for (; i >= 0; i--) { 2571 if (vsi->xdp_rings[i] && vsi->xdp_rings[i]->desc) { 2572 kfree_rcu(vsi->xdp_rings[i]->ring_stats, rcu); 2573 vsi->xdp_rings[i]->ring_stats = NULL; 2574 ice_free_tx_ring(vsi->xdp_rings[i]); 2575 } 2576 } 2577 return -ENOMEM; 2578 } 2579 2580 /** 2581 * ice_vsi_assign_bpf_prog - set or clear bpf prog pointer on VSI 2582 * @vsi: VSI to set the bpf prog on 2583 * @prog: the bpf prog pointer 2584 */ 2585 static void ice_vsi_assign_bpf_prog(struct ice_vsi *vsi, struct bpf_prog *prog) 2586 { 2587 struct bpf_prog *old_prog; 2588 int i; 2589 2590 old_prog = xchg(&vsi->xdp_prog, prog); 2591 ice_for_each_rxq(vsi, i) 2592 WRITE_ONCE(vsi->rx_rings[i]->xdp_prog, vsi->xdp_prog); 2593 2594 if (old_prog) 2595 bpf_prog_put(old_prog); 2596 } 2597 2598 static struct ice_tx_ring *ice_xdp_ring_from_qid(struct ice_vsi *vsi, int qid) 2599 { 2600 struct ice_q_vector *q_vector; 2601 struct ice_tx_ring *ring; 2602 2603 if (static_key_enabled(&ice_xdp_locking_key)) 2604 return vsi->xdp_rings[qid % vsi->num_xdp_txq]; 2605 2606 q_vector = vsi->rx_rings[qid]->q_vector; 2607 ice_for_each_tx_ring(ring, q_vector->tx) 2608 if (ice_ring_is_xdp(ring)) 2609 return ring; 2610 2611 return NULL; 2612 } 2613 2614 /** 2615 * ice_map_xdp_rings - Map XDP rings to interrupt vectors 2616 * @vsi: the VSI with XDP rings being configured 2617 * 2618 * Map XDP rings to interrupt vectors and perform the configuration steps 2619 * dependent on the mapping. 2620 */ 2621 void ice_map_xdp_rings(struct ice_vsi *vsi) 2622 { 2623 int xdp_rings_rem = vsi->num_xdp_txq; 2624 int v_idx, q_idx; 2625 2626 /* follow the logic from ice_vsi_map_rings_to_vectors */ 2627 ice_for_each_q_vector(vsi, v_idx) { 2628 struct ice_q_vector *q_vector = vsi->q_vectors[v_idx]; 2629 int xdp_rings_per_v, q_id, q_base; 2630 2631 xdp_rings_per_v = DIV_ROUND_UP(xdp_rings_rem, 2632 vsi->num_q_vectors - v_idx); 2633 q_base = vsi->num_xdp_txq - xdp_rings_rem; 2634 2635 for (q_id = q_base; q_id < (q_base + xdp_rings_per_v); q_id++) { 2636 struct ice_tx_ring *xdp_ring = vsi->xdp_rings[q_id]; 2637 2638 xdp_ring->q_vector = q_vector; 2639 xdp_ring->next = q_vector->tx.tx_ring; 2640 q_vector->tx.tx_ring = xdp_ring; 2641 } 2642 xdp_rings_rem -= xdp_rings_per_v; 2643 } 2644 2645 ice_for_each_rxq(vsi, q_idx) { 2646 vsi->rx_rings[q_idx]->xdp_ring = ice_xdp_ring_from_qid(vsi, 2647 q_idx); 2648 ice_tx_xsk_pool(vsi, q_idx); 2649 } 2650 } 2651 2652 /** 2653 * ice_unmap_xdp_rings - Unmap XDP rings from interrupt vectors 2654 * @vsi: the VSI with XDP rings being unmapped 2655 */ 2656 static void ice_unmap_xdp_rings(struct ice_vsi *vsi) 2657 { 2658 int v_idx; 2659 2660 ice_for_each_q_vector(vsi, v_idx) { 2661 struct ice_q_vector *q_vector = vsi->q_vectors[v_idx]; 2662 struct ice_tx_ring *ring; 2663 2664 ice_for_each_tx_ring(ring, q_vector->tx) 2665 if (!ring->tx_buf || !ice_ring_is_xdp(ring)) 2666 break; 2667 2668 /* restore the value of last node prior to XDP setup */ 2669 q_vector->tx.tx_ring = ring; 2670 } 2671 } 2672 2673 /** 2674 * ice_prepare_xdp_rings - Allocate, configure and setup Tx rings for XDP 2675 * @vsi: VSI to bring up Tx rings used by XDP 2676 * @prog: bpf program that will be assigned to VSI 2677 * @cfg_type: create from scratch or restore the existing configuration 2678 * 2679 * Return 0 on success and negative value on error 2680 */ 2681 int ice_prepare_xdp_rings(struct ice_vsi *vsi, struct bpf_prog *prog, 2682 enum ice_xdp_cfg cfg_type) 2683 { 2684 u16 max_txqs[ICE_MAX_TRAFFIC_CLASS] = { 0 }; 2685 struct ice_pf *pf = vsi->back; 2686 struct ice_qs_cfg xdp_qs_cfg = { 2687 .qs_mutex = &pf->avail_q_mutex, 2688 .pf_map = pf->avail_txqs, 2689 .pf_map_size = pf->max_pf_txqs, 2690 .q_count = vsi->num_xdp_txq, 2691 .scatter_count = ICE_MAX_SCATTER_TXQS, 2692 .vsi_map = vsi->txq_map, 2693 .vsi_map_offset = vsi->alloc_txq, 2694 .mapping_mode = ICE_VSI_MAP_CONTIG 2695 }; 2696 struct device *dev; 2697 int status, i; 2698 2699 dev = ice_pf_to_dev(pf); 2700 vsi->xdp_rings = devm_kcalloc(dev, vsi->num_xdp_txq, 2701 sizeof(*vsi->xdp_rings), GFP_KERNEL); 2702 if (!vsi->xdp_rings) 2703 return -ENOMEM; 2704 2705 vsi->xdp_mapping_mode = xdp_qs_cfg.mapping_mode; 2706 if (__ice_vsi_get_qs(&xdp_qs_cfg)) 2707 goto err_map_xdp; 2708 2709 if (static_key_enabled(&ice_xdp_locking_key)) 2710 netdev_warn(vsi->netdev, 2711 "Could not allocate one XDP Tx ring per CPU, XDP_TX/XDP_REDIRECT actions will be slower\n"); 2712 2713 if (ice_xdp_alloc_setup_rings(vsi)) 2714 goto clear_xdp_rings; 2715 2716 /* omit the scheduler update if in reset path; XDP queues will be 2717 * taken into account at the end of ice_vsi_rebuild, where 2718 * ice_cfg_vsi_lan is being called 2719 */ 2720 if (cfg_type == ICE_XDP_CFG_PART) 2721 return 0; 2722 2723 ice_map_xdp_rings(vsi); 2724 2725 /* tell the Tx scheduler that right now we have 2726 * additional queues 2727 */ 2728 for (i = 0; i < vsi->tc_cfg.numtc; i++) 2729 max_txqs[i] = vsi->num_txq + vsi->num_xdp_txq; 2730 2731 status = ice_cfg_vsi_lan(vsi->port_info, vsi->idx, vsi->tc_cfg.ena_tc, 2732 max_txqs); 2733 if (status) { 2734 dev_err(dev, "Failed VSI LAN queue config for XDP, error: %d\n", 2735 status); 2736 goto unmap_xdp_rings; 2737 } 2738 2739 /* assign the prog only when it's not already present on VSI; 2740 * this flow is a subject of both ethtool -L and ndo_bpf flows; 2741 * VSI rebuild that happens under ethtool -L can expose us to 2742 * the bpf_prog refcount issues as we would be swapping same 2743 * bpf_prog pointers from vsi->xdp_prog and calling bpf_prog_put 2744 * on it as it would be treated as an 'old_prog'; for ndo_bpf 2745 * this is not harmful as dev_xdp_install bumps the refcount 2746 * before calling the op exposed by the driver; 2747 */ 2748 if (!ice_is_xdp_ena_vsi(vsi)) 2749 ice_vsi_assign_bpf_prog(vsi, prog); 2750 2751 return 0; 2752 unmap_xdp_rings: 2753 ice_unmap_xdp_rings(vsi); 2754 clear_xdp_rings: 2755 ice_for_each_xdp_txq(vsi, i) 2756 if (vsi->xdp_rings[i]) { 2757 kfree_rcu(vsi->xdp_rings[i], rcu); 2758 vsi->xdp_rings[i] = NULL; 2759 } 2760 2761 err_map_xdp: 2762 mutex_lock(&pf->avail_q_mutex); 2763 ice_for_each_xdp_txq(vsi, i) { 2764 clear_bit(vsi->txq_map[i + vsi->alloc_txq], pf->avail_txqs); 2765 vsi->txq_map[i + vsi->alloc_txq] = ICE_INVAL_Q_INDEX; 2766 } 2767 mutex_unlock(&pf->avail_q_mutex); 2768 2769 devm_kfree(dev, vsi->xdp_rings); 2770 vsi->xdp_rings = NULL; 2771 2772 return -ENOMEM; 2773 } 2774 2775 /** 2776 * ice_destroy_xdp_rings - undo the configuration made by ice_prepare_xdp_rings 2777 * @vsi: VSI to remove XDP rings 2778 * @cfg_type: disable XDP permanently or allow it to be restored later 2779 * 2780 * Detach XDP rings from irq vectors, clean up the PF bitmap and free 2781 * resources 2782 */ 2783 int ice_destroy_xdp_rings(struct ice_vsi *vsi, enum ice_xdp_cfg cfg_type) 2784 { 2785 u16 max_txqs[ICE_MAX_TRAFFIC_CLASS] = { 0 }; 2786 struct ice_pf *pf = vsi->back; 2787 int i; 2788 2789 /* q_vectors are freed in reset path so there's no point in detaching 2790 * rings 2791 */ 2792 if (cfg_type == ICE_XDP_CFG_PART) 2793 goto free_qmap; 2794 2795 ice_unmap_xdp_rings(vsi); 2796 2797 free_qmap: 2798 mutex_lock(&pf->avail_q_mutex); 2799 ice_for_each_xdp_txq(vsi, i) { 2800 clear_bit(vsi->txq_map[i + vsi->alloc_txq], pf->avail_txqs); 2801 vsi->txq_map[i + vsi->alloc_txq] = ICE_INVAL_Q_INDEX; 2802 } 2803 mutex_unlock(&pf->avail_q_mutex); 2804 2805 ice_for_each_xdp_txq(vsi, i) 2806 if (vsi->xdp_rings[i]) { 2807 if (vsi->xdp_rings[i]->desc) { 2808 synchronize_rcu(); 2809 ice_free_tx_ring(vsi->xdp_rings[i]); 2810 } 2811 kfree_rcu(vsi->xdp_rings[i]->ring_stats, rcu); 2812 vsi->xdp_rings[i]->ring_stats = NULL; 2813 kfree_rcu(vsi->xdp_rings[i], rcu); 2814 vsi->xdp_rings[i] = NULL; 2815 } 2816 2817 devm_kfree(ice_pf_to_dev(pf), vsi->xdp_rings); 2818 vsi->xdp_rings = NULL; 2819 2820 if (static_key_enabled(&ice_xdp_locking_key)) 2821 static_branch_dec(&ice_xdp_locking_key); 2822 2823 if (cfg_type == ICE_XDP_CFG_PART) 2824 return 0; 2825 2826 ice_vsi_assign_bpf_prog(vsi, NULL); 2827 2828 /* notify Tx scheduler that we destroyed XDP queues and bring 2829 * back the old number of child nodes 2830 */ 2831 for (i = 0; i < vsi->tc_cfg.numtc; i++) 2832 max_txqs[i] = vsi->num_txq; 2833 2834 /* change number of XDP Tx queues to 0 */ 2835 vsi->num_xdp_txq = 0; 2836 2837 return ice_cfg_vsi_lan(vsi->port_info, vsi->idx, vsi->tc_cfg.ena_tc, 2838 max_txqs); 2839 } 2840 2841 /** 2842 * ice_vsi_rx_napi_schedule - Schedule napi on RX queues from VSI 2843 * @vsi: VSI to schedule napi on 2844 */ 2845 static void ice_vsi_rx_napi_schedule(struct ice_vsi *vsi) 2846 { 2847 int i; 2848 2849 ice_for_each_rxq(vsi, i) { 2850 struct ice_rx_ring *rx_ring = vsi->rx_rings[i]; 2851 2852 if (READ_ONCE(rx_ring->xsk_pool)) 2853 napi_schedule(&rx_ring->q_vector->napi); 2854 } 2855 } 2856 2857 /** 2858 * ice_vsi_determine_xdp_res - figure out how many Tx qs can XDP have 2859 * @vsi: VSI to determine the count of XDP Tx qs 2860 * 2861 * returns 0 if Tx qs count is higher than at least half of CPU count, 2862 * -ENOMEM otherwise 2863 */ 2864 int ice_vsi_determine_xdp_res(struct ice_vsi *vsi) 2865 { 2866 u16 avail = ice_get_avail_txq_count(vsi->back); 2867 u16 cpus = num_possible_cpus(); 2868 2869 if (avail < cpus / 2) 2870 return -ENOMEM; 2871 2872 if (vsi->type == ICE_VSI_SF) 2873 avail = vsi->alloc_txq; 2874 2875 vsi->num_xdp_txq = min_t(u16, avail, cpus); 2876 2877 if (vsi->num_xdp_txq < cpus) 2878 static_branch_inc(&ice_xdp_locking_key); 2879 2880 return 0; 2881 } 2882 2883 /** 2884 * ice_max_xdp_frame_size - returns the maximum allowed frame size for XDP 2885 * @vsi: Pointer to VSI structure 2886 */ 2887 static int ice_max_xdp_frame_size(struct ice_vsi *vsi) 2888 { 2889 return ICE_RXBUF_3072; 2890 } 2891 2892 /** 2893 * ice_xdp_setup_prog - Add or remove XDP eBPF program 2894 * @vsi: VSI to setup XDP for 2895 * @prog: XDP program 2896 * @extack: netlink extended ack 2897 */ 2898 static int 2899 ice_xdp_setup_prog(struct ice_vsi *vsi, struct bpf_prog *prog, 2900 struct netlink_ext_ack *extack) 2901 { 2902 unsigned int frame_size = vsi->netdev->mtu + ICE_ETH_PKT_HDR_PAD; 2903 int ret = 0, xdp_ring_err = 0; 2904 bool if_running; 2905 2906 if (prog && !prog->aux->xdp_has_frags) { 2907 if (frame_size > ice_max_xdp_frame_size(vsi)) { 2908 NL_SET_ERR_MSG_MOD(extack, 2909 "MTU is too large for linear frames and XDP prog does not support frags"); 2910 return -EOPNOTSUPP; 2911 } 2912 } 2913 2914 /* hot swap progs and avoid toggling link */ 2915 if (ice_is_xdp_ena_vsi(vsi) == !!prog || 2916 test_bit(ICE_VSI_REBUILD_PENDING, vsi->state)) { 2917 ice_vsi_assign_bpf_prog(vsi, prog); 2918 return 0; 2919 } 2920 2921 if_running = netif_running(vsi->netdev) && 2922 !test_and_set_bit(ICE_VSI_DOWN, vsi->state); 2923 2924 /* need to stop netdev while setting up the program for Rx rings */ 2925 if (if_running) { 2926 ret = ice_down(vsi); 2927 if (ret) { 2928 NL_SET_ERR_MSG_MOD(extack, "Preparing device for XDP attach failed"); 2929 return ret; 2930 } 2931 } 2932 2933 if (!ice_is_xdp_ena_vsi(vsi) && prog) { 2934 xdp_ring_err = ice_vsi_determine_xdp_res(vsi); 2935 if (xdp_ring_err) { 2936 NL_SET_ERR_MSG_MOD(extack, "Not enough Tx resources for XDP"); 2937 goto resume_if; 2938 } else { 2939 xdp_ring_err = ice_prepare_xdp_rings(vsi, prog, 2940 ICE_XDP_CFG_FULL); 2941 if (xdp_ring_err) { 2942 NL_SET_ERR_MSG_MOD(extack, "Setting up XDP Tx resources failed"); 2943 goto resume_if; 2944 } 2945 } 2946 xdp_features_set_redirect_target(vsi->netdev, true); 2947 } else if (ice_is_xdp_ena_vsi(vsi) && !prog) { 2948 xdp_features_clear_redirect_target(vsi->netdev); 2949 xdp_ring_err = ice_destroy_xdp_rings(vsi, ICE_XDP_CFG_FULL); 2950 if (xdp_ring_err) 2951 NL_SET_ERR_MSG_MOD(extack, "Freeing XDP Tx resources failed"); 2952 } 2953 2954 resume_if: 2955 if (if_running) 2956 ret = ice_up(vsi); 2957 2958 if (!ret && prog) 2959 ice_vsi_rx_napi_schedule(vsi); 2960 2961 return (ret || xdp_ring_err) ? -ENOMEM : 0; 2962 } 2963 2964 /** 2965 * ice_xdp_safe_mode - XDP handler for safe mode 2966 * @dev: netdevice 2967 * @xdp: XDP command 2968 */ 2969 static int ice_xdp_safe_mode(struct net_device __always_unused *dev, 2970 struct netdev_bpf *xdp) 2971 { 2972 NL_SET_ERR_MSG_MOD(xdp->extack, 2973 "Please provide working DDP firmware package in order to use XDP\n" 2974 "Refer to Documentation/networking/device_drivers/ethernet/intel/ice.rst"); 2975 return -EOPNOTSUPP; 2976 } 2977 2978 /** 2979 * ice_xdp - implements XDP handler 2980 * @dev: netdevice 2981 * @xdp: XDP command 2982 */ 2983 int ice_xdp(struct net_device *dev, struct netdev_bpf *xdp) 2984 { 2985 struct ice_netdev_priv *np = netdev_priv(dev); 2986 struct ice_vsi *vsi = np->vsi; 2987 int ret; 2988 2989 if (vsi->type != ICE_VSI_PF && vsi->type != ICE_VSI_SF) { 2990 NL_SET_ERR_MSG_MOD(xdp->extack, "XDP can be loaded only on PF or SF VSI"); 2991 return -EINVAL; 2992 } 2993 2994 mutex_lock(&vsi->xdp_state_lock); 2995 2996 switch (xdp->command) { 2997 case XDP_SETUP_PROG: 2998 ret = ice_xdp_setup_prog(vsi, xdp->prog, xdp->extack); 2999 break; 3000 case XDP_SETUP_XSK_POOL: 3001 ret = ice_xsk_pool_setup(vsi, xdp->xsk.pool, xdp->xsk.queue_id); 3002 break; 3003 default: 3004 ret = -EINVAL; 3005 } 3006 3007 mutex_unlock(&vsi->xdp_state_lock); 3008 return ret; 3009 } 3010 3011 /** 3012 * ice_ena_misc_vector - enable the non-queue interrupts 3013 * @pf: board private structure 3014 */ 3015 static void ice_ena_misc_vector(struct ice_pf *pf) 3016 { 3017 struct ice_hw *hw = &pf->hw; 3018 u32 pf_intr_start_offset; 3019 u32 val; 3020 3021 /* Disable anti-spoof detection interrupt to prevent spurious event 3022 * interrupts during a function reset. Anti-spoof functionally is 3023 * still supported. 3024 */ 3025 val = rd32(hw, GL_MDCK_TX_TDPU); 3026 val |= GL_MDCK_TX_TDPU_RCU_ANTISPOOF_ITR_DIS_M; 3027 wr32(hw, GL_MDCK_TX_TDPU, val); 3028 3029 /* clear things first */ 3030 wr32(hw, PFINT_OICR_ENA, 0); /* disable all */ 3031 rd32(hw, PFINT_OICR); /* read to clear */ 3032 3033 val = (PFINT_OICR_ECC_ERR_M | 3034 PFINT_OICR_MAL_DETECT_M | 3035 PFINT_OICR_GRST_M | 3036 PFINT_OICR_PCI_EXCEPTION_M | 3037 PFINT_OICR_VFLR_M | 3038 PFINT_OICR_HMC_ERR_M | 3039 PFINT_OICR_PE_PUSH_M | 3040 PFINT_OICR_PE_CRITERR_M); 3041 3042 wr32(hw, PFINT_OICR_ENA, val); 3043 3044 /* SW_ITR_IDX = 0, but don't change INTENA */ 3045 wr32(hw, GLINT_DYN_CTL(pf->oicr_irq.index), 3046 GLINT_DYN_CTL_SW_ITR_INDX_M | GLINT_DYN_CTL_INTENA_MSK_M); 3047 3048 if (!pf->hw.dev_caps.ts_dev_info.ts_ll_int_read) 3049 return; 3050 pf_intr_start_offset = rd32(hw, PFINT_ALLOC) & PFINT_ALLOC_FIRST; 3051 wr32(hw, GLINT_DYN_CTL(pf->ll_ts_irq.index + pf_intr_start_offset), 3052 GLINT_DYN_CTL_SW_ITR_INDX_M | GLINT_DYN_CTL_INTENA_MSK_M); 3053 } 3054 3055 /** 3056 * ice_ll_ts_intr - ll_ts interrupt handler 3057 * @irq: interrupt number 3058 * @data: pointer to a q_vector 3059 */ 3060 static irqreturn_t ice_ll_ts_intr(int __always_unused irq, void *data) 3061 { 3062 struct ice_pf *pf = data; 3063 u32 pf_intr_start_offset; 3064 struct ice_ptp_tx *tx; 3065 unsigned long flags; 3066 struct ice_hw *hw; 3067 u32 val; 3068 u8 idx; 3069 3070 hw = &pf->hw; 3071 tx = &pf->ptp.port.tx; 3072 spin_lock_irqsave(&tx->lock, flags); 3073 if (tx->init) { 3074 ice_ptp_complete_tx_single_tstamp(tx); 3075 3076 idx = find_next_bit_wrap(tx->in_use, tx->len, 3077 tx->last_ll_ts_idx_read + 1); 3078 if (idx != tx->len) 3079 ice_ptp_req_tx_single_tstamp(tx, idx); 3080 } 3081 spin_unlock_irqrestore(&tx->lock, flags); 3082 3083 val = GLINT_DYN_CTL_INTENA_M | GLINT_DYN_CTL_CLEARPBA_M | 3084 (ICE_ITR_NONE << GLINT_DYN_CTL_ITR_INDX_S); 3085 pf_intr_start_offset = rd32(hw, PFINT_ALLOC) & PFINT_ALLOC_FIRST; 3086 wr32(hw, GLINT_DYN_CTL(pf->ll_ts_irq.index + pf_intr_start_offset), 3087 val); 3088 3089 return IRQ_HANDLED; 3090 } 3091 3092 /** 3093 * ice_misc_intr - misc interrupt handler 3094 * @irq: interrupt number 3095 * @data: pointer to a q_vector 3096 */ 3097 static irqreturn_t ice_misc_intr(int __always_unused irq, void *data) 3098 { 3099 struct ice_pf *pf = (struct ice_pf *)data; 3100 irqreturn_t ret = IRQ_HANDLED; 3101 struct ice_hw *hw = &pf->hw; 3102 struct device *dev; 3103 u32 oicr, ena_mask; 3104 3105 dev = ice_pf_to_dev(pf); 3106 set_bit(ICE_ADMINQ_EVENT_PENDING, pf->state); 3107 set_bit(ICE_MAILBOXQ_EVENT_PENDING, pf->state); 3108 set_bit(ICE_SIDEBANDQ_EVENT_PENDING, pf->state); 3109 3110 oicr = rd32(hw, PFINT_OICR); 3111 ena_mask = rd32(hw, PFINT_OICR_ENA); 3112 3113 if (oicr & PFINT_OICR_SWINT_M) { 3114 ena_mask &= ~PFINT_OICR_SWINT_M; 3115 pf->sw_int_count++; 3116 } 3117 3118 if (oicr & PFINT_OICR_MAL_DETECT_M) { 3119 ena_mask &= ~PFINT_OICR_MAL_DETECT_M; 3120 set_bit(ICE_MDD_EVENT_PENDING, pf->state); 3121 } 3122 if (oicr & PFINT_OICR_VFLR_M) { 3123 /* disable any further VFLR event notifications */ 3124 if (test_bit(ICE_VF_RESETS_DISABLED, pf->state)) { 3125 u32 reg = rd32(hw, PFINT_OICR_ENA); 3126 3127 reg &= ~PFINT_OICR_VFLR_M; 3128 wr32(hw, PFINT_OICR_ENA, reg); 3129 } else { 3130 ena_mask &= ~PFINT_OICR_VFLR_M; 3131 set_bit(ICE_VFLR_EVENT_PENDING, pf->state); 3132 } 3133 } 3134 3135 if (oicr & PFINT_OICR_GRST_M) { 3136 u32 reset; 3137 3138 /* we have a reset warning */ 3139 ena_mask &= ~PFINT_OICR_GRST_M; 3140 reset = FIELD_GET(GLGEN_RSTAT_RESET_TYPE_M, 3141 rd32(hw, GLGEN_RSTAT)); 3142 3143 if (reset == ICE_RESET_CORER) 3144 pf->corer_count++; 3145 else if (reset == ICE_RESET_GLOBR) 3146 pf->globr_count++; 3147 else if (reset == ICE_RESET_EMPR) 3148 pf->empr_count++; 3149 else 3150 dev_dbg(dev, "Invalid reset type %d\n", reset); 3151 3152 /* If a reset cycle isn't already in progress, we set a bit in 3153 * pf->state so that the service task can start a reset/rebuild. 3154 */ 3155 if (!test_and_set_bit(ICE_RESET_OICR_RECV, pf->state)) { 3156 if (reset == ICE_RESET_CORER) 3157 set_bit(ICE_CORER_RECV, pf->state); 3158 else if (reset == ICE_RESET_GLOBR) 3159 set_bit(ICE_GLOBR_RECV, pf->state); 3160 else 3161 set_bit(ICE_EMPR_RECV, pf->state); 3162 3163 /* There are couple of different bits at play here. 3164 * hw->reset_ongoing indicates whether the hardware is 3165 * in reset. This is set to true when a reset interrupt 3166 * is received and set back to false after the driver 3167 * has determined that the hardware is out of reset. 3168 * 3169 * ICE_RESET_OICR_RECV in pf->state indicates 3170 * that a post reset rebuild is required before the 3171 * driver is operational again. This is set above. 3172 * 3173 * As this is the start of the reset/rebuild cycle, set 3174 * both to indicate that. 3175 */ 3176 hw->reset_ongoing = true; 3177 } 3178 } 3179 3180 if (oicr & PFINT_OICR_TSYN_TX_M) { 3181 ena_mask &= ~PFINT_OICR_TSYN_TX_M; 3182 3183 ret = ice_ptp_ts_irq(pf); 3184 } 3185 3186 if (oicr & PFINT_OICR_TSYN_EVNT_M) { 3187 u8 tmr_idx = hw->func_caps.ts_func_info.tmr_index_owned; 3188 u32 gltsyn_stat = rd32(hw, GLTSYN_STAT(tmr_idx)); 3189 3190 ena_mask &= ~PFINT_OICR_TSYN_EVNT_M; 3191 3192 if (ice_pf_src_tmr_owned(pf)) { 3193 /* Save EVENTs from GLTSYN register */ 3194 pf->ptp.ext_ts_irq |= gltsyn_stat & 3195 (GLTSYN_STAT_EVENT0_M | 3196 GLTSYN_STAT_EVENT1_M | 3197 GLTSYN_STAT_EVENT2_M); 3198 3199 ice_ptp_extts_event(pf); 3200 } 3201 } 3202 3203 #define ICE_AUX_CRIT_ERR (PFINT_OICR_PE_CRITERR_M | PFINT_OICR_HMC_ERR_M | PFINT_OICR_PE_PUSH_M) 3204 if (oicr & ICE_AUX_CRIT_ERR) { 3205 pf->oicr_err_reg |= oicr; 3206 set_bit(ICE_AUX_ERR_PENDING, pf->state); 3207 ena_mask &= ~ICE_AUX_CRIT_ERR; 3208 } 3209 3210 /* Report any remaining unexpected interrupts */ 3211 oicr &= ena_mask; 3212 if (oicr) { 3213 dev_dbg(dev, "unhandled interrupt oicr=0x%08x\n", oicr); 3214 /* If a critical error is pending there is no choice but to 3215 * reset the device. 3216 */ 3217 if (oicr & (PFINT_OICR_PCI_EXCEPTION_M | 3218 PFINT_OICR_ECC_ERR_M)) { 3219 set_bit(ICE_PFR_REQ, pf->state); 3220 } 3221 } 3222 ice_service_task_schedule(pf); 3223 if (ret == IRQ_HANDLED) 3224 ice_irq_dynamic_ena(hw, NULL, NULL); 3225 3226 return ret; 3227 } 3228 3229 /** 3230 * ice_misc_intr_thread_fn - misc interrupt thread function 3231 * @irq: interrupt number 3232 * @data: pointer to a q_vector 3233 */ 3234 static irqreturn_t ice_misc_intr_thread_fn(int __always_unused irq, void *data) 3235 { 3236 struct ice_pf *pf = data; 3237 struct ice_hw *hw; 3238 3239 hw = &pf->hw; 3240 3241 if (ice_is_reset_in_progress(pf->state)) 3242 goto skip_irq; 3243 3244 if (test_and_clear_bit(ICE_MISC_THREAD_TX_TSTAMP, pf->misc_thread)) 3245 ice_ptp_process_ts(pf); 3246 3247 skip_irq: 3248 ice_irq_dynamic_ena(hw, NULL, NULL); 3249 ice_flush(hw); 3250 3251 if (ice_ptp_tx_tstamps_pending(pf)) { 3252 /* If any new Tx timestamps happened while in interrupt, 3253 * re-arm the interrupt to trigger it again. 3254 */ 3255 wr32(hw, PFINT_OICR, PFINT_OICR_TSYN_TX_M); 3256 ice_flush(hw); 3257 } 3258 3259 return IRQ_HANDLED; 3260 } 3261 3262 /** 3263 * ice_dis_ctrlq_interrupts - disable control queue interrupts 3264 * @hw: pointer to HW structure 3265 */ 3266 static void ice_dis_ctrlq_interrupts(struct ice_hw *hw) 3267 { 3268 /* disable Admin queue Interrupt causes */ 3269 wr32(hw, PFINT_FW_CTL, 3270 rd32(hw, PFINT_FW_CTL) & ~PFINT_FW_CTL_CAUSE_ENA_M); 3271 3272 /* disable Mailbox queue Interrupt causes */ 3273 wr32(hw, PFINT_MBX_CTL, 3274 rd32(hw, PFINT_MBX_CTL) & ~PFINT_MBX_CTL_CAUSE_ENA_M); 3275 3276 wr32(hw, PFINT_SB_CTL, 3277 rd32(hw, PFINT_SB_CTL) & ~PFINT_SB_CTL_CAUSE_ENA_M); 3278 3279 /* disable Control queue Interrupt causes */ 3280 wr32(hw, PFINT_OICR_CTL, 3281 rd32(hw, PFINT_OICR_CTL) & ~PFINT_OICR_CTL_CAUSE_ENA_M); 3282 3283 ice_flush(hw); 3284 } 3285 3286 /** 3287 * ice_free_irq_msix_ll_ts- Unroll ll_ts vector setup 3288 * @pf: board private structure 3289 */ 3290 static void ice_free_irq_msix_ll_ts(struct ice_pf *pf) 3291 { 3292 int irq_num = pf->ll_ts_irq.virq; 3293 3294 synchronize_irq(irq_num); 3295 devm_free_irq(ice_pf_to_dev(pf), irq_num, pf); 3296 3297 ice_free_irq(pf, pf->ll_ts_irq); 3298 } 3299 3300 /** 3301 * ice_free_irq_msix_misc - Unroll misc vector setup 3302 * @pf: board private structure 3303 */ 3304 static void ice_free_irq_msix_misc(struct ice_pf *pf) 3305 { 3306 int misc_irq_num = pf->oicr_irq.virq; 3307 struct ice_hw *hw = &pf->hw; 3308 3309 ice_dis_ctrlq_interrupts(hw); 3310 3311 /* disable OICR interrupt */ 3312 wr32(hw, PFINT_OICR_ENA, 0); 3313 ice_flush(hw); 3314 3315 synchronize_irq(misc_irq_num); 3316 devm_free_irq(ice_pf_to_dev(pf), misc_irq_num, pf); 3317 3318 ice_free_irq(pf, pf->oicr_irq); 3319 if (pf->hw.dev_caps.ts_dev_info.ts_ll_int_read) 3320 ice_free_irq_msix_ll_ts(pf); 3321 } 3322 3323 /** 3324 * ice_ena_ctrlq_interrupts - enable control queue interrupts 3325 * @hw: pointer to HW structure 3326 * @reg_idx: HW vector index to associate the control queue interrupts with 3327 */ 3328 static void ice_ena_ctrlq_interrupts(struct ice_hw *hw, u16 reg_idx) 3329 { 3330 u32 val; 3331 3332 val = ((reg_idx & PFINT_OICR_CTL_MSIX_INDX_M) | 3333 PFINT_OICR_CTL_CAUSE_ENA_M); 3334 wr32(hw, PFINT_OICR_CTL, val); 3335 3336 /* enable Admin queue Interrupt causes */ 3337 val = ((reg_idx & PFINT_FW_CTL_MSIX_INDX_M) | 3338 PFINT_FW_CTL_CAUSE_ENA_M); 3339 wr32(hw, PFINT_FW_CTL, val); 3340 3341 /* enable Mailbox queue Interrupt causes */ 3342 val = ((reg_idx & PFINT_MBX_CTL_MSIX_INDX_M) | 3343 PFINT_MBX_CTL_CAUSE_ENA_M); 3344 wr32(hw, PFINT_MBX_CTL, val); 3345 3346 if (!hw->dev_caps.ts_dev_info.ts_ll_int_read) { 3347 /* enable Sideband queue Interrupt causes */ 3348 val = ((reg_idx & PFINT_SB_CTL_MSIX_INDX_M) | 3349 PFINT_SB_CTL_CAUSE_ENA_M); 3350 wr32(hw, PFINT_SB_CTL, val); 3351 } 3352 3353 ice_flush(hw); 3354 } 3355 3356 /** 3357 * ice_req_irq_msix_misc - Setup the misc vector to handle non queue events 3358 * @pf: board private structure 3359 * 3360 * This sets up the handler for MSIX 0, which is used to manage the 3361 * non-queue interrupts, e.g. AdminQ and errors. This is not used 3362 * when in MSI or Legacy interrupt mode. 3363 */ 3364 static int ice_req_irq_msix_misc(struct ice_pf *pf) 3365 { 3366 struct device *dev = ice_pf_to_dev(pf); 3367 struct ice_hw *hw = &pf->hw; 3368 u32 pf_intr_start_offset; 3369 struct msi_map irq; 3370 int err = 0; 3371 3372 if (!pf->int_name[0]) 3373 snprintf(pf->int_name, sizeof(pf->int_name) - 1, "%s-%s:misc", 3374 dev_driver_string(dev), dev_name(dev)); 3375 3376 if (!pf->int_name_ll_ts[0]) 3377 snprintf(pf->int_name_ll_ts, sizeof(pf->int_name_ll_ts) - 1, 3378 "%s-%s:ll_ts", dev_driver_string(dev), dev_name(dev)); 3379 /* Do not request IRQ but do enable OICR interrupt since settings are 3380 * lost during reset. Note that this function is called only during 3381 * rebuild path and not while reset is in progress. 3382 */ 3383 if (ice_is_reset_in_progress(pf->state)) 3384 goto skip_req_irq; 3385 3386 /* reserve one vector in irq_tracker for misc interrupts */ 3387 irq = ice_alloc_irq(pf, false); 3388 if (irq.index < 0) 3389 return irq.index; 3390 3391 pf->oicr_irq = irq; 3392 err = devm_request_threaded_irq(dev, pf->oicr_irq.virq, ice_misc_intr, 3393 ice_misc_intr_thread_fn, 0, 3394 pf->int_name, pf); 3395 if (err) { 3396 dev_err(dev, "devm_request_threaded_irq for %s failed: %d\n", 3397 pf->int_name, err); 3398 ice_free_irq(pf, pf->oicr_irq); 3399 return err; 3400 } 3401 3402 /* reserve one vector in irq_tracker for ll_ts interrupt */ 3403 if (!pf->hw.dev_caps.ts_dev_info.ts_ll_int_read) 3404 goto skip_req_irq; 3405 3406 irq = ice_alloc_irq(pf, false); 3407 if (irq.index < 0) 3408 return irq.index; 3409 3410 pf->ll_ts_irq = irq; 3411 err = devm_request_irq(dev, pf->ll_ts_irq.virq, ice_ll_ts_intr, 0, 3412 pf->int_name_ll_ts, pf); 3413 if (err) { 3414 dev_err(dev, "devm_request_irq for %s failed: %d\n", 3415 pf->int_name_ll_ts, err); 3416 ice_free_irq(pf, pf->ll_ts_irq); 3417 return err; 3418 } 3419 3420 skip_req_irq: 3421 ice_ena_misc_vector(pf); 3422 3423 ice_ena_ctrlq_interrupts(hw, pf->oicr_irq.index); 3424 /* This enables LL TS interrupt */ 3425 pf_intr_start_offset = rd32(hw, PFINT_ALLOC) & PFINT_ALLOC_FIRST; 3426 if (pf->hw.dev_caps.ts_dev_info.ts_ll_int_read) 3427 wr32(hw, PFINT_SB_CTL, 3428 ((pf->ll_ts_irq.index + pf_intr_start_offset) & 3429 PFINT_SB_CTL_MSIX_INDX_M) | PFINT_SB_CTL_CAUSE_ENA_M); 3430 wr32(hw, GLINT_ITR(ICE_RX_ITR, pf->oicr_irq.index), 3431 ITR_REG_ALIGN(ICE_ITR_8K) >> ICE_ITR_GRAN_S); 3432 3433 ice_flush(hw); 3434 ice_irq_dynamic_ena(hw, NULL, NULL); 3435 3436 return 0; 3437 } 3438 3439 /** 3440 * ice_set_ops - set netdev and ethtools ops for the given netdev 3441 * @vsi: the VSI associated with the new netdev 3442 */ 3443 static void ice_set_ops(struct ice_vsi *vsi) 3444 { 3445 struct net_device *netdev = vsi->netdev; 3446 struct ice_pf *pf = ice_netdev_to_pf(netdev); 3447 3448 if (ice_is_safe_mode(pf)) { 3449 netdev->netdev_ops = &ice_netdev_safe_mode_ops; 3450 ice_set_ethtool_safe_mode_ops(netdev); 3451 return; 3452 } 3453 3454 netdev->netdev_ops = &ice_netdev_ops; 3455 netdev->udp_tunnel_nic_info = &pf->hw.udp_tunnel_nic; 3456 netdev->xdp_metadata_ops = &ice_xdp_md_ops; 3457 ice_set_ethtool_ops(netdev); 3458 3459 if (vsi->type != ICE_VSI_PF) 3460 return; 3461 3462 netdev->xdp_features = NETDEV_XDP_ACT_BASIC | NETDEV_XDP_ACT_REDIRECT | 3463 NETDEV_XDP_ACT_XSK_ZEROCOPY | 3464 NETDEV_XDP_ACT_RX_SG; 3465 netdev->xdp_zc_max_segs = ICE_MAX_BUF_TXD; 3466 } 3467 3468 /** 3469 * ice_set_netdev_features - set features for the given netdev 3470 * @netdev: netdev instance 3471 */ 3472 void ice_set_netdev_features(struct net_device *netdev) 3473 { 3474 struct ice_pf *pf = ice_netdev_to_pf(netdev); 3475 bool is_dvm_ena = ice_is_dvm_ena(&pf->hw); 3476 netdev_features_t csumo_features; 3477 netdev_features_t vlano_features; 3478 netdev_features_t dflt_features; 3479 netdev_features_t tso_features; 3480 3481 if (ice_is_safe_mode(pf)) { 3482 /* safe mode */ 3483 netdev->features = NETIF_F_SG | NETIF_F_HIGHDMA; 3484 netdev->hw_features = netdev->features; 3485 return; 3486 } 3487 3488 dflt_features = NETIF_F_SG | 3489 NETIF_F_HIGHDMA | 3490 NETIF_F_NTUPLE | 3491 NETIF_F_RXHASH; 3492 3493 csumo_features = NETIF_F_RXCSUM | 3494 NETIF_F_IP_CSUM | 3495 NETIF_F_SCTP_CRC | 3496 NETIF_F_IPV6_CSUM; 3497 3498 vlano_features = NETIF_F_HW_VLAN_CTAG_FILTER | 3499 NETIF_F_HW_VLAN_CTAG_TX | 3500 NETIF_F_HW_VLAN_CTAG_RX; 3501 3502 /* Enable CTAG/STAG filtering by default in Double VLAN Mode (DVM) */ 3503 if (is_dvm_ena) 3504 vlano_features |= NETIF_F_HW_VLAN_STAG_FILTER; 3505 3506 tso_features = NETIF_F_TSO | 3507 NETIF_F_TSO_ECN | 3508 NETIF_F_TSO6 | 3509 NETIF_F_GSO_GRE | 3510 NETIF_F_GSO_UDP_TUNNEL | 3511 NETIF_F_GSO_GRE_CSUM | 3512 NETIF_F_GSO_UDP_TUNNEL_CSUM | 3513 NETIF_F_GSO_PARTIAL | 3514 NETIF_F_GSO_IPXIP4 | 3515 NETIF_F_GSO_IPXIP6 | 3516 NETIF_F_GSO_UDP_L4; 3517 3518 netdev->gso_partial_features |= NETIF_F_GSO_UDP_TUNNEL_CSUM | 3519 NETIF_F_GSO_GRE_CSUM; 3520 /* set features that user can change */ 3521 netdev->hw_features = dflt_features | csumo_features | 3522 vlano_features | tso_features; 3523 3524 /* add support for HW_CSUM on packets with MPLS header */ 3525 netdev->mpls_features = NETIF_F_HW_CSUM | 3526 NETIF_F_TSO | 3527 NETIF_F_TSO6; 3528 3529 /* enable features */ 3530 netdev->features |= netdev->hw_features; 3531 3532 netdev->hw_features |= NETIF_F_HW_TC; 3533 netdev->hw_features |= NETIF_F_LOOPBACK; 3534 3535 /* encap and VLAN devices inherit default, csumo and tso features */ 3536 netdev->hw_enc_features |= dflt_features | csumo_features | 3537 tso_features; 3538 netdev->vlan_features |= dflt_features | csumo_features | 3539 tso_features; 3540 3541 /* advertise support but don't enable by default since only one type of 3542 * VLAN offload can be enabled at a time (i.e. CTAG or STAG). When one 3543 * type turns on the other has to be turned off. This is enforced by the 3544 * ice_fix_features() ndo callback. 3545 */ 3546 if (is_dvm_ena) 3547 netdev->hw_features |= NETIF_F_HW_VLAN_STAG_RX | 3548 NETIF_F_HW_VLAN_STAG_TX; 3549 3550 /* Leave CRC / FCS stripping enabled by default, but allow the value to 3551 * be changed at runtime 3552 */ 3553 netdev->hw_features |= NETIF_F_RXFCS; 3554 3555 /* Allow core to manage IRQs affinity */ 3556 netif_set_affinity_auto(netdev); 3557 3558 /* Mutual exclusivity for TSO and GCS is enforced by the set features 3559 * ndo callback. 3560 */ 3561 if (ice_is_feature_supported(pf, ICE_F_GCS)) 3562 netdev->hw_features |= NETIF_F_HW_CSUM; 3563 3564 netif_set_tso_max_size(netdev, ICE_MAX_TSO_SIZE); 3565 } 3566 3567 /** 3568 * ice_fill_rss_lut - Fill the RSS lookup table with default values 3569 * @lut: Lookup table 3570 * @rss_table_size: Lookup table size 3571 * @rss_size: Range of queue number for hashing 3572 */ 3573 void ice_fill_rss_lut(u8 *lut, u16 rss_table_size, u16 rss_size) 3574 { 3575 u16 i; 3576 3577 for (i = 0; i < rss_table_size; i++) 3578 lut[i] = i % rss_size; 3579 } 3580 3581 /** 3582 * ice_pf_vsi_setup - Set up a PF VSI 3583 * @pf: board private structure 3584 * @pi: pointer to the port_info instance 3585 * 3586 * Returns pointer to the successfully allocated VSI software struct 3587 * on success, otherwise returns NULL on failure. 3588 */ 3589 static struct ice_vsi * 3590 ice_pf_vsi_setup(struct ice_pf *pf, struct ice_port_info *pi) 3591 { 3592 struct ice_vsi_cfg_params params = {}; 3593 3594 params.type = ICE_VSI_PF; 3595 params.port_info = pi; 3596 params.flags = ICE_VSI_FLAG_INIT; 3597 3598 return ice_vsi_setup(pf, ¶ms); 3599 } 3600 3601 static struct ice_vsi * 3602 ice_chnl_vsi_setup(struct ice_pf *pf, struct ice_port_info *pi, 3603 struct ice_channel *ch) 3604 { 3605 struct ice_vsi_cfg_params params = {}; 3606 3607 params.type = ICE_VSI_CHNL; 3608 params.port_info = pi; 3609 params.ch = ch; 3610 params.flags = ICE_VSI_FLAG_INIT; 3611 3612 return ice_vsi_setup(pf, ¶ms); 3613 } 3614 3615 /** 3616 * ice_ctrl_vsi_setup - Set up a control VSI 3617 * @pf: board private structure 3618 * @pi: pointer to the port_info instance 3619 * 3620 * Returns pointer to the successfully allocated VSI software struct 3621 * on success, otherwise returns NULL on failure. 3622 */ 3623 static struct ice_vsi * 3624 ice_ctrl_vsi_setup(struct ice_pf *pf, struct ice_port_info *pi) 3625 { 3626 struct ice_vsi_cfg_params params = {}; 3627 3628 params.type = ICE_VSI_CTRL; 3629 params.port_info = pi; 3630 params.flags = ICE_VSI_FLAG_INIT; 3631 3632 return ice_vsi_setup(pf, ¶ms); 3633 } 3634 3635 /** 3636 * ice_lb_vsi_setup - Set up a loopback VSI 3637 * @pf: board private structure 3638 * @pi: pointer to the port_info instance 3639 * 3640 * Returns pointer to the successfully allocated VSI software struct 3641 * on success, otherwise returns NULL on failure. 3642 */ 3643 struct ice_vsi * 3644 ice_lb_vsi_setup(struct ice_pf *pf, struct ice_port_info *pi) 3645 { 3646 struct ice_vsi_cfg_params params = {}; 3647 3648 params.type = ICE_VSI_LB; 3649 params.port_info = pi; 3650 params.flags = ICE_VSI_FLAG_INIT; 3651 3652 return ice_vsi_setup(pf, ¶ms); 3653 } 3654 3655 /** 3656 * ice_vlan_rx_add_vid - Add a VLAN ID filter to HW offload 3657 * @netdev: network interface to be adjusted 3658 * @proto: VLAN TPID 3659 * @vid: VLAN ID to be added 3660 * 3661 * net_device_ops implementation for adding VLAN IDs 3662 */ 3663 int ice_vlan_rx_add_vid(struct net_device *netdev, __be16 proto, u16 vid) 3664 { 3665 struct ice_netdev_priv *np = netdev_priv(netdev); 3666 struct ice_vsi_vlan_ops *vlan_ops; 3667 struct ice_vsi *vsi = np->vsi; 3668 struct ice_vlan vlan; 3669 int ret; 3670 3671 /* VLAN 0 is added by default during load/reset */ 3672 if (!vid) 3673 return 0; 3674 3675 while (test_and_set_bit(ICE_CFG_BUSY, vsi->state)) 3676 usleep_range(1000, 2000); 3677 3678 /* Add multicast promisc rule for the VLAN ID to be added if 3679 * all-multicast is currently enabled. 3680 */ 3681 if (vsi->current_netdev_flags & IFF_ALLMULTI) { 3682 ret = ice_fltr_set_vsi_promisc(&vsi->back->hw, vsi->idx, 3683 ICE_MCAST_VLAN_PROMISC_BITS, 3684 vid); 3685 if (ret && ret != -EEXIST) 3686 goto finish; 3687 } 3688 3689 vlan_ops = ice_get_compat_vsi_vlan_ops(vsi); 3690 3691 /* Add a switch rule for this VLAN ID so its corresponding VLAN tagged 3692 * packets aren't pruned by the device's internal switch on Rx 3693 */ 3694 vlan = ICE_VLAN(be16_to_cpu(proto), vid, 0); 3695 ret = vlan_ops->add_vlan(vsi, &vlan); 3696 if (ret) 3697 goto finish; 3698 3699 /* If all-multicast is currently enabled and this VLAN ID is only one 3700 * besides VLAN-0 we have to update look-up type of multicast promisc 3701 * rule for VLAN-0 from ICE_SW_LKUP_PROMISC to ICE_SW_LKUP_PROMISC_VLAN. 3702 */ 3703 if ((vsi->current_netdev_flags & IFF_ALLMULTI) && 3704 ice_vsi_num_non_zero_vlans(vsi) == 1) { 3705 ice_fltr_clear_vsi_promisc(&vsi->back->hw, vsi->idx, 3706 ICE_MCAST_PROMISC_BITS, 0); 3707 ice_fltr_set_vsi_promisc(&vsi->back->hw, vsi->idx, 3708 ICE_MCAST_VLAN_PROMISC_BITS, 0); 3709 } 3710 3711 finish: 3712 clear_bit(ICE_CFG_BUSY, vsi->state); 3713 3714 return ret; 3715 } 3716 3717 /** 3718 * ice_vlan_rx_kill_vid - Remove a VLAN ID filter from HW offload 3719 * @netdev: network interface to be adjusted 3720 * @proto: VLAN TPID 3721 * @vid: VLAN ID to be removed 3722 * 3723 * net_device_ops implementation for removing VLAN IDs 3724 */ 3725 int ice_vlan_rx_kill_vid(struct net_device *netdev, __be16 proto, u16 vid) 3726 { 3727 struct ice_netdev_priv *np = netdev_priv(netdev); 3728 struct ice_vsi_vlan_ops *vlan_ops; 3729 struct ice_vsi *vsi = np->vsi; 3730 struct ice_vlan vlan; 3731 int ret; 3732 3733 /* don't allow removal of VLAN 0 */ 3734 if (!vid) 3735 return 0; 3736 3737 while (test_and_set_bit(ICE_CFG_BUSY, vsi->state)) 3738 usleep_range(1000, 2000); 3739 3740 ret = ice_clear_vsi_promisc(&vsi->back->hw, vsi->idx, 3741 ICE_MCAST_VLAN_PROMISC_BITS, vid); 3742 if (ret) { 3743 netdev_err(netdev, "Error clearing multicast promiscuous mode on VSI %i\n", 3744 vsi->vsi_num); 3745 vsi->current_netdev_flags |= IFF_ALLMULTI; 3746 } 3747 3748 vlan_ops = ice_get_compat_vsi_vlan_ops(vsi); 3749 3750 /* Make sure VLAN delete is successful before updating VLAN 3751 * information 3752 */ 3753 vlan = ICE_VLAN(be16_to_cpu(proto), vid, 0); 3754 ret = vlan_ops->del_vlan(vsi, &vlan); 3755 if (ret) 3756 goto finish; 3757 3758 /* Remove multicast promisc rule for the removed VLAN ID if 3759 * all-multicast is enabled. 3760 */ 3761 if (vsi->current_netdev_flags & IFF_ALLMULTI) 3762 ice_fltr_clear_vsi_promisc(&vsi->back->hw, vsi->idx, 3763 ICE_MCAST_VLAN_PROMISC_BITS, vid); 3764 3765 if (!ice_vsi_has_non_zero_vlans(vsi)) { 3766 /* Update look-up type of multicast promisc rule for VLAN 0 3767 * from ICE_SW_LKUP_PROMISC_VLAN to ICE_SW_LKUP_PROMISC when 3768 * all-multicast is enabled and VLAN 0 is the only VLAN rule. 3769 */ 3770 if (vsi->current_netdev_flags & IFF_ALLMULTI) { 3771 ice_fltr_clear_vsi_promisc(&vsi->back->hw, vsi->idx, 3772 ICE_MCAST_VLAN_PROMISC_BITS, 3773 0); 3774 ice_fltr_set_vsi_promisc(&vsi->back->hw, vsi->idx, 3775 ICE_MCAST_PROMISC_BITS, 0); 3776 } 3777 } 3778 3779 finish: 3780 clear_bit(ICE_CFG_BUSY, vsi->state); 3781 3782 return ret; 3783 } 3784 3785 /** 3786 * ice_rep_indr_tc_block_unbind 3787 * @cb_priv: indirection block private data 3788 */ 3789 static void ice_rep_indr_tc_block_unbind(void *cb_priv) 3790 { 3791 struct ice_indr_block_priv *indr_priv = cb_priv; 3792 3793 list_del(&indr_priv->list); 3794 kfree(indr_priv); 3795 } 3796 3797 /** 3798 * ice_tc_indir_block_unregister - Unregister TC indirect block notifications 3799 * @vsi: VSI struct which has the netdev 3800 */ 3801 static void ice_tc_indir_block_unregister(struct ice_vsi *vsi) 3802 { 3803 struct ice_netdev_priv *np = netdev_priv(vsi->netdev); 3804 3805 flow_indr_dev_unregister(ice_indr_setup_tc_cb, np, 3806 ice_rep_indr_tc_block_unbind); 3807 } 3808 3809 /** 3810 * ice_tc_indir_block_register - Register TC indirect block notifications 3811 * @vsi: VSI struct which has the netdev 3812 * 3813 * Returns 0 on success, negative value on failure 3814 */ 3815 static int ice_tc_indir_block_register(struct ice_vsi *vsi) 3816 { 3817 struct ice_netdev_priv *np; 3818 3819 if (!vsi || !vsi->netdev) 3820 return -EINVAL; 3821 3822 np = netdev_priv(vsi->netdev); 3823 3824 INIT_LIST_HEAD(&np->tc_indr_block_priv_list); 3825 return flow_indr_dev_register(ice_indr_setup_tc_cb, np); 3826 } 3827 3828 /** 3829 * ice_get_avail_q_count - Get count of queues in use 3830 * @pf_qmap: bitmap to get queue use count from 3831 * @lock: pointer to a mutex that protects access to pf_qmap 3832 * @size: size of the bitmap 3833 */ 3834 static u16 3835 ice_get_avail_q_count(unsigned long *pf_qmap, struct mutex *lock, u16 size) 3836 { 3837 unsigned long bit; 3838 u16 count = 0; 3839 3840 mutex_lock(lock); 3841 for_each_clear_bit(bit, pf_qmap, size) 3842 count++; 3843 mutex_unlock(lock); 3844 3845 return count; 3846 } 3847 3848 /** 3849 * ice_get_avail_txq_count - Get count of Tx queues in use 3850 * @pf: pointer to an ice_pf instance 3851 */ 3852 u16 ice_get_avail_txq_count(struct ice_pf *pf) 3853 { 3854 return ice_get_avail_q_count(pf->avail_txqs, &pf->avail_q_mutex, 3855 pf->max_pf_txqs); 3856 } 3857 3858 /** 3859 * ice_get_avail_rxq_count - Get count of Rx queues in use 3860 * @pf: pointer to an ice_pf instance 3861 */ 3862 u16 ice_get_avail_rxq_count(struct ice_pf *pf) 3863 { 3864 return ice_get_avail_q_count(pf->avail_rxqs, &pf->avail_q_mutex, 3865 pf->max_pf_rxqs); 3866 } 3867 3868 /** 3869 * ice_deinit_pf - Unrolls initialziations done by ice_init_pf 3870 * @pf: board private structure to initialize 3871 */ 3872 void ice_deinit_pf(struct ice_pf *pf) 3873 { 3874 /* note that we unroll also on ice_init_pf() failure here */ 3875 3876 mutex_destroy(&pf->lag_mutex); 3877 mutex_destroy(&pf->adev_mutex); 3878 mutex_destroy(&pf->sw_mutex); 3879 mutex_destroy(&pf->tc_mutex); 3880 mutex_destroy(&pf->avail_q_mutex); 3881 mutex_destroy(&pf->vfs.table_lock); 3882 3883 if (pf->avail_txqs) { 3884 bitmap_free(pf->avail_txqs); 3885 pf->avail_txqs = NULL; 3886 } 3887 3888 if (pf->avail_rxqs) { 3889 bitmap_free(pf->avail_rxqs); 3890 pf->avail_rxqs = NULL; 3891 } 3892 3893 if (pf->txtime_txqs) { 3894 bitmap_free(pf->txtime_txqs); 3895 pf->txtime_txqs = NULL; 3896 } 3897 3898 if (pf->ptp.clock) 3899 ptp_clock_unregister(pf->ptp.clock); 3900 3901 if (!xa_empty(&pf->irq_tracker.entries)) 3902 ice_free_irq_msix_misc(pf); 3903 3904 xa_destroy(&pf->dyn_ports); 3905 xa_destroy(&pf->sf_nums); 3906 } 3907 3908 /** 3909 * ice_set_pf_caps - set PFs capability flags 3910 * @pf: pointer to the PF instance 3911 */ 3912 static void ice_set_pf_caps(struct ice_pf *pf) 3913 { 3914 struct ice_hw_func_caps *func_caps = &pf->hw.func_caps; 3915 3916 clear_bit(ICE_FLAG_RDMA_ENA, pf->flags); 3917 if (func_caps->common_cap.rdma) 3918 set_bit(ICE_FLAG_RDMA_ENA, pf->flags); 3919 clear_bit(ICE_FLAG_DCB_CAPABLE, pf->flags); 3920 if (func_caps->common_cap.dcb) 3921 set_bit(ICE_FLAG_DCB_CAPABLE, pf->flags); 3922 clear_bit(ICE_FLAG_SRIOV_CAPABLE, pf->flags); 3923 if (func_caps->common_cap.sr_iov_1_1) { 3924 set_bit(ICE_FLAG_SRIOV_CAPABLE, pf->flags); 3925 pf->vfs.num_supported = min_t(int, func_caps->num_allocd_vfs, 3926 ICE_MAX_SRIOV_VFS); 3927 } 3928 clear_bit(ICE_FLAG_RSS_ENA, pf->flags); 3929 if (func_caps->common_cap.rss_table_size) 3930 set_bit(ICE_FLAG_RSS_ENA, pf->flags); 3931 3932 clear_bit(ICE_FLAG_FD_ENA, pf->flags); 3933 if (func_caps->fd_fltr_guar > 0 || func_caps->fd_fltr_best_effort > 0) { 3934 u16 unused; 3935 3936 /* ctrl_vsi_idx will be set to a valid value when flow director 3937 * is setup by ice_init_fdir 3938 */ 3939 pf->ctrl_vsi_idx = ICE_NO_VSI; 3940 set_bit(ICE_FLAG_FD_ENA, pf->flags); 3941 /* force guaranteed filter pool for PF */ 3942 ice_alloc_fd_guar_item(&pf->hw, &unused, 3943 func_caps->fd_fltr_guar); 3944 /* force shared filter pool for PF */ 3945 ice_alloc_fd_shrd_item(&pf->hw, &unused, 3946 func_caps->fd_fltr_best_effort); 3947 } 3948 3949 clear_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags); 3950 if (func_caps->common_cap.ieee_1588) 3951 set_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags); 3952 3953 pf->max_pf_txqs = func_caps->common_cap.num_txq; 3954 pf->max_pf_rxqs = func_caps->common_cap.num_rxq; 3955 } 3956 3957 void ice_start_service_task(struct ice_pf *pf) 3958 { 3959 timer_setup(&pf->serv_tmr, ice_service_timer, 0); 3960 pf->serv_tmr_period = HZ; 3961 INIT_WORK(&pf->serv_task, ice_service_task); 3962 clear_bit(ICE_SERVICE_SCHED, pf->state); 3963 } 3964 3965 /** 3966 * ice_init_pf - Initialize general software structures (struct ice_pf) 3967 * @pf: board private structure to initialize 3968 * Return: 0 on success, negative errno otherwise. 3969 */ 3970 int ice_init_pf(struct ice_pf *pf) 3971 { 3972 struct udp_tunnel_nic_info *udp_tunnel_nic = &pf->hw.udp_tunnel_nic; 3973 struct device *dev = ice_pf_to_dev(pf); 3974 struct ice_hw *hw = &pf->hw; 3975 int err = -ENOMEM; 3976 3977 mutex_init(&pf->sw_mutex); 3978 mutex_init(&pf->tc_mutex); 3979 mutex_init(&pf->adev_mutex); 3980 mutex_init(&pf->lag_mutex); 3981 3982 INIT_HLIST_HEAD(&pf->aq_wait_list); 3983 spin_lock_init(&pf->aq_wait_lock); 3984 init_waitqueue_head(&pf->aq_wait_queue); 3985 3986 init_waitqueue_head(&pf->reset_wait_queue); 3987 3988 mutex_init(&pf->avail_q_mutex); 3989 3990 mutex_init(&pf->vfs.table_lock); 3991 hash_init(pf->vfs.table); 3992 if (ice_is_feature_supported(pf, ICE_F_MBX_LIMIT)) 3993 wr32(&pf->hw, E830_MBX_PF_IN_FLIGHT_VF_MSGS_THRESH, 3994 ICE_MBX_OVERFLOW_WATERMARK); 3995 else 3996 ice_mbx_init_snapshot(&pf->hw); 3997 3998 xa_init(&pf->dyn_ports); 3999 xa_init(&pf->sf_nums); 4000 4001 pf->avail_txqs = bitmap_zalloc(pf->max_pf_txqs, GFP_KERNEL); 4002 pf->avail_rxqs = bitmap_zalloc(pf->max_pf_rxqs, GFP_KERNEL); 4003 pf->txtime_txqs = bitmap_zalloc(pf->max_pf_txqs, GFP_KERNEL); 4004 if (!pf->avail_txqs || !pf->avail_rxqs || !pf->txtime_txqs) 4005 goto undo_init; 4006 4007 udp_tunnel_nic->set_port = ice_udp_tunnel_set_port; 4008 udp_tunnel_nic->unset_port = ice_udp_tunnel_unset_port; 4009 udp_tunnel_nic->shared = &hw->udp_tunnel_shared; 4010 udp_tunnel_nic->tables[0].n_entries = hw->tnl.valid_count[TNL_VXLAN]; 4011 udp_tunnel_nic->tables[0].tunnel_types = UDP_TUNNEL_TYPE_VXLAN; 4012 udp_tunnel_nic->tables[1].n_entries = hw->tnl.valid_count[TNL_GENEVE]; 4013 udp_tunnel_nic->tables[1].tunnel_types = UDP_TUNNEL_TYPE_GENEVE; 4014 4015 /* In case of MSIX we are going to setup the misc vector right here 4016 * to handle admin queue events etc. In case of legacy and MSI 4017 * the misc functionality and queue processing is combined in 4018 * the same vector and that gets setup at open. 4019 */ 4020 err = ice_req_irq_msix_misc(pf); 4021 if (err) { 4022 dev_err(dev, "setup of misc vector failed: %d\n", err); 4023 goto undo_init; 4024 } 4025 4026 return 0; 4027 undo_init: 4028 /* deinit handles half-initialized pf just fine */ 4029 ice_deinit_pf(pf); 4030 return err; 4031 } 4032 4033 /** 4034 * ice_is_wol_supported - check if WoL is supported 4035 * @hw: pointer to hardware info 4036 * 4037 * Check if WoL is supported based on the HW configuration. 4038 * Returns true if NVM supports and enables WoL for this port, false otherwise 4039 */ 4040 bool ice_is_wol_supported(struct ice_hw *hw) 4041 { 4042 u16 wol_ctrl; 4043 4044 /* A bit set to 1 in the NVM Software Reserved Word 2 (WoL control 4045 * word) indicates WoL is not supported on the corresponding PF ID. 4046 */ 4047 if (ice_read_sr_word(hw, ICE_SR_NVM_WOL_CFG, &wol_ctrl)) 4048 return false; 4049 4050 return !(BIT(hw->port_info->lport) & wol_ctrl); 4051 } 4052 4053 /** 4054 * ice_vsi_recfg_qs - Change the number of queues on a VSI 4055 * @vsi: VSI being changed 4056 * @new_rx: new number of Rx queues 4057 * @new_tx: new number of Tx queues 4058 * @locked: is adev device_lock held 4059 * 4060 * Only change the number of queues if new_tx, or new_rx is non-0. 4061 * 4062 * Returns 0 on success. 4063 */ 4064 int ice_vsi_recfg_qs(struct ice_vsi *vsi, int new_rx, int new_tx, bool locked) 4065 { 4066 struct ice_pf *pf = vsi->back; 4067 int i, err = 0, timeout = 50; 4068 4069 if (!new_rx && !new_tx) 4070 return -EINVAL; 4071 4072 while (test_and_set_bit(ICE_CFG_BUSY, pf->state)) { 4073 timeout--; 4074 if (!timeout) 4075 return -EBUSY; 4076 usleep_range(1000, 2000); 4077 } 4078 4079 if (new_tx) 4080 vsi->req_txq = (u16)new_tx; 4081 if (new_rx) 4082 vsi->req_rxq = (u16)new_rx; 4083 4084 /* set for the next time the netdev is started */ 4085 if (!netif_running(vsi->netdev)) { 4086 err = ice_vsi_rebuild(vsi, ICE_VSI_FLAG_NO_INIT); 4087 if (err) 4088 goto rebuild_err; 4089 dev_dbg(ice_pf_to_dev(pf), "Link is down, queue count change happens when link is brought up\n"); 4090 goto done; 4091 } 4092 4093 ice_vsi_close(vsi); 4094 err = ice_vsi_rebuild(vsi, ICE_VSI_FLAG_NO_INIT); 4095 if (err) 4096 goto rebuild_err; 4097 4098 ice_for_each_traffic_class(i) { 4099 if (vsi->tc_cfg.ena_tc & BIT(i)) 4100 netdev_set_tc_queue(vsi->netdev, 4101 vsi->tc_cfg.tc_info[i].netdev_tc, 4102 vsi->tc_cfg.tc_info[i].qcount_tx, 4103 vsi->tc_cfg.tc_info[i].qoffset); 4104 } 4105 ice_pf_dcb_recfg(pf, locked); 4106 ice_vsi_open(vsi); 4107 /* Rx rings are reallocated during VSI rebuild and lose their ptp_rx 4108 * flag. Restore timestamp mode so newly allocated rings are set up 4109 * for hardware Rx timestamping. 4110 */ 4111 if (test_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags)) 4112 ice_ptp_restore_timestamp_mode(pf); 4113 goto done; 4114 4115 rebuild_err: 4116 dev_err(ice_pf_to_dev(pf), "Error during VSI rebuild: %d. Unload and reload the driver.\n", 4117 err); 4118 done: 4119 clear_bit(ICE_CFG_BUSY, pf->state); 4120 return err; 4121 } 4122 4123 /** 4124 * ice_set_safe_mode_vlan_cfg - configure PF VSI to allow all VLANs in safe mode 4125 * @pf: PF to configure 4126 * 4127 * No VLAN offloads/filtering are advertised in safe mode so make sure the PF 4128 * VSI can still Tx/Rx VLAN tagged packets. 4129 */ 4130 static void ice_set_safe_mode_vlan_cfg(struct ice_pf *pf) 4131 { 4132 struct ice_vsi *vsi = ice_get_main_vsi(pf); 4133 struct ice_vsi_ctx *ctxt; 4134 struct ice_hw *hw; 4135 int status; 4136 4137 if (!vsi) 4138 return; 4139 4140 ctxt = kzalloc_obj(*ctxt); 4141 if (!ctxt) 4142 return; 4143 4144 hw = &pf->hw; 4145 ctxt->info = vsi->info; 4146 4147 ctxt->info.valid_sections = 4148 cpu_to_le16(ICE_AQ_VSI_PROP_VLAN_VALID | 4149 ICE_AQ_VSI_PROP_SECURITY_VALID | 4150 ICE_AQ_VSI_PROP_SW_VALID); 4151 4152 /* disable VLAN anti-spoof */ 4153 ctxt->info.sec_flags &= ~(ICE_AQ_VSI_SEC_TX_VLAN_PRUNE_ENA << 4154 ICE_AQ_VSI_SEC_TX_PRUNE_ENA_S); 4155 4156 /* disable VLAN pruning and keep all other settings */ 4157 ctxt->info.sw_flags2 &= ~ICE_AQ_VSI_SW_FLAG_RX_VLAN_PRUNE_ENA; 4158 4159 /* allow all VLANs on Tx and don't strip on Rx */ 4160 ctxt->info.inner_vlan_flags = ICE_AQ_VSI_INNER_VLAN_TX_MODE_ALL | 4161 ICE_AQ_VSI_INNER_VLAN_EMODE_NOTHING; 4162 4163 status = ice_update_vsi(hw, vsi->idx, ctxt, NULL); 4164 if (status) { 4165 dev_err(ice_pf_to_dev(vsi->back), "Failed to update VSI for safe mode VLANs, err %d aq_err %s\n", 4166 status, libie_aq_str(hw->adminq.sq_last_status)); 4167 } else { 4168 vsi->info.sec_flags = ctxt->info.sec_flags; 4169 vsi->info.sw_flags2 = ctxt->info.sw_flags2; 4170 vsi->info.inner_vlan_flags = ctxt->info.inner_vlan_flags; 4171 } 4172 4173 kfree(ctxt); 4174 } 4175 4176 /** 4177 * ice_log_pkg_init - log result of DDP package load 4178 * @hw: pointer to hardware info 4179 * @state: state of package load 4180 */ 4181 static void ice_log_pkg_init(struct ice_hw *hw, enum ice_ddp_state state) 4182 { 4183 struct ice_pf *pf = hw->back; 4184 struct device *dev; 4185 4186 dev = ice_pf_to_dev(pf); 4187 4188 switch (state) { 4189 case ICE_DDP_PKG_SUCCESS: 4190 dev_info(dev, "The DDP package was successfully loaded: %s version %d.%d.%d.%d\n", 4191 hw->active_pkg_name, 4192 hw->active_pkg_ver.major, 4193 hw->active_pkg_ver.minor, 4194 hw->active_pkg_ver.update, 4195 hw->active_pkg_ver.draft); 4196 break; 4197 case ICE_DDP_PKG_SAME_VERSION_ALREADY_LOADED: 4198 dev_info(dev, "DDP package already present on device: %s version %d.%d.%d.%d\n", 4199 hw->active_pkg_name, 4200 hw->active_pkg_ver.major, 4201 hw->active_pkg_ver.minor, 4202 hw->active_pkg_ver.update, 4203 hw->active_pkg_ver.draft); 4204 break; 4205 case ICE_DDP_PKG_ALREADY_LOADED_NOT_SUPPORTED: 4206 dev_err(dev, "The device has a DDP package that is not supported by the driver. The device has package '%s' version %d.%d.x.x. The driver requires version %d.%d.x.x. Entering Safe Mode.\n", 4207 hw->active_pkg_name, 4208 hw->active_pkg_ver.major, 4209 hw->active_pkg_ver.minor, 4210 ICE_PKG_SUPP_VER_MAJ, ICE_PKG_SUPP_VER_MNR); 4211 break; 4212 case ICE_DDP_PKG_COMPATIBLE_ALREADY_LOADED: 4213 dev_info(dev, "The driver could not load the DDP package file because a compatible DDP package is already present on the device. The device has package '%s' version %d.%d.%d.%d. The package file found by the driver: '%s' version %d.%d.%d.%d.\n", 4214 hw->active_pkg_name, 4215 hw->active_pkg_ver.major, 4216 hw->active_pkg_ver.minor, 4217 hw->active_pkg_ver.update, 4218 hw->active_pkg_ver.draft, 4219 hw->pkg_name, 4220 hw->pkg_ver.major, 4221 hw->pkg_ver.minor, 4222 hw->pkg_ver.update, 4223 hw->pkg_ver.draft); 4224 break; 4225 case ICE_DDP_PKG_FW_MISMATCH: 4226 dev_err(dev, "The firmware loaded on the device is not compatible with the DDP package. Please update the device's NVM. Entering safe mode.\n"); 4227 break; 4228 case ICE_DDP_PKG_INVALID_FILE: 4229 dev_err(dev, "The DDP package file is invalid. Entering Safe Mode.\n"); 4230 break; 4231 case ICE_DDP_PKG_FILE_VERSION_TOO_HIGH: 4232 dev_err(dev, "The DDP package file version is higher than the driver supports. Please use an updated driver. Entering Safe Mode.\n"); 4233 break; 4234 case ICE_DDP_PKG_FILE_VERSION_TOO_LOW: 4235 dev_err(dev, "The DDP package file version is lower than the driver supports. The driver requires version %d.%d.x.x. Please use an updated DDP Package file. Entering Safe Mode.\n", 4236 ICE_PKG_SUPP_VER_MAJ, ICE_PKG_SUPP_VER_MNR); 4237 break; 4238 case ICE_DDP_PKG_FILE_SIGNATURE_INVALID: 4239 dev_err(dev, "The DDP package could not be loaded because its signature is not valid. Please use a valid DDP Package. Entering Safe Mode.\n"); 4240 break; 4241 case ICE_DDP_PKG_FILE_REVISION_TOO_LOW: 4242 dev_err(dev, "The DDP Package could not be loaded because its security revision is too low. Please use an updated DDP Package. Entering Safe Mode.\n"); 4243 break; 4244 case ICE_DDP_PKG_LOAD_ERROR: 4245 dev_err(dev, "An error occurred on the device while loading the DDP package. The device will be reset.\n"); 4246 /* poll for reset to complete */ 4247 if (ice_check_reset(hw)) 4248 dev_err(dev, "Error resetting device. Please reload the driver\n"); 4249 break; 4250 case ICE_DDP_PKG_ERR: 4251 default: 4252 dev_err(dev, "An unknown error occurred when loading the DDP package. Entering Safe Mode.\n"); 4253 break; 4254 } 4255 } 4256 4257 /** 4258 * ice_load_pkg - load/reload the DDP Package file 4259 * @firmware: firmware structure when firmware requested or NULL for reload 4260 * @pf: pointer to the PF instance 4261 * 4262 * Called on probe and post CORER/GLOBR rebuild to load DDP Package and 4263 * initialize HW tables. 4264 */ 4265 static void 4266 ice_load_pkg(const struct firmware *firmware, struct ice_pf *pf) 4267 { 4268 enum ice_ddp_state state = ICE_DDP_PKG_ERR; 4269 struct device *dev = ice_pf_to_dev(pf); 4270 struct ice_hw *hw = &pf->hw; 4271 4272 /* Load DDP Package */ 4273 if (firmware && !hw->pkg_copy) { 4274 state = ice_copy_and_init_pkg(hw, firmware->data, 4275 firmware->size); 4276 ice_log_pkg_init(hw, state); 4277 } else if (!firmware && hw->pkg_copy) { 4278 /* Reload package during rebuild after CORER/GLOBR reset */ 4279 state = ice_init_pkg(hw, hw->pkg_copy, hw->pkg_size); 4280 ice_log_pkg_init(hw, state); 4281 } else { 4282 dev_err(dev, "The DDP package file failed to load. Entering Safe Mode.\n"); 4283 } 4284 4285 if (!ice_is_init_pkg_successful(state)) { 4286 /* Safe Mode */ 4287 clear_bit(ICE_FLAG_ADV_FEATURES, pf->flags); 4288 return; 4289 } 4290 4291 /* Successful download package is the precondition for advanced 4292 * features, hence setting the ICE_FLAG_ADV_FEATURES flag 4293 */ 4294 set_bit(ICE_FLAG_ADV_FEATURES, pf->flags); 4295 } 4296 4297 /** 4298 * ice_verify_cacheline_size - verify driver's assumption of 64 Byte cache lines 4299 * @pf: pointer to the PF structure 4300 * 4301 * There is no error returned here because the driver should be able to handle 4302 * 128 Byte cache lines, so we only print a warning in case issues are seen, 4303 * specifically with Tx. 4304 */ 4305 static void ice_verify_cacheline_size(struct ice_pf *pf) 4306 { 4307 if (rd32(&pf->hw, GLPCI_CNF2) & GLPCI_CNF2_CACHELINE_SIZE_M) 4308 dev_warn(ice_pf_to_dev(pf), "%d Byte cache line assumption is invalid, driver may have Tx timeouts!\n", 4309 ICE_CACHE_LINE_BYTES); 4310 } 4311 4312 /** 4313 * ice_send_version - update firmware with driver version 4314 * @pf: PF struct 4315 * 4316 * Returns 0 on success, else error code 4317 */ 4318 static int ice_send_version(struct ice_pf *pf) 4319 { 4320 struct ice_driver_ver dv; 4321 4322 dv.major_ver = 0xff; 4323 dv.minor_ver = 0xff; 4324 dv.build_ver = 0xff; 4325 dv.subbuild_ver = 0; 4326 strscpy((char *)dv.driver_string, UTS_RELEASE, 4327 sizeof(dv.driver_string)); 4328 return ice_aq_send_driver_ver(&pf->hw, &dv, NULL); 4329 } 4330 4331 /** 4332 * ice_init_fdir - Initialize flow director VSI and configuration 4333 * @pf: pointer to the PF instance 4334 * 4335 * returns 0 on success, negative on error 4336 */ 4337 static int ice_init_fdir(struct ice_pf *pf) 4338 { 4339 struct device *dev = ice_pf_to_dev(pf); 4340 struct ice_vsi *ctrl_vsi; 4341 int err; 4342 4343 /* Side Band Flow Director needs to have a control VSI. 4344 * Allocate it and store it in the PF. 4345 */ 4346 ctrl_vsi = ice_ctrl_vsi_setup(pf, pf->hw.port_info); 4347 if (!ctrl_vsi) { 4348 dev_dbg(dev, "could not create control VSI\n"); 4349 return -ENOMEM; 4350 } 4351 4352 err = ice_vsi_open_ctrl(ctrl_vsi); 4353 if (err) { 4354 dev_dbg(dev, "could not open control VSI\n"); 4355 goto err_vsi_open; 4356 } 4357 4358 mutex_init(&pf->hw.fdir_fltr_lock); 4359 4360 err = ice_fdir_create_dflt_rules(pf); 4361 if (err) 4362 goto err_fdir_rule; 4363 4364 return 0; 4365 4366 err_fdir_rule: 4367 ice_fdir_release_flows(&pf->hw); 4368 ice_vsi_close(ctrl_vsi); 4369 err_vsi_open: 4370 ice_vsi_release(ctrl_vsi); 4371 if (pf->ctrl_vsi_idx != ICE_NO_VSI) { 4372 pf->vsi[pf->ctrl_vsi_idx] = NULL; 4373 pf->ctrl_vsi_idx = ICE_NO_VSI; 4374 } 4375 return err; 4376 } 4377 4378 static void ice_deinit_fdir(struct ice_pf *pf) 4379 { 4380 struct ice_vsi *vsi = ice_get_ctrl_vsi(pf); 4381 4382 if (!vsi) 4383 return; 4384 4385 ice_vsi_manage_fdir(vsi, false); 4386 ice_vsi_release(vsi); 4387 if (pf->ctrl_vsi_idx != ICE_NO_VSI) { 4388 pf->vsi[pf->ctrl_vsi_idx] = NULL; 4389 pf->ctrl_vsi_idx = ICE_NO_VSI; 4390 } 4391 4392 mutex_destroy(&(&pf->hw)->fdir_fltr_lock); 4393 } 4394 4395 /** 4396 * ice_get_opt_fw_name - return optional firmware file name or NULL 4397 * @pf: pointer to the PF instance 4398 */ 4399 static char *ice_get_opt_fw_name(struct ice_pf *pf) 4400 { 4401 /* Optional firmware name same as default with additional dash 4402 * followed by a EUI-64 identifier (PCIe Device Serial Number) 4403 */ 4404 struct pci_dev *pdev = pf->pdev; 4405 char *opt_fw_filename; 4406 u64 dsn; 4407 4408 /* Determine the name of the optional file using the DSN (two 4409 * dwords following the start of the DSN Capability). 4410 */ 4411 dsn = pci_get_dsn(pdev); 4412 if (!dsn) 4413 return NULL; 4414 4415 opt_fw_filename = kzalloc(NAME_MAX, GFP_KERNEL); 4416 if (!opt_fw_filename) 4417 return NULL; 4418 4419 snprintf(opt_fw_filename, NAME_MAX, "%sice-%016llx.pkg", 4420 ICE_DDP_PKG_PATH, dsn); 4421 4422 return opt_fw_filename; 4423 } 4424 4425 /** 4426 * ice_request_fw - Device initialization routine 4427 * @pf: pointer to the PF instance 4428 * @firmware: double pointer to firmware struct 4429 * 4430 * Return: zero when successful, negative values otherwise. 4431 */ 4432 static int ice_request_fw(struct ice_pf *pf, const struct firmware **firmware) 4433 { 4434 char *opt_fw_filename = ice_get_opt_fw_name(pf); 4435 struct device *dev = ice_pf_to_dev(pf); 4436 int err = 0; 4437 4438 /* optional device-specific DDP (if present) overrides the default DDP 4439 * package file. kernel logs a debug message if the file doesn't exist, 4440 * and warning messages for other errors. 4441 */ 4442 if (opt_fw_filename) { 4443 err = firmware_request_nowarn(firmware, opt_fw_filename, dev); 4444 kfree(opt_fw_filename); 4445 if (!err) 4446 return err; 4447 } 4448 err = request_firmware(firmware, ICE_DDP_PKG_FILE, dev); 4449 if (err) 4450 dev_err(dev, "The DDP package file was not found or could not be read. Entering Safe Mode\n"); 4451 4452 return err; 4453 } 4454 4455 /** 4456 * ice_init_tx_topology - performs Tx topology initialization 4457 * @hw: pointer to the hardware structure 4458 * @firmware: pointer to firmware structure 4459 * 4460 * Return: zero when init was successful, negative values otherwise. 4461 */ 4462 static int 4463 ice_init_tx_topology(struct ice_hw *hw, const struct firmware *firmware) 4464 { 4465 u8 num_tx_sched_layers = hw->num_tx_sched_layers; 4466 struct ice_pf *pf = hw->back; 4467 struct device *dev; 4468 int err; 4469 4470 dev = ice_pf_to_dev(pf); 4471 err = ice_cfg_tx_topo(hw, firmware->data, firmware->size); 4472 if (!err) { 4473 if (hw->num_tx_sched_layers > num_tx_sched_layers) 4474 dev_info(dev, "Tx scheduling layers switching feature disabled\n"); 4475 else 4476 dev_info(dev, "Tx scheduling layers switching feature enabled\n"); 4477 return 0; 4478 } else if (err == -ENODEV) { 4479 /* If we failed to re-initialize the device, we can no longer 4480 * continue loading. 4481 */ 4482 dev_warn(dev, "Failed to initialize hardware after applying Tx scheduling configuration.\n"); 4483 return err; 4484 } else if (err == -EIO) { 4485 dev_info(dev, "DDP package does not support Tx scheduling layers switching feature - please update to the latest DDP package and try again\n"); 4486 return 0; 4487 } else if (err == -EEXIST) { 4488 return 0; 4489 } 4490 4491 /* Do not treat this as a fatal error. */ 4492 dev_info(dev, "Failed to apply Tx scheduling configuration, err %pe\n", 4493 ERR_PTR(err)); 4494 return 0; 4495 } 4496 4497 /** 4498 * ice_init_supported_rxdids - Initialize supported Rx descriptor IDs 4499 * @hw: pointer to the hardware structure 4500 * @pf: pointer to pf structure 4501 * 4502 * The pf->supported_rxdids bitmap is used to indicate to VFs which descriptor 4503 * formats the PF hardware supports. The exact list of supported RXDIDs 4504 * depends on the loaded DDP package. The IDs can be determined by reading the 4505 * GLFLXP_RXDID_FLAGS register after the DDP package is loaded. 4506 * 4507 * Note that the legacy 32-byte RXDID 0 is always supported but is not listed 4508 * in the DDP package. The 16-byte legacy descriptor is never supported by 4509 * VFs. 4510 */ 4511 static void ice_init_supported_rxdids(struct ice_hw *hw, struct ice_pf *pf) 4512 { 4513 pf->supported_rxdids = BIT(ICE_RXDID_LEGACY_1); 4514 4515 for (int i = ICE_RXDID_FLEX_NIC; i < ICE_FLEX_DESC_RXDID_MAX_NUM; i++) { 4516 u32 regval; 4517 4518 regval = rd32(hw, GLFLXP_RXDID_FLAGS(i, 0)); 4519 if ((regval >> GLFLXP_RXDID_FLAGS_FLEXIFLAG_4N_S) 4520 & GLFLXP_RXDID_FLAGS_FLEXIFLAG_4N_M) 4521 pf->supported_rxdids |= BIT(i); 4522 } 4523 } 4524 4525 /** 4526 * ice_init_ddp_config - DDP related configuration 4527 * @hw: pointer to the hardware structure 4528 * @pf: pointer to pf structure 4529 * 4530 * This function loads DDP file from the disk, then initializes Tx 4531 * topology. At the end DDP package is loaded on the card. 4532 * 4533 * Return: zero when init was successful, negative values otherwise. 4534 */ 4535 static int ice_init_ddp_config(struct ice_hw *hw, struct ice_pf *pf) 4536 { 4537 struct device *dev = ice_pf_to_dev(pf); 4538 const struct firmware *firmware = NULL; 4539 int err; 4540 4541 err = ice_request_fw(pf, &firmware); 4542 if (err) { 4543 dev_err(dev, "Fail during requesting FW: %d\n", err); 4544 return err; 4545 } 4546 4547 err = ice_init_tx_topology(hw, firmware); 4548 if (err) { 4549 dev_err(dev, "Fail during initialization of Tx topology: %d\n", 4550 err); 4551 release_firmware(firmware); 4552 return err; 4553 } 4554 4555 /* Download firmware to device */ 4556 ice_load_pkg(firmware, pf); 4557 release_firmware(firmware); 4558 4559 /* Initialize the supported Rx descriptor IDs after loading DDP */ 4560 ice_init_supported_rxdids(hw, pf); 4561 4562 return 0; 4563 } 4564 4565 /** 4566 * ice_print_wake_reason - show the wake up cause in the log 4567 * @pf: pointer to the PF struct 4568 */ 4569 static void ice_print_wake_reason(struct ice_pf *pf) 4570 { 4571 u32 wus = pf->wakeup_reason; 4572 const char *wake_str; 4573 4574 /* if no wake event, nothing to print */ 4575 if (!wus) 4576 return; 4577 4578 if (wus & PFPM_WUS_LNKC_M) 4579 wake_str = "Link\n"; 4580 else if (wus & PFPM_WUS_MAG_M) 4581 wake_str = "Magic Packet\n"; 4582 else if (wus & PFPM_WUS_MNG_M) 4583 wake_str = "Management\n"; 4584 else if (wus & PFPM_WUS_FW_RST_WK_M) 4585 wake_str = "Firmware Reset\n"; 4586 else 4587 wake_str = "Unknown\n"; 4588 4589 dev_info(ice_pf_to_dev(pf), "Wake reason: %s", wake_str); 4590 } 4591 4592 /** 4593 * ice_register_netdev - register netdev 4594 * @vsi: pointer to the VSI struct 4595 */ 4596 static int ice_register_netdev(struct ice_vsi *vsi) 4597 { 4598 int err; 4599 4600 if (!vsi || !vsi->netdev) 4601 return -EIO; 4602 4603 err = register_netdev(vsi->netdev); 4604 if (err) 4605 return err; 4606 4607 set_bit(ICE_VSI_NETDEV_REGISTERED, vsi->state); 4608 netif_carrier_off(vsi->netdev); 4609 netif_tx_stop_all_queues(vsi->netdev); 4610 4611 return 0; 4612 } 4613 4614 static void ice_unregister_netdev(struct ice_vsi *vsi) 4615 { 4616 if (!vsi || !vsi->netdev) 4617 return; 4618 4619 unregister_netdev(vsi->netdev); 4620 clear_bit(ICE_VSI_NETDEV_REGISTERED, vsi->state); 4621 } 4622 4623 /** 4624 * ice_cfg_netdev - Allocate, configure and register a netdev 4625 * @vsi: the VSI associated with the new netdev 4626 * 4627 * Returns 0 on success, negative value on failure 4628 */ 4629 static int ice_cfg_netdev(struct ice_vsi *vsi) 4630 { 4631 struct ice_netdev_priv *np; 4632 struct net_device *netdev; 4633 u8 mac_addr[ETH_ALEN]; 4634 4635 netdev = alloc_etherdev_mqs(sizeof(*np), ice_get_max_txq(vsi->back), 4636 ice_get_max_rxq(vsi->back)); 4637 if (!netdev) 4638 return -ENOMEM; 4639 4640 set_bit(ICE_VSI_NETDEV_ALLOCD, vsi->state); 4641 vsi->netdev = netdev; 4642 np = netdev_priv(netdev); 4643 np->vsi = vsi; 4644 4645 ice_set_netdev_features(netdev); 4646 ice_set_ops(vsi); 4647 4648 if (vsi->type == ICE_VSI_PF) { 4649 SET_NETDEV_DEV(netdev, ice_pf_to_dev(vsi->back)); 4650 ether_addr_copy(mac_addr, vsi->port_info->mac.perm_addr); 4651 eth_hw_addr_set(netdev, mac_addr); 4652 } 4653 4654 netdev->priv_flags |= IFF_UNICAST_FLT; 4655 4656 /* Setup netdev TC information */ 4657 ice_vsi_cfg_netdev_tc(vsi, vsi->tc_cfg.ena_tc); 4658 4659 netdev->max_mtu = ICE_MAX_MTU; 4660 4661 return 0; 4662 } 4663 4664 static void ice_decfg_netdev(struct ice_vsi *vsi) 4665 { 4666 clear_bit(ICE_VSI_NETDEV_ALLOCD, vsi->state); 4667 free_netdev(vsi->netdev); 4668 vsi->netdev = NULL; 4669 } 4670 4671 void ice_init_dev_hw(struct ice_pf *pf) 4672 { 4673 struct ice_hw *hw = &pf->hw; 4674 int err; 4675 4676 ice_init_feature_support(pf); 4677 4678 err = ice_init_ddp_config(hw, pf); 4679 4680 /* if ice_init_ddp_config fails, ICE_FLAG_ADV_FEATURES bit won't be 4681 * set in pf->state, which will cause ice_is_safe_mode to return 4682 * true 4683 */ 4684 if (err || ice_is_safe_mode(pf)) { 4685 /* we already got function/device capabilities but these don't 4686 * reflect what the driver needs to do in safe mode. Instead of 4687 * adding conditional logic everywhere to ignore these 4688 * device/function capabilities, override them. 4689 */ 4690 ice_set_safe_mode_caps(hw); 4691 } 4692 } 4693 4694 int ice_init_dev(struct ice_pf *pf) 4695 { 4696 struct device *dev = ice_pf_to_dev(pf); 4697 int err; 4698 4699 ice_set_pf_caps(pf); 4700 err = ice_init_interrupt_scheme(pf); 4701 if (err) { 4702 dev_err(dev, "ice_init_interrupt_scheme failed: %d\n", err); 4703 return -EIO; 4704 } 4705 4706 ice_start_service_task(pf); 4707 4708 return 0; 4709 } 4710 4711 void ice_deinit_dev(struct ice_pf *pf) 4712 { 4713 ice_service_task_stop(pf); 4714 4715 /* Service task is already stopped, so call reset directly. */ 4716 ice_reset(&pf->hw, ICE_RESET_PFR); 4717 pci_wait_for_pending_transaction(pf->pdev); 4718 ice_clear_interrupt_scheme(pf); 4719 } 4720 4721 static void ice_init_features(struct ice_pf *pf) 4722 { 4723 struct device *dev = ice_pf_to_dev(pf); 4724 4725 if (ice_is_safe_mode(pf)) 4726 return; 4727 4728 /* initialize DDP driven features */ 4729 if (test_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags)) 4730 ice_ptp_init(pf); 4731 4732 if (ice_is_feature_supported(pf, ICE_F_GNSS)) 4733 ice_gnss_init(pf); 4734 4735 if (ice_is_feature_supported(pf, ICE_F_CGU) || 4736 ice_is_feature_supported(pf, ICE_F_PHY_RCLK)) 4737 ice_dpll_init(pf); 4738 4739 /* Note: Flow director init failure is non-fatal to load */ 4740 if (ice_init_fdir(pf)) 4741 dev_err(dev, "could not initialize flow director\n"); 4742 4743 /* Note: DCB init failure is non-fatal to load */ 4744 if (ice_init_pf_dcb(pf, false)) { 4745 clear_bit(ICE_FLAG_DCB_CAPABLE, pf->flags); 4746 clear_bit(ICE_FLAG_DCB_ENA, pf->flags); 4747 } else { 4748 ice_cfg_lldp_mib_change(&pf->hw, true); 4749 } 4750 4751 if (ice_init_lag(pf)) 4752 dev_warn(dev, "Failed to init link aggregation support\n"); 4753 4754 ice_hwmon_init(pf); 4755 } 4756 4757 static void ice_deinit_features(struct ice_pf *pf) 4758 { 4759 if (ice_is_safe_mode(pf)) 4760 return; 4761 4762 ice_deinit_lag(pf); 4763 if (test_bit(ICE_FLAG_DCB_CAPABLE, pf->flags)) 4764 ice_cfg_lldp_mib_change(&pf->hw, false); 4765 ice_deinit_fdir(pf); 4766 if (ice_is_feature_supported(pf, ICE_F_GNSS)) 4767 ice_gnss_exit(pf); 4768 if (test_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags)) 4769 ice_ptp_release(pf); 4770 if (test_bit(ICE_FLAG_DPLL, pf->flags)) 4771 ice_dpll_deinit(pf); 4772 if (pf->eswitch_mode == DEVLINK_ESWITCH_MODE_SWITCHDEV) 4773 xa_destroy(&pf->eswitch.reprs); 4774 ice_hwmon_exit(pf); 4775 } 4776 4777 static void ice_init_wakeup(struct ice_pf *pf) 4778 { 4779 /* Save wakeup reason register for later use */ 4780 pf->wakeup_reason = rd32(&pf->hw, PFPM_WUS); 4781 4782 /* check for a power management event */ 4783 ice_print_wake_reason(pf); 4784 4785 /* clear wake status, all bits */ 4786 wr32(&pf->hw, PFPM_WUS, U32_MAX); 4787 4788 /* Disable WoL at init, wait for user to enable */ 4789 device_set_wakeup_enable(ice_pf_to_dev(pf), false); 4790 } 4791 4792 static int ice_init_link(struct ice_pf *pf) 4793 { 4794 struct device *dev = ice_pf_to_dev(pf); 4795 int err; 4796 4797 err = ice_init_link_events(pf->hw.port_info); 4798 if (err) { 4799 dev_err(dev, "ice_init_link_events failed: %d\n", err); 4800 return err; 4801 } 4802 4803 /* not a fatal error if this fails */ 4804 err = ice_init_nvm_phy_type(pf->hw.port_info); 4805 if (err) 4806 dev_err(dev, "ice_init_nvm_phy_type failed: %d\n", err); 4807 4808 /* not a fatal error if this fails */ 4809 err = ice_update_link_info(pf->hw.port_info); 4810 if (err) 4811 dev_err(dev, "ice_update_link_info failed: %d\n", err); 4812 4813 ice_init_link_dflt_override(pf->hw.port_info); 4814 4815 ice_check_link_cfg_err(pf, 4816 pf->hw.port_info->phy.link_info.link_cfg_err); 4817 4818 /* if media available, initialize PHY settings */ 4819 if (pf->hw.port_info->phy.link_info.link_info & 4820 ICE_AQ_MEDIA_AVAILABLE) { 4821 /* not a fatal error if this fails */ 4822 err = ice_init_phy_user_cfg(pf->hw.port_info); 4823 if (err) 4824 dev_err(dev, "ice_init_phy_user_cfg failed: %d\n", err); 4825 4826 if (!test_bit(ICE_FLAG_LINK_DOWN_ON_CLOSE_ENA, pf->flags)) { 4827 struct ice_vsi *vsi = ice_get_main_vsi(pf); 4828 struct ice_link_default_override_tlv *ldo; 4829 bool link_en; 4830 4831 ldo = &pf->link_dflt_override; 4832 link_en = !(ldo->options & 4833 ICE_LINK_OVERRIDE_AUTO_LINK_DIS); 4834 4835 if (vsi) 4836 ice_phy_cfg(vsi, link_en); 4837 } 4838 } else { 4839 set_bit(ICE_FLAG_NO_MEDIA, pf->flags); 4840 } 4841 4842 return err; 4843 } 4844 4845 static int ice_init_pf_sw(struct ice_pf *pf) 4846 { 4847 bool dvm = ice_is_dvm_ena(&pf->hw); 4848 struct ice_vsi *vsi; 4849 int err; 4850 4851 /* create switch struct for the switch element created by FW on boot */ 4852 pf->first_sw = kzalloc_obj(*pf->first_sw); 4853 if (!pf->first_sw) 4854 return -ENOMEM; 4855 4856 if (pf->hw.evb_veb) 4857 pf->first_sw->bridge_mode = BRIDGE_MODE_VEB; 4858 else 4859 pf->first_sw->bridge_mode = BRIDGE_MODE_VEPA; 4860 4861 pf->first_sw->pf = pf; 4862 4863 /* record the sw_id available for later use */ 4864 pf->first_sw->sw_id = pf->hw.port_info->sw_id; 4865 4866 err = ice_aq_set_port_params(pf->hw.port_info, dvm, NULL); 4867 if (err) 4868 goto err_aq_set_port_params; 4869 4870 vsi = ice_pf_vsi_setup(pf, pf->hw.port_info); 4871 if (!vsi) { 4872 err = -ENOMEM; 4873 goto err_pf_vsi_setup; 4874 } 4875 4876 return 0; 4877 4878 err_pf_vsi_setup: 4879 err_aq_set_port_params: 4880 kfree(pf->first_sw); 4881 return err; 4882 } 4883 4884 static void ice_deinit_pf_sw(struct ice_pf *pf) 4885 { 4886 struct ice_vsi *vsi = ice_get_main_vsi(pf); 4887 4888 if (!vsi) 4889 return; 4890 4891 ice_vsi_release(vsi); 4892 kfree(pf->first_sw); 4893 } 4894 4895 static int ice_alloc_vsis(struct ice_pf *pf) 4896 { 4897 struct device *dev = ice_pf_to_dev(pf); 4898 4899 pf->num_alloc_vsi = pf->hw.func_caps.guar_num_vsi; 4900 if (!pf->num_alloc_vsi) 4901 return -EIO; 4902 4903 if (pf->num_alloc_vsi > UDP_TUNNEL_NIC_MAX_SHARING_DEVICES) { 4904 dev_warn(dev, 4905 "limiting the VSI count due to UDP tunnel limitation %d > %d\n", 4906 pf->num_alloc_vsi, UDP_TUNNEL_NIC_MAX_SHARING_DEVICES); 4907 pf->num_alloc_vsi = UDP_TUNNEL_NIC_MAX_SHARING_DEVICES; 4908 } 4909 4910 pf->vsi = devm_kcalloc(dev, pf->num_alloc_vsi, sizeof(*pf->vsi), 4911 GFP_KERNEL); 4912 if (!pf->vsi) 4913 return -ENOMEM; 4914 4915 pf->vsi_stats = devm_kcalloc(dev, pf->num_alloc_vsi, 4916 sizeof(*pf->vsi_stats), GFP_KERNEL); 4917 if (!pf->vsi_stats) { 4918 devm_kfree(dev, pf->vsi); 4919 return -ENOMEM; 4920 } 4921 4922 return 0; 4923 } 4924 4925 static void ice_dealloc_vsis(struct ice_pf *pf) 4926 { 4927 devm_kfree(ice_pf_to_dev(pf), pf->vsi_stats); 4928 pf->vsi_stats = NULL; 4929 4930 pf->num_alloc_vsi = 0; 4931 devm_kfree(ice_pf_to_dev(pf), pf->vsi); 4932 pf->vsi = NULL; 4933 } 4934 4935 static int ice_init_devlink(struct ice_pf *pf) 4936 { 4937 int err; 4938 4939 err = ice_devlink_register_params(pf); 4940 if (err) 4941 return err; 4942 4943 ice_devlink_init_regions(pf); 4944 ice_devlink_register(pf); 4945 ice_health_init(pf); 4946 4947 return 0; 4948 } 4949 4950 static void ice_deinit_devlink(struct ice_pf *pf) 4951 { 4952 ice_health_deinit(pf); 4953 ice_devlink_unregister(pf); 4954 ice_devlink_destroy_regions(pf); 4955 ice_devlink_unregister_params(pf); 4956 } 4957 4958 static int ice_init(struct ice_pf *pf) 4959 { 4960 struct device *dev = ice_pf_to_dev(pf); 4961 int err; 4962 4963 err = ice_init_pf(pf); 4964 if (err) { 4965 dev_err(dev, "ice_init_pf failed: %d\n", err); 4966 return err; 4967 } 4968 4969 if (pf->hw.mac_type == ICE_MAC_E830) { 4970 err = pci_enable_ptm(pf->pdev); 4971 if (err) 4972 dev_dbg(dev, "PCIe PTM not supported by PCIe bus/controller\n"); 4973 } 4974 4975 err = ice_alloc_vsis(pf); 4976 if (err) 4977 goto unroll_pf_init; 4978 4979 err = ice_init_pf_sw(pf); 4980 if (err) 4981 goto err_init_pf_sw; 4982 4983 ice_init_wakeup(pf); 4984 4985 err = ice_init_link(pf); 4986 if (err) 4987 goto err_init_link; 4988 4989 err = ice_send_version(pf); 4990 if (err) 4991 goto err_init_link; 4992 4993 ice_verify_cacheline_size(pf); 4994 4995 if (ice_is_safe_mode(pf)) 4996 ice_set_safe_mode_vlan_cfg(pf); 4997 else 4998 /* print PCI link speed and width */ 4999 pcie_print_link_status(pf->pdev); 5000 5001 /* ready to go, so clear down state bit */ 5002 clear_bit(ICE_DOWN, pf->state); 5003 clear_bit(ICE_SERVICE_DIS, pf->state); 5004 5005 /* since everything is good, start the service timer */ 5006 mod_timer(&pf->serv_tmr, round_jiffies(jiffies + pf->serv_tmr_period)); 5007 5008 return 0; 5009 5010 err_init_link: 5011 ice_deinit_pf_sw(pf); 5012 err_init_pf_sw: 5013 ice_dealloc_vsis(pf); 5014 unroll_pf_init: 5015 ice_deinit_pf(pf); 5016 return err; 5017 } 5018 5019 static void ice_deinit(struct ice_pf *pf) 5020 { 5021 set_bit(ICE_SERVICE_DIS, pf->state); 5022 set_bit(ICE_DOWN, pf->state); 5023 5024 ice_deinit_pf_sw(pf); 5025 ice_dealloc_vsis(pf); 5026 ice_deinit_pf(pf); 5027 } 5028 5029 /** 5030 * ice_load - load pf by init hw and starting VSI 5031 * @pf: pointer to the pf instance 5032 * 5033 * This function has to be called under devl_lock. 5034 */ 5035 int ice_load(struct ice_pf *pf) 5036 { 5037 struct ice_vsi *vsi; 5038 int err; 5039 5040 devl_assert_locked(priv_to_devlink(pf)); 5041 5042 vsi = ice_get_main_vsi(pf); 5043 5044 /* init channel list */ 5045 INIT_LIST_HEAD(&vsi->ch_list); 5046 5047 err = ice_cfg_netdev(vsi); 5048 if (err) 5049 return err; 5050 5051 /* Setup DCB netlink interface */ 5052 ice_dcbnl_setup(vsi); 5053 5054 err = ice_init_mac_fltr(pf); 5055 if (err) 5056 goto err_init_mac_fltr; 5057 5058 err = ice_devlink_create_pf_port(pf); 5059 if (err) 5060 goto err_devlink_create_pf_port; 5061 5062 SET_NETDEV_DEVLINK_PORT(vsi->netdev, &pf->devlink_port); 5063 5064 err = ice_register_netdev(vsi); 5065 if (err) 5066 goto err_register_netdev; 5067 5068 err = ice_tc_indir_block_register(vsi); 5069 if (err) 5070 goto err_tc_indir_block_register; 5071 5072 ice_napi_add(vsi); 5073 5074 ice_init_features(pf); 5075 5076 err = ice_init_rdma(pf); 5077 if (err) 5078 goto err_init_rdma; 5079 5080 /* Finalize RDMA: VSI already created, assign info and plug device */ 5081 ice_rdma_finalize_setup(pf); 5082 5083 ice_service_task_restart(pf); 5084 5085 clear_bit(ICE_DOWN, pf->state); 5086 5087 return 0; 5088 5089 err_init_rdma: 5090 ice_deinit_features(pf); 5091 ice_tc_indir_block_unregister(vsi); 5092 err_tc_indir_block_register: 5093 ice_unregister_netdev(vsi); 5094 err_register_netdev: 5095 ice_devlink_destroy_pf_port(pf); 5096 err_devlink_create_pf_port: 5097 err_init_mac_fltr: 5098 ice_decfg_netdev(vsi); 5099 return err; 5100 } 5101 5102 /** 5103 * ice_unload - unload pf by stopping VSI and deinit hw 5104 * @pf: pointer to the pf instance 5105 * 5106 * This function has to be called under devl_lock. 5107 */ 5108 void ice_unload(struct ice_pf *pf) 5109 { 5110 struct ice_vsi *vsi = ice_get_main_vsi(pf); 5111 5112 devl_assert_locked(priv_to_devlink(pf)); 5113 5114 ice_unplug_aux_dev(pf); 5115 ice_deinit_rdma(pf); 5116 ice_deinit_features(pf); 5117 ice_tc_indir_block_unregister(vsi); 5118 ice_unregister_netdev(vsi); 5119 ice_devlink_destroy_pf_port(pf); 5120 ice_decfg_netdev(vsi); 5121 } 5122 5123 static int ice_probe_recovery_mode(struct ice_pf *pf) 5124 { 5125 struct device *dev = ice_pf_to_dev(pf); 5126 int err; 5127 5128 dev_err(dev, "Firmware recovery mode detected. Limiting functionality. Refer to the Intel(R) Ethernet Adapters and Devices User Guide for details on firmware recovery mode\n"); 5129 5130 INIT_HLIST_HEAD(&pf->aq_wait_list); 5131 spin_lock_init(&pf->aq_wait_lock); 5132 init_waitqueue_head(&pf->aq_wait_queue); 5133 5134 timer_setup(&pf->serv_tmr, ice_service_timer, 0); 5135 pf->serv_tmr_period = HZ; 5136 INIT_WORK(&pf->serv_task, ice_service_task_recovery_mode); 5137 clear_bit(ICE_SERVICE_SCHED, pf->state); 5138 err = ice_create_all_ctrlq(&pf->hw); 5139 if (err) 5140 return err; 5141 5142 scoped_guard(devl, priv_to_devlink(pf)) { 5143 err = ice_init_devlink(pf); 5144 if (err) 5145 return err; 5146 } 5147 5148 ice_service_task_restart(pf); 5149 5150 return 0; 5151 } 5152 5153 /** 5154 * ice_probe - Device initialization routine 5155 * @pdev: PCI device information struct 5156 * @ent: entry in ice_pci_tbl 5157 * 5158 * Returns 0 on success, negative on failure 5159 */ 5160 static int 5161 ice_probe(struct pci_dev *pdev, const struct pci_device_id __always_unused *ent) 5162 { 5163 struct device *dev = &pdev->dev; 5164 bool need_dev_deinit = false; 5165 struct ice_adapter *adapter; 5166 struct ice_pf *pf; 5167 struct ice_hw *hw; 5168 int err; 5169 5170 if (pdev->is_virtfn) { 5171 dev_err(dev, "can't probe a virtual function\n"); 5172 return -EINVAL; 5173 } 5174 5175 /* when under a kdump kernel initiate a reset before enabling the 5176 * device in order to clear out any pending DMA transactions. These 5177 * transactions can cause some systems to machine check when doing 5178 * the pcim_enable_device() below. 5179 */ 5180 if (is_kdump_kernel()) { 5181 pci_save_state(pdev); 5182 pci_clear_master(pdev); 5183 err = pcie_flr(pdev); 5184 if (err) 5185 return err; 5186 pci_restore_state(pdev); 5187 } 5188 5189 /* this driver uses devres, see 5190 * Documentation/driver-api/driver-model/devres.rst 5191 */ 5192 err = pcim_enable_device(pdev); 5193 if (err) 5194 return err; 5195 5196 err = pcim_iomap_regions(pdev, BIT(ICE_BAR0), dev_driver_string(dev)); 5197 if (err) { 5198 dev_err(dev, "BAR0 I/O map error %d\n", err); 5199 return err; 5200 } 5201 5202 pf = ice_allocate_pf(dev); 5203 if (!pf) 5204 return -ENOMEM; 5205 5206 /* initialize Auxiliary index to invalid value */ 5207 pf->aux_idx = -1; 5208 5209 /* set up for high or low DMA */ 5210 err = dma_set_mask_and_coherent(dev, DMA_BIT_MASK(64)); 5211 if (err) { 5212 dev_err(dev, "DMA configuration failed: 0x%x\n", err); 5213 return err; 5214 } 5215 5216 pci_set_master(pdev); 5217 pf->pdev = pdev; 5218 pci_set_drvdata(pdev, pf); 5219 set_bit(ICE_DOWN, pf->state); 5220 /* Disable service task until DOWN bit is cleared */ 5221 set_bit(ICE_SERVICE_DIS, pf->state); 5222 5223 hw = &pf->hw; 5224 hw->hw_addr = pcim_iomap_table(pdev)[ICE_BAR0]; 5225 pci_save_state(pdev); 5226 5227 hw->back = pf; 5228 hw->port_info = NULL; 5229 hw->vendor_id = pdev->vendor; 5230 hw->device_id = pdev->device; 5231 pci_read_config_byte(pdev, PCI_REVISION_ID, &hw->revision_id); 5232 hw->subsystem_vendor_id = pdev->subsystem_vendor; 5233 hw->subsystem_device_id = pdev->subsystem_device; 5234 hw->bus.device = PCI_SLOT(pdev->devfn); 5235 hw->bus.func = PCI_FUNC(pdev->devfn); 5236 ice_set_ctrlq_len(hw); 5237 5238 pf->msg_enable = netif_msg_init(debug, ICE_DFLT_NETIF_M); 5239 5240 #ifndef CONFIG_DYNAMIC_DEBUG 5241 if (debug < -1) 5242 hw->debug_mask = debug; 5243 #endif 5244 5245 if (ice_is_recovery_mode(hw)) 5246 return ice_probe_recovery_mode(pf); 5247 5248 err = ice_init_hw(hw); 5249 if (err) { 5250 dev_err(dev, "ice_init_hw failed: %d\n", err); 5251 return err; 5252 } 5253 5254 ice_init_dev_hw(pf); 5255 5256 adapter = ice_adapter_get(pdev); 5257 if (IS_ERR(adapter)) { 5258 err = PTR_ERR(adapter); 5259 goto unroll_hw_init; 5260 } 5261 pf->adapter = adapter; 5262 5263 err = ice_init_dev(pf); 5264 if (err) 5265 goto unroll_adapter; 5266 5267 err = ice_init(pf); 5268 if (err) 5269 goto unroll_dev_init; 5270 5271 devl_lock(priv_to_devlink(pf)); 5272 err = ice_load(pf); 5273 if (err) 5274 goto unroll_init; 5275 5276 err = ice_init_devlink(pf); 5277 if (err) 5278 goto unroll_load; 5279 devl_unlock(priv_to_devlink(pf)); 5280 5281 return 0; 5282 5283 unroll_load: 5284 ice_unload(pf); 5285 unroll_init: 5286 devl_unlock(priv_to_devlink(pf)); 5287 ice_deinit(pf); 5288 unroll_dev_init: 5289 need_dev_deinit = true; 5290 unroll_adapter: 5291 ice_adapter_put(pdev); 5292 unroll_hw_init: 5293 ice_deinit_hw(hw); 5294 if (need_dev_deinit) 5295 ice_deinit_dev(pf); 5296 return err; 5297 } 5298 5299 /** 5300 * ice_set_wake - enable or disable Wake on LAN 5301 * @pf: pointer to the PF struct 5302 * 5303 * Simple helper for WoL control 5304 */ 5305 static void ice_set_wake(struct ice_pf *pf) 5306 { 5307 struct ice_hw *hw = &pf->hw; 5308 bool wol = pf->wol_ena; 5309 5310 /* clear wake state, otherwise new wake events won't fire */ 5311 wr32(hw, PFPM_WUS, U32_MAX); 5312 5313 /* enable / disable APM wake up, no RMW needed */ 5314 wr32(hw, PFPM_APM, wol ? PFPM_APM_APME_M : 0); 5315 5316 /* set magic packet filter enabled */ 5317 wr32(hw, PFPM_WUFC, wol ? PFPM_WUFC_MAG_M : 0); 5318 } 5319 5320 /** 5321 * ice_setup_mc_magic_wake - setup device to wake on multicast magic packet 5322 * @pf: pointer to the PF struct 5323 * 5324 * Issue firmware command to enable multicast magic wake, making 5325 * sure that any locally administered address (LAA) is used for 5326 * wake, and that PF reset doesn't undo the LAA. 5327 */ 5328 static void ice_setup_mc_magic_wake(struct ice_pf *pf) 5329 { 5330 struct device *dev = ice_pf_to_dev(pf); 5331 struct ice_hw *hw = &pf->hw; 5332 u8 mac_addr[ETH_ALEN]; 5333 struct ice_vsi *vsi; 5334 int status; 5335 u8 flags; 5336 5337 if (!pf->wol_ena) 5338 return; 5339 5340 vsi = ice_get_main_vsi(pf); 5341 if (!vsi) 5342 return; 5343 5344 /* Get current MAC address in case it's an LAA */ 5345 if (vsi->netdev) 5346 ether_addr_copy(mac_addr, vsi->netdev->dev_addr); 5347 else 5348 ether_addr_copy(mac_addr, vsi->port_info->mac.perm_addr); 5349 5350 flags = ICE_AQC_MAN_MAC_WR_MC_MAG_EN | 5351 ICE_AQC_MAN_MAC_UPDATE_LAA_WOL | 5352 ICE_AQC_MAN_MAC_WR_WOL_LAA_PFR_KEEP; 5353 5354 status = ice_aq_manage_mac_write(hw, mac_addr, flags, NULL); 5355 if (status) 5356 dev_err(dev, "Failed to enable Multicast Magic Packet wake, err %d aq_err %s\n", 5357 status, libie_aq_str(hw->adminq.sq_last_status)); 5358 } 5359 5360 /** 5361 * ice_remove - Device removal routine 5362 * @pdev: PCI device information struct 5363 */ 5364 static void ice_remove(struct pci_dev *pdev) 5365 { 5366 struct ice_pf *pf = pci_get_drvdata(pdev); 5367 int i; 5368 5369 for (i = 0; i < ICE_MAX_RESET_WAIT; i++) { 5370 if (!ice_is_reset_in_progress(pf->state)) 5371 break; 5372 msleep(100); 5373 } 5374 5375 if (ice_is_recovery_mode(&pf->hw)) { 5376 ice_service_task_stop(pf); 5377 scoped_guard(devl, priv_to_devlink(pf)) { 5378 ice_deinit_devlink(pf); 5379 } 5380 return; 5381 } 5382 5383 if (test_bit(ICE_FLAG_SRIOV_ENA, pf->flags)) { 5384 set_bit(ICE_VF_RESETS_DISABLED, pf->state); 5385 ice_free_vfs(pf); 5386 } 5387 5388 if (!ice_is_safe_mode(pf)) 5389 ice_remove_arfs(pf); 5390 5391 devl_lock(priv_to_devlink(pf)); 5392 ice_dealloc_all_dynamic_ports(pf); 5393 ice_deinit_devlink(pf); 5394 5395 ice_unload(pf); 5396 devl_unlock(priv_to_devlink(pf)); 5397 5398 ice_deinit(pf); 5399 ice_vsi_release_all(pf); 5400 5401 ice_setup_mc_magic_wake(pf); 5402 ice_set_wake(pf); 5403 5404 ice_adapter_put(pdev); 5405 ice_deinit_hw(&pf->hw); 5406 5407 ice_deinit_dev(pf); 5408 ice_aq_cancel_waiting_tasks(pf); 5409 set_bit(ICE_DOWN, pf->state); 5410 } 5411 5412 /** 5413 * ice_shutdown - PCI callback for shutting down device 5414 * @pdev: PCI device information struct 5415 */ 5416 static void ice_shutdown(struct pci_dev *pdev) 5417 { 5418 struct ice_pf *pf = pci_get_drvdata(pdev); 5419 5420 ice_remove(pdev); 5421 5422 if (system_state == SYSTEM_POWER_OFF) { 5423 pci_wake_from_d3(pdev, pf->wol_ena); 5424 pci_set_power_state(pdev, PCI_D3hot); 5425 } 5426 } 5427 5428 /** 5429 * ice_prepare_for_shutdown - prep for PCI shutdown 5430 * @pf: board private structure 5431 * 5432 * Inform or close all dependent features in prep for PCI device shutdown 5433 */ 5434 static void ice_prepare_for_shutdown(struct ice_pf *pf) 5435 { 5436 struct ice_hw *hw = &pf->hw; 5437 u32 v; 5438 5439 /* Notify VFs of impending reset */ 5440 if (ice_check_sq_alive(hw, &hw->mailboxq)) 5441 ice_vc_notify_reset(pf); 5442 5443 dev_dbg(ice_pf_to_dev(pf), "Tearing down internal switch for shutdown\n"); 5444 5445 /* disable the VSIs and their queues that are not already DOWN */ 5446 ice_pf_dis_all_vsi(pf, false); 5447 5448 ice_for_each_vsi(pf, v) 5449 if (pf->vsi[v]) 5450 pf->vsi[v]->vsi_num = 0; 5451 5452 ice_shutdown_all_ctrlq(hw, true); 5453 } 5454 5455 /** 5456 * ice_reinit_interrupt_scheme - Reinitialize interrupt scheme 5457 * @pf: board private structure to reinitialize 5458 * 5459 * This routine reinitialize interrupt scheme that was cleared during 5460 * power management suspend callback. 5461 * 5462 * This should be called during resume routine to re-allocate the q_vectors 5463 * and reacquire interrupts. 5464 */ 5465 static int ice_reinit_interrupt_scheme(struct ice_pf *pf) 5466 { 5467 struct device *dev = ice_pf_to_dev(pf); 5468 int ret, v; 5469 5470 /* Since we clear MSIX flag during suspend, we need to 5471 * set it back during resume... 5472 */ 5473 5474 ret = ice_init_interrupt_scheme(pf); 5475 if (ret) { 5476 dev_err(dev, "Failed to re-initialize interrupt %d\n", ret); 5477 return ret; 5478 } 5479 5480 /* Remap vectors and rings, after successful re-init interrupts */ 5481 ice_for_each_vsi(pf, v) { 5482 if (!pf->vsi[v]) 5483 continue; 5484 5485 ret = ice_vsi_alloc_q_vectors(pf->vsi[v]); 5486 if (ret) 5487 goto err_reinit; 5488 ice_vsi_map_rings_to_vectors(pf->vsi[v]); 5489 rtnl_lock(); 5490 ice_vsi_set_napi_queues(pf->vsi[v]); 5491 rtnl_unlock(); 5492 } 5493 5494 ret = ice_req_irq_msix_misc(pf); 5495 if (ret) { 5496 dev_err(dev, "Setting up misc vector failed after device suspend %d\n", 5497 ret); 5498 goto err_reinit; 5499 } 5500 5501 return 0; 5502 5503 err_reinit: 5504 while (v--) 5505 if (pf->vsi[v]) { 5506 rtnl_lock(); 5507 ice_vsi_clear_napi_queues(pf->vsi[v]); 5508 rtnl_unlock(); 5509 ice_vsi_free_q_vectors(pf->vsi[v]); 5510 } 5511 5512 return ret; 5513 } 5514 5515 /** 5516 * ice_suspend 5517 * @dev: generic device information structure 5518 * 5519 * Power Management callback to quiesce the device and prepare 5520 * for D3 transition. 5521 */ 5522 static int ice_suspend(struct device *dev) 5523 { 5524 struct pci_dev *pdev = to_pci_dev(dev); 5525 struct ice_pf *pf; 5526 int disabled, v; 5527 5528 pf = pci_get_drvdata(pdev); 5529 5530 if (!ice_pf_state_is_nominal(pf)) { 5531 dev_err(dev, "Device is not ready, no need to suspend it\n"); 5532 return -EBUSY; 5533 } 5534 5535 /* Stop watchdog tasks until resume completion. 5536 * Even though it is most likely that the service task is 5537 * disabled if the device is suspended or down, the service task's 5538 * state is controlled by a different state bit, and we should 5539 * store and honor whatever state that bit is in at this point. 5540 */ 5541 disabled = ice_service_task_stop(pf); 5542 5543 ice_unplug_aux_dev(pf); 5544 ice_deinit_rdma(pf); 5545 5546 /* Already suspended?, then there is nothing to do */ 5547 if (test_and_set_bit(ICE_SUSPENDED, pf->state)) { 5548 if (!disabled) 5549 ice_service_task_restart(pf); 5550 return 0; 5551 } 5552 5553 if (test_bit(ICE_DOWN, pf->state) || 5554 ice_is_reset_in_progress(pf->state)) { 5555 dev_err(dev, "can't suspend device in reset or already down\n"); 5556 if (!disabled) 5557 ice_service_task_restart(pf); 5558 return 0; 5559 } 5560 5561 ice_setup_mc_magic_wake(pf); 5562 5563 ice_prepare_for_shutdown(pf); 5564 5565 ice_set_wake(pf); 5566 5567 /* Free vectors, clear the interrupt scheme and release IRQs 5568 * for proper hibernation, especially with large number of CPUs. 5569 * Otherwise hibernation might fail when mapping all the vectors back 5570 * to CPU0. 5571 */ 5572 ice_free_irq_msix_misc(pf); 5573 ice_for_each_vsi(pf, v) { 5574 if (!pf->vsi[v]) 5575 continue; 5576 rtnl_lock(); 5577 ice_vsi_clear_napi_queues(pf->vsi[v]); 5578 rtnl_unlock(); 5579 ice_vsi_free_q_vectors(pf->vsi[v]); 5580 } 5581 ice_clear_interrupt_scheme(pf); 5582 5583 pci_save_state(pdev); 5584 pci_wake_from_d3(pdev, pf->wol_ena); 5585 pci_set_power_state(pdev, PCI_D3hot); 5586 return 0; 5587 } 5588 5589 /** 5590 * ice_resume - PM callback for waking up from D3 5591 * @dev: generic device information structure 5592 */ 5593 static int ice_resume(struct device *dev) 5594 { 5595 struct pci_dev *pdev = to_pci_dev(dev); 5596 enum ice_reset_req reset_type; 5597 struct ice_pf *pf; 5598 struct ice_hw *hw; 5599 int ret; 5600 5601 pci_set_power_state(pdev, PCI_D0); 5602 pci_restore_state(pdev); 5603 5604 if (!pci_device_is_present(pdev)) 5605 return -ENODEV; 5606 5607 ret = pci_enable_device_mem(pdev); 5608 if (ret) { 5609 dev_err(dev, "Cannot enable device after suspend\n"); 5610 return ret; 5611 } 5612 5613 pf = pci_get_drvdata(pdev); 5614 hw = &pf->hw; 5615 5616 pf->wakeup_reason = rd32(hw, PFPM_WUS); 5617 ice_print_wake_reason(pf); 5618 5619 /* We cleared the interrupt scheme when we suspended, so we need to 5620 * restore it now to resume device functionality. 5621 */ 5622 ret = ice_reinit_interrupt_scheme(pf); 5623 if (ret) 5624 dev_err(dev, "Cannot restore interrupt scheme: %d\n", ret); 5625 5626 ret = ice_init_rdma(pf); 5627 if (ret) 5628 dev_err(dev, "Reinitialize RDMA during resume failed: %d\n", 5629 ret); 5630 5631 clear_bit(ICE_DOWN, pf->state); 5632 /* Now perform PF reset and rebuild */ 5633 reset_type = ICE_RESET_PFR; 5634 /* re-enable service task for reset, but allow reset to schedule it */ 5635 clear_bit(ICE_SERVICE_DIS, pf->state); 5636 5637 if (ice_schedule_reset(pf, reset_type)) 5638 dev_err(dev, "Reset during resume failed.\n"); 5639 5640 clear_bit(ICE_SUSPENDED, pf->state); 5641 ice_service_task_restart(pf); 5642 5643 /* Restart the service task */ 5644 mod_timer(&pf->serv_tmr, round_jiffies(jiffies + pf->serv_tmr_period)); 5645 5646 return 0; 5647 } 5648 5649 /** 5650 * ice_pci_err_detected - warning that PCI error has been detected 5651 * @pdev: PCI device information struct 5652 * @err: the type of PCI error 5653 * 5654 * Called to warn that something happened on the PCI bus and the error handling 5655 * is in progress. Allows the driver to gracefully prepare/handle PCI errors. 5656 */ 5657 static pci_ers_result_t 5658 ice_pci_err_detected(struct pci_dev *pdev, pci_channel_state_t err) 5659 { 5660 struct ice_pf *pf = pci_get_drvdata(pdev); 5661 5662 if (!pf) { 5663 dev_err(&pdev->dev, "%s: unrecoverable device error %d\n", 5664 __func__, err); 5665 return PCI_ERS_RESULT_DISCONNECT; 5666 } 5667 5668 if (!test_bit(ICE_SUSPENDED, pf->state)) { 5669 ice_service_task_stop(pf); 5670 5671 if (!test_bit(ICE_PREPARED_FOR_RESET, pf->state)) { 5672 set_bit(ICE_PFR_REQ, pf->state); 5673 ice_prepare_for_reset(pf, ICE_RESET_PFR); 5674 } 5675 } 5676 5677 return PCI_ERS_RESULT_NEED_RESET; 5678 } 5679 5680 /** 5681 * ice_pci_err_slot_reset - a PCI slot reset has just happened 5682 * @pdev: PCI device information struct 5683 * 5684 * Called to determine if the driver can recover from the PCI slot reset by 5685 * using a register read to determine if the device is recoverable. 5686 */ 5687 static pci_ers_result_t ice_pci_err_slot_reset(struct pci_dev *pdev) 5688 { 5689 struct ice_pf *pf = pci_get_drvdata(pdev); 5690 pci_ers_result_t result; 5691 int err; 5692 u32 reg; 5693 5694 err = pci_enable_device_mem(pdev); 5695 if (err) { 5696 dev_err(&pdev->dev, "Cannot re-enable PCI device after reset, error %d\n", 5697 err); 5698 result = PCI_ERS_RESULT_DISCONNECT; 5699 } else { 5700 pci_set_master(pdev); 5701 pci_restore_state(pdev); 5702 pci_wake_from_d3(pdev, false); 5703 5704 /* Check for life */ 5705 reg = rd32(&pf->hw, GLGEN_RTRIG); 5706 if (!reg) 5707 result = PCI_ERS_RESULT_RECOVERED; 5708 else 5709 result = PCI_ERS_RESULT_DISCONNECT; 5710 } 5711 5712 return result; 5713 } 5714 5715 /** 5716 * ice_pci_err_resume - restart operations after PCI error recovery 5717 * @pdev: PCI device information struct 5718 * 5719 * Called to allow the driver to bring things back up after PCI error and/or 5720 * reset recovery have finished 5721 */ 5722 static void ice_pci_err_resume(struct pci_dev *pdev) 5723 { 5724 struct ice_pf *pf = pci_get_drvdata(pdev); 5725 5726 if (!pf) { 5727 dev_err(&pdev->dev, "%s failed, device is unrecoverable\n", 5728 __func__); 5729 return; 5730 } 5731 5732 if (test_bit(ICE_SUSPENDED, pf->state)) { 5733 dev_dbg(&pdev->dev, "%s failed to resume normal operations!\n", 5734 __func__); 5735 return; 5736 } 5737 5738 ice_restore_all_vfs_msi_state(pf); 5739 5740 ice_do_reset(pf, ICE_RESET_PFR); 5741 ice_service_task_restart(pf); 5742 mod_timer(&pf->serv_tmr, round_jiffies(jiffies + pf->serv_tmr_period)); 5743 } 5744 5745 /** 5746 * ice_pci_err_reset_prepare - prepare device driver for PCI reset 5747 * @pdev: PCI device information struct 5748 */ 5749 static void ice_pci_err_reset_prepare(struct pci_dev *pdev) 5750 { 5751 struct ice_pf *pf = pci_get_drvdata(pdev); 5752 5753 if (!test_bit(ICE_SUSPENDED, pf->state)) { 5754 ice_service_task_stop(pf); 5755 5756 if (!test_bit(ICE_PREPARED_FOR_RESET, pf->state)) { 5757 set_bit(ICE_PFR_REQ, pf->state); 5758 ice_prepare_for_reset(pf, ICE_RESET_PFR); 5759 } 5760 } 5761 } 5762 5763 /** 5764 * ice_pci_err_reset_done - PCI reset done, device driver reset can begin 5765 * @pdev: PCI device information struct 5766 */ 5767 static void ice_pci_err_reset_done(struct pci_dev *pdev) 5768 { 5769 ice_pci_err_resume(pdev); 5770 } 5771 5772 /* ice_pci_tbl - PCI Device ID Table 5773 * 5774 * Wildcard entries (PCI_ANY_ID) should come last 5775 * Last entry must be all 0s 5776 * 5777 * { Vendor ID, Device ID, SubVendor ID, SubDevice ID, 5778 * Class, Class Mask, private data (not used) } 5779 */ 5780 static const struct pci_device_id ice_pci_tbl[] = { 5781 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810C_BACKPLANE) }, 5782 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810C_QSFP) }, 5783 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810C_SFP) }, 5784 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810_XXV_BACKPLANE) }, 5785 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810_XXV_QSFP) }, 5786 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E810_XXV_SFP) }, 5787 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823C_BACKPLANE) }, 5788 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823C_QSFP) }, 5789 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823C_SFP) }, 5790 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823C_10G_BASE_T) }, 5791 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823C_SGMII) }, 5792 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822C_BACKPLANE) }, 5793 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822C_QSFP) }, 5794 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822C_SFP) }, 5795 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822C_10G_BASE_T) }, 5796 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822C_SGMII) }, 5797 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822L_BACKPLANE) }, 5798 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822L_SFP) }, 5799 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822L_10G_BASE_T) }, 5800 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822L_SGMII) }, 5801 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823L_BACKPLANE) }, 5802 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823L_SFP) }, 5803 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823L_10G_BASE_T) }, 5804 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823L_1GBE) }, 5805 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E823L_QSFP) }, 5806 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E822_SI_DFLT) }, 5807 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E825C_BACKPLANE), }, 5808 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E825C_QSFP), }, 5809 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E825C_SFP), }, 5810 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E825C_SGMII), }, 5811 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830CC_BACKPLANE) }, 5812 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830CC_QSFP56) }, 5813 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830CC_SFP) }, 5814 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830CC_SFP_DD) }, 5815 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830C_BACKPLANE), }, 5816 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830_XXV_BACKPLANE), }, 5817 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830C_QSFP), }, 5818 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830_XXV_QSFP), }, 5819 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830C_SFP), }, 5820 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E830_XXV_SFP), }, 5821 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835CC_BACKPLANE), }, 5822 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835CC_QSFP56), }, 5823 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835CC_SFP), }, 5824 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835C_BACKPLANE), }, 5825 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835C_QSFP), }, 5826 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835C_SFP), }, 5827 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835_L_BACKPLANE), }, 5828 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835_L_QSFP), }, 5829 { PCI_VDEVICE(INTEL, ICE_DEV_ID_E835_L_SFP), }, 5830 /* required last entry */ 5831 {} 5832 }; 5833 MODULE_DEVICE_TABLE(pci, ice_pci_tbl); 5834 5835 static DEFINE_SIMPLE_DEV_PM_OPS(ice_pm_ops, ice_suspend, ice_resume); 5836 5837 static const struct pci_error_handlers ice_pci_err_handler = { 5838 .error_detected = ice_pci_err_detected, 5839 .slot_reset = ice_pci_err_slot_reset, 5840 .reset_prepare = ice_pci_err_reset_prepare, 5841 .reset_done = ice_pci_err_reset_done, 5842 .resume = ice_pci_err_resume 5843 }; 5844 5845 static struct pci_driver ice_driver = { 5846 .name = KBUILD_MODNAME, 5847 .id_table = ice_pci_tbl, 5848 .probe = ice_probe, 5849 .remove = ice_remove, 5850 .driver.pm = pm_sleep_ptr(&ice_pm_ops), 5851 .shutdown = ice_shutdown, 5852 .sriov_configure = ice_sriov_configure, 5853 .sriov_get_vf_total_msix = ice_sriov_get_vf_total_msix, 5854 .sriov_set_msix_vec_count = ice_sriov_set_msix_vec_count, 5855 .err_handler = &ice_pci_err_handler 5856 }; 5857 5858 /** 5859 * ice_module_init - Driver registration routine 5860 * 5861 * ice_module_init is the first routine called when the driver is 5862 * loaded. All it does is register with the PCI subsystem. 5863 */ 5864 static int __init ice_module_init(void) 5865 { 5866 int status = -ENOMEM; 5867 5868 pr_info("%s\n", ice_driver_string); 5869 pr_info("%s\n", ice_copyright); 5870 5871 ice_adv_lnk_speed_maps_init(); 5872 5873 ice_wq = alloc_workqueue("%s", WQ_UNBOUND, 0, KBUILD_MODNAME); 5874 if (!ice_wq) { 5875 pr_err("Failed to create workqueue\n"); 5876 return status; 5877 } 5878 5879 ice_lag_wq = alloc_ordered_workqueue("ice_lag_wq", 0); 5880 if (!ice_lag_wq) { 5881 pr_err("Failed to create LAG workqueue\n"); 5882 goto err_dest_wq; 5883 } 5884 5885 ice_debugfs_init(); 5886 5887 status = pci_register_driver(&ice_driver); 5888 if (status) { 5889 pr_err("failed to register PCI driver, err %d\n", status); 5890 goto err_dest_lag_wq; 5891 } 5892 5893 status = ice_sf_driver_register(); 5894 if (status) { 5895 pr_err("Failed to register SF driver, err %d\n", status); 5896 goto err_sf_driver; 5897 } 5898 5899 return 0; 5900 5901 err_sf_driver: 5902 pci_unregister_driver(&ice_driver); 5903 err_dest_lag_wq: 5904 destroy_workqueue(ice_lag_wq); 5905 ice_debugfs_exit(); 5906 err_dest_wq: 5907 destroy_workqueue(ice_wq); 5908 return status; 5909 } 5910 module_init(ice_module_init); 5911 5912 /** 5913 * ice_module_exit - Driver exit cleanup routine 5914 * 5915 * ice_module_exit is called just before the driver is removed 5916 * from memory. 5917 */ 5918 static void __exit ice_module_exit(void) 5919 { 5920 ice_sf_driver_unregister(); 5921 pci_unregister_driver(&ice_driver); 5922 ice_debugfs_exit(); 5923 destroy_workqueue(ice_wq); 5924 destroy_workqueue(ice_lag_wq); 5925 pr_info("module unloaded\n"); 5926 } 5927 module_exit(ice_module_exit); 5928 5929 /** 5930 * ice_set_mac_address - NDO callback to set MAC address 5931 * @netdev: network interface device structure 5932 * @pi: pointer to an address structure 5933 * 5934 * Returns 0 on success, negative on failure 5935 */ 5936 static int ice_set_mac_address(struct net_device *netdev, void *pi) 5937 { 5938 struct ice_netdev_priv *np = netdev_priv(netdev); 5939 struct ice_vsi *vsi = np->vsi; 5940 struct ice_pf *pf = vsi->back; 5941 struct ice_hw *hw = &pf->hw; 5942 struct sockaddr *addr = pi; 5943 u8 old_mac[ETH_ALEN]; 5944 u8 flags = 0; 5945 u8 *mac; 5946 int err; 5947 5948 mac = (u8 *)addr->sa_data; 5949 5950 if (!is_valid_ether_addr(mac)) 5951 return -EADDRNOTAVAIL; 5952 5953 if (test_bit(ICE_DOWN, pf->state) || 5954 ice_is_reset_in_progress(pf->state)) { 5955 netdev_err(netdev, "can't set mac %pM. device not ready\n", 5956 mac); 5957 return -EBUSY; 5958 } 5959 5960 if (ice_chnl_dmac_fltr_cnt(pf)) { 5961 netdev_err(netdev, "can't set mac %pM. Device has tc-flower filters, delete all of them and try again\n", 5962 mac); 5963 return -EAGAIN; 5964 } 5965 5966 netif_addr_lock_bh(netdev); 5967 ether_addr_copy(old_mac, netdev->dev_addr); 5968 /* change the netdev's MAC address */ 5969 eth_hw_addr_set(netdev, mac); 5970 netif_addr_unlock_bh(netdev); 5971 5972 /* Clean up old MAC filter. Not an error if old filter doesn't exist */ 5973 err = ice_fltr_remove_mac(vsi, old_mac, ICE_FWD_TO_VSI); 5974 if (err && err != -ENOENT) { 5975 err = -EADDRNOTAVAIL; 5976 goto err_update_filters; 5977 } 5978 5979 /* Add filter for new MAC. If filter exists, return success */ 5980 err = ice_fltr_add_mac(vsi, mac, ICE_FWD_TO_VSI); 5981 if (err == -EEXIST) { 5982 /* Although this MAC filter is already present in hardware it's 5983 * possible in some cases (e.g. bonding) that dev_addr was 5984 * modified outside of the driver and needs to be restored back 5985 * to this value. 5986 */ 5987 netdev_dbg(netdev, "filter for MAC %pM already exists\n", mac); 5988 5989 return 0; 5990 } else if (err) { 5991 /* error if the new filter addition failed */ 5992 err = -EADDRNOTAVAIL; 5993 } 5994 5995 err_update_filters: 5996 if (err) { 5997 netdev_err(netdev, "can't set MAC %pM. filter update failed\n", 5998 mac); 5999 netif_addr_lock_bh(netdev); 6000 eth_hw_addr_set(netdev, old_mac); 6001 netif_addr_unlock_bh(netdev); 6002 return err; 6003 } 6004 6005 netdev_dbg(vsi->netdev, "updated MAC address to %pM\n", 6006 netdev->dev_addr); 6007 6008 /* write new MAC address to the firmware */ 6009 flags = ICE_AQC_MAN_MAC_UPDATE_LAA_WOL; 6010 err = ice_aq_manage_mac_write(hw, mac, flags, NULL); 6011 if (err) { 6012 netdev_err(netdev, "can't set MAC %pM. write to firmware failed error %d\n", 6013 mac, err); 6014 } 6015 return 0; 6016 } 6017 6018 /** 6019 * ice_set_rx_mode - NDO callback to set the netdev filters 6020 * @netdev: network interface device structure 6021 */ 6022 static void ice_set_rx_mode(struct net_device *netdev) 6023 { 6024 struct ice_netdev_priv *np = netdev_priv(netdev); 6025 struct ice_vsi *vsi = np->vsi; 6026 6027 if (!vsi || ice_is_switchdev_running(vsi->back)) 6028 return; 6029 6030 /* Set the flags to synchronize filters 6031 * ndo_set_rx_mode may be triggered even without a change in netdev 6032 * flags 6033 */ 6034 set_bit(ICE_VSI_UMAC_FLTR_CHANGED, vsi->state); 6035 set_bit(ICE_VSI_MMAC_FLTR_CHANGED, vsi->state); 6036 set_bit(ICE_FLAG_FLTR_SYNC, vsi->back->flags); 6037 6038 /* schedule our worker thread which will take care of 6039 * applying the new filter changes 6040 */ 6041 ice_service_task_schedule(vsi->back); 6042 } 6043 6044 /** 6045 * ice_set_tx_maxrate - NDO callback to set the maximum per-queue bitrate 6046 * @netdev: network interface device structure 6047 * @queue_index: Queue ID 6048 * @maxrate: maximum bandwidth in Mbps 6049 */ 6050 static int 6051 ice_set_tx_maxrate(struct net_device *netdev, int queue_index, u32 maxrate) 6052 { 6053 struct ice_netdev_priv *np = netdev_priv(netdev); 6054 struct ice_vsi *vsi = np->vsi; 6055 u16 q_handle; 6056 int status; 6057 u8 tc; 6058 6059 /* Validate maxrate requested is within permitted range */ 6060 if (maxrate && (maxrate > (ICE_SCHED_MAX_BW / 1000))) { 6061 netdev_err(netdev, "Invalid max rate %d specified for the queue %d\n", 6062 maxrate, queue_index); 6063 return -EINVAL; 6064 } 6065 6066 q_handle = vsi->tx_rings[queue_index]->q_handle; 6067 tc = ice_dcb_get_tc(vsi, queue_index); 6068 6069 vsi = ice_locate_vsi_using_queue(vsi, queue_index); 6070 if (!vsi) { 6071 netdev_err(netdev, "Invalid VSI for given queue %d\n", 6072 queue_index); 6073 return -EINVAL; 6074 } 6075 6076 /* Set BW back to default, when user set maxrate to 0 */ 6077 if (!maxrate) 6078 status = ice_cfg_q_bw_dflt_lmt(vsi->port_info, vsi->idx, tc, 6079 q_handle, ICE_MAX_BW); 6080 else 6081 status = ice_cfg_q_bw_lmt(vsi->port_info, vsi->idx, tc, 6082 q_handle, ICE_MAX_BW, maxrate * 1000); 6083 if (status) 6084 netdev_err(netdev, "Unable to set Tx max rate, error %d\n", 6085 status); 6086 6087 return status; 6088 } 6089 6090 /** 6091 * ice_fdb_add - add an entry to the hardware database 6092 * @ndm: the input from the stack 6093 * @tb: pointer to array of nladdr (unused) 6094 * @dev: the net device pointer 6095 * @addr: the MAC address entry being added 6096 * @vid: VLAN ID 6097 * @flags: instructions from stack about fdb operation 6098 * @notified: whether notification was emitted 6099 * @extack: netlink extended ack 6100 */ 6101 static int 6102 ice_fdb_add(struct ndmsg *ndm, struct nlattr __always_unused *tb[], 6103 struct net_device *dev, const unsigned char *addr, u16 vid, 6104 u16 flags, bool *notified, 6105 struct netlink_ext_ack __always_unused *extack) 6106 { 6107 int err; 6108 6109 if (vid) { 6110 netdev_err(dev, "VLANs aren't supported yet for dev_uc|mc_add()\n"); 6111 return -EINVAL; 6112 } 6113 if (ndm->ndm_state && !(ndm->ndm_state & NUD_PERMANENT)) { 6114 netdev_err(dev, "FDB only supports static addresses\n"); 6115 return -EINVAL; 6116 } 6117 6118 if (is_unicast_ether_addr(addr) || is_link_local_ether_addr(addr)) 6119 err = dev_uc_add_excl(dev, addr); 6120 else if (is_multicast_ether_addr(addr)) 6121 err = dev_mc_add_excl(dev, addr); 6122 else 6123 err = -EINVAL; 6124 6125 /* Only return duplicate errors if NLM_F_EXCL is set */ 6126 if (err == -EEXIST && !(flags & NLM_F_EXCL)) 6127 err = 0; 6128 6129 return err; 6130 } 6131 6132 /** 6133 * ice_fdb_del - delete an entry from the hardware database 6134 * @ndm: the input from the stack 6135 * @tb: pointer to array of nladdr (unused) 6136 * @dev: the net device pointer 6137 * @addr: the MAC address entry being added 6138 * @vid: VLAN ID 6139 * @notified: whether notification was emitted 6140 * @extack: netlink extended ack 6141 */ 6142 static int 6143 ice_fdb_del(struct ndmsg *ndm, __always_unused struct nlattr *tb[], 6144 struct net_device *dev, const unsigned char *addr, 6145 __always_unused u16 vid, bool *notified, 6146 struct netlink_ext_ack *extack) 6147 { 6148 int err; 6149 6150 if (ndm->ndm_state & NUD_PERMANENT) { 6151 netdev_err(dev, "FDB only supports static addresses\n"); 6152 return -EINVAL; 6153 } 6154 6155 if (is_unicast_ether_addr(addr)) 6156 err = dev_uc_del(dev, addr); 6157 else if (is_multicast_ether_addr(addr)) 6158 err = dev_mc_del(dev, addr); 6159 else 6160 err = -EINVAL; 6161 6162 return err; 6163 } 6164 6165 #define NETIF_VLAN_OFFLOAD_FEATURES (NETIF_F_HW_VLAN_CTAG_RX | \ 6166 NETIF_F_HW_VLAN_CTAG_TX | \ 6167 NETIF_F_HW_VLAN_STAG_RX | \ 6168 NETIF_F_HW_VLAN_STAG_TX) 6169 6170 #define NETIF_VLAN_STRIPPING_FEATURES (NETIF_F_HW_VLAN_CTAG_RX | \ 6171 NETIF_F_HW_VLAN_STAG_RX) 6172 6173 #define NETIF_VLAN_FILTERING_FEATURES (NETIF_F_HW_VLAN_CTAG_FILTER | \ 6174 NETIF_F_HW_VLAN_STAG_FILTER) 6175 6176 /** 6177 * ice_fix_features - fix the netdev features flags based on device limitations 6178 * @netdev: ptr to the netdev that flags are being fixed on 6179 * @features: features that need to be checked and possibly fixed 6180 * 6181 * Make sure any fixups are made to features in this callback. This enables the 6182 * driver to not have to check unsupported configurations throughout the driver 6183 * because that's the responsiblity of this callback. 6184 * 6185 * Single VLAN Mode (SVM) Supported Features: 6186 * NETIF_F_HW_VLAN_CTAG_FILTER 6187 * NETIF_F_HW_VLAN_CTAG_RX 6188 * NETIF_F_HW_VLAN_CTAG_TX 6189 * 6190 * Double VLAN Mode (DVM) Supported Features: 6191 * NETIF_F_HW_VLAN_CTAG_FILTER 6192 * NETIF_F_HW_VLAN_CTAG_RX 6193 * NETIF_F_HW_VLAN_CTAG_TX 6194 * 6195 * NETIF_F_HW_VLAN_STAG_FILTER 6196 * NETIF_HW_VLAN_STAG_RX 6197 * NETIF_HW_VLAN_STAG_TX 6198 * 6199 * Features that need fixing: 6200 * Cannot simultaneously enable CTAG and STAG stripping and/or insertion. 6201 * These are mutually exlusive as the VSI context cannot support multiple 6202 * VLAN ethertypes simultaneously for stripping and/or insertion. If this 6203 * is not done, then default to clearing the requested STAG offload 6204 * settings. 6205 * 6206 * All supported filtering has to be enabled or disabled together. For 6207 * example, in DVM, CTAG and STAG filtering have to be enabled and disabled 6208 * together. If this is not done, then default to VLAN filtering disabled. 6209 * These are mutually exclusive as there is currently no way to 6210 * enable/disable VLAN filtering based on VLAN ethertype when using VLAN 6211 * prune rules. 6212 */ 6213 static netdev_features_t 6214 ice_fix_features(struct net_device *netdev, netdev_features_t features) 6215 { 6216 struct ice_netdev_priv *np = netdev_priv(netdev); 6217 netdev_features_t req_vlan_fltr, cur_vlan_fltr; 6218 bool cur_ctag, cur_stag, req_ctag, req_stag; 6219 6220 cur_vlan_fltr = netdev->features & NETIF_VLAN_FILTERING_FEATURES; 6221 cur_ctag = cur_vlan_fltr & NETIF_F_HW_VLAN_CTAG_FILTER; 6222 cur_stag = cur_vlan_fltr & NETIF_F_HW_VLAN_STAG_FILTER; 6223 6224 req_vlan_fltr = features & NETIF_VLAN_FILTERING_FEATURES; 6225 req_ctag = req_vlan_fltr & NETIF_F_HW_VLAN_CTAG_FILTER; 6226 req_stag = req_vlan_fltr & NETIF_F_HW_VLAN_STAG_FILTER; 6227 6228 if (req_vlan_fltr != cur_vlan_fltr) { 6229 if (ice_is_dvm_ena(&np->vsi->back->hw)) { 6230 if (req_ctag && req_stag) { 6231 features |= NETIF_VLAN_FILTERING_FEATURES; 6232 } else if (!req_ctag && !req_stag) { 6233 features &= ~NETIF_VLAN_FILTERING_FEATURES; 6234 } else if ((!cur_ctag && req_ctag && !cur_stag) || 6235 (!cur_stag && req_stag && !cur_ctag)) { 6236 features |= NETIF_VLAN_FILTERING_FEATURES; 6237 netdev_warn(netdev, "802.1Q and 802.1ad VLAN filtering must be either both on or both off. VLAN filtering has been enabled for both types.\n"); 6238 } else if ((cur_ctag && !req_ctag && cur_stag) || 6239 (cur_stag && !req_stag && cur_ctag)) { 6240 features &= ~NETIF_VLAN_FILTERING_FEATURES; 6241 netdev_warn(netdev, "802.1Q and 802.1ad VLAN filtering must be either both on or both off. VLAN filtering has been disabled for both types.\n"); 6242 } 6243 } else { 6244 if (req_vlan_fltr & NETIF_F_HW_VLAN_STAG_FILTER) 6245 netdev_warn(netdev, "cannot support requested 802.1ad filtering setting in SVM mode\n"); 6246 6247 if (req_vlan_fltr & NETIF_F_HW_VLAN_CTAG_FILTER) 6248 features |= NETIF_F_HW_VLAN_CTAG_FILTER; 6249 } 6250 } 6251 6252 if ((features & (NETIF_F_HW_VLAN_CTAG_RX | NETIF_F_HW_VLAN_CTAG_TX)) && 6253 (features & (NETIF_F_HW_VLAN_STAG_RX | NETIF_F_HW_VLAN_STAG_TX))) { 6254 netdev_warn(netdev, "cannot support CTAG and STAG VLAN stripping and/or insertion simultaneously since CTAG and STAG offloads are mutually exclusive, clearing STAG offload settings\n"); 6255 features &= ~(NETIF_F_HW_VLAN_STAG_RX | 6256 NETIF_F_HW_VLAN_STAG_TX); 6257 } 6258 6259 if (!(netdev->features & NETIF_F_RXFCS) && 6260 (features & NETIF_F_RXFCS) && 6261 (features & NETIF_VLAN_STRIPPING_FEATURES) && 6262 !ice_vsi_has_non_zero_vlans(np->vsi)) { 6263 netdev_warn(netdev, "Disabling VLAN stripping as FCS/CRC stripping is also disabled and there is no VLAN configured\n"); 6264 features &= ~NETIF_VLAN_STRIPPING_FEATURES; 6265 } 6266 6267 return features; 6268 } 6269 6270 /** 6271 * ice_set_rx_rings_vlan_proto - update rings with new stripped VLAN proto 6272 * @vsi: PF's VSI 6273 * @vlan_ethertype: VLAN ethertype (802.1Q or 802.1ad) in network byte order 6274 * 6275 * Store current stripped VLAN proto in ring packet context, 6276 * so it can be accessed more efficiently by packet processing code. 6277 */ 6278 static void 6279 ice_set_rx_rings_vlan_proto(struct ice_vsi *vsi, __be16 vlan_ethertype) 6280 { 6281 u16 i; 6282 6283 ice_for_each_alloc_rxq(vsi, i) 6284 vsi->rx_rings[i]->pkt_ctx.vlan_proto = vlan_ethertype; 6285 } 6286 6287 /** 6288 * ice_set_vlan_offload_features - set VLAN offload features for the PF VSI 6289 * @vsi: PF's VSI 6290 * @features: features used to determine VLAN offload settings 6291 * 6292 * First, determine the vlan_ethertype based on the VLAN offload bits in 6293 * features. Then determine if stripping and insertion should be enabled or 6294 * disabled. Finally enable or disable VLAN stripping and insertion. 6295 */ 6296 static int 6297 ice_set_vlan_offload_features(struct ice_vsi *vsi, netdev_features_t features) 6298 { 6299 bool enable_stripping = true, enable_insertion = true; 6300 struct ice_vsi_vlan_ops *vlan_ops; 6301 int strip_err = 0, insert_err = 0; 6302 u16 vlan_ethertype = 0; 6303 6304 vlan_ops = ice_get_compat_vsi_vlan_ops(vsi); 6305 6306 if (features & (NETIF_F_HW_VLAN_STAG_RX | NETIF_F_HW_VLAN_STAG_TX)) 6307 vlan_ethertype = ETH_P_8021AD; 6308 else if (features & (NETIF_F_HW_VLAN_CTAG_RX | NETIF_F_HW_VLAN_CTAG_TX)) 6309 vlan_ethertype = ETH_P_8021Q; 6310 6311 if (!(features & (NETIF_F_HW_VLAN_STAG_RX | NETIF_F_HW_VLAN_CTAG_RX))) 6312 enable_stripping = false; 6313 if (!(features & (NETIF_F_HW_VLAN_STAG_TX | NETIF_F_HW_VLAN_CTAG_TX))) 6314 enable_insertion = false; 6315 6316 if (enable_stripping) 6317 strip_err = vlan_ops->ena_stripping(vsi, vlan_ethertype); 6318 else 6319 strip_err = vlan_ops->dis_stripping(vsi); 6320 6321 if (enable_insertion) 6322 insert_err = vlan_ops->ena_insertion(vsi, vlan_ethertype); 6323 else 6324 insert_err = vlan_ops->dis_insertion(vsi); 6325 6326 if (strip_err || insert_err) 6327 return -EIO; 6328 6329 ice_set_rx_rings_vlan_proto(vsi, enable_stripping ? 6330 htons(vlan_ethertype) : 0); 6331 6332 return 0; 6333 } 6334 6335 /** 6336 * ice_set_vlan_filtering_features - set VLAN filtering features for the PF VSI 6337 * @vsi: PF's VSI 6338 * @features: features used to determine VLAN filtering settings 6339 * 6340 * Enable or disable Rx VLAN filtering based on the VLAN filtering bits in the 6341 * features. 6342 */ 6343 static int 6344 ice_set_vlan_filtering_features(struct ice_vsi *vsi, netdev_features_t features) 6345 { 6346 struct ice_vsi_vlan_ops *vlan_ops = ice_get_compat_vsi_vlan_ops(vsi); 6347 int err = 0; 6348 6349 /* support Single VLAN Mode (SVM) and Double VLAN Mode (DVM) by checking 6350 * if either bit is set. In switchdev mode Rx filtering should never be 6351 * enabled. 6352 */ 6353 if ((features & 6354 (NETIF_F_HW_VLAN_CTAG_FILTER | NETIF_F_HW_VLAN_STAG_FILTER)) && 6355 !ice_is_eswitch_mode_switchdev(vsi->back)) 6356 err = vlan_ops->ena_rx_filtering(vsi); 6357 else 6358 err = vlan_ops->dis_rx_filtering(vsi); 6359 6360 return err; 6361 } 6362 6363 /** 6364 * ice_set_vlan_features - set VLAN settings based on suggested feature set 6365 * @netdev: ptr to the netdev being adjusted 6366 * @features: the feature set that the stack is suggesting 6367 * 6368 * Only update VLAN settings if the requested_vlan_features are different than 6369 * the current_vlan_features. 6370 */ 6371 static int 6372 ice_set_vlan_features(struct net_device *netdev, netdev_features_t features) 6373 { 6374 netdev_features_t current_vlan_features, requested_vlan_features; 6375 struct ice_netdev_priv *np = netdev_priv(netdev); 6376 struct ice_vsi *vsi = np->vsi; 6377 int err; 6378 6379 current_vlan_features = netdev->features & NETIF_VLAN_OFFLOAD_FEATURES; 6380 requested_vlan_features = features & NETIF_VLAN_OFFLOAD_FEATURES; 6381 if (current_vlan_features ^ requested_vlan_features) { 6382 if ((features & NETIF_F_RXFCS) && 6383 (features & NETIF_VLAN_STRIPPING_FEATURES)) { 6384 dev_err(ice_pf_to_dev(vsi->back), 6385 "To enable VLAN stripping, you must first enable FCS/CRC stripping\n"); 6386 return -EIO; 6387 } 6388 6389 err = ice_set_vlan_offload_features(vsi, features); 6390 if (err) 6391 return err; 6392 } 6393 6394 current_vlan_features = netdev->features & 6395 NETIF_VLAN_FILTERING_FEATURES; 6396 requested_vlan_features = features & NETIF_VLAN_FILTERING_FEATURES; 6397 if (current_vlan_features ^ requested_vlan_features) { 6398 err = ice_set_vlan_filtering_features(vsi, features); 6399 if (err) 6400 return err; 6401 } 6402 6403 return 0; 6404 } 6405 6406 /** 6407 * ice_set_loopback - turn on/off loopback mode on underlying PF 6408 * @vsi: ptr to VSI 6409 * @ena: flag to indicate the on/off setting 6410 */ 6411 static int ice_set_loopback(struct ice_vsi *vsi, bool ena) 6412 { 6413 bool if_running = netif_running(vsi->netdev); 6414 int ret; 6415 6416 if (if_running && !test_and_set_bit(ICE_VSI_DOWN, vsi->state)) { 6417 ret = ice_down(vsi); 6418 if (ret) { 6419 netdev_err(vsi->netdev, "Preparing device to toggle loopback failed\n"); 6420 return ret; 6421 } 6422 } 6423 ret = ice_aq_set_mac_loopback(&vsi->back->hw, ena, NULL); 6424 if (ret) 6425 netdev_err(vsi->netdev, "Failed to toggle loopback state\n"); 6426 if (if_running) 6427 ret = ice_up(vsi); 6428 6429 return ret; 6430 } 6431 6432 /** 6433 * ice_set_features - set the netdev feature flags 6434 * @netdev: ptr to the netdev being adjusted 6435 * @features: the feature set that the stack is suggesting 6436 */ 6437 static int 6438 ice_set_features(struct net_device *netdev, netdev_features_t features) 6439 { 6440 netdev_features_t changed = netdev->features ^ features; 6441 struct ice_netdev_priv *np = netdev_priv(netdev); 6442 struct ice_vsi *vsi = np->vsi; 6443 struct ice_pf *pf = vsi->back; 6444 int ret = 0; 6445 6446 /* Don't set any netdev advanced features with device in Safe Mode */ 6447 if (ice_is_safe_mode(pf)) { 6448 dev_err(ice_pf_to_dev(pf), 6449 "Device is in Safe Mode - not enabling advanced netdev features\n"); 6450 return ret; 6451 } 6452 6453 /* Do not change setting during reset */ 6454 if (ice_is_reset_in_progress(pf->state)) { 6455 dev_err(ice_pf_to_dev(pf), 6456 "Device is resetting, changing advanced netdev features temporarily unavailable.\n"); 6457 return -EBUSY; 6458 } 6459 6460 /* Multiple features can be changed in one call so keep features in 6461 * separate if/else statements to guarantee each feature is checked 6462 */ 6463 if (changed & NETIF_F_RXHASH) 6464 ice_vsi_manage_rss_lut(vsi, !!(features & NETIF_F_RXHASH)); 6465 6466 ret = ice_set_vlan_features(netdev, features); 6467 if (ret) 6468 return ret; 6469 6470 /* Turn on receive of FCS aka CRC, and after setting this 6471 * flag the packet data will have the 4 byte CRC appended 6472 */ 6473 if (changed & NETIF_F_RXFCS) { 6474 if ((features & NETIF_F_RXFCS) && 6475 (features & NETIF_VLAN_STRIPPING_FEATURES)) { 6476 dev_err(ice_pf_to_dev(vsi->back), 6477 "To disable FCS/CRC stripping, you must first disable VLAN stripping\n"); 6478 return -EIO; 6479 } 6480 6481 ice_vsi_cfg_crc_strip(vsi, !!(features & NETIF_F_RXFCS)); 6482 ret = ice_down_up(vsi); 6483 if (ret) 6484 return ret; 6485 } 6486 6487 if (changed & NETIF_F_NTUPLE) { 6488 bool ena = !!(features & NETIF_F_NTUPLE); 6489 6490 ice_vsi_manage_fdir(vsi, ena); 6491 ena ? ice_init_arfs(vsi) : ice_clear_arfs(vsi); 6492 } 6493 6494 /* don't turn off hw_tc_offload when ADQ is already enabled */ 6495 if (!(features & NETIF_F_HW_TC) && ice_is_adq_active(pf)) { 6496 dev_err(ice_pf_to_dev(pf), "ADQ is active, can't turn hw_tc_offload off\n"); 6497 return -EACCES; 6498 } 6499 6500 if (changed & NETIF_F_HW_TC) { 6501 bool ena = !!(features & NETIF_F_HW_TC); 6502 6503 assign_bit(ICE_FLAG_CLS_FLOWER, pf->flags, ena); 6504 } 6505 6506 if (changed & NETIF_F_LOOPBACK) 6507 ret = ice_set_loopback(vsi, !!(features & NETIF_F_LOOPBACK)); 6508 6509 /* Due to E830 hardware limitations, TSO (NETIF_F_ALL_TSO) with GCS 6510 * (NETIF_F_HW_CSUM) is not supported. 6511 */ 6512 if (ice_is_feature_supported(pf, ICE_F_GCS) && 6513 ((features & NETIF_F_HW_CSUM) && (features & NETIF_F_ALL_TSO))) { 6514 if (netdev->features & NETIF_F_HW_CSUM) 6515 dev_err(ice_pf_to_dev(pf), "To enable TSO, you must first disable HW checksum.\n"); 6516 else 6517 dev_err(ice_pf_to_dev(pf), "To enable HW checksum, you must first disable TSO.\n"); 6518 return -EIO; 6519 } 6520 6521 return ret; 6522 } 6523 6524 /** 6525 * ice_vsi_vlan_setup - Setup VLAN offload properties on a PF VSI 6526 * @vsi: VSI to setup VLAN properties for 6527 */ 6528 static int ice_vsi_vlan_setup(struct ice_vsi *vsi) 6529 { 6530 int err; 6531 6532 err = ice_set_vlan_offload_features(vsi, vsi->netdev->features); 6533 if (err) 6534 return err; 6535 6536 err = ice_set_vlan_filtering_features(vsi, vsi->netdev->features); 6537 if (err) 6538 return err; 6539 6540 return ice_vsi_add_vlan_zero(vsi); 6541 } 6542 6543 /** 6544 * ice_vsi_cfg_lan - Setup the VSI lan related config 6545 * @vsi: the VSI being configured 6546 * 6547 * Return 0 on success and negative value on error 6548 */ 6549 int ice_vsi_cfg_lan(struct ice_vsi *vsi) 6550 { 6551 int err; 6552 6553 if (vsi->netdev && vsi->type == ICE_VSI_PF) { 6554 ice_set_rx_mode(vsi->netdev); 6555 6556 err = ice_vsi_vlan_setup(vsi); 6557 if (err) 6558 return err; 6559 } 6560 ice_vsi_cfg_dcb_rings(vsi); 6561 6562 err = ice_vsi_cfg_lan_txqs(vsi); 6563 if (!err && ice_is_xdp_ena_vsi(vsi)) 6564 err = ice_vsi_cfg_xdp_txqs(vsi); 6565 if (!err) 6566 err = ice_vsi_cfg_rxqs(vsi); 6567 6568 return err; 6569 } 6570 6571 /* THEORY OF MODERATION: 6572 * The ice driver hardware works differently than the hardware that DIMLIB was 6573 * originally made for. ice hardware doesn't have packet count limits that 6574 * can trigger an interrupt, but it *does* have interrupt rate limit support, 6575 * which is hard-coded to a limit of 250,000 ints/second. 6576 * If not using dynamic moderation, the INTRL value can be modified 6577 * by ethtool rx-usecs-high. 6578 */ 6579 struct ice_dim { 6580 /* the throttle rate for interrupts, basically worst case delay before 6581 * an initial interrupt fires, value is stored in microseconds. 6582 */ 6583 u16 itr; 6584 }; 6585 6586 /* Make a different profile for Rx that doesn't allow quite so aggressive 6587 * moderation at the high end (it maxes out at 126us or about 8k interrupts a 6588 * second. 6589 */ 6590 static const struct ice_dim rx_profile[] = { 6591 {2}, /* 500,000 ints/s, capped at 250K by INTRL */ 6592 {8}, /* 125,000 ints/s */ 6593 {16}, /* 62,500 ints/s */ 6594 {62}, /* 16,129 ints/s */ 6595 {126} /* 7,936 ints/s */ 6596 }; 6597 6598 /* The transmit profile, which has the same sorts of values 6599 * as the previous struct 6600 */ 6601 static const struct ice_dim tx_profile[] = { 6602 {2}, /* 500,000 ints/s, capped at 250K by INTRL */ 6603 {8}, /* 125,000 ints/s */ 6604 {40}, /* 16,125 ints/s */ 6605 {128}, /* 7,812 ints/s */ 6606 {256} /* 3,906 ints/s */ 6607 }; 6608 6609 static void ice_tx_dim_work(struct work_struct *work) 6610 { 6611 struct ice_ring_container *rc; 6612 struct dim *dim; 6613 u16 itr; 6614 6615 dim = container_of(work, struct dim, work); 6616 rc = dim->priv; 6617 6618 WARN_ON(dim->profile_ix >= ARRAY_SIZE(tx_profile)); 6619 6620 /* look up the values in our local table */ 6621 itr = tx_profile[dim->profile_ix].itr; 6622 6623 ice_trace(tx_dim_work, container_of(rc, struct ice_q_vector, tx), dim); 6624 ice_write_itr(rc, itr); 6625 6626 dim->state = DIM_START_MEASURE; 6627 } 6628 6629 static void ice_rx_dim_work(struct work_struct *work) 6630 { 6631 struct ice_ring_container *rc; 6632 struct dim *dim; 6633 u16 itr; 6634 6635 dim = container_of(work, struct dim, work); 6636 rc = dim->priv; 6637 6638 WARN_ON(dim->profile_ix >= ARRAY_SIZE(rx_profile)); 6639 6640 /* look up the values in our local table */ 6641 itr = rx_profile[dim->profile_ix].itr; 6642 6643 ice_trace(rx_dim_work, container_of(rc, struct ice_q_vector, rx), dim); 6644 ice_write_itr(rc, itr); 6645 6646 dim->state = DIM_START_MEASURE; 6647 } 6648 6649 #define ICE_DIM_DEFAULT_PROFILE_IX 1 6650 6651 /** 6652 * ice_init_moderation - set up interrupt moderation 6653 * @q_vector: the vector containing rings to be configured 6654 * 6655 * Set up interrupt moderation registers, with the intent to do the right thing 6656 * when called from reset or from probe, and whether or not dynamic moderation 6657 * is enabled or not. Take special care to write all the registers in both 6658 * dynamic moderation mode or not in order to make sure hardware is in a known 6659 * state. 6660 */ 6661 static void ice_init_moderation(struct ice_q_vector *q_vector) 6662 { 6663 struct ice_ring_container *rc; 6664 bool tx_dynamic, rx_dynamic; 6665 6666 rc = &q_vector->tx; 6667 INIT_WORK(&rc->dim.work, ice_tx_dim_work); 6668 rc->dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_EQE; 6669 rc->dim.profile_ix = ICE_DIM_DEFAULT_PROFILE_IX; 6670 rc->dim.priv = rc; 6671 tx_dynamic = ITR_IS_DYNAMIC(rc); 6672 6673 /* set the initial TX ITR to match the above */ 6674 ice_write_itr(rc, tx_dynamic ? 6675 tx_profile[rc->dim.profile_ix].itr : rc->itr_setting); 6676 6677 rc = &q_vector->rx; 6678 INIT_WORK(&rc->dim.work, ice_rx_dim_work); 6679 rc->dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_EQE; 6680 rc->dim.profile_ix = ICE_DIM_DEFAULT_PROFILE_IX; 6681 rc->dim.priv = rc; 6682 rx_dynamic = ITR_IS_DYNAMIC(rc); 6683 6684 /* set the initial RX ITR to match the above */ 6685 ice_write_itr(rc, rx_dynamic ? rx_profile[rc->dim.profile_ix].itr : 6686 rc->itr_setting); 6687 6688 ice_set_q_vector_intrl(q_vector); 6689 } 6690 6691 /** 6692 * ice_napi_enable_all - Enable NAPI for all q_vectors in the VSI 6693 * @vsi: the VSI being configured 6694 */ 6695 static void ice_napi_enable_all(struct ice_vsi *vsi) 6696 { 6697 int q_idx; 6698 6699 if (!vsi->netdev) 6700 return; 6701 6702 ice_for_each_q_vector(vsi, q_idx) { 6703 struct ice_q_vector *q_vector = vsi->q_vectors[q_idx]; 6704 6705 ice_init_moderation(q_vector); 6706 6707 if (q_vector->rx.rx_ring || q_vector->tx.tx_ring) 6708 napi_enable(&q_vector->napi); 6709 } 6710 } 6711 6712 /** 6713 * ice_up_complete - Finish the last steps of bringing up a connection 6714 * @vsi: The VSI being configured 6715 * 6716 * Return 0 on success and negative value on error 6717 */ 6718 static int ice_up_complete(struct ice_vsi *vsi) 6719 { 6720 struct ice_pf *pf = vsi->back; 6721 int err; 6722 6723 ice_vsi_cfg_msix(vsi); 6724 6725 /* Enable only Rx rings, Tx rings were enabled by the FW when the 6726 * Tx queue group list was configured and the context bits were 6727 * programmed using ice_vsi_cfg_txqs 6728 */ 6729 err = ice_vsi_start_all_rx_rings(vsi); 6730 if (err) 6731 return err; 6732 6733 clear_bit(ICE_VSI_DOWN, vsi->state); 6734 ice_napi_enable_all(vsi); 6735 ice_vsi_ena_irq(vsi); 6736 6737 if (vsi->port_info && 6738 (vsi->port_info->phy.link_info.link_info & ICE_AQ_LINK_UP) && 6739 ((vsi->netdev && (vsi->type == ICE_VSI_PF || 6740 vsi->type == ICE_VSI_SF)))) { 6741 ice_print_link_msg(vsi, true); 6742 netif_tx_start_all_queues(vsi->netdev); 6743 netif_carrier_on(vsi->netdev); 6744 ice_ptp_link_change(pf, true); 6745 } 6746 6747 /* Perform an initial read of the statistics registers now to 6748 * set the baseline so counters are ready when interface is up 6749 */ 6750 ice_update_eth_stats(vsi); 6751 6752 if (vsi->type == ICE_VSI_PF) 6753 ice_service_task_schedule(pf); 6754 6755 return 0; 6756 } 6757 6758 /** 6759 * ice_up - Bring the connection back up after being down 6760 * @vsi: VSI being configured 6761 */ 6762 int ice_up(struct ice_vsi *vsi) 6763 { 6764 int err; 6765 6766 err = ice_vsi_cfg_lan(vsi); 6767 if (!err) 6768 err = ice_up_complete(vsi); 6769 6770 return err; 6771 } 6772 6773 struct ice_vsi_tx_stats { 6774 u64 pkts; 6775 u64 bytes; 6776 u64 tx_restart_q; 6777 u64 tx_busy; 6778 u64 tx_linearize; 6779 }; 6780 6781 struct ice_vsi_rx_stats { 6782 u64 pkts; 6783 u64 bytes; 6784 u64 rx_non_eop_descs; 6785 u64 rx_page_failed; 6786 u64 rx_buf_failed; 6787 }; 6788 6789 /** 6790 * ice_fetch_u64_tx_stats - get Tx stats from a ring 6791 * @ring: the Tx ring to copy stats from 6792 * @copy: temporary storage for the ring statistics 6793 * 6794 * Fetch the u64 stats from the ring using u64_stats_fetch. This ensures each 6795 * stat value is self-consistent, though not necessarily consistent w.r.t 6796 * other stats. 6797 */ 6798 static void ice_fetch_u64_tx_stats(struct ice_tx_ring *ring, 6799 struct ice_vsi_tx_stats *copy) 6800 { 6801 struct ice_ring_stats *stats = ring->ring_stats; 6802 unsigned int start; 6803 6804 do { 6805 start = u64_stats_fetch_begin(&stats->syncp); 6806 copy->pkts = u64_stats_read(&stats->pkts); 6807 copy->bytes = u64_stats_read(&stats->bytes); 6808 copy->tx_restart_q = u64_stats_read(&stats->tx_restart_q); 6809 copy->tx_busy = u64_stats_read(&stats->tx_busy); 6810 copy->tx_linearize = u64_stats_read(&stats->tx_linearize); 6811 } while (u64_stats_fetch_retry(&stats->syncp, start)); 6812 } 6813 6814 /** 6815 * ice_fetch_u64_rx_stats - get Rx stats from a ring 6816 * @ring: the Rx ring to copy stats from 6817 * @copy: temporary storage for the ring statistics 6818 * 6819 * Fetch the u64 stats from the ring using u64_stats_fetch. This ensures each 6820 * stat value is self-consistent, though not necessarily consistent w.r.t 6821 * other stats. 6822 */ 6823 static void ice_fetch_u64_rx_stats(struct ice_rx_ring *ring, 6824 struct ice_vsi_rx_stats *copy) 6825 { 6826 struct ice_ring_stats *stats = ring->ring_stats; 6827 unsigned int start; 6828 6829 do { 6830 start = u64_stats_fetch_begin(&stats->syncp); 6831 copy->pkts = u64_stats_read(&stats->pkts); 6832 copy->bytes = u64_stats_read(&stats->bytes); 6833 copy->rx_non_eop_descs = 6834 u64_stats_read(&stats->rx_non_eop_descs); 6835 copy->rx_page_failed = u64_stats_read(&stats->rx_page_failed); 6836 copy->rx_buf_failed = u64_stats_read(&stats->rx_buf_failed); 6837 } while (u64_stats_fetch_retry(&stats->syncp, start)); 6838 } 6839 6840 /** 6841 * ice_update_vsi_tx_ring_stats - Update VSI Tx ring stats counters 6842 * @vsi: the VSI to be updated 6843 * @vsi_stats: accumulated stats for this VSI 6844 * @rings: rings to work on 6845 * @count: number of rings 6846 */ 6847 static void ice_update_vsi_tx_ring_stats(struct ice_vsi *vsi, 6848 struct ice_vsi_tx_stats *vsi_stats, 6849 struct ice_tx_ring **rings, u16 count) 6850 { 6851 struct ice_vsi_tx_stats copy = {}; 6852 u16 i; 6853 6854 for (i = 0; i < count; i++) { 6855 struct ice_tx_ring *ring; 6856 6857 ring = READ_ONCE(rings[i]); 6858 if (!ring || !ring->ring_stats) 6859 continue; 6860 6861 ice_fetch_u64_tx_stats(ring, ©); 6862 6863 vsi_stats->pkts += copy.pkts; 6864 vsi_stats->bytes += copy.bytes; 6865 vsi_stats->tx_restart_q += copy.tx_restart_q; 6866 vsi_stats->tx_busy += copy.tx_busy; 6867 vsi_stats->tx_linearize += copy.tx_linearize; 6868 } 6869 } 6870 6871 /** 6872 * ice_update_vsi_rx_ring_stats - Update VSI Rx ring stats counters 6873 * @vsi: the VSI to be updated 6874 * @vsi_stats: accumulated stats for this VSI 6875 * @rings: rings to work on 6876 * @count: number of rings 6877 */ 6878 static void ice_update_vsi_rx_ring_stats(struct ice_vsi *vsi, 6879 struct ice_vsi_rx_stats *vsi_stats, 6880 struct ice_rx_ring **rings, u16 count) 6881 { 6882 struct ice_vsi_rx_stats copy = {}; 6883 u16 i; 6884 6885 for (i = 0; i < count; i++) { 6886 struct ice_rx_ring *ring; 6887 6888 ring = READ_ONCE(rings[i]); 6889 if (!ring || !ring->ring_stats) 6890 continue; 6891 6892 ice_fetch_u64_rx_stats(ring, ©); 6893 6894 vsi_stats->pkts += copy.pkts; 6895 vsi_stats->bytes += copy.bytes; 6896 vsi_stats->rx_non_eop_descs += copy.rx_non_eop_descs; 6897 vsi_stats->rx_page_failed += copy.rx_page_failed; 6898 vsi_stats->rx_buf_failed += copy.rx_buf_failed; 6899 } 6900 } 6901 6902 /** 6903 * ice_update_vsi_ring_stats - Update VSI stats counters 6904 * @vsi: the VSI to be updated 6905 */ 6906 static void ice_update_vsi_ring_stats(struct ice_vsi *vsi) 6907 { 6908 struct rtnl_link_stats64 *net_stats, *stats_prev; 6909 struct ice_vsi_tx_stats tx_stats = {}; 6910 struct ice_vsi_rx_stats rx_stats = {}; 6911 struct ice_pf *pf = vsi->back; 6912 6913 rcu_read_lock(); 6914 6915 /* update Tx rings counters */ 6916 ice_update_vsi_tx_ring_stats(vsi, &tx_stats, vsi->tx_rings, 6917 vsi->num_txq); 6918 6919 /* update Rx rings counters */ 6920 ice_update_vsi_rx_ring_stats(vsi, &rx_stats, vsi->rx_rings, 6921 vsi->num_rxq); 6922 6923 /* update XDP Tx rings counters */ 6924 if (ice_is_xdp_ena_vsi(vsi)) 6925 ice_update_vsi_tx_ring_stats(vsi, &tx_stats, vsi->xdp_rings, 6926 vsi->num_xdp_txq); 6927 6928 rcu_read_unlock(); 6929 6930 /* Save non-netdev (extended) stats */ 6931 vsi->tx_restart = tx_stats.tx_restart_q; 6932 vsi->tx_busy = tx_stats.tx_busy; 6933 vsi->tx_linearize = tx_stats.tx_linearize; 6934 vsi->rx_buf_failed = rx_stats.rx_buf_failed; 6935 vsi->rx_page_failed = rx_stats.rx_page_failed; 6936 6937 net_stats = &vsi->net_stats; 6938 stats_prev = &vsi->net_stats_prev; 6939 6940 /* Update netdev counters, but keep in mind that values could start at 6941 * random value after PF reset. And as we increase the reported stat by 6942 * diff of Prev-Cur, we need to be sure that Prev is valid. If it's not, 6943 * let's skip this round. 6944 */ 6945 if (likely(pf->stat_prev_loaded)) { 6946 net_stats->tx_packets += tx_stats.pkts - stats_prev->tx_packets; 6947 net_stats->tx_bytes += tx_stats.bytes - stats_prev->tx_bytes; 6948 net_stats->rx_packets += rx_stats.pkts - stats_prev->rx_packets; 6949 net_stats->rx_bytes += rx_stats.bytes - stats_prev->rx_bytes; 6950 } 6951 6952 stats_prev->tx_packets = tx_stats.pkts; 6953 stats_prev->tx_bytes = tx_stats.bytes; 6954 stats_prev->rx_packets = rx_stats.pkts; 6955 stats_prev->rx_bytes = rx_stats.bytes; 6956 } 6957 6958 /** 6959 * ice_update_vsi_stats - Update VSI stats counters 6960 * @vsi: the VSI to be updated 6961 */ 6962 void ice_update_vsi_stats(struct ice_vsi *vsi) 6963 { 6964 struct rtnl_link_stats64 *cur_ns = &vsi->net_stats; 6965 struct ice_eth_stats *cur_es = &vsi->eth_stats; 6966 struct ice_pf *pf = vsi->back; 6967 6968 if (test_bit(ICE_VSI_DOWN, vsi->state) || 6969 test_bit(ICE_CFG_BUSY, pf->state)) 6970 return; 6971 6972 /* get stats as recorded by Tx/Rx rings */ 6973 ice_update_vsi_ring_stats(vsi); 6974 6975 /* get VSI stats as recorded by the hardware */ 6976 ice_update_eth_stats(vsi); 6977 6978 cur_ns->tx_errors = cur_es->tx_errors; 6979 cur_ns->rx_dropped = cur_es->rx_discards; 6980 cur_ns->tx_dropped = cur_es->tx_discards; 6981 cur_ns->multicast = cur_es->rx_multicast; 6982 6983 /* update some more netdev stats if this is main VSI */ 6984 if (vsi->type == ICE_VSI_PF) { 6985 cur_ns->rx_crc_errors = pf->stats.crc_errors; 6986 cur_ns->rx_errors = pf->stats.crc_errors + 6987 pf->stats.illegal_bytes + 6988 pf->stats.rx_undersize + 6989 pf->stats.rx_jabber + 6990 pf->stats.rx_fragments + 6991 pf->stats.rx_oversize; 6992 /* record drops from the port level */ 6993 cur_ns->rx_missed_errors = pf->stats.eth.rx_discards; 6994 } 6995 } 6996 6997 /** 6998 * ice_update_pf_stats - Update PF port stats counters 6999 * @pf: PF whose stats needs to be updated 7000 */ 7001 void ice_update_pf_stats(struct ice_pf *pf) 7002 { 7003 struct ice_hw_port_stats *prev_ps, *cur_ps; 7004 struct ice_hw *hw = &pf->hw; 7005 u16 fd_ctr_base; 7006 u8 port; 7007 7008 port = hw->port_info->lport; 7009 prev_ps = &pf->stats_prev; 7010 cur_ps = &pf->stats; 7011 7012 if (ice_is_reset_in_progress(pf->state)) 7013 pf->stat_prev_loaded = false; 7014 7015 ice_stat_update40(hw, GLPRT_GORCL(port), pf->stat_prev_loaded, 7016 &prev_ps->eth.rx_bytes, 7017 &cur_ps->eth.rx_bytes); 7018 7019 ice_stat_update40(hw, GLPRT_UPRCL(port), pf->stat_prev_loaded, 7020 &prev_ps->eth.rx_unicast, 7021 &cur_ps->eth.rx_unicast); 7022 7023 ice_stat_update40(hw, GLPRT_MPRCL(port), pf->stat_prev_loaded, 7024 &prev_ps->eth.rx_multicast, 7025 &cur_ps->eth.rx_multicast); 7026 7027 ice_stat_update40(hw, GLPRT_BPRCL(port), pf->stat_prev_loaded, 7028 &prev_ps->eth.rx_broadcast, 7029 &cur_ps->eth.rx_broadcast); 7030 7031 ice_stat_update32(hw, PRTRPB_RDPC, pf->stat_prev_loaded, 7032 &prev_ps->eth.rx_discards, 7033 &cur_ps->eth.rx_discards); 7034 7035 ice_stat_update40(hw, GLPRT_GOTCL(port), pf->stat_prev_loaded, 7036 &prev_ps->eth.tx_bytes, 7037 &cur_ps->eth.tx_bytes); 7038 7039 ice_stat_update40(hw, GLPRT_UPTCL(port), pf->stat_prev_loaded, 7040 &prev_ps->eth.tx_unicast, 7041 &cur_ps->eth.tx_unicast); 7042 7043 ice_stat_update40(hw, GLPRT_MPTCL(port), pf->stat_prev_loaded, 7044 &prev_ps->eth.tx_multicast, 7045 &cur_ps->eth.tx_multicast); 7046 7047 ice_stat_update40(hw, GLPRT_BPTCL(port), pf->stat_prev_loaded, 7048 &prev_ps->eth.tx_broadcast, 7049 &cur_ps->eth.tx_broadcast); 7050 7051 ice_stat_update32(hw, GLPRT_TDOLD(port), pf->stat_prev_loaded, 7052 &prev_ps->tx_dropped_link_down, 7053 &cur_ps->tx_dropped_link_down); 7054 7055 ice_stat_update40(hw, GLPRT_PRC64L(port), pf->stat_prev_loaded, 7056 &prev_ps->rx_size_64, &cur_ps->rx_size_64); 7057 7058 ice_stat_update40(hw, GLPRT_PRC127L(port), pf->stat_prev_loaded, 7059 &prev_ps->rx_size_127, &cur_ps->rx_size_127); 7060 7061 ice_stat_update40(hw, GLPRT_PRC255L(port), pf->stat_prev_loaded, 7062 &prev_ps->rx_size_255, &cur_ps->rx_size_255); 7063 7064 ice_stat_update40(hw, GLPRT_PRC511L(port), pf->stat_prev_loaded, 7065 &prev_ps->rx_size_511, &cur_ps->rx_size_511); 7066 7067 ice_stat_update40(hw, GLPRT_PRC1023L(port), pf->stat_prev_loaded, 7068 &prev_ps->rx_size_1023, &cur_ps->rx_size_1023); 7069 7070 ice_stat_update40(hw, GLPRT_PRC1522L(port), pf->stat_prev_loaded, 7071 &prev_ps->rx_size_1522, &cur_ps->rx_size_1522); 7072 7073 ice_stat_update40(hw, GLPRT_PRC9522L(port), pf->stat_prev_loaded, 7074 &prev_ps->rx_size_big, &cur_ps->rx_size_big); 7075 7076 ice_stat_update40(hw, GLPRT_PTC64L(port), pf->stat_prev_loaded, 7077 &prev_ps->tx_size_64, &cur_ps->tx_size_64); 7078 7079 ice_stat_update40(hw, GLPRT_PTC127L(port), pf->stat_prev_loaded, 7080 &prev_ps->tx_size_127, &cur_ps->tx_size_127); 7081 7082 ice_stat_update40(hw, GLPRT_PTC255L(port), pf->stat_prev_loaded, 7083 &prev_ps->tx_size_255, &cur_ps->tx_size_255); 7084 7085 ice_stat_update40(hw, GLPRT_PTC511L(port), pf->stat_prev_loaded, 7086 &prev_ps->tx_size_511, &cur_ps->tx_size_511); 7087 7088 ice_stat_update40(hw, GLPRT_PTC1023L(port), pf->stat_prev_loaded, 7089 &prev_ps->tx_size_1023, &cur_ps->tx_size_1023); 7090 7091 ice_stat_update40(hw, GLPRT_PTC1522L(port), pf->stat_prev_loaded, 7092 &prev_ps->tx_size_1522, &cur_ps->tx_size_1522); 7093 7094 ice_stat_update40(hw, GLPRT_PTC9522L(port), pf->stat_prev_loaded, 7095 &prev_ps->tx_size_big, &cur_ps->tx_size_big); 7096 7097 fd_ctr_base = hw->fd_ctr_base; 7098 7099 ice_stat_update40(hw, 7100 GLSTAT_FD_CNT0L(ICE_FD_SB_STAT_IDX(fd_ctr_base)), 7101 pf->stat_prev_loaded, &prev_ps->fd_sb_match, 7102 &cur_ps->fd_sb_match); 7103 ice_stat_update32(hw, GLPRT_LXONRXC(port), pf->stat_prev_loaded, 7104 &prev_ps->link_xon_rx, &cur_ps->link_xon_rx); 7105 7106 ice_stat_update32(hw, GLPRT_LXOFFRXC(port), pf->stat_prev_loaded, 7107 &prev_ps->link_xoff_rx, &cur_ps->link_xoff_rx); 7108 7109 ice_stat_update32(hw, GLPRT_LXONTXC(port), pf->stat_prev_loaded, 7110 &prev_ps->link_xon_tx, &cur_ps->link_xon_tx); 7111 7112 ice_stat_update32(hw, GLPRT_LXOFFTXC(port), pf->stat_prev_loaded, 7113 &prev_ps->link_xoff_tx, &cur_ps->link_xoff_tx); 7114 7115 ice_update_dcb_stats(pf); 7116 7117 ice_stat_update32(hw, GLPRT_CRCERRS(port), pf->stat_prev_loaded, 7118 &prev_ps->crc_errors, &cur_ps->crc_errors); 7119 7120 ice_stat_update32(hw, GLPRT_ILLERRC(port), pf->stat_prev_loaded, 7121 &prev_ps->illegal_bytes, &cur_ps->illegal_bytes); 7122 7123 ice_stat_update32(hw, GLPRT_MLFC(port), pf->stat_prev_loaded, 7124 &prev_ps->mac_local_faults, 7125 &cur_ps->mac_local_faults); 7126 7127 ice_stat_update32(hw, GLPRT_MRFC(port), pf->stat_prev_loaded, 7128 &prev_ps->mac_remote_faults, 7129 &cur_ps->mac_remote_faults); 7130 7131 ice_stat_update32(hw, GLPRT_RLEC(port), pf->stat_prev_loaded, 7132 &prev_ps->rx_len_errors, &cur_ps->rx_len_errors); 7133 7134 ice_stat_update32(hw, GLPRT_RUC(port), pf->stat_prev_loaded, 7135 &prev_ps->rx_undersize, &cur_ps->rx_undersize); 7136 7137 ice_stat_update32(hw, GLPRT_RFC(port), pf->stat_prev_loaded, 7138 &prev_ps->rx_fragments, &cur_ps->rx_fragments); 7139 7140 ice_stat_update32(hw, GLPRT_ROC(port), pf->stat_prev_loaded, 7141 &prev_ps->rx_oversize, &cur_ps->rx_oversize); 7142 7143 ice_stat_update32(hw, GLPRT_RJC(port), pf->stat_prev_loaded, 7144 &prev_ps->rx_jabber, &cur_ps->rx_jabber); 7145 7146 cur_ps->fd_sb_status = test_bit(ICE_FLAG_FD_ENA, pf->flags) ? 1 : 0; 7147 7148 pf->stat_prev_loaded = true; 7149 } 7150 7151 /** 7152 * ice_get_stats64 - get statistics for network device structure 7153 * @netdev: network interface device structure 7154 * @stats: main device statistics structure 7155 */ 7156 void ice_get_stats64(struct net_device *netdev, struct rtnl_link_stats64 *stats) 7157 { 7158 struct ice_netdev_priv *np = netdev_priv(netdev); 7159 struct rtnl_link_stats64 *vsi_stats; 7160 struct ice_vsi *vsi = np->vsi; 7161 7162 vsi_stats = &vsi->net_stats; 7163 7164 if (!vsi->num_txq || !vsi->num_rxq) 7165 return; 7166 7167 /* netdev packet/byte stats come from ring counter. These are obtained 7168 * by summing up ring counters (done by ice_update_vsi_ring_stats). 7169 * But, only call the update routine and read the registers if VSI is 7170 * not down. 7171 */ 7172 if (!test_bit(ICE_VSI_DOWN, vsi->state)) 7173 ice_update_vsi_ring_stats(vsi); 7174 stats->tx_packets = vsi_stats->tx_packets; 7175 stats->tx_bytes = vsi_stats->tx_bytes; 7176 stats->rx_packets = vsi_stats->rx_packets; 7177 stats->rx_bytes = vsi_stats->rx_bytes; 7178 7179 /* The rest of the stats can be read from the hardware but instead we 7180 * just return values that the watchdog task has already obtained from 7181 * the hardware. 7182 */ 7183 stats->multicast = vsi_stats->multicast; 7184 stats->tx_errors = vsi_stats->tx_errors; 7185 stats->tx_dropped = vsi_stats->tx_dropped; 7186 stats->rx_errors = vsi_stats->rx_errors; 7187 stats->rx_dropped = vsi_stats->rx_dropped; 7188 stats->rx_crc_errors = vsi_stats->rx_crc_errors; 7189 stats->rx_length_errors = vsi_stats->rx_length_errors; 7190 } 7191 7192 /** 7193 * ice_napi_disable_all - Disable NAPI for all q_vectors in the VSI 7194 * @vsi: VSI having NAPI disabled 7195 */ 7196 static void ice_napi_disable_all(struct ice_vsi *vsi) 7197 { 7198 int q_idx; 7199 7200 if (!vsi->netdev) 7201 return; 7202 7203 ice_for_each_q_vector(vsi, q_idx) { 7204 struct ice_q_vector *q_vector = vsi->q_vectors[q_idx]; 7205 7206 if (q_vector->rx.rx_ring || q_vector->tx.tx_ring) 7207 napi_disable(&q_vector->napi); 7208 7209 cancel_work_sync(&q_vector->tx.dim.work); 7210 cancel_work_sync(&q_vector->rx.dim.work); 7211 } 7212 } 7213 7214 /** 7215 * ice_vsi_dis_irq - Mask off queue interrupt generation on the VSI 7216 * @vsi: the VSI being un-configured 7217 */ 7218 static void ice_vsi_dis_irq(struct ice_vsi *vsi) 7219 { 7220 struct ice_pf *pf = vsi->back; 7221 struct ice_hw *hw = &pf->hw; 7222 u32 val; 7223 int i; 7224 7225 /* disable interrupt causation from each Rx queue; Tx queues are 7226 * handled in ice_vsi_stop_tx_ring() 7227 */ 7228 if (vsi->rx_rings) { 7229 ice_for_each_rxq(vsi, i) { 7230 if (vsi->rx_rings[i]) { 7231 u16 reg; 7232 7233 reg = vsi->rx_rings[i]->reg_idx; 7234 val = rd32(hw, QINT_RQCTL(reg)); 7235 val &= ~QINT_RQCTL_CAUSE_ENA_M; 7236 wr32(hw, QINT_RQCTL(reg), val); 7237 } 7238 } 7239 } 7240 7241 /* disable each interrupt */ 7242 ice_for_each_q_vector(vsi, i) { 7243 if (!vsi->q_vectors[i]) 7244 continue; 7245 wr32(hw, GLINT_DYN_CTL(vsi->q_vectors[i]->reg_idx), 0); 7246 } 7247 7248 ice_flush(hw); 7249 7250 /* don't call synchronize_irq() for VF's from the host */ 7251 if (vsi->type == ICE_VSI_VF) 7252 return; 7253 7254 ice_for_each_q_vector(vsi, i) 7255 synchronize_irq(vsi->q_vectors[i]->irq.virq); 7256 } 7257 7258 /** 7259 * ice_down - Shutdown the connection 7260 * @vsi: The VSI being stopped 7261 * 7262 * Caller of this function is expected to set the vsi->state ICE_DOWN bit 7263 */ 7264 int ice_down(struct ice_vsi *vsi) 7265 { 7266 int i, tx_err, rx_err, vlan_err = 0; 7267 7268 WARN_ON(!test_bit(ICE_VSI_DOWN, vsi->state)); 7269 7270 if (vsi->netdev) { 7271 vlan_err = ice_vsi_del_vlan_zero(vsi); 7272 ice_ptp_link_change(vsi->back, false); 7273 netif_carrier_off(vsi->netdev); 7274 netif_tx_disable(vsi->netdev); 7275 } 7276 7277 ice_vsi_dis_irq(vsi); 7278 7279 tx_err = ice_vsi_stop_lan_tx_rings(vsi, ICE_NO_RESET, 0); 7280 if (tx_err) 7281 netdev_err(vsi->netdev, "Failed stop Tx rings, VSI %d error %d\n", 7282 vsi->vsi_num, tx_err); 7283 if (!tx_err && vsi->xdp_rings) { 7284 tx_err = ice_vsi_stop_xdp_tx_rings(vsi); 7285 if (tx_err) 7286 netdev_err(vsi->netdev, "Failed stop XDP rings, VSI %d error %d\n", 7287 vsi->vsi_num, tx_err); 7288 } 7289 7290 rx_err = ice_vsi_stop_all_rx_rings(vsi); 7291 if (rx_err) 7292 netdev_err(vsi->netdev, "Failed stop Rx rings, VSI %d error %d\n", 7293 vsi->vsi_num, rx_err); 7294 7295 ice_napi_disable_all(vsi); 7296 7297 ice_for_each_txq(vsi, i) 7298 ice_clean_tx_ring(vsi->tx_rings[i]); 7299 7300 if (vsi->xdp_rings) 7301 ice_for_each_xdp_txq(vsi, i) 7302 ice_clean_tx_ring(vsi->xdp_rings[i]); 7303 7304 ice_for_each_rxq(vsi, i) 7305 ice_clean_rx_ring(vsi->rx_rings[i]); 7306 7307 if (tx_err || rx_err || vlan_err) { 7308 netdev_err(vsi->netdev, "Failed to close VSI 0x%04X on switch 0x%04X\n", 7309 vsi->vsi_num, vsi->vsw->sw_id); 7310 return -EIO; 7311 } 7312 7313 return 0; 7314 } 7315 7316 /** 7317 * ice_down_up - shutdown the VSI connection and bring it up 7318 * @vsi: the VSI to be reconnected 7319 */ 7320 int ice_down_up(struct ice_vsi *vsi) 7321 { 7322 int ret; 7323 7324 /* if DOWN already set, nothing to do */ 7325 if (test_and_set_bit(ICE_VSI_DOWN, vsi->state)) 7326 return 0; 7327 7328 ret = ice_down(vsi); 7329 if (ret) 7330 return ret; 7331 7332 ret = ice_up(vsi); 7333 if (ret) { 7334 netdev_err(vsi->netdev, "reallocating resources failed during netdev features change, may need to reload driver\n"); 7335 return ret; 7336 } 7337 7338 return 0; 7339 } 7340 7341 /** 7342 * ice_vsi_setup_tx_rings - Allocate VSI Tx queue resources 7343 * @vsi: VSI having resources allocated 7344 * 7345 * Return 0 on success, negative on failure 7346 */ 7347 int ice_vsi_setup_tx_rings(struct ice_vsi *vsi) 7348 { 7349 int i, err = 0; 7350 7351 if (!vsi->num_txq) { 7352 dev_err(ice_pf_to_dev(vsi->back), "VSI %d has 0 Tx queues\n", 7353 vsi->vsi_num); 7354 return -EINVAL; 7355 } 7356 7357 ice_for_each_txq(vsi, i) { 7358 struct ice_tx_ring *ring = vsi->tx_rings[i]; 7359 7360 if (!ring) 7361 return -EINVAL; 7362 7363 if (vsi->netdev) 7364 ring->netdev = vsi->netdev; 7365 err = ice_setup_tx_ring(ring); 7366 if (err) 7367 break; 7368 } 7369 7370 return err; 7371 } 7372 7373 /** 7374 * ice_vsi_setup_rx_rings - Allocate VSI Rx queue resources 7375 * @vsi: VSI having resources allocated 7376 * 7377 * Return 0 on success, negative on failure 7378 */ 7379 int ice_vsi_setup_rx_rings(struct ice_vsi *vsi) 7380 { 7381 int i, err = 0; 7382 7383 if (!vsi->num_rxq) { 7384 dev_err(ice_pf_to_dev(vsi->back), "VSI %d has 0 Rx queues\n", 7385 vsi->vsi_num); 7386 return -EINVAL; 7387 } 7388 7389 ice_for_each_rxq(vsi, i) { 7390 struct ice_rx_ring *ring = vsi->rx_rings[i]; 7391 7392 if (!ring) 7393 return -EINVAL; 7394 7395 if (vsi->netdev) 7396 ring->netdev = vsi->netdev; 7397 err = ice_setup_rx_ring(ring); 7398 if (err) 7399 break; 7400 } 7401 7402 return err; 7403 } 7404 7405 /** 7406 * ice_vsi_open_ctrl - open control VSI for use 7407 * @vsi: the VSI to open 7408 * 7409 * Initialization of the Control VSI 7410 * 7411 * Returns 0 on success, negative value on error 7412 */ 7413 int ice_vsi_open_ctrl(struct ice_vsi *vsi) 7414 { 7415 char int_name[ICE_INT_NAME_STR_LEN]; 7416 struct ice_pf *pf = vsi->back; 7417 struct device *dev; 7418 int err; 7419 7420 dev = ice_pf_to_dev(pf); 7421 /* allocate descriptors */ 7422 err = ice_vsi_setup_tx_rings(vsi); 7423 if (err) 7424 goto err_setup_tx; 7425 7426 err = ice_vsi_setup_rx_rings(vsi); 7427 if (err) 7428 goto err_setup_rx; 7429 7430 err = ice_vsi_cfg_lan(vsi); 7431 if (err) 7432 goto err_setup_rx; 7433 7434 snprintf(int_name, sizeof(int_name) - 1, "%s-%s:ctrl", 7435 dev_driver_string(dev), dev_name(dev)); 7436 err = ice_vsi_req_irq_msix(vsi, int_name); 7437 if (err) 7438 goto err_setup_rx; 7439 7440 ice_vsi_cfg_msix(vsi); 7441 7442 err = ice_vsi_start_all_rx_rings(vsi); 7443 if (err) 7444 goto err_up_complete; 7445 7446 clear_bit(ICE_VSI_DOWN, vsi->state); 7447 ice_vsi_ena_irq(vsi); 7448 7449 return 0; 7450 7451 err_up_complete: 7452 ice_down(vsi); 7453 err_setup_rx: 7454 ice_vsi_free_rx_rings(vsi); 7455 err_setup_tx: 7456 ice_vsi_free_tx_rings(vsi); 7457 7458 return err; 7459 } 7460 7461 /** 7462 * ice_vsi_open - Called when a network interface is made active 7463 * @vsi: the VSI to open 7464 * 7465 * Initialization of the VSI 7466 * 7467 * Returns 0 on success, negative value on error 7468 */ 7469 int ice_vsi_open(struct ice_vsi *vsi) 7470 { 7471 char int_name[ICE_INT_NAME_STR_LEN]; 7472 struct ice_pf *pf = vsi->back; 7473 int err; 7474 7475 /* allocate descriptors */ 7476 err = ice_vsi_setup_tx_rings(vsi); 7477 if (err) 7478 goto err_setup_tx; 7479 7480 err = ice_vsi_setup_rx_rings(vsi); 7481 if (err) 7482 goto err_setup_rx; 7483 7484 err = ice_vsi_cfg_lan(vsi); 7485 if (err) 7486 goto err_setup_rx; 7487 7488 snprintf(int_name, sizeof(int_name) - 1, "%s-%s", 7489 dev_driver_string(ice_pf_to_dev(pf)), vsi->netdev->name); 7490 err = ice_vsi_req_irq_msix(vsi, int_name); 7491 if (err) 7492 goto err_setup_rx; 7493 7494 if (bitmap_empty(pf->txtime_txqs, pf->max_pf_txqs)) 7495 ice_vsi_cfg_netdev_tc(vsi, vsi->tc_cfg.ena_tc); 7496 7497 if (vsi->type == ICE_VSI_PF || vsi->type == ICE_VSI_SF) { 7498 /* Notify the stack of the actual queue counts. */ 7499 err = netif_set_real_num_tx_queues(vsi->netdev, vsi->num_txq); 7500 if (err) 7501 goto err_set_qs; 7502 7503 err = netif_set_real_num_rx_queues(vsi->netdev, vsi->num_rxq); 7504 if (err) 7505 goto err_set_qs; 7506 7507 ice_vsi_set_napi_queues(vsi); 7508 } 7509 7510 err = ice_up_complete(vsi); 7511 if (err) 7512 goto err_up_complete; 7513 7514 return 0; 7515 7516 err_up_complete: 7517 ice_down(vsi); 7518 err_set_qs: 7519 ice_vsi_free_irq(vsi); 7520 err_setup_rx: 7521 ice_vsi_free_rx_rings(vsi); 7522 err_setup_tx: 7523 ice_vsi_free_tx_rings(vsi); 7524 7525 return err; 7526 } 7527 7528 /** 7529 * ice_vsi_release_all - Delete all VSIs 7530 * @pf: PF from which all VSIs are being removed 7531 */ 7532 static void ice_vsi_release_all(struct ice_pf *pf) 7533 { 7534 int err, i; 7535 7536 if (!pf->vsi) 7537 return; 7538 7539 ice_for_each_vsi(pf, i) { 7540 if (!pf->vsi[i]) 7541 continue; 7542 7543 if (pf->vsi[i]->type == ICE_VSI_CHNL) 7544 continue; 7545 7546 err = ice_vsi_release(pf->vsi[i]); 7547 if (err) 7548 dev_dbg(ice_pf_to_dev(pf), "Failed to release pf->vsi[%d], err %d, vsi_num = %d\n", 7549 i, err, pf->vsi[i]->vsi_num); 7550 } 7551 } 7552 7553 /** 7554 * ice_vsi_rebuild_by_type - Rebuild VSI of a given type 7555 * @pf: pointer to the PF instance 7556 * @type: VSI type to rebuild 7557 * 7558 * Iterates through the pf->vsi array and rebuilds VSIs of the requested type 7559 */ 7560 static int ice_vsi_rebuild_by_type(struct ice_pf *pf, enum ice_vsi_type type) 7561 { 7562 struct device *dev = ice_pf_to_dev(pf); 7563 int i, err; 7564 7565 ice_for_each_vsi(pf, i) { 7566 struct ice_vsi *vsi = pf->vsi[i]; 7567 7568 if (!vsi || vsi->type != type) 7569 continue; 7570 7571 /* rebuild the VSI */ 7572 err = ice_vsi_rebuild(vsi, ICE_VSI_FLAG_INIT); 7573 if (err) { 7574 dev_err(dev, "rebuild VSI failed, err %d, VSI index %d, type %s\n", 7575 err, vsi->idx, ice_vsi_type_str(type)); 7576 return err; 7577 } 7578 7579 /* replay filters for the VSI */ 7580 err = ice_replay_vsi(&pf->hw, vsi->idx); 7581 if (err) { 7582 dev_err(dev, "replay VSI failed, error %d, VSI index %d, type %s\n", 7583 err, vsi->idx, ice_vsi_type_str(type)); 7584 return err; 7585 } 7586 7587 /* Re-map HW VSI number, using VSI handle that has been 7588 * previously validated in ice_replay_vsi() call above 7589 */ 7590 vsi->vsi_num = ice_get_hw_vsi_num(&pf->hw, vsi->idx); 7591 7592 /* enable the VSI */ 7593 err = ice_ena_vsi(vsi, false); 7594 if (err) { 7595 dev_err(dev, "enable VSI failed, err %d, VSI index %d, type %s\n", 7596 err, vsi->idx, ice_vsi_type_str(type)); 7597 return err; 7598 } 7599 7600 dev_info(dev, "VSI rebuilt. VSI index %d, type %s\n", vsi->idx, 7601 ice_vsi_type_str(type)); 7602 } 7603 7604 return 0; 7605 } 7606 7607 /** 7608 * ice_update_pf_netdev_link - Update PF netdev link status 7609 * @pf: pointer to the PF instance 7610 */ 7611 static void ice_update_pf_netdev_link(struct ice_pf *pf) 7612 { 7613 bool link_up; 7614 int i; 7615 7616 ice_for_each_vsi(pf, i) { 7617 struct ice_vsi *vsi = pf->vsi[i]; 7618 7619 if (!vsi || vsi->type != ICE_VSI_PF) 7620 return; 7621 7622 ice_get_link_status(pf->vsi[i]->port_info, &link_up); 7623 if (link_up) { 7624 netif_carrier_on(pf->vsi[i]->netdev); 7625 netif_tx_wake_all_queues(pf->vsi[i]->netdev); 7626 } else { 7627 netif_carrier_off(pf->vsi[i]->netdev); 7628 netif_tx_stop_all_queues(pf->vsi[i]->netdev); 7629 } 7630 } 7631 } 7632 7633 /** 7634 * ice_rebuild - rebuild after reset 7635 * @pf: PF to rebuild 7636 * @reset_type: type of reset 7637 * 7638 * Do not rebuild VF VSI in this flow because that is already handled via 7639 * ice_reset_all_vfs(). This is because requirements for resetting a VF after a 7640 * PFR/CORER/GLOBER/etc. are different than the normal flow. Also, we don't want 7641 * to reset/rebuild all the VF VSI twice. 7642 */ 7643 static void ice_rebuild(struct ice_pf *pf, enum ice_reset_req reset_type) 7644 { 7645 struct ice_vsi *vsi = ice_get_main_vsi(pf); 7646 struct device *dev = ice_pf_to_dev(pf); 7647 struct ice_hw *hw = &pf->hw; 7648 bool dvm; 7649 int err; 7650 7651 if (test_bit(ICE_DOWN, pf->state)) 7652 goto clear_recovery; 7653 7654 dev_dbg(dev, "rebuilding PF after reset_type=%d\n", reset_type); 7655 7656 #define ICE_EMP_RESET_SLEEP_MS 5000 7657 if (reset_type == ICE_RESET_EMPR) { 7658 /* If an EMP reset has occurred, any previously pending flash 7659 * update will have completed. We no longer know whether or 7660 * not the NVM update EMP reset is restricted. 7661 */ 7662 pf->fw_emp_reset_disabled = false; 7663 7664 msleep(ICE_EMP_RESET_SLEEP_MS); 7665 } 7666 7667 err = ice_init_all_ctrlq(hw); 7668 if (err) { 7669 dev_err(dev, "control queues init failed %d\n", err); 7670 goto err_init_ctrlq; 7671 } 7672 7673 /* if DDP was previously loaded successfully */ 7674 if (!ice_is_safe_mode(pf)) { 7675 /* reload the SW DB of filter tables */ 7676 if (reset_type == ICE_RESET_PFR) 7677 ice_fill_blk_tbls(hw); 7678 else 7679 /* Reload DDP Package after CORER/GLOBR reset */ 7680 ice_load_pkg(NULL, pf); 7681 } 7682 7683 err = ice_clear_pf_cfg(hw); 7684 if (err) { 7685 dev_err(dev, "clear PF configuration failed %d\n", err); 7686 goto err_init_ctrlq; 7687 } 7688 7689 ice_clear_pxe_mode(hw); 7690 7691 err = ice_init_nvm(hw); 7692 if (err) { 7693 dev_err(dev, "ice_init_nvm failed %d\n", err); 7694 goto err_init_ctrlq; 7695 } 7696 7697 err = ice_get_caps(hw); 7698 if (err) { 7699 dev_err(dev, "ice_get_caps failed %d\n", err); 7700 goto err_init_ctrlq; 7701 } 7702 7703 err = ice_aq_set_mac_cfg(hw, ICE_AQ_SET_MAC_FRAME_SIZE_MAX, NULL); 7704 if (err) { 7705 dev_err(dev, "set_mac_cfg failed %d\n", err); 7706 goto err_init_ctrlq; 7707 } 7708 7709 dvm = ice_is_dvm_ena(hw); 7710 7711 err = ice_aq_set_port_params(pf->hw.port_info, dvm, NULL); 7712 if (err) 7713 goto err_init_ctrlq; 7714 7715 err = ice_sched_init_port(hw->port_info); 7716 if (err) 7717 goto err_sched_init_port; 7718 7719 /* start misc vector */ 7720 err = ice_req_irq_msix_misc(pf); 7721 if (err) { 7722 dev_err(dev, "misc vector setup failed: %d\n", err); 7723 goto err_sched_init_port; 7724 } 7725 7726 if (test_bit(ICE_FLAG_FD_ENA, pf->flags)) { 7727 wr32(hw, PFQF_FD_ENA, PFQF_FD_ENA_FD_ENA_M); 7728 if (!rd32(hw, PFQF_FD_SIZE)) { 7729 u16 unused, guar, b_effort; 7730 7731 guar = hw->func_caps.fd_fltr_guar; 7732 b_effort = hw->func_caps.fd_fltr_best_effort; 7733 7734 /* force guaranteed filter pool for PF */ 7735 ice_alloc_fd_guar_item(hw, &unused, guar); 7736 /* force shared filter pool for PF */ 7737 ice_alloc_fd_shrd_item(hw, &unused, b_effort); 7738 } 7739 } 7740 7741 if (test_bit(ICE_FLAG_DCB_ENA, pf->flags)) 7742 ice_dcb_rebuild(pf); 7743 7744 /* If the PF previously had enabled PTP, PTP init needs to happen before 7745 * the VSI rebuild. If not, this causes the PTP link status events to 7746 * fail. 7747 */ 7748 if (test_bit(ICE_FLAG_PTP_SUPPORTED, pf->flags)) 7749 ice_ptp_rebuild(pf, reset_type); 7750 7751 if (ice_is_feature_supported(pf, ICE_F_GNSS)) 7752 ice_gnss_init(pf); 7753 7754 /* rebuild PF VSI */ 7755 err = ice_vsi_rebuild_by_type(pf, ICE_VSI_PF); 7756 if (err) { 7757 dev_err(dev, "PF VSI rebuild failed: %d\n", err); 7758 goto err_vsi_rebuild; 7759 } 7760 7761 if (reset_type == ICE_RESET_PFR) { 7762 err = ice_rebuild_channels(pf); 7763 if (err) { 7764 dev_err(dev, "failed to rebuild and replay ADQ VSIs, err %d\n", 7765 err); 7766 goto err_vsi_rebuild; 7767 } 7768 } 7769 7770 /* If Flow Director is active */ 7771 if (test_bit(ICE_FLAG_FD_ENA, pf->flags)) { 7772 err = ice_vsi_rebuild_by_type(pf, ICE_VSI_CTRL); 7773 if (err) { 7774 dev_err(dev, "control VSI rebuild failed: %d\n", err); 7775 goto err_vsi_rebuild; 7776 } 7777 7778 /* replay HW Flow Director recipes */ 7779 if (hw->fdir_prof) 7780 ice_fdir_replay_flows(hw); 7781 7782 /* replay Flow Director filters */ 7783 ice_fdir_replay_fltrs(pf); 7784 7785 ice_rebuild_arfs(pf); 7786 } 7787 7788 if (vsi && vsi->netdev) 7789 netif_device_attach(vsi->netdev); 7790 7791 ice_update_pf_netdev_link(pf); 7792 7793 /* tell the firmware we are up */ 7794 err = ice_send_version(pf); 7795 if (err) { 7796 dev_err(dev, "Rebuild failed due to error sending driver version: %d\n", 7797 err); 7798 goto err_vsi_rebuild; 7799 } 7800 7801 ice_replay_post(hw); 7802 7803 /* if we get here, reset flow is successful */ 7804 clear_bit(ICE_RESET_FAILED, pf->state); 7805 7806 ice_health_clear(pf); 7807 7808 ice_rdma_finalize_setup(pf); 7809 if (ice_is_feature_supported(pf, ICE_F_SRIOV_LAG)) 7810 ice_lag_rebuild(pf); 7811 7812 /* Restore timestamp mode settings after VSI rebuild */ 7813 ice_ptp_restore_timestamp_mode(pf); 7814 7815 /* Start PTP periodic work after VSI is fully rebuilt */ 7816 ice_ptp_queue_work(pf); 7817 return; 7818 7819 err_vsi_rebuild: 7820 err_sched_init_port: 7821 ice_sched_cleanup_all(hw); 7822 err_init_ctrlq: 7823 ice_shutdown_all_ctrlq(hw, false); 7824 set_bit(ICE_RESET_FAILED, pf->state); 7825 clear_recovery: 7826 /* set this bit in PF state to control service task scheduling */ 7827 set_bit(ICE_NEEDS_RESTART, pf->state); 7828 dev_err(dev, "Rebuild failed, unload and reload driver\n"); 7829 } 7830 7831 /** 7832 * ice_change_mtu - NDO callback to change the MTU 7833 * @netdev: network interface device structure 7834 * @new_mtu: new value for maximum frame size 7835 * 7836 * Returns 0 on success, negative on failure 7837 */ 7838 int ice_change_mtu(struct net_device *netdev, int new_mtu) 7839 { 7840 struct ice_netdev_priv *np = netdev_priv(netdev); 7841 struct ice_vsi *vsi = np->vsi; 7842 struct ice_pf *pf = vsi->back; 7843 struct bpf_prog *prog; 7844 u8 count = 0; 7845 int err = 0; 7846 7847 if (new_mtu == (int)netdev->mtu) { 7848 netdev_warn(netdev, "MTU is already %u\n", netdev->mtu); 7849 return 0; 7850 } 7851 7852 prog = vsi->xdp_prog; 7853 if (prog && !prog->aux->xdp_has_frags) { 7854 int frame_size = ice_max_xdp_frame_size(vsi); 7855 7856 if (new_mtu + ICE_ETH_PKT_HDR_PAD > frame_size) { 7857 netdev_err(netdev, "max MTU for XDP usage is %d\n", 7858 frame_size - ICE_ETH_PKT_HDR_PAD); 7859 return -EINVAL; 7860 } 7861 } 7862 7863 /* if a reset is in progress, wait for some time for it to complete */ 7864 do { 7865 if (ice_is_reset_in_progress(pf->state)) { 7866 count++; 7867 usleep_range(1000, 2000); 7868 } else { 7869 break; 7870 } 7871 7872 } while (count < 100); 7873 7874 if (count == 100) { 7875 netdev_err(netdev, "can't change MTU. Device is busy\n"); 7876 return -EBUSY; 7877 } 7878 7879 WRITE_ONCE(netdev->mtu, (unsigned int)new_mtu); 7880 err = ice_down_up(vsi); 7881 if (err) 7882 return err; 7883 7884 netdev_dbg(netdev, "changed MTU to %d\n", new_mtu); 7885 set_bit(ICE_FLAG_MTU_CHANGED, pf->flags); 7886 7887 return err; 7888 } 7889 7890 /** 7891 * ice_set_rss_lut - Set RSS LUT 7892 * @vsi: Pointer to VSI structure 7893 * @lut: Lookup table 7894 * @lut_size: Lookup table size 7895 * 7896 * Returns 0 on success, negative on failure 7897 */ 7898 int ice_set_rss_lut(struct ice_vsi *vsi, u8 *lut, u16 lut_size) 7899 { 7900 struct ice_aq_get_set_rss_lut_params params = {}; 7901 struct ice_hw *hw = &vsi->back->hw; 7902 int status; 7903 7904 if (!lut) 7905 return -EINVAL; 7906 7907 params.vsi_handle = vsi->idx; 7908 params.lut_size = lut_size; 7909 params.lut_type = vsi->rss_lut_type; 7910 params.lut = lut; 7911 7912 status = ice_aq_set_rss_lut(hw, ¶ms); 7913 if (status) 7914 dev_err(ice_pf_to_dev(vsi->back), "Cannot set RSS lut, err %d aq_err %s\n", 7915 status, libie_aq_str(hw->adminq.sq_last_status)); 7916 7917 return status; 7918 } 7919 7920 /** 7921 * ice_set_rss_key - Set RSS key 7922 * @vsi: Pointer to the VSI structure 7923 * @seed: RSS hash seed 7924 * 7925 * Returns 0 on success, negative on failure 7926 */ 7927 int ice_set_rss_key(struct ice_vsi *vsi, u8 *seed) 7928 { 7929 struct ice_hw *hw = &vsi->back->hw; 7930 int status; 7931 7932 if (!seed) 7933 return -EINVAL; 7934 7935 status = ice_aq_set_rss_key(hw, vsi->idx, (struct ice_aqc_get_set_rss_keys *)seed); 7936 if (status) 7937 dev_err(ice_pf_to_dev(vsi->back), "Cannot set RSS key, err %d aq_err %s\n", 7938 status, libie_aq_str(hw->adminq.sq_last_status)); 7939 7940 return status; 7941 } 7942 7943 /** 7944 * ice_get_rss_lut - Get RSS LUT 7945 * @vsi: Pointer to VSI structure 7946 * @lut: Buffer to store the lookup table entries 7947 * @lut_size: Size of buffer to store the lookup table entries 7948 * 7949 * Returns 0 on success, negative on failure 7950 */ 7951 int ice_get_rss_lut(struct ice_vsi *vsi, u8 *lut, u16 lut_size) 7952 { 7953 struct ice_aq_get_set_rss_lut_params params = {}; 7954 struct ice_hw *hw = &vsi->back->hw; 7955 int status; 7956 7957 if (!lut) 7958 return -EINVAL; 7959 7960 params.vsi_handle = vsi->idx; 7961 params.lut_size = lut_size; 7962 params.lut_type = vsi->rss_lut_type; 7963 params.lut = lut; 7964 7965 status = ice_aq_get_rss_lut(hw, ¶ms); 7966 if (status) 7967 dev_err(ice_pf_to_dev(vsi->back), "Cannot get RSS lut, err %d aq_err %s\n", 7968 status, libie_aq_str(hw->adminq.sq_last_status)); 7969 7970 return status; 7971 } 7972 7973 /** 7974 * ice_get_rss_key - Get RSS key 7975 * @vsi: Pointer to VSI structure 7976 * @seed: Buffer to store the key in 7977 * 7978 * Returns 0 on success, negative on failure 7979 */ 7980 int ice_get_rss_key(struct ice_vsi *vsi, u8 *seed) 7981 { 7982 struct ice_hw *hw = &vsi->back->hw; 7983 int status; 7984 7985 if (!seed) 7986 return -EINVAL; 7987 7988 status = ice_aq_get_rss_key(hw, vsi->idx, (struct ice_aqc_get_set_rss_keys *)seed); 7989 if (status) 7990 dev_err(ice_pf_to_dev(vsi->back), "Cannot get RSS key, err %d aq_err %s\n", 7991 status, libie_aq_str(hw->adminq.sq_last_status)); 7992 7993 return status; 7994 } 7995 7996 /** 7997 * ice_get_rss - Get RSS LUT and/or key 7998 * @vsi: Pointer to VSI structure 7999 * @seed: Buffer to store the key in 8000 * @lut: Buffer to store the lookup table entries 8001 * @lut_size: Size of buffer to store the lookup table entries 8002 * 8003 * Return: 0 on success, negative on failure 8004 */ 8005 int ice_get_rss(struct ice_vsi *vsi, u8 *seed, u8 *lut, u16 lut_size) 8006 { 8007 int err; 8008 8009 if (seed) { 8010 err = ice_get_rss_key(vsi, seed); 8011 if (err) 8012 return err; 8013 } 8014 8015 if (lut) { 8016 err = ice_get_rss_lut(vsi, lut, lut_size); 8017 if (err) 8018 return err; 8019 } 8020 8021 return 0; 8022 } 8023 8024 /** 8025 * ice_set_rss_hfunc - Set RSS HASH function 8026 * @vsi: Pointer to VSI structure 8027 * @hfunc: hash function (ICE_AQ_VSI_Q_OPT_RSS_*) 8028 * 8029 * Returns 0 on success, negative on failure 8030 */ 8031 int ice_set_rss_hfunc(struct ice_vsi *vsi, u8 hfunc) 8032 { 8033 struct ice_hw *hw = &vsi->back->hw; 8034 struct ice_vsi_ctx *ctx; 8035 bool symm; 8036 int err; 8037 8038 if (hfunc == vsi->rss_hfunc) 8039 return 0; 8040 8041 if (hfunc != ICE_AQ_VSI_Q_OPT_RSS_HASH_TPLZ && 8042 hfunc != ICE_AQ_VSI_Q_OPT_RSS_HASH_SYM_TPLZ) 8043 return -EOPNOTSUPP; 8044 8045 ctx = kzalloc_obj(*ctx); 8046 if (!ctx) 8047 return -ENOMEM; 8048 8049 ctx->info.valid_sections = cpu_to_le16(ICE_AQ_VSI_PROP_Q_OPT_VALID); 8050 ctx->info.q_opt_rss = vsi->info.q_opt_rss; 8051 ctx->info.q_opt_rss &= ~ICE_AQ_VSI_Q_OPT_RSS_HASH_M; 8052 ctx->info.q_opt_rss |= 8053 FIELD_PREP(ICE_AQ_VSI_Q_OPT_RSS_HASH_M, hfunc); 8054 ctx->info.q_opt_tc = vsi->info.q_opt_tc; 8055 ctx->info.q_opt_flags = vsi->info.q_opt_flags; 8056 8057 err = ice_update_vsi(hw, vsi->idx, ctx, NULL); 8058 if (err) { 8059 dev_err(ice_pf_to_dev(vsi->back), "Failed to configure RSS hash for VSI %d, error %d\n", 8060 vsi->vsi_num, err); 8061 } else { 8062 vsi->info.q_opt_rss = ctx->info.q_opt_rss; 8063 vsi->rss_hfunc = hfunc; 8064 netdev_info(vsi->netdev, "Hash function set to: %sToeplitz\n", 8065 hfunc == ICE_AQ_VSI_Q_OPT_RSS_HASH_SYM_TPLZ ? 8066 "Symmetric " : ""); 8067 } 8068 kfree(ctx); 8069 if (err) 8070 return err; 8071 8072 /* Fix the symmetry setting for all existing RSS configurations */ 8073 symm = !!(hfunc == ICE_AQ_VSI_Q_OPT_RSS_HASH_SYM_TPLZ); 8074 return ice_set_rss_cfg_symm(hw, vsi, symm); 8075 } 8076 8077 /** 8078 * ice_bridge_getlink - Get the hardware bridge mode 8079 * @skb: skb buff 8080 * @pid: process ID 8081 * @seq: RTNL message seq 8082 * @dev: the netdev being configured 8083 * @filter_mask: filter mask passed in 8084 * @nlflags: netlink flags passed in 8085 * 8086 * Return the bridge mode (VEB/VEPA) 8087 */ 8088 static int 8089 ice_bridge_getlink(struct sk_buff *skb, u32 pid, u32 seq, 8090 struct net_device *dev, u32 filter_mask, int nlflags) 8091 { 8092 struct ice_pf *pf = ice_netdev_to_pf(dev); 8093 u16 bmode; 8094 8095 bmode = pf->first_sw->bridge_mode; 8096 8097 return ndo_dflt_bridge_getlink(skb, pid, seq, dev, bmode, 0, 0, nlflags, 8098 filter_mask, NULL); 8099 } 8100 8101 /** 8102 * ice_vsi_update_bridge_mode - Update VSI for switching bridge mode (VEB/VEPA) 8103 * @vsi: Pointer to VSI structure 8104 * @bmode: Hardware bridge mode (VEB/VEPA) 8105 * 8106 * Returns 0 on success, negative on failure 8107 */ 8108 static int ice_vsi_update_bridge_mode(struct ice_vsi *vsi, u16 bmode) 8109 { 8110 struct ice_aqc_vsi_props *vsi_props; 8111 struct ice_hw *hw = &vsi->back->hw; 8112 struct ice_vsi_ctx *ctxt; 8113 int ret; 8114 8115 vsi_props = &vsi->info; 8116 8117 ctxt = kzalloc_obj(*ctxt); 8118 if (!ctxt) 8119 return -ENOMEM; 8120 8121 ctxt->info = vsi->info; 8122 8123 if (bmode == BRIDGE_MODE_VEB) 8124 /* change from VEPA to VEB mode */ 8125 ctxt->info.sw_flags |= ICE_AQ_VSI_SW_FLAG_ALLOW_LB; 8126 else 8127 /* change from VEB to VEPA mode */ 8128 ctxt->info.sw_flags &= ~ICE_AQ_VSI_SW_FLAG_ALLOW_LB; 8129 ctxt->info.valid_sections = cpu_to_le16(ICE_AQ_VSI_PROP_SW_VALID); 8130 8131 ret = ice_update_vsi(hw, vsi->idx, ctxt, NULL); 8132 if (ret) { 8133 dev_err(ice_pf_to_dev(vsi->back), "update VSI for bridge mode failed, bmode = %d err %d aq_err %s\n", 8134 bmode, ret, libie_aq_str(hw->adminq.sq_last_status)); 8135 goto out; 8136 } 8137 /* Update sw flags for book keeping */ 8138 vsi_props->sw_flags = ctxt->info.sw_flags; 8139 8140 out: 8141 kfree(ctxt); 8142 return ret; 8143 } 8144 8145 /** 8146 * ice_bridge_setlink - Set the hardware bridge mode 8147 * @dev: the netdev being configured 8148 * @nlh: RTNL message 8149 * @flags: bridge setlink flags 8150 * @extack: netlink extended ack 8151 * 8152 * Sets the bridge mode (VEB/VEPA) of the switch to which the netdev (VSI) is 8153 * hooked up to. Iterates through the PF VSI list and sets the loopback mode (if 8154 * not already set for all VSIs connected to this switch. And also update the 8155 * unicast switch filter rules for the corresponding switch of the netdev. 8156 */ 8157 static int 8158 ice_bridge_setlink(struct net_device *dev, struct nlmsghdr *nlh, 8159 u16 __always_unused flags, 8160 struct netlink_ext_ack __always_unused *extack) 8161 { 8162 struct ice_pf *pf = ice_netdev_to_pf(dev); 8163 struct nlattr *attr, *br_spec; 8164 struct ice_hw *hw = &pf->hw; 8165 struct ice_sw *pf_sw; 8166 int rem, v, err = 0; 8167 8168 pf_sw = pf->first_sw; 8169 /* find the attribute in the netlink message */ 8170 br_spec = nlmsg_find_attr(nlh, sizeof(struct ifinfomsg), IFLA_AF_SPEC); 8171 if (!br_spec) 8172 return -EINVAL; 8173 8174 nla_for_each_nested_type(attr, IFLA_BRIDGE_MODE, br_spec, rem) { 8175 __u16 mode = nla_get_u16(attr); 8176 8177 if (mode != BRIDGE_MODE_VEPA && mode != BRIDGE_MODE_VEB) 8178 return -EINVAL; 8179 /* Continue if bridge mode is not being flipped */ 8180 if (mode == pf_sw->bridge_mode) 8181 continue; 8182 /* Iterates through the PF VSI list and update the loopback 8183 * mode of the VSI 8184 */ 8185 ice_for_each_vsi(pf, v) { 8186 if (!pf->vsi[v]) 8187 continue; 8188 err = ice_vsi_update_bridge_mode(pf->vsi[v], mode); 8189 if (err) 8190 return err; 8191 } 8192 8193 hw->evb_veb = (mode == BRIDGE_MODE_VEB); 8194 /* Update the unicast switch filter rules for the corresponding 8195 * switch of the netdev 8196 */ 8197 err = ice_update_sw_rule_bridge_mode(hw); 8198 if (err) { 8199 netdev_err(dev, "switch rule update failed, mode = %d err %d aq_err %s\n", 8200 mode, err, 8201 libie_aq_str(hw->adminq.sq_last_status)); 8202 /* revert hw->evb_veb */ 8203 hw->evb_veb = (pf_sw->bridge_mode == BRIDGE_MODE_VEB); 8204 return err; 8205 } 8206 8207 pf_sw->bridge_mode = mode; 8208 } 8209 8210 return 0; 8211 } 8212 8213 /** 8214 * ice_tx_timeout - Respond to a Tx Hang 8215 * @netdev: network interface device structure 8216 * @txqueue: Tx queue 8217 */ 8218 void ice_tx_timeout(struct net_device *netdev, unsigned int txqueue) 8219 { 8220 struct ice_netdev_priv *np = netdev_priv(netdev); 8221 struct ice_tx_ring *tx_ring = NULL; 8222 struct ice_vsi *vsi = np->vsi; 8223 struct ice_pf *pf = vsi->back; 8224 u32 i; 8225 8226 pf->tx_timeout_count++; 8227 8228 /* Check if PFC is enabled for the TC to which the queue belongs 8229 * to. If yes then Tx timeout is not caused by a hung queue, no 8230 * need to reset and rebuild 8231 */ 8232 if (ice_is_pfc_causing_hung_q(pf, txqueue)) { 8233 dev_info(ice_pf_to_dev(pf), "Fake Tx hang detected on queue %u, timeout caused by PFC storm\n", 8234 txqueue); 8235 return; 8236 } 8237 8238 /* now that we have an index, find the tx_ring struct */ 8239 ice_for_each_txq(vsi, i) 8240 if (vsi->tx_rings[i] && vsi->tx_rings[i]->desc) 8241 if (txqueue == vsi->tx_rings[i]->q_index) { 8242 tx_ring = vsi->tx_rings[i]; 8243 break; 8244 } 8245 8246 /* Reset recovery level if enough time has elapsed after last timeout. 8247 * Also ensure no new reset action happens before next timeout period. 8248 */ 8249 if (time_after(jiffies, (pf->tx_timeout_last_recovery + HZ * 20))) 8250 pf->tx_timeout_recovery_level = 1; 8251 else if (time_before(jiffies, (pf->tx_timeout_last_recovery + 8252 netdev->watchdog_timeo))) 8253 return; 8254 8255 if (tx_ring) { 8256 struct ice_hw *hw = &pf->hw; 8257 u32 head, intr = 0; 8258 8259 head = FIELD_GET(QTX_COMM_HEAD_HEAD_M, 8260 rd32(hw, QTX_COMM_HEAD(vsi->txq_map[txqueue]))); 8261 /* Read interrupt register */ 8262 intr = rd32(hw, GLINT_DYN_CTL(tx_ring->q_vector->reg_idx)); 8263 8264 netdev_info(netdev, "tx_timeout: VSI_num: %d, Q %u, NTC: 0x%x, HW_HEAD: 0x%x, NTU: 0x%x, INT: 0x%x\n", 8265 vsi->vsi_num, txqueue, tx_ring->next_to_clean, 8266 head, tx_ring->next_to_use, intr); 8267 8268 ice_prep_tx_hang_report(pf, tx_ring, vsi->vsi_num, head, intr); 8269 } 8270 8271 pf->tx_timeout_last_recovery = jiffies; 8272 netdev_info(netdev, "tx_timeout recovery level %d, txqueue %u\n", 8273 pf->tx_timeout_recovery_level, txqueue); 8274 8275 switch (pf->tx_timeout_recovery_level) { 8276 case 1: 8277 set_bit(ICE_PFR_REQ, pf->state); 8278 break; 8279 case 2: 8280 set_bit(ICE_CORER_REQ, pf->state); 8281 break; 8282 case 3: 8283 set_bit(ICE_GLOBR_REQ, pf->state); 8284 break; 8285 default: 8286 netdev_err(netdev, "tx_timeout recovery unsuccessful, device is in unrecoverable state.\n"); 8287 set_bit(ICE_DOWN, pf->state); 8288 set_bit(ICE_VSI_NEEDS_RESTART, vsi->state); 8289 set_bit(ICE_SERVICE_DIS, pf->state); 8290 break; 8291 } 8292 8293 ice_service_task_schedule(pf); 8294 pf->tx_timeout_recovery_level++; 8295 } 8296 8297 /** 8298 * ice_setup_tc_cls_flower - flower classifier offloads 8299 * @np: net device to configure 8300 * @filter_dev: device on which filter is added 8301 * @cls_flower: offload data 8302 * @ingress: if the rule is added to an ingress block 8303 * 8304 * Return: 0 if the flower was successfully added or deleted, 8305 * negative error code otherwise. 8306 */ 8307 static int 8308 ice_setup_tc_cls_flower(struct ice_netdev_priv *np, 8309 struct net_device *filter_dev, 8310 struct flow_cls_offload *cls_flower, 8311 bool ingress) 8312 { 8313 struct ice_vsi *vsi = np->vsi; 8314 8315 if (cls_flower->common.chain_index) 8316 return -EOPNOTSUPP; 8317 8318 switch (cls_flower->command) { 8319 case FLOW_CLS_REPLACE: 8320 return ice_add_cls_flower(filter_dev, vsi, cls_flower, ingress); 8321 case FLOW_CLS_DESTROY: 8322 return ice_del_cls_flower(vsi, cls_flower); 8323 default: 8324 return -EINVAL; 8325 } 8326 } 8327 8328 /** 8329 * ice_setup_tc_block_cb_ingress - callback handler for ingress TC block 8330 * @type: TC SETUP type 8331 * @type_data: TC flower offload data that contains user input 8332 * @cb_priv: netdev private data 8333 * 8334 * Return: 0 if the setup was successful, negative error code otherwise. 8335 */ 8336 static int 8337 ice_setup_tc_block_cb_ingress(enum tc_setup_type type, void *type_data, 8338 void *cb_priv) 8339 { 8340 struct ice_netdev_priv *np = cb_priv; 8341 8342 switch (type) { 8343 case TC_SETUP_CLSFLOWER: 8344 return ice_setup_tc_cls_flower(np, np->vsi->netdev, 8345 type_data, true); 8346 default: 8347 return -EOPNOTSUPP; 8348 } 8349 } 8350 8351 /** 8352 * ice_setup_tc_block_cb_egress - callback handler for egress TC block 8353 * @type: TC SETUP type 8354 * @type_data: TC flower offload data that contains user input 8355 * @cb_priv: netdev private data 8356 * 8357 * Return: 0 if the setup was successful, negative error code otherwise. 8358 */ 8359 static int 8360 ice_setup_tc_block_cb_egress(enum tc_setup_type type, void *type_data, 8361 void *cb_priv) 8362 { 8363 struct ice_netdev_priv *np = cb_priv; 8364 8365 switch (type) { 8366 case TC_SETUP_CLSFLOWER: 8367 return ice_setup_tc_cls_flower(np, np->vsi->netdev, 8368 type_data, false); 8369 default: 8370 return -EOPNOTSUPP; 8371 } 8372 } 8373 8374 /** 8375 * ice_validate_mqprio_qopt - Validate TCF input parameters 8376 * @vsi: Pointer to VSI 8377 * @mqprio_qopt: input parameters for mqprio queue configuration 8378 * 8379 * This function validates MQPRIO params, such as qcount (power of 2 wherever 8380 * needed), and make sure user doesn't specify qcount and BW rate limit 8381 * for TCs, which are more than "num_tc" 8382 */ 8383 static int 8384 ice_validate_mqprio_qopt(struct ice_vsi *vsi, 8385 struct tc_mqprio_qopt_offload *mqprio_qopt) 8386 { 8387 int non_power_of_2_qcount = 0; 8388 struct ice_pf *pf = vsi->back; 8389 int max_rss_q_cnt = 0; 8390 u64 sum_min_rate = 0; 8391 struct device *dev; 8392 int i, speed; 8393 u8 num_tc; 8394 8395 if (vsi->type != ICE_VSI_PF) 8396 return -EINVAL; 8397 8398 if (mqprio_qopt->qopt.offset[0] != 0 || 8399 mqprio_qopt->qopt.num_tc < 1 || 8400 mqprio_qopt->qopt.num_tc > ICE_CHNL_MAX_TC) 8401 return -EINVAL; 8402 8403 dev = ice_pf_to_dev(pf); 8404 vsi->ch_rss_size = 0; 8405 num_tc = mqprio_qopt->qopt.num_tc; 8406 speed = ice_get_link_speed_kbps(vsi); 8407 8408 for (i = 0; num_tc; i++) { 8409 int qcount = mqprio_qopt->qopt.count[i]; 8410 u64 max_rate, min_rate, rem; 8411 8412 if (!qcount) 8413 return -EINVAL; 8414 8415 if (is_power_of_2(qcount)) { 8416 if (non_power_of_2_qcount && 8417 qcount > non_power_of_2_qcount) { 8418 dev_err(dev, "qcount[%d] cannot be greater than non power of 2 qcount[%d]\n", 8419 qcount, non_power_of_2_qcount); 8420 return -EINVAL; 8421 } 8422 if (qcount > max_rss_q_cnt) 8423 max_rss_q_cnt = qcount; 8424 } else { 8425 if (non_power_of_2_qcount && 8426 qcount != non_power_of_2_qcount) { 8427 dev_err(dev, "Only one non power of 2 qcount allowed[%d,%d]\n", 8428 qcount, non_power_of_2_qcount); 8429 return -EINVAL; 8430 } 8431 if (qcount < max_rss_q_cnt) { 8432 dev_err(dev, "non power of 2 qcount[%d] cannot be less than other qcount[%d]\n", 8433 qcount, max_rss_q_cnt); 8434 return -EINVAL; 8435 } 8436 max_rss_q_cnt = qcount; 8437 non_power_of_2_qcount = qcount; 8438 } 8439 8440 /* TC command takes input in K/N/Gbps or K/M/Gbit etc but 8441 * converts the bandwidth rate limit into Bytes/s when 8442 * passing it down to the driver. So convert input bandwidth 8443 * from Bytes/s to Kbps 8444 */ 8445 max_rate = mqprio_qopt->max_rate[i]; 8446 max_rate = div_u64(max_rate, ICE_BW_KBPS_DIVISOR); 8447 8448 /* min_rate is minimum guaranteed rate and it can't be zero */ 8449 min_rate = mqprio_qopt->min_rate[i]; 8450 min_rate = div_u64(min_rate, ICE_BW_KBPS_DIVISOR); 8451 sum_min_rate += min_rate; 8452 8453 if (min_rate && min_rate < ICE_MIN_BW_LIMIT) { 8454 dev_err(dev, "TC%d: min_rate(%llu Kbps) < %u Kbps\n", i, 8455 min_rate, ICE_MIN_BW_LIMIT); 8456 return -EINVAL; 8457 } 8458 8459 if (max_rate && max_rate > speed) { 8460 dev_err(dev, "TC%d: max_rate(%llu Kbps) > link speed of %u Kbps\n", 8461 i, max_rate, speed); 8462 return -EINVAL; 8463 } 8464 8465 iter_div_u64_rem(min_rate, ICE_MIN_BW_LIMIT, &rem); 8466 if (rem) { 8467 dev_err(dev, "TC%d: Min Rate not multiple of %u Kbps", 8468 i, ICE_MIN_BW_LIMIT); 8469 return -EINVAL; 8470 } 8471 8472 iter_div_u64_rem(max_rate, ICE_MIN_BW_LIMIT, &rem); 8473 if (rem) { 8474 dev_err(dev, "TC%d: Max Rate not multiple of %u Kbps", 8475 i, ICE_MIN_BW_LIMIT); 8476 return -EINVAL; 8477 } 8478 8479 /* min_rate can't be more than max_rate, except when max_rate 8480 * is zero (implies max_rate sought is max line rate). In such 8481 * a case min_rate can be more than max. 8482 */ 8483 if (max_rate && min_rate > max_rate) { 8484 dev_err(dev, "min_rate %llu Kbps can't be more than max_rate %llu Kbps\n", 8485 min_rate, max_rate); 8486 return -EINVAL; 8487 } 8488 8489 if (i >= mqprio_qopt->qopt.num_tc - 1) 8490 break; 8491 if (mqprio_qopt->qopt.offset[i + 1] != 8492 (mqprio_qopt->qopt.offset[i] + qcount)) 8493 return -EINVAL; 8494 } 8495 if (vsi->num_rxq < 8496 (mqprio_qopt->qopt.offset[i] + mqprio_qopt->qopt.count[i])) 8497 return -EINVAL; 8498 if (vsi->num_txq < 8499 (mqprio_qopt->qopt.offset[i] + mqprio_qopt->qopt.count[i])) 8500 return -EINVAL; 8501 8502 if (sum_min_rate && sum_min_rate > (u64)speed) { 8503 dev_err(dev, "Invalid min Tx rate(%llu) Kbps > speed (%u) Kbps specified\n", 8504 sum_min_rate, speed); 8505 return -EINVAL; 8506 } 8507 8508 /* make sure vsi->ch_rss_size is set correctly based on TC's qcount */ 8509 vsi->ch_rss_size = max_rss_q_cnt; 8510 8511 return 0; 8512 } 8513 8514 /** 8515 * ice_add_vsi_to_fdir - add a VSI to the flow director group for PF 8516 * @pf: ptr to PF device 8517 * @vsi: ptr to VSI 8518 */ 8519 static int ice_add_vsi_to_fdir(struct ice_pf *pf, struct ice_vsi *vsi) 8520 { 8521 struct device *dev = ice_pf_to_dev(pf); 8522 bool added = false; 8523 struct ice_hw *hw; 8524 int flow; 8525 8526 if (!(vsi->num_gfltr || vsi->num_bfltr)) 8527 return -EINVAL; 8528 8529 hw = &pf->hw; 8530 for (flow = 0; flow < ICE_FLTR_PTYPE_MAX; flow++) { 8531 struct ice_fd_hw_prof *prof; 8532 int tun, status; 8533 u64 entry_h; 8534 8535 if (!(hw->fdir_prof && hw->fdir_prof[flow] && 8536 hw->fdir_prof[flow]->cnt)) 8537 continue; 8538 8539 for (tun = 0; tun < ICE_FD_HW_SEG_MAX; tun++) { 8540 enum ice_flow_priority prio; 8541 8542 /* add this VSI to FDir profile for this flow */ 8543 prio = ICE_FLOW_PRIO_NORMAL; 8544 prof = hw->fdir_prof[flow]; 8545 status = ice_flow_add_entry(hw, ICE_BLK_FD, 8546 prof->prof_id[tun], 8547 prof->vsi_h[0], vsi->idx, 8548 prio, prof->fdir_seg[tun], 8549 &entry_h); 8550 if (status) { 8551 dev_err(dev, "channel VSI idx %d, not able to add to group %d\n", 8552 vsi->idx, flow); 8553 continue; 8554 } 8555 8556 prof->entry_h[prof->cnt][tun] = entry_h; 8557 } 8558 8559 /* store VSI for filter replay and delete */ 8560 prof->vsi_h[prof->cnt] = vsi->idx; 8561 prof->cnt++; 8562 8563 added = true; 8564 dev_dbg(dev, "VSI idx %d added to fdir group %d\n", vsi->idx, 8565 flow); 8566 } 8567 8568 if (!added) 8569 dev_dbg(dev, "VSI idx %d not added to fdir groups\n", vsi->idx); 8570 8571 return 0; 8572 } 8573 8574 /** 8575 * ice_add_channel - add a channel by adding VSI 8576 * @pf: ptr to PF device 8577 * @sw_id: underlying HW switching element ID 8578 * @ch: ptr to channel structure 8579 * 8580 * Add a channel (VSI) using add_vsi and queue_map 8581 */ 8582 static int ice_add_channel(struct ice_pf *pf, u16 sw_id, struct ice_channel *ch) 8583 { 8584 struct device *dev = ice_pf_to_dev(pf); 8585 struct ice_vsi *vsi; 8586 8587 if (ch->type != ICE_VSI_CHNL) { 8588 dev_err(dev, "add new VSI failed, ch->type %d\n", ch->type); 8589 return -EINVAL; 8590 } 8591 8592 vsi = ice_chnl_vsi_setup(pf, pf->hw.port_info, ch); 8593 if (!vsi || vsi->type != ICE_VSI_CHNL) { 8594 dev_err(dev, "create chnl VSI failure\n"); 8595 return -EINVAL; 8596 } 8597 8598 ice_add_vsi_to_fdir(pf, vsi); 8599 8600 ch->sw_id = sw_id; 8601 ch->vsi_num = vsi->vsi_num; 8602 ch->info.mapping_flags = vsi->info.mapping_flags; 8603 ch->ch_vsi = vsi; 8604 /* set the back pointer of channel for newly created VSI */ 8605 vsi->ch = ch; 8606 8607 memcpy(&ch->info.q_mapping, &vsi->info.q_mapping, 8608 sizeof(vsi->info.q_mapping)); 8609 memcpy(&ch->info.tc_mapping, vsi->info.tc_mapping, 8610 sizeof(vsi->info.tc_mapping)); 8611 8612 return 0; 8613 } 8614 8615 /** 8616 * ice_chnl_cfg_res 8617 * @vsi: the VSI being setup 8618 * @ch: ptr to channel structure 8619 * 8620 * Configure channel specific resources such as rings, vector. 8621 */ 8622 static void ice_chnl_cfg_res(struct ice_vsi *vsi, struct ice_channel *ch) 8623 { 8624 int i; 8625 8626 for (i = 0; i < ch->num_txq; i++) { 8627 struct ice_q_vector *tx_q_vector, *rx_q_vector; 8628 struct ice_ring_container *rc; 8629 struct ice_tx_ring *tx_ring; 8630 struct ice_rx_ring *rx_ring; 8631 8632 tx_ring = vsi->tx_rings[ch->base_q + i]; 8633 rx_ring = vsi->rx_rings[ch->base_q + i]; 8634 if (!tx_ring || !rx_ring) 8635 continue; 8636 8637 /* setup ring being channel enabled */ 8638 tx_ring->ch = ch; 8639 rx_ring->ch = ch; 8640 8641 /* following code block sets up vector specific attributes */ 8642 tx_q_vector = tx_ring->q_vector; 8643 rx_q_vector = rx_ring->q_vector; 8644 if (!tx_q_vector && !rx_q_vector) 8645 continue; 8646 8647 if (tx_q_vector) { 8648 tx_q_vector->ch = ch; 8649 /* setup Tx and Rx ITR setting if DIM is off */ 8650 rc = &tx_q_vector->tx; 8651 if (!ITR_IS_DYNAMIC(rc)) 8652 ice_write_itr(rc, rc->itr_setting); 8653 } 8654 if (rx_q_vector) { 8655 rx_q_vector->ch = ch; 8656 /* setup Tx and Rx ITR setting if DIM is off */ 8657 rc = &rx_q_vector->rx; 8658 if (!ITR_IS_DYNAMIC(rc)) 8659 ice_write_itr(rc, rc->itr_setting); 8660 } 8661 } 8662 8663 /* it is safe to assume that, if channel has non-zero num_t[r]xq, then 8664 * GLINT_ITR register would have written to perform in-context 8665 * update, hence perform flush 8666 */ 8667 if (ch->num_txq || ch->num_rxq) 8668 ice_flush(&vsi->back->hw); 8669 } 8670 8671 /** 8672 * ice_cfg_chnl_all_res - configure channel resources 8673 * @vsi: pte to main_vsi 8674 * @ch: ptr to channel structure 8675 * 8676 * This function configures channel specific resources such as flow-director 8677 * counter index, and other resources such as queues, vectors, ITR settings 8678 */ 8679 static void 8680 ice_cfg_chnl_all_res(struct ice_vsi *vsi, struct ice_channel *ch) 8681 { 8682 /* configure channel (aka ADQ) resources such as queues, vectors, 8683 * ITR settings for channel specific vectors and anything else 8684 */ 8685 ice_chnl_cfg_res(vsi, ch); 8686 } 8687 8688 /** 8689 * ice_setup_hw_channel - setup new channel 8690 * @pf: ptr to PF device 8691 * @vsi: the VSI being setup 8692 * @ch: ptr to channel structure 8693 * @sw_id: underlying HW switching element ID 8694 * @type: type of channel to be created (VMDq2/VF) 8695 * 8696 * Setup new channel (VSI) based on specified type (VMDq2/VF) 8697 * and configures Tx rings accordingly 8698 */ 8699 static int 8700 ice_setup_hw_channel(struct ice_pf *pf, struct ice_vsi *vsi, 8701 struct ice_channel *ch, u16 sw_id, u8 type) 8702 { 8703 struct device *dev = ice_pf_to_dev(pf); 8704 int ret; 8705 8706 ch->base_q = vsi->next_base_q; 8707 ch->type = type; 8708 8709 ret = ice_add_channel(pf, sw_id, ch); 8710 if (ret) { 8711 dev_err(dev, "failed to add_channel using sw_id %u\n", sw_id); 8712 return ret; 8713 } 8714 8715 /* configure/setup ADQ specific resources */ 8716 ice_cfg_chnl_all_res(vsi, ch); 8717 8718 /* make sure to update the next_base_q so that subsequent channel's 8719 * (aka ADQ) VSI queue map is correct 8720 */ 8721 vsi->next_base_q = vsi->next_base_q + ch->num_rxq; 8722 dev_dbg(dev, "added channel: vsi_num %u, num_rxq %u\n", ch->vsi_num, 8723 ch->num_rxq); 8724 8725 return 0; 8726 } 8727 8728 /** 8729 * ice_setup_channel - setup new channel using uplink element 8730 * @pf: ptr to PF device 8731 * @vsi: the VSI being setup 8732 * @ch: ptr to channel structure 8733 * 8734 * Setup new channel (VSI) based on specified type (VMDq2/VF) 8735 * and uplink switching element 8736 */ 8737 static bool 8738 ice_setup_channel(struct ice_pf *pf, struct ice_vsi *vsi, 8739 struct ice_channel *ch) 8740 { 8741 struct device *dev = ice_pf_to_dev(pf); 8742 u16 sw_id; 8743 int ret; 8744 8745 if (vsi->type != ICE_VSI_PF) { 8746 dev_err(dev, "unsupported parent VSI type(%d)\n", vsi->type); 8747 return false; 8748 } 8749 8750 sw_id = pf->first_sw->sw_id; 8751 8752 /* create channel (VSI) */ 8753 ret = ice_setup_hw_channel(pf, vsi, ch, sw_id, ICE_VSI_CHNL); 8754 if (ret) { 8755 dev_err(dev, "failed to setup hw_channel\n"); 8756 return false; 8757 } 8758 dev_dbg(dev, "successfully created channel()\n"); 8759 8760 return ch->ch_vsi ? true : false; 8761 } 8762 8763 /** 8764 * ice_set_bw_limit - setup BW limit for Tx traffic based on max_tx_rate 8765 * @vsi: VSI to be configured 8766 * @max_tx_rate: max Tx rate in Kbps to be configured as maximum BW limit 8767 * @min_tx_rate: min Tx rate in Kbps to be configured as minimum BW limit 8768 */ 8769 static int 8770 ice_set_bw_limit(struct ice_vsi *vsi, u64 max_tx_rate, u64 min_tx_rate) 8771 { 8772 int err; 8773 8774 err = ice_set_min_bw_limit(vsi, min_tx_rate); 8775 if (err) 8776 return err; 8777 8778 return ice_set_max_bw_limit(vsi, max_tx_rate); 8779 } 8780 8781 /** 8782 * ice_create_q_channel - function to create channel 8783 * @vsi: VSI to be configured 8784 * @ch: ptr to channel (it contains channel specific params) 8785 * 8786 * This function creates channel (VSI) using num_queues specified by user, 8787 * reconfigs RSS if needed. 8788 */ 8789 static int ice_create_q_channel(struct ice_vsi *vsi, struct ice_channel *ch) 8790 { 8791 struct ice_pf *pf = vsi->back; 8792 struct device *dev; 8793 8794 if (!ch) 8795 return -EINVAL; 8796 8797 dev = ice_pf_to_dev(pf); 8798 if (!ch->num_txq || !ch->num_rxq) { 8799 dev_err(dev, "Invalid num_queues requested: %d\n", ch->num_rxq); 8800 return -EINVAL; 8801 } 8802 8803 if (!vsi->cnt_q_avail || vsi->cnt_q_avail < ch->num_txq) { 8804 dev_err(dev, "cnt_q_avail (%u) less than num_queues %d\n", 8805 vsi->cnt_q_avail, ch->num_txq); 8806 return -EINVAL; 8807 } 8808 8809 if (!ice_setup_channel(pf, vsi, ch)) { 8810 dev_info(dev, "Failed to setup channel\n"); 8811 return -EINVAL; 8812 } 8813 /* configure BW rate limit */ 8814 if (ch->ch_vsi && (ch->max_tx_rate || ch->min_tx_rate)) { 8815 int ret; 8816 8817 ret = ice_set_bw_limit(ch->ch_vsi, ch->max_tx_rate, 8818 ch->min_tx_rate); 8819 if (ret) 8820 dev_err(dev, "failed to set Tx rate of %llu Kbps for VSI(%u)\n", 8821 ch->max_tx_rate, ch->ch_vsi->vsi_num); 8822 else 8823 dev_dbg(dev, "set Tx rate of %llu Kbps for VSI(%u)\n", 8824 ch->max_tx_rate, ch->ch_vsi->vsi_num); 8825 } 8826 8827 vsi->cnt_q_avail -= ch->num_txq; 8828 8829 return 0; 8830 } 8831 8832 /** 8833 * ice_rem_all_chnl_fltrs - removes all channel filters 8834 * @pf: ptr to PF, TC-flower based filter are tracked at PF level 8835 * 8836 * Remove all advanced switch filters only if they are channel specific 8837 * tc-flower based filter 8838 */ 8839 static void ice_rem_all_chnl_fltrs(struct ice_pf *pf) 8840 { 8841 struct ice_tc_flower_fltr *fltr; 8842 struct hlist_node *node; 8843 8844 /* to remove all channel filters, iterate an ordered list of filters */ 8845 hlist_for_each_entry_safe(fltr, node, 8846 &pf->tc_flower_fltr_list, 8847 tc_flower_node) { 8848 struct ice_rule_query_data rule; 8849 int status; 8850 8851 /* for now process only channel specific filters */ 8852 if (!ice_is_chnl_fltr(fltr)) 8853 continue; 8854 8855 rule.rid = fltr->rid; 8856 rule.rule_id = fltr->rule_id; 8857 rule.vsi_handle = fltr->dest_vsi_handle; 8858 status = ice_rem_adv_rule_by_id(&pf->hw, &rule); 8859 if (status) { 8860 if (status == -ENOENT) 8861 dev_dbg(ice_pf_to_dev(pf), "TC flower filter (rule_id %u) does not exist\n", 8862 rule.rule_id); 8863 else 8864 dev_err(ice_pf_to_dev(pf), "failed to delete TC flower filter, status %d\n", 8865 status); 8866 } else if (fltr->dest_vsi) { 8867 /* update advanced switch filter count */ 8868 if (fltr->dest_vsi->type == ICE_VSI_CHNL) { 8869 u32 flags = fltr->flags; 8870 8871 fltr->dest_vsi->num_chnl_fltr--; 8872 if (flags & (ICE_TC_FLWR_FIELD_DST_MAC | 8873 ICE_TC_FLWR_FIELD_ENC_DST_MAC)) 8874 pf->num_dmac_chnl_fltrs--; 8875 } 8876 } 8877 8878 hlist_del(&fltr->tc_flower_node); 8879 kfree(fltr); 8880 } 8881 } 8882 8883 /** 8884 * ice_remove_q_channels - Remove queue channels for the TCs 8885 * @vsi: VSI to be configured 8886 * @rem_fltr: delete advanced switch filter or not 8887 * 8888 * Remove queue channels for the TCs 8889 */ 8890 static void ice_remove_q_channels(struct ice_vsi *vsi, bool rem_fltr) 8891 { 8892 struct ice_channel *ch, *ch_tmp; 8893 struct ice_pf *pf = vsi->back; 8894 int i; 8895 8896 /* remove all tc-flower based filter if they are channel filters only */ 8897 if (rem_fltr) 8898 ice_rem_all_chnl_fltrs(pf); 8899 8900 /* remove ntuple filters since queue configuration is being changed */ 8901 if (vsi->netdev->features & NETIF_F_NTUPLE) { 8902 struct ice_hw *hw = &pf->hw; 8903 8904 mutex_lock(&hw->fdir_fltr_lock); 8905 ice_fdir_del_all_fltrs(vsi); 8906 mutex_unlock(&hw->fdir_fltr_lock); 8907 } 8908 8909 /* perform cleanup for channels if they exist */ 8910 list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list, list) { 8911 struct ice_vsi *ch_vsi; 8912 8913 list_del(&ch->list); 8914 ch_vsi = ch->ch_vsi; 8915 if (!ch_vsi) { 8916 kfree(ch); 8917 continue; 8918 } 8919 8920 /* Reset queue contexts */ 8921 for (i = 0; i < ch->num_rxq; i++) { 8922 struct ice_tx_ring *tx_ring; 8923 struct ice_rx_ring *rx_ring; 8924 8925 tx_ring = vsi->tx_rings[ch->base_q + i]; 8926 rx_ring = vsi->rx_rings[ch->base_q + i]; 8927 if (tx_ring) { 8928 tx_ring->ch = NULL; 8929 if (tx_ring->q_vector) 8930 tx_ring->q_vector->ch = NULL; 8931 } 8932 if (rx_ring) { 8933 rx_ring->ch = NULL; 8934 if (rx_ring->q_vector) 8935 rx_ring->q_vector->ch = NULL; 8936 } 8937 } 8938 8939 /* Release FD resources for the channel VSI */ 8940 ice_fdir_rem_adq_chnl(&pf->hw, ch->ch_vsi->idx); 8941 8942 /* clear the VSI from scheduler tree */ 8943 ice_rm_vsi_lan_cfg(ch->ch_vsi->port_info, ch->ch_vsi->idx); 8944 8945 /* Delete VSI from FW, PF and HW VSI arrays */ 8946 ice_vsi_delete(ch->ch_vsi); 8947 8948 /* free the channel */ 8949 kfree(ch); 8950 } 8951 8952 /* clear the channel VSI map which is stored in main VSI */ 8953 ice_for_each_chnl_tc(i) 8954 vsi->tc_map_vsi[i] = NULL; 8955 8956 /* reset main VSI's all TC information */ 8957 vsi->all_enatc = 0; 8958 vsi->all_numtc = 0; 8959 } 8960 8961 /** 8962 * ice_rebuild_channels - rebuild channel 8963 * @pf: ptr to PF 8964 * 8965 * Recreate channel VSIs and replay filters 8966 */ 8967 static int ice_rebuild_channels(struct ice_pf *pf) 8968 { 8969 struct device *dev = ice_pf_to_dev(pf); 8970 struct ice_vsi *main_vsi; 8971 bool rem_adv_fltr = true; 8972 struct ice_channel *ch; 8973 struct ice_vsi *vsi; 8974 int tc_idx = 1; 8975 int i, err; 8976 8977 main_vsi = ice_get_main_vsi(pf); 8978 if (!main_vsi) 8979 return 0; 8980 8981 if (!test_bit(ICE_FLAG_TC_MQPRIO, pf->flags) || 8982 main_vsi->old_numtc == 1) 8983 return 0; /* nothing to be done */ 8984 8985 /* reconfigure main VSI based on old value of TC and cached values 8986 * for MQPRIO opts 8987 */ 8988 err = ice_vsi_cfg_tc(main_vsi, main_vsi->old_ena_tc); 8989 if (err) { 8990 dev_err(dev, "failed configuring TC(ena_tc:0x%02x) for HW VSI=%u\n", 8991 main_vsi->old_ena_tc, main_vsi->vsi_num); 8992 return err; 8993 } 8994 8995 /* rebuild ADQ VSIs */ 8996 ice_for_each_vsi(pf, i) { 8997 enum ice_vsi_type type; 8998 8999 vsi = pf->vsi[i]; 9000 if (!vsi || vsi->type != ICE_VSI_CHNL) 9001 continue; 9002 9003 type = vsi->type; 9004 9005 /* rebuild ADQ VSI */ 9006 err = ice_vsi_rebuild(vsi, ICE_VSI_FLAG_INIT); 9007 if (err) { 9008 dev_err(dev, "VSI (type:%s) at index %d rebuild failed, err %d\n", 9009 ice_vsi_type_str(type), vsi->idx, err); 9010 goto cleanup; 9011 } 9012 9013 /* Re-map HW VSI number, using VSI handle that has been 9014 * previously validated in ice_replay_vsi() call above 9015 */ 9016 vsi->vsi_num = ice_get_hw_vsi_num(&pf->hw, vsi->idx); 9017 9018 /* replay filters for the VSI */ 9019 err = ice_replay_vsi(&pf->hw, vsi->idx); 9020 if (err) { 9021 dev_err(dev, "VSI (type:%s) replay failed, err %d, VSI index %d\n", 9022 ice_vsi_type_str(type), err, vsi->idx); 9023 rem_adv_fltr = false; 9024 goto cleanup; 9025 } 9026 dev_info(dev, "VSI (type:%s) at index %d rebuilt successfully\n", 9027 ice_vsi_type_str(type), vsi->idx); 9028 9029 /* store ADQ VSI at correct TC index in main VSI's 9030 * map of TC to VSI 9031 */ 9032 main_vsi->tc_map_vsi[tc_idx++] = vsi; 9033 } 9034 9035 /* ADQ VSI(s) has been rebuilt successfully, so setup 9036 * channel for main VSI's Tx and Rx rings 9037 */ 9038 list_for_each_entry(ch, &main_vsi->ch_list, list) { 9039 struct ice_vsi *ch_vsi; 9040 9041 ch_vsi = ch->ch_vsi; 9042 if (!ch_vsi) 9043 continue; 9044 9045 /* reconfig channel resources */ 9046 ice_cfg_chnl_all_res(main_vsi, ch); 9047 9048 /* replay BW rate limit if it is non-zero */ 9049 if (!ch->max_tx_rate && !ch->min_tx_rate) 9050 continue; 9051 9052 err = ice_set_bw_limit(ch_vsi, ch->max_tx_rate, 9053 ch->min_tx_rate); 9054 if (err) 9055 dev_err(dev, "failed (err:%d) to rebuild BW rate limit, max_tx_rate: %llu Kbps, min_tx_rate: %llu Kbps for VSI(%u)\n", 9056 err, ch->max_tx_rate, ch->min_tx_rate, 9057 ch_vsi->vsi_num); 9058 else 9059 dev_dbg(dev, "successfully rebuild BW rate limit, max_tx_rate: %llu Kbps, min_tx_rate: %llu Kbps for VSI(%u)\n", 9060 ch->max_tx_rate, ch->min_tx_rate, 9061 ch_vsi->vsi_num); 9062 } 9063 9064 /* reconfig RSS for main VSI */ 9065 if (main_vsi->ch_rss_size) 9066 ice_vsi_cfg_rss_lut_key(main_vsi); 9067 9068 return 0; 9069 9070 cleanup: 9071 ice_remove_q_channels(main_vsi, rem_adv_fltr); 9072 return err; 9073 } 9074 9075 /** 9076 * ice_create_q_channels - Add queue channel for the given TCs 9077 * @vsi: VSI to be configured 9078 * 9079 * Configures queue channel mapping to the given TCs 9080 */ 9081 static int ice_create_q_channels(struct ice_vsi *vsi) 9082 { 9083 struct ice_pf *pf = vsi->back; 9084 struct ice_channel *ch; 9085 int ret = 0, i; 9086 9087 ice_for_each_chnl_tc(i) { 9088 if (!(vsi->all_enatc & BIT(i))) 9089 continue; 9090 9091 ch = kzalloc_obj(*ch); 9092 if (!ch) { 9093 ret = -ENOMEM; 9094 goto err_free; 9095 } 9096 INIT_LIST_HEAD(&ch->list); 9097 ch->num_rxq = vsi->mqprio_qopt.qopt.count[i]; 9098 ch->num_txq = vsi->mqprio_qopt.qopt.count[i]; 9099 ch->base_q = vsi->mqprio_qopt.qopt.offset[i]; 9100 ch->max_tx_rate = vsi->mqprio_qopt.max_rate[i]; 9101 ch->min_tx_rate = vsi->mqprio_qopt.min_rate[i]; 9102 9103 /* convert to Kbits/s */ 9104 if (ch->max_tx_rate) 9105 ch->max_tx_rate = div_u64(ch->max_tx_rate, 9106 ICE_BW_KBPS_DIVISOR); 9107 if (ch->min_tx_rate) 9108 ch->min_tx_rate = div_u64(ch->min_tx_rate, 9109 ICE_BW_KBPS_DIVISOR); 9110 9111 ret = ice_create_q_channel(vsi, ch); 9112 if (ret) { 9113 dev_err(ice_pf_to_dev(pf), 9114 "failed creating channel TC:%d\n", i); 9115 kfree(ch); 9116 goto err_free; 9117 } 9118 list_add_tail(&ch->list, &vsi->ch_list); 9119 vsi->tc_map_vsi[i] = ch->ch_vsi; 9120 dev_dbg(ice_pf_to_dev(pf), 9121 "successfully created channel: VSI %p\n", ch->ch_vsi); 9122 } 9123 return 0; 9124 9125 err_free: 9126 ice_remove_q_channels(vsi, false); 9127 9128 return ret; 9129 } 9130 9131 /** 9132 * ice_setup_tc_mqprio_qdisc - configure multiple traffic classes 9133 * @netdev: net device to configure 9134 * @type_data: TC offload data 9135 */ 9136 static int ice_setup_tc_mqprio_qdisc(struct net_device *netdev, void *type_data) 9137 { 9138 struct tc_mqprio_qopt_offload *mqprio_qopt = type_data; 9139 struct ice_netdev_priv *np = netdev_priv(netdev); 9140 struct ice_vsi *vsi = np->vsi; 9141 struct ice_pf *pf = vsi->back; 9142 u16 mode, ena_tc_qdisc = 0; 9143 int cur_txq, cur_rxq; 9144 u8 hw = 0, num_tcf; 9145 struct device *dev; 9146 int ret, i; 9147 9148 dev = ice_pf_to_dev(pf); 9149 num_tcf = mqprio_qopt->qopt.num_tc; 9150 hw = mqprio_qopt->qopt.hw; 9151 mode = mqprio_qopt->mode; 9152 if (!hw) { 9153 clear_bit(ICE_FLAG_TC_MQPRIO, pf->flags); 9154 vsi->ch_rss_size = 0; 9155 memcpy(&vsi->mqprio_qopt, mqprio_qopt, sizeof(*mqprio_qopt)); 9156 goto config_tcf; 9157 } 9158 9159 /* Generate queue region map for number of TCF requested */ 9160 for (i = 0; i < num_tcf; i++) 9161 ena_tc_qdisc |= BIT(i); 9162 9163 switch (mode) { 9164 case TC_MQPRIO_MODE_CHANNEL: 9165 9166 if (pf->hw.port_info->is_custom_tx_enabled) { 9167 dev_err(dev, "Custom Tx scheduler feature enabled, can't configure ADQ\n"); 9168 return -EBUSY; 9169 } 9170 ice_tear_down_devlink_rate_tree(pf); 9171 9172 ret = ice_validate_mqprio_qopt(vsi, mqprio_qopt); 9173 if (ret) { 9174 netdev_err(netdev, "failed to validate_mqprio_qopt(), ret %d\n", 9175 ret); 9176 return ret; 9177 } 9178 memcpy(&vsi->mqprio_qopt, mqprio_qopt, sizeof(*mqprio_qopt)); 9179 set_bit(ICE_FLAG_TC_MQPRIO, pf->flags); 9180 /* don't assume state of hw_tc_offload during driver load 9181 * and set the flag for TC flower filter if hw_tc_offload 9182 * already ON 9183 */ 9184 if (vsi->netdev->features & NETIF_F_HW_TC) 9185 set_bit(ICE_FLAG_CLS_FLOWER, pf->flags); 9186 break; 9187 default: 9188 return -EINVAL; 9189 } 9190 9191 config_tcf: 9192 9193 /* Requesting same TCF configuration as already enabled */ 9194 if (ena_tc_qdisc == vsi->tc_cfg.ena_tc && 9195 mode != TC_MQPRIO_MODE_CHANNEL) 9196 return 0; 9197 9198 /* Pause VSI queues */ 9199 ice_dis_vsi(vsi, true); 9200 9201 if (!hw && !test_bit(ICE_FLAG_TC_MQPRIO, pf->flags)) 9202 ice_remove_q_channels(vsi, true); 9203 9204 if (!hw && !test_bit(ICE_FLAG_TC_MQPRIO, pf->flags)) { 9205 vsi->req_txq = min_t(int, ice_get_avail_txq_count(pf), 9206 num_online_cpus()); 9207 vsi->req_rxq = min_t(int, ice_get_avail_rxq_count(pf), 9208 num_online_cpus()); 9209 } else { 9210 /* logic to rebuild VSI, same like ethtool -L */ 9211 u16 offset = 0, qcount_tx = 0, qcount_rx = 0; 9212 9213 for (i = 0; i < num_tcf; i++) { 9214 if (!(ena_tc_qdisc & BIT(i))) 9215 continue; 9216 9217 offset = vsi->mqprio_qopt.qopt.offset[i]; 9218 qcount_rx = vsi->mqprio_qopt.qopt.count[i]; 9219 qcount_tx = vsi->mqprio_qopt.qopt.count[i]; 9220 } 9221 vsi->req_txq = offset + qcount_tx; 9222 vsi->req_rxq = offset + qcount_rx; 9223 9224 /* store away original rss_size info, so that it gets reused 9225 * form ice_vsi_rebuild during tc-qdisc delete stage - to 9226 * determine, what should be the rss_sizefor main VSI 9227 */ 9228 vsi->orig_rss_size = vsi->rss_size; 9229 } 9230 9231 /* save current values of Tx and Rx queues before calling VSI rebuild 9232 * for fallback option 9233 */ 9234 cur_txq = vsi->num_txq; 9235 cur_rxq = vsi->num_rxq; 9236 9237 /* proceed with rebuild main VSI using correct number of queues */ 9238 ret = ice_vsi_rebuild(vsi, ICE_VSI_FLAG_NO_INIT); 9239 if (ret) { 9240 /* fallback to current number of queues */ 9241 dev_info(dev, "Rebuild failed with new queues, try with current number of queues\n"); 9242 vsi->req_txq = cur_txq; 9243 vsi->req_rxq = cur_rxq; 9244 clear_bit(ICE_RESET_FAILED, pf->state); 9245 if (ice_vsi_rebuild(vsi, ICE_VSI_FLAG_NO_INIT)) { 9246 dev_err(dev, "Rebuild of main VSI failed again\n"); 9247 return ret; 9248 } 9249 } 9250 9251 vsi->all_numtc = num_tcf; 9252 vsi->all_enatc = ena_tc_qdisc; 9253 ret = ice_vsi_cfg_tc(vsi, ena_tc_qdisc); 9254 if (ret) { 9255 netdev_err(netdev, "failed configuring TC for VSI id=%d\n", 9256 vsi->vsi_num); 9257 goto exit; 9258 } 9259 9260 if (test_bit(ICE_FLAG_TC_MQPRIO, pf->flags)) { 9261 u64 max_tx_rate = vsi->mqprio_qopt.max_rate[0]; 9262 u64 min_tx_rate = vsi->mqprio_qopt.min_rate[0]; 9263 9264 /* set TC0 rate limit if specified */ 9265 if (max_tx_rate || min_tx_rate) { 9266 /* convert to Kbits/s */ 9267 if (max_tx_rate) 9268 max_tx_rate = div_u64(max_tx_rate, ICE_BW_KBPS_DIVISOR); 9269 if (min_tx_rate) 9270 min_tx_rate = div_u64(min_tx_rate, ICE_BW_KBPS_DIVISOR); 9271 9272 ret = ice_set_bw_limit(vsi, max_tx_rate, min_tx_rate); 9273 if (!ret) { 9274 dev_dbg(dev, "set Tx rate max %llu min %llu for VSI(%u)\n", 9275 max_tx_rate, min_tx_rate, vsi->vsi_num); 9276 } else { 9277 dev_err(dev, "failed to set Tx rate max %llu min %llu for VSI(%u)\n", 9278 max_tx_rate, min_tx_rate, vsi->vsi_num); 9279 goto exit; 9280 } 9281 } 9282 ret = ice_create_q_channels(vsi); 9283 if (ret) { 9284 netdev_err(netdev, "failed configuring queue channels\n"); 9285 goto exit; 9286 } else { 9287 netdev_dbg(netdev, "successfully configured channels\n"); 9288 } 9289 } 9290 9291 if (vsi->ch_rss_size) 9292 ice_vsi_cfg_rss_lut_key(vsi); 9293 9294 exit: 9295 /* if error, reset the all_numtc and all_enatc */ 9296 if (ret) { 9297 vsi->all_numtc = 0; 9298 vsi->all_enatc = 0; 9299 } 9300 /* resume VSI */ 9301 ice_ena_vsi(vsi, true); 9302 9303 return ret; 9304 } 9305 9306 /** 9307 * ice_cfg_txtime - configure Tx Time for the Tx ring 9308 * @tx_ring: pointer to the Tx ring structure 9309 * 9310 * Return: 0 on success, negative value on failure. 9311 */ 9312 static int ice_cfg_txtime(struct ice_tx_ring *tx_ring) 9313 { 9314 int err, timeout = 50; 9315 struct ice_vsi *vsi; 9316 struct device *dev; 9317 struct ice_pf *pf; 9318 u32 queue; 9319 9320 if (!tx_ring) 9321 return -EINVAL; 9322 9323 vsi = tx_ring->vsi; 9324 pf = vsi->back; 9325 while (test_and_set_bit(ICE_CFG_BUSY, pf->state)) { 9326 timeout--; 9327 if (!timeout) 9328 return -EBUSY; 9329 usleep_range(1000, 2000); 9330 } 9331 9332 queue = tx_ring->q_index; 9333 dev = ice_pf_to_dev(pf); 9334 9335 /* Ignore return value, and always attempt to enable queue. */ 9336 ice_qp_dis(vsi, queue); 9337 9338 err = ice_qp_ena(vsi, queue); 9339 if (err) 9340 dev_err(dev, "Failed to enable Tx queue %d for TxTime configuration\n", 9341 queue); 9342 9343 clear_bit(ICE_CFG_BUSY, pf->state); 9344 return err; 9345 } 9346 9347 /** 9348 * ice_offload_txtime - set earliest TxTime first 9349 * @netdev: network interface device structure 9350 * @qopt_off: etf queue option offload from the skb to set 9351 * 9352 * Return: 0 on success, negative value on failure. 9353 */ 9354 static int ice_offload_txtime(struct net_device *netdev, 9355 void *qopt_off) 9356 { 9357 struct ice_netdev_priv *np = netdev_priv(netdev); 9358 struct ice_pf *pf = np->vsi->back; 9359 struct tc_etf_qopt_offload *qopt; 9360 struct ice_vsi *vsi = np->vsi; 9361 struct ice_tx_ring *tx_ring; 9362 int ret = 0; 9363 9364 if (!ice_is_feature_supported(pf, ICE_F_TXTIME)) 9365 return -EOPNOTSUPP; 9366 9367 qopt = qopt_off; 9368 if (!qopt_off || qopt->queue < 0 || qopt->queue >= vsi->num_txq) 9369 return -EINVAL; 9370 9371 if (qopt->enable) 9372 set_bit(qopt->queue, pf->txtime_txqs); 9373 else 9374 clear_bit(qopt->queue, pf->txtime_txqs); 9375 9376 if (netif_running(vsi->netdev)) { 9377 tx_ring = vsi->tx_rings[qopt->queue]; 9378 ret = ice_cfg_txtime(tx_ring); 9379 if (ret) 9380 goto err; 9381 } 9382 9383 netdev_info(netdev, "%s TxTime on queue: %i\n", 9384 str_enable_disable(qopt->enable), qopt->queue); 9385 return 0; 9386 9387 err: 9388 netdev_err(netdev, "Failed to %s TxTime on queue: %i\n", 9389 str_enable_disable(qopt->enable), qopt->queue); 9390 9391 if (qopt->enable) 9392 clear_bit(qopt->queue, pf->txtime_txqs); 9393 return ret; 9394 } 9395 9396 static LIST_HEAD(ice_block_cb_list); 9397 9398 static int 9399 ice_setup_tc(struct net_device *netdev, enum tc_setup_type type, 9400 void *type_data) 9401 { 9402 struct ice_netdev_priv *np = netdev_priv(netdev); 9403 enum flow_block_binder_type binder_type; 9404 struct iidc_rdma_core_dev_info *cdev; 9405 struct ice_pf *pf = np->vsi->back; 9406 flow_setup_cb_t *flower_handler; 9407 bool locked = false; 9408 int err; 9409 9410 switch (type) { 9411 case TC_SETUP_BLOCK: 9412 binder_type = 9413 ((struct flow_block_offload *)type_data)->binder_type; 9414 9415 switch (binder_type) { 9416 case FLOW_BLOCK_BINDER_TYPE_CLSACT_INGRESS: 9417 flower_handler = ice_setup_tc_block_cb_ingress; 9418 break; 9419 case FLOW_BLOCK_BINDER_TYPE_CLSACT_EGRESS: 9420 flower_handler = ice_setup_tc_block_cb_egress; 9421 break; 9422 default: 9423 return -EOPNOTSUPP; 9424 } 9425 9426 return flow_block_cb_setup_simple(type_data, 9427 &ice_block_cb_list, 9428 flower_handler, 9429 np, np, false); 9430 case TC_SETUP_QDISC_MQPRIO: 9431 if (ice_is_eswitch_mode_switchdev(pf)) { 9432 netdev_err(netdev, "TC MQPRIO offload not supported, switchdev is enabled\n"); 9433 return -EOPNOTSUPP; 9434 } 9435 9436 cdev = pf->cdev_info; 9437 if (cdev && cdev->adev) { 9438 mutex_lock(&pf->adev_mutex); 9439 device_lock(&cdev->adev->dev); 9440 locked = true; 9441 if (cdev->adev->dev.driver) { 9442 netdev_err(netdev, "Cannot change qdisc when RDMA is active\n"); 9443 err = -EBUSY; 9444 goto adev_unlock; 9445 } 9446 } 9447 9448 /* setup traffic classifier for receive side */ 9449 mutex_lock(&pf->tc_mutex); 9450 err = ice_setup_tc_mqprio_qdisc(netdev, type_data); 9451 mutex_unlock(&pf->tc_mutex); 9452 9453 adev_unlock: 9454 if (locked) { 9455 device_unlock(&cdev->adev->dev); 9456 mutex_unlock(&pf->adev_mutex); 9457 } 9458 return err; 9459 case TC_SETUP_QDISC_ETF: 9460 return ice_offload_txtime(netdev, type_data); 9461 default: 9462 return -EOPNOTSUPP; 9463 } 9464 return -EOPNOTSUPP; 9465 } 9466 9467 static struct ice_indr_block_priv * 9468 ice_indr_block_priv_lookup(struct ice_netdev_priv *np, 9469 struct net_device *netdev) 9470 { 9471 struct ice_indr_block_priv *cb_priv; 9472 9473 list_for_each_entry(cb_priv, &np->tc_indr_block_priv_list, list) { 9474 if (!cb_priv->netdev) 9475 return NULL; 9476 if (cb_priv->netdev == netdev) 9477 return cb_priv; 9478 } 9479 return NULL; 9480 } 9481 9482 static int 9483 ice_indr_setup_block_cb(enum tc_setup_type type, void *type_data, 9484 void *indr_priv) 9485 { 9486 struct ice_indr_block_priv *priv = indr_priv; 9487 struct ice_netdev_priv *np = priv->np; 9488 9489 switch (type) { 9490 case TC_SETUP_CLSFLOWER: 9491 return ice_setup_tc_cls_flower(np, priv->netdev, 9492 (struct flow_cls_offload *) 9493 type_data, false); 9494 default: 9495 return -EOPNOTSUPP; 9496 } 9497 } 9498 9499 static int 9500 ice_indr_setup_tc_block(struct net_device *netdev, struct Qdisc *sch, 9501 struct ice_netdev_priv *np, 9502 struct flow_block_offload *f, void *data, 9503 void (*cleanup)(struct flow_block_cb *block_cb)) 9504 { 9505 struct ice_indr_block_priv *indr_priv; 9506 struct flow_block_cb *block_cb; 9507 9508 if (!ice_is_tunnel_supported(netdev) && 9509 !(is_vlan_dev(netdev) && 9510 vlan_dev_real_dev(netdev) == np->vsi->netdev)) 9511 return -EOPNOTSUPP; 9512 9513 if (f->binder_type != FLOW_BLOCK_BINDER_TYPE_CLSACT_INGRESS) 9514 return -EOPNOTSUPP; 9515 9516 switch (f->command) { 9517 case FLOW_BLOCK_BIND: 9518 indr_priv = ice_indr_block_priv_lookup(np, netdev); 9519 if (indr_priv) 9520 return -EEXIST; 9521 9522 indr_priv = kzalloc_obj(*indr_priv); 9523 if (!indr_priv) 9524 return -ENOMEM; 9525 9526 indr_priv->netdev = netdev; 9527 indr_priv->np = np; 9528 list_add(&indr_priv->list, &np->tc_indr_block_priv_list); 9529 9530 block_cb = 9531 flow_indr_block_cb_alloc(ice_indr_setup_block_cb, 9532 indr_priv, indr_priv, 9533 ice_rep_indr_tc_block_unbind, 9534 f, netdev, sch, data, np, 9535 cleanup); 9536 9537 if (IS_ERR(block_cb)) { 9538 list_del(&indr_priv->list); 9539 kfree(indr_priv); 9540 return PTR_ERR(block_cb); 9541 } 9542 flow_block_cb_add(block_cb, f); 9543 list_add_tail(&block_cb->driver_list, &ice_block_cb_list); 9544 break; 9545 case FLOW_BLOCK_UNBIND: 9546 indr_priv = ice_indr_block_priv_lookup(np, netdev); 9547 if (!indr_priv) 9548 return -ENOENT; 9549 9550 block_cb = flow_block_cb_lookup(f->block, 9551 ice_indr_setup_block_cb, 9552 indr_priv); 9553 if (!block_cb) 9554 return -ENOENT; 9555 9556 flow_indr_block_cb_remove(block_cb, f); 9557 9558 list_del(&block_cb->driver_list); 9559 break; 9560 default: 9561 return -EOPNOTSUPP; 9562 } 9563 return 0; 9564 } 9565 9566 static int 9567 ice_indr_setup_tc_cb(struct net_device *netdev, struct Qdisc *sch, 9568 void *cb_priv, enum tc_setup_type type, void *type_data, 9569 void *data, 9570 void (*cleanup)(struct flow_block_cb *block_cb)) 9571 { 9572 switch (type) { 9573 case TC_SETUP_BLOCK: 9574 return ice_indr_setup_tc_block(netdev, sch, cb_priv, type_data, 9575 data, cleanup); 9576 9577 default: 9578 return -EOPNOTSUPP; 9579 } 9580 } 9581 9582 /** 9583 * ice_open - Called when a network interface becomes active 9584 * @netdev: network interface device structure 9585 * 9586 * The open entry point is called when a network interface is made 9587 * active by the system (IFF_UP). At this point all resources needed 9588 * for transmit and receive operations are allocated, the interrupt 9589 * handler is registered with the OS, the netdev watchdog is enabled, 9590 * and the stack is notified that the interface is ready. 9591 * 9592 * Returns 0 on success, negative value on failure 9593 */ 9594 int ice_open(struct net_device *netdev) 9595 { 9596 struct ice_pf *pf = ice_netdev_to_pf(netdev); 9597 9598 if (ice_is_reset_in_progress(pf->state)) { 9599 netdev_err(netdev, "can't open net device while reset is in progress"); 9600 return -EBUSY; 9601 } 9602 9603 return ice_open_internal(netdev); 9604 } 9605 9606 /** 9607 * ice_open_internal - Called when a network interface becomes active 9608 * @netdev: network interface device structure 9609 * 9610 * Internal ice_open implementation. Should not be used directly except for ice_open and reset 9611 * handling routine 9612 * 9613 * Returns 0 on success, negative value on failure 9614 */ 9615 int ice_open_internal(struct net_device *netdev) 9616 { 9617 struct ice_netdev_priv *np = netdev_priv(netdev); 9618 struct ice_vsi *vsi = np->vsi; 9619 struct ice_pf *pf = vsi->back; 9620 struct ice_port_info *pi; 9621 int err; 9622 9623 if (test_bit(ICE_NEEDS_RESTART, pf->state)) { 9624 netdev_err(netdev, "driver needs to be unloaded and reloaded\n"); 9625 return -EIO; 9626 } 9627 9628 netif_carrier_off(netdev); 9629 9630 pi = vsi->port_info; 9631 err = ice_update_link_info(pi); 9632 if (err) { 9633 netdev_err(netdev, "Failed to get link info, error %d\n", err); 9634 return err; 9635 } 9636 9637 ice_check_link_cfg_err(pf, pi->phy.link_info.link_cfg_err); 9638 9639 /* Set PHY if there is media, otherwise, turn off PHY */ 9640 if (pi->phy.link_info.link_info & ICE_AQ_MEDIA_AVAILABLE) { 9641 clear_bit(ICE_FLAG_NO_MEDIA, pf->flags); 9642 if (!test_bit(ICE_PHY_INIT_COMPLETE, pf->state)) { 9643 err = ice_init_phy_user_cfg(pi); 9644 if (err) { 9645 netdev_err(netdev, "Failed to initialize PHY settings, error %d\n", 9646 err); 9647 return err; 9648 } 9649 } 9650 9651 err = ice_phy_cfg(vsi, true); 9652 if (err) { 9653 netdev_err(netdev, "Failed to set physical link up, error %d\n", 9654 err); 9655 return err; 9656 } 9657 } else { 9658 set_bit(ICE_FLAG_NO_MEDIA, pf->flags); 9659 ice_set_link(vsi, false); 9660 } 9661 9662 err = ice_vsi_open(vsi); 9663 if (err) 9664 netdev_err(netdev, "Failed to open VSI 0x%04X on switch 0x%04X\n", 9665 vsi->vsi_num, vsi->vsw->sw_id); 9666 9667 return err; 9668 } 9669 9670 /** 9671 * ice_stop - Disables a network interface 9672 * @netdev: network interface device structure 9673 * 9674 * The stop entry point is called when an interface is de-activated by the OS, 9675 * and the netdevice enters the DOWN state. The hardware is still under the 9676 * driver's control, but the netdev interface is disabled. 9677 * 9678 * Returns success only - not allowed to fail 9679 */ 9680 int ice_stop(struct net_device *netdev) 9681 { 9682 struct ice_netdev_priv *np = netdev_priv(netdev); 9683 struct ice_vsi *vsi = np->vsi; 9684 struct ice_pf *pf = vsi->back; 9685 9686 if (ice_is_reset_in_progress(pf->state)) { 9687 netdev_err(netdev, "can't stop net device while reset is in progress"); 9688 return -EBUSY; 9689 } 9690 9691 if (test_bit(ICE_FLAG_LINK_DOWN_ON_CLOSE_ENA, vsi->back->flags)) { 9692 int link_err = ice_phy_cfg(vsi, false); 9693 9694 if (link_err) { 9695 if (link_err == -ENOMEDIUM) 9696 netdev_info(vsi->netdev, "Skipping link reconfig - no media attached, VSI %d\n", 9697 vsi->vsi_num); 9698 else 9699 netdev_err(vsi->netdev, "Failed to set physical link down, VSI %d error %d\n", 9700 vsi->vsi_num, link_err); 9701 9702 ice_vsi_close(vsi); 9703 return -EIO; 9704 } 9705 } 9706 9707 ice_vsi_close(vsi); 9708 9709 return 0; 9710 } 9711 9712 /** 9713 * ice_features_check - Validate encapsulated packet conforms to limits 9714 * @skb: skb buffer 9715 * @netdev: This port's netdev 9716 * @features: Offload features that the stack believes apply 9717 */ 9718 static netdev_features_t 9719 ice_features_check(struct sk_buff *skb, 9720 struct net_device __always_unused *netdev, 9721 netdev_features_t features) 9722 { 9723 bool gso = skb_is_gso(skb); 9724 size_t len; 9725 9726 /* No point in doing any of this if neither checksum nor GSO are 9727 * being requested for this frame. We can rule out both by just 9728 * checking for CHECKSUM_PARTIAL 9729 */ 9730 if (skb->ip_summed != CHECKSUM_PARTIAL) 9731 return features; 9732 9733 /* We cannot support GSO if the MSS is going to be less than 9734 * 64 bytes. If it is then we need to drop support for GSO. 9735 */ 9736 if (gso && (skb_shinfo(skb)->gso_size < ICE_TXD_CTX_MIN_MSS)) 9737 features &= ~NETIF_F_GSO_MASK; 9738 9739 len = skb_network_offset(skb); 9740 if (len > ICE_TXD_MACLEN_MAX || len & 0x1) 9741 goto out_rm_features; 9742 9743 len = skb_network_header_len(skb); 9744 if (len > ICE_TXD_IPLEN_MAX || len & 0x1) 9745 goto out_rm_features; 9746 9747 if (skb->encapsulation) { 9748 /* this must work for VXLAN frames AND IPIP/SIT frames, and in 9749 * the case of IPIP frames, the transport header pointer is 9750 * after the inner header! So check to make sure that this 9751 * is a GRE or UDP_TUNNEL frame before doing that math. 9752 */ 9753 if (gso && (skb_shinfo(skb)->gso_type & 9754 (SKB_GSO_GRE | SKB_GSO_UDP_TUNNEL))) { 9755 len = skb_inner_network_header(skb) - 9756 skb_transport_header(skb); 9757 if (len > ICE_TXD_L4LEN_MAX || len & 0x1) 9758 goto out_rm_features; 9759 } 9760 9761 len = skb_inner_network_header_len(skb); 9762 if (len > ICE_TXD_IPLEN_MAX || len & 0x1) 9763 goto out_rm_features; 9764 } 9765 9766 return features; 9767 out_rm_features: 9768 return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK); 9769 } 9770 9771 static const struct net_device_ops ice_netdev_safe_mode_ops = { 9772 .ndo_open = ice_open, 9773 .ndo_stop = ice_stop, 9774 .ndo_start_xmit = ice_start_xmit, 9775 .ndo_set_mac_address = ice_set_mac_address, 9776 .ndo_validate_addr = eth_validate_addr, 9777 .ndo_change_mtu = ice_change_mtu, 9778 .ndo_get_stats64 = ice_get_stats64, 9779 .ndo_tx_timeout = ice_tx_timeout, 9780 .ndo_bpf = ice_xdp_safe_mode, 9781 }; 9782 9783 static const struct net_device_ops ice_netdev_ops = { 9784 .ndo_open = ice_open, 9785 .ndo_stop = ice_stop, 9786 .ndo_start_xmit = ice_start_xmit, 9787 .ndo_select_queue = ice_select_queue, 9788 .ndo_features_check = ice_features_check, 9789 .ndo_fix_features = ice_fix_features, 9790 .ndo_set_rx_mode = ice_set_rx_mode, 9791 .ndo_set_mac_address = ice_set_mac_address, 9792 .ndo_validate_addr = eth_validate_addr, 9793 .ndo_change_mtu = ice_change_mtu, 9794 .ndo_get_stats64 = ice_get_stats64, 9795 .ndo_set_tx_maxrate = ice_set_tx_maxrate, 9796 .ndo_set_vf_spoofchk = ice_set_vf_spoofchk, 9797 .ndo_set_vf_mac = ice_set_vf_mac, 9798 .ndo_get_vf_config = ice_get_vf_cfg, 9799 .ndo_set_vf_trust = ice_set_vf_trust, 9800 .ndo_set_vf_vlan = ice_set_vf_port_vlan, 9801 .ndo_set_vf_link_state = ice_set_vf_link_state, 9802 .ndo_get_vf_stats = ice_get_vf_stats, 9803 .ndo_set_vf_rate = ice_set_vf_bw, 9804 .ndo_vlan_rx_add_vid = ice_vlan_rx_add_vid, 9805 .ndo_vlan_rx_kill_vid = ice_vlan_rx_kill_vid, 9806 .ndo_setup_tc = ice_setup_tc, 9807 .ndo_set_features = ice_set_features, 9808 .ndo_bridge_getlink = ice_bridge_getlink, 9809 .ndo_bridge_setlink = ice_bridge_setlink, 9810 .ndo_fdb_add = ice_fdb_add, 9811 .ndo_fdb_del = ice_fdb_del, 9812 #ifdef CONFIG_RFS_ACCEL 9813 .ndo_rx_flow_steer = ice_rx_flow_steer, 9814 #endif 9815 .ndo_tx_timeout = ice_tx_timeout, 9816 .ndo_bpf = ice_xdp, 9817 .ndo_xdp_xmit = ice_xdp_xmit, 9818 .ndo_xsk_wakeup = ice_xsk_wakeup, 9819 .ndo_hwtstamp_get = ice_ptp_hwtstamp_get, 9820 .ndo_hwtstamp_set = ice_ptp_hwtstamp_set, 9821 }; 9822