1 // SPDX-License-Identifier: (GPL-2.0 OR MIT) 2 /* 3 * Microsemi Ocelot Switch driver 4 * 5 * Copyright (c) 2017 Microsemi Corporation 6 */ 7 #include <linux/dsa/ocelot.h> 8 #include <linux/if_bridge.h> 9 #include <linux/ptp_classify.h> 10 #include <soc/mscc/ocelot_vcap.h> 11 #include "ocelot.h" 12 #include "ocelot_vcap.h" 13 14 #define TABLE_UPDATE_SLEEP_US 10 15 #define TABLE_UPDATE_TIMEOUT_US 100000 16 #define OCELOT_RSV_VLAN_RANGE_START 4000 17 18 struct ocelot_mact_entry { 19 u8 mac[ETH_ALEN]; 20 u16 vid; 21 enum macaccess_entry_type type; 22 }; 23 24 /* Caller must hold &ocelot->mact_lock */ 25 static inline u32 ocelot_mact_read_macaccess(struct ocelot *ocelot) 26 { 27 return ocelot_read(ocelot, ANA_TABLES_MACACCESS); 28 } 29 30 /* Caller must hold &ocelot->mact_lock */ 31 static inline int ocelot_mact_wait_for_completion(struct ocelot *ocelot) 32 { 33 u32 val; 34 35 return readx_poll_timeout(ocelot_mact_read_macaccess, 36 ocelot, val, 37 (val & ANA_TABLES_MACACCESS_MAC_TABLE_CMD_M) == 38 MACACCESS_CMD_IDLE, 39 TABLE_UPDATE_SLEEP_US, TABLE_UPDATE_TIMEOUT_US); 40 } 41 42 /* Caller must hold &ocelot->mact_lock */ 43 static void ocelot_mact_select(struct ocelot *ocelot, 44 const unsigned char mac[ETH_ALEN], 45 unsigned int vid) 46 { 47 u32 macl = 0, mach = 0; 48 49 /* Set the MAC address to handle and the vlan associated in a format 50 * understood by the hardware. 51 */ 52 mach |= vid << 16; 53 mach |= mac[0] << 8; 54 mach |= mac[1] << 0; 55 macl |= mac[2] << 24; 56 macl |= mac[3] << 16; 57 macl |= mac[4] << 8; 58 macl |= mac[5] << 0; 59 60 ocelot_write(ocelot, macl, ANA_TABLES_MACLDATA); 61 ocelot_write(ocelot, mach, ANA_TABLES_MACHDATA); 62 63 } 64 65 static int __ocelot_mact_learn(struct ocelot *ocelot, int port, 66 const unsigned char mac[ETH_ALEN], 67 unsigned int vid, enum macaccess_entry_type type) 68 { 69 u32 cmd = ANA_TABLES_MACACCESS_VALID | 70 ANA_TABLES_MACACCESS_DEST_IDX(port) | 71 ANA_TABLES_MACACCESS_ENTRYTYPE(type) | 72 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_LEARN); 73 unsigned int mc_ports; 74 int err; 75 76 /* Set MAC_CPU_COPY if the CPU port is used by a multicast entry */ 77 if (type == ENTRYTYPE_MACv4) 78 mc_ports = (mac[1] << 8) | mac[2]; 79 else if (type == ENTRYTYPE_MACv6) 80 mc_ports = (mac[0] << 8) | mac[1]; 81 else 82 mc_ports = 0; 83 84 if (mc_ports & BIT(ocelot->num_phys_ports)) 85 cmd |= ANA_TABLES_MACACCESS_MAC_CPU_COPY; 86 87 ocelot_mact_select(ocelot, mac, vid); 88 89 /* Issue a write command */ 90 ocelot_write(ocelot, cmd, ANA_TABLES_MACACCESS); 91 92 err = ocelot_mact_wait_for_completion(ocelot); 93 94 return err; 95 } 96 97 int ocelot_mact_learn(struct ocelot *ocelot, int port, 98 const unsigned char mac[ETH_ALEN], 99 unsigned int vid, enum macaccess_entry_type type) 100 { 101 int ret; 102 103 mutex_lock(&ocelot->mact_lock); 104 ret = __ocelot_mact_learn(ocelot, port, mac, vid, type); 105 mutex_unlock(&ocelot->mact_lock); 106 107 return ret; 108 } 109 EXPORT_SYMBOL(ocelot_mact_learn); 110 111 int ocelot_mact_forget(struct ocelot *ocelot, 112 const unsigned char mac[ETH_ALEN], unsigned int vid) 113 { 114 int err; 115 116 mutex_lock(&ocelot->mact_lock); 117 118 ocelot_mact_select(ocelot, mac, vid); 119 120 /* Issue a forget command */ 121 ocelot_write(ocelot, 122 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_FORGET), 123 ANA_TABLES_MACACCESS); 124 125 err = ocelot_mact_wait_for_completion(ocelot); 126 127 mutex_unlock(&ocelot->mact_lock); 128 129 return err; 130 } 131 EXPORT_SYMBOL(ocelot_mact_forget); 132 133 int ocelot_mact_lookup(struct ocelot *ocelot, int *dst_idx, 134 const unsigned char mac[ETH_ALEN], 135 unsigned int vid, enum macaccess_entry_type *type) 136 { 137 int val; 138 139 mutex_lock(&ocelot->mact_lock); 140 141 ocelot_mact_select(ocelot, mac, vid); 142 143 /* Issue a read command with MACACCESS_VALID=1. */ 144 ocelot_write(ocelot, ANA_TABLES_MACACCESS_VALID | 145 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_READ), 146 ANA_TABLES_MACACCESS); 147 148 if (ocelot_mact_wait_for_completion(ocelot)) { 149 mutex_unlock(&ocelot->mact_lock); 150 return -ETIMEDOUT; 151 } 152 153 /* Read back the entry flags */ 154 val = ocelot_read(ocelot, ANA_TABLES_MACACCESS); 155 156 mutex_unlock(&ocelot->mact_lock); 157 158 if (!(val & ANA_TABLES_MACACCESS_VALID)) 159 return -ENOENT; 160 161 *dst_idx = ANA_TABLES_MACACCESS_DEST_IDX_X(val); 162 *type = ANA_TABLES_MACACCESS_ENTRYTYPE_X(val); 163 164 return 0; 165 } 166 EXPORT_SYMBOL(ocelot_mact_lookup); 167 168 int ocelot_mact_learn_streamdata(struct ocelot *ocelot, int dst_idx, 169 const unsigned char mac[ETH_ALEN], 170 unsigned int vid, 171 enum macaccess_entry_type type, 172 int sfid, int ssid) 173 { 174 int ret; 175 176 mutex_lock(&ocelot->mact_lock); 177 178 ocelot_write(ocelot, 179 (sfid < 0 ? 0 : ANA_TABLES_STREAMDATA_SFID_VALID) | 180 ANA_TABLES_STREAMDATA_SFID(sfid) | 181 (ssid < 0 ? 0 : ANA_TABLES_STREAMDATA_SSID_VALID) | 182 ANA_TABLES_STREAMDATA_SSID(ssid), 183 ANA_TABLES_STREAMDATA); 184 185 ret = __ocelot_mact_learn(ocelot, dst_idx, mac, vid, type); 186 187 mutex_unlock(&ocelot->mact_lock); 188 189 return ret; 190 } 191 EXPORT_SYMBOL(ocelot_mact_learn_streamdata); 192 193 static void ocelot_mact_init(struct ocelot *ocelot) 194 { 195 /* Configure the learning mode entries attributes: 196 * - Do not copy the frame to the CPU extraction queues. 197 * - Use the vlan and mac_cpoy for dmac lookup. 198 */ 199 ocelot_rmw(ocelot, 0, 200 ANA_AGENCTRL_LEARN_CPU_COPY | ANA_AGENCTRL_IGNORE_DMAC_FLAGS 201 | ANA_AGENCTRL_LEARN_FWD_KILL 202 | ANA_AGENCTRL_LEARN_IGNORE_VLAN, 203 ANA_AGENCTRL); 204 205 /* Clear the MAC table. We are not concurrent with anyone, so 206 * holding &ocelot->mact_lock is pointless. 207 */ 208 ocelot_write(ocelot, MACACCESS_CMD_INIT, ANA_TABLES_MACACCESS); 209 } 210 211 static void ocelot_vcap_enable(struct ocelot *ocelot, int port) 212 { 213 ocelot_write_gix(ocelot, ANA_PORT_VCAP_S2_CFG_S2_ENA | 214 ANA_PORT_VCAP_S2_CFG_S2_IP6_CFG(0xa), 215 ANA_PORT_VCAP_S2_CFG, port); 216 217 ocelot_write_gix(ocelot, ANA_PORT_VCAP_CFG_S1_ENA, 218 ANA_PORT_VCAP_CFG, port); 219 220 ocelot_rmw_gix(ocelot, REW_PORT_CFG_ES0_EN, 221 REW_PORT_CFG_ES0_EN, 222 REW_PORT_CFG, port); 223 } 224 225 static int ocelot_single_vlan_aware_bridge(struct ocelot *ocelot, 226 struct netlink_ext_ack *extack) 227 { 228 struct net_device *bridge = NULL; 229 int port; 230 231 for (port = 0; port < ocelot->num_phys_ports; port++) { 232 struct ocelot_port *ocelot_port = ocelot->ports[port]; 233 234 if (!ocelot_port || !ocelot_port->bridge || 235 !br_vlan_enabled(ocelot_port->bridge)) 236 continue; 237 238 if (!bridge) { 239 bridge = ocelot_port->bridge; 240 continue; 241 } 242 243 if (bridge == ocelot_port->bridge) 244 continue; 245 246 NL_SET_ERR_MSG_MOD(extack, 247 "Only one VLAN-aware bridge is supported"); 248 return -EBUSY; 249 } 250 251 return 0; 252 } 253 254 static inline u32 ocelot_vlant_read_vlanaccess(struct ocelot *ocelot) 255 { 256 return ocelot_read(ocelot, ANA_TABLES_VLANACCESS); 257 } 258 259 static inline int ocelot_vlant_wait_for_completion(struct ocelot *ocelot) 260 { 261 u32 val; 262 263 return readx_poll_timeout(ocelot_vlant_read_vlanaccess, 264 ocelot, 265 val, 266 (val & ANA_TABLES_VLANACCESS_VLAN_TBL_CMD_M) == 267 ANA_TABLES_VLANACCESS_CMD_IDLE, 268 TABLE_UPDATE_SLEEP_US, TABLE_UPDATE_TIMEOUT_US); 269 } 270 271 static int ocelot_vlant_set_mask(struct ocelot *ocelot, u16 vid, u32 mask) 272 { 273 /* Select the VID to configure */ 274 ocelot_write(ocelot, ANA_TABLES_VLANTIDX_V_INDEX(vid), 275 ANA_TABLES_VLANTIDX); 276 /* Set the vlan port members mask and issue a write command */ 277 ocelot_write(ocelot, ANA_TABLES_VLANACCESS_VLAN_PORT_MASK(mask) | 278 ANA_TABLES_VLANACCESS_CMD_WRITE, 279 ANA_TABLES_VLANACCESS); 280 281 return ocelot_vlant_wait_for_completion(ocelot); 282 } 283 284 static int ocelot_port_num_untagged_vlans(struct ocelot *ocelot, int port) 285 { 286 struct ocelot_bridge_vlan *vlan; 287 int num_untagged = 0; 288 289 list_for_each_entry(vlan, &ocelot->vlans, list) { 290 if (!(vlan->portmask & BIT(port))) 291 continue; 292 293 if (vlan->untagged & BIT(port)) 294 num_untagged++; 295 } 296 297 return num_untagged; 298 } 299 300 static int ocelot_port_num_tagged_vlans(struct ocelot *ocelot, int port) 301 { 302 struct ocelot_bridge_vlan *vlan; 303 int num_tagged = 0; 304 305 list_for_each_entry(vlan, &ocelot->vlans, list) { 306 if (!(vlan->portmask & BIT(port))) 307 continue; 308 309 if (!(vlan->untagged & BIT(port))) 310 num_tagged++; 311 } 312 313 return num_tagged; 314 } 315 316 /* We use native VLAN when we have to mix egress-tagged VLANs with exactly 317 * _one_ egress-untagged VLAN (_the_ native VLAN) 318 */ 319 static bool ocelot_port_uses_native_vlan(struct ocelot *ocelot, int port) 320 { 321 return ocelot_port_num_tagged_vlans(ocelot, port) && 322 ocelot_port_num_untagged_vlans(ocelot, port) == 1; 323 } 324 325 static struct ocelot_bridge_vlan * 326 ocelot_port_find_native_vlan(struct ocelot *ocelot, int port) 327 { 328 struct ocelot_bridge_vlan *vlan; 329 330 list_for_each_entry(vlan, &ocelot->vlans, list) 331 if (vlan->portmask & BIT(port) && vlan->untagged & BIT(port)) 332 return vlan; 333 334 return NULL; 335 } 336 337 /* Keep in sync REW_TAG_CFG_TAG_CFG and, if applicable, 338 * REW_PORT_VLAN_CFG_PORT_VID, with the bridge VLAN table and VLAN awareness 339 * state of the port. 340 */ 341 static void ocelot_port_manage_port_tag(struct ocelot *ocelot, int port) 342 { 343 struct ocelot_port *ocelot_port = ocelot->ports[port]; 344 enum ocelot_port_tag_config tag_cfg; 345 bool uses_native_vlan = false; 346 347 if (ocelot_port->vlan_aware) { 348 uses_native_vlan = ocelot_port_uses_native_vlan(ocelot, port); 349 350 if (uses_native_vlan) 351 tag_cfg = OCELOT_PORT_TAG_NATIVE; 352 else if (ocelot_port_num_untagged_vlans(ocelot, port)) 353 tag_cfg = OCELOT_PORT_TAG_DISABLED; 354 else 355 tag_cfg = OCELOT_PORT_TAG_TRUNK; 356 } else { 357 tag_cfg = OCELOT_PORT_TAG_DISABLED; 358 } 359 360 ocelot_rmw_gix(ocelot, REW_TAG_CFG_TAG_CFG(tag_cfg), 361 REW_TAG_CFG_TAG_CFG_M, 362 REW_TAG_CFG, port); 363 364 if (uses_native_vlan) { 365 struct ocelot_bridge_vlan *native_vlan; 366 367 /* Not having a native VLAN is impossible, because 368 * ocelot_port_num_untagged_vlans has returned 1. 369 * So there is no use in checking for NULL here. 370 */ 371 native_vlan = ocelot_port_find_native_vlan(ocelot, port); 372 373 ocelot_rmw_gix(ocelot, 374 REW_PORT_VLAN_CFG_PORT_VID(native_vlan->vid), 375 REW_PORT_VLAN_CFG_PORT_VID_M, 376 REW_PORT_VLAN_CFG, port); 377 } 378 } 379 380 int ocelot_bridge_num_find(struct ocelot *ocelot, 381 const struct net_device *bridge) 382 { 383 int port; 384 385 for (port = 0; port < ocelot->num_phys_ports; port++) { 386 struct ocelot_port *ocelot_port = ocelot->ports[port]; 387 388 if (ocelot_port && ocelot_port->bridge == bridge) 389 return ocelot_port->bridge_num; 390 } 391 392 return -1; 393 } 394 EXPORT_SYMBOL_GPL(ocelot_bridge_num_find); 395 396 static u16 ocelot_vlan_unaware_pvid(struct ocelot *ocelot, 397 const struct net_device *bridge) 398 { 399 int bridge_num; 400 401 /* Standalone ports use VID 0 */ 402 if (!bridge) 403 return 0; 404 405 bridge_num = ocelot_bridge_num_find(ocelot, bridge); 406 if (WARN_ON(bridge_num < 0)) 407 return 0; 408 409 /* VLAN-unaware bridges use a reserved VID going from 4095 downwards */ 410 return VLAN_N_VID - bridge_num - 1; 411 } 412 413 /* Default vlan to clasify for untagged frames (may be zero) */ 414 static void ocelot_port_set_pvid(struct ocelot *ocelot, int port, 415 const struct ocelot_bridge_vlan *pvid_vlan) 416 { 417 struct ocelot_port *ocelot_port = ocelot->ports[port]; 418 u16 pvid = ocelot_vlan_unaware_pvid(ocelot, ocelot_port->bridge); 419 u32 val = 0; 420 421 ocelot_port->pvid_vlan = pvid_vlan; 422 423 if (ocelot_port->vlan_aware && pvid_vlan) 424 pvid = pvid_vlan->vid; 425 426 ocelot_rmw_gix(ocelot, 427 ANA_PORT_VLAN_CFG_VLAN_VID(pvid), 428 ANA_PORT_VLAN_CFG_VLAN_VID_M, 429 ANA_PORT_VLAN_CFG, port); 430 431 /* If there's no pvid, we should drop not only untagged traffic (which 432 * happens automatically), but also 802.1p traffic which gets 433 * classified to VLAN 0, but that is always in our RX filter, so it 434 * would get accepted were it not for this setting. 435 */ 436 if (!pvid_vlan && ocelot_port->vlan_aware) 437 val = ANA_PORT_DROP_CFG_DROP_PRIO_S_TAGGED_ENA | 438 ANA_PORT_DROP_CFG_DROP_PRIO_C_TAGGED_ENA; 439 440 ocelot_rmw_gix(ocelot, val, 441 ANA_PORT_DROP_CFG_DROP_PRIO_S_TAGGED_ENA | 442 ANA_PORT_DROP_CFG_DROP_PRIO_C_TAGGED_ENA, 443 ANA_PORT_DROP_CFG, port); 444 } 445 446 static struct ocelot_bridge_vlan *ocelot_bridge_vlan_find(struct ocelot *ocelot, 447 u16 vid) 448 { 449 struct ocelot_bridge_vlan *vlan; 450 451 list_for_each_entry(vlan, &ocelot->vlans, list) 452 if (vlan->vid == vid) 453 return vlan; 454 455 return NULL; 456 } 457 458 static int ocelot_vlan_member_add(struct ocelot *ocelot, int port, u16 vid, 459 bool untagged) 460 { 461 struct ocelot_bridge_vlan *vlan = ocelot_bridge_vlan_find(ocelot, vid); 462 unsigned long portmask; 463 int err; 464 465 if (vlan) { 466 portmask = vlan->portmask | BIT(port); 467 468 err = ocelot_vlant_set_mask(ocelot, vid, portmask); 469 if (err) 470 return err; 471 472 vlan->portmask = portmask; 473 /* Bridge VLANs can be overwritten with a different 474 * egress-tagging setting, so make sure to override an untagged 475 * with a tagged VID if that's going on. 476 */ 477 if (untagged) 478 vlan->untagged |= BIT(port); 479 else 480 vlan->untagged &= ~BIT(port); 481 482 return 0; 483 } 484 485 vlan = kzalloc(sizeof(*vlan), GFP_KERNEL); 486 if (!vlan) 487 return -ENOMEM; 488 489 portmask = BIT(port); 490 491 err = ocelot_vlant_set_mask(ocelot, vid, portmask); 492 if (err) { 493 kfree(vlan); 494 return err; 495 } 496 497 vlan->vid = vid; 498 vlan->portmask = portmask; 499 if (untagged) 500 vlan->untagged = BIT(port); 501 INIT_LIST_HEAD(&vlan->list); 502 list_add_tail(&vlan->list, &ocelot->vlans); 503 504 return 0; 505 } 506 507 static int ocelot_vlan_member_del(struct ocelot *ocelot, int port, u16 vid) 508 { 509 struct ocelot_bridge_vlan *vlan = ocelot_bridge_vlan_find(ocelot, vid); 510 unsigned long portmask; 511 int err; 512 513 if (!vlan) 514 return 0; 515 516 portmask = vlan->portmask & ~BIT(port); 517 518 err = ocelot_vlant_set_mask(ocelot, vid, portmask); 519 if (err) 520 return err; 521 522 vlan->portmask = portmask; 523 if (vlan->portmask) 524 return 0; 525 526 list_del(&vlan->list); 527 kfree(vlan); 528 529 return 0; 530 } 531 532 static int ocelot_add_vlan_unaware_pvid(struct ocelot *ocelot, int port, 533 const struct net_device *bridge) 534 { 535 u16 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 536 537 return ocelot_vlan_member_add(ocelot, port, vid, true); 538 } 539 540 static int ocelot_del_vlan_unaware_pvid(struct ocelot *ocelot, int port, 541 const struct net_device *bridge) 542 { 543 u16 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 544 545 return ocelot_vlan_member_del(ocelot, port, vid); 546 } 547 548 int ocelot_port_vlan_filtering(struct ocelot *ocelot, int port, 549 bool vlan_aware, struct netlink_ext_ack *extack) 550 { 551 struct ocelot_vcap_block *block = &ocelot->block[VCAP_IS1]; 552 struct ocelot_port *ocelot_port = ocelot->ports[port]; 553 struct ocelot_vcap_filter *filter; 554 int err = 0; 555 u32 val; 556 557 list_for_each_entry(filter, &block->rules, list) { 558 if (filter->ingress_port_mask & BIT(port) && 559 filter->action.vid_replace_ena) { 560 NL_SET_ERR_MSG_MOD(extack, 561 "Cannot change VLAN state with vlan modify rules active"); 562 return -EBUSY; 563 } 564 } 565 566 err = ocelot_single_vlan_aware_bridge(ocelot, extack); 567 if (err) 568 return err; 569 570 if (vlan_aware) 571 err = ocelot_del_vlan_unaware_pvid(ocelot, port, 572 ocelot_port->bridge); 573 else if (ocelot_port->bridge) 574 err = ocelot_add_vlan_unaware_pvid(ocelot, port, 575 ocelot_port->bridge); 576 if (err) 577 return err; 578 579 ocelot_port->vlan_aware = vlan_aware; 580 581 if (vlan_aware) 582 val = ANA_PORT_VLAN_CFG_VLAN_AWARE_ENA | 583 ANA_PORT_VLAN_CFG_VLAN_POP_CNT(1); 584 else 585 val = 0; 586 ocelot_rmw_gix(ocelot, val, 587 ANA_PORT_VLAN_CFG_VLAN_AWARE_ENA | 588 ANA_PORT_VLAN_CFG_VLAN_POP_CNT_M, 589 ANA_PORT_VLAN_CFG, port); 590 591 ocelot_port_set_pvid(ocelot, port, ocelot_port->pvid_vlan); 592 ocelot_port_manage_port_tag(ocelot, port); 593 594 return 0; 595 } 596 EXPORT_SYMBOL(ocelot_port_vlan_filtering); 597 598 int ocelot_vlan_prepare(struct ocelot *ocelot, int port, u16 vid, bool pvid, 599 bool untagged, struct netlink_ext_ack *extack) 600 { 601 if (untagged) { 602 /* We are adding an egress-tagged VLAN */ 603 if (ocelot_port_uses_native_vlan(ocelot, port)) { 604 NL_SET_ERR_MSG_MOD(extack, 605 "Port with egress-tagged VLANs cannot have more than one egress-untagged (native) VLAN"); 606 return -EBUSY; 607 } 608 } else { 609 /* We are adding an egress-tagged VLAN */ 610 if (ocelot_port_num_untagged_vlans(ocelot, port) > 1) { 611 NL_SET_ERR_MSG_MOD(extack, 612 "Port with more than one egress-untagged VLAN cannot have egress-tagged VLANs"); 613 return -EBUSY; 614 } 615 } 616 617 if (vid > OCELOT_RSV_VLAN_RANGE_START) { 618 NL_SET_ERR_MSG_MOD(extack, 619 "VLAN range 4000-4095 reserved for VLAN-unaware bridging"); 620 return -EBUSY; 621 } 622 623 return 0; 624 } 625 EXPORT_SYMBOL(ocelot_vlan_prepare); 626 627 int ocelot_vlan_add(struct ocelot *ocelot, int port, u16 vid, bool pvid, 628 bool untagged) 629 { 630 int err; 631 632 /* Ignore VID 0 added to our RX filter by the 8021q module, since 633 * that collides with OCELOT_STANDALONE_PVID and changes it from 634 * egress-untagged to egress-tagged. 635 */ 636 if (!vid) 637 return 0; 638 639 err = ocelot_vlan_member_add(ocelot, port, vid, untagged); 640 if (err) 641 return err; 642 643 /* Default ingress vlan classification */ 644 if (pvid) 645 ocelot_port_set_pvid(ocelot, port, 646 ocelot_bridge_vlan_find(ocelot, vid)); 647 648 /* Untagged egress vlan clasification */ 649 ocelot_port_manage_port_tag(ocelot, port); 650 651 return 0; 652 } 653 EXPORT_SYMBOL(ocelot_vlan_add); 654 655 int ocelot_vlan_del(struct ocelot *ocelot, int port, u16 vid) 656 { 657 struct ocelot_port *ocelot_port = ocelot->ports[port]; 658 bool del_pvid = false; 659 int err; 660 661 if (!vid) 662 return 0; 663 664 if (ocelot_port->pvid_vlan && ocelot_port->pvid_vlan->vid == vid) 665 del_pvid = true; 666 667 err = ocelot_vlan_member_del(ocelot, port, vid); 668 if (err) 669 return err; 670 671 /* Ingress */ 672 if (del_pvid) 673 ocelot_port_set_pvid(ocelot, port, NULL); 674 675 /* Egress */ 676 ocelot_port_manage_port_tag(ocelot, port); 677 678 return 0; 679 } 680 EXPORT_SYMBOL(ocelot_vlan_del); 681 682 static void ocelot_vlan_init(struct ocelot *ocelot) 683 { 684 unsigned long all_ports = GENMASK(ocelot->num_phys_ports - 1, 0); 685 u16 port, vid; 686 687 /* Clear VLAN table, by default all ports are members of all VLANs */ 688 ocelot_write(ocelot, ANA_TABLES_VLANACCESS_CMD_INIT, 689 ANA_TABLES_VLANACCESS); 690 ocelot_vlant_wait_for_completion(ocelot); 691 692 /* Configure the port VLAN memberships */ 693 for (vid = 1; vid < VLAN_N_VID; vid++) 694 ocelot_vlant_set_mask(ocelot, vid, 0); 695 696 /* We need VID 0 to get traffic on standalone ports. 697 * It is added automatically if the 8021q module is loaded, but we 698 * can't rely on that since it might not be. 699 */ 700 ocelot_vlant_set_mask(ocelot, OCELOT_STANDALONE_PVID, all_ports); 701 702 /* Set vlan ingress filter mask to all ports but the CPU port by 703 * default. 704 */ 705 ocelot_write(ocelot, all_ports, ANA_VLANMASK); 706 707 for (port = 0; port < ocelot->num_phys_ports; port++) { 708 ocelot_write_gix(ocelot, 0, REW_PORT_VLAN_CFG, port); 709 ocelot_write_gix(ocelot, 0, REW_TAG_CFG, port); 710 } 711 } 712 713 static u32 ocelot_read_eq_avail(struct ocelot *ocelot, int port) 714 { 715 return ocelot_read_rix(ocelot, QSYS_SW_STATUS, port); 716 } 717 718 static int ocelot_port_flush(struct ocelot *ocelot, int port) 719 { 720 unsigned int pause_ena; 721 int err, val; 722 723 /* Disable dequeuing from the egress queues */ 724 ocelot_rmw_rix(ocelot, QSYS_PORT_MODE_DEQUEUE_DIS, 725 QSYS_PORT_MODE_DEQUEUE_DIS, 726 QSYS_PORT_MODE, port); 727 728 /* Disable flow control */ 729 ocelot_fields_read(ocelot, port, SYS_PAUSE_CFG_PAUSE_ENA, &pause_ena); 730 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_ENA, 0); 731 732 /* Disable priority flow control */ 733 ocelot_fields_write(ocelot, port, 734 QSYS_SWITCH_PORT_MODE_TX_PFC_ENA, 0); 735 736 /* Wait at least the time it takes to receive a frame of maximum length 737 * at the port. 738 * Worst-case delays for 10 kilobyte jumbo frames are: 739 * 8 ms on a 10M port 740 * 800 μs on a 100M port 741 * 80 μs on a 1G port 742 * 32 μs on a 2.5G port 743 */ 744 usleep_range(8000, 10000); 745 746 /* Disable half duplex backpressure. */ 747 ocelot_rmw_rix(ocelot, 0, SYS_FRONT_PORT_MODE_HDX_MODE, 748 SYS_FRONT_PORT_MODE, port); 749 750 /* Flush the queues associated with the port. */ 751 ocelot_rmw_gix(ocelot, REW_PORT_CFG_FLUSH_ENA, REW_PORT_CFG_FLUSH_ENA, 752 REW_PORT_CFG, port); 753 754 /* Enable dequeuing from the egress queues. */ 755 ocelot_rmw_rix(ocelot, 0, QSYS_PORT_MODE_DEQUEUE_DIS, QSYS_PORT_MODE, 756 port); 757 758 /* Wait until flushing is complete. */ 759 err = read_poll_timeout(ocelot_read_eq_avail, val, !val, 760 100, 2000000, false, ocelot, port); 761 762 /* Clear flushing again. */ 763 ocelot_rmw_gix(ocelot, 0, REW_PORT_CFG_FLUSH_ENA, REW_PORT_CFG, port); 764 765 /* Re-enable flow control */ 766 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_ENA, pause_ena); 767 768 return err; 769 } 770 771 void ocelot_phylink_mac_link_down(struct ocelot *ocelot, int port, 772 unsigned int link_an_mode, 773 phy_interface_t interface, 774 unsigned long quirks) 775 { 776 struct ocelot_port *ocelot_port = ocelot->ports[port]; 777 int err; 778 779 ocelot_port->speed = SPEED_UNKNOWN; 780 781 ocelot_port_rmwl(ocelot_port, 0, DEV_MAC_ENA_CFG_RX_ENA, 782 DEV_MAC_ENA_CFG); 783 784 if (ocelot->ops->cut_through_fwd) { 785 mutex_lock(&ocelot->fwd_domain_lock); 786 ocelot->ops->cut_through_fwd(ocelot); 787 mutex_unlock(&ocelot->fwd_domain_lock); 788 } 789 790 ocelot_fields_write(ocelot, port, QSYS_SWITCH_PORT_MODE_PORT_ENA, 0); 791 792 err = ocelot_port_flush(ocelot, port); 793 if (err) 794 dev_err(ocelot->dev, "failed to flush port %d: %d\n", 795 port, err); 796 797 /* Put the port in reset. */ 798 if (interface != PHY_INTERFACE_MODE_QSGMII || 799 !(quirks & OCELOT_QUIRK_QSGMII_PORTS_MUST_BE_UP)) 800 ocelot_port_rmwl(ocelot_port, 801 DEV_CLOCK_CFG_MAC_TX_RST | 802 DEV_CLOCK_CFG_MAC_RX_RST, 803 DEV_CLOCK_CFG_MAC_TX_RST | 804 DEV_CLOCK_CFG_MAC_RX_RST, 805 DEV_CLOCK_CFG); 806 } 807 EXPORT_SYMBOL_GPL(ocelot_phylink_mac_link_down); 808 809 void ocelot_phylink_mac_link_up(struct ocelot *ocelot, int port, 810 struct phy_device *phydev, 811 unsigned int link_an_mode, 812 phy_interface_t interface, 813 int speed, int duplex, 814 bool tx_pause, bool rx_pause, 815 unsigned long quirks) 816 { 817 struct ocelot_port *ocelot_port = ocelot->ports[port]; 818 int mac_speed, mode = 0; 819 u32 mac_fc_cfg; 820 821 ocelot_port->speed = speed; 822 823 /* The MAC might be integrated in systems where the MAC speed is fixed 824 * and it's the PCS who is performing the rate adaptation, so we have 825 * to write "1000Mbps" into the LINK_SPEED field of DEV_CLOCK_CFG 826 * (which is also its default value). 827 */ 828 if ((quirks & OCELOT_QUIRK_PCS_PERFORMS_RATE_ADAPTATION) || 829 speed == SPEED_1000) { 830 mac_speed = OCELOT_SPEED_1000; 831 mode = DEV_MAC_MODE_CFG_GIGA_MODE_ENA; 832 } else if (speed == SPEED_2500) { 833 mac_speed = OCELOT_SPEED_2500; 834 mode = DEV_MAC_MODE_CFG_GIGA_MODE_ENA; 835 } else if (speed == SPEED_100) { 836 mac_speed = OCELOT_SPEED_100; 837 } else { 838 mac_speed = OCELOT_SPEED_10; 839 } 840 841 if (duplex == DUPLEX_FULL) 842 mode |= DEV_MAC_MODE_CFG_FDX_ENA; 843 844 ocelot_port_writel(ocelot_port, mode, DEV_MAC_MODE_CFG); 845 846 /* Take port out of reset by clearing the MAC_TX_RST, MAC_RX_RST and 847 * PORT_RST bits in DEV_CLOCK_CFG. 848 */ 849 ocelot_port_writel(ocelot_port, DEV_CLOCK_CFG_LINK_SPEED(mac_speed), 850 DEV_CLOCK_CFG); 851 852 switch (speed) { 853 case SPEED_10: 854 mac_fc_cfg = SYS_MAC_FC_CFG_FC_LINK_SPEED(OCELOT_SPEED_10); 855 break; 856 case SPEED_100: 857 mac_fc_cfg = SYS_MAC_FC_CFG_FC_LINK_SPEED(OCELOT_SPEED_100); 858 break; 859 case SPEED_1000: 860 case SPEED_2500: 861 mac_fc_cfg = SYS_MAC_FC_CFG_FC_LINK_SPEED(OCELOT_SPEED_1000); 862 break; 863 default: 864 dev_err(ocelot->dev, "Unsupported speed on port %d: %d\n", 865 port, speed); 866 return; 867 } 868 869 /* Handle RX pause in all cases, with 2500base-X this is used for rate 870 * adaptation. 871 */ 872 mac_fc_cfg |= SYS_MAC_FC_CFG_RX_FC_ENA; 873 874 if (tx_pause) 875 mac_fc_cfg |= SYS_MAC_FC_CFG_TX_FC_ENA | 876 SYS_MAC_FC_CFG_PAUSE_VAL_CFG(0xffff) | 877 SYS_MAC_FC_CFG_FC_LATENCY_CFG(0x7) | 878 SYS_MAC_FC_CFG_ZERO_PAUSE_ENA; 879 880 /* Flow control. Link speed is only used here to evaluate the time 881 * specification in incoming pause frames. 882 */ 883 ocelot_write_rix(ocelot, mac_fc_cfg, SYS_MAC_FC_CFG, port); 884 885 ocelot_write_rix(ocelot, 0, ANA_POL_FLOWC, port); 886 887 /* Don't attempt to send PAUSE frames on the NPI port, it's broken */ 888 if (port != ocelot->npi) 889 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_ENA, 890 tx_pause); 891 892 /* Undo the effects of ocelot_phylink_mac_link_down: 893 * enable MAC module 894 */ 895 ocelot_port_writel(ocelot_port, DEV_MAC_ENA_CFG_RX_ENA | 896 DEV_MAC_ENA_CFG_TX_ENA, DEV_MAC_ENA_CFG); 897 898 /* If the port supports cut-through forwarding, update the masks before 899 * enabling forwarding on the port. 900 */ 901 if (ocelot->ops->cut_through_fwd) { 902 mutex_lock(&ocelot->fwd_domain_lock); 903 ocelot->ops->cut_through_fwd(ocelot); 904 mutex_unlock(&ocelot->fwd_domain_lock); 905 } 906 907 /* Core: Enable port for frame transfer */ 908 ocelot_fields_write(ocelot, port, 909 QSYS_SWITCH_PORT_MODE_PORT_ENA, 1); 910 } 911 EXPORT_SYMBOL_GPL(ocelot_phylink_mac_link_up); 912 913 static int ocelot_port_add_txtstamp_skb(struct ocelot *ocelot, int port, 914 struct sk_buff *clone) 915 { 916 struct ocelot_port *ocelot_port = ocelot->ports[port]; 917 unsigned long flags; 918 919 spin_lock_irqsave(&ocelot->ts_id_lock, flags); 920 921 if (ocelot_port->ptp_skbs_in_flight == OCELOT_MAX_PTP_ID || 922 ocelot->ptp_skbs_in_flight == OCELOT_PTP_FIFO_SIZE) { 923 spin_unlock_irqrestore(&ocelot->ts_id_lock, flags); 924 return -EBUSY; 925 } 926 927 skb_shinfo(clone)->tx_flags |= SKBTX_IN_PROGRESS; 928 /* Store timestamp ID in OCELOT_SKB_CB(clone)->ts_id */ 929 OCELOT_SKB_CB(clone)->ts_id = ocelot_port->ts_id; 930 931 ocelot_port->ts_id++; 932 if (ocelot_port->ts_id == OCELOT_MAX_PTP_ID) 933 ocelot_port->ts_id = 0; 934 935 ocelot_port->ptp_skbs_in_flight++; 936 ocelot->ptp_skbs_in_flight++; 937 938 skb_queue_tail(&ocelot_port->tx_skbs, clone); 939 940 spin_unlock_irqrestore(&ocelot->ts_id_lock, flags); 941 942 return 0; 943 } 944 945 static bool ocelot_ptp_is_onestep_sync(struct sk_buff *skb, 946 unsigned int ptp_class) 947 { 948 struct ptp_header *hdr; 949 u8 msgtype, twostep; 950 951 hdr = ptp_parse_header(skb, ptp_class); 952 if (!hdr) 953 return false; 954 955 msgtype = ptp_get_msgtype(hdr, ptp_class); 956 twostep = hdr->flag_field[0] & 0x2; 957 958 if (msgtype == PTP_MSGTYPE_SYNC && twostep == 0) 959 return true; 960 961 return false; 962 } 963 964 int ocelot_port_txtstamp_request(struct ocelot *ocelot, int port, 965 struct sk_buff *skb, 966 struct sk_buff **clone) 967 { 968 struct ocelot_port *ocelot_port = ocelot->ports[port]; 969 u8 ptp_cmd = ocelot_port->ptp_cmd; 970 unsigned int ptp_class; 971 int err; 972 973 /* Don't do anything if PTP timestamping not enabled */ 974 if (!ptp_cmd) 975 return 0; 976 977 ptp_class = ptp_classify_raw(skb); 978 if (ptp_class == PTP_CLASS_NONE) 979 return -EINVAL; 980 981 /* Store ptp_cmd in OCELOT_SKB_CB(skb)->ptp_cmd */ 982 if (ptp_cmd == IFH_REW_OP_ORIGIN_PTP) { 983 if (ocelot_ptp_is_onestep_sync(skb, ptp_class)) { 984 OCELOT_SKB_CB(skb)->ptp_cmd = ptp_cmd; 985 return 0; 986 } 987 988 /* Fall back to two-step timestamping */ 989 ptp_cmd = IFH_REW_OP_TWO_STEP_PTP; 990 } 991 992 if (ptp_cmd == IFH_REW_OP_TWO_STEP_PTP) { 993 *clone = skb_clone_sk(skb); 994 if (!(*clone)) 995 return -ENOMEM; 996 997 err = ocelot_port_add_txtstamp_skb(ocelot, port, *clone); 998 if (err) 999 return err; 1000 1001 OCELOT_SKB_CB(skb)->ptp_cmd = ptp_cmd; 1002 OCELOT_SKB_CB(*clone)->ptp_class = ptp_class; 1003 } 1004 1005 return 0; 1006 } 1007 EXPORT_SYMBOL(ocelot_port_txtstamp_request); 1008 1009 static void ocelot_get_hwtimestamp(struct ocelot *ocelot, 1010 struct timespec64 *ts) 1011 { 1012 unsigned long flags; 1013 u32 val; 1014 1015 spin_lock_irqsave(&ocelot->ptp_clock_lock, flags); 1016 1017 /* Read current PTP time to get seconds */ 1018 val = ocelot_read_rix(ocelot, PTP_PIN_CFG, TOD_ACC_PIN); 1019 1020 val &= ~(PTP_PIN_CFG_SYNC | PTP_PIN_CFG_ACTION_MASK | PTP_PIN_CFG_DOM); 1021 val |= PTP_PIN_CFG_ACTION(PTP_PIN_ACTION_SAVE); 1022 ocelot_write_rix(ocelot, val, PTP_PIN_CFG, TOD_ACC_PIN); 1023 ts->tv_sec = ocelot_read_rix(ocelot, PTP_PIN_TOD_SEC_LSB, TOD_ACC_PIN); 1024 1025 /* Read packet HW timestamp from FIFO */ 1026 val = ocelot_read(ocelot, SYS_PTP_TXSTAMP); 1027 ts->tv_nsec = SYS_PTP_TXSTAMP_PTP_TXSTAMP(val); 1028 1029 /* Sec has incremented since the ts was registered */ 1030 if ((ts->tv_sec & 0x1) != !!(val & SYS_PTP_TXSTAMP_PTP_TXSTAMP_SEC)) 1031 ts->tv_sec--; 1032 1033 spin_unlock_irqrestore(&ocelot->ptp_clock_lock, flags); 1034 } 1035 1036 static bool ocelot_validate_ptp_skb(struct sk_buff *clone, u16 seqid) 1037 { 1038 struct ptp_header *hdr; 1039 1040 hdr = ptp_parse_header(clone, OCELOT_SKB_CB(clone)->ptp_class); 1041 if (WARN_ON(!hdr)) 1042 return false; 1043 1044 return seqid == ntohs(hdr->sequence_id); 1045 } 1046 1047 void ocelot_get_txtstamp(struct ocelot *ocelot) 1048 { 1049 int budget = OCELOT_PTP_QUEUE_SZ; 1050 1051 while (budget--) { 1052 struct sk_buff *skb, *skb_tmp, *skb_match = NULL; 1053 struct skb_shared_hwtstamps shhwtstamps; 1054 u32 val, id, seqid, txport; 1055 struct ocelot_port *port; 1056 struct timespec64 ts; 1057 unsigned long flags; 1058 1059 val = ocelot_read(ocelot, SYS_PTP_STATUS); 1060 1061 /* Check if a timestamp can be retrieved */ 1062 if (!(val & SYS_PTP_STATUS_PTP_MESS_VLD)) 1063 break; 1064 1065 WARN_ON(val & SYS_PTP_STATUS_PTP_OVFL); 1066 1067 /* Retrieve the ts ID and Tx port */ 1068 id = SYS_PTP_STATUS_PTP_MESS_ID_X(val); 1069 txport = SYS_PTP_STATUS_PTP_MESS_TXPORT_X(val); 1070 seqid = SYS_PTP_STATUS_PTP_MESS_SEQ_ID(val); 1071 1072 port = ocelot->ports[txport]; 1073 1074 spin_lock(&ocelot->ts_id_lock); 1075 port->ptp_skbs_in_flight--; 1076 ocelot->ptp_skbs_in_flight--; 1077 spin_unlock(&ocelot->ts_id_lock); 1078 1079 /* Retrieve its associated skb */ 1080 try_again: 1081 spin_lock_irqsave(&port->tx_skbs.lock, flags); 1082 1083 skb_queue_walk_safe(&port->tx_skbs, skb, skb_tmp) { 1084 if (OCELOT_SKB_CB(skb)->ts_id != id) 1085 continue; 1086 __skb_unlink(skb, &port->tx_skbs); 1087 skb_match = skb; 1088 break; 1089 } 1090 1091 spin_unlock_irqrestore(&port->tx_skbs.lock, flags); 1092 1093 if (WARN_ON(!skb_match)) 1094 continue; 1095 1096 if (!ocelot_validate_ptp_skb(skb_match, seqid)) { 1097 dev_err_ratelimited(ocelot->dev, 1098 "port %d received stale TX timestamp for seqid %d, discarding\n", 1099 txport, seqid); 1100 dev_kfree_skb_any(skb); 1101 goto try_again; 1102 } 1103 1104 /* Get the h/w timestamp */ 1105 ocelot_get_hwtimestamp(ocelot, &ts); 1106 1107 /* Set the timestamp into the skb */ 1108 memset(&shhwtstamps, 0, sizeof(shhwtstamps)); 1109 shhwtstamps.hwtstamp = ktime_set(ts.tv_sec, ts.tv_nsec); 1110 skb_complete_tx_timestamp(skb_match, &shhwtstamps); 1111 1112 /* Next ts */ 1113 ocelot_write(ocelot, SYS_PTP_NXT_PTP_NXT, SYS_PTP_NXT); 1114 } 1115 } 1116 EXPORT_SYMBOL(ocelot_get_txtstamp); 1117 1118 static int ocelot_rx_frame_word(struct ocelot *ocelot, u8 grp, bool ifh, 1119 u32 *rval) 1120 { 1121 u32 bytes_valid, val; 1122 1123 val = ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1124 if (val == XTR_NOT_READY) { 1125 if (ifh) 1126 return -EIO; 1127 1128 do { 1129 val = ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1130 } while (val == XTR_NOT_READY); 1131 } 1132 1133 switch (val) { 1134 case XTR_ABORT: 1135 return -EIO; 1136 case XTR_EOF_0: 1137 case XTR_EOF_1: 1138 case XTR_EOF_2: 1139 case XTR_EOF_3: 1140 case XTR_PRUNED: 1141 bytes_valid = XTR_VALID_BYTES(val); 1142 val = ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1143 if (val == XTR_ESCAPE) 1144 *rval = ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1145 else 1146 *rval = val; 1147 1148 return bytes_valid; 1149 case XTR_ESCAPE: 1150 *rval = ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1151 1152 return 4; 1153 default: 1154 *rval = val; 1155 1156 return 4; 1157 } 1158 } 1159 1160 static int ocelot_xtr_poll_xfh(struct ocelot *ocelot, int grp, u32 *xfh) 1161 { 1162 int i, err = 0; 1163 1164 for (i = 0; i < OCELOT_TAG_LEN / 4; i++) { 1165 err = ocelot_rx_frame_word(ocelot, grp, true, &xfh[i]); 1166 if (err != 4) 1167 return (err < 0) ? err : -EIO; 1168 } 1169 1170 return 0; 1171 } 1172 1173 void ocelot_ptp_rx_timestamp(struct ocelot *ocelot, struct sk_buff *skb, 1174 u64 timestamp) 1175 { 1176 struct skb_shared_hwtstamps *shhwtstamps; 1177 u64 tod_in_ns, full_ts_in_ns; 1178 struct timespec64 ts; 1179 1180 ocelot_ptp_gettime64(&ocelot->ptp_info, &ts); 1181 1182 tod_in_ns = ktime_set(ts.tv_sec, ts.tv_nsec); 1183 if ((tod_in_ns & 0xffffffff) < timestamp) 1184 full_ts_in_ns = (((tod_in_ns >> 32) - 1) << 32) | 1185 timestamp; 1186 else 1187 full_ts_in_ns = (tod_in_ns & GENMASK_ULL(63, 32)) | 1188 timestamp; 1189 1190 shhwtstamps = skb_hwtstamps(skb); 1191 memset(shhwtstamps, 0, sizeof(struct skb_shared_hwtstamps)); 1192 shhwtstamps->hwtstamp = full_ts_in_ns; 1193 } 1194 EXPORT_SYMBOL(ocelot_ptp_rx_timestamp); 1195 1196 int ocelot_xtr_poll_frame(struct ocelot *ocelot, int grp, struct sk_buff **nskb) 1197 { 1198 u64 timestamp, src_port, len; 1199 u32 xfh[OCELOT_TAG_LEN / 4]; 1200 struct net_device *dev; 1201 struct sk_buff *skb; 1202 int sz, buf_len; 1203 u32 val, *buf; 1204 int err; 1205 1206 err = ocelot_xtr_poll_xfh(ocelot, grp, xfh); 1207 if (err) 1208 return err; 1209 1210 ocelot_xfh_get_src_port(xfh, &src_port); 1211 ocelot_xfh_get_len(xfh, &len); 1212 ocelot_xfh_get_rew_val(xfh, ×tamp); 1213 1214 if (WARN_ON(src_port >= ocelot->num_phys_ports)) 1215 return -EINVAL; 1216 1217 dev = ocelot->ops->port_to_netdev(ocelot, src_port); 1218 if (!dev) 1219 return -EINVAL; 1220 1221 skb = netdev_alloc_skb(dev, len); 1222 if (unlikely(!skb)) { 1223 netdev_err(dev, "Unable to allocate sk_buff\n"); 1224 return -ENOMEM; 1225 } 1226 1227 buf_len = len - ETH_FCS_LEN; 1228 buf = (u32 *)skb_put(skb, buf_len); 1229 1230 len = 0; 1231 do { 1232 sz = ocelot_rx_frame_word(ocelot, grp, false, &val); 1233 if (sz < 0) { 1234 err = sz; 1235 goto out_free_skb; 1236 } 1237 *buf++ = val; 1238 len += sz; 1239 } while (len < buf_len); 1240 1241 /* Read the FCS */ 1242 sz = ocelot_rx_frame_word(ocelot, grp, false, &val); 1243 if (sz < 0) { 1244 err = sz; 1245 goto out_free_skb; 1246 } 1247 1248 /* Update the statistics if part of the FCS was read before */ 1249 len -= ETH_FCS_LEN - sz; 1250 1251 if (unlikely(dev->features & NETIF_F_RXFCS)) { 1252 buf = (u32 *)skb_put(skb, ETH_FCS_LEN); 1253 *buf = val; 1254 } 1255 1256 if (ocelot->ptp) 1257 ocelot_ptp_rx_timestamp(ocelot, skb, timestamp); 1258 1259 /* Everything we see on an interface that is in the HW bridge 1260 * has already been forwarded. 1261 */ 1262 if (ocelot->ports[src_port]->bridge) 1263 skb->offload_fwd_mark = 1; 1264 1265 skb->protocol = eth_type_trans(skb, dev); 1266 1267 *nskb = skb; 1268 1269 return 0; 1270 1271 out_free_skb: 1272 kfree_skb(skb); 1273 return err; 1274 } 1275 EXPORT_SYMBOL(ocelot_xtr_poll_frame); 1276 1277 bool ocelot_can_inject(struct ocelot *ocelot, int grp) 1278 { 1279 u32 val = ocelot_read(ocelot, QS_INJ_STATUS); 1280 1281 if (!(val & QS_INJ_STATUS_FIFO_RDY(BIT(grp)))) 1282 return false; 1283 if (val & QS_INJ_STATUS_WMARK_REACHED(BIT(grp))) 1284 return false; 1285 1286 return true; 1287 } 1288 EXPORT_SYMBOL(ocelot_can_inject); 1289 1290 void ocelot_ifh_port_set(void *ifh, int port, u32 rew_op, u32 vlan_tag) 1291 { 1292 ocelot_ifh_set_bypass(ifh, 1); 1293 ocelot_ifh_set_dest(ifh, BIT_ULL(port)); 1294 ocelot_ifh_set_tag_type(ifh, IFH_TAG_TYPE_C); 1295 if (vlan_tag) 1296 ocelot_ifh_set_vlan_tci(ifh, vlan_tag); 1297 if (rew_op) 1298 ocelot_ifh_set_rew_op(ifh, rew_op); 1299 } 1300 EXPORT_SYMBOL(ocelot_ifh_port_set); 1301 1302 void ocelot_port_inject_frame(struct ocelot *ocelot, int port, int grp, 1303 u32 rew_op, struct sk_buff *skb) 1304 { 1305 u32 ifh[OCELOT_TAG_LEN / 4] = {0}; 1306 unsigned int i, count, last; 1307 1308 ocelot_write_rix(ocelot, QS_INJ_CTRL_GAP_SIZE(1) | 1309 QS_INJ_CTRL_SOF, QS_INJ_CTRL, grp); 1310 1311 ocelot_ifh_port_set(ifh, port, rew_op, skb_vlan_tag_get(skb)); 1312 1313 for (i = 0; i < OCELOT_TAG_LEN / 4; i++) 1314 ocelot_write_rix(ocelot, ifh[i], QS_INJ_WR, grp); 1315 1316 count = DIV_ROUND_UP(skb->len, 4); 1317 last = skb->len % 4; 1318 for (i = 0; i < count; i++) 1319 ocelot_write_rix(ocelot, ((u32 *)skb->data)[i], QS_INJ_WR, grp); 1320 1321 /* Add padding */ 1322 while (i < (OCELOT_BUFFER_CELL_SZ / 4)) { 1323 ocelot_write_rix(ocelot, 0, QS_INJ_WR, grp); 1324 i++; 1325 } 1326 1327 /* Indicate EOF and valid bytes in last word */ 1328 ocelot_write_rix(ocelot, QS_INJ_CTRL_GAP_SIZE(1) | 1329 QS_INJ_CTRL_VLD_BYTES(skb->len < OCELOT_BUFFER_CELL_SZ ? 0 : last) | 1330 QS_INJ_CTRL_EOF, 1331 QS_INJ_CTRL, grp); 1332 1333 /* Add dummy CRC */ 1334 ocelot_write_rix(ocelot, 0, QS_INJ_WR, grp); 1335 skb_tx_timestamp(skb); 1336 1337 skb->dev->stats.tx_packets++; 1338 skb->dev->stats.tx_bytes += skb->len; 1339 } 1340 EXPORT_SYMBOL(ocelot_port_inject_frame); 1341 1342 void ocelot_drain_cpu_queue(struct ocelot *ocelot, int grp) 1343 { 1344 while (ocelot_read(ocelot, QS_XTR_DATA_PRESENT) & BIT(grp)) 1345 ocelot_read_rix(ocelot, QS_XTR_RD, grp); 1346 } 1347 EXPORT_SYMBOL(ocelot_drain_cpu_queue); 1348 1349 int ocelot_fdb_add(struct ocelot *ocelot, int port, const unsigned char *addr, 1350 u16 vid, const struct net_device *bridge) 1351 { 1352 int pgid = port; 1353 1354 if (port == ocelot->npi) 1355 pgid = PGID_CPU; 1356 1357 if (!vid) 1358 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 1359 1360 return ocelot_mact_learn(ocelot, pgid, addr, vid, ENTRYTYPE_LOCKED); 1361 } 1362 EXPORT_SYMBOL(ocelot_fdb_add); 1363 1364 int ocelot_fdb_del(struct ocelot *ocelot, int port, const unsigned char *addr, 1365 u16 vid, const struct net_device *bridge) 1366 { 1367 if (!vid) 1368 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 1369 1370 return ocelot_mact_forget(ocelot, addr, vid); 1371 } 1372 EXPORT_SYMBOL(ocelot_fdb_del); 1373 1374 int ocelot_port_fdb_do_dump(const unsigned char *addr, u16 vid, 1375 bool is_static, void *data) 1376 { 1377 struct ocelot_dump_ctx *dump = data; 1378 u32 portid = NETLINK_CB(dump->cb->skb).portid; 1379 u32 seq = dump->cb->nlh->nlmsg_seq; 1380 struct nlmsghdr *nlh; 1381 struct ndmsg *ndm; 1382 1383 if (dump->idx < dump->cb->args[2]) 1384 goto skip; 1385 1386 nlh = nlmsg_put(dump->skb, portid, seq, RTM_NEWNEIGH, 1387 sizeof(*ndm), NLM_F_MULTI); 1388 if (!nlh) 1389 return -EMSGSIZE; 1390 1391 ndm = nlmsg_data(nlh); 1392 ndm->ndm_family = AF_BRIDGE; 1393 ndm->ndm_pad1 = 0; 1394 ndm->ndm_pad2 = 0; 1395 ndm->ndm_flags = NTF_SELF; 1396 ndm->ndm_type = 0; 1397 ndm->ndm_ifindex = dump->dev->ifindex; 1398 ndm->ndm_state = is_static ? NUD_NOARP : NUD_REACHABLE; 1399 1400 if (nla_put(dump->skb, NDA_LLADDR, ETH_ALEN, addr)) 1401 goto nla_put_failure; 1402 1403 if (vid && nla_put_u16(dump->skb, NDA_VLAN, vid)) 1404 goto nla_put_failure; 1405 1406 nlmsg_end(dump->skb, nlh); 1407 1408 skip: 1409 dump->idx++; 1410 return 0; 1411 1412 nla_put_failure: 1413 nlmsg_cancel(dump->skb, nlh); 1414 return -EMSGSIZE; 1415 } 1416 EXPORT_SYMBOL(ocelot_port_fdb_do_dump); 1417 1418 /* Caller must hold &ocelot->mact_lock */ 1419 static int ocelot_mact_read(struct ocelot *ocelot, int port, int row, int col, 1420 struct ocelot_mact_entry *entry) 1421 { 1422 u32 val, dst, macl, mach; 1423 char mac[ETH_ALEN]; 1424 1425 /* Set row and column to read from */ 1426 ocelot_field_write(ocelot, ANA_TABLES_MACTINDX_M_INDEX, row); 1427 ocelot_field_write(ocelot, ANA_TABLES_MACTINDX_BUCKET, col); 1428 1429 /* Issue a read command */ 1430 ocelot_write(ocelot, 1431 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_READ), 1432 ANA_TABLES_MACACCESS); 1433 1434 if (ocelot_mact_wait_for_completion(ocelot)) 1435 return -ETIMEDOUT; 1436 1437 /* Read the entry flags */ 1438 val = ocelot_read(ocelot, ANA_TABLES_MACACCESS); 1439 if (!(val & ANA_TABLES_MACACCESS_VALID)) 1440 return -EINVAL; 1441 1442 /* If the entry read has another port configured as its destination, 1443 * do not report it. 1444 */ 1445 dst = (val & ANA_TABLES_MACACCESS_DEST_IDX_M) >> 3; 1446 if (dst != port) 1447 return -EINVAL; 1448 1449 /* Get the entry's MAC address and VLAN id */ 1450 macl = ocelot_read(ocelot, ANA_TABLES_MACLDATA); 1451 mach = ocelot_read(ocelot, ANA_TABLES_MACHDATA); 1452 1453 mac[0] = (mach >> 8) & 0xff; 1454 mac[1] = (mach >> 0) & 0xff; 1455 mac[2] = (macl >> 24) & 0xff; 1456 mac[3] = (macl >> 16) & 0xff; 1457 mac[4] = (macl >> 8) & 0xff; 1458 mac[5] = (macl >> 0) & 0xff; 1459 1460 entry->vid = (mach >> 16) & 0xfff; 1461 ether_addr_copy(entry->mac, mac); 1462 1463 return 0; 1464 } 1465 1466 int ocelot_mact_flush(struct ocelot *ocelot, int port) 1467 { 1468 int err; 1469 1470 mutex_lock(&ocelot->mact_lock); 1471 1472 /* Program ageing filter for a single port */ 1473 ocelot_write(ocelot, ANA_ANAGEFIL_PID_EN | ANA_ANAGEFIL_PID_VAL(port), 1474 ANA_ANAGEFIL); 1475 1476 /* Flushing dynamic FDB entries requires two successive age scans */ 1477 ocelot_write(ocelot, 1478 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_AGE), 1479 ANA_TABLES_MACACCESS); 1480 1481 err = ocelot_mact_wait_for_completion(ocelot); 1482 if (err) { 1483 mutex_unlock(&ocelot->mact_lock); 1484 return err; 1485 } 1486 1487 /* And second... */ 1488 ocelot_write(ocelot, 1489 ANA_TABLES_MACACCESS_MAC_TABLE_CMD(MACACCESS_CMD_AGE), 1490 ANA_TABLES_MACACCESS); 1491 1492 err = ocelot_mact_wait_for_completion(ocelot); 1493 1494 /* Restore ageing filter */ 1495 ocelot_write(ocelot, 0, ANA_ANAGEFIL); 1496 1497 mutex_unlock(&ocelot->mact_lock); 1498 1499 return err; 1500 } 1501 EXPORT_SYMBOL_GPL(ocelot_mact_flush); 1502 1503 int ocelot_fdb_dump(struct ocelot *ocelot, int port, 1504 dsa_fdb_dump_cb_t *cb, void *data) 1505 { 1506 int err = 0; 1507 int i, j; 1508 1509 /* We could take the lock just around ocelot_mact_read, but doing so 1510 * thousands of times in a row seems rather pointless and inefficient. 1511 */ 1512 mutex_lock(&ocelot->mact_lock); 1513 1514 /* Loop through all the mac tables entries. */ 1515 for (i = 0; i < ocelot->num_mact_rows; i++) { 1516 for (j = 0; j < 4; j++) { 1517 struct ocelot_mact_entry entry; 1518 bool is_static; 1519 1520 err = ocelot_mact_read(ocelot, port, i, j, &entry); 1521 /* If the entry is invalid (wrong port, invalid...), 1522 * skip it. 1523 */ 1524 if (err == -EINVAL) 1525 continue; 1526 else if (err) 1527 break; 1528 1529 is_static = (entry.type == ENTRYTYPE_LOCKED); 1530 1531 /* Hide the reserved VLANs used for 1532 * VLAN-unaware bridging. 1533 */ 1534 if (entry.vid > OCELOT_RSV_VLAN_RANGE_START) 1535 entry.vid = 0; 1536 1537 err = cb(entry.mac, entry.vid, is_static, data); 1538 if (err) 1539 break; 1540 } 1541 } 1542 1543 mutex_unlock(&ocelot->mact_lock); 1544 1545 return err; 1546 } 1547 EXPORT_SYMBOL(ocelot_fdb_dump); 1548 1549 static void ocelot_populate_l2_ptp_trap_key(struct ocelot_vcap_filter *trap) 1550 { 1551 trap->key_type = OCELOT_VCAP_KEY_ETYPE; 1552 *(__be16 *)trap->key.etype.etype.value = htons(ETH_P_1588); 1553 *(__be16 *)trap->key.etype.etype.mask = htons(0xffff); 1554 } 1555 1556 static void 1557 ocelot_populate_ipv4_ptp_event_trap_key(struct ocelot_vcap_filter *trap) 1558 { 1559 trap->key_type = OCELOT_VCAP_KEY_IPV4; 1560 trap->key.ipv4.proto.value[0] = IPPROTO_UDP; 1561 trap->key.ipv4.proto.mask[0] = 0xff; 1562 trap->key.ipv4.dport.value = PTP_EV_PORT; 1563 trap->key.ipv4.dport.mask = 0xffff; 1564 } 1565 1566 static void 1567 ocelot_populate_ipv6_ptp_event_trap_key(struct ocelot_vcap_filter *trap) 1568 { 1569 trap->key_type = OCELOT_VCAP_KEY_IPV6; 1570 trap->key.ipv4.proto.value[0] = IPPROTO_UDP; 1571 trap->key.ipv4.proto.mask[0] = 0xff; 1572 trap->key.ipv6.dport.value = PTP_EV_PORT; 1573 trap->key.ipv6.dport.mask = 0xffff; 1574 } 1575 1576 static void 1577 ocelot_populate_ipv4_ptp_general_trap_key(struct ocelot_vcap_filter *trap) 1578 { 1579 trap->key_type = OCELOT_VCAP_KEY_IPV4; 1580 trap->key.ipv4.proto.value[0] = IPPROTO_UDP; 1581 trap->key.ipv4.proto.mask[0] = 0xff; 1582 trap->key.ipv4.dport.value = PTP_GEN_PORT; 1583 trap->key.ipv4.dport.mask = 0xffff; 1584 } 1585 1586 static void 1587 ocelot_populate_ipv6_ptp_general_trap_key(struct ocelot_vcap_filter *trap) 1588 { 1589 trap->key_type = OCELOT_VCAP_KEY_IPV6; 1590 trap->key.ipv4.proto.value[0] = IPPROTO_UDP; 1591 trap->key.ipv4.proto.mask[0] = 0xff; 1592 trap->key.ipv6.dport.value = PTP_GEN_PORT; 1593 trap->key.ipv6.dport.mask = 0xffff; 1594 } 1595 1596 int ocelot_trap_add(struct ocelot *ocelot, int port, 1597 unsigned long cookie, bool take_ts, 1598 void (*populate)(struct ocelot_vcap_filter *f)) 1599 { 1600 struct ocelot_vcap_block *block_vcap_is2; 1601 struct ocelot_vcap_filter *trap; 1602 bool new = false; 1603 int err; 1604 1605 block_vcap_is2 = &ocelot->block[VCAP_IS2]; 1606 1607 trap = ocelot_vcap_block_find_filter_by_id(block_vcap_is2, cookie, 1608 false); 1609 if (!trap) { 1610 trap = kzalloc(sizeof(*trap), GFP_KERNEL); 1611 if (!trap) 1612 return -ENOMEM; 1613 1614 populate(trap); 1615 trap->prio = 1; 1616 trap->id.cookie = cookie; 1617 trap->id.tc_offload = false; 1618 trap->block_id = VCAP_IS2; 1619 trap->type = OCELOT_VCAP_FILTER_OFFLOAD; 1620 trap->lookup = 0; 1621 trap->action.cpu_copy_ena = true; 1622 trap->action.mask_mode = OCELOT_MASK_MODE_PERMIT_DENY; 1623 trap->action.port_mask = 0; 1624 trap->take_ts = take_ts; 1625 trap->is_trap = true; 1626 new = true; 1627 } 1628 1629 trap->ingress_port_mask |= BIT(port); 1630 1631 if (new) 1632 err = ocelot_vcap_filter_add(ocelot, trap, NULL); 1633 else 1634 err = ocelot_vcap_filter_replace(ocelot, trap); 1635 if (err) { 1636 trap->ingress_port_mask &= ~BIT(port); 1637 if (!trap->ingress_port_mask) 1638 kfree(trap); 1639 return err; 1640 } 1641 1642 return 0; 1643 } 1644 1645 int ocelot_trap_del(struct ocelot *ocelot, int port, unsigned long cookie) 1646 { 1647 struct ocelot_vcap_block *block_vcap_is2; 1648 struct ocelot_vcap_filter *trap; 1649 1650 block_vcap_is2 = &ocelot->block[VCAP_IS2]; 1651 1652 trap = ocelot_vcap_block_find_filter_by_id(block_vcap_is2, cookie, 1653 false); 1654 if (!trap) 1655 return 0; 1656 1657 trap->ingress_port_mask &= ~BIT(port); 1658 if (!trap->ingress_port_mask) 1659 return ocelot_vcap_filter_del(ocelot, trap); 1660 1661 return ocelot_vcap_filter_replace(ocelot, trap); 1662 } 1663 1664 static int ocelot_l2_ptp_trap_add(struct ocelot *ocelot, int port) 1665 { 1666 unsigned long l2_cookie = OCELOT_VCAP_IS2_L2_PTP_TRAP(ocelot); 1667 1668 return ocelot_trap_add(ocelot, port, l2_cookie, true, 1669 ocelot_populate_l2_ptp_trap_key); 1670 } 1671 1672 static int ocelot_l2_ptp_trap_del(struct ocelot *ocelot, int port) 1673 { 1674 unsigned long l2_cookie = OCELOT_VCAP_IS2_L2_PTP_TRAP(ocelot); 1675 1676 return ocelot_trap_del(ocelot, port, l2_cookie); 1677 } 1678 1679 static int ocelot_ipv4_ptp_trap_add(struct ocelot *ocelot, int port) 1680 { 1681 unsigned long ipv4_gen_cookie = OCELOT_VCAP_IS2_IPV4_GEN_PTP_TRAP(ocelot); 1682 unsigned long ipv4_ev_cookie = OCELOT_VCAP_IS2_IPV4_EV_PTP_TRAP(ocelot); 1683 int err; 1684 1685 err = ocelot_trap_add(ocelot, port, ipv4_ev_cookie, true, 1686 ocelot_populate_ipv4_ptp_event_trap_key); 1687 if (err) 1688 return err; 1689 1690 err = ocelot_trap_add(ocelot, port, ipv4_gen_cookie, false, 1691 ocelot_populate_ipv4_ptp_general_trap_key); 1692 if (err) 1693 ocelot_trap_del(ocelot, port, ipv4_ev_cookie); 1694 1695 return err; 1696 } 1697 1698 static int ocelot_ipv4_ptp_trap_del(struct ocelot *ocelot, int port) 1699 { 1700 unsigned long ipv4_gen_cookie = OCELOT_VCAP_IS2_IPV4_GEN_PTP_TRAP(ocelot); 1701 unsigned long ipv4_ev_cookie = OCELOT_VCAP_IS2_IPV4_EV_PTP_TRAP(ocelot); 1702 int err; 1703 1704 err = ocelot_trap_del(ocelot, port, ipv4_ev_cookie); 1705 err |= ocelot_trap_del(ocelot, port, ipv4_gen_cookie); 1706 return err; 1707 } 1708 1709 static int ocelot_ipv6_ptp_trap_add(struct ocelot *ocelot, int port) 1710 { 1711 unsigned long ipv6_gen_cookie = OCELOT_VCAP_IS2_IPV6_GEN_PTP_TRAP(ocelot); 1712 unsigned long ipv6_ev_cookie = OCELOT_VCAP_IS2_IPV6_EV_PTP_TRAP(ocelot); 1713 int err; 1714 1715 err = ocelot_trap_add(ocelot, port, ipv6_ev_cookie, true, 1716 ocelot_populate_ipv6_ptp_event_trap_key); 1717 if (err) 1718 return err; 1719 1720 err = ocelot_trap_add(ocelot, port, ipv6_gen_cookie, false, 1721 ocelot_populate_ipv6_ptp_general_trap_key); 1722 if (err) 1723 ocelot_trap_del(ocelot, port, ipv6_ev_cookie); 1724 1725 return err; 1726 } 1727 1728 static int ocelot_ipv6_ptp_trap_del(struct ocelot *ocelot, int port) 1729 { 1730 unsigned long ipv6_gen_cookie = OCELOT_VCAP_IS2_IPV6_GEN_PTP_TRAP(ocelot); 1731 unsigned long ipv6_ev_cookie = OCELOT_VCAP_IS2_IPV6_EV_PTP_TRAP(ocelot); 1732 int err; 1733 1734 err = ocelot_trap_del(ocelot, port, ipv6_ev_cookie); 1735 err |= ocelot_trap_del(ocelot, port, ipv6_gen_cookie); 1736 return err; 1737 } 1738 1739 static int ocelot_setup_ptp_traps(struct ocelot *ocelot, int port, 1740 bool l2, bool l4) 1741 { 1742 int err; 1743 1744 if (l2) 1745 err = ocelot_l2_ptp_trap_add(ocelot, port); 1746 else 1747 err = ocelot_l2_ptp_trap_del(ocelot, port); 1748 if (err) 1749 return err; 1750 1751 if (l4) { 1752 err = ocelot_ipv4_ptp_trap_add(ocelot, port); 1753 if (err) 1754 goto err_ipv4; 1755 1756 err = ocelot_ipv6_ptp_trap_add(ocelot, port); 1757 if (err) 1758 goto err_ipv6; 1759 } else { 1760 err = ocelot_ipv4_ptp_trap_del(ocelot, port); 1761 1762 err |= ocelot_ipv6_ptp_trap_del(ocelot, port); 1763 } 1764 if (err) 1765 return err; 1766 1767 return 0; 1768 1769 err_ipv6: 1770 ocelot_ipv4_ptp_trap_del(ocelot, port); 1771 err_ipv4: 1772 if (l2) 1773 ocelot_l2_ptp_trap_del(ocelot, port); 1774 return err; 1775 } 1776 1777 int ocelot_hwstamp_get(struct ocelot *ocelot, int port, struct ifreq *ifr) 1778 { 1779 return copy_to_user(ifr->ifr_data, &ocelot->hwtstamp_config, 1780 sizeof(ocelot->hwtstamp_config)) ? -EFAULT : 0; 1781 } 1782 EXPORT_SYMBOL(ocelot_hwstamp_get); 1783 1784 int ocelot_hwstamp_set(struct ocelot *ocelot, int port, struct ifreq *ifr) 1785 { 1786 struct ocelot_port *ocelot_port = ocelot->ports[port]; 1787 bool l2 = false, l4 = false; 1788 struct hwtstamp_config cfg; 1789 int err; 1790 1791 if (copy_from_user(&cfg, ifr->ifr_data, sizeof(cfg))) 1792 return -EFAULT; 1793 1794 /* Tx type sanity check */ 1795 switch (cfg.tx_type) { 1796 case HWTSTAMP_TX_ON: 1797 ocelot_port->ptp_cmd = IFH_REW_OP_TWO_STEP_PTP; 1798 break; 1799 case HWTSTAMP_TX_ONESTEP_SYNC: 1800 /* IFH_REW_OP_ONE_STEP_PTP updates the correctional field, we 1801 * need to update the origin time. 1802 */ 1803 ocelot_port->ptp_cmd = IFH_REW_OP_ORIGIN_PTP; 1804 break; 1805 case HWTSTAMP_TX_OFF: 1806 ocelot_port->ptp_cmd = 0; 1807 break; 1808 default: 1809 return -ERANGE; 1810 } 1811 1812 mutex_lock(&ocelot->ptp_lock); 1813 1814 switch (cfg.rx_filter) { 1815 case HWTSTAMP_FILTER_NONE: 1816 break; 1817 case HWTSTAMP_FILTER_PTP_V2_L4_EVENT: 1818 case HWTSTAMP_FILTER_PTP_V2_L4_SYNC: 1819 case HWTSTAMP_FILTER_PTP_V2_L4_DELAY_REQ: 1820 l4 = true; 1821 break; 1822 case HWTSTAMP_FILTER_PTP_V2_L2_EVENT: 1823 case HWTSTAMP_FILTER_PTP_V2_L2_SYNC: 1824 case HWTSTAMP_FILTER_PTP_V2_L2_DELAY_REQ: 1825 l2 = true; 1826 break; 1827 case HWTSTAMP_FILTER_PTP_V2_EVENT: 1828 case HWTSTAMP_FILTER_PTP_V2_SYNC: 1829 case HWTSTAMP_FILTER_PTP_V2_DELAY_REQ: 1830 l2 = true; 1831 l4 = true; 1832 break; 1833 default: 1834 mutex_unlock(&ocelot->ptp_lock); 1835 return -ERANGE; 1836 } 1837 1838 err = ocelot_setup_ptp_traps(ocelot, port, l2, l4); 1839 if (err) { 1840 mutex_unlock(&ocelot->ptp_lock); 1841 return err; 1842 } 1843 1844 if (l2 && l4) 1845 cfg.rx_filter = HWTSTAMP_FILTER_PTP_V2_EVENT; 1846 else if (l2) 1847 cfg.rx_filter = HWTSTAMP_FILTER_PTP_V2_L2_EVENT; 1848 else if (l4) 1849 cfg.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_EVENT; 1850 else 1851 cfg.rx_filter = HWTSTAMP_FILTER_NONE; 1852 1853 /* Commit back the result & save it */ 1854 memcpy(&ocelot->hwtstamp_config, &cfg, sizeof(cfg)); 1855 mutex_unlock(&ocelot->ptp_lock); 1856 1857 return copy_to_user(ifr->ifr_data, &cfg, sizeof(cfg)) ? -EFAULT : 0; 1858 } 1859 EXPORT_SYMBOL(ocelot_hwstamp_set); 1860 1861 void ocelot_get_strings(struct ocelot *ocelot, int port, u32 sset, u8 *data) 1862 { 1863 int i; 1864 1865 if (sset != ETH_SS_STATS) 1866 return; 1867 1868 for (i = 0; i < ocelot->num_stats; i++) 1869 memcpy(data + i * ETH_GSTRING_LEN, ocelot->stats_layout[i].name, 1870 ETH_GSTRING_LEN); 1871 } 1872 EXPORT_SYMBOL(ocelot_get_strings); 1873 1874 /* Caller must hold &ocelot->stats_lock */ 1875 static int ocelot_port_update_stats(struct ocelot *ocelot, int port) 1876 { 1877 unsigned int idx = port * ocelot->num_stats; 1878 struct ocelot_stats_region *region; 1879 int err, j; 1880 1881 /* Configure the port to read the stats from */ 1882 ocelot_write(ocelot, SYS_STAT_CFG_STAT_VIEW(port), SYS_STAT_CFG); 1883 1884 list_for_each_entry(region, &ocelot->stats_regions, node) { 1885 err = ocelot_bulk_read_rix(ocelot, SYS_COUNT_RX_OCTETS, 1886 region->offset, region->buf, 1887 region->count); 1888 if (err) 1889 return err; 1890 1891 for (j = 0; j < region->count; j++) { 1892 u64 *stat = &ocelot->stats[idx + j]; 1893 u64 val = region->buf[j]; 1894 1895 if (val < (*stat & U32_MAX)) 1896 *stat += (u64)1 << 32; 1897 1898 *stat = (*stat & ~(u64)U32_MAX) + val; 1899 } 1900 1901 idx += region->count; 1902 } 1903 1904 return err; 1905 } 1906 1907 static void ocelot_check_stats_work(struct work_struct *work) 1908 { 1909 struct delayed_work *del_work = to_delayed_work(work); 1910 struct ocelot *ocelot = container_of(del_work, struct ocelot, 1911 stats_work); 1912 int i, err; 1913 1914 mutex_lock(&ocelot->stats_lock); 1915 for (i = 0; i < ocelot->num_phys_ports; i++) { 1916 err = ocelot_port_update_stats(ocelot, i); 1917 if (err) 1918 break; 1919 } 1920 mutex_unlock(&ocelot->stats_lock); 1921 1922 if (err) 1923 dev_err(ocelot->dev, "Error %d updating ethtool stats\n", err); 1924 1925 queue_delayed_work(ocelot->stats_queue, &ocelot->stats_work, 1926 OCELOT_STATS_CHECK_DELAY); 1927 } 1928 1929 void ocelot_get_ethtool_stats(struct ocelot *ocelot, int port, u64 *data) 1930 { 1931 int i, err; 1932 1933 mutex_lock(&ocelot->stats_lock); 1934 1935 /* check and update now */ 1936 err = ocelot_port_update_stats(ocelot, port); 1937 1938 /* Copy all counters */ 1939 for (i = 0; i < ocelot->num_stats; i++) 1940 *data++ = ocelot->stats[port * ocelot->num_stats + i]; 1941 1942 mutex_unlock(&ocelot->stats_lock); 1943 1944 if (err) 1945 dev_err(ocelot->dev, "Error %d updating ethtool stats\n", err); 1946 } 1947 EXPORT_SYMBOL(ocelot_get_ethtool_stats); 1948 1949 int ocelot_get_sset_count(struct ocelot *ocelot, int port, int sset) 1950 { 1951 if (sset != ETH_SS_STATS) 1952 return -EOPNOTSUPP; 1953 1954 return ocelot->num_stats; 1955 } 1956 EXPORT_SYMBOL(ocelot_get_sset_count); 1957 1958 static int ocelot_prepare_stats_regions(struct ocelot *ocelot) 1959 { 1960 struct ocelot_stats_region *region = NULL; 1961 unsigned int last; 1962 int i; 1963 1964 INIT_LIST_HEAD(&ocelot->stats_regions); 1965 1966 for (i = 0; i < ocelot->num_stats; i++) { 1967 if (region && ocelot->stats_layout[i].offset == last + 1) { 1968 region->count++; 1969 } else { 1970 region = devm_kzalloc(ocelot->dev, sizeof(*region), 1971 GFP_KERNEL); 1972 if (!region) 1973 return -ENOMEM; 1974 1975 region->offset = ocelot->stats_layout[i].offset; 1976 region->count = 1; 1977 list_add_tail(®ion->node, &ocelot->stats_regions); 1978 } 1979 1980 last = ocelot->stats_layout[i].offset; 1981 } 1982 1983 list_for_each_entry(region, &ocelot->stats_regions, node) { 1984 region->buf = devm_kcalloc(ocelot->dev, region->count, 1985 sizeof(*region->buf), GFP_KERNEL); 1986 if (!region->buf) 1987 return -ENOMEM; 1988 } 1989 1990 return 0; 1991 } 1992 1993 int ocelot_get_ts_info(struct ocelot *ocelot, int port, 1994 struct ethtool_ts_info *info) 1995 { 1996 info->phc_index = ocelot->ptp_clock ? 1997 ptp_clock_index(ocelot->ptp_clock) : -1; 1998 if (info->phc_index == -1) { 1999 info->so_timestamping |= SOF_TIMESTAMPING_TX_SOFTWARE | 2000 SOF_TIMESTAMPING_RX_SOFTWARE | 2001 SOF_TIMESTAMPING_SOFTWARE; 2002 return 0; 2003 } 2004 info->so_timestamping |= SOF_TIMESTAMPING_TX_SOFTWARE | 2005 SOF_TIMESTAMPING_RX_SOFTWARE | 2006 SOF_TIMESTAMPING_SOFTWARE | 2007 SOF_TIMESTAMPING_TX_HARDWARE | 2008 SOF_TIMESTAMPING_RX_HARDWARE | 2009 SOF_TIMESTAMPING_RAW_HARDWARE; 2010 info->tx_types = BIT(HWTSTAMP_TX_OFF) | BIT(HWTSTAMP_TX_ON) | 2011 BIT(HWTSTAMP_TX_ONESTEP_SYNC); 2012 info->rx_filters = BIT(HWTSTAMP_FILTER_NONE) | 2013 BIT(HWTSTAMP_FILTER_PTP_V2_EVENT) | 2014 BIT(HWTSTAMP_FILTER_PTP_V2_L2_EVENT) | 2015 BIT(HWTSTAMP_FILTER_PTP_V2_L4_EVENT); 2016 2017 return 0; 2018 } 2019 EXPORT_SYMBOL(ocelot_get_ts_info); 2020 2021 static u32 ocelot_get_bond_mask(struct ocelot *ocelot, struct net_device *bond) 2022 { 2023 u32 mask = 0; 2024 int port; 2025 2026 lockdep_assert_held(&ocelot->fwd_domain_lock); 2027 2028 for (port = 0; port < ocelot->num_phys_ports; port++) { 2029 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2030 2031 if (!ocelot_port) 2032 continue; 2033 2034 if (ocelot_port->bond == bond) 2035 mask |= BIT(port); 2036 } 2037 2038 return mask; 2039 } 2040 2041 /* The logical port number of a LAG is equal to the lowest numbered physical 2042 * port ID present in that LAG. It may change if that port ever leaves the LAG. 2043 */ 2044 static int ocelot_bond_get_id(struct ocelot *ocelot, struct net_device *bond) 2045 { 2046 int bond_mask = ocelot_get_bond_mask(ocelot, bond); 2047 2048 if (!bond_mask) 2049 return -ENOENT; 2050 2051 return __ffs(bond_mask); 2052 } 2053 2054 u32 ocelot_get_bridge_fwd_mask(struct ocelot *ocelot, int src_port) 2055 { 2056 struct ocelot_port *ocelot_port = ocelot->ports[src_port]; 2057 const struct net_device *bridge; 2058 u32 mask = 0; 2059 int port; 2060 2061 if (!ocelot_port || ocelot_port->stp_state != BR_STATE_FORWARDING) 2062 return 0; 2063 2064 bridge = ocelot_port->bridge; 2065 if (!bridge) 2066 return 0; 2067 2068 for (port = 0; port < ocelot->num_phys_ports; port++) { 2069 ocelot_port = ocelot->ports[port]; 2070 2071 if (!ocelot_port) 2072 continue; 2073 2074 if (ocelot_port->stp_state == BR_STATE_FORWARDING && 2075 ocelot_port->bridge == bridge) 2076 mask |= BIT(port); 2077 } 2078 2079 return mask; 2080 } 2081 EXPORT_SYMBOL_GPL(ocelot_get_bridge_fwd_mask); 2082 2083 u32 ocelot_get_dsa_8021q_cpu_mask(struct ocelot *ocelot) 2084 { 2085 u32 mask = 0; 2086 int port; 2087 2088 for (port = 0; port < ocelot->num_phys_ports; port++) { 2089 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2090 2091 if (!ocelot_port) 2092 continue; 2093 2094 if (ocelot_port->is_dsa_8021q_cpu) 2095 mask |= BIT(port); 2096 } 2097 2098 return mask; 2099 } 2100 EXPORT_SYMBOL_GPL(ocelot_get_dsa_8021q_cpu_mask); 2101 2102 void ocelot_apply_bridge_fwd_mask(struct ocelot *ocelot, bool joining) 2103 { 2104 unsigned long cpu_fwd_mask; 2105 int port; 2106 2107 lockdep_assert_held(&ocelot->fwd_domain_lock); 2108 2109 /* If cut-through forwarding is supported, update the masks before a 2110 * port joins the forwarding domain, to avoid potential underruns if it 2111 * has the highest speed from the new domain. 2112 */ 2113 if (joining && ocelot->ops->cut_through_fwd) 2114 ocelot->ops->cut_through_fwd(ocelot); 2115 2116 /* If a DSA tag_8021q CPU exists, it needs to be included in the 2117 * regular forwarding path of the front ports regardless of whether 2118 * those are bridged or standalone. 2119 * If DSA tag_8021q is not used, this returns 0, which is fine because 2120 * the hardware-based CPU port module can be a destination for packets 2121 * even if it isn't part of PGID_SRC. 2122 */ 2123 cpu_fwd_mask = ocelot_get_dsa_8021q_cpu_mask(ocelot); 2124 2125 /* Apply FWD mask. The loop is needed to add/remove the current port as 2126 * a source for the other ports. 2127 */ 2128 for (port = 0; port < ocelot->num_phys_ports; port++) { 2129 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2130 unsigned long mask; 2131 2132 if (!ocelot_port) { 2133 /* Unused ports can't send anywhere */ 2134 mask = 0; 2135 } else if (ocelot_port->is_dsa_8021q_cpu) { 2136 /* The DSA tag_8021q CPU ports need to be able to 2137 * forward packets to all other ports except for 2138 * themselves 2139 */ 2140 mask = GENMASK(ocelot->num_phys_ports - 1, 0); 2141 mask &= ~cpu_fwd_mask; 2142 } else if (ocelot_port->bridge) { 2143 struct net_device *bond = ocelot_port->bond; 2144 2145 mask = ocelot_get_bridge_fwd_mask(ocelot, port); 2146 mask |= cpu_fwd_mask; 2147 mask &= ~BIT(port); 2148 if (bond) 2149 mask &= ~ocelot_get_bond_mask(ocelot, bond); 2150 } else { 2151 /* Standalone ports forward only to DSA tag_8021q CPU 2152 * ports (if those exist), or to the hardware CPU port 2153 * module otherwise. 2154 */ 2155 mask = cpu_fwd_mask; 2156 } 2157 2158 ocelot_write_rix(ocelot, mask, ANA_PGID_PGID, PGID_SRC + port); 2159 } 2160 2161 /* If cut-through forwarding is supported and a port is leaving, there 2162 * is a chance that cut-through was disabled on the other ports due to 2163 * the port which is leaving (it has a higher link speed). We need to 2164 * update the cut-through masks of the remaining ports no earlier than 2165 * after the port has left, to prevent underruns from happening between 2166 * the cut-through update and the forwarding domain update. 2167 */ 2168 if (!joining && ocelot->ops->cut_through_fwd) 2169 ocelot->ops->cut_through_fwd(ocelot); 2170 } 2171 EXPORT_SYMBOL(ocelot_apply_bridge_fwd_mask); 2172 2173 void ocelot_port_set_dsa_8021q_cpu(struct ocelot *ocelot, int port) 2174 { 2175 u16 vid; 2176 2177 ocelot->ports[port]->is_dsa_8021q_cpu = true; 2178 2179 for (vid = OCELOT_RSV_VLAN_RANGE_START; vid < VLAN_N_VID; vid++) 2180 ocelot_vlan_member_add(ocelot, port, vid, true); 2181 } 2182 EXPORT_SYMBOL_GPL(ocelot_port_set_dsa_8021q_cpu); 2183 2184 void ocelot_port_unset_dsa_8021q_cpu(struct ocelot *ocelot, int port) 2185 { 2186 u16 vid; 2187 2188 ocelot->ports[port]->is_dsa_8021q_cpu = false; 2189 2190 for (vid = OCELOT_RSV_VLAN_RANGE_START; vid < VLAN_N_VID; vid++) 2191 ocelot_vlan_member_del(ocelot, port, vid); 2192 } 2193 EXPORT_SYMBOL_GPL(ocelot_port_unset_dsa_8021q_cpu); 2194 2195 void ocelot_bridge_stp_state_set(struct ocelot *ocelot, int port, u8 state) 2196 { 2197 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2198 u32 learn_ena = 0; 2199 2200 mutex_lock(&ocelot->fwd_domain_lock); 2201 2202 ocelot_port->stp_state = state; 2203 2204 if ((state == BR_STATE_LEARNING || state == BR_STATE_FORWARDING) && 2205 ocelot_port->learn_ena) 2206 learn_ena = ANA_PORT_PORT_CFG_LEARN_ENA; 2207 2208 ocelot_rmw_gix(ocelot, learn_ena, ANA_PORT_PORT_CFG_LEARN_ENA, 2209 ANA_PORT_PORT_CFG, port); 2210 2211 ocelot_apply_bridge_fwd_mask(ocelot, state == BR_STATE_FORWARDING); 2212 2213 mutex_unlock(&ocelot->fwd_domain_lock); 2214 } 2215 EXPORT_SYMBOL(ocelot_bridge_stp_state_set); 2216 2217 void ocelot_set_ageing_time(struct ocelot *ocelot, unsigned int msecs) 2218 { 2219 unsigned int age_period = ANA_AUTOAGE_AGE_PERIOD(msecs / 2000); 2220 2221 /* Setting AGE_PERIOD to zero effectively disables automatic aging, 2222 * which is clearly not what our intention is. So avoid that. 2223 */ 2224 if (!age_period) 2225 age_period = 1; 2226 2227 ocelot_rmw(ocelot, age_period, ANA_AUTOAGE_AGE_PERIOD_M, ANA_AUTOAGE); 2228 } 2229 EXPORT_SYMBOL(ocelot_set_ageing_time); 2230 2231 static struct ocelot_multicast *ocelot_multicast_get(struct ocelot *ocelot, 2232 const unsigned char *addr, 2233 u16 vid) 2234 { 2235 struct ocelot_multicast *mc; 2236 2237 list_for_each_entry(mc, &ocelot->multicast, list) { 2238 if (ether_addr_equal(mc->addr, addr) && mc->vid == vid) 2239 return mc; 2240 } 2241 2242 return NULL; 2243 } 2244 2245 static enum macaccess_entry_type ocelot_classify_mdb(const unsigned char *addr) 2246 { 2247 if (addr[0] == 0x01 && addr[1] == 0x00 && addr[2] == 0x5e) 2248 return ENTRYTYPE_MACv4; 2249 if (addr[0] == 0x33 && addr[1] == 0x33) 2250 return ENTRYTYPE_MACv6; 2251 return ENTRYTYPE_LOCKED; 2252 } 2253 2254 static struct ocelot_pgid *ocelot_pgid_alloc(struct ocelot *ocelot, int index, 2255 unsigned long ports) 2256 { 2257 struct ocelot_pgid *pgid; 2258 2259 pgid = kzalloc(sizeof(*pgid), GFP_KERNEL); 2260 if (!pgid) 2261 return ERR_PTR(-ENOMEM); 2262 2263 pgid->ports = ports; 2264 pgid->index = index; 2265 refcount_set(&pgid->refcount, 1); 2266 list_add_tail(&pgid->list, &ocelot->pgids); 2267 2268 return pgid; 2269 } 2270 2271 static void ocelot_pgid_free(struct ocelot *ocelot, struct ocelot_pgid *pgid) 2272 { 2273 if (!refcount_dec_and_test(&pgid->refcount)) 2274 return; 2275 2276 list_del(&pgid->list); 2277 kfree(pgid); 2278 } 2279 2280 static struct ocelot_pgid *ocelot_mdb_get_pgid(struct ocelot *ocelot, 2281 const struct ocelot_multicast *mc) 2282 { 2283 struct ocelot_pgid *pgid; 2284 int index; 2285 2286 /* According to VSC7514 datasheet 3.9.1.5 IPv4 Multicast Entries and 2287 * 3.9.1.6 IPv6 Multicast Entries, "Instead of a lookup in the 2288 * destination mask table (PGID), the destination set is programmed as 2289 * part of the entry MAC address.", and the DEST_IDX is set to 0. 2290 */ 2291 if (mc->entry_type == ENTRYTYPE_MACv4 || 2292 mc->entry_type == ENTRYTYPE_MACv6) 2293 return ocelot_pgid_alloc(ocelot, 0, mc->ports); 2294 2295 list_for_each_entry(pgid, &ocelot->pgids, list) { 2296 /* When searching for a nonreserved multicast PGID, ignore the 2297 * dummy PGID of zero that we have for MACv4/MACv6 entries 2298 */ 2299 if (pgid->index && pgid->ports == mc->ports) { 2300 refcount_inc(&pgid->refcount); 2301 return pgid; 2302 } 2303 } 2304 2305 /* Search for a free index in the nonreserved multicast PGID area */ 2306 for_each_nonreserved_multicast_dest_pgid(ocelot, index) { 2307 bool used = false; 2308 2309 list_for_each_entry(pgid, &ocelot->pgids, list) { 2310 if (pgid->index == index) { 2311 used = true; 2312 break; 2313 } 2314 } 2315 2316 if (!used) 2317 return ocelot_pgid_alloc(ocelot, index, mc->ports); 2318 } 2319 2320 return ERR_PTR(-ENOSPC); 2321 } 2322 2323 static void ocelot_encode_ports_to_mdb(unsigned char *addr, 2324 struct ocelot_multicast *mc) 2325 { 2326 ether_addr_copy(addr, mc->addr); 2327 2328 if (mc->entry_type == ENTRYTYPE_MACv4) { 2329 addr[0] = 0; 2330 addr[1] = mc->ports >> 8; 2331 addr[2] = mc->ports & 0xff; 2332 } else if (mc->entry_type == ENTRYTYPE_MACv6) { 2333 addr[0] = mc->ports >> 8; 2334 addr[1] = mc->ports & 0xff; 2335 } 2336 } 2337 2338 int ocelot_port_mdb_add(struct ocelot *ocelot, int port, 2339 const struct switchdev_obj_port_mdb *mdb, 2340 const struct net_device *bridge) 2341 { 2342 unsigned char addr[ETH_ALEN]; 2343 struct ocelot_multicast *mc; 2344 struct ocelot_pgid *pgid; 2345 u16 vid = mdb->vid; 2346 2347 if (port == ocelot->npi) 2348 port = ocelot->num_phys_ports; 2349 2350 if (!vid) 2351 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 2352 2353 mc = ocelot_multicast_get(ocelot, mdb->addr, vid); 2354 if (!mc) { 2355 /* New entry */ 2356 mc = devm_kzalloc(ocelot->dev, sizeof(*mc), GFP_KERNEL); 2357 if (!mc) 2358 return -ENOMEM; 2359 2360 mc->entry_type = ocelot_classify_mdb(mdb->addr); 2361 ether_addr_copy(mc->addr, mdb->addr); 2362 mc->vid = vid; 2363 2364 list_add_tail(&mc->list, &ocelot->multicast); 2365 } else { 2366 /* Existing entry. Clean up the current port mask from 2367 * hardware now, because we'll be modifying it. 2368 */ 2369 ocelot_pgid_free(ocelot, mc->pgid); 2370 ocelot_encode_ports_to_mdb(addr, mc); 2371 ocelot_mact_forget(ocelot, addr, vid); 2372 } 2373 2374 mc->ports |= BIT(port); 2375 2376 pgid = ocelot_mdb_get_pgid(ocelot, mc); 2377 if (IS_ERR(pgid)) { 2378 dev_err(ocelot->dev, 2379 "Cannot allocate PGID for mdb %pM vid %d\n", 2380 mc->addr, mc->vid); 2381 devm_kfree(ocelot->dev, mc); 2382 return PTR_ERR(pgid); 2383 } 2384 mc->pgid = pgid; 2385 2386 ocelot_encode_ports_to_mdb(addr, mc); 2387 2388 if (mc->entry_type != ENTRYTYPE_MACv4 && 2389 mc->entry_type != ENTRYTYPE_MACv6) 2390 ocelot_write_rix(ocelot, pgid->ports, ANA_PGID_PGID, 2391 pgid->index); 2392 2393 return ocelot_mact_learn(ocelot, pgid->index, addr, vid, 2394 mc->entry_type); 2395 } 2396 EXPORT_SYMBOL(ocelot_port_mdb_add); 2397 2398 int ocelot_port_mdb_del(struct ocelot *ocelot, int port, 2399 const struct switchdev_obj_port_mdb *mdb, 2400 const struct net_device *bridge) 2401 { 2402 unsigned char addr[ETH_ALEN]; 2403 struct ocelot_multicast *mc; 2404 struct ocelot_pgid *pgid; 2405 u16 vid = mdb->vid; 2406 2407 if (port == ocelot->npi) 2408 port = ocelot->num_phys_ports; 2409 2410 if (!vid) 2411 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 2412 2413 mc = ocelot_multicast_get(ocelot, mdb->addr, vid); 2414 if (!mc) 2415 return -ENOENT; 2416 2417 ocelot_encode_ports_to_mdb(addr, mc); 2418 ocelot_mact_forget(ocelot, addr, vid); 2419 2420 ocelot_pgid_free(ocelot, mc->pgid); 2421 mc->ports &= ~BIT(port); 2422 if (!mc->ports) { 2423 list_del(&mc->list); 2424 devm_kfree(ocelot->dev, mc); 2425 return 0; 2426 } 2427 2428 /* We have a PGID with fewer ports now */ 2429 pgid = ocelot_mdb_get_pgid(ocelot, mc); 2430 if (IS_ERR(pgid)) 2431 return PTR_ERR(pgid); 2432 mc->pgid = pgid; 2433 2434 ocelot_encode_ports_to_mdb(addr, mc); 2435 2436 if (mc->entry_type != ENTRYTYPE_MACv4 && 2437 mc->entry_type != ENTRYTYPE_MACv6) 2438 ocelot_write_rix(ocelot, pgid->ports, ANA_PGID_PGID, 2439 pgid->index); 2440 2441 return ocelot_mact_learn(ocelot, pgid->index, addr, vid, 2442 mc->entry_type); 2443 } 2444 EXPORT_SYMBOL(ocelot_port_mdb_del); 2445 2446 int ocelot_port_bridge_join(struct ocelot *ocelot, int port, 2447 struct net_device *bridge, int bridge_num, 2448 struct netlink_ext_ack *extack) 2449 { 2450 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2451 int err; 2452 2453 err = ocelot_single_vlan_aware_bridge(ocelot, extack); 2454 if (err) 2455 return err; 2456 2457 mutex_lock(&ocelot->fwd_domain_lock); 2458 2459 ocelot_port->bridge = bridge; 2460 ocelot_port->bridge_num = bridge_num; 2461 2462 ocelot_apply_bridge_fwd_mask(ocelot, true); 2463 2464 mutex_unlock(&ocelot->fwd_domain_lock); 2465 2466 if (br_vlan_enabled(bridge)) 2467 return 0; 2468 2469 return ocelot_add_vlan_unaware_pvid(ocelot, port, bridge); 2470 } 2471 EXPORT_SYMBOL(ocelot_port_bridge_join); 2472 2473 void ocelot_port_bridge_leave(struct ocelot *ocelot, int port, 2474 struct net_device *bridge) 2475 { 2476 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2477 2478 mutex_lock(&ocelot->fwd_domain_lock); 2479 2480 if (!br_vlan_enabled(bridge)) 2481 ocelot_del_vlan_unaware_pvid(ocelot, port, bridge); 2482 2483 ocelot_port->bridge = NULL; 2484 ocelot_port->bridge_num = -1; 2485 2486 ocelot_port_set_pvid(ocelot, port, NULL); 2487 ocelot_port_manage_port_tag(ocelot, port); 2488 ocelot_apply_bridge_fwd_mask(ocelot, false); 2489 2490 mutex_unlock(&ocelot->fwd_domain_lock); 2491 } 2492 EXPORT_SYMBOL(ocelot_port_bridge_leave); 2493 2494 static void ocelot_set_aggr_pgids(struct ocelot *ocelot) 2495 { 2496 unsigned long visited = GENMASK(ocelot->num_phys_ports - 1, 0); 2497 int i, port, lag; 2498 2499 /* Reset destination and aggregation PGIDS */ 2500 for_each_unicast_dest_pgid(ocelot, port) 2501 ocelot_write_rix(ocelot, BIT(port), ANA_PGID_PGID, port); 2502 2503 for_each_aggr_pgid(ocelot, i) 2504 ocelot_write_rix(ocelot, GENMASK(ocelot->num_phys_ports - 1, 0), 2505 ANA_PGID_PGID, i); 2506 2507 /* The visited ports bitmask holds the list of ports offloading any 2508 * bonding interface. Initially we mark all these ports as unvisited, 2509 * then every time we visit a port in this bitmask, we know that it is 2510 * the lowest numbered port, i.e. the one whose logical ID == physical 2511 * port ID == LAG ID. So we mark as visited all further ports in the 2512 * bitmask that are offloading the same bonding interface. This way, 2513 * we set up the aggregation PGIDs only once per bonding interface. 2514 */ 2515 for (port = 0; port < ocelot->num_phys_ports; port++) { 2516 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2517 2518 if (!ocelot_port || !ocelot_port->bond) 2519 continue; 2520 2521 visited &= ~BIT(port); 2522 } 2523 2524 /* Now, set PGIDs for each active LAG */ 2525 for (lag = 0; lag < ocelot->num_phys_ports; lag++) { 2526 struct net_device *bond = ocelot->ports[lag]->bond; 2527 int num_active_ports = 0; 2528 unsigned long bond_mask; 2529 u8 aggr_idx[16]; 2530 2531 if (!bond || (visited & BIT(lag))) 2532 continue; 2533 2534 bond_mask = ocelot_get_bond_mask(ocelot, bond); 2535 2536 for_each_set_bit(port, &bond_mask, ocelot->num_phys_ports) { 2537 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2538 2539 // Destination mask 2540 ocelot_write_rix(ocelot, bond_mask, 2541 ANA_PGID_PGID, port); 2542 2543 if (ocelot_port->lag_tx_active) 2544 aggr_idx[num_active_ports++] = port; 2545 } 2546 2547 for_each_aggr_pgid(ocelot, i) { 2548 u32 ac; 2549 2550 ac = ocelot_read_rix(ocelot, ANA_PGID_PGID, i); 2551 ac &= ~bond_mask; 2552 /* Don't do division by zero if there was no active 2553 * port. Just make all aggregation codes zero. 2554 */ 2555 if (num_active_ports) 2556 ac |= BIT(aggr_idx[i % num_active_ports]); 2557 ocelot_write_rix(ocelot, ac, ANA_PGID_PGID, i); 2558 } 2559 2560 /* Mark all ports in the same LAG as visited to avoid applying 2561 * the same config again. 2562 */ 2563 for (port = lag; port < ocelot->num_phys_ports; port++) { 2564 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2565 2566 if (!ocelot_port) 2567 continue; 2568 2569 if (ocelot_port->bond == bond) 2570 visited |= BIT(port); 2571 } 2572 } 2573 } 2574 2575 /* When offloading a bonding interface, the switch ports configured under the 2576 * same bond must have the same logical port ID, equal to the physical port ID 2577 * of the lowest numbered physical port in that bond. Otherwise, in standalone/ 2578 * bridged mode, each port has a logical port ID equal to its physical port ID. 2579 */ 2580 static void ocelot_setup_logical_port_ids(struct ocelot *ocelot) 2581 { 2582 int port; 2583 2584 for (port = 0; port < ocelot->num_phys_ports; port++) { 2585 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2586 struct net_device *bond; 2587 2588 if (!ocelot_port) 2589 continue; 2590 2591 bond = ocelot_port->bond; 2592 if (bond) { 2593 int lag = ocelot_bond_get_id(ocelot, bond); 2594 2595 ocelot_rmw_gix(ocelot, 2596 ANA_PORT_PORT_CFG_PORTID_VAL(lag), 2597 ANA_PORT_PORT_CFG_PORTID_VAL_M, 2598 ANA_PORT_PORT_CFG, port); 2599 } else { 2600 ocelot_rmw_gix(ocelot, 2601 ANA_PORT_PORT_CFG_PORTID_VAL(port), 2602 ANA_PORT_PORT_CFG_PORTID_VAL_M, 2603 ANA_PORT_PORT_CFG, port); 2604 } 2605 } 2606 } 2607 2608 /* Documentation for PORTID_VAL says: 2609 * Logical port number for front port. If port is not a member of a LLAG, 2610 * then PORTID must be set to the physical port number. 2611 * If port is a member of a LLAG, then PORTID must be set to the common 2612 * PORTID_VAL used for all member ports of the LLAG. 2613 * The value must not exceed the number of physical ports on the device. 2614 * 2615 * This means we have little choice but to migrate FDB entries pointing towards 2616 * a logical port when that changes. 2617 */ 2618 static void ocelot_migrate_lag_fdbs(struct ocelot *ocelot, 2619 struct net_device *bond, 2620 int lag) 2621 { 2622 struct ocelot_lag_fdb *fdb; 2623 int err; 2624 2625 lockdep_assert_held(&ocelot->fwd_domain_lock); 2626 2627 list_for_each_entry(fdb, &ocelot->lag_fdbs, list) { 2628 if (fdb->bond != bond) 2629 continue; 2630 2631 err = ocelot_mact_forget(ocelot, fdb->addr, fdb->vid); 2632 if (err) { 2633 dev_err(ocelot->dev, 2634 "failed to delete LAG %s FDB %pM vid %d: %pe\n", 2635 bond->name, fdb->addr, fdb->vid, ERR_PTR(err)); 2636 } 2637 2638 err = ocelot_mact_learn(ocelot, lag, fdb->addr, fdb->vid, 2639 ENTRYTYPE_LOCKED); 2640 if (err) { 2641 dev_err(ocelot->dev, 2642 "failed to migrate LAG %s FDB %pM vid %d: %pe\n", 2643 bond->name, fdb->addr, fdb->vid, ERR_PTR(err)); 2644 } 2645 } 2646 } 2647 2648 int ocelot_port_lag_join(struct ocelot *ocelot, int port, 2649 struct net_device *bond, 2650 struct netdev_lag_upper_info *info) 2651 { 2652 if (info->tx_type != NETDEV_LAG_TX_TYPE_HASH) 2653 return -EOPNOTSUPP; 2654 2655 mutex_lock(&ocelot->fwd_domain_lock); 2656 2657 ocelot->ports[port]->bond = bond; 2658 2659 ocelot_setup_logical_port_ids(ocelot); 2660 ocelot_apply_bridge_fwd_mask(ocelot, true); 2661 ocelot_set_aggr_pgids(ocelot); 2662 2663 mutex_unlock(&ocelot->fwd_domain_lock); 2664 2665 return 0; 2666 } 2667 EXPORT_SYMBOL(ocelot_port_lag_join); 2668 2669 void ocelot_port_lag_leave(struct ocelot *ocelot, int port, 2670 struct net_device *bond) 2671 { 2672 int old_lag_id, new_lag_id; 2673 2674 mutex_lock(&ocelot->fwd_domain_lock); 2675 2676 old_lag_id = ocelot_bond_get_id(ocelot, bond); 2677 2678 ocelot->ports[port]->bond = NULL; 2679 2680 ocelot_setup_logical_port_ids(ocelot); 2681 ocelot_apply_bridge_fwd_mask(ocelot, false); 2682 ocelot_set_aggr_pgids(ocelot); 2683 2684 new_lag_id = ocelot_bond_get_id(ocelot, bond); 2685 2686 if (new_lag_id >= 0 && old_lag_id != new_lag_id) 2687 ocelot_migrate_lag_fdbs(ocelot, bond, new_lag_id); 2688 2689 mutex_unlock(&ocelot->fwd_domain_lock); 2690 } 2691 EXPORT_SYMBOL(ocelot_port_lag_leave); 2692 2693 void ocelot_port_lag_change(struct ocelot *ocelot, int port, bool lag_tx_active) 2694 { 2695 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2696 2697 mutex_lock(&ocelot->fwd_domain_lock); 2698 2699 ocelot_port->lag_tx_active = lag_tx_active; 2700 2701 /* Rebalance the LAGs */ 2702 ocelot_set_aggr_pgids(ocelot); 2703 2704 mutex_unlock(&ocelot->fwd_domain_lock); 2705 } 2706 EXPORT_SYMBOL(ocelot_port_lag_change); 2707 2708 int ocelot_lag_fdb_add(struct ocelot *ocelot, struct net_device *bond, 2709 const unsigned char *addr, u16 vid, 2710 const struct net_device *bridge) 2711 { 2712 struct ocelot_lag_fdb *fdb; 2713 int lag, err; 2714 2715 fdb = kzalloc(sizeof(*fdb), GFP_KERNEL); 2716 if (!fdb) 2717 return -ENOMEM; 2718 2719 mutex_lock(&ocelot->fwd_domain_lock); 2720 2721 if (!vid) 2722 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 2723 2724 ether_addr_copy(fdb->addr, addr); 2725 fdb->vid = vid; 2726 fdb->bond = bond; 2727 2728 lag = ocelot_bond_get_id(ocelot, bond); 2729 2730 err = ocelot_mact_learn(ocelot, lag, addr, vid, ENTRYTYPE_LOCKED); 2731 if (err) { 2732 mutex_unlock(&ocelot->fwd_domain_lock); 2733 kfree(fdb); 2734 return err; 2735 } 2736 2737 list_add_tail(&fdb->list, &ocelot->lag_fdbs); 2738 mutex_unlock(&ocelot->fwd_domain_lock); 2739 2740 return 0; 2741 } 2742 EXPORT_SYMBOL_GPL(ocelot_lag_fdb_add); 2743 2744 int ocelot_lag_fdb_del(struct ocelot *ocelot, struct net_device *bond, 2745 const unsigned char *addr, u16 vid, 2746 const struct net_device *bridge) 2747 { 2748 struct ocelot_lag_fdb *fdb, *tmp; 2749 2750 mutex_lock(&ocelot->fwd_domain_lock); 2751 2752 if (!vid) 2753 vid = ocelot_vlan_unaware_pvid(ocelot, bridge); 2754 2755 list_for_each_entry_safe(fdb, tmp, &ocelot->lag_fdbs, list) { 2756 if (!ether_addr_equal(fdb->addr, addr) || fdb->vid != vid || 2757 fdb->bond != bond) 2758 continue; 2759 2760 ocelot_mact_forget(ocelot, addr, vid); 2761 list_del(&fdb->list); 2762 mutex_unlock(&ocelot->fwd_domain_lock); 2763 kfree(fdb); 2764 2765 return 0; 2766 } 2767 2768 mutex_unlock(&ocelot->fwd_domain_lock); 2769 2770 return -ENOENT; 2771 } 2772 EXPORT_SYMBOL_GPL(ocelot_lag_fdb_del); 2773 2774 /* Configure the maximum SDU (L2 payload) on RX to the value specified in @sdu. 2775 * The length of VLAN tags is accounted for automatically via DEV_MAC_TAGS_CFG. 2776 * In the special case that it's the NPI port that we're configuring, the 2777 * length of the tag and optional prefix needs to be accounted for privately, 2778 * in order to be able to sustain communication at the requested @sdu. 2779 */ 2780 void ocelot_port_set_maxlen(struct ocelot *ocelot, int port, size_t sdu) 2781 { 2782 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2783 int maxlen = sdu + ETH_HLEN + ETH_FCS_LEN; 2784 int pause_start, pause_stop; 2785 int atop, atop_tot; 2786 2787 if (port == ocelot->npi) { 2788 maxlen += OCELOT_TAG_LEN; 2789 2790 if (ocelot->npi_inj_prefix == OCELOT_TAG_PREFIX_SHORT) 2791 maxlen += OCELOT_SHORT_PREFIX_LEN; 2792 else if (ocelot->npi_inj_prefix == OCELOT_TAG_PREFIX_LONG) 2793 maxlen += OCELOT_LONG_PREFIX_LEN; 2794 } 2795 2796 ocelot_port_writel(ocelot_port, maxlen, DEV_MAC_MAXLEN_CFG); 2797 2798 /* Set Pause watermark hysteresis */ 2799 pause_start = 6 * maxlen / OCELOT_BUFFER_CELL_SZ; 2800 pause_stop = 4 * maxlen / OCELOT_BUFFER_CELL_SZ; 2801 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_START, 2802 pause_start); 2803 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_STOP, 2804 pause_stop); 2805 2806 /* Tail dropping watermarks */ 2807 atop_tot = (ocelot->packet_buffer_size - 9 * maxlen) / 2808 OCELOT_BUFFER_CELL_SZ; 2809 atop = (9 * maxlen) / OCELOT_BUFFER_CELL_SZ; 2810 ocelot_write_rix(ocelot, ocelot->ops->wm_enc(atop), SYS_ATOP, port); 2811 ocelot_write(ocelot, ocelot->ops->wm_enc(atop_tot), SYS_ATOP_TOT_CFG); 2812 } 2813 EXPORT_SYMBOL(ocelot_port_set_maxlen); 2814 2815 int ocelot_get_max_mtu(struct ocelot *ocelot, int port) 2816 { 2817 int max_mtu = 65535 - ETH_HLEN - ETH_FCS_LEN; 2818 2819 if (port == ocelot->npi) { 2820 max_mtu -= OCELOT_TAG_LEN; 2821 2822 if (ocelot->npi_inj_prefix == OCELOT_TAG_PREFIX_SHORT) 2823 max_mtu -= OCELOT_SHORT_PREFIX_LEN; 2824 else if (ocelot->npi_inj_prefix == OCELOT_TAG_PREFIX_LONG) 2825 max_mtu -= OCELOT_LONG_PREFIX_LEN; 2826 } 2827 2828 return max_mtu; 2829 } 2830 EXPORT_SYMBOL(ocelot_get_max_mtu); 2831 2832 static void ocelot_port_set_learning(struct ocelot *ocelot, int port, 2833 bool enabled) 2834 { 2835 struct ocelot_port *ocelot_port = ocelot->ports[port]; 2836 u32 val = 0; 2837 2838 if (enabled) 2839 val = ANA_PORT_PORT_CFG_LEARN_ENA; 2840 2841 ocelot_rmw_gix(ocelot, val, ANA_PORT_PORT_CFG_LEARN_ENA, 2842 ANA_PORT_PORT_CFG, port); 2843 2844 ocelot_port->learn_ena = enabled; 2845 } 2846 2847 static void ocelot_port_set_ucast_flood(struct ocelot *ocelot, int port, 2848 bool enabled) 2849 { 2850 u32 val = 0; 2851 2852 if (enabled) 2853 val = BIT(port); 2854 2855 ocelot_rmw_rix(ocelot, val, BIT(port), ANA_PGID_PGID, PGID_UC); 2856 } 2857 2858 static void ocelot_port_set_mcast_flood(struct ocelot *ocelot, int port, 2859 bool enabled) 2860 { 2861 u32 val = 0; 2862 2863 if (enabled) 2864 val = BIT(port); 2865 2866 ocelot_rmw_rix(ocelot, val, BIT(port), ANA_PGID_PGID, PGID_MC); 2867 ocelot_rmw_rix(ocelot, val, BIT(port), ANA_PGID_PGID, PGID_MCIPV4); 2868 ocelot_rmw_rix(ocelot, val, BIT(port), ANA_PGID_PGID, PGID_MCIPV6); 2869 } 2870 2871 static void ocelot_port_set_bcast_flood(struct ocelot *ocelot, int port, 2872 bool enabled) 2873 { 2874 u32 val = 0; 2875 2876 if (enabled) 2877 val = BIT(port); 2878 2879 ocelot_rmw_rix(ocelot, val, BIT(port), ANA_PGID_PGID, PGID_BC); 2880 } 2881 2882 int ocelot_port_pre_bridge_flags(struct ocelot *ocelot, int port, 2883 struct switchdev_brport_flags flags) 2884 { 2885 if (flags.mask & ~(BR_LEARNING | BR_FLOOD | BR_MCAST_FLOOD | 2886 BR_BCAST_FLOOD)) 2887 return -EINVAL; 2888 2889 return 0; 2890 } 2891 EXPORT_SYMBOL(ocelot_port_pre_bridge_flags); 2892 2893 void ocelot_port_bridge_flags(struct ocelot *ocelot, int port, 2894 struct switchdev_brport_flags flags) 2895 { 2896 if (port == ocelot->npi) 2897 port = ocelot->num_phys_ports; 2898 2899 if (flags.mask & BR_LEARNING) 2900 ocelot_port_set_learning(ocelot, port, 2901 !!(flags.val & BR_LEARNING)); 2902 2903 if (flags.mask & BR_FLOOD) 2904 ocelot_port_set_ucast_flood(ocelot, port, 2905 !!(flags.val & BR_FLOOD)); 2906 2907 if (flags.mask & BR_MCAST_FLOOD) 2908 ocelot_port_set_mcast_flood(ocelot, port, 2909 !!(flags.val & BR_MCAST_FLOOD)); 2910 2911 if (flags.mask & BR_BCAST_FLOOD) 2912 ocelot_port_set_bcast_flood(ocelot, port, 2913 !!(flags.val & BR_BCAST_FLOOD)); 2914 } 2915 EXPORT_SYMBOL(ocelot_port_bridge_flags); 2916 2917 int ocelot_port_get_default_prio(struct ocelot *ocelot, int port) 2918 { 2919 int val = ocelot_read_gix(ocelot, ANA_PORT_QOS_CFG, port); 2920 2921 return ANA_PORT_QOS_CFG_QOS_DEFAULT_VAL_X(val); 2922 } 2923 EXPORT_SYMBOL_GPL(ocelot_port_get_default_prio); 2924 2925 int ocelot_port_set_default_prio(struct ocelot *ocelot, int port, u8 prio) 2926 { 2927 if (prio >= OCELOT_NUM_TC) 2928 return -ERANGE; 2929 2930 ocelot_rmw_gix(ocelot, 2931 ANA_PORT_QOS_CFG_QOS_DEFAULT_VAL(prio), 2932 ANA_PORT_QOS_CFG_QOS_DEFAULT_VAL_M, 2933 ANA_PORT_QOS_CFG, 2934 port); 2935 2936 return 0; 2937 } 2938 EXPORT_SYMBOL_GPL(ocelot_port_set_default_prio); 2939 2940 int ocelot_port_get_dscp_prio(struct ocelot *ocelot, int port, u8 dscp) 2941 { 2942 int qos_cfg = ocelot_read_gix(ocelot, ANA_PORT_QOS_CFG, port); 2943 int dscp_cfg = ocelot_read_rix(ocelot, ANA_DSCP_CFG, dscp); 2944 2945 /* Return error if DSCP prioritization isn't enabled */ 2946 if (!(qos_cfg & ANA_PORT_QOS_CFG_QOS_DSCP_ENA)) 2947 return -EOPNOTSUPP; 2948 2949 if (qos_cfg & ANA_PORT_QOS_CFG_DSCP_TRANSLATE_ENA) { 2950 dscp = ANA_DSCP_CFG_DSCP_TRANSLATE_VAL_X(dscp_cfg); 2951 /* Re-read ANA_DSCP_CFG for the translated DSCP */ 2952 dscp_cfg = ocelot_read_rix(ocelot, ANA_DSCP_CFG, dscp); 2953 } 2954 2955 /* If the DSCP value is not trusted, the QoS classification falls back 2956 * to VLAN PCP or port-based default. 2957 */ 2958 if (!(dscp_cfg & ANA_DSCP_CFG_DSCP_TRUST_ENA)) 2959 return -EOPNOTSUPP; 2960 2961 return ANA_DSCP_CFG_QOS_DSCP_VAL_X(dscp_cfg); 2962 } 2963 EXPORT_SYMBOL_GPL(ocelot_port_get_dscp_prio); 2964 2965 int ocelot_port_add_dscp_prio(struct ocelot *ocelot, int port, u8 dscp, u8 prio) 2966 { 2967 int mask, val; 2968 2969 if (prio >= OCELOT_NUM_TC) 2970 return -ERANGE; 2971 2972 /* There is at least one app table priority (this one), so we need to 2973 * make sure DSCP prioritization is enabled on the port. 2974 * Also make sure DSCP translation is disabled 2975 * (dcbnl doesn't support it). 2976 */ 2977 mask = ANA_PORT_QOS_CFG_QOS_DSCP_ENA | 2978 ANA_PORT_QOS_CFG_DSCP_TRANSLATE_ENA; 2979 2980 ocelot_rmw_gix(ocelot, ANA_PORT_QOS_CFG_QOS_DSCP_ENA, mask, 2981 ANA_PORT_QOS_CFG, port); 2982 2983 /* Trust this DSCP value and map it to the given QoS class */ 2984 val = ANA_DSCP_CFG_DSCP_TRUST_ENA | ANA_DSCP_CFG_QOS_DSCP_VAL(prio); 2985 2986 ocelot_write_rix(ocelot, val, ANA_DSCP_CFG, dscp); 2987 2988 return 0; 2989 } 2990 EXPORT_SYMBOL_GPL(ocelot_port_add_dscp_prio); 2991 2992 int ocelot_port_del_dscp_prio(struct ocelot *ocelot, int port, u8 dscp, u8 prio) 2993 { 2994 int dscp_cfg = ocelot_read_rix(ocelot, ANA_DSCP_CFG, dscp); 2995 int mask, i; 2996 2997 /* During a "dcb app replace" command, the new app table entry will be 2998 * added first, then the old one will be deleted. But the hardware only 2999 * supports one QoS class per DSCP value (duh), so if we blindly delete 3000 * the app table entry for this DSCP value, we end up deleting the 3001 * entry with the new priority. Avoid that by checking whether user 3002 * space wants to delete the priority which is currently configured, or 3003 * something else which is no longer current. 3004 */ 3005 if (ANA_DSCP_CFG_QOS_DSCP_VAL_X(dscp_cfg) != prio) 3006 return 0; 3007 3008 /* Untrust this DSCP value */ 3009 ocelot_write_rix(ocelot, 0, ANA_DSCP_CFG, dscp); 3010 3011 for (i = 0; i < 64; i++) { 3012 int dscp_cfg = ocelot_read_rix(ocelot, ANA_DSCP_CFG, i); 3013 3014 /* There are still app table entries on the port, so we need to 3015 * keep DSCP enabled, nothing to do. 3016 */ 3017 if (dscp_cfg & ANA_DSCP_CFG_DSCP_TRUST_ENA) 3018 return 0; 3019 } 3020 3021 /* Disable DSCP QoS classification if there isn't any trusted 3022 * DSCP value left. 3023 */ 3024 mask = ANA_PORT_QOS_CFG_QOS_DSCP_ENA | 3025 ANA_PORT_QOS_CFG_DSCP_TRANSLATE_ENA; 3026 3027 ocelot_rmw_gix(ocelot, 0, mask, ANA_PORT_QOS_CFG, port); 3028 3029 return 0; 3030 } 3031 EXPORT_SYMBOL_GPL(ocelot_port_del_dscp_prio); 3032 3033 struct ocelot_mirror *ocelot_mirror_get(struct ocelot *ocelot, int to, 3034 struct netlink_ext_ack *extack) 3035 { 3036 struct ocelot_mirror *m = ocelot->mirror; 3037 3038 if (m) { 3039 if (m->to != to) { 3040 NL_SET_ERR_MSG_MOD(extack, 3041 "Mirroring already configured towards different egress port"); 3042 return ERR_PTR(-EBUSY); 3043 } 3044 3045 refcount_inc(&m->refcount); 3046 return m; 3047 } 3048 3049 m = kzalloc(sizeof(*m), GFP_KERNEL); 3050 if (!m) 3051 return ERR_PTR(-ENOMEM); 3052 3053 m->to = to; 3054 refcount_set(&m->refcount, 1); 3055 ocelot->mirror = m; 3056 3057 /* Program the mirror port to hardware */ 3058 ocelot_write(ocelot, BIT(to), ANA_MIRRORPORTS); 3059 3060 return m; 3061 } 3062 3063 void ocelot_mirror_put(struct ocelot *ocelot) 3064 { 3065 struct ocelot_mirror *m = ocelot->mirror; 3066 3067 if (!refcount_dec_and_test(&m->refcount)) 3068 return; 3069 3070 ocelot_write(ocelot, 0, ANA_MIRRORPORTS); 3071 ocelot->mirror = NULL; 3072 kfree(m); 3073 } 3074 3075 int ocelot_port_mirror_add(struct ocelot *ocelot, int from, int to, 3076 bool ingress, struct netlink_ext_ack *extack) 3077 { 3078 struct ocelot_mirror *m = ocelot_mirror_get(ocelot, to, extack); 3079 3080 if (IS_ERR(m)) 3081 return PTR_ERR(m); 3082 3083 if (ingress) { 3084 ocelot_rmw_gix(ocelot, ANA_PORT_PORT_CFG_SRC_MIRROR_ENA, 3085 ANA_PORT_PORT_CFG_SRC_MIRROR_ENA, 3086 ANA_PORT_PORT_CFG, from); 3087 } else { 3088 ocelot_rmw(ocelot, BIT(from), BIT(from), 3089 ANA_EMIRRORPORTS); 3090 } 3091 3092 return 0; 3093 } 3094 EXPORT_SYMBOL_GPL(ocelot_port_mirror_add); 3095 3096 void ocelot_port_mirror_del(struct ocelot *ocelot, int from, bool ingress) 3097 { 3098 if (ingress) { 3099 ocelot_rmw_gix(ocelot, 0, ANA_PORT_PORT_CFG_SRC_MIRROR_ENA, 3100 ANA_PORT_PORT_CFG, from); 3101 } else { 3102 ocelot_rmw(ocelot, 0, BIT(from), ANA_EMIRRORPORTS); 3103 } 3104 3105 ocelot_mirror_put(ocelot); 3106 } 3107 EXPORT_SYMBOL_GPL(ocelot_port_mirror_del); 3108 3109 void ocelot_init_port(struct ocelot *ocelot, int port) 3110 { 3111 struct ocelot_port *ocelot_port = ocelot->ports[port]; 3112 3113 skb_queue_head_init(&ocelot_port->tx_skbs); 3114 3115 /* Basic L2 initialization */ 3116 3117 /* Set MAC IFG Gaps 3118 * FDX: TX_IFG = 5, RX_IFG1 = RX_IFG2 = 0 3119 * !FDX: TX_IFG = 5, RX_IFG1 = RX_IFG2 = 5 3120 */ 3121 ocelot_port_writel(ocelot_port, DEV_MAC_IFG_CFG_TX_IFG(5), 3122 DEV_MAC_IFG_CFG); 3123 3124 /* Load seed (0) and set MAC HDX late collision */ 3125 ocelot_port_writel(ocelot_port, DEV_MAC_HDX_CFG_LATE_COL_POS(67) | 3126 DEV_MAC_HDX_CFG_SEED_LOAD, 3127 DEV_MAC_HDX_CFG); 3128 mdelay(1); 3129 ocelot_port_writel(ocelot_port, DEV_MAC_HDX_CFG_LATE_COL_POS(67), 3130 DEV_MAC_HDX_CFG); 3131 3132 /* Set Max Length and maximum tags allowed */ 3133 ocelot_port_set_maxlen(ocelot, port, ETH_DATA_LEN); 3134 ocelot_port_writel(ocelot_port, DEV_MAC_TAGS_CFG_TAG_ID(ETH_P_8021AD) | 3135 DEV_MAC_TAGS_CFG_VLAN_AWR_ENA | 3136 DEV_MAC_TAGS_CFG_VLAN_DBL_AWR_ENA | 3137 DEV_MAC_TAGS_CFG_VLAN_LEN_AWR_ENA, 3138 DEV_MAC_TAGS_CFG); 3139 3140 /* Set SMAC of Pause frame (00:00:00:00:00:00) */ 3141 ocelot_port_writel(ocelot_port, 0, DEV_MAC_FC_MAC_HIGH_CFG); 3142 ocelot_port_writel(ocelot_port, 0, DEV_MAC_FC_MAC_LOW_CFG); 3143 3144 /* Enable transmission of pause frames */ 3145 ocelot_fields_write(ocelot, port, SYS_PAUSE_CFG_PAUSE_ENA, 1); 3146 3147 /* Drop frames with multicast source address */ 3148 ocelot_rmw_gix(ocelot, ANA_PORT_DROP_CFG_DROP_MC_SMAC_ENA, 3149 ANA_PORT_DROP_CFG_DROP_MC_SMAC_ENA, 3150 ANA_PORT_DROP_CFG, port); 3151 3152 /* Set default VLAN and tag type to 8021Q. */ 3153 ocelot_rmw_gix(ocelot, REW_PORT_VLAN_CFG_PORT_TPID(ETH_P_8021Q), 3154 REW_PORT_VLAN_CFG_PORT_TPID_M, 3155 REW_PORT_VLAN_CFG, port); 3156 3157 /* Disable source address learning for standalone mode */ 3158 ocelot_port_set_learning(ocelot, port, false); 3159 3160 /* Set the port's initial logical port ID value, enable receiving 3161 * frames on it, and configure the MAC address learning type to 3162 * automatic. 3163 */ 3164 ocelot_write_gix(ocelot, ANA_PORT_PORT_CFG_LEARNAUTO | 3165 ANA_PORT_PORT_CFG_RECV_ENA | 3166 ANA_PORT_PORT_CFG_PORTID_VAL(port), 3167 ANA_PORT_PORT_CFG, port); 3168 3169 /* Enable vcap lookups */ 3170 ocelot_vcap_enable(ocelot, port); 3171 } 3172 EXPORT_SYMBOL(ocelot_init_port); 3173 3174 /* Configure and enable the CPU port module, which is a set of queues 3175 * accessible through register MMIO, frame DMA or Ethernet (in case 3176 * NPI mode is used). 3177 */ 3178 static void ocelot_cpu_port_init(struct ocelot *ocelot) 3179 { 3180 int cpu = ocelot->num_phys_ports; 3181 3182 /* The unicast destination PGID for the CPU port module is unused */ 3183 ocelot_write_rix(ocelot, 0, ANA_PGID_PGID, cpu); 3184 /* Instead set up a multicast destination PGID for traffic copied to 3185 * the CPU. Whitelisted MAC addresses like the port netdevice MAC 3186 * addresses will be copied to the CPU via this PGID. 3187 */ 3188 ocelot_write_rix(ocelot, BIT(cpu), ANA_PGID_PGID, PGID_CPU); 3189 ocelot_write_gix(ocelot, ANA_PORT_PORT_CFG_RECV_ENA | 3190 ANA_PORT_PORT_CFG_PORTID_VAL(cpu), 3191 ANA_PORT_PORT_CFG, cpu); 3192 3193 /* Enable CPU port module */ 3194 ocelot_fields_write(ocelot, cpu, QSYS_SWITCH_PORT_MODE_PORT_ENA, 1); 3195 /* CPU port Injection/Extraction configuration */ 3196 ocelot_fields_write(ocelot, cpu, SYS_PORT_MODE_INCL_XTR_HDR, 3197 OCELOT_TAG_PREFIX_NONE); 3198 ocelot_fields_write(ocelot, cpu, SYS_PORT_MODE_INCL_INJ_HDR, 3199 OCELOT_TAG_PREFIX_NONE); 3200 3201 /* Configure the CPU port to be VLAN aware */ 3202 ocelot_write_gix(ocelot, 3203 ANA_PORT_VLAN_CFG_VLAN_VID(OCELOT_STANDALONE_PVID) | 3204 ANA_PORT_VLAN_CFG_VLAN_AWARE_ENA | 3205 ANA_PORT_VLAN_CFG_VLAN_POP_CNT(1), 3206 ANA_PORT_VLAN_CFG, cpu); 3207 } 3208 3209 static void ocelot_detect_features(struct ocelot *ocelot) 3210 { 3211 int mmgt, eq_ctrl; 3212 3213 /* For Ocelot, Felix, Seville, Serval etc, SYS:MMGT:MMGT:FREECNT holds 3214 * the number of 240-byte free memory words (aka 4-cell chunks) and not 3215 * 192 bytes as the documentation incorrectly says. 3216 */ 3217 mmgt = ocelot_read(ocelot, SYS_MMGT); 3218 ocelot->packet_buffer_size = 240 * SYS_MMGT_FREECNT(mmgt); 3219 3220 eq_ctrl = ocelot_read(ocelot, QSYS_EQ_CTRL); 3221 ocelot->num_frame_refs = QSYS_MMGT_EQ_CTRL_FP_FREE_CNT(eq_ctrl); 3222 } 3223 3224 int ocelot_init(struct ocelot *ocelot) 3225 { 3226 char queue_name[32]; 3227 int i, ret; 3228 u32 port; 3229 3230 if (ocelot->ops->reset) { 3231 ret = ocelot->ops->reset(ocelot); 3232 if (ret) { 3233 dev_err(ocelot->dev, "Switch reset failed\n"); 3234 return ret; 3235 } 3236 } 3237 3238 ocelot->stats = devm_kcalloc(ocelot->dev, 3239 ocelot->num_phys_ports * ocelot->num_stats, 3240 sizeof(u64), GFP_KERNEL); 3241 if (!ocelot->stats) 3242 return -ENOMEM; 3243 3244 mutex_init(&ocelot->stats_lock); 3245 mutex_init(&ocelot->ptp_lock); 3246 mutex_init(&ocelot->mact_lock); 3247 mutex_init(&ocelot->fwd_domain_lock); 3248 spin_lock_init(&ocelot->ptp_clock_lock); 3249 spin_lock_init(&ocelot->ts_id_lock); 3250 snprintf(queue_name, sizeof(queue_name), "%s-stats", 3251 dev_name(ocelot->dev)); 3252 ocelot->stats_queue = create_singlethread_workqueue(queue_name); 3253 if (!ocelot->stats_queue) 3254 return -ENOMEM; 3255 3256 ocelot->owq = alloc_ordered_workqueue("ocelot-owq", 0); 3257 if (!ocelot->owq) { 3258 destroy_workqueue(ocelot->stats_queue); 3259 return -ENOMEM; 3260 } 3261 3262 INIT_LIST_HEAD(&ocelot->multicast); 3263 INIT_LIST_HEAD(&ocelot->pgids); 3264 INIT_LIST_HEAD(&ocelot->vlans); 3265 INIT_LIST_HEAD(&ocelot->lag_fdbs); 3266 ocelot_detect_features(ocelot); 3267 ocelot_mact_init(ocelot); 3268 ocelot_vlan_init(ocelot); 3269 ocelot_vcap_init(ocelot); 3270 ocelot_cpu_port_init(ocelot); 3271 3272 if (ocelot->ops->psfp_init) 3273 ocelot->ops->psfp_init(ocelot); 3274 3275 for (port = 0; port < ocelot->num_phys_ports; port++) { 3276 /* Clear all counters (5 groups) */ 3277 ocelot_write(ocelot, SYS_STAT_CFG_STAT_VIEW(port) | 3278 SYS_STAT_CFG_STAT_CLEAR_SHOT(0x7f), 3279 SYS_STAT_CFG); 3280 } 3281 3282 /* Only use S-Tag */ 3283 ocelot_write(ocelot, ETH_P_8021AD, SYS_VLAN_ETYPE_CFG); 3284 3285 /* Aggregation mode */ 3286 ocelot_write(ocelot, ANA_AGGR_CFG_AC_SMAC_ENA | 3287 ANA_AGGR_CFG_AC_DMAC_ENA | 3288 ANA_AGGR_CFG_AC_IP4_SIPDIP_ENA | 3289 ANA_AGGR_CFG_AC_IP4_TCPUDP_ENA | 3290 ANA_AGGR_CFG_AC_IP6_FLOW_LBL_ENA | 3291 ANA_AGGR_CFG_AC_IP6_TCPUDP_ENA, 3292 ANA_AGGR_CFG); 3293 3294 /* Set MAC age time to default value. The entry is aged after 3295 * 2*AGE_PERIOD 3296 */ 3297 ocelot_write(ocelot, 3298 ANA_AUTOAGE_AGE_PERIOD(BR_DEFAULT_AGEING_TIME / 2 / HZ), 3299 ANA_AUTOAGE); 3300 3301 /* Disable learning for frames discarded by VLAN ingress filtering */ 3302 regmap_field_write(ocelot->regfields[ANA_ADVLEARN_VLAN_CHK], 1); 3303 3304 /* Setup frame ageing - fixed value "2 sec" - in 6.5 us units */ 3305 ocelot_write(ocelot, SYS_FRM_AGING_AGE_TX_ENA | 3306 SYS_FRM_AGING_MAX_AGE(307692), SYS_FRM_AGING); 3307 3308 /* Setup flooding PGIDs */ 3309 for (i = 0; i < ocelot->num_flooding_pgids; i++) 3310 ocelot_write_rix(ocelot, ANA_FLOODING_FLD_MULTICAST(PGID_MC) | 3311 ANA_FLOODING_FLD_BROADCAST(PGID_BC) | 3312 ANA_FLOODING_FLD_UNICAST(PGID_UC), 3313 ANA_FLOODING, i); 3314 ocelot_write(ocelot, ANA_FLOODING_IPMC_FLD_MC6_DATA(PGID_MCIPV6) | 3315 ANA_FLOODING_IPMC_FLD_MC6_CTRL(PGID_MC) | 3316 ANA_FLOODING_IPMC_FLD_MC4_DATA(PGID_MCIPV4) | 3317 ANA_FLOODING_IPMC_FLD_MC4_CTRL(PGID_MC), 3318 ANA_FLOODING_IPMC); 3319 3320 for (port = 0; port < ocelot->num_phys_ports; port++) { 3321 /* Transmit the frame to the local port. */ 3322 ocelot_write_rix(ocelot, BIT(port), ANA_PGID_PGID, port); 3323 /* Do not forward BPDU frames to the front ports. */ 3324 ocelot_write_gix(ocelot, 3325 ANA_PORT_CPU_FWD_BPDU_CFG_BPDU_REDIR_ENA(0xffff), 3326 ANA_PORT_CPU_FWD_BPDU_CFG, 3327 port); 3328 /* Ensure bridging is disabled */ 3329 ocelot_write_rix(ocelot, 0, ANA_PGID_PGID, PGID_SRC + port); 3330 } 3331 3332 for_each_nonreserved_multicast_dest_pgid(ocelot, i) { 3333 u32 val = ANA_PGID_PGID_PGID(GENMASK(ocelot->num_phys_ports - 1, 0)); 3334 3335 ocelot_write_rix(ocelot, val, ANA_PGID_PGID, i); 3336 } 3337 3338 ocelot_write_rix(ocelot, 0, ANA_PGID_PGID, PGID_BLACKHOLE); 3339 3340 /* Allow broadcast and unknown L2 multicast to the CPU. */ 3341 ocelot_rmw_rix(ocelot, ANA_PGID_PGID_PGID(BIT(ocelot->num_phys_ports)), 3342 ANA_PGID_PGID_PGID(BIT(ocelot->num_phys_ports)), 3343 ANA_PGID_PGID, PGID_MC); 3344 ocelot_rmw_rix(ocelot, ANA_PGID_PGID_PGID(BIT(ocelot->num_phys_ports)), 3345 ANA_PGID_PGID_PGID(BIT(ocelot->num_phys_ports)), 3346 ANA_PGID_PGID, PGID_BC); 3347 ocelot_write_rix(ocelot, 0, ANA_PGID_PGID, PGID_MCIPV4); 3348 ocelot_write_rix(ocelot, 0, ANA_PGID_PGID, PGID_MCIPV6); 3349 3350 /* Allow manual injection via DEVCPU_QS registers, and byte swap these 3351 * registers endianness. 3352 */ 3353 ocelot_write_rix(ocelot, QS_INJ_GRP_CFG_BYTE_SWAP | 3354 QS_INJ_GRP_CFG_MODE(1), QS_INJ_GRP_CFG, 0); 3355 ocelot_write_rix(ocelot, QS_XTR_GRP_CFG_BYTE_SWAP | 3356 QS_XTR_GRP_CFG_MODE(1), QS_XTR_GRP_CFG, 0); 3357 ocelot_write(ocelot, ANA_CPUQ_CFG_CPUQ_MIRROR(2) | 3358 ANA_CPUQ_CFG_CPUQ_LRN(2) | 3359 ANA_CPUQ_CFG_CPUQ_MAC_COPY(2) | 3360 ANA_CPUQ_CFG_CPUQ_SRC_COPY(2) | 3361 ANA_CPUQ_CFG_CPUQ_LOCKED_PORTMOVE(2) | 3362 ANA_CPUQ_CFG_CPUQ_ALLBRIDGE(6) | 3363 ANA_CPUQ_CFG_CPUQ_IPMC_CTRL(6) | 3364 ANA_CPUQ_CFG_CPUQ_IGMP(6) | 3365 ANA_CPUQ_CFG_CPUQ_MLD(6), ANA_CPUQ_CFG); 3366 for (i = 0; i < 16; i++) 3367 ocelot_write_rix(ocelot, ANA_CPUQ_8021_CFG_CPUQ_GARP_VAL(6) | 3368 ANA_CPUQ_8021_CFG_CPUQ_BPDU_VAL(6), 3369 ANA_CPUQ_8021_CFG, i); 3370 3371 ret = ocelot_prepare_stats_regions(ocelot); 3372 if (ret) { 3373 destroy_workqueue(ocelot->stats_queue); 3374 destroy_workqueue(ocelot->owq); 3375 return ret; 3376 } 3377 3378 INIT_DELAYED_WORK(&ocelot->stats_work, ocelot_check_stats_work); 3379 queue_delayed_work(ocelot->stats_queue, &ocelot->stats_work, 3380 OCELOT_STATS_CHECK_DELAY); 3381 3382 return 0; 3383 } 3384 EXPORT_SYMBOL(ocelot_init); 3385 3386 void ocelot_deinit(struct ocelot *ocelot) 3387 { 3388 cancel_delayed_work(&ocelot->stats_work); 3389 destroy_workqueue(ocelot->stats_queue); 3390 destroy_workqueue(ocelot->owq); 3391 mutex_destroy(&ocelot->stats_lock); 3392 } 3393 EXPORT_SYMBOL(ocelot_deinit); 3394 3395 void ocelot_deinit_port(struct ocelot *ocelot, int port) 3396 { 3397 struct ocelot_port *ocelot_port = ocelot->ports[port]; 3398 3399 skb_queue_purge(&ocelot_port->tx_skbs); 3400 } 3401 EXPORT_SYMBOL(ocelot_deinit_port); 3402 3403 MODULE_LICENSE("Dual MIT/GPL"); 3404