1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * DPAA2 Ethernet Switch driver 4 * 5 * Copyright 2014-2016 Freescale Semiconductor Inc. 6 * Copyright 2017-2021 NXP 7 * 8 */ 9 10 #include <linux/module.h> 11 12 #include <linux/interrupt.h> 13 #include <linux/kthread.h> 14 #include <linux/workqueue.h> 15 #include <linux/iommu.h> 16 #include <net/pkt_cls.h> 17 18 #include <linux/fsl/mc.h> 19 20 #include "dpaa2-switch.h" 21 22 /* Minimal supported DPSW version */ 23 #define DPSW_MIN_VER_MAJOR 8 24 #define DPSW_MIN_VER_MINOR 9 25 26 #define DEFAULT_VLAN_ID 1 27 28 static u16 dpaa2_switch_port_get_fdb_id(struct ethsw_port_priv *port_priv) 29 { 30 return port_priv->fdb->fdb_id; 31 } 32 33 static struct dpaa2_switch_fdb *dpaa2_switch_fdb_get_unused(struct ethsw_core *ethsw) 34 { 35 int i; 36 37 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) 38 if (!ethsw->fdbs[i].in_use) 39 return ðsw->fdbs[i]; 40 return NULL; 41 } 42 43 static struct dpaa2_switch_filter_block * 44 dpaa2_switch_filter_block_get_unused(struct ethsw_core *ethsw) 45 { 46 int i; 47 48 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) 49 if (!ethsw->filter_blocks[i].in_use) 50 return ðsw->filter_blocks[i]; 51 return NULL; 52 } 53 54 static u16 dpaa2_switch_port_set_fdb(struct ethsw_port_priv *port_priv, 55 struct net_device *bridge_dev) 56 { 57 struct ethsw_port_priv *other_port_priv = NULL; 58 struct dpaa2_switch_fdb *fdb; 59 struct net_device *other_dev; 60 struct list_head *iter; 61 62 /* If we leave a bridge (bridge_dev is NULL), find an unused 63 * FDB and use that. 64 */ 65 if (!bridge_dev) { 66 fdb = dpaa2_switch_fdb_get_unused(port_priv->ethsw_data); 67 68 /* If there is no unused FDB, we must be the last port that 69 * leaves the last bridge, all the others are standalone. We 70 * can just keep the FDB that we already have. 71 */ 72 73 if (!fdb) { 74 port_priv->fdb->bridge_dev = NULL; 75 return 0; 76 } 77 78 port_priv->fdb = fdb; 79 port_priv->fdb->in_use = true; 80 port_priv->fdb->bridge_dev = NULL; 81 return 0; 82 } 83 84 /* The below call to netdev_for_each_lower_dev() demands the RTNL lock 85 * being held. Assert on it so that it's easier to catch new code 86 * paths that reach this point without the RTNL lock. 87 */ 88 ASSERT_RTNL(); 89 90 /* If part of a bridge, use the FDB of the first dpaa2 switch interface 91 * to be present in that bridge 92 */ 93 netdev_for_each_lower_dev(bridge_dev, other_dev, iter) { 94 if (!dpaa2_switch_port_dev_check(other_dev)) 95 continue; 96 97 if (other_dev == port_priv->netdev) 98 continue; 99 100 other_port_priv = netdev_priv(other_dev); 101 break; 102 } 103 104 /* The current port is about to change its FDB to the one used by the 105 * first port that joined the bridge. 106 */ 107 if (other_port_priv) { 108 /* The previous FDB is about to become unused, since the 109 * interface is no longer standalone. 110 */ 111 port_priv->fdb->in_use = false; 112 port_priv->fdb->bridge_dev = NULL; 113 114 /* Get a reference to the new FDB */ 115 port_priv->fdb = other_port_priv->fdb; 116 } 117 118 /* Keep track of the new upper bridge device */ 119 port_priv->fdb->bridge_dev = bridge_dev; 120 121 return 0; 122 } 123 124 static void dpaa2_switch_fdb_get_flood_cfg(struct ethsw_core *ethsw, u16 fdb_id, 125 enum dpsw_flood_type type, 126 struct dpsw_egress_flood_cfg *cfg) 127 { 128 int i = 0, j; 129 130 memset(cfg, 0, sizeof(*cfg)); 131 132 /* Add all the DPAA2 switch ports found in the same bridging domain to 133 * the egress flooding domain 134 */ 135 for (j = 0; j < ethsw->sw_attr.num_ifs; j++) { 136 if (!ethsw->ports[j]) 137 continue; 138 if (ethsw->ports[j]->fdb->fdb_id != fdb_id) 139 continue; 140 141 if (type == DPSW_BROADCAST && ethsw->ports[j]->bcast_flood) 142 cfg->if_id[i++] = ethsw->ports[j]->idx; 143 else if (type == DPSW_FLOODING && ethsw->ports[j]->ucast_flood) 144 cfg->if_id[i++] = ethsw->ports[j]->idx; 145 } 146 147 /* Add the CTRL interface to the egress flooding domain */ 148 cfg->if_id[i++] = ethsw->sw_attr.num_ifs; 149 150 cfg->fdb_id = fdb_id; 151 cfg->flood_type = type; 152 cfg->num_ifs = i; 153 } 154 155 static int dpaa2_switch_fdb_set_egress_flood(struct ethsw_core *ethsw, u16 fdb_id) 156 { 157 struct dpsw_egress_flood_cfg flood_cfg; 158 int err; 159 160 /* Setup broadcast flooding domain */ 161 dpaa2_switch_fdb_get_flood_cfg(ethsw, fdb_id, DPSW_BROADCAST, &flood_cfg); 162 err = dpsw_set_egress_flood(ethsw->mc_io, 0, ethsw->dpsw_handle, 163 &flood_cfg); 164 if (err) { 165 dev_err(ethsw->dev, "dpsw_set_egress_flood() = %d\n", err); 166 return err; 167 } 168 169 /* Setup unknown flooding domain */ 170 dpaa2_switch_fdb_get_flood_cfg(ethsw, fdb_id, DPSW_FLOODING, &flood_cfg); 171 err = dpsw_set_egress_flood(ethsw->mc_io, 0, ethsw->dpsw_handle, 172 &flood_cfg); 173 if (err) { 174 dev_err(ethsw->dev, "dpsw_set_egress_flood() = %d\n", err); 175 return err; 176 } 177 178 return 0; 179 } 180 181 static void *dpaa2_iova_to_virt(struct iommu_domain *domain, 182 dma_addr_t iova_addr) 183 { 184 phys_addr_t phys_addr; 185 186 phys_addr = domain ? iommu_iova_to_phys(domain, iova_addr) : iova_addr; 187 188 return phys_to_virt(phys_addr); 189 } 190 191 static int dpaa2_switch_add_vlan(struct ethsw_port_priv *port_priv, u16 vid) 192 { 193 struct ethsw_core *ethsw = port_priv->ethsw_data; 194 struct dpsw_vlan_cfg vcfg = {0}; 195 int err; 196 197 vcfg.fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 198 err = dpsw_vlan_add(ethsw->mc_io, 0, 199 ethsw->dpsw_handle, vid, &vcfg); 200 if (err) { 201 dev_err(ethsw->dev, "dpsw_vlan_add err %d\n", err); 202 return err; 203 } 204 ethsw->vlans[vid] = ETHSW_VLAN_MEMBER; 205 206 return 0; 207 } 208 209 static bool dpaa2_switch_port_is_up(struct ethsw_port_priv *port_priv) 210 { 211 struct net_device *netdev = port_priv->netdev; 212 struct dpsw_link_state state; 213 int err; 214 215 err = dpsw_if_get_link_state(port_priv->ethsw_data->mc_io, 0, 216 port_priv->ethsw_data->dpsw_handle, 217 port_priv->idx, &state); 218 if (err) { 219 netdev_err(netdev, "dpsw_if_get_link_state() err %d\n", err); 220 return true; 221 } 222 223 WARN_ONCE(state.up > 1, "Garbage read into link_state"); 224 225 return state.up ? true : false; 226 } 227 228 static int dpaa2_switch_port_set_pvid(struct ethsw_port_priv *port_priv, u16 pvid) 229 { 230 struct ethsw_core *ethsw = port_priv->ethsw_data; 231 struct net_device *netdev = port_priv->netdev; 232 struct dpsw_tci_cfg tci_cfg = { 0 }; 233 bool up; 234 int err, ret; 235 236 err = dpsw_if_get_tci(ethsw->mc_io, 0, ethsw->dpsw_handle, 237 port_priv->idx, &tci_cfg); 238 if (err) { 239 netdev_err(netdev, "dpsw_if_get_tci err %d\n", err); 240 return err; 241 } 242 243 tci_cfg.vlan_id = pvid; 244 245 /* Interface needs to be down to change PVID */ 246 up = dpaa2_switch_port_is_up(port_priv); 247 if (up) { 248 err = dpsw_if_disable(ethsw->mc_io, 0, 249 ethsw->dpsw_handle, 250 port_priv->idx); 251 if (err) { 252 netdev_err(netdev, "dpsw_if_disable err %d\n", err); 253 return err; 254 } 255 } 256 257 err = dpsw_if_set_tci(ethsw->mc_io, 0, ethsw->dpsw_handle, 258 port_priv->idx, &tci_cfg); 259 if (err) { 260 netdev_err(netdev, "dpsw_if_set_tci err %d\n", err); 261 goto set_tci_error; 262 } 263 264 /* Delete previous PVID info and mark the new one */ 265 port_priv->vlans[port_priv->pvid] &= ~ETHSW_VLAN_PVID; 266 port_priv->vlans[pvid] |= ETHSW_VLAN_PVID; 267 port_priv->pvid = pvid; 268 269 set_tci_error: 270 if (up) { 271 ret = dpsw_if_enable(ethsw->mc_io, 0, 272 ethsw->dpsw_handle, 273 port_priv->idx); 274 if (ret) { 275 netdev_err(netdev, "dpsw_if_enable err %d\n", ret); 276 return ret; 277 } 278 } 279 280 return err; 281 } 282 283 static int dpaa2_switch_port_add_vlan(struct ethsw_port_priv *port_priv, 284 u16 vid, u16 flags) 285 { 286 struct ethsw_core *ethsw = port_priv->ethsw_data; 287 struct net_device *netdev = port_priv->netdev; 288 struct dpsw_vlan_if_cfg vcfg = {0}; 289 int err; 290 291 if (port_priv->vlans[vid]) { 292 netdev_err(netdev, "VLAN %d already configured\n", vid); 293 return -EEXIST; 294 } 295 296 /* If hit, this VLAN rule will lead the packet into the FDB table 297 * specified in the vlan configuration below 298 */ 299 vcfg.num_ifs = 1; 300 vcfg.if_id[0] = port_priv->idx; 301 vcfg.fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 302 vcfg.options |= DPSW_VLAN_ADD_IF_OPT_FDB_ID; 303 err = dpsw_vlan_add_if(ethsw->mc_io, 0, ethsw->dpsw_handle, vid, &vcfg); 304 if (err) { 305 netdev_err(netdev, "dpsw_vlan_add_if err %d\n", err); 306 return err; 307 } 308 309 port_priv->vlans[vid] = ETHSW_VLAN_MEMBER; 310 311 if (flags & BRIDGE_VLAN_INFO_UNTAGGED) { 312 err = dpsw_vlan_add_if_untagged(ethsw->mc_io, 0, 313 ethsw->dpsw_handle, 314 vid, &vcfg); 315 if (err) { 316 netdev_err(netdev, 317 "dpsw_vlan_add_if_untagged err %d\n", err); 318 return err; 319 } 320 port_priv->vlans[vid] |= ETHSW_VLAN_UNTAGGED; 321 } 322 323 if (flags & BRIDGE_VLAN_INFO_PVID) { 324 err = dpaa2_switch_port_set_pvid(port_priv, vid); 325 if (err) 326 return err; 327 } 328 329 return 0; 330 } 331 332 static enum dpsw_stp_state br_stp_state_to_dpsw(u8 state) 333 { 334 switch (state) { 335 case BR_STATE_DISABLED: 336 return DPSW_STP_STATE_DISABLED; 337 case BR_STATE_LISTENING: 338 return DPSW_STP_STATE_LISTENING; 339 case BR_STATE_LEARNING: 340 return DPSW_STP_STATE_LEARNING; 341 case BR_STATE_FORWARDING: 342 return DPSW_STP_STATE_FORWARDING; 343 case BR_STATE_BLOCKING: 344 return DPSW_STP_STATE_BLOCKING; 345 default: 346 return DPSW_STP_STATE_DISABLED; 347 } 348 } 349 350 static int dpaa2_switch_port_set_stp_state(struct ethsw_port_priv *port_priv, u8 state) 351 { 352 struct dpsw_stp_cfg stp_cfg = {0}; 353 int err; 354 u16 vid; 355 356 if (!netif_running(port_priv->netdev) || state == port_priv->stp_state) 357 return 0; /* Nothing to do */ 358 359 stp_cfg.state = br_stp_state_to_dpsw(state); 360 for (vid = 0; vid <= VLAN_VID_MASK; vid++) { 361 if (port_priv->vlans[vid] & ETHSW_VLAN_MEMBER) { 362 stp_cfg.vlan_id = vid; 363 err = dpsw_if_set_stp(port_priv->ethsw_data->mc_io, 0, 364 port_priv->ethsw_data->dpsw_handle, 365 port_priv->idx, &stp_cfg); 366 if (err) { 367 netdev_err(port_priv->netdev, 368 "dpsw_if_set_stp err %d\n", err); 369 return err; 370 } 371 } 372 } 373 374 port_priv->stp_state = state; 375 376 return 0; 377 } 378 379 static int dpaa2_switch_dellink(struct ethsw_core *ethsw, u16 vid) 380 { 381 struct ethsw_port_priv *ppriv_local = NULL; 382 int i, err; 383 384 if (!ethsw->vlans[vid]) 385 return -ENOENT; 386 387 err = dpsw_vlan_remove(ethsw->mc_io, 0, ethsw->dpsw_handle, vid); 388 if (err) { 389 dev_err(ethsw->dev, "dpsw_vlan_remove err %d\n", err); 390 return err; 391 } 392 ethsw->vlans[vid] = 0; 393 394 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 395 ppriv_local = ethsw->ports[i]; 396 if (ppriv_local) 397 ppriv_local->vlans[vid] = 0; 398 } 399 400 return 0; 401 } 402 403 static int dpaa2_switch_port_fdb_add_uc(struct ethsw_port_priv *port_priv, 404 const unsigned char *addr) 405 { 406 struct dpsw_fdb_unicast_cfg entry = {0}; 407 u16 fdb_id; 408 int err; 409 410 entry.if_egress = port_priv->idx; 411 entry.type = DPSW_FDB_ENTRY_STATIC; 412 ether_addr_copy(entry.mac_addr, addr); 413 414 fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 415 err = dpsw_fdb_add_unicast(port_priv->ethsw_data->mc_io, 0, 416 port_priv->ethsw_data->dpsw_handle, 417 fdb_id, &entry); 418 if (err) 419 netdev_err(port_priv->netdev, 420 "dpsw_fdb_add_unicast err %d\n", err); 421 return err; 422 } 423 424 static int dpaa2_switch_port_fdb_del_uc(struct ethsw_port_priv *port_priv, 425 const unsigned char *addr) 426 { 427 struct dpsw_fdb_unicast_cfg entry = {0}; 428 u16 fdb_id; 429 int err; 430 431 entry.if_egress = port_priv->idx; 432 entry.type = DPSW_FDB_ENTRY_STATIC; 433 ether_addr_copy(entry.mac_addr, addr); 434 435 fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 436 err = dpsw_fdb_remove_unicast(port_priv->ethsw_data->mc_io, 0, 437 port_priv->ethsw_data->dpsw_handle, 438 fdb_id, &entry); 439 /* Silently discard error for calling multiple times the del command */ 440 if (err && err != -ENXIO) 441 netdev_err(port_priv->netdev, 442 "dpsw_fdb_remove_unicast err %d\n", err); 443 return err; 444 } 445 446 static int dpaa2_switch_port_fdb_add_mc(struct ethsw_port_priv *port_priv, 447 const unsigned char *addr) 448 { 449 struct dpsw_fdb_multicast_cfg entry = {0}; 450 u16 fdb_id; 451 int err; 452 453 ether_addr_copy(entry.mac_addr, addr); 454 entry.type = DPSW_FDB_ENTRY_STATIC; 455 entry.num_ifs = 1; 456 entry.if_id[0] = port_priv->idx; 457 458 fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 459 err = dpsw_fdb_add_multicast(port_priv->ethsw_data->mc_io, 0, 460 port_priv->ethsw_data->dpsw_handle, 461 fdb_id, &entry); 462 /* Silently discard error for calling multiple times the add command */ 463 if (err && err != -ENXIO) 464 netdev_err(port_priv->netdev, "dpsw_fdb_add_multicast err %d\n", 465 err); 466 return err; 467 } 468 469 static int dpaa2_switch_port_fdb_del_mc(struct ethsw_port_priv *port_priv, 470 const unsigned char *addr) 471 { 472 struct dpsw_fdb_multicast_cfg entry = {0}; 473 u16 fdb_id; 474 int err; 475 476 ether_addr_copy(entry.mac_addr, addr); 477 entry.type = DPSW_FDB_ENTRY_STATIC; 478 entry.num_ifs = 1; 479 entry.if_id[0] = port_priv->idx; 480 481 fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 482 err = dpsw_fdb_remove_multicast(port_priv->ethsw_data->mc_io, 0, 483 port_priv->ethsw_data->dpsw_handle, 484 fdb_id, &entry); 485 /* Silently discard error for calling multiple times the del command */ 486 if (err && err != -ENAVAIL) 487 netdev_err(port_priv->netdev, 488 "dpsw_fdb_remove_multicast err %d\n", err); 489 return err; 490 } 491 492 static void dpaa2_switch_port_get_stats(struct net_device *netdev, 493 struct rtnl_link_stats64 *stats) 494 { 495 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 496 u64 tmp; 497 int err; 498 499 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 500 port_priv->ethsw_data->dpsw_handle, 501 port_priv->idx, 502 DPSW_CNT_ING_FRAME, &stats->rx_packets); 503 if (err) 504 goto error; 505 506 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 507 port_priv->ethsw_data->dpsw_handle, 508 port_priv->idx, 509 DPSW_CNT_EGR_FRAME, &stats->tx_packets); 510 if (err) 511 goto error; 512 513 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 514 port_priv->ethsw_data->dpsw_handle, 515 port_priv->idx, 516 DPSW_CNT_ING_BYTE, &stats->rx_bytes); 517 if (err) 518 goto error; 519 520 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 521 port_priv->ethsw_data->dpsw_handle, 522 port_priv->idx, 523 DPSW_CNT_EGR_BYTE, &stats->tx_bytes); 524 if (err) 525 goto error; 526 527 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 528 port_priv->ethsw_data->dpsw_handle, 529 port_priv->idx, 530 DPSW_CNT_ING_FRAME_DISCARD, 531 &stats->rx_dropped); 532 if (err) 533 goto error; 534 535 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 536 port_priv->ethsw_data->dpsw_handle, 537 port_priv->idx, 538 DPSW_CNT_ING_FLTR_FRAME, 539 &tmp); 540 if (err) 541 goto error; 542 stats->rx_dropped += tmp; 543 544 err = dpsw_if_get_counter(port_priv->ethsw_data->mc_io, 0, 545 port_priv->ethsw_data->dpsw_handle, 546 port_priv->idx, 547 DPSW_CNT_EGR_FRAME_DISCARD, 548 &stats->tx_dropped); 549 if (err) 550 goto error; 551 552 return; 553 554 error: 555 netdev_err(netdev, "dpsw_if_get_counter err %d\n", err); 556 } 557 558 static bool dpaa2_switch_port_has_offload_stats(const struct net_device *netdev, 559 int attr_id) 560 { 561 return (attr_id == IFLA_OFFLOAD_XSTATS_CPU_HIT); 562 } 563 564 static int dpaa2_switch_port_get_offload_stats(int attr_id, 565 const struct net_device *netdev, 566 void *sp) 567 { 568 switch (attr_id) { 569 case IFLA_OFFLOAD_XSTATS_CPU_HIT: 570 dpaa2_switch_port_get_stats((struct net_device *)netdev, sp); 571 return 0; 572 } 573 574 return -EINVAL; 575 } 576 577 static int dpaa2_switch_port_change_mtu(struct net_device *netdev, int mtu) 578 { 579 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 580 int err; 581 582 err = dpsw_if_set_max_frame_length(port_priv->ethsw_data->mc_io, 583 0, 584 port_priv->ethsw_data->dpsw_handle, 585 port_priv->idx, 586 (u16)ETHSW_L2_MAX_FRM(mtu)); 587 if (err) { 588 netdev_err(netdev, 589 "dpsw_if_set_max_frame_length() err %d\n", err); 590 return err; 591 } 592 593 WRITE_ONCE(netdev->mtu, mtu); 594 return 0; 595 } 596 597 static int dpaa2_switch_port_link_state_update(struct net_device *netdev) 598 { 599 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 600 struct dpsw_link_state state; 601 int err; 602 603 /* When we manage the MAC/PHY using phylink there is no need 604 * to manually update the netif_carrier. 605 * We can avoid locking because we are called from the "link changed" 606 * IRQ handler, which is the same as the "endpoint changed" IRQ handler 607 * (the writer to port_priv->mac), so we cannot race with it. 608 */ 609 if (dpaa2_mac_is_type_phy(port_priv->mac)) 610 return 0; 611 612 /* Interrupts are received even though no one issued an 'ifconfig up' 613 * on the switch interface. Ignore these link state update interrupts 614 */ 615 if (!netif_running(netdev)) 616 return 0; 617 618 err = dpsw_if_get_link_state(port_priv->ethsw_data->mc_io, 0, 619 port_priv->ethsw_data->dpsw_handle, 620 port_priv->idx, &state); 621 if (err) { 622 netdev_err(netdev, "dpsw_if_get_link_state() err %d\n", err); 623 return err; 624 } 625 626 WARN_ONCE(state.up > 1, "Garbage read into link_state"); 627 628 if (state.up != port_priv->link_state) { 629 if (state.up) { 630 netif_carrier_on(netdev); 631 netif_tx_start_all_queues(netdev); 632 } else { 633 netif_carrier_off(netdev); 634 netif_tx_stop_all_queues(netdev); 635 } 636 port_priv->link_state = state.up; 637 } 638 639 return 0; 640 } 641 642 /* Manage all NAPI instances for the control interface. 643 * 644 * We only have one RX queue and one Tx Conf queue for all 645 * switch ports. Therefore, we only need to enable the NAPI instance once, the 646 * first time one of the switch ports runs .dev_open(). 647 */ 648 649 static void dpaa2_switch_enable_ctrl_if_napi(struct ethsw_core *ethsw) 650 { 651 int i; 652 653 /* Access to the ethsw->napi_users relies on the RTNL lock */ 654 ASSERT_RTNL(); 655 656 /* a new interface is using the NAPI instance */ 657 ethsw->napi_users++; 658 659 /* if there is already a user of the instance, return */ 660 if (ethsw->napi_users > 1) 661 return; 662 663 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) 664 napi_enable(ðsw->fq[i].napi); 665 } 666 667 static void dpaa2_switch_disable_ctrl_if_napi(struct ethsw_core *ethsw) 668 { 669 int i; 670 671 /* Access to the ethsw->napi_users relies on the RTNL lock */ 672 ASSERT_RTNL(); 673 674 /* If we are not the last interface using the NAPI, return */ 675 ethsw->napi_users--; 676 if (ethsw->napi_users) 677 return; 678 679 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) 680 napi_disable(ðsw->fq[i].napi); 681 } 682 683 static int dpaa2_switch_port_open(struct net_device *netdev) 684 { 685 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 686 struct ethsw_core *ethsw = port_priv->ethsw_data; 687 int err; 688 689 mutex_lock(&port_priv->mac_lock); 690 691 if (!dpaa2_switch_port_is_type_phy(port_priv)) { 692 /* Explicitly set carrier off, otherwise 693 * netif_carrier_ok() will return true and cause 'ip link show' 694 * to report the LOWER_UP flag, even though the link 695 * notification wasn't even received. 696 */ 697 netif_carrier_off(netdev); 698 } 699 700 err = dpsw_if_enable(port_priv->ethsw_data->mc_io, 0, 701 port_priv->ethsw_data->dpsw_handle, 702 port_priv->idx); 703 if (err) { 704 mutex_unlock(&port_priv->mac_lock); 705 netdev_err(netdev, "dpsw_if_enable err %d\n", err); 706 return err; 707 } 708 709 dpaa2_switch_enable_ctrl_if_napi(ethsw); 710 711 if (dpaa2_switch_port_is_type_phy(port_priv)) 712 dpaa2_mac_start(port_priv->mac); 713 714 mutex_unlock(&port_priv->mac_lock); 715 716 return 0; 717 } 718 719 static int dpaa2_switch_port_stop(struct net_device *netdev) 720 { 721 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 722 struct ethsw_core *ethsw = port_priv->ethsw_data; 723 int err; 724 725 mutex_lock(&port_priv->mac_lock); 726 727 if (dpaa2_switch_port_is_type_phy(port_priv)) { 728 dpaa2_mac_stop(port_priv->mac); 729 } else { 730 netif_tx_stop_all_queues(netdev); 731 netif_carrier_off(netdev); 732 } 733 734 mutex_unlock(&port_priv->mac_lock); 735 736 err = dpsw_if_disable(port_priv->ethsw_data->mc_io, 0, 737 port_priv->ethsw_data->dpsw_handle, 738 port_priv->idx); 739 if (err) { 740 netdev_err(netdev, "dpsw_if_disable err %d\n", err); 741 return err; 742 } 743 744 dpaa2_switch_disable_ctrl_if_napi(ethsw); 745 746 return 0; 747 } 748 749 static int dpaa2_switch_port_parent_id(struct net_device *dev, 750 struct netdev_phys_item_id *ppid) 751 { 752 struct ethsw_port_priv *port_priv = netdev_priv(dev); 753 754 ppid->id_len = 1; 755 ppid->id[0] = port_priv->ethsw_data->dev_id; 756 757 return 0; 758 } 759 760 static int dpaa2_switch_port_get_phys_name(struct net_device *netdev, char *name, 761 size_t len) 762 { 763 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 764 int err; 765 766 err = snprintf(name, len, "p%d", port_priv->idx); 767 if (err >= len) 768 return -EINVAL; 769 770 return 0; 771 } 772 773 struct ethsw_dump_ctx { 774 struct net_device *dev; 775 struct sk_buff *skb; 776 struct netlink_callback *cb; 777 int idx; 778 }; 779 780 static int dpaa2_switch_fdb_dump_nl(struct fdb_dump_entry *entry, 781 struct ethsw_dump_ctx *dump) 782 { 783 struct ndo_fdb_dump_context *ctx = (void *)dump->cb->ctx; 784 int is_dynamic = entry->type & DPSW_FDB_ENTRY_DINAMIC; 785 u32 portid = NETLINK_CB(dump->cb->skb).portid; 786 u32 seq = dump->cb->nlh->nlmsg_seq; 787 struct nlmsghdr *nlh; 788 struct ndmsg *ndm; 789 790 if (dump->idx < ctx->fdb_idx) 791 goto skip; 792 793 nlh = nlmsg_put(dump->skb, portid, seq, RTM_NEWNEIGH, 794 sizeof(*ndm), NLM_F_MULTI); 795 if (!nlh) 796 return -EMSGSIZE; 797 798 ndm = nlmsg_data(nlh); 799 ndm->ndm_family = AF_BRIDGE; 800 ndm->ndm_pad1 = 0; 801 ndm->ndm_pad2 = 0; 802 ndm->ndm_flags = NTF_SELF; 803 ndm->ndm_type = 0; 804 ndm->ndm_ifindex = dump->dev->ifindex; 805 ndm->ndm_state = is_dynamic ? NUD_REACHABLE : NUD_NOARP; 806 807 if (nla_put(dump->skb, NDA_LLADDR, ETH_ALEN, entry->mac_addr)) 808 goto nla_put_failure; 809 810 nlmsg_end(dump->skb, nlh); 811 812 skip: 813 dump->idx++; 814 return 0; 815 816 nla_put_failure: 817 nlmsg_cancel(dump->skb, nlh); 818 return -EMSGSIZE; 819 } 820 821 static int dpaa2_switch_port_fdb_valid_entry(struct fdb_dump_entry *entry, 822 struct ethsw_port_priv *port_priv) 823 { 824 int idx = port_priv->idx; 825 int valid; 826 827 if (entry->type & DPSW_FDB_ENTRY_TYPE_UNICAST) 828 valid = entry->if_info == port_priv->idx; 829 else 830 valid = entry->if_mask[idx / 8] & BIT(idx % 8); 831 832 return valid; 833 } 834 835 static int dpaa2_switch_fdb_iterate(struct ethsw_port_priv *port_priv, 836 dpaa2_switch_fdb_cb_t cb, void *data) 837 { 838 struct net_device *net_dev = port_priv->netdev; 839 struct ethsw_core *ethsw = port_priv->ethsw_data; 840 struct device *dev = net_dev->dev.parent; 841 struct fdb_dump_entry *fdb_entries; 842 struct fdb_dump_entry fdb_entry; 843 dma_addr_t fdb_dump_iova; 844 u16 num_fdb_entries; 845 u32 fdb_dump_size; 846 int err = 0, i; 847 u8 *dma_mem; 848 u16 fdb_id; 849 850 fdb_dump_size = ethsw->sw_attr.max_fdb_entries * sizeof(fdb_entry); 851 dma_mem = kzalloc(fdb_dump_size, GFP_KERNEL); 852 if (!dma_mem) 853 return -ENOMEM; 854 855 fdb_dump_iova = dma_map_single(dev, dma_mem, fdb_dump_size, 856 DMA_FROM_DEVICE); 857 if (dma_mapping_error(dev, fdb_dump_iova)) { 858 netdev_err(net_dev, "dma_map_single() failed\n"); 859 err = -ENOMEM; 860 goto err_map; 861 } 862 863 fdb_id = dpaa2_switch_port_get_fdb_id(port_priv); 864 err = dpsw_fdb_dump(ethsw->mc_io, 0, ethsw->dpsw_handle, fdb_id, 865 fdb_dump_iova, fdb_dump_size, &num_fdb_entries); 866 if (err) { 867 netdev_err(net_dev, "dpsw_fdb_dump() = %d\n", err); 868 goto err_dump; 869 } 870 871 dma_unmap_single(dev, fdb_dump_iova, fdb_dump_size, DMA_FROM_DEVICE); 872 873 fdb_entries = (struct fdb_dump_entry *)dma_mem; 874 for (i = 0; i < num_fdb_entries; i++) { 875 fdb_entry = fdb_entries[i]; 876 877 err = cb(port_priv, &fdb_entry, data); 878 if (err) 879 goto end; 880 } 881 882 end: 883 kfree(dma_mem); 884 885 return 0; 886 887 err_dump: 888 dma_unmap_single(dev, fdb_dump_iova, fdb_dump_size, DMA_TO_DEVICE); 889 err_map: 890 kfree(dma_mem); 891 return err; 892 } 893 894 static int dpaa2_switch_fdb_entry_dump(struct ethsw_port_priv *port_priv, 895 struct fdb_dump_entry *fdb_entry, 896 void *data) 897 { 898 if (!dpaa2_switch_port_fdb_valid_entry(fdb_entry, port_priv)) 899 return 0; 900 901 return dpaa2_switch_fdb_dump_nl(fdb_entry, data); 902 } 903 904 static int dpaa2_switch_port_fdb_dump(struct sk_buff *skb, struct netlink_callback *cb, 905 struct net_device *net_dev, 906 struct net_device *filter_dev, int *idx) 907 { 908 struct ethsw_port_priv *port_priv = netdev_priv(net_dev); 909 struct ethsw_dump_ctx dump = { 910 .dev = net_dev, 911 .skb = skb, 912 .cb = cb, 913 .idx = *idx, 914 }; 915 int err; 916 917 err = dpaa2_switch_fdb_iterate(port_priv, dpaa2_switch_fdb_entry_dump, &dump); 918 *idx = dump.idx; 919 920 return err; 921 } 922 923 static int dpaa2_switch_fdb_entry_fast_age(struct ethsw_port_priv *port_priv, 924 struct fdb_dump_entry *fdb_entry, 925 void *data __always_unused) 926 { 927 if (!dpaa2_switch_port_fdb_valid_entry(fdb_entry, port_priv)) 928 return 0; 929 930 if (!(fdb_entry->type & DPSW_FDB_ENTRY_TYPE_DYNAMIC)) 931 return 0; 932 933 if (fdb_entry->type & DPSW_FDB_ENTRY_TYPE_UNICAST) 934 dpaa2_switch_port_fdb_del_uc(port_priv, fdb_entry->mac_addr); 935 else 936 dpaa2_switch_port_fdb_del_mc(port_priv, fdb_entry->mac_addr); 937 938 return 0; 939 } 940 941 static void dpaa2_switch_port_fast_age(struct ethsw_port_priv *port_priv) 942 { 943 dpaa2_switch_fdb_iterate(port_priv, 944 dpaa2_switch_fdb_entry_fast_age, NULL); 945 } 946 947 static int dpaa2_switch_port_vlan_add(struct net_device *netdev, __be16 proto, 948 u16 vid) 949 { 950 struct switchdev_obj_port_vlan vlan = { 951 .obj.id = SWITCHDEV_OBJ_ID_PORT_VLAN, 952 .vid = vid, 953 .obj.orig_dev = netdev, 954 /* This API only allows programming tagged, non-PVID VIDs */ 955 .flags = 0, 956 }; 957 958 return dpaa2_switch_port_vlans_add(netdev, &vlan); 959 } 960 961 static int dpaa2_switch_port_vlan_kill(struct net_device *netdev, __be16 proto, 962 u16 vid) 963 { 964 struct switchdev_obj_port_vlan vlan = { 965 .obj.id = SWITCHDEV_OBJ_ID_PORT_VLAN, 966 .vid = vid, 967 .obj.orig_dev = netdev, 968 /* This API only allows programming tagged, non-PVID VIDs */ 969 .flags = 0, 970 }; 971 972 return dpaa2_switch_port_vlans_del(netdev, &vlan); 973 } 974 975 static int dpaa2_switch_port_set_mac_addr(struct ethsw_port_priv *port_priv) 976 { 977 struct ethsw_core *ethsw = port_priv->ethsw_data; 978 struct net_device *net_dev = port_priv->netdev; 979 struct device *dev = net_dev->dev.parent; 980 u8 mac_addr[ETH_ALEN]; 981 int err; 982 983 if (!(ethsw->features & ETHSW_FEATURE_MAC_ADDR)) 984 return 0; 985 986 /* Get firmware address, if any */ 987 err = dpsw_if_get_port_mac_addr(ethsw->mc_io, 0, ethsw->dpsw_handle, 988 port_priv->idx, mac_addr); 989 if (err) { 990 dev_err(dev, "dpsw_if_get_port_mac_addr() failed\n"); 991 return err; 992 } 993 994 /* First check if firmware has any address configured by bootloader */ 995 if (!is_zero_ether_addr(mac_addr)) { 996 eth_hw_addr_set(net_dev, mac_addr); 997 } else { 998 /* No MAC address configured, fill in net_dev->dev_addr 999 * with a random one 1000 */ 1001 eth_hw_addr_random(net_dev); 1002 dev_dbg_once(dev, "device(s) have all-zero hwaddr, replaced with random\n"); 1003 1004 /* Override NET_ADDR_RANDOM set by eth_hw_addr_random(); for all 1005 * practical purposes, this will be our "permanent" mac address, 1006 * at least until the next reboot. This move will also permit 1007 * register_netdevice() to properly fill up net_dev->perm_addr. 1008 */ 1009 net_dev->addr_assign_type = NET_ADDR_PERM; 1010 } 1011 1012 return 0; 1013 } 1014 1015 static void dpaa2_switch_free_fd(const struct ethsw_core *ethsw, 1016 const struct dpaa2_fd *fd) 1017 { 1018 struct device *dev = ethsw->dev; 1019 unsigned char *buffer_start; 1020 struct sk_buff **skbh, *skb; 1021 dma_addr_t fd_addr; 1022 1023 fd_addr = dpaa2_fd_get_addr(fd); 1024 skbh = dpaa2_iova_to_virt(ethsw->iommu_domain, fd_addr); 1025 1026 skb = *skbh; 1027 buffer_start = (unsigned char *)skbh; 1028 1029 dma_unmap_single(dev, fd_addr, 1030 skb_tail_pointer(skb) - buffer_start, 1031 DMA_TO_DEVICE); 1032 1033 /* Move on with skb release */ 1034 dev_kfree_skb(skb); 1035 } 1036 1037 static int dpaa2_switch_build_single_fd(struct ethsw_core *ethsw, 1038 struct sk_buff *skb, 1039 struct dpaa2_fd *fd) 1040 { 1041 struct device *dev = ethsw->dev; 1042 struct sk_buff **skbh; 1043 dma_addr_t addr; 1044 u8 *buff_start; 1045 void *hwa; 1046 1047 buff_start = PTR_ALIGN(skb->data - DPAA2_SWITCH_TX_DATA_OFFSET - 1048 DPAA2_SWITCH_TX_BUF_ALIGN, 1049 DPAA2_SWITCH_TX_BUF_ALIGN); 1050 1051 /* Clear FAS to have consistent values for TX confirmation. It is 1052 * located in the first 8 bytes of the buffer's hardware annotation 1053 * area 1054 */ 1055 hwa = buff_start + DPAA2_SWITCH_SWA_SIZE; 1056 memset(hwa, 0, 8); 1057 1058 /* Store a backpointer to the skb at the beginning of the buffer 1059 * (in the private data area) such that we can release it 1060 * on Tx confirm 1061 */ 1062 skbh = (struct sk_buff **)buff_start; 1063 *skbh = skb; 1064 1065 addr = dma_map_single(dev, buff_start, 1066 skb_tail_pointer(skb) - buff_start, 1067 DMA_TO_DEVICE); 1068 if (unlikely(dma_mapping_error(dev, addr))) 1069 return -ENOMEM; 1070 1071 /* Setup the FD fields */ 1072 memset(fd, 0, sizeof(*fd)); 1073 1074 dpaa2_fd_set_addr(fd, addr); 1075 dpaa2_fd_set_offset(fd, (u16)(skb->data - buff_start)); 1076 dpaa2_fd_set_len(fd, skb->len); 1077 dpaa2_fd_set_format(fd, dpaa2_fd_single); 1078 1079 return 0; 1080 } 1081 1082 static netdev_tx_t dpaa2_switch_port_tx(struct sk_buff *skb, 1083 struct net_device *net_dev) 1084 { 1085 struct ethsw_port_priv *port_priv = netdev_priv(net_dev); 1086 struct ethsw_core *ethsw = port_priv->ethsw_data; 1087 int retries = DPAA2_SWITCH_SWP_BUSY_RETRIES; 1088 struct dpaa2_fd fd; 1089 int err; 1090 1091 if (unlikely(skb_headroom(skb) < DPAA2_SWITCH_NEEDED_HEADROOM)) { 1092 struct sk_buff *ns; 1093 1094 ns = skb_realloc_headroom(skb, DPAA2_SWITCH_NEEDED_HEADROOM); 1095 if (unlikely(!ns)) { 1096 net_err_ratelimited("%s: Error reallocating skb headroom\n", net_dev->name); 1097 goto err_free_skb; 1098 } 1099 dev_consume_skb_any(skb); 1100 skb = ns; 1101 } 1102 1103 /* We'll be holding a back-reference to the skb until Tx confirmation */ 1104 skb = skb_unshare(skb, GFP_ATOMIC); 1105 if (unlikely(!skb)) { 1106 /* skb_unshare() has already freed the skb */ 1107 net_err_ratelimited("%s: Error copying the socket buffer\n", net_dev->name); 1108 goto err_exit; 1109 } 1110 1111 /* At this stage, we do not support non-linear skbs so just try to 1112 * linearize the skb and if that's not working, just drop the packet. 1113 */ 1114 err = skb_linearize(skb); 1115 if (err) { 1116 net_err_ratelimited("%s: skb_linearize error (%d)!\n", net_dev->name, err); 1117 goto err_free_skb; 1118 } 1119 1120 err = dpaa2_switch_build_single_fd(ethsw, skb, &fd); 1121 if (unlikely(err)) { 1122 net_err_ratelimited("%s: ethsw_build_*_fd() %d\n", net_dev->name, err); 1123 goto err_free_skb; 1124 } 1125 1126 do { 1127 err = dpaa2_io_service_enqueue_qd(NULL, 1128 port_priv->tx_qdid, 1129 8, 0, &fd); 1130 retries--; 1131 } while (err == -EBUSY && retries); 1132 1133 if (unlikely(err < 0)) { 1134 dpaa2_switch_free_fd(ethsw, &fd); 1135 goto err_exit; 1136 } 1137 1138 return NETDEV_TX_OK; 1139 1140 err_free_skb: 1141 dev_kfree_skb(skb); 1142 err_exit: 1143 return NETDEV_TX_OK; 1144 } 1145 1146 static int 1147 dpaa2_switch_setup_tc_cls_flower(struct dpaa2_switch_filter_block *filter_block, 1148 struct flow_cls_offload *f) 1149 { 1150 switch (f->command) { 1151 case FLOW_CLS_REPLACE: 1152 return dpaa2_switch_cls_flower_replace(filter_block, f); 1153 case FLOW_CLS_DESTROY: 1154 return dpaa2_switch_cls_flower_destroy(filter_block, f); 1155 default: 1156 return -EOPNOTSUPP; 1157 } 1158 } 1159 1160 static int 1161 dpaa2_switch_setup_tc_cls_matchall(struct dpaa2_switch_filter_block *block, 1162 struct tc_cls_matchall_offload *f) 1163 { 1164 switch (f->command) { 1165 case TC_CLSMATCHALL_REPLACE: 1166 return dpaa2_switch_cls_matchall_replace(block, f); 1167 case TC_CLSMATCHALL_DESTROY: 1168 return dpaa2_switch_cls_matchall_destroy(block, f); 1169 default: 1170 return -EOPNOTSUPP; 1171 } 1172 } 1173 1174 static int dpaa2_switch_port_setup_tc_block_cb_ig(enum tc_setup_type type, 1175 void *type_data, 1176 void *cb_priv) 1177 { 1178 switch (type) { 1179 case TC_SETUP_CLSFLOWER: 1180 return dpaa2_switch_setup_tc_cls_flower(cb_priv, type_data); 1181 case TC_SETUP_CLSMATCHALL: 1182 return dpaa2_switch_setup_tc_cls_matchall(cb_priv, type_data); 1183 default: 1184 return -EOPNOTSUPP; 1185 } 1186 } 1187 1188 static LIST_HEAD(dpaa2_switch_block_cb_list); 1189 1190 static int 1191 dpaa2_switch_port_acl_tbl_bind(struct ethsw_port_priv *port_priv, 1192 struct dpaa2_switch_filter_block *block) 1193 { 1194 struct ethsw_core *ethsw = port_priv->ethsw_data; 1195 struct net_device *netdev = port_priv->netdev; 1196 struct dpsw_acl_if_cfg acl_if_cfg; 1197 int err; 1198 1199 if (port_priv->filter_block) 1200 return -EINVAL; 1201 1202 acl_if_cfg.if_id[0] = port_priv->idx; 1203 acl_if_cfg.num_ifs = 1; 1204 err = dpsw_acl_add_if(ethsw->mc_io, 0, ethsw->dpsw_handle, 1205 block->acl_id, &acl_if_cfg); 1206 if (err) { 1207 netdev_err(netdev, "dpsw_acl_add_if err %d\n", err); 1208 return err; 1209 } 1210 1211 block->ports |= BIT(port_priv->idx); 1212 port_priv->filter_block = block; 1213 1214 return 0; 1215 } 1216 1217 static int 1218 dpaa2_switch_port_acl_tbl_unbind(struct ethsw_port_priv *port_priv, 1219 struct dpaa2_switch_filter_block *block) 1220 { 1221 struct ethsw_core *ethsw = port_priv->ethsw_data; 1222 struct net_device *netdev = port_priv->netdev; 1223 struct dpsw_acl_if_cfg acl_if_cfg; 1224 int err; 1225 1226 if (port_priv->filter_block != block) 1227 return -EINVAL; 1228 1229 acl_if_cfg.if_id[0] = port_priv->idx; 1230 acl_if_cfg.num_ifs = 1; 1231 err = dpsw_acl_remove_if(ethsw->mc_io, 0, ethsw->dpsw_handle, 1232 block->acl_id, &acl_if_cfg); 1233 if (err) { 1234 netdev_err(netdev, "dpsw_acl_add_if err %d\n", err); 1235 return err; 1236 } 1237 1238 block->ports &= ~BIT(port_priv->idx); 1239 port_priv->filter_block = NULL; 1240 return 0; 1241 } 1242 1243 static int dpaa2_switch_port_block_bind(struct ethsw_port_priv *port_priv, 1244 struct dpaa2_switch_filter_block *block) 1245 { 1246 struct dpaa2_switch_filter_block *old_block = port_priv->filter_block; 1247 int err; 1248 1249 /* Offload all the mirror entries found in the block on this new port 1250 * joining it. 1251 */ 1252 err = dpaa2_switch_block_offload_mirror(block, port_priv); 1253 if (err) 1254 return err; 1255 1256 /* If the port is already bound to this ACL table then do nothing. This 1257 * can happen when this port is the first one to join a tc block 1258 */ 1259 if (port_priv->filter_block == block) 1260 return 0; 1261 1262 err = dpaa2_switch_port_acl_tbl_unbind(port_priv, old_block); 1263 if (err) 1264 return err; 1265 1266 /* Mark the previous ACL table as being unused if this was the last 1267 * port that was using it. 1268 */ 1269 if (old_block->ports == 0) 1270 old_block->in_use = false; 1271 1272 return dpaa2_switch_port_acl_tbl_bind(port_priv, block); 1273 } 1274 1275 static int 1276 dpaa2_switch_port_block_unbind(struct ethsw_port_priv *port_priv, 1277 struct dpaa2_switch_filter_block *block) 1278 { 1279 struct ethsw_core *ethsw = port_priv->ethsw_data; 1280 struct dpaa2_switch_filter_block *new_block; 1281 int err; 1282 1283 /* Unoffload all the mirror entries found in the block from the 1284 * port leaving it. 1285 */ 1286 err = dpaa2_switch_block_unoffload_mirror(block, port_priv); 1287 if (err) 1288 return err; 1289 1290 /* We are the last port that leaves a block (an ACL table). 1291 * We'll continue to use this table. 1292 */ 1293 if (block->ports == BIT(port_priv->idx)) 1294 return 0; 1295 1296 err = dpaa2_switch_port_acl_tbl_unbind(port_priv, block); 1297 if (err) 1298 return err; 1299 1300 if (block->ports == 0) 1301 block->in_use = false; 1302 1303 new_block = dpaa2_switch_filter_block_get_unused(ethsw); 1304 new_block->in_use = true; 1305 return dpaa2_switch_port_acl_tbl_bind(port_priv, new_block); 1306 } 1307 1308 static int dpaa2_switch_setup_tc_block_bind(struct net_device *netdev, 1309 struct flow_block_offload *f) 1310 { 1311 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1312 struct ethsw_core *ethsw = port_priv->ethsw_data; 1313 struct dpaa2_switch_filter_block *filter_block; 1314 struct flow_block_cb *block_cb; 1315 bool register_block = false; 1316 int err; 1317 1318 block_cb = flow_block_cb_lookup(f->block, 1319 dpaa2_switch_port_setup_tc_block_cb_ig, 1320 ethsw); 1321 1322 if (!block_cb) { 1323 /* If the filter block is not already known, then this port 1324 * must be the first to join it. In this case, we can just 1325 * continue to use our private table 1326 */ 1327 filter_block = port_priv->filter_block; 1328 1329 block_cb = flow_block_cb_alloc(dpaa2_switch_port_setup_tc_block_cb_ig, 1330 ethsw, filter_block, NULL); 1331 if (IS_ERR(block_cb)) 1332 return PTR_ERR(block_cb); 1333 1334 register_block = true; 1335 } else { 1336 filter_block = flow_block_cb_priv(block_cb); 1337 } 1338 1339 flow_block_cb_incref(block_cb); 1340 err = dpaa2_switch_port_block_bind(port_priv, filter_block); 1341 if (err) 1342 goto err_block_bind; 1343 1344 if (register_block) { 1345 flow_block_cb_add(block_cb, f); 1346 list_add_tail(&block_cb->driver_list, 1347 &dpaa2_switch_block_cb_list); 1348 } 1349 1350 return 0; 1351 1352 err_block_bind: 1353 if (!flow_block_cb_decref(block_cb)) 1354 flow_block_cb_free(block_cb); 1355 return err; 1356 } 1357 1358 static void dpaa2_switch_setup_tc_block_unbind(struct net_device *netdev, 1359 struct flow_block_offload *f) 1360 { 1361 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1362 struct ethsw_core *ethsw = port_priv->ethsw_data; 1363 struct dpaa2_switch_filter_block *filter_block; 1364 struct flow_block_cb *block_cb; 1365 int err; 1366 1367 block_cb = flow_block_cb_lookup(f->block, 1368 dpaa2_switch_port_setup_tc_block_cb_ig, 1369 ethsw); 1370 if (!block_cb) 1371 return; 1372 1373 filter_block = flow_block_cb_priv(block_cb); 1374 err = dpaa2_switch_port_block_unbind(port_priv, filter_block); 1375 if (!err && !flow_block_cb_decref(block_cb)) { 1376 flow_block_cb_remove(block_cb, f); 1377 list_del(&block_cb->driver_list); 1378 } 1379 } 1380 1381 static int dpaa2_switch_setup_tc_block(struct net_device *netdev, 1382 struct flow_block_offload *f) 1383 { 1384 if (f->binder_type != FLOW_BLOCK_BINDER_TYPE_CLSACT_INGRESS) 1385 return -EOPNOTSUPP; 1386 1387 f->driver_block_list = &dpaa2_switch_block_cb_list; 1388 1389 switch (f->command) { 1390 case FLOW_BLOCK_BIND: 1391 return dpaa2_switch_setup_tc_block_bind(netdev, f); 1392 case FLOW_BLOCK_UNBIND: 1393 dpaa2_switch_setup_tc_block_unbind(netdev, f); 1394 return 0; 1395 default: 1396 return -EOPNOTSUPP; 1397 } 1398 } 1399 1400 static int dpaa2_switch_port_setup_tc(struct net_device *netdev, 1401 enum tc_setup_type type, 1402 void *type_data) 1403 { 1404 switch (type) { 1405 case TC_SETUP_BLOCK: { 1406 return dpaa2_switch_setup_tc_block(netdev, type_data); 1407 } 1408 default: 1409 return -EOPNOTSUPP; 1410 } 1411 1412 return 0; 1413 } 1414 1415 static const struct net_device_ops dpaa2_switch_port_ops = { 1416 .ndo_open = dpaa2_switch_port_open, 1417 .ndo_stop = dpaa2_switch_port_stop, 1418 1419 .ndo_set_mac_address = eth_mac_addr, 1420 .ndo_get_stats64 = dpaa2_switch_port_get_stats, 1421 .ndo_change_mtu = dpaa2_switch_port_change_mtu, 1422 .ndo_has_offload_stats = dpaa2_switch_port_has_offload_stats, 1423 .ndo_get_offload_stats = dpaa2_switch_port_get_offload_stats, 1424 .ndo_fdb_dump = dpaa2_switch_port_fdb_dump, 1425 .ndo_vlan_rx_add_vid = dpaa2_switch_port_vlan_add, 1426 .ndo_vlan_rx_kill_vid = dpaa2_switch_port_vlan_kill, 1427 1428 .ndo_start_xmit = dpaa2_switch_port_tx, 1429 .ndo_get_port_parent_id = dpaa2_switch_port_parent_id, 1430 .ndo_get_phys_port_name = dpaa2_switch_port_get_phys_name, 1431 .ndo_setup_tc = dpaa2_switch_port_setup_tc, 1432 }; 1433 1434 bool dpaa2_switch_port_dev_check(const struct net_device *netdev) 1435 { 1436 return netdev->netdev_ops == &dpaa2_switch_port_ops; 1437 } 1438 1439 static int dpaa2_switch_port_connect_mac(struct ethsw_port_priv *port_priv) 1440 { 1441 struct fsl_mc_device *dpsw_port_dev, *dpmac_dev; 1442 struct dpaa2_mac *mac; 1443 int err; 1444 1445 dpsw_port_dev = to_fsl_mc_device(port_priv->netdev->dev.parent); 1446 dpmac_dev = fsl_mc_get_endpoint(dpsw_port_dev, port_priv->idx); 1447 1448 if (PTR_ERR(dpmac_dev) == -EPROBE_DEFER) 1449 return PTR_ERR(dpmac_dev); 1450 1451 if (IS_ERR(dpmac_dev)) 1452 return 0; 1453 1454 if (dpmac_dev->dev.type != &fsl_mc_bus_dpmac_type) { 1455 err = 0; 1456 goto out_put_device; 1457 } 1458 1459 mac = kzalloc_obj(*mac); 1460 if (!mac) { 1461 err = -ENOMEM; 1462 goto out_put_device; 1463 } 1464 1465 mac->mc_dev = dpmac_dev; 1466 mac->mc_io = port_priv->ethsw_data->mc_io; 1467 mac->net_dev = port_priv->netdev; 1468 1469 err = dpaa2_mac_open(mac); 1470 if (err) 1471 goto err_free_mac; 1472 1473 if (dpaa2_mac_is_type_phy(mac)) { 1474 err = dpaa2_mac_connect(mac); 1475 if (err) { 1476 netdev_err(port_priv->netdev, 1477 "Error connecting to the MAC endpoint %pe\n", 1478 ERR_PTR(err)); 1479 goto err_close_mac; 1480 } 1481 } 1482 1483 mutex_lock(&port_priv->mac_lock); 1484 port_priv->mac = mac; 1485 mutex_unlock(&port_priv->mac_lock); 1486 1487 return 0; 1488 1489 err_close_mac: 1490 dpaa2_mac_close(mac); 1491 err_free_mac: 1492 kfree(mac); 1493 out_put_device: 1494 put_device(&dpmac_dev->dev); 1495 return err; 1496 } 1497 1498 static void dpaa2_switch_port_disconnect_mac(struct ethsw_port_priv *port_priv) 1499 { 1500 struct dpaa2_mac *mac; 1501 1502 mutex_lock(&port_priv->mac_lock); 1503 mac = port_priv->mac; 1504 port_priv->mac = NULL; 1505 mutex_unlock(&port_priv->mac_lock); 1506 1507 if (!mac) 1508 return; 1509 1510 if (dpaa2_mac_is_type_phy(mac)) 1511 dpaa2_mac_disconnect(mac); 1512 1513 dpaa2_mac_close(mac); 1514 kfree(mac); 1515 } 1516 1517 static irqreturn_t dpaa2_switch_irq0_handler_thread(int irq_num, void *arg) 1518 { 1519 struct device *dev = (struct device *)arg; 1520 struct ethsw_core *ethsw = dev_get_drvdata(dev); 1521 struct ethsw_port_priv *port_priv; 1522 int err, if_id; 1523 bool had_mac; 1524 u32 status; 1525 1526 err = dpsw_get_irq_status(ethsw->mc_io, 0, ethsw->dpsw_handle, 1527 DPSW_IRQ_INDEX_IF, &status); 1528 if (err) { 1529 dev_err(dev, "Can't get irq status (err %d)\n", err); 1530 goto out; 1531 } 1532 1533 if_id = (status & 0xFFFF0000) >> 16; 1534 if (if_id >= ethsw->sw_attr.num_ifs) { 1535 dev_err(dev, "Invalid if_id %d in IRQ status\n", if_id); 1536 goto out_clear; 1537 } 1538 port_priv = ethsw->ports[if_id]; 1539 1540 if (status & DPSW_IRQ_EVENT_LINK_CHANGED) 1541 dpaa2_switch_port_link_state_update(port_priv->netdev); 1542 1543 if (status & DPSW_IRQ_EVENT_ENDPOINT_CHANGED) { 1544 dpaa2_switch_port_set_mac_addr(port_priv); 1545 /* We can avoid locking because the "endpoint changed" IRQ 1546 * handler is the only one who changes priv->mac at runtime, 1547 * so we are not racing with anyone. 1548 */ 1549 had_mac = !!port_priv->mac; 1550 if (had_mac) 1551 dpaa2_switch_port_disconnect_mac(port_priv); 1552 else 1553 dpaa2_switch_port_connect_mac(port_priv); 1554 } 1555 1556 out_clear: 1557 err = dpsw_clear_irq_status(ethsw->mc_io, 0, ethsw->dpsw_handle, 1558 DPSW_IRQ_INDEX_IF, status); 1559 if (err) 1560 dev_err(dev, "Can't clear irq status (err %d)\n", err); 1561 1562 out: 1563 return IRQ_HANDLED; 1564 } 1565 1566 static int dpaa2_switch_setup_irqs(struct fsl_mc_device *sw_dev) 1567 { 1568 u32 mask = DPSW_IRQ_EVENT_LINK_CHANGED | DPSW_IRQ_EVENT_ENDPOINT_CHANGED; 1569 struct device *dev = &sw_dev->dev; 1570 struct ethsw_core *ethsw = dev_get_drvdata(dev); 1571 struct fsl_mc_device_irq *irq; 1572 int err; 1573 1574 err = fsl_mc_allocate_irqs(sw_dev); 1575 if (err) { 1576 dev_err(dev, "MC irqs allocation failed\n"); 1577 return err; 1578 } 1579 1580 if (WARN_ON(sw_dev->obj_desc.irq_count != DPSW_IRQ_NUM)) { 1581 err = -EINVAL; 1582 goto free_irq; 1583 } 1584 1585 err = dpsw_set_irq_enable(ethsw->mc_io, 0, ethsw->dpsw_handle, 1586 DPSW_IRQ_INDEX_IF, 0); 1587 if (err) { 1588 dev_err(dev, "dpsw_set_irq_enable err %d\n", err); 1589 goto free_irq; 1590 } 1591 1592 irq = sw_dev->irqs[DPSW_IRQ_INDEX_IF]; 1593 1594 err = devm_request_threaded_irq(dev, irq->virq, NULL, 1595 dpaa2_switch_irq0_handler_thread, 1596 IRQF_NO_SUSPEND | IRQF_ONESHOT, 1597 dev_name(dev), dev); 1598 if (err) { 1599 dev_err(dev, "devm_request_threaded_irq(): %d\n", err); 1600 goto free_irq; 1601 } 1602 1603 err = dpsw_set_irq_mask(ethsw->mc_io, 0, ethsw->dpsw_handle, 1604 DPSW_IRQ_INDEX_IF, mask); 1605 if (err) { 1606 dev_err(dev, "dpsw_set_irq_mask(): %d\n", err); 1607 goto free_devm_irq; 1608 } 1609 1610 err = dpsw_set_irq_enable(ethsw->mc_io, 0, ethsw->dpsw_handle, 1611 DPSW_IRQ_INDEX_IF, 1); 1612 if (err) { 1613 dev_err(dev, "dpsw_set_irq_enable(): %d\n", err); 1614 goto free_devm_irq; 1615 } 1616 1617 return 0; 1618 1619 free_devm_irq: 1620 devm_free_irq(dev, irq->virq, dev); 1621 free_irq: 1622 fsl_mc_free_irqs(sw_dev); 1623 return err; 1624 } 1625 1626 static void dpaa2_switch_teardown_irqs(struct fsl_mc_device *sw_dev) 1627 { 1628 struct device *dev = &sw_dev->dev; 1629 struct ethsw_core *ethsw = dev_get_drvdata(dev); 1630 int err; 1631 1632 err = dpsw_set_irq_enable(ethsw->mc_io, 0, ethsw->dpsw_handle, 1633 DPSW_IRQ_INDEX_IF, 0); 1634 if (err) 1635 dev_err(dev, "dpsw_set_irq_enable err %d\n", err); 1636 1637 fsl_mc_free_irqs(sw_dev); 1638 } 1639 1640 static int dpaa2_switch_port_set_learning(struct ethsw_port_priv *port_priv, bool enable) 1641 { 1642 struct ethsw_core *ethsw = port_priv->ethsw_data; 1643 enum dpsw_learning_mode learn_mode; 1644 int err; 1645 1646 if (enable) 1647 learn_mode = DPSW_LEARNING_MODE_HW; 1648 else 1649 learn_mode = DPSW_LEARNING_MODE_DIS; 1650 1651 err = dpsw_if_set_learning_mode(ethsw->mc_io, 0, ethsw->dpsw_handle, 1652 port_priv->idx, learn_mode); 1653 if (err) 1654 netdev_err(port_priv->netdev, "dpsw_if_set_learning_mode err %d\n", err); 1655 1656 if (!enable) 1657 dpaa2_switch_port_fast_age(port_priv); 1658 1659 return err; 1660 } 1661 1662 static int dpaa2_switch_port_attr_stp_state_set(struct net_device *netdev, 1663 u8 state) 1664 { 1665 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1666 int err; 1667 1668 err = dpaa2_switch_port_set_stp_state(port_priv, state); 1669 if (err) 1670 return err; 1671 1672 switch (state) { 1673 case BR_STATE_DISABLED: 1674 case BR_STATE_BLOCKING: 1675 case BR_STATE_LISTENING: 1676 err = dpaa2_switch_port_set_learning(port_priv, false); 1677 break; 1678 case BR_STATE_LEARNING: 1679 case BR_STATE_FORWARDING: 1680 err = dpaa2_switch_port_set_learning(port_priv, 1681 port_priv->learn_ena); 1682 break; 1683 } 1684 1685 return err; 1686 } 1687 1688 static int dpaa2_switch_port_flood(struct ethsw_port_priv *port_priv, 1689 struct switchdev_brport_flags flags) 1690 { 1691 struct ethsw_core *ethsw = port_priv->ethsw_data; 1692 1693 if (flags.mask & BR_BCAST_FLOOD) 1694 port_priv->bcast_flood = !!(flags.val & BR_BCAST_FLOOD); 1695 1696 if (flags.mask & BR_FLOOD) 1697 port_priv->ucast_flood = !!(flags.val & BR_FLOOD); 1698 1699 return dpaa2_switch_fdb_set_egress_flood(ethsw, port_priv->fdb->fdb_id); 1700 } 1701 1702 static int dpaa2_switch_port_pre_bridge_flags(struct net_device *netdev, 1703 struct switchdev_brport_flags flags, 1704 struct netlink_ext_ack *extack) 1705 { 1706 if (flags.mask & ~(BR_LEARNING | BR_BCAST_FLOOD | BR_FLOOD | 1707 BR_MCAST_FLOOD)) 1708 return -EINVAL; 1709 1710 if (flags.mask & (BR_FLOOD | BR_MCAST_FLOOD)) { 1711 bool multicast = !!(flags.val & BR_MCAST_FLOOD); 1712 bool unicast = !!(flags.val & BR_FLOOD); 1713 1714 if (unicast != multicast) { 1715 NL_SET_ERR_MSG_MOD(extack, 1716 "Cannot configure multicast flooding independently of unicast"); 1717 return -EINVAL; 1718 } 1719 } 1720 1721 return 0; 1722 } 1723 1724 static int dpaa2_switch_port_bridge_flags(struct net_device *netdev, 1725 struct switchdev_brport_flags flags, 1726 struct netlink_ext_ack *extack) 1727 { 1728 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1729 int err; 1730 1731 if (flags.mask & BR_LEARNING) { 1732 bool learn_ena = !!(flags.val & BR_LEARNING); 1733 1734 err = dpaa2_switch_port_set_learning(port_priv, learn_ena); 1735 if (err) 1736 return err; 1737 port_priv->learn_ena = learn_ena; 1738 } 1739 1740 if (flags.mask & (BR_BCAST_FLOOD | BR_FLOOD | BR_MCAST_FLOOD)) { 1741 err = dpaa2_switch_port_flood(port_priv, flags); 1742 if (err) 1743 return err; 1744 } 1745 1746 return 0; 1747 } 1748 1749 static int dpaa2_switch_port_attr_set(struct net_device *netdev, const void *ctx, 1750 const struct switchdev_attr *attr, 1751 struct netlink_ext_ack *extack) 1752 { 1753 int err = 0; 1754 1755 switch (attr->id) { 1756 case SWITCHDEV_ATTR_ID_PORT_STP_STATE: 1757 err = dpaa2_switch_port_attr_stp_state_set(netdev, 1758 attr->u.stp_state); 1759 break; 1760 case SWITCHDEV_ATTR_ID_BRIDGE_VLAN_FILTERING: 1761 if (!attr->u.vlan_filtering) { 1762 NL_SET_ERR_MSG_MOD(extack, 1763 "The DPAA2 switch does not support VLAN-unaware operation"); 1764 return -EOPNOTSUPP; 1765 } 1766 break; 1767 case SWITCHDEV_ATTR_ID_PORT_PRE_BRIDGE_FLAGS: 1768 err = dpaa2_switch_port_pre_bridge_flags(netdev, attr->u.brport_flags, extack); 1769 break; 1770 case SWITCHDEV_ATTR_ID_PORT_BRIDGE_FLAGS: 1771 err = dpaa2_switch_port_bridge_flags(netdev, attr->u.brport_flags, extack); 1772 break; 1773 default: 1774 err = -EOPNOTSUPP; 1775 break; 1776 } 1777 1778 return err; 1779 } 1780 1781 int dpaa2_switch_port_vlans_add(struct net_device *netdev, 1782 const struct switchdev_obj_port_vlan *vlan) 1783 { 1784 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1785 struct ethsw_core *ethsw = port_priv->ethsw_data; 1786 struct dpsw_attr *attr = ðsw->sw_attr; 1787 int err = 0; 1788 1789 /* Make sure that the VLAN is not already configured 1790 * on the switch port 1791 */ 1792 if (port_priv->vlans[vlan->vid] & ETHSW_VLAN_MEMBER) { 1793 netdev_err(netdev, "VLAN %d already configured\n", vlan->vid); 1794 return -EEXIST; 1795 } 1796 1797 /* Check if there is space for a new VLAN */ 1798 err = dpsw_get_attributes(ethsw->mc_io, 0, ethsw->dpsw_handle, 1799 ðsw->sw_attr); 1800 if (err) { 1801 netdev_err(netdev, "dpsw_get_attributes err %d\n", err); 1802 return err; 1803 } 1804 if (attr->max_vlans - attr->num_vlans < 1) 1805 return -ENOSPC; 1806 1807 /* Check if there is space for a new VLAN */ 1808 err = dpsw_get_attributes(ethsw->mc_io, 0, ethsw->dpsw_handle, 1809 ðsw->sw_attr); 1810 if (err) { 1811 netdev_err(netdev, "dpsw_get_attributes err %d\n", err); 1812 return err; 1813 } 1814 if (attr->max_vlans - attr->num_vlans < 1) 1815 return -ENOSPC; 1816 1817 if (!port_priv->ethsw_data->vlans[vlan->vid]) { 1818 /* this is a new VLAN */ 1819 err = dpaa2_switch_add_vlan(port_priv, vlan->vid); 1820 if (err) 1821 return err; 1822 1823 port_priv->ethsw_data->vlans[vlan->vid] |= ETHSW_VLAN_GLOBAL; 1824 } 1825 1826 return dpaa2_switch_port_add_vlan(port_priv, vlan->vid, vlan->flags); 1827 } 1828 1829 static int dpaa2_switch_port_lookup_address(struct net_device *netdev, int is_uc, 1830 const unsigned char *addr) 1831 { 1832 struct netdev_hw_addr_list *list = (is_uc) ? &netdev->uc : &netdev->mc; 1833 struct netdev_hw_addr *ha; 1834 1835 netif_addr_lock_bh(netdev); 1836 list_for_each_entry(ha, &list->list, list) { 1837 if (ether_addr_equal(ha->addr, addr)) { 1838 netif_addr_unlock_bh(netdev); 1839 return 1; 1840 } 1841 } 1842 netif_addr_unlock_bh(netdev); 1843 return 0; 1844 } 1845 1846 static int dpaa2_switch_port_mdb_add(struct net_device *netdev, 1847 const struct switchdev_obj_port_mdb *mdb) 1848 { 1849 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1850 int err; 1851 1852 /* Check if address is already set on this port */ 1853 if (dpaa2_switch_port_lookup_address(netdev, 0, mdb->addr)) 1854 return -EEXIST; 1855 1856 err = dpaa2_switch_port_fdb_add_mc(port_priv, mdb->addr); 1857 if (err) 1858 return err; 1859 1860 err = dev_mc_add(netdev, mdb->addr); 1861 if (err) { 1862 netdev_err(netdev, "dev_mc_add err %d\n", err); 1863 dpaa2_switch_port_fdb_del_mc(port_priv, mdb->addr); 1864 } 1865 1866 return err; 1867 } 1868 1869 static int dpaa2_switch_port_obj_add(struct net_device *netdev, 1870 const struct switchdev_obj *obj) 1871 { 1872 int err; 1873 1874 switch (obj->id) { 1875 case SWITCHDEV_OBJ_ID_PORT_VLAN: 1876 err = dpaa2_switch_port_vlans_add(netdev, 1877 SWITCHDEV_OBJ_PORT_VLAN(obj)); 1878 break; 1879 case SWITCHDEV_OBJ_ID_PORT_MDB: 1880 err = dpaa2_switch_port_mdb_add(netdev, 1881 SWITCHDEV_OBJ_PORT_MDB(obj)); 1882 break; 1883 default: 1884 err = -EOPNOTSUPP; 1885 break; 1886 } 1887 1888 return err; 1889 } 1890 1891 static int dpaa2_switch_port_del_vlan(struct ethsw_port_priv *port_priv, u16 vid) 1892 { 1893 struct ethsw_core *ethsw = port_priv->ethsw_data; 1894 struct net_device *netdev = port_priv->netdev; 1895 struct dpsw_vlan_if_cfg vcfg; 1896 int i, err; 1897 1898 if (!port_priv->vlans[vid]) 1899 return -ENOENT; 1900 1901 if (port_priv->vlans[vid] & ETHSW_VLAN_PVID) { 1902 /* If we are deleting the PVID of a port, use VLAN 4095 instead 1903 * as we are sure that neither the bridge nor the 8021q module 1904 * will use it 1905 */ 1906 err = dpaa2_switch_port_set_pvid(port_priv, 4095); 1907 if (err) 1908 return err; 1909 } 1910 1911 vcfg.num_ifs = 1; 1912 vcfg.if_id[0] = port_priv->idx; 1913 if (port_priv->vlans[vid] & ETHSW_VLAN_UNTAGGED) { 1914 err = dpsw_vlan_remove_if_untagged(ethsw->mc_io, 0, 1915 ethsw->dpsw_handle, 1916 vid, &vcfg); 1917 if (err) { 1918 netdev_err(netdev, 1919 "dpsw_vlan_remove_if_untagged err %d\n", 1920 err); 1921 } 1922 port_priv->vlans[vid] &= ~ETHSW_VLAN_UNTAGGED; 1923 } 1924 1925 if (port_priv->vlans[vid] & ETHSW_VLAN_MEMBER) { 1926 err = dpsw_vlan_remove_if(ethsw->mc_io, 0, ethsw->dpsw_handle, 1927 vid, &vcfg); 1928 if (err) { 1929 netdev_err(netdev, 1930 "dpsw_vlan_remove_if err %d\n", err); 1931 return err; 1932 } 1933 port_priv->vlans[vid] &= ~ETHSW_VLAN_MEMBER; 1934 1935 /* Delete VLAN from switch if it is no longer configured on 1936 * any port 1937 */ 1938 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 1939 if (ethsw->ports[i] && 1940 ethsw->ports[i]->vlans[vid] & ETHSW_VLAN_MEMBER) 1941 return 0; /* Found a port member in VID */ 1942 } 1943 1944 ethsw->vlans[vid] &= ~ETHSW_VLAN_GLOBAL; 1945 1946 err = dpaa2_switch_dellink(ethsw, vid); 1947 if (err) 1948 return err; 1949 } 1950 1951 return 0; 1952 } 1953 1954 int dpaa2_switch_port_vlans_del(struct net_device *netdev, 1955 const struct switchdev_obj_port_vlan *vlan) 1956 { 1957 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1958 1959 if (netif_is_bridge_master(vlan->obj.orig_dev)) 1960 return -EOPNOTSUPP; 1961 1962 return dpaa2_switch_port_del_vlan(port_priv, vlan->vid); 1963 } 1964 1965 static int dpaa2_switch_port_mdb_del(struct net_device *netdev, 1966 const struct switchdev_obj_port_mdb *mdb) 1967 { 1968 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 1969 int err; 1970 1971 if (!dpaa2_switch_port_lookup_address(netdev, 0, mdb->addr)) 1972 return -ENOENT; 1973 1974 err = dpaa2_switch_port_fdb_del_mc(port_priv, mdb->addr); 1975 if (err) 1976 return err; 1977 1978 err = dev_mc_del(netdev, mdb->addr); 1979 if (err) { 1980 netdev_err(netdev, "dev_mc_del err %d\n", err); 1981 return err; 1982 } 1983 1984 return err; 1985 } 1986 1987 static int dpaa2_switch_port_obj_del(struct net_device *netdev, 1988 const struct switchdev_obj *obj) 1989 { 1990 int err; 1991 1992 switch (obj->id) { 1993 case SWITCHDEV_OBJ_ID_PORT_VLAN: 1994 err = dpaa2_switch_port_vlans_del(netdev, SWITCHDEV_OBJ_PORT_VLAN(obj)); 1995 break; 1996 case SWITCHDEV_OBJ_ID_PORT_MDB: 1997 err = dpaa2_switch_port_mdb_del(netdev, SWITCHDEV_OBJ_PORT_MDB(obj)); 1998 break; 1999 default: 2000 err = -EOPNOTSUPP; 2001 break; 2002 } 2003 return err; 2004 } 2005 2006 static int dpaa2_switch_port_attr_set_event(struct net_device *netdev, 2007 struct switchdev_notifier_port_attr_info *ptr) 2008 { 2009 int err; 2010 2011 err = switchdev_handle_port_attr_set(netdev, ptr, 2012 dpaa2_switch_port_dev_check, 2013 dpaa2_switch_port_attr_set); 2014 return notifier_from_errno(err); 2015 } 2016 2017 static int dpaa2_switch_port_bridge_join(struct net_device *netdev, 2018 struct net_device *upper_dev, 2019 struct netlink_ext_ack *extack) 2020 { 2021 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 2022 struct dpaa2_switch_fdb *old_fdb = port_priv->fdb; 2023 struct ethsw_core *ethsw = port_priv->ethsw_data; 2024 bool learn_ena; 2025 int err; 2026 2027 /* Delete the previously manually installed VLAN 1 */ 2028 err = dpaa2_switch_port_del_vlan(port_priv, 1); 2029 if (err) 2030 return err; 2031 2032 dpaa2_switch_port_set_fdb(port_priv, upper_dev); 2033 2034 /* Inherit the initial bridge port learning state */ 2035 learn_ena = br_port_flag_is_set(netdev, BR_LEARNING); 2036 err = dpaa2_switch_port_set_learning(port_priv, learn_ena); 2037 port_priv->learn_ena = learn_ena; 2038 2039 /* Setup the egress flood policy (broadcast, unknown unicast) */ 2040 err = dpaa2_switch_fdb_set_egress_flood(ethsw, port_priv->fdb->fdb_id); 2041 if (err) 2042 goto err_egress_flood; 2043 2044 /* Recreate the egress flood domain of the FDB that we just left. */ 2045 err = dpaa2_switch_fdb_set_egress_flood(ethsw, old_fdb->fdb_id); 2046 if (err) 2047 goto err_egress_flood; 2048 2049 err = switchdev_bridge_port_offload(netdev, netdev, NULL, 2050 NULL, NULL, false, extack); 2051 if (err) 2052 goto err_switchdev_offload; 2053 2054 return 0; 2055 2056 err_switchdev_offload: 2057 err_egress_flood: 2058 dpaa2_switch_port_set_fdb(port_priv, NULL); 2059 return err; 2060 } 2061 2062 static int dpaa2_switch_port_clear_rxvlan(struct net_device *vdev, int vid, void *arg) 2063 { 2064 __be16 vlan_proto = htons(ETH_P_8021Q); 2065 2066 if (vdev) 2067 vlan_proto = vlan_dev_vlan_proto(vdev); 2068 2069 return dpaa2_switch_port_vlan_kill(arg, vlan_proto, vid); 2070 } 2071 2072 static int dpaa2_switch_port_restore_rxvlan(struct net_device *vdev, int vid, void *arg) 2073 { 2074 __be16 vlan_proto = htons(ETH_P_8021Q); 2075 2076 if (vdev) 2077 vlan_proto = vlan_dev_vlan_proto(vdev); 2078 2079 return dpaa2_switch_port_vlan_add(arg, vlan_proto, vid); 2080 } 2081 2082 static void dpaa2_switch_port_pre_bridge_leave(struct net_device *netdev) 2083 { 2084 switchdev_bridge_port_unoffload(netdev, NULL, NULL, NULL); 2085 } 2086 2087 static int dpaa2_switch_port_bridge_leave(struct net_device *netdev) 2088 { 2089 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 2090 struct dpaa2_switch_fdb *old_fdb = port_priv->fdb; 2091 struct ethsw_core *ethsw = port_priv->ethsw_data; 2092 int err; 2093 2094 /* First of all, fast age any learn FDB addresses on this switch port */ 2095 dpaa2_switch_port_fast_age(port_priv); 2096 2097 /* Clear all RX VLANs installed through vlan_vid_add() either as VLAN 2098 * upper devices or otherwise from the FDB table that we are about to 2099 * leave 2100 */ 2101 err = vlan_for_each(netdev, dpaa2_switch_port_clear_rxvlan, netdev); 2102 if (err) 2103 netdev_err(netdev, "Unable to clear RX VLANs from old FDB table, err (%d)\n", err); 2104 2105 dpaa2_switch_port_set_fdb(port_priv, NULL); 2106 2107 /* Restore all RX VLANs into the new FDB table that we just joined */ 2108 err = vlan_for_each(netdev, dpaa2_switch_port_restore_rxvlan, netdev); 2109 if (err) 2110 netdev_err(netdev, "Unable to restore RX VLANs to the new FDB, err (%d)\n", err); 2111 2112 /* Reset the flooding state to denote that this port can send any 2113 * packet in standalone mode. With this, we are also ensuring that any 2114 * later bridge join will have the flooding flag on. 2115 */ 2116 port_priv->bcast_flood = true; 2117 port_priv->ucast_flood = true; 2118 2119 /* Setup the egress flood policy (broadcast, unknown unicast). 2120 * When the port is not under a bridge, only the CTRL interface is part 2121 * of the flooding domain besides the actual port 2122 */ 2123 err = dpaa2_switch_fdb_set_egress_flood(ethsw, port_priv->fdb->fdb_id); 2124 if (err) 2125 return err; 2126 2127 /* Recreate the egress flood domain of the FDB that we just left */ 2128 err = dpaa2_switch_fdb_set_egress_flood(ethsw, old_fdb->fdb_id); 2129 if (err) 2130 return err; 2131 2132 /* No HW learning when not under a bridge */ 2133 err = dpaa2_switch_port_set_learning(port_priv, false); 2134 if (err) 2135 return err; 2136 port_priv->learn_ena = false; 2137 2138 /* Add the VLAN 1 as PVID when not under a bridge. We need this since 2139 * the dpaa2 switch interfaces are not capable to be VLAN unaware 2140 */ 2141 return dpaa2_switch_port_add_vlan(port_priv, DEFAULT_VLAN_ID, 2142 BRIDGE_VLAN_INFO_UNTAGGED | BRIDGE_VLAN_INFO_PVID); 2143 } 2144 2145 static int dpaa2_switch_prevent_bridging_with_8021q_upper(struct net_device *netdev) 2146 { 2147 struct net_device *upper_dev; 2148 struct list_head *iter; 2149 2150 /* RCU read lock not necessary because we have write-side protection 2151 * (rtnl_mutex), however a non-rcu iterator does not exist. 2152 */ 2153 netdev_for_each_upper_dev_rcu(netdev, upper_dev, iter) 2154 if (is_vlan_dev(upper_dev)) 2155 return -EOPNOTSUPP; 2156 2157 return 0; 2158 } 2159 2160 static int 2161 dpaa2_switch_prechangeupper_sanity_checks(struct net_device *netdev, 2162 struct net_device *upper_dev, 2163 struct netlink_ext_ack *extack) 2164 { 2165 struct ethsw_port_priv *port_priv = netdev_priv(netdev); 2166 struct ethsw_port_priv *other_port_priv; 2167 struct net_device *other_dev; 2168 struct list_head *iter; 2169 int err; 2170 2171 if (!br_vlan_enabled(upper_dev)) { 2172 NL_SET_ERR_MSG_MOD(extack, "Cannot join a VLAN-unaware bridge"); 2173 return -EOPNOTSUPP; 2174 } 2175 2176 err = dpaa2_switch_prevent_bridging_with_8021q_upper(netdev); 2177 if (err) { 2178 NL_SET_ERR_MSG_MOD(extack, 2179 "Cannot join a bridge while VLAN uppers are present"); 2180 return 0; 2181 } 2182 2183 netdev_for_each_lower_dev(upper_dev, other_dev, iter) { 2184 if (!dpaa2_switch_port_dev_check(other_dev)) 2185 continue; 2186 2187 other_port_priv = netdev_priv(other_dev); 2188 if (other_port_priv->ethsw_data != port_priv->ethsw_data) { 2189 NL_SET_ERR_MSG_MOD(extack, 2190 "Interface from a different DPSW is in the bridge already"); 2191 return -EINVAL; 2192 } 2193 } 2194 2195 return 0; 2196 } 2197 2198 static int dpaa2_switch_port_prechangeupper(struct net_device *netdev, 2199 struct netdev_notifier_changeupper_info *info) 2200 { 2201 struct netlink_ext_ack *extack; 2202 struct net_device *upper_dev; 2203 int err; 2204 2205 if (!dpaa2_switch_port_dev_check(netdev)) 2206 return 0; 2207 2208 extack = netdev_notifier_info_to_extack(&info->info); 2209 upper_dev = info->upper_dev; 2210 if (netif_is_bridge_master(upper_dev)) { 2211 err = dpaa2_switch_prechangeupper_sanity_checks(netdev, 2212 upper_dev, 2213 extack); 2214 if (err) 2215 return err; 2216 2217 if (!info->linking) 2218 dpaa2_switch_port_pre_bridge_leave(netdev); 2219 } 2220 2221 return 0; 2222 } 2223 2224 static int dpaa2_switch_port_changeupper(struct net_device *netdev, 2225 struct netdev_notifier_changeupper_info *info) 2226 { 2227 struct netlink_ext_ack *extack; 2228 struct net_device *upper_dev; 2229 2230 if (!dpaa2_switch_port_dev_check(netdev)) 2231 return 0; 2232 2233 extack = netdev_notifier_info_to_extack(&info->info); 2234 2235 upper_dev = info->upper_dev; 2236 if (netif_is_bridge_master(upper_dev)) { 2237 if (info->linking) 2238 return dpaa2_switch_port_bridge_join(netdev, 2239 upper_dev, 2240 extack); 2241 else 2242 return dpaa2_switch_port_bridge_leave(netdev); 2243 } 2244 2245 return 0; 2246 } 2247 2248 static int dpaa2_switch_port_netdevice_event(struct notifier_block *nb, 2249 unsigned long event, void *ptr) 2250 { 2251 struct net_device *netdev = netdev_notifier_info_to_dev(ptr); 2252 int err = 0; 2253 2254 switch (event) { 2255 case NETDEV_PRECHANGEUPPER: 2256 err = dpaa2_switch_port_prechangeupper(netdev, ptr); 2257 if (err) 2258 return notifier_from_errno(err); 2259 2260 break; 2261 case NETDEV_CHANGEUPPER: 2262 err = dpaa2_switch_port_changeupper(netdev, ptr); 2263 if (err) 2264 return notifier_from_errno(err); 2265 2266 break; 2267 } 2268 2269 return NOTIFY_DONE; 2270 } 2271 2272 struct ethsw_switchdev_event_work { 2273 struct work_struct work; 2274 struct switchdev_notifier_fdb_info fdb_info; 2275 struct net_device *dev; 2276 unsigned long event; 2277 }; 2278 2279 static void dpaa2_switch_event_work(struct work_struct *work) 2280 { 2281 struct ethsw_switchdev_event_work *switchdev_work = 2282 container_of(work, struct ethsw_switchdev_event_work, work); 2283 struct net_device *dev = switchdev_work->dev; 2284 struct switchdev_notifier_fdb_info *fdb_info; 2285 int err; 2286 2287 rtnl_lock(); 2288 fdb_info = &switchdev_work->fdb_info; 2289 2290 switch (switchdev_work->event) { 2291 case SWITCHDEV_FDB_ADD_TO_DEVICE: 2292 if (!fdb_info->added_by_user || fdb_info->is_local) 2293 break; 2294 if (is_unicast_ether_addr(fdb_info->addr)) 2295 err = dpaa2_switch_port_fdb_add_uc(netdev_priv(dev), 2296 fdb_info->addr); 2297 else 2298 err = dpaa2_switch_port_fdb_add_mc(netdev_priv(dev), 2299 fdb_info->addr); 2300 if (err) 2301 break; 2302 fdb_info->offloaded = true; 2303 call_switchdev_notifiers(SWITCHDEV_FDB_OFFLOADED, dev, 2304 &fdb_info->info, NULL); 2305 break; 2306 case SWITCHDEV_FDB_DEL_TO_DEVICE: 2307 if (!fdb_info->added_by_user || fdb_info->is_local) 2308 break; 2309 if (is_unicast_ether_addr(fdb_info->addr)) 2310 dpaa2_switch_port_fdb_del_uc(netdev_priv(dev), fdb_info->addr); 2311 else 2312 dpaa2_switch_port_fdb_del_mc(netdev_priv(dev), fdb_info->addr); 2313 break; 2314 } 2315 2316 rtnl_unlock(); 2317 kfree(switchdev_work->fdb_info.addr); 2318 kfree(switchdev_work); 2319 dev_put(dev); 2320 } 2321 2322 /* Called under rcu_read_lock() */ 2323 static int dpaa2_switch_port_event(struct notifier_block *nb, 2324 unsigned long event, void *ptr) 2325 { 2326 struct net_device *dev = switchdev_notifier_info_to_dev(ptr); 2327 struct ethsw_port_priv *port_priv = netdev_priv(dev); 2328 struct ethsw_switchdev_event_work *switchdev_work; 2329 struct switchdev_notifier_fdb_info *fdb_info = ptr; 2330 struct ethsw_core *ethsw = port_priv->ethsw_data; 2331 2332 if (event == SWITCHDEV_PORT_ATTR_SET) 2333 return dpaa2_switch_port_attr_set_event(dev, ptr); 2334 2335 if (!dpaa2_switch_port_dev_check(dev)) 2336 return NOTIFY_DONE; 2337 2338 switchdev_work = kzalloc_obj(*switchdev_work, GFP_ATOMIC); 2339 if (!switchdev_work) 2340 return NOTIFY_BAD; 2341 2342 INIT_WORK(&switchdev_work->work, dpaa2_switch_event_work); 2343 switchdev_work->dev = dev; 2344 switchdev_work->event = event; 2345 2346 switch (event) { 2347 case SWITCHDEV_FDB_ADD_TO_DEVICE: 2348 case SWITCHDEV_FDB_DEL_TO_DEVICE: 2349 memcpy(&switchdev_work->fdb_info, ptr, 2350 sizeof(switchdev_work->fdb_info)); 2351 switchdev_work->fdb_info.addr = kzalloc(ETH_ALEN, GFP_ATOMIC); 2352 if (!switchdev_work->fdb_info.addr) 2353 goto err_addr_alloc; 2354 2355 ether_addr_copy((u8 *)switchdev_work->fdb_info.addr, 2356 fdb_info->addr); 2357 2358 /* Take a reference on the device to avoid being freed. */ 2359 dev_hold(dev); 2360 break; 2361 default: 2362 kfree(switchdev_work); 2363 return NOTIFY_DONE; 2364 } 2365 2366 queue_work(ethsw->workqueue, &switchdev_work->work); 2367 2368 return NOTIFY_DONE; 2369 2370 err_addr_alloc: 2371 kfree(switchdev_work); 2372 return NOTIFY_BAD; 2373 } 2374 2375 static int dpaa2_switch_port_obj_event(unsigned long event, 2376 struct net_device *netdev, 2377 struct switchdev_notifier_port_obj_info *port_obj_info) 2378 { 2379 int err = -EOPNOTSUPP; 2380 2381 if (!dpaa2_switch_port_dev_check(netdev)) 2382 return NOTIFY_DONE; 2383 2384 switch (event) { 2385 case SWITCHDEV_PORT_OBJ_ADD: 2386 err = dpaa2_switch_port_obj_add(netdev, port_obj_info->obj); 2387 break; 2388 case SWITCHDEV_PORT_OBJ_DEL: 2389 err = dpaa2_switch_port_obj_del(netdev, port_obj_info->obj); 2390 break; 2391 } 2392 2393 port_obj_info->handled = true; 2394 return notifier_from_errno(err); 2395 } 2396 2397 static int dpaa2_switch_port_blocking_event(struct notifier_block *nb, 2398 unsigned long event, void *ptr) 2399 { 2400 struct net_device *dev = switchdev_notifier_info_to_dev(ptr); 2401 2402 switch (event) { 2403 case SWITCHDEV_PORT_OBJ_ADD: 2404 case SWITCHDEV_PORT_OBJ_DEL: 2405 return dpaa2_switch_port_obj_event(event, dev, ptr); 2406 case SWITCHDEV_PORT_ATTR_SET: 2407 return dpaa2_switch_port_attr_set_event(dev, ptr); 2408 } 2409 2410 return NOTIFY_DONE; 2411 } 2412 2413 /* Build a linear skb based on a single-buffer frame descriptor */ 2414 static struct sk_buff *dpaa2_switch_build_linear_skb(struct ethsw_core *ethsw, 2415 const struct dpaa2_fd *fd) 2416 { 2417 u16 fd_offset = dpaa2_fd_get_offset(fd); 2418 dma_addr_t addr = dpaa2_fd_get_addr(fd); 2419 u32 fd_length = dpaa2_fd_get_len(fd); 2420 struct device *dev = ethsw->dev; 2421 struct sk_buff *skb = NULL; 2422 void *fd_vaddr; 2423 2424 fd_vaddr = dpaa2_iova_to_virt(ethsw->iommu_domain, addr); 2425 dma_unmap_page(dev, addr, DPAA2_SWITCH_RX_BUF_SIZE, 2426 DMA_FROM_DEVICE); 2427 2428 skb = build_skb(fd_vaddr, DPAA2_SWITCH_RX_BUF_SIZE + 2429 SKB_DATA_ALIGN(sizeof(struct skb_shared_info))); 2430 if (unlikely(!skb)) { 2431 dev_err(dev, "build_skb() failed\n"); 2432 return NULL; 2433 } 2434 2435 skb_reserve(skb, fd_offset); 2436 skb_put(skb, fd_length); 2437 2438 ethsw->buf_count--; 2439 2440 return skb; 2441 } 2442 2443 static void dpaa2_switch_tx_conf(struct dpaa2_switch_fq *fq, 2444 const struct dpaa2_fd *fd) 2445 { 2446 dpaa2_switch_free_fd(fq->ethsw, fd); 2447 } 2448 2449 static void dpaa2_switch_rx(struct dpaa2_switch_fq *fq, 2450 const struct dpaa2_fd *fd) 2451 { 2452 struct ethsw_core *ethsw = fq->ethsw; 2453 struct ethsw_port_priv *port_priv; 2454 struct net_device *netdev; 2455 struct vlan_ethhdr *hdr; 2456 struct sk_buff *skb; 2457 u16 vlan_tci, vid; 2458 int if_id, err; 2459 2460 /* get switch ingress interface ID */ 2461 if_id = upper_32_bits(dpaa2_fd_get_flc(fd)) & 0x0000FFFF; 2462 2463 if (if_id >= ethsw->sw_attr.num_ifs) { 2464 dev_err(ethsw->dev, "Frame received from unknown interface!\n"); 2465 goto err_free_fd; 2466 } 2467 port_priv = ethsw->ports[if_id]; 2468 netdev = port_priv->netdev; 2469 2470 /* build the SKB based on the FD received */ 2471 if (dpaa2_fd_get_format(fd) != dpaa2_fd_single) { 2472 if (net_ratelimit()) { 2473 netdev_err(netdev, "Received invalid frame format\n"); 2474 goto err_free_fd; 2475 } 2476 } 2477 2478 skb = dpaa2_switch_build_linear_skb(ethsw, fd); 2479 if (unlikely(!skb)) 2480 goto err_free_fd; 2481 2482 skb_reset_mac_header(skb); 2483 2484 /* Remove the VLAN header if the packet that we just received has a vid 2485 * equal to the port PVIDs. Since the dpaa2-switch can operate only in 2486 * VLAN-aware mode and no alterations are made on the packet when it's 2487 * redirected/mirrored to the control interface, we are sure that there 2488 * will always be a VLAN header present. 2489 */ 2490 hdr = vlan_eth_hdr(skb); 2491 vid = ntohs(hdr->h_vlan_TCI) & VLAN_VID_MASK; 2492 if (vid == port_priv->pvid) { 2493 err = __skb_vlan_pop(skb, &vlan_tci); 2494 if (err) { 2495 dev_info(ethsw->dev, "__skb_vlan_pop() returned %d", err); 2496 goto err_free_fd; 2497 } 2498 } 2499 2500 skb->dev = netdev; 2501 skb->protocol = eth_type_trans(skb, skb->dev); 2502 2503 /* Setup the offload_fwd_mark only if the port is under a bridge */ 2504 skb->offload_fwd_mark = !!(port_priv->fdb->bridge_dev); 2505 2506 netif_receive_skb(skb); 2507 2508 return; 2509 2510 err_free_fd: 2511 dpaa2_switch_free_fd(ethsw, fd); 2512 } 2513 2514 static void dpaa2_switch_detect_features(struct ethsw_core *ethsw) 2515 { 2516 ethsw->features = 0; 2517 2518 if (ethsw->major > 8 || (ethsw->major == 8 && ethsw->minor >= 6)) 2519 ethsw->features |= ETHSW_FEATURE_MAC_ADDR; 2520 } 2521 2522 static int dpaa2_switch_setup_fqs(struct ethsw_core *ethsw) 2523 { 2524 struct dpsw_ctrl_if_attr ctrl_if_attr; 2525 struct device *dev = ethsw->dev; 2526 int i = 0; 2527 int err; 2528 2529 err = dpsw_ctrl_if_get_attributes(ethsw->mc_io, 0, ethsw->dpsw_handle, 2530 &ctrl_if_attr); 2531 if (err) { 2532 dev_err(dev, "dpsw_ctrl_if_get_attributes() = %d\n", err); 2533 return err; 2534 } 2535 2536 ethsw->fq[i].fqid = ctrl_if_attr.rx_fqid; 2537 ethsw->fq[i].ethsw = ethsw; 2538 ethsw->fq[i++].type = DPSW_QUEUE_RX; 2539 2540 ethsw->fq[i].fqid = ctrl_if_attr.tx_err_conf_fqid; 2541 ethsw->fq[i].ethsw = ethsw; 2542 ethsw->fq[i++].type = DPSW_QUEUE_TX_ERR_CONF; 2543 2544 return 0; 2545 } 2546 2547 /* Free buffers acquired from the buffer pool or which were meant to 2548 * be released in the pool 2549 */ 2550 static void dpaa2_switch_free_bufs(struct ethsw_core *ethsw, u64 *buf_array, int count) 2551 { 2552 struct device *dev = ethsw->dev; 2553 void *vaddr; 2554 int i; 2555 2556 for (i = 0; i < count; i++) { 2557 vaddr = dpaa2_iova_to_virt(ethsw->iommu_domain, buf_array[i]); 2558 dma_unmap_page(dev, buf_array[i], DPAA2_SWITCH_RX_BUF_SIZE, 2559 DMA_FROM_DEVICE); 2560 free_pages((unsigned long)vaddr, 0); 2561 } 2562 } 2563 2564 /* Perform a single release command to add buffers 2565 * to the specified buffer pool 2566 */ 2567 static int dpaa2_switch_add_bufs(struct ethsw_core *ethsw, u16 bpid) 2568 { 2569 struct device *dev = ethsw->dev; 2570 u64 buf_array[BUFS_PER_CMD]; 2571 struct page *page; 2572 int retries = 0; 2573 dma_addr_t addr; 2574 int err; 2575 int i; 2576 2577 for (i = 0; i < BUFS_PER_CMD; i++) { 2578 /* Allocate one page for each Rx buffer. WRIOP sees 2579 * the entire page except for a tailroom reserved for 2580 * skb shared info 2581 */ 2582 page = dev_alloc_pages(0); 2583 if (!page) { 2584 dev_err(dev, "buffer allocation failed\n"); 2585 goto err_alloc; 2586 } 2587 2588 addr = dma_map_page(dev, page, 0, DPAA2_SWITCH_RX_BUF_SIZE, 2589 DMA_FROM_DEVICE); 2590 if (dma_mapping_error(dev, addr)) { 2591 dev_err(dev, "dma_map_single() failed\n"); 2592 goto err_map; 2593 } 2594 buf_array[i] = addr; 2595 } 2596 2597 release_bufs: 2598 /* In case the portal is busy, retry until successful or 2599 * max retries hit. 2600 */ 2601 while ((err = dpaa2_io_service_release(NULL, bpid, 2602 buf_array, i)) == -EBUSY) { 2603 if (retries++ >= DPAA2_SWITCH_SWP_BUSY_RETRIES) 2604 break; 2605 2606 cpu_relax(); 2607 } 2608 2609 /* If release command failed, clean up and bail out. */ 2610 if (err) { 2611 dpaa2_switch_free_bufs(ethsw, buf_array, i); 2612 return 0; 2613 } 2614 2615 return i; 2616 2617 err_map: 2618 __free_pages(page, 0); 2619 err_alloc: 2620 /* If we managed to allocate at least some buffers, 2621 * release them to hardware 2622 */ 2623 if (i) 2624 goto release_bufs; 2625 2626 return 0; 2627 } 2628 2629 static int dpaa2_switch_refill_bp(struct ethsw_core *ethsw) 2630 { 2631 int *count = ðsw->buf_count; 2632 int new_count; 2633 int err = 0; 2634 2635 if (unlikely(*count < DPAA2_ETHSW_REFILL_THRESH)) { 2636 do { 2637 new_count = dpaa2_switch_add_bufs(ethsw, ethsw->bpid); 2638 if (unlikely(!new_count)) { 2639 /* Out of memory; abort for now, we'll 2640 * try later on 2641 */ 2642 break; 2643 } 2644 *count += new_count; 2645 } while (*count < DPAA2_ETHSW_NUM_BUFS); 2646 2647 if (unlikely(*count < DPAA2_ETHSW_NUM_BUFS)) 2648 err = -ENOMEM; 2649 } 2650 2651 return err; 2652 } 2653 2654 static int dpaa2_switch_seed_bp(struct ethsw_core *ethsw) 2655 { 2656 int *count, ret, i; 2657 2658 for (i = 0; i < DPAA2_ETHSW_NUM_BUFS; i += BUFS_PER_CMD) { 2659 ret = dpaa2_switch_add_bufs(ethsw, ethsw->bpid); 2660 count = ðsw->buf_count; 2661 *count += ret; 2662 2663 if (unlikely(ret < BUFS_PER_CMD)) 2664 return -ENOMEM; 2665 } 2666 2667 return 0; 2668 } 2669 2670 static void dpaa2_switch_drain_bp(struct ethsw_core *ethsw) 2671 { 2672 u64 buf_array[BUFS_PER_CMD]; 2673 int ret; 2674 2675 do { 2676 ret = dpaa2_io_service_acquire(NULL, ethsw->bpid, 2677 buf_array, BUFS_PER_CMD); 2678 if (ret < 0) { 2679 dev_err(ethsw->dev, 2680 "dpaa2_io_service_acquire() = %d\n", ret); 2681 return; 2682 } 2683 dpaa2_switch_free_bufs(ethsw, buf_array, ret); 2684 2685 } while (ret); 2686 } 2687 2688 static int dpaa2_switch_setup_dpbp(struct ethsw_core *ethsw) 2689 { 2690 struct dpsw_ctrl_if_pools_cfg dpsw_ctrl_if_pools_cfg = { 0 }; 2691 struct device *dev = ethsw->dev; 2692 struct fsl_mc_device *dpbp_dev; 2693 struct dpbp_attr dpbp_attrs; 2694 int err; 2695 2696 err = fsl_mc_object_allocate(to_fsl_mc_device(dev), FSL_MC_POOL_DPBP, 2697 &dpbp_dev); 2698 if (err) { 2699 if (err == -ENXIO) 2700 err = -EPROBE_DEFER; 2701 else 2702 dev_err(dev, "DPBP device allocation failed\n"); 2703 return err; 2704 } 2705 ethsw->dpbp_dev = dpbp_dev; 2706 2707 err = dpbp_open(ethsw->mc_io, 0, dpbp_dev->obj_desc.id, 2708 &dpbp_dev->mc_handle); 2709 if (err) { 2710 dev_err(dev, "dpbp_open() failed\n"); 2711 goto err_open; 2712 } 2713 2714 err = dpbp_reset(ethsw->mc_io, 0, dpbp_dev->mc_handle); 2715 if (err) { 2716 dev_err(dev, "dpbp_reset() failed\n"); 2717 goto err_reset; 2718 } 2719 2720 err = dpbp_enable(ethsw->mc_io, 0, dpbp_dev->mc_handle); 2721 if (err) { 2722 dev_err(dev, "dpbp_enable() failed\n"); 2723 goto err_enable; 2724 } 2725 2726 err = dpbp_get_attributes(ethsw->mc_io, 0, dpbp_dev->mc_handle, 2727 &dpbp_attrs); 2728 if (err) { 2729 dev_err(dev, "dpbp_get_attributes() failed\n"); 2730 goto err_get_attr; 2731 } 2732 2733 dpsw_ctrl_if_pools_cfg.num_dpbp = 1; 2734 dpsw_ctrl_if_pools_cfg.pools[0].dpbp_id = dpbp_attrs.id; 2735 dpsw_ctrl_if_pools_cfg.pools[0].buffer_size = DPAA2_SWITCH_RX_BUF_SIZE; 2736 dpsw_ctrl_if_pools_cfg.pools[0].backup_pool = 0; 2737 2738 err = dpsw_ctrl_if_set_pools(ethsw->mc_io, 0, ethsw->dpsw_handle, 2739 &dpsw_ctrl_if_pools_cfg); 2740 if (err) { 2741 dev_err(dev, "dpsw_ctrl_if_set_pools() failed\n"); 2742 goto err_get_attr; 2743 } 2744 ethsw->bpid = dpbp_attrs.bpid; 2745 2746 return 0; 2747 2748 err_get_attr: 2749 dpbp_disable(ethsw->mc_io, 0, dpbp_dev->mc_handle); 2750 err_enable: 2751 err_reset: 2752 dpbp_close(ethsw->mc_io, 0, dpbp_dev->mc_handle); 2753 err_open: 2754 fsl_mc_object_free(dpbp_dev); 2755 return err; 2756 } 2757 2758 static void dpaa2_switch_free_dpbp(struct ethsw_core *ethsw) 2759 { 2760 dpbp_disable(ethsw->mc_io, 0, ethsw->dpbp_dev->mc_handle); 2761 dpbp_close(ethsw->mc_io, 0, ethsw->dpbp_dev->mc_handle); 2762 fsl_mc_object_free(ethsw->dpbp_dev); 2763 } 2764 2765 static int dpaa2_switch_alloc_rings(struct ethsw_core *ethsw) 2766 { 2767 int i; 2768 2769 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) { 2770 ethsw->fq[i].store = 2771 dpaa2_io_store_create(DPAA2_SWITCH_STORE_SIZE, 2772 ethsw->dev); 2773 if (!ethsw->fq[i].store) { 2774 dev_err(ethsw->dev, "dpaa2_io_store_create failed\n"); 2775 while (--i >= 0) 2776 dpaa2_io_store_destroy(ethsw->fq[i].store); 2777 return -ENOMEM; 2778 } 2779 } 2780 2781 return 0; 2782 } 2783 2784 static void dpaa2_switch_destroy_rings(struct ethsw_core *ethsw) 2785 { 2786 int i; 2787 2788 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) 2789 dpaa2_io_store_destroy(ethsw->fq[i].store); 2790 } 2791 2792 static int dpaa2_switch_pull_fq(struct dpaa2_switch_fq *fq) 2793 { 2794 int err, retries = 0; 2795 2796 /* Try to pull from the FQ while the portal is busy and we didn't hit 2797 * the maximum number fo retries 2798 */ 2799 do { 2800 err = dpaa2_io_service_pull_fq(NULL, fq->fqid, fq->store); 2801 cpu_relax(); 2802 } while (err == -EBUSY && retries++ < DPAA2_SWITCH_SWP_BUSY_RETRIES); 2803 2804 if (unlikely(err)) 2805 dev_err(fq->ethsw->dev, "dpaa2_io_service_pull err %d", err); 2806 2807 return err; 2808 } 2809 2810 /* Consume all frames pull-dequeued into the store */ 2811 static int dpaa2_switch_store_consume(struct dpaa2_switch_fq *fq) 2812 { 2813 struct ethsw_core *ethsw = fq->ethsw; 2814 int cleaned = 0, is_last; 2815 struct dpaa2_dq *dq; 2816 int retries = 0; 2817 2818 do { 2819 /* Get the next available FD from the store */ 2820 dq = dpaa2_io_store_next(fq->store, &is_last); 2821 if (unlikely(!dq)) { 2822 if (retries++ >= DPAA2_SWITCH_SWP_BUSY_RETRIES) { 2823 dev_err_once(ethsw->dev, 2824 "No valid dequeue response\n"); 2825 return -ETIMEDOUT; 2826 } 2827 continue; 2828 } 2829 2830 if (fq->type == DPSW_QUEUE_RX) 2831 dpaa2_switch_rx(fq, dpaa2_dq_fd(dq)); 2832 else 2833 dpaa2_switch_tx_conf(fq, dpaa2_dq_fd(dq)); 2834 cleaned++; 2835 2836 } while (!is_last); 2837 2838 return cleaned; 2839 } 2840 2841 /* NAPI poll routine */ 2842 static int dpaa2_switch_poll(struct napi_struct *napi, int budget) 2843 { 2844 int err, cleaned = 0, store_cleaned, work_done; 2845 struct dpaa2_switch_fq *fq; 2846 int retries = 0; 2847 2848 fq = container_of(napi, struct dpaa2_switch_fq, napi); 2849 2850 do { 2851 err = dpaa2_switch_pull_fq(fq); 2852 if (unlikely(err)) 2853 break; 2854 2855 /* Refill pool if appropriate */ 2856 dpaa2_switch_refill_bp(fq->ethsw); 2857 2858 store_cleaned = dpaa2_switch_store_consume(fq); 2859 cleaned += store_cleaned; 2860 2861 if (cleaned >= budget) { 2862 work_done = budget; 2863 goto out; 2864 } 2865 2866 } while (store_cleaned); 2867 2868 /* We didn't consume the entire budget, so finish napi and re-enable 2869 * data availability notifications 2870 */ 2871 napi_complete_done(napi, cleaned); 2872 do { 2873 err = dpaa2_io_service_rearm(NULL, &fq->nctx); 2874 cpu_relax(); 2875 } while (err == -EBUSY && retries++ < DPAA2_SWITCH_SWP_BUSY_RETRIES); 2876 2877 work_done = max(cleaned, 1); 2878 out: 2879 2880 return work_done; 2881 } 2882 2883 static void dpaa2_switch_fqdan_cb(struct dpaa2_io_notification_ctx *nctx) 2884 { 2885 struct dpaa2_switch_fq *fq; 2886 2887 fq = container_of(nctx, struct dpaa2_switch_fq, nctx); 2888 2889 napi_schedule(&fq->napi); 2890 } 2891 2892 static int dpaa2_switch_setup_dpio(struct ethsw_core *ethsw) 2893 { 2894 struct dpsw_ctrl_if_queue_cfg queue_cfg; 2895 struct dpaa2_io_notification_ctx *nctx; 2896 int err, i, j; 2897 2898 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) { 2899 nctx = ðsw->fq[i].nctx; 2900 2901 /* Register a new software context for the FQID. 2902 * By using NULL as the first parameter, we specify that we do 2903 * not care on which cpu are interrupts received for this queue 2904 */ 2905 nctx->is_cdan = 0; 2906 nctx->id = ethsw->fq[i].fqid; 2907 nctx->desired_cpu = DPAA2_IO_ANY_CPU; 2908 nctx->cb = dpaa2_switch_fqdan_cb; 2909 err = dpaa2_io_service_register(NULL, nctx, ethsw->dev); 2910 if (err) { 2911 err = -EPROBE_DEFER; 2912 goto err_register; 2913 } 2914 2915 queue_cfg.options = DPSW_CTRL_IF_QUEUE_OPT_DEST | 2916 DPSW_CTRL_IF_QUEUE_OPT_USER_CTX; 2917 queue_cfg.dest_cfg.dest_type = DPSW_CTRL_IF_DEST_DPIO; 2918 queue_cfg.dest_cfg.dest_id = nctx->dpio_id; 2919 queue_cfg.dest_cfg.priority = 0; 2920 queue_cfg.user_ctx = nctx->qman64; 2921 2922 err = dpsw_ctrl_if_set_queue(ethsw->mc_io, 0, 2923 ethsw->dpsw_handle, 2924 ethsw->fq[i].type, 2925 &queue_cfg); 2926 if (err) 2927 goto err_set_queue; 2928 } 2929 2930 return 0; 2931 2932 err_set_queue: 2933 dpaa2_io_service_deregister(NULL, nctx, ethsw->dev); 2934 err_register: 2935 for (j = 0; j < i; j++) 2936 dpaa2_io_service_deregister(NULL, ðsw->fq[j].nctx, 2937 ethsw->dev); 2938 2939 return err; 2940 } 2941 2942 static void dpaa2_switch_free_dpio(struct ethsw_core *ethsw) 2943 { 2944 int i; 2945 2946 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) 2947 dpaa2_io_service_deregister(NULL, ðsw->fq[i].nctx, 2948 ethsw->dev); 2949 } 2950 2951 static int dpaa2_switch_ctrl_if_setup(struct ethsw_core *ethsw) 2952 { 2953 int err; 2954 2955 /* setup FQs for Rx and Tx Conf */ 2956 err = dpaa2_switch_setup_fqs(ethsw); 2957 if (err) 2958 return err; 2959 2960 /* setup the buffer pool needed on the Rx path */ 2961 err = dpaa2_switch_setup_dpbp(ethsw); 2962 if (err) 2963 return err; 2964 2965 err = dpaa2_switch_alloc_rings(ethsw); 2966 if (err) 2967 goto err_free_dpbp; 2968 2969 err = dpaa2_switch_setup_dpio(ethsw); 2970 if (err) 2971 goto err_destroy_rings; 2972 2973 err = dpaa2_switch_seed_bp(ethsw); 2974 if (err) 2975 goto err_deregister_dpio; 2976 2977 err = dpsw_ctrl_if_enable(ethsw->mc_io, 0, ethsw->dpsw_handle); 2978 if (err) { 2979 dev_err(ethsw->dev, "dpsw_ctrl_if_enable err %d\n", err); 2980 goto err_drain_dpbp; 2981 } 2982 2983 return 0; 2984 2985 err_drain_dpbp: 2986 dpaa2_switch_drain_bp(ethsw); 2987 err_deregister_dpio: 2988 dpaa2_switch_free_dpio(ethsw); 2989 err_destroy_rings: 2990 dpaa2_switch_destroy_rings(ethsw); 2991 err_free_dpbp: 2992 dpaa2_switch_free_dpbp(ethsw); 2993 2994 return err; 2995 } 2996 2997 static void dpaa2_switch_remove_port(struct ethsw_core *ethsw, 2998 u16 port_idx) 2999 { 3000 struct ethsw_port_priv *port_priv = ethsw->ports[port_idx]; 3001 3002 dpaa2_switch_port_disconnect_mac(port_priv); 3003 free_netdev(port_priv->netdev); 3004 ethsw->ports[port_idx] = NULL; 3005 } 3006 3007 static int dpaa2_switch_init(struct fsl_mc_device *sw_dev) 3008 { 3009 struct device *dev = &sw_dev->dev; 3010 struct ethsw_core *ethsw = dev_get_drvdata(dev); 3011 struct dpsw_vlan_if_cfg vcfg = {0}; 3012 struct dpsw_tci_cfg tci_cfg = {0}; 3013 struct dpsw_stp_cfg stp_cfg; 3014 int err; 3015 u16 i; 3016 3017 ethsw->dev_id = sw_dev->obj_desc.id; 3018 3019 err = dpsw_open(ethsw->mc_io, 0, ethsw->dev_id, ðsw->dpsw_handle); 3020 if (err) { 3021 dev_err(dev, "dpsw_open err %d\n", err); 3022 return err; 3023 } 3024 3025 err = dpsw_get_attributes(ethsw->mc_io, 0, ethsw->dpsw_handle, 3026 ðsw->sw_attr); 3027 if (err) { 3028 dev_err(dev, "dpsw_get_attributes err %d\n", err); 3029 goto err_close; 3030 } 3031 3032 if (!ethsw->sw_attr.num_ifs) { 3033 dev_err(dev, "DPSW device has no interfaces\n"); 3034 err = -ENODEV; 3035 goto err_close; 3036 } 3037 3038 if (ethsw->sw_attr.num_ifs >= DPSW_MAX_IF) { 3039 dev_err(dev, "DPSW num_ifs %u exceeds max %u\n", 3040 ethsw->sw_attr.num_ifs, DPSW_MAX_IF); 3041 err = -EINVAL; 3042 goto err_close; 3043 } 3044 3045 err = dpsw_get_api_version(ethsw->mc_io, 0, 3046 ðsw->major, 3047 ðsw->minor); 3048 if (err) { 3049 dev_err(dev, "dpsw_get_api_version err %d\n", err); 3050 goto err_close; 3051 } 3052 3053 /* Minimum supported DPSW version check */ 3054 if (ethsw->major < DPSW_MIN_VER_MAJOR || 3055 (ethsw->major == DPSW_MIN_VER_MAJOR && 3056 ethsw->minor < DPSW_MIN_VER_MINOR)) { 3057 dev_err(dev, "DPSW version %d:%d not supported. Use firmware 10.28.0 or greater.\n", 3058 ethsw->major, ethsw->minor); 3059 err = -EOPNOTSUPP; 3060 goto err_close; 3061 } 3062 3063 if (!dpaa2_switch_supports_cpu_traffic(ethsw)) { 3064 err = -EOPNOTSUPP; 3065 goto err_close; 3066 } 3067 3068 dpaa2_switch_detect_features(ethsw); 3069 3070 err = dpsw_reset(ethsw->mc_io, 0, ethsw->dpsw_handle); 3071 if (err) { 3072 dev_err(dev, "dpsw_reset err %d\n", err); 3073 goto err_close; 3074 } 3075 3076 stp_cfg.vlan_id = DEFAULT_VLAN_ID; 3077 stp_cfg.state = DPSW_STP_STATE_FORWARDING; 3078 3079 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 3080 err = dpsw_if_disable(ethsw->mc_io, 0, ethsw->dpsw_handle, i); 3081 if (err) { 3082 dev_err(dev, "dpsw_if_disable err %d\n", err); 3083 goto err_close; 3084 } 3085 3086 err = dpsw_if_set_stp(ethsw->mc_io, 0, ethsw->dpsw_handle, i, 3087 &stp_cfg); 3088 if (err) { 3089 dev_err(dev, "dpsw_if_set_stp err %d for port %d\n", 3090 err, i); 3091 goto err_close; 3092 } 3093 3094 /* Switch starts with all ports configured to VLAN 1. Need to 3095 * remove this setting to allow configuration at bridge join 3096 */ 3097 vcfg.num_ifs = 1; 3098 vcfg.if_id[0] = i; 3099 err = dpsw_vlan_remove_if_untagged(ethsw->mc_io, 0, ethsw->dpsw_handle, 3100 DEFAULT_VLAN_ID, &vcfg); 3101 if (err) { 3102 dev_err(dev, "dpsw_vlan_remove_if_untagged err %d\n", 3103 err); 3104 goto err_close; 3105 } 3106 3107 tci_cfg.vlan_id = 4095; 3108 err = dpsw_if_set_tci(ethsw->mc_io, 0, ethsw->dpsw_handle, i, &tci_cfg); 3109 if (err) { 3110 dev_err(dev, "dpsw_if_set_tci err %d\n", err); 3111 goto err_close; 3112 } 3113 3114 err = dpsw_vlan_remove_if(ethsw->mc_io, 0, ethsw->dpsw_handle, 3115 DEFAULT_VLAN_ID, &vcfg); 3116 if (err) { 3117 dev_err(dev, "dpsw_vlan_remove_if err %d\n", err); 3118 goto err_close; 3119 } 3120 } 3121 3122 err = dpsw_vlan_remove(ethsw->mc_io, 0, ethsw->dpsw_handle, DEFAULT_VLAN_ID); 3123 if (err) { 3124 dev_err(dev, "dpsw_vlan_remove err %d\n", err); 3125 goto err_close; 3126 } 3127 3128 ethsw->workqueue = alloc_ordered_workqueue("%s_%d_ordered", 3129 WQ_MEM_RECLAIM, "ethsw", 3130 ethsw->sw_attr.id); 3131 if (!ethsw->workqueue) { 3132 err = -ENOMEM; 3133 goto err_close; 3134 } 3135 3136 err = dpsw_fdb_remove(ethsw->mc_io, 0, ethsw->dpsw_handle, 0); 3137 if (err) 3138 goto err_destroy_ordered_workqueue; 3139 3140 err = dpaa2_switch_ctrl_if_setup(ethsw); 3141 if (err) 3142 goto err_destroy_ordered_workqueue; 3143 3144 return 0; 3145 3146 err_destroy_ordered_workqueue: 3147 destroy_workqueue(ethsw->workqueue); 3148 3149 err_close: 3150 dpsw_close(ethsw->mc_io, 0, ethsw->dpsw_handle); 3151 return err; 3152 } 3153 3154 /* Add an ACL to redirect frames with specific destination MAC address to 3155 * control interface 3156 */ 3157 static int dpaa2_switch_port_trap_mac_addr(struct ethsw_port_priv *port_priv, 3158 const char *mac) 3159 { 3160 struct dpaa2_switch_acl_entry acl_entry = {0}; 3161 3162 /* Match on the destination MAC address */ 3163 ether_addr_copy(acl_entry.key.match.l2_dest_mac, mac); 3164 eth_broadcast_addr(acl_entry.key.mask.l2_dest_mac); 3165 3166 /* Trap to CPU */ 3167 acl_entry.cfg.precedence = 0; 3168 acl_entry.cfg.result.action = DPSW_ACL_ACTION_REDIRECT_TO_CTRL_IF; 3169 3170 return dpaa2_switch_acl_entry_add(port_priv->filter_block, &acl_entry); 3171 } 3172 3173 static int dpaa2_switch_port_init(struct ethsw_port_priv *port_priv, u16 port) 3174 { 3175 const char stpa[ETH_ALEN] = {0x01, 0x80, 0xc2, 0x00, 0x00, 0x00}; 3176 struct switchdev_obj_port_vlan vlan = { 3177 .obj.id = SWITCHDEV_OBJ_ID_PORT_VLAN, 3178 .vid = DEFAULT_VLAN_ID, 3179 .flags = BRIDGE_VLAN_INFO_UNTAGGED | BRIDGE_VLAN_INFO_PVID, 3180 }; 3181 struct net_device *netdev = port_priv->netdev; 3182 struct ethsw_core *ethsw = port_priv->ethsw_data; 3183 struct dpaa2_switch_filter_block *filter_block; 3184 struct dpsw_fdb_cfg fdb_cfg = {0}; 3185 struct dpsw_if_attr dpsw_if_attr; 3186 struct dpaa2_switch_fdb *fdb; 3187 struct dpsw_acl_cfg acl_cfg; 3188 u16 fdb_id, acl_tbl_id; 3189 int err; 3190 3191 /* Get the Tx queue for this specific port */ 3192 err = dpsw_if_get_attributes(ethsw->mc_io, 0, ethsw->dpsw_handle, 3193 port_priv->idx, &dpsw_if_attr); 3194 if (err) { 3195 netdev_err(netdev, "dpsw_if_get_attributes err %d\n", err); 3196 return err; 3197 } 3198 port_priv->tx_qdid = dpsw_if_attr.qdid; 3199 3200 /* Create a FDB table for this particular switch port */ 3201 fdb_cfg.num_fdb_entries = ethsw->sw_attr.max_fdb_entries / ethsw->sw_attr.num_ifs; 3202 err = dpsw_fdb_add(ethsw->mc_io, 0, ethsw->dpsw_handle, 3203 &fdb_id, &fdb_cfg); 3204 if (err) { 3205 netdev_err(netdev, "dpsw_fdb_add err %d\n", err); 3206 return err; 3207 } 3208 3209 /* Find an unused dpaa2_switch_fdb structure and use it */ 3210 fdb = dpaa2_switch_fdb_get_unused(ethsw); 3211 fdb->fdb_id = fdb_id; 3212 fdb->in_use = true; 3213 fdb->bridge_dev = NULL; 3214 port_priv->fdb = fdb; 3215 3216 /* We need to add VLAN 1 as the PVID on this port until it is under a 3217 * bridge since the DPAA2 switch is not able to handle the traffic in a 3218 * VLAN unaware fashion 3219 */ 3220 err = dpaa2_switch_port_vlans_add(netdev, &vlan); 3221 if (err) 3222 return err; 3223 3224 /* Setup the egress flooding domains (broadcast, unknown unicast */ 3225 err = dpaa2_switch_fdb_set_egress_flood(ethsw, port_priv->fdb->fdb_id); 3226 if (err) 3227 return err; 3228 3229 /* Create an ACL table to be used by this switch port */ 3230 acl_cfg.max_entries = DPAA2_ETHSW_PORT_MAX_ACL_ENTRIES; 3231 err = dpsw_acl_add(ethsw->mc_io, 0, ethsw->dpsw_handle, 3232 &acl_tbl_id, &acl_cfg); 3233 if (err) { 3234 netdev_err(netdev, "dpsw_acl_add err %d\n", err); 3235 return err; 3236 } 3237 3238 filter_block = dpaa2_switch_filter_block_get_unused(ethsw); 3239 filter_block->ethsw = ethsw; 3240 filter_block->acl_id = acl_tbl_id; 3241 filter_block->in_use = true; 3242 filter_block->num_acl_rules = 0; 3243 INIT_LIST_HEAD(&filter_block->acl_entries); 3244 INIT_LIST_HEAD(&filter_block->mirror_entries); 3245 3246 err = dpaa2_switch_port_acl_tbl_bind(port_priv, filter_block); 3247 if (err) 3248 return err; 3249 3250 err = dpaa2_switch_port_trap_mac_addr(port_priv, stpa); 3251 if (err) 3252 return err; 3253 3254 return err; 3255 } 3256 3257 static void dpaa2_switch_ctrl_if_teardown(struct ethsw_core *ethsw) 3258 { 3259 dpsw_ctrl_if_disable(ethsw->mc_io, 0, ethsw->dpsw_handle); 3260 dpaa2_switch_free_dpio(ethsw); 3261 dpaa2_switch_destroy_rings(ethsw); 3262 dpaa2_switch_drain_bp(ethsw); 3263 dpaa2_switch_free_dpbp(ethsw); 3264 } 3265 3266 static void dpaa2_switch_teardown(struct fsl_mc_device *sw_dev) 3267 { 3268 struct device *dev = &sw_dev->dev; 3269 struct ethsw_core *ethsw = dev_get_drvdata(dev); 3270 int err; 3271 3272 dpaa2_switch_ctrl_if_teardown(ethsw); 3273 3274 destroy_workqueue(ethsw->workqueue); 3275 3276 err = dpsw_close(ethsw->mc_io, 0, ethsw->dpsw_handle); 3277 if (err) 3278 dev_warn(dev, "dpsw_close err %d\n", err); 3279 } 3280 3281 static void dpaa2_switch_remove(struct fsl_mc_device *sw_dev) 3282 { 3283 struct ethsw_port_priv *port_priv; 3284 struct ethsw_core *ethsw; 3285 struct device *dev; 3286 int i; 3287 3288 dev = &sw_dev->dev; 3289 ethsw = dev_get_drvdata(dev); 3290 3291 dpaa2_switch_teardown_irqs(sw_dev); 3292 3293 dpsw_disable(ethsw->mc_io, 0, ethsw->dpsw_handle); 3294 3295 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 3296 port_priv = ethsw->ports[i]; 3297 unregister_netdev(port_priv->netdev); 3298 dpaa2_switch_remove_port(ethsw, i); 3299 } 3300 3301 kfree(ethsw->fdbs); 3302 kfree(ethsw->filter_blocks); 3303 kfree(ethsw->ports); 3304 3305 dpaa2_switch_teardown(sw_dev); 3306 3307 fsl_mc_portal_free(ethsw->mc_io); 3308 3309 kfree(ethsw); 3310 3311 dev_set_drvdata(dev, NULL); 3312 } 3313 3314 static int dpaa2_switch_probe_port(struct ethsw_core *ethsw, 3315 u16 port_idx) 3316 { 3317 struct ethsw_port_priv *port_priv; 3318 struct device *dev = ethsw->dev; 3319 struct net_device *port_netdev; 3320 int err; 3321 3322 port_netdev = alloc_etherdev(sizeof(struct ethsw_port_priv)); 3323 if (!port_netdev) { 3324 dev_err(dev, "alloc_etherdev error\n"); 3325 return -ENOMEM; 3326 } 3327 3328 port_priv = netdev_priv(port_netdev); 3329 port_priv->netdev = port_netdev; 3330 port_priv->ethsw_data = ethsw; 3331 3332 mutex_init(&port_priv->mac_lock); 3333 3334 port_priv->idx = port_idx; 3335 port_priv->stp_state = BR_STATE_FORWARDING; 3336 3337 SET_NETDEV_DEV(port_netdev, dev); 3338 port_netdev->netdev_ops = &dpaa2_switch_port_ops; 3339 port_netdev->ethtool_ops = &dpaa2_switch_port_ethtool_ops; 3340 3341 port_netdev->needed_headroom = DPAA2_SWITCH_NEEDED_HEADROOM; 3342 3343 port_priv->bcast_flood = true; 3344 port_priv->ucast_flood = true; 3345 3346 /* Set MTU limits */ 3347 port_netdev->min_mtu = ETH_MIN_MTU; 3348 port_netdev->max_mtu = ETHSW_MAX_FRAME_LENGTH; 3349 3350 /* Populate the private port structure so that later calls to 3351 * dpaa2_switch_port_init() can use it. 3352 */ 3353 ethsw->ports[port_idx] = port_priv; 3354 3355 /* The DPAA2 switch's ingress path depends on the VLAN table, 3356 * thus we are not able to disable VLAN filtering. 3357 */ 3358 port_netdev->features = NETIF_F_HW_VLAN_CTAG_FILTER | 3359 NETIF_F_HW_VLAN_STAG_FILTER | 3360 NETIF_F_HW_TC; 3361 port_netdev->priv_flags |= IFF_LIVE_ADDR_CHANGE; 3362 3363 err = dpaa2_switch_port_init(port_priv, port_idx); 3364 if (err) 3365 goto err_port_probe; 3366 3367 err = dpaa2_switch_port_set_mac_addr(port_priv); 3368 if (err) 3369 goto err_port_probe; 3370 3371 err = dpaa2_switch_port_set_learning(port_priv, false); 3372 if (err) 3373 goto err_port_probe; 3374 port_priv->learn_ena = false; 3375 3376 err = dpaa2_switch_port_connect_mac(port_priv); 3377 if (err) 3378 goto err_port_probe; 3379 3380 return 0; 3381 3382 err_port_probe: 3383 free_netdev(port_netdev); 3384 ethsw->ports[port_idx] = NULL; 3385 3386 return err; 3387 } 3388 3389 static int dpaa2_switch_probe(struct fsl_mc_device *sw_dev) 3390 { 3391 struct device *dev = &sw_dev->dev; 3392 struct ethsw_core *ethsw; 3393 int i, err; 3394 3395 /* Allocate switch core*/ 3396 ethsw = kzalloc_obj(*ethsw); 3397 3398 if (!ethsw) 3399 return -ENOMEM; 3400 3401 ethsw->dev = dev; 3402 ethsw->iommu_domain = iommu_get_domain_for_dev(dev); 3403 dev_set_drvdata(dev, ethsw); 3404 3405 err = fsl_mc_portal_allocate(sw_dev, FSL_MC_IO_ATOMIC_CONTEXT_PORTAL, 3406 ðsw->mc_io); 3407 if (err) { 3408 if (err == -ENXIO) 3409 err = -EPROBE_DEFER; 3410 else 3411 dev_err(dev, "fsl_mc_portal_allocate err %d\n", err); 3412 goto err_free_drvdata; 3413 } 3414 3415 err = dpaa2_switch_init(sw_dev); 3416 if (err) 3417 goto err_free_cmdport; 3418 3419 ethsw->ports = kzalloc_objs(*ethsw->ports, ethsw->sw_attr.num_ifs); 3420 if (!(ethsw->ports)) { 3421 err = -ENOMEM; 3422 goto err_teardown; 3423 } 3424 3425 ethsw->fdbs = kzalloc_objs(*ethsw->fdbs, ethsw->sw_attr.num_ifs); 3426 if (!ethsw->fdbs) { 3427 err = -ENOMEM; 3428 goto err_free_ports; 3429 } 3430 3431 ethsw->filter_blocks = kzalloc_objs(*ethsw->filter_blocks, 3432 ethsw->sw_attr.num_ifs); 3433 if (!ethsw->filter_blocks) { 3434 err = -ENOMEM; 3435 goto err_free_fdbs; 3436 } 3437 3438 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 3439 err = dpaa2_switch_probe_port(ethsw, i); 3440 if (err) 3441 goto err_free_netdev; 3442 } 3443 3444 /* Add a NAPI instance for each of the Rx queues. The first port's 3445 * net_device will be associated with the instances since we do not have 3446 * different queues for each switch ports. 3447 */ 3448 for (i = 0; i < DPAA2_SWITCH_RX_NUM_FQS; i++) 3449 netif_napi_add(ethsw->ports[0]->netdev, ðsw->fq[i].napi, 3450 dpaa2_switch_poll); 3451 3452 /* Setup IRQs */ 3453 err = dpaa2_switch_setup_irqs(sw_dev); 3454 if (err) 3455 goto err_stop; 3456 3457 /* By convention, if the mirror port is equal to the number of switch 3458 * interfaces, then mirroring of any kind is disabled. 3459 */ 3460 ethsw->mirror_port = ethsw->sw_attr.num_ifs; 3461 3462 /* Register the netdev only when the entire setup is done and the 3463 * switch port interfaces are ready to receive traffic 3464 */ 3465 for (i = 0; i < ethsw->sw_attr.num_ifs; i++) { 3466 err = register_netdev(ethsw->ports[i]->netdev); 3467 if (err < 0) { 3468 dev_err(dev, "register_netdev error %d\n", err); 3469 goto err_unregister_ports; 3470 } 3471 } 3472 3473 return 0; 3474 3475 err_unregister_ports: 3476 for (i--; i >= 0; i--) 3477 unregister_netdev(ethsw->ports[i]->netdev); 3478 dpaa2_switch_teardown_irqs(sw_dev); 3479 err_stop: 3480 dpsw_disable(ethsw->mc_io, 0, ethsw->dpsw_handle); 3481 err_free_netdev: 3482 for (i--; i >= 0; i--) 3483 dpaa2_switch_remove_port(ethsw, i); 3484 kfree(ethsw->filter_blocks); 3485 err_free_fdbs: 3486 kfree(ethsw->fdbs); 3487 err_free_ports: 3488 kfree(ethsw->ports); 3489 3490 err_teardown: 3491 dpaa2_switch_teardown(sw_dev); 3492 3493 err_free_cmdport: 3494 fsl_mc_portal_free(ethsw->mc_io); 3495 3496 err_free_drvdata: 3497 kfree(ethsw); 3498 dev_set_drvdata(dev, NULL); 3499 3500 return err; 3501 } 3502 3503 static const struct fsl_mc_device_id dpaa2_switch_match_id_table[] = { 3504 { 3505 .vendor = FSL_MC_VENDOR_FREESCALE, 3506 .obj_type = "dpsw", 3507 }, 3508 { .vendor = 0x0 } 3509 }; 3510 MODULE_DEVICE_TABLE(fslmc, dpaa2_switch_match_id_table); 3511 3512 static struct fsl_mc_driver dpaa2_switch_drv = { 3513 .driver = { 3514 .name = KBUILD_MODNAME, 3515 }, 3516 .probe = dpaa2_switch_probe, 3517 .remove = dpaa2_switch_remove, 3518 .match_id_table = dpaa2_switch_match_id_table 3519 }; 3520 3521 static struct notifier_block dpaa2_switch_port_nb __read_mostly = { 3522 .notifier_call = dpaa2_switch_port_netdevice_event, 3523 }; 3524 3525 static struct notifier_block dpaa2_switch_port_switchdev_nb = { 3526 .notifier_call = dpaa2_switch_port_event, 3527 }; 3528 3529 static struct notifier_block dpaa2_switch_port_switchdev_blocking_nb = { 3530 .notifier_call = dpaa2_switch_port_blocking_event, 3531 }; 3532 3533 static int dpaa2_switch_register_notifiers(void) 3534 { 3535 int err; 3536 3537 err = register_netdevice_notifier(&dpaa2_switch_port_nb); 3538 if (err) { 3539 pr_err("dpaa2-switch: failed to register net_device notifier (%d)\n", err); 3540 return err; 3541 } 3542 3543 err = register_switchdev_notifier(&dpaa2_switch_port_switchdev_nb); 3544 if (err) { 3545 pr_err("dpaa2-switch: failed to register switchdev notifier (%d)\n", err); 3546 goto err_switchdev_nb; 3547 } 3548 3549 err = register_switchdev_blocking_notifier(&dpaa2_switch_port_switchdev_blocking_nb); 3550 if (err) { 3551 pr_err("dpaa2-switch: failed to register switchdev blocking notifier (%d)\n", err); 3552 goto err_switchdev_blocking_nb; 3553 } 3554 3555 return 0; 3556 3557 err_switchdev_blocking_nb: 3558 unregister_switchdev_notifier(&dpaa2_switch_port_switchdev_nb); 3559 err_switchdev_nb: 3560 unregister_netdevice_notifier(&dpaa2_switch_port_nb); 3561 3562 return err; 3563 } 3564 3565 static void dpaa2_switch_unregister_notifiers(void) 3566 { 3567 int err; 3568 3569 err = unregister_switchdev_blocking_notifier(&dpaa2_switch_port_switchdev_blocking_nb); 3570 if (err) 3571 pr_err("dpaa2-switch: failed to unregister switchdev blocking notifier (%d)\n", 3572 err); 3573 3574 err = unregister_switchdev_notifier(&dpaa2_switch_port_switchdev_nb); 3575 if (err) 3576 pr_err("dpaa2-switch: failed to unregister switchdev notifier (%d)\n", err); 3577 3578 err = unregister_netdevice_notifier(&dpaa2_switch_port_nb); 3579 if (err) 3580 pr_err("dpaa2-switch: failed to unregister net_device notifier (%d)\n", err); 3581 } 3582 3583 static int __init dpaa2_switch_driver_init(void) 3584 { 3585 int err; 3586 3587 err = fsl_mc_driver_register(&dpaa2_switch_drv); 3588 if (err) 3589 return err; 3590 3591 err = dpaa2_switch_register_notifiers(); 3592 if (err) { 3593 fsl_mc_driver_unregister(&dpaa2_switch_drv); 3594 return err; 3595 } 3596 3597 return 0; 3598 } 3599 3600 static void __exit dpaa2_switch_driver_exit(void) 3601 { 3602 dpaa2_switch_unregister_notifiers(); 3603 fsl_mc_driver_unregister(&dpaa2_switch_drv); 3604 } 3605 3606 module_init(dpaa2_switch_driver_init); 3607 module_exit(dpaa2_switch_driver_exit); 3608 3609 MODULE_LICENSE("GPL v2"); 3610 MODULE_DESCRIPTION("DPAA2 Ethernet Switch Driver"); 3611