1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright (c) 2018, Sensor-Technik Wiedemann GmbH 3 * Copyright (c) 2018-2019, Vladimir Oltean <olteanv@gmail.com> 4 */ 5 6 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 7 8 #include <linux/delay.h> 9 #include <linux/module.h> 10 #include <linux/printk.h> 11 #include <linux/spi/spi.h> 12 #include <linux/errno.h> 13 #include <linux/gpio/consumer.h> 14 #include <linux/phylink.h> 15 #include <linux/of.h> 16 #include <linux/of_net.h> 17 #include <linux/of_mdio.h> 18 #include <linux/pcs/pcs-xpcs.h> 19 #include <linux/netdev_features.h> 20 #include <linux/netdevice.h> 21 #include <linux/if_bridge.h> 22 #include <linux/if_ether.h> 23 #include <linux/dsa/8021q.h> 24 #include <linux/units.h> 25 26 #include "sja1105.h" 27 #include "sja1105_tas.h" 28 29 #define SJA1105_UNKNOWN_MULTICAST 0x010000000000ull 30 31 /* Configure the optional reset pin and bring up switch */ 32 static int sja1105_hw_reset(struct device *dev, unsigned int pulse_len, 33 unsigned int startup_delay) 34 { 35 struct gpio_desc *gpio; 36 37 gpio = gpiod_get_optional(dev, "reset", GPIOD_OUT_HIGH); 38 if (IS_ERR(gpio)) 39 return PTR_ERR(gpio); 40 41 if (!gpio) 42 return 0; 43 44 gpiod_set_value_cansleep(gpio, 1); 45 /* Wait for minimum reset pulse length */ 46 msleep(pulse_len); 47 gpiod_set_value_cansleep(gpio, 0); 48 /* Wait until chip is ready after reset */ 49 msleep(startup_delay); 50 51 gpiod_put(gpio); 52 53 return 0; 54 } 55 56 static void 57 sja1105_port_allow_traffic(struct sja1105_l2_forwarding_entry *l2_fwd, 58 int from, int to, bool allow) 59 { 60 if (allow) 61 l2_fwd[from].reach_port |= BIT(to); 62 else 63 l2_fwd[from].reach_port &= ~BIT(to); 64 } 65 66 static bool sja1105_can_forward(struct sja1105_l2_forwarding_entry *l2_fwd, 67 int from, int to) 68 { 69 return !!(l2_fwd[from].reach_port & BIT(to)); 70 } 71 72 static int sja1105_is_vlan_configured(struct sja1105_private *priv, u16 vid) 73 { 74 struct sja1105_vlan_lookup_entry *vlan; 75 int count, i; 76 77 vlan = priv->static_config.tables[BLK_IDX_VLAN_LOOKUP].entries; 78 count = priv->static_config.tables[BLK_IDX_VLAN_LOOKUP].entry_count; 79 80 for (i = 0; i < count; i++) 81 if (vlan[i].vlanid == vid) 82 return i; 83 84 /* Return an invalid entry index if not found */ 85 return -1; 86 } 87 88 static int sja1105_drop_untagged(struct dsa_switch *ds, int port, bool drop) 89 { 90 struct sja1105_private *priv = ds->priv; 91 struct sja1105_mac_config_entry *mac; 92 93 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 94 95 if (mac[port].drpuntag == drop) 96 return 0; 97 98 mac[port].drpuntag = drop; 99 100 return sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, port, 101 &mac[port], true); 102 } 103 104 static int sja1105_pvid_apply(struct sja1105_private *priv, int port, u16 pvid) 105 { 106 struct sja1105_mac_config_entry *mac; 107 108 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 109 110 if (mac[port].vlanid == pvid) 111 return 0; 112 113 mac[port].vlanid = pvid; 114 115 return sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, port, 116 &mac[port], true); 117 } 118 119 static int sja1105_commit_pvid(struct dsa_switch *ds, int port) 120 { 121 struct dsa_port *dp = dsa_to_port(ds, port); 122 struct net_device *br = dsa_port_bridge_dev_get(dp); 123 struct sja1105_private *priv = ds->priv; 124 struct sja1105_vlan_lookup_entry *vlan; 125 bool drop_untagged = false; 126 int match, rc; 127 u16 pvid; 128 129 if (br && br_vlan_enabled(br)) 130 pvid = priv->bridge_pvid[port]; 131 else 132 pvid = priv->tag_8021q_pvid[port]; 133 134 rc = sja1105_pvid_apply(priv, port, pvid); 135 if (rc) 136 return rc; 137 138 /* Only force dropping of untagged packets when the port is under a 139 * VLAN-aware bridge. When the tag_8021q pvid is used, we are 140 * deliberately removing the RX VLAN from the port's VMEMB_PORT list, 141 * to prevent DSA tag spoofing from the link partner. Untagged packets 142 * are the only ones that should be received with tag_8021q, so 143 * definitely don't drop them. 144 */ 145 if (pvid == priv->bridge_pvid[port]) { 146 vlan = priv->static_config.tables[BLK_IDX_VLAN_LOOKUP].entries; 147 148 match = sja1105_is_vlan_configured(priv, pvid); 149 150 if (match < 0 || !(vlan[match].vmemb_port & BIT(port))) 151 drop_untagged = true; 152 } 153 154 if (dsa_is_cpu_port(ds, port) || dsa_is_dsa_port(ds, port)) 155 drop_untagged = true; 156 157 return sja1105_drop_untagged(ds, port, drop_untagged); 158 } 159 160 static int sja1105_init_mac_settings(struct sja1105_private *priv) 161 { 162 struct sja1105_mac_config_entry default_mac = { 163 /* Enable all 8 priority queues on egress. 164 * Every queue i holds top[i] - base[i] frames. 165 * Sum of top[i] - base[i] is 511 (max hardware limit). 166 */ 167 .top = {0x3F, 0x7F, 0xBF, 0xFF, 0x13F, 0x17F, 0x1BF, 0x1FF}, 168 .base = {0x0, 0x40, 0x80, 0xC0, 0x100, 0x140, 0x180, 0x1C0}, 169 .enabled = {true, true, true, true, true, true, true, true}, 170 /* Keep standard IFG of 12 bytes on egress. */ 171 .ifg = 0, 172 /* Always put the MAC speed in automatic mode, where it can be 173 * adjusted at runtime by PHYLINK. 174 */ 175 .speed = priv->info->port_speed[SJA1105_SPEED_AUTO], 176 /* No static correction for 1-step 1588 events */ 177 .tp_delin = 0, 178 .tp_delout = 0, 179 /* Disable aging for critical TTEthernet traffic */ 180 .maxage = 0xFF, 181 /* Internal VLAN (pvid) to apply to untagged ingress */ 182 .vlanprio = 0, 183 .vlanid = 1, 184 .ing_mirr = false, 185 .egr_mirr = false, 186 /* Don't drop traffic with other EtherType than ETH_P_IP */ 187 .drpnona664 = false, 188 /* Don't drop double-tagged traffic */ 189 .drpdtag = false, 190 /* Don't drop untagged traffic */ 191 .drpuntag = false, 192 /* Don't retag 802.1p (VID 0) traffic with the pvid */ 193 .retag = false, 194 /* Disable learning and I/O on user ports by default - 195 * STP will enable it. 196 */ 197 .dyn_learn = false, 198 .egress = false, 199 .ingress = false, 200 }; 201 struct sja1105_mac_config_entry *mac; 202 struct dsa_switch *ds = priv->ds; 203 struct sja1105_table *table; 204 struct dsa_port *dp; 205 206 table = &priv->static_config.tables[BLK_IDX_MAC_CONFIG]; 207 208 /* Discard previous MAC Configuration Table */ 209 if (table->entry_count) { 210 kfree(table->entries); 211 table->entry_count = 0; 212 } 213 214 table->entries = kcalloc(table->ops->max_entry_count, 215 table->ops->unpacked_entry_size, GFP_KERNEL); 216 if (!table->entries) 217 return -ENOMEM; 218 219 table->entry_count = table->ops->max_entry_count; 220 221 mac = table->entries; 222 223 list_for_each_entry(dp, &ds->dst->ports, list) { 224 if (dp->ds != ds) 225 continue; 226 227 mac[dp->index] = default_mac; 228 229 /* Let sja1105_bridge_stp_state_set() keep address learning 230 * enabled for the DSA ports. CPU ports use software-assisted 231 * learning to ensure that only FDB entries belonging to the 232 * bridge are learned, and that they are learned towards all 233 * CPU ports in a cross-chip topology if multiple CPU ports 234 * exist. 235 */ 236 if (dsa_port_is_dsa(dp)) 237 dp->learning = true; 238 239 /* Disallow untagged packets from being received on the 240 * CPU and DSA ports. 241 */ 242 if (dsa_port_is_cpu(dp) || dsa_port_is_dsa(dp)) 243 mac[dp->index].drpuntag = true; 244 } 245 246 return 0; 247 } 248 249 static int sja1105_init_mii_settings(struct sja1105_private *priv) 250 { 251 struct device *dev = &priv->spidev->dev; 252 struct sja1105_xmii_params_entry *mii; 253 struct dsa_switch *ds = priv->ds; 254 struct sja1105_table *table; 255 int i; 256 257 table = &priv->static_config.tables[BLK_IDX_XMII_PARAMS]; 258 259 /* Discard previous xMII Mode Parameters Table */ 260 if (table->entry_count) { 261 kfree(table->entries); 262 table->entry_count = 0; 263 } 264 265 table->entries = kcalloc(table->ops->max_entry_count, 266 table->ops->unpacked_entry_size, GFP_KERNEL); 267 if (!table->entries) 268 return -ENOMEM; 269 270 /* Override table based on PHYLINK DT bindings */ 271 table->entry_count = table->ops->max_entry_count; 272 273 mii = table->entries; 274 275 for (i = 0; i < ds->num_ports; i++) { 276 sja1105_mii_role_t role = XMII_MAC; 277 278 if (dsa_is_unused_port(priv->ds, i)) 279 continue; 280 281 switch (priv->phy_mode[i]) { 282 case PHY_INTERFACE_MODE_INTERNAL: 283 if (priv->info->internal_phy[i] == SJA1105_NO_PHY) 284 goto unsupported; 285 286 mii->xmii_mode[i] = XMII_MODE_MII; 287 if (priv->info->internal_phy[i] == SJA1105_PHY_BASE_TX) 288 mii->special[i] = true; 289 290 break; 291 case PHY_INTERFACE_MODE_REVMII: 292 role = XMII_PHY; 293 fallthrough; 294 case PHY_INTERFACE_MODE_MII: 295 if (!priv->info->supports_mii[i]) 296 goto unsupported; 297 298 mii->xmii_mode[i] = XMII_MODE_MII; 299 break; 300 case PHY_INTERFACE_MODE_REVRMII: 301 role = XMII_PHY; 302 fallthrough; 303 case PHY_INTERFACE_MODE_RMII: 304 if (!priv->info->supports_rmii[i]) 305 goto unsupported; 306 307 mii->xmii_mode[i] = XMII_MODE_RMII; 308 break; 309 case PHY_INTERFACE_MODE_RGMII: 310 case PHY_INTERFACE_MODE_RGMII_ID: 311 case PHY_INTERFACE_MODE_RGMII_RXID: 312 case PHY_INTERFACE_MODE_RGMII_TXID: 313 if (!priv->info->supports_rgmii[i]) 314 goto unsupported; 315 316 mii->xmii_mode[i] = XMII_MODE_RGMII; 317 break; 318 case PHY_INTERFACE_MODE_SGMII: 319 if (!priv->info->supports_sgmii[i]) 320 goto unsupported; 321 322 mii->xmii_mode[i] = XMII_MODE_SGMII; 323 mii->special[i] = true; 324 break; 325 case PHY_INTERFACE_MODE_2500BASEX: 326 if (!priv->info->supports_2500basex[i]) 327 goto unsupported; 328 329 mii->xmii_mode[i] = XMII_MODE_SGMII; 330 mii->special[i] = true; 331 break; 332 unsupported: 333 default: 334 dev_err(dev, "Unsupported PHY mode %s on port %d!\n", 335 phy_modes(priv->phy_mode[i]), i); 336 return -EINVAL; 337 } 338 339 mii->phy_mac[i] = role; 340 } 341 return 0; 342 } 343 344 static int sja1105_init_static_fdb(struct sja1105_private *priv) 345 { 346 struct sja1105_l2_lookup_entry *l2_lookup; 347 struct sja1105_table *table; 348 int port; 349 350 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP]; 351 352 /* We only populate the FDB table through dynamic L2 Address Lookup 353 * entries, except for a special entry at the end which is a catch-all 354 * for unknown multicast and will be used to control flooding domain. 355 */ 356 if (table->entry_count) { 357 kfree(table->entries); 358 table->entry_count = 0; 359 } 360 361 if (!priv->info->can_limit_mcast_flood) 362 return 0; 363 364 table->entries = kcalloc(1, table->ops->unpacked_entry_size, 365 GFP_KERNEL); 366 if (!table->entries) 367 return -ENOMEM; 368 369 table->entry_count = 1; 370 l2_lookup = table->entries; 371 372 /* All L2 multicast addresses have an odd first octet */ 373 l2_lookup[0].macaddr = SJA1105_UNKNOWN_MULTICAST; 374 l2_lookup[0].mask_macaddr = SJA1105_UNKNOWN_MULTICAST; 375 l2_lookup[0].lockeds = true; 376 l2_lookup[0].index = SJA1105_MAX_L2_LOOKUP_COUNT - 1; 377 378 /* Flood multicast to every port by default */ 379 for (port = 0; port < priv->ds->num_ports; port++) 380 if (!dsa_is_unused_port(priv->ds, port)) 381 l2_lookup[0].destports |= BIT(port); 382 383 return 0; 384 } 385 386 static int sja1105_init_l2_lookup_params(struct sja1105_private *priv) 387 { 388 struct sja1105_l2_lookup_params_entry default_l2_lookup_params = { 389 /* Learned FDB entries are forgotten after 300 seconds */ 390 .maxage = SJA1105_AGEING_TIME_MS(300000), 391 /* All entries within a FDB bin are available for learning */ 392 .dyn_tbsz = SJA1105ET_FDB_BIN_SIZE, 393 /* And the P/Q/R/S equivalent setting: */ 394 .start_dynspc = 0, 395 /* 2^8 + 2^5 + 2^3 + 2^2 + 2^1 + 1 in Koopman notation */ 396 .poly = 0x97, 397 /* Always use Independent VLAN Learning (IVL) */ 398 .shared_learn = false, 399 /* Don't discard management traffic based on ENFPORT - 400 * we don't perform SMAC port enforcement anyway, so 401 * what we are setting here doesn't matter. 402 */ 403 .no_enf_hostprt = false, 404 /* Don't learn SMAC for mac_fltres1 and mac_fltres0. 405 * Maybe correlate with no_linklocal_learn from bridge driver? 406 */ 407 .no_mgmt_learn = true, 408 /* P/Q/R/S only */ 409 .use_static = true, 410 /* Dynamically learned FDB entries can overwrite other (older) 411 * dynamic FDB entries 412 */ 413 .owr_dyn = true, 414 .drpnolearn = true, 415 }; 416 struct dsa_switch *ds = priv->ds; 417 int port, num_used_ports = 0; 418 struct sja1105_table *table; 419 u64 max_fdb_entries; 420 421 for (port = 0; port < ds->num_ports; port++) 422 if (!dsa_is_unused_port(ds, port)) 423 num_used_ports++; 424 425 max_fdb_entries = SJA1105_MAX_L2_LOOKUP_COUNT / num_used_ports; 426 427 for (port = 0; port < ds->num_ports; port++) { 428 if (dsa_is_unused_port(ds, port)) 429 continue; 430 431 default_l2_lookup_params.maxaddrp[port] = max_fdb_entries; 432 } 433 434 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP_PARAMS]; 435 436 if (table->entry_count) { 437 kfree(table->entries); 438 table->entry_count = 0; 439 } 440 441 table->entries = kcalloc(table->ops->max_entry_count, 442 table->ops->unpacked_entry_size, GFP_KERNEL); 443 if (!table->entries) 444 return -ENOMEM; 445 446 table->entry_count = table->ops->max_entry_count; 447 448 /* This table only has a single entry */ 449 ((struct sja1105_l2_lookup_params_entry *)table->entries)[0] = 450 default_l2_lookup_params; 451 452 return 0; 453 } 454 455 /* Set up a default VLAN for untagged traffic injected from the CPU 456 * using management routes (e.g. STP, PTP) as opposed to tag_8021q. 457 * All DT-defined ports are members of this VLAN, and there are no 458 * restrictions on forwarding (since the CPU selects the destination). 459 * Frames from this VLAN will always be transmitted as untagged, and 460 * neither the bridge nor the 8021q module cannot create this VLAN ID. 461 */ 462 static int sja1105_init_static_vlan(struct sja1105_private *priv) 463 { 464 struct sja1105_table *table; 465 struct sja1105_vlan_lookup_entry pvid = { 466 .type_entry = SJA1110_VLAN_D_TAG, 467 .ving_mirr = 0, 468 .vegr_mirr = 0, 469 .vmemb_port = 0, 470 .vlan_bc = 0, 471 .tag_port = 0, 472 .vlanid = SJA1105_DEFAULT_VLAN, 473 }; 474 struct dsa_switch *ds = priv->ds; 475 int port; 476 477 table = &priv->static_config.tables[BLK_IDX_VLAN_LOOKUP]; 478 479 if (table->entry_count) { 480 kfree(table->entries); 481 table->entry_count = 0; 482 } 483 484 table->entries = kzalloc(table->ops->unpacked_entry_size, 485 GFP_KERNEL); 486 if (!table->entries) 487 return -ENOMEM; 488 489 table->entry_count = 1; 490 491 for (port = 0; port < ds->num_ports; port++) { 492 if (dsa_is_unused_port(ds, port)) 493 continue; 494 495 pvid.vmemb_port |= BIT(port); 496 pvid.vlan_bc |= BIT(port); 497 pvid.tag_port &= ~BIT(port); 498 499 if (dsa_is_cpu_port(ds, port) || dsa_is_dsa_port(ds, port)) { 500 priv->tag_8021q_pvid[port] = SJA1105_DEFAULT_VLAN; 501 priv->bridge_pvid[port] = SJA1105_DEFAULT_VLAN; 502 } 503 } 504 505 ((struct sja1105_vlan_lookup_entry *)table->entries)[0] = pvid; 506 return 0; 507 } 508 509 static int sja1105_init_l2_forwarding(struct sja1105_private *priv) 510 { 511 struct sja1105_l2_forwarding_entry *l2fwd; 512 struct dsa_switch *ds = priv->ds; 513 struct dsa_switch_tree *dst; 514 struct sja1105_table *table; 515 struct dsa_link *dl; 516 int port, tc; 517 int from, to; 518 519 table = &priv->static_config.tables[BLK_IDX_L2_FORWARDING]; 520 521 if (table->entry_count) { 522 kfree(table->entries); 523 table->entry_count = 0; 524 } 525 526 table->entries = kcalloc(table->ops->max_entry_count, 527 table->ops->unpacked_entry_size, GFP_KERNEL); 528 if (!table->entries) 529 return -ENOMEM; 530 531 table->entry_count = table->ops->max_entry_count; 532 533 l2fwd = table->entries; 534 535 /* First 5 entries in the L2 Forwarding Table define the forwarding 536 * rules and the VLAN PCP to ingress queue mapping. 537 * Set up the ingress queue mapping first. 538 */ 539 for (port = 0; port < ds->num_ports; port++) { 540 if (dsa_is_unused_port(ds, port)) 541 continue; 542 543 for (tc = 0; tc < SJA1105_NUM_TC; tc++) 544 l2fwd[port].vlan_pmap[tc] = tc; 545 } 546 547 /* Then manage the forwarding domain for user ports. These can forward 548 * only to the always-on domain (CPU port and DSA links) 549 */ 550 for (from = 0; from < ds->num_ports; from++) { 551 if (!dsa_is_user_port(ds, from)) 552 continue; 553 554 for (to = 0; to < ds->num_ports; to++) { 555 if (!dsa_is_cpu_port(ds, to) && 556 !dsa_is_dsa_port(ds, to)) 557 continue; 558 559 l2fwd[from].bc_domain |= BIT(to); 560 l2fwd[from].fl_domain |= BIT(to); 561 562 sja1105_port_allow_traffic(l2fwd, from, to, true); 563 } 564 } 565 566 /* Then manage the forwarding domain for DSA links and CPU ports (the 567 * always-on domain). These can send packets to any enabled port except 568 * themselves. 569 */ 570 for (from = 0; from < ds->num_ports; from++) { 571 if (!dsa_is_cpu_port(ds, from) && !dsa_is_dsa_port(ds, from)) 572 continue; 573 574 for (to = 0; to < ds->num_ports; to++) { 575 if (dsa_is_unused_port(ds, to)) 576 continue; 577 578 if (from == to) 579 continue; 580 581 l2fwd[from].bc_domain |= BIT(to); 582 l2fwd[from].fl_domain |= BIT(to); 583 584 sja1105_port_allow_traffic(l2fwd, from, to, true); 585 } 586 } 587 588 /* In odd topologies ("H" connections where there is a DSA link to 589 * another switch which also has its own CPU port), TX packets can loop 590 * back into the system (they are flooded from CPU port 1 to the DSA 591 * link, and from there to CPU port 2). Prevent this from happening by 592 * cutting RX from DSA links towards our CPU port, if the remote switch 593 * has its own CPU port and therefore doesn't need ours for network 594 * stack termination. 595 */ 596 dst = ds->dst; 597 598 list_for_each_entry(dl, &dst->rtable, list) { 599 if (dl->dp->ds != ds || dl->link_dp->cpu_dp == dl->dp->cpu_dp) 600 continue; 601 602 from = dl->dp->index; 603 to = dsa_upstream_port(ds, from); 604 605 dev_warn(ds->dev, 606 "H topology detected, cutting RX from DSA link %d to CPU port %d to prevent TX packet loops\n", 607 from, to); 608 609 sja1105_port_allow_traffic(l2fwd, from, to, false); 610 611 l2fwd[from].bc_domain &= ~BIT(to); 612 l2fwd[from].fl_domain &= ~BIT(to); 613 } 614 615 /* Finally, manage the egress flooding domain. All ports start up with 616 * flooding enabled, including the CPU port and DSA links. 617 */ 618 for (port = 0; port < ds->num_ports; port++) { 619 if (dsa_is_unused_port(ds, port)) 620 continue; 621 622 priv->ucast_egress_floods |= BIT(port); 623 priv->bcast_egress_floods |= BIT(port); 624 } 625 626 /* Next 8 entries define VLAN PCP mapping from ingress to egress. 627 * Create a one-to-one mapping. 628 */ 629 for (tc = 0; tc < SJA1105_NUM_TC; tc++) { 630 for (port = 0; port < ds->num_ports; port++) { 631 if (dsa_is_unused_port(ds, port)) 632 continue; 633 634 l2fwd[ds->num_ports + tc].vlan_pmap[port] = tc; 635 } 636 637 l2fwd[ds->num_ports + tc].type_egrpcp2outputq = true; 638 } 639 640 return 0; 641 } 642 643 static int sja1110_init_pcp_remapping(struct sja1105_private *priv) 644 { 645 struct sja1110_pcp_remapping_entry *pcp_remap; 646 struct dsa_switch *ds = priv->ds; 647 struct sja1105_table *table; 648 int port, tc; 649 650 table = &priv->static_config.tables[BLK_IDX_PCP_REMAPPING]; 651 652 /* Nothing to do for SJA1105 */ 653 if (!table->ops->max_entry_count) 654 return 0; 655 656 if (table->entry_count) { 657 kfree(table->entries); 658 table->entry_count = 0; 659 } 660 661 table->entries = kcalloc(table->ops->max_entry_count, 662 table->ops->unpacked_entry_size, GFP_KERNEL); 663 if (!table->entries) 664 return -ENOMEM; 665 666 table->entry_count = table->ops->max_entry_count; 667 668 pcp_remap = table->entries; 669 670 /* Repeat the configuration done for vlan_pmap */ 671 for (port = 0; port < ds->num_ports; port++) { 672 if (dsa_is_unused_port(ds, port)) 673 continue; 674 675 for (tc = 0; tc < SJA1105_NUM_TC; tc++) 676 pcp_remap[port].egrpcp[tc] = tc; 677 } 678 679 return 0; 680 } 681 682 static int sja1105_init_l2_forwarding_params(struct sja1105_private *priv) 683 { 684 struct sja1105_l2_forwarding_params_entry *l2fwd_params; 685 struct sja1105_table *table; 686 687 table = &priv->static_config.tables[BLK_IDX_L2_FORWARDING_PARAMS]; 688 689 if (table->entry_count) { 690 kfree(table->entries); 691 table->entry_count = 0; 692 } 693 694 table->entries = kcalloc(table->ops->max_entry_count, 695 table->ops->unpacked_entry_size, GFP_KERNEL); 696 if (!table->entries) 697 return -ENOMEM; 698 699 table->entry_count = table->ops->max_entry_count; 700 701 /* This table only has a single entry */ 702 l2fwd_params = table->entries; 703 704 /* Disallow dynamic reconfiguration of vlan_pmap */ 705 l2fwd_params->max_dynp = 0; 706 /* Use a single memory partition for all ingress queues */ 707 l2fwd_params->part_spc[0] = priv->info->max_frame_mem; 708 709 return 0; 710 } 711 712 void sja1105_frame_memory_partitioning(struct sja1105_private *priv) 713 { 714 struct sja1105_l2_forwarding_params_entry *l2_fwd_params; 715 struct sja1105_vl_forwarding_params_entry *vl_fwd_params; 716 struct sja1105_table *table; 717 718 table = &priv->static_config.tables[BLK_IDX_L2_FORWARDING_PARAMS]; 719 l2_fwd_params = table->entries; 720 l2_fwd_params->part_spc[0] = SJA1105_MAX_FRAME_MEMORY; 721 722 /* If we have any critical-traffic virtual links, we need to reserve 723 * some frame buffer memory for them. At the moment, hardcode the value 724 * at 100 blocks of 128 bytes of memory each. This leaves 829 blocks 725 * remaining for best-effort traffic. TODO: figure out a more flexible 726 * way to perform the frame buffer partitioning. 727 */ 728 if (!priv->static_config.tables[BLK_IDX_VL_FORWARDING].entry_count) 729 return; 730 731 table = &priv->static_config.tables[BLK_IDX_VL_FORWARDING_PARAMS]; 732 vl_fwd_params = table->entries; 733 734 l2_fwd_params->part_spc[0] -= SJA1105_VL_FRAME_MEMORY; 735 vl_fwd_params->partspc[0] = SJA1105_VL_FRAME_MEMORY; 736 } 737 738 /* SJA1110 TDMACONFIGIDX values: 739 * 740 * | 100 Mbps ports | 1Gbps ports | 2.5Gbps ports | Disabled ports 741 * -----+----------------+---------------+---------------+--------------- 742 * 0 | 0, [5:10] | [1:2] | [3:4] | retag 743 * 1 |0, [5:10], retag| [1:2] | [3:4] | - 744 * 2 | 0, [5:10] | [1:3], retag | 4 | - 745 * 3 | 0, [5:10] |[1:2], 4, retag| 3 | - 746 * 4 | 0, 2, [5:10] | 1, retag | [3:4] | - 747 * 5 | 0, 1, [5:10] | 2, retag | [3:4] | - 748 * 14 | 0, [5:10] | [1:4], retag | - | - 749 * 15 | [5:10] | [0:4], retag | - | - 750 */ 751 static void sja1110_select_tdmaconfigidx(struct sja1105_private *priv) 752 { 753 struct sja1105_general_params_entry *general_params; 754 struct sja1105_table *table; 755 bool port_1_is_base_tx; 756 bool port_3_is_2500; 757 bool port_4_is_2500; 758 u64 tdmaconfigidx; 759 760 if (priv->info->device_id != SJA1110_DEVICE_ID) 761 return; 762 763 table = &priv->static_config.tables[BLK_IDX_GENERAL_PARAMS]; 764 general_params = table->entries; 765 766 /* All the settings below are "as opposed to SGMII", which is the 767 * other pinmuxing option. 768 */ 769 port_1_is_base_tx = priv->phy_mode[1] == PHY_INTERFACE_MODE_INTERNAL; 770 port_3_is_2500 = priv->phy_mode[3] == PHY_INTERFACE_MODE_2500BASEX; 771 port_4_is_2500 = priv->phy_mode[4] == PHY_INTERFACE_MODE_2500BASEX; 772 773 if (port_1_is_base_tx) 774 /* Retagging port will operate at 1 Gbps */ 775 tdmaconfigidx = 5; 776 else if (port_3_is_2500 && port_4_is_2500) 777 /* Retagging port will operate at 100 Mbps */ 778 tdmaconfigidx = 1; 779 else if (port_3_is_2500) 780 /* Retagging port will operate at 1 Gbps */ 781 tdmaconfigidx = 3; 782 else if (port_4_is_2500) 783 /* Retagging port will operate at 1 Gbps */ 784 tdmaconfigidx = 2; 785 else 786 /* Retagging port will operate at 1 Gbps */ 787 tdmaconfigidx = 14; 788 789 general_params->tdmaconfigidx = tdmaconfigidx; 790 } 791 792 static int sja1105_init_topology(struct sja1105_private *priv, 793 struct sja1105_general_params_entry *general_params) 794 { 795 struct dsa_switch *ds = priv->ds; 796 int port; 797 798 /* The host port is the destination for traffic matching mac_fltres1 799 * and mac_fltres0 on all ports except itself. Default to an invalid 800 * value. 801 */ 802 general_params->host_port = ds->num_ports; 803 804 /* Link-local traffic received on casc_port will be forwarded 805 * to host_port without embedding the source port and device ID 806 * info in the destination MAC address, and no RX timestamps will be 807 * taken either (presumably because it is a cascaded port and a 808 * downstream SJA switch already did that). 809 * To disable the feature, we need to do different things depending on 810 * switch generation. On SJA1105 we need to set an invalid port, while 811 * on SJA1110 which support multiple cascaded ports, this field is a 812 * bitmask so it must be left zero. 813 */ 814 if (!priv->info->multiple_cascade_ports) 815 general_params->casc_port = ds->num_ports; 816 817 for (port = 0; port < ds->num_ports; port++) { 818 bool is_upstream = dsa_is_upstream_port(ds, port); 819 bool is_dsa_link = dsa_is_dsa_port(ds, port); 820 821 /* Upstream ports can be dedicated CPU ports or 822 * upstream-facing DSA links 823 */ 824 if (is_upstream) { 825 if (general_params->host_port == ds->num_ports) { 826 general_params->host_port = port; 827 } else { 828 dev_err(ds->dev, 829 "Port %llu is already a host port, configuring %d as one too is not supported\n", 830 general_params->host_port, port); 831 return -EINVAL; 832 } 833 } 834 835 /* Cascade ports are downstream-facing DSA links */ 836 if (is_dsa_link && !is_upstream) { 837 if (priv->info->multiple_cascade_ports) { 838 general_params->casc_port |= BIT(port); 839 } else if (general_params->casc_port == ds->num_ports) { 840 general_params->casc_port = port; 841 } else { 842 dev_err(ds->dev, 843 "Port %llu is already a cascade port, configuring %d as one too is not supported\n", 844 general_params->casc_port, port); 845 return -EINVAL; 846 } 847 } 848 } 849 850 if (general_params->host_port == ds->num_ports) { 851 dev_err(ds->dev, "No host port configured\n"); 852 return -EINVAL; 853 } 854 855 return 0; 856 } 857 858 static int sja1105_init_general_params(struct sja1105_private *priv) 859 { 860 struct sja1105_general_params_entry default_general_params = { 861 /* Allow dynamic changing of the mirror port */ 862 .mirr_ptacu = true, 863 .switchid = priv->ds->index, 864 /* Priority queue for link-local management frames 865 * (both ingress to and egress from CPU - PTP, STP etc) 866 */ 867 .hostprio = 7, 868 .mac_fltres1 = SJA1105_LINKLOCAL_FILTER_A, 869 .mac_flt1 = SJA1105_LINKLOCAL_FILTER_A_MASK, 870 .incl_srcpt1 = true, 871 .send_meta1 = true, 872 .mac_fltres0 = SJA1105_LINKLOCAL_FILTER_B, 873 .mac_flt0 = SJA1105_LINKLOCAL_FILTER_B_MASK, 874 .incl_srcpt0 = true, 875 .send_meta0 = true, 876 /* Default to an invalid value */ 877 .mirr_port = priv->ds->num_ports, 878 /* No TTEthernet */ 879 .vllupformat = SJA1105_VL_FORMAT_PSFP, 880 .vlmarker = 0, 881 .vlmask = 0, 882 /* Only update correctionField for 1-step PTP (L2 transport) */ 883 .ignore2stf = 0, 884 /* Forcefully disable VLAN filtering by telling 885 * the switch that VLAN has a different EtherType. 886 */ 887 .tpid = ETH_P_SJA1105, 888 .tpid2 = ETH_P_SJA1105, 889 /* Enable the TTEthernet engine on SJA1110 */ 890 .tte_en = true, 891 /* Set up the EtherType for control packets on SJA1110 */ 892 .header_type = ETH_P_SJA1110, 893 }; 894 struct sja1105_general_params_entry *general_params; 895 struct sja1105_table *table; 896 int rc; 897 898 rc = sja1105_init_topology(priv, &default_general_params); 899 if (rc) 900 return rc; 901 902 table = &priv->static_config.tables[BLK_IDX_GENERAL_PARAMS]; 903 904 if (table->entry_count) { 905 kfree(table->entries); 906 table->entry_count = 0; 907 } 908 909 table->entries = kcalloc(table->ops->max_entry_count, 910 table->ops->unpacked_entry_size, GFP_KERNEL); 911 if (!table->entries) 912 return -ENOMEM; 913 914 table->entry_count = table->ops->max_entry_count; 915 916 general_params = table->entries; 917 918 /* This table only has a single entry */ 919 general_params[0] = default_general_params; 920 921 sja1110_select_tdmaconfigidx(priv); 922 923 return 0; 924 } 925 926 static int sja1105_init_avb_params(struct sja1105_private *priv) 927 { 928 struct sja1105_avb_params_entry *avb; 929 struct sja1105_table *table; 930 931 table = &priv->static_config.tables[BLK_IDX_AVB_PARAMS]; 932 933 /* Discard previous AVB Parameters Table */ 934 if (table->entry_count) { 935 kfree(table->entries); 936 table->entry_count = 0; 937 } 938 939 table->entries = kcalloc(table->ops->max_entry_count, 940 table->ops->unpacked_entry_size, GFP_KERNEL); 941 if (!table->entries) 942 return -ENOMEM; 943 944 table->entry_count = table->ops->max_entry_count; 945 946 avb = table->entries; 947 948 /* Configure the MAC addresses for meta frames */ 949 avb->destmeta = SJA1105_META_DMAC; 950 avb->srcmeta = SJA1105_META_SMAC; 951 /* On P/Q/R/S, configure the direction of the PTP_CLK pin as input by 952 * default. This is because there might be boards with a hardware 953 * layout where enabling the pin as output might cause an electrical 954 * clash. On E/T the pin is always an output, which the board designers 955 * probably already knew, so even if there are going to be electrical 956 * issues, there's nothing we can do. 957 */ 958 avb->cas_master = false; 959 960 return 0; 961 } 962 963 /* The L2 policing table is 2-stage. The table is looked up for each frame 964 * according to the ingress port, whether it was broadcast or not, and the 965 * classified traffic class (given by VLAN PCP). This portion of the lookup is 966 * fixed, and gives access to the SHARINDX, an indirection register pointing 967 * within the policing table itself, which is used to resolve the policer that 968 * will be used for this frame. 969 * 970 * Stage 1 Stage 2 971 * +------------+--------+ +---------------------------------+ 972 * |Port 0 TC 0 |SHARINDX| | Policer 0: Rate, Burst, MTU | 973 * +------------+--------+ +---------------------------------+ 974 * |Port 0 TC 1 |SHARINDX| | Policer 1: Rate, Burst, MTU | 975 * +------------+--------+ +---------------------------------+ 976 * ... | Policer 2: Rate, Burst, MTU | 977 * +------------+--------+ +---------------------------------+ 978 * |Port 0 TC 7 |SHARINDX| | Policer 3: Rate, Burst, MTU | 979 * +------------+--------+ +---------------------------------+ 980 * |Port 1 TC 0 |SHARINDX| | Policer 4: Rate, Burst, MTU | 981 * +------------+--------+ +---------------------------------+ 982 * ... | Policer 5: Rate, Burst, MTU | 983 * +------------+--------+ +---------------------------------+ 984 * |Port 1 TC 7 |SHARINDX| | Policer 6: Rate, Burst, MTU | 985 * +------------+--------+ +---------------------------------+ 986 * ... | Policer 7: Rate, Burst, MTU | 987 * +------------+--------+ +---------------------------------+ 988 * |Port 4 TC 7 |SHARINDX| ... 989 * +------------+--------+ 990 * |Port 0 BCAST|SHARINDX| ... 991 * +------------+--------+ 992 * |Port 1 BCAST|SHARINDX| ... 993 * +------------+--------+ 994 * ... ... 995 * +------------+--------+ +---------------------------------+ 996 * |Port 4 BCAST|SHARINDX| | Policer 44: Rate, Burst, MTU | 997 * +------------+--------+ +---------------------------------+ 998 * 999 * In this driver, we shall use policers 0-4 as statically alocated port 1000 * (matchall) policers. So we need to make the SHARINDX for all lookups 1001 * corresponding to this ingress port (8 VLAN PCP lookups and 1 broadcast 1002 * lookup) equal. 1003 * The remaining policers (40) shall be dynamically allocated for flower 1004 * policers, where the key is either vlan_prio or dst_mac ff:ff:ff:ff:ff:ff. 1005 */ 1006 #define SJA1105_RATE_MBPS(speed) (((speed) * 64000) / 1000) 1007 1008 static int sja1105_init_l2_policing(struct sja1105_private *priv) 1009 { 1010 struct sja1105_l2_policing_entry *policing; 1011 struct dsa_switch *ds = priv->ds; 1012 struct sja1105_table *table; 1013 int port, tc; 1014 1015 table = &priv->static_config.tables[BLK_IDX_L2_POLICING]; 1016 1017 /* Discard previous L2 Policing Table */ 1018 if (table->entry_count) { 1019 kfree(table->entries); 1020 table->entry_count = 0; 1021 } 1022 1023 table->entries = kcalloc(table->ops->max_entry_count, 1024 table->ops->unpacked_entry_size, GFP_KERNEL); 1025 if (!table->entries) 1026 return -ENOMEM; 1027 1028 table->entry_count = table->ops->max_entry_count; 1029 1030 policing = table->entries; 1031 1032 /* Setup shared indices for the matchall policers */ 1033 for (port = 0; port < ds->num_ports; port++) { 1034 int mcast = (ds->num_ports * (SJA1105_NUM_TC + 1)) + port; 1035 int bcast = (ds->num_ports * SJA1105_NUM_TC) + port; 1036 1037 for (tc = 0; tc < SJA1105_NUM_TC; tc++) 1038 policing[port * SJA1105_NUM_TC + tc].sharindx = port; 1039 1040 policing[bcast].sharindx = port; 1041 /* Only SJA1110 has multicast policers */ 1042 if (mcast < table->ops->max_entry_count) 1043 policing[mcast].sharindx = port; 1044 } 1045 1046 /* Setup the matchall policer parameters */ 1047 for (port = 0; port < ds->num_ports; port++) { 1048 int mtu = VLAN_ETH_FRAME_LEN + ETH_FCS_LEN; 1049 1050 if (dsa_is_cpu_port(ds, port) || dsa_is_dsa_port(ds, port)) 1051 mtu += VLAN_HLEN; 1052 1053 policing[port].smax = 65535; /* Burst size in bytes */ 1054 policing[port].rate = SJA1105_RATE_MBPS(1000); 1055 policing[port].maxlen = mtu; 1056 policing[port].partition = 0; 1057 } 1058 1059 return 0; 1060 } 1061 1062 static int sja1105_static_config_load(struct sja1105_private *priv) 1063 { 1064 int rc; 1065 1066 sja1105_static_config_free(&priv->static_config); 1067 rc = sja1105_static_config_init(&priv->static_config, 1068 priv->info->static_ops, 1069 priv->info->device_id); 1070 if (rc) 1071 return rc; 1072 1073 /* Build static configuration */ 1074 rc = sja1105_init_mac_settings(priv); 1075 if (rc < 0) 1076 return rc; 1077 rc = sja1105_init_mii_settings(priv); 1078 if (rc < 0) 1079 return rc; 1080 rc = sja1105_init_static_fdb(priv); 1081 if (rc < 0) 1082 return rc; 1083 rc = sja1105_init_static_vlan(priv); 1084 if (rc < 0) 1085 return rc; 1086 rc = sja1105_init_l2_lookup_params(priv); 1087 if (rc < 0) 1088 return rc; 1089 rc = sja1105_init_l2_forwarding(priv); 1090 if (rc < 0) 1091 return rc; 1092 rc = sja1105_init_l2_forwarding_params(priv); 1093 if (rc < 0) 1094 return rc; 1095 rc = sja1105_init_l2_policing(priv); 1096 if (rc < 0) 1097 return rc; 1098 rc = sja1105_init_general_params(priv); 1099 if (rc < 0) 1100 return rc; 1101 rc = sja1105_init_avb_params(priv); 1102 if (rc < 0) 1103 return rc; 1104 rc = sja1110_init_pcp_remapping(priv); 1105 if (rc < 0) 1106 return rc; 1107 1108 /* Send initial configuration to hardware via SPI */ 1109 return sja1105_static_config_upload(priv); 1110 } 1111 1112 /* This is the "new way" for a MAC driver to configure its RGMII delay lines, 1113 * based on the explicit "rx-internal-delay-ps" and "tx-internal-delay-ps" 1114 * properties. It has the advantage of working with fixed links and with PHYs 1115 * that apply RGMII delays too, and the MAC driver needs not perform any 1116 * special checks. 1117 * 1118 * Previously we were acting upon the "phy-mode" property when we were 1119 * operating in fixed-link, basically acting as a PHY, but with a reversed 1120 * interpretation: PHY_INTERFACE_MODE_RGMII_TXID means that the MAC should 1121 * behave as if it is connected to a PHY which has applied RGMII delays in the 1122 * TX direction. So if anything, RX delays should have been added by the MAC, 1123 * but we were adding TX delays. 1124 * 1125 * If the "{rx,tx}-internal-delay-ps" properties are not specified, we fall 1126 * back to the legacy behavior and apply delays on fixed-link ports based on 1127 * the reverse interpretation of the phy-mode. This is a deviation from the 1128 * expected default behavior which is to simply apply no delays. To achieve 1129 * that behavior with the new bindings, it is mandatory to specify 1130 * "{rx,tx}-internal-delay-ps" with a value of 0. 1131 */ 1132 static int sja1105_parse_rgmii_delays(struct sja1105_private *priv, int port, 1133 struct device_node *port_dn) 1134 { 1135 phy_interface_t phy_mode = priv->phy_mode[port]; 1136 struct device *dev = &priv->spidev->dev; 1137 int rx_delay = -1, tx_delay = -1; 1138 1139 if (!phy_interface_mode_is_rgmii(phy_mode)) 1140 return 0; 1141 1142 of_property_read_u32(port_dn, "rx-internal-delay-ps", &rx_delay); 1143 of_property_read_u32(port_dn, "tx-internal-delay-ps", &tx_delay); 1144 1145 if (rx_delay == -1 && tx_delay == -1 && priv->fixed_link[port]) { 1146 dev_warn(dev, 1147 "Port %d interpreting RGMII delay settings based on \"phy-mode\" property, " 1148 "please update device tree to specify \"rx-internal-delay-ps\" and " 1149 "\"tx-internal-delay-ps\"", 1150 port); 1151 1152 if (phy_mode == PHY_INTERFACE_MODE_RGMII_RXID || 1153 phy_mode == PHY_INTERFACE_MODE_RGMII_ID) 1154 rx_delay = 2000; 1155 1156 if (phy_mode == PHY_INTERFACE_MODE_RGMII_TXID || 1157 phy_mode == PHY_INTERFACE_MODE_RGMII_ID) 1158 tx_delay = 2000; 1159 } 1160 1161 if (rx_delay < 0) 1162 rx_delay = 0; 1163 if (tx_delay < 0) 1164 tx_delay = 0; 1165 1166 if ((rx_delay || tx_delay) && !priv->info->setup_rgmii_delay) { 1167 dev_err(dev, "Chip cannot apply RGMII delays\n"); 1168 return -EINVAL; 1169 } 1170 1171 if ((rx_delay && rx_delay < SJA1105_RGMII_DELAY_MIN_PS) || 1172 (tx_delay && tx_delay < SJA1105_RGMII_DELAY_MIN_PS) || 1173 (rx_delay > SJA1105_RGMII_DELAY_MAX_PS) || 1174 (tx_delay > SJA1105_RGMII_DELAY_MAX_PS)) { 1175 dev_err(dev, 1176 "port %d RGMII delay values out of range, must be between %d and %d ps\n", 1177 port, SJA1105_RGMII_DELAY_MIN_PS, SJA1105_RGMII_DELAY_MAX_PS); 1178 return -ERANGE; 1179 } 1180 1181 priv->rgmii_rx_delay_ps[port] = rx_delay; 1182 priv->rgmii_tx_delay_ps[port] = tx_delay; 1183 1184 return 0; 1185 } 1186 1187 static int sja1105_parse_ports_node(struct sja1105_private *priv, 1188 struct device_node *ports_node) 1189 { 1190 struct device *dev = &priv->spidev->dev; 1191 1192 for_each_available_child_of_node_scoped(ports_node, child) { 1193 struct device_node *phy_node; 1194 phy_interface_t phy_mode; 1195 u32 index; 1196 int err; 1197 1198 /* Get switch port number from DT */ 1199 if (of_property_read_u32(child, "reg", &index) < 0) { 1200 dev_err(dev, "Port number not defined in device tree " 1201 "(property \"reg\")\n"); 1202 return -ENODEV; 1203 } 1204 1205 /* Get PHY mode from DT */ 1206 err = of_get_phy_mode(child, &phy_mode); 1207 if (err) { 1208 dev_err(dev, "Failed to read phy-mode or " 1209 "phy-interface-type property for port %d\n", 1210 index); 1211 return -ENODEV; 1212 } 1213 1214 phy_node = of_parse_phandle(child, "phy-handle", 0); 1215 if (!phy_node) { 1216 if (!of_phy_is_fixed_link(child)) { 1217 dev_err(dev, "phy-handle or fixed-link " 1218 "properties missing!\n"); 1219 return -ENODEV; 1220 } 1221 /* phy-handle is missing, but fixed-link isn't. 1222 * So it's a fixed link. Default to PHY role. 1223 */ 1224 priv->fixed_link[index] = true; 1225 } else { 1226 of_node_put(phy_node); 1227 } 1228 1229 priv->phy_mode[index] = phy_mode; 1230 1231 err = sja1105_parse_rgmii_delays(priv, index, child); 1232 if (err) 1233 return err; 1234 } 1235 1236 return 0; 1237 } 1238 1239 static int sja1105_parse_dt(struct sja1105_private *priv) 1240 { 1241 struct device *dev = &priv->spidev->dev; 1242 struct device_node *switch_node = dev->of_node; 1243 struct device_node *ports_node; 1244 int rc; 1245 1246 ports_node = of_get_child_by_name(switch_node, "ports"); 1247 if (!ports_node) 1248 ports_node = of_get_child_by_name(switch_node, "ethernet-ports"); 1249 if (!ports_node) { 1250 dev_err(dev, "Incorrect bindings: absent \"ports\" node\n"); 1251 return -ENODEV; 1252 } 1253 1254 rc = sja1105_parse_ports_node(priv, ports_node); 1255 of_node_put(ports_node); 1256 1257 return rc; 1258 } 1259 1260 /* Convert link speed from SJA1105 to ethtool encoding */ 1261 static int sja1105_port_speed_to_ethtool(struct sja1105_private *priv, 1262 u64 speed) 1263 { 1264 if (speed == priv->info->port_speed[SJA1105_SPEED_10MBPS]) 1265 return SPEED_10; 1266 if (speed == priv->info->port_speed[SJA1105_SPEED_100MBPS]) 1267 return SPEED_100; 1268 if (speed == priv->info->port_speed[SJA1105_SPEED_1000MBPS]) 1269 return SPEED_1000; 1270 if (speed == priv->info->port_speed[SJA1105_SPEED_2500MBPS]) 1271 return SPEED_2500; 1272 return SPEED_UNKNOWN; 1273 } 1274 1275 /* Set link speed in the MAC configuration for a specific port. */ 1276 static int sja1105_adjust_port_config(struct sja1105_private *priv, int port, 1277 int speed_mbps) 1278 { 1279 struct sja1105_mac_config_entry *mac; 1280 struct device *dev = priv->ds->dev; 1281 u64 speed; 1282 int rc; 1283 1284 /* On P/Q/R/S, one can read from the device via the MAC reconfiguration 1285 * tables. On E/T, MAC reconfig tables are not readable, only writable. 1286 * We have to *know* what the MAC looks like. For the sake of keeping 1287 * the code common, we'll use the static configuration tables as a 1288 * reasonable approximation for both E/T and P/Q/R/S. 1289 */ 1290 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 1291 1292 switch (speed_mbps) { 1293 case SPEED_UNKNOWN: 1294 /* PHYLINK called sja1105_mac_config() to inform us about 1295 * the state->interface, but AN has not completed and the 1296 * speed is not yet valid. UM10944.pdf says that setting 1297 * SJA1105_SPEED_AUTO at runtime disables the port, so that is 1298 * ok for power consumption in case AN will never complete - 1299 * otherwise PHYLINK should come back with a new update. 1300 */ 1301 speed = priv->info->port_speed[SJA1105_SPEED_AUTO]; 1302 break; 1303 case SPEED_10: 1304 speed = priv->info->port_speed[SJA1105_SPEED_10MBPS]; 1305 break; 1306 case SPEED_100: 1307 speed = priv->info->port_speed[SJA1105_SPEED_100MBPS]; 1308 break; 1309 case SPEED_1000: 1310 speed = priv->info->port_speed[SJA1105_SPEED_1000MBPS]; 1311 break; 1312 case SPEED_2500: 1313 speed = priv->info->port_speed[SJA1105_SPEED_2500MBPS]; 1314 break; 1315 default: 1316 dev_err(dev, "Invalid speed %iMbps\n", speed_mbps); 1317 return -EINVAL; 1318 } 1319 1320 /* Overwrite SJA1105_SPEED_AUTO from the static MAC configuration 1321 * table, since this will be used for the clocking setup, and we no 1322 * longer need to store it in the static config (already told hardware 1323 * we want auto during upload phase). 1324 * Actually for the SGMII port, the MAC is fixed at 1 Gbps and 1325 * we need to configure the PCS only (if even that). 1326 */ 1327 if (priv->phy_mode[port] == PHY_INTERFACE_MODE_SGMII) 1328 mac[port].speed = priv->info->port_speed[SJA1105_SPEED_1000MBPS]; 1329 else if (priv->phy_mode[port] == PHY_INTERFACE_MODE_2500BASEX) 1330 mac[port].speed = priv->info->port_speed[SJA1105_SPEED_2500MBPS]; 1331 else 1332 mac[port].speed = speed; 1333 1334 /* Write to the dynamic reconfiguration tables */ 1335 rc = sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, port, 1336 &mac[port], true); 1337 if (rc < 0) { 1338 dev_err(dev, "Failed to write MAC config: %d\n", rc); 1339 return rc; 1340 } 1341 1342 /* Reconfigure the PLLs for the RGMII interfaces (required 125 MHz at 1343 * gigabit, 25 MHz at 100 Mbps and 2.5 MHz at 10 Mbps). For MII and 1344 * RMII no change of the clock setup is required. Actually, changing 1345 * the clock setup does interrupt the clock signal for a certain time 1346 * which causes trouble for all PHYs relying on this signal. 1347 */ 1348 if (!phy_interface_mode_is_rgmii(priv->phy_mode[port])) 1349 return 0; 1350 1351 return sja1105_clocking_setup_port(priv, port); 1352 } 1353 1354 static struct phylink_pcs * 1355 sja1105_mac_select_pcs(struct phylink_config *config, phy_interface_t iface) 1356 { 1357 struct dsa_port *dp = dsa_phylink_to_port(config); 1358 struct sja1105_private *priv = dp->ds->priv; 1359 struct dw_xpcs *xpcs = priv->xpcs[dp->index]; 1360 1361 if (xpcs) 1362 return &xpcs->pcs; 1363 1364 return NULL; 1365 } 1366 1367 static void sja1105_mac_config(struct phylink_config *config, 1368 unsigned int mode, 1369 const struct phylink_link_state *state) 1370 { 1371 } 1372 1373 static void sja1105_mac_link_down(struct phylink_config *config, 1374 unsigned int mode, 1375 phy_interface_t interface) 1376 { 1377 struct dsa_port *dp = dsa_phylink_to_port(config); 1378 1379 sja1105_inhibit_tx(dp->ds->priv, BIT(dp->index), true); 1380 } 1381 1382 static void sja1105_mac_link_up(struct phylink_config *config, 1383 struct phy_device *phydev, 1384 unsigned int mode, 1385 phy_interface_t interface, 1386 int speed, int duplex, 1387 bool tx_pause, bool rx_pause) 1388 { 1389 struct dsa_port *dp = dsa_phylink_to_port(config); 1390 struct sja1105_private *priv = dp->ds->priv; 1391 int port = dp->index; 1392 1393 sja1105_adjust_port_config(priv, port, speed); 1394 1395 sja1105_inhibit_tx(priv, BIT(port), false); 1396 } 1397 1398 static void sja1105_phylink_get_caps(struct dsa_switch *ds, int port, 1399 struct phylink_config *config) 1400 { 1401 struct sja1105_private *priv = ds->priv; 1402 struct sja1105_xmii_params_entry *mii; 1403 phy_interface_t phy_mode; 1404 1405 phy_mode = priv->phy_mode[port]; 1406 if (phy_mode == PHY_INTERFACE_MODE_SGMII || 1407 phy_mode == PHY_INTERFACE_MODE_2500BASEX) { 1408 /* Changing the PHY mode on SERDES ports is possible and makes 1409 * sense, because that is done through the XPCS. We allow 1410 * changes between SGMII and 2500base-X. 1411 */ 1412 if (priv->info->supports_sgmii[port]) 1413 __set_bit(PHY_INTERFACE_MODE_SGMII, 1414 config->supported_interfaces); 1415 1416 if (priv->info->supports_2500basex[port]) 1417 __set_bit(PHY_INTERFACE_MODE_2500BASEX, 1418 config->supported_interfaces); 1419 } else { 1420 /* The SJA1105 MAC programming model is through the static 1421 * config (the xMII Mode table cannot be dynamically 1422 * reconfigured), and we have to program that early. 1423 */ 1424 __set_bit(phy_mode, config->supported_interfaces); 1425 } 1426 1427 /* The MAC does not support pause frames, and also doesn't 1428 * support half-duplex traffic modes. 1429 */ 1430 config->mac_capabilities = MAC_10FD | MAC_100FD; 1431 1432 mii = priv->static_config.tables[BLK_IDX_XMII_PARAMS].entries; 1433 if (mii->xmii_mode[port] == XMII_MODE_RGMII || 1434 mii->xmii_mode[port] == XMII_MODE_SGMII) 1435 config->mac_capabilities |= MAC_1000FD; 1436 1437 if (priv->info->supports_2500basex[port]) 1438 config->mac_capabilities |= MAC_2500FD; 1439 } 1440 1441 static int 1442 sja1105_find_static_fdb_entry(struct sja1105_private *priv, int port, 1443 const struct sja1105_l2_lookup_entry *requested) 1444 { 1445 struct sja1105_l2_lookup_entry *l2_lookup; 1446 struct sja1105_table *table; 1447 int i; 1448 1449 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP]; 1450 l2_lookup = table->entries; 1451 1452 for (i = 0; i < table->entry_count; i++) 1453 if (l2_lookup[i].macaddr == requested->macaddr && 1454 l2_lookup[i].vlanid == requested->vlanid && 1455 l2_lookup[i].destports & BIT(port)) 1456 return i; 1457 1458 return -1; 1459 } 1460 1461 /* We want FDB entries added statically through the bridge command to persist 1462 * across switch resets, which are a common thing during normal SJA1105 1463 * operation. So we have to back them up in the static configuration tables 1464 * and hence apply them on next static config upload... yay! 1465 */ 1466 static int 1467 sja1105_static_fdb_change(struct sja1105_private *priv, int port, 1468 const struct sja1105_l2_lookup_entry *requested, 1469 bool keep) 1470 { 1471 struct sja1105_l2_lookup_entry *l2_lookup; 1472 struct sja1105_table *table; 1473 int rc, match; 1474 1475 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP]; 1476 1477 match = sja1105_find_static_fdb_entry(priv, port, requested); 1478 if (match < 0) { 1479 /* Can't delete a missing entry. */ 1480 if (!keep) 1481 return 0; 1482 1483 /* No match => new entry */ 1484 rc = sja1105_table_resize(table, table->entry_count + 1); 1485 if (rc) 1486 return rc; 1487 1488 match = table->entry_count - 1; 1489 } 1490 1491 /* Assign pointer after the resize (it may be new memory) */ 1492 l2_lookup = table->entries; 1493 1494 /* We have a match. 1495 * If the job was to add this FDB entry, it's already done (mostly 1496 * anyway, since the port forwarding mask may have changed, case in 1497 * which we update it). 1498 * Otherwise we have to delete it. 1499 */ 1500 if (keep) { 1501 l2_lookup[match] = *requested; 1502 return 0; 1503 } 1504 1505 /* To remove, the strategy is to overwrite the element with 1506 * the last one, and then reduce the array size by 1 1507 */ 1508 l2_lookup[match] = l2_lookup[table->entry_count - 1]; 1509 return sja1105_table_resize(table, table->entry_count - 1); 1510 } 1511 1512 /* First-generation switches have a 4-way set associative TCAM that 1513 * holds the FDB entries. An FDB index spans from 0 to 1023 and is comprised of 1514 * a "bin" (grouping of 4 entries) and a "way" (an entry within a bin). 1515 * For the placement of a newly learnt FDB entry, the switch selects the bin 1516 * based on a hash function, and the way within that bin incrementally. 1517 */ 1518 static int sja1105et_fdb_index(int bin, int way) 1519 { 1520 return bin * SJA1105ET_FDB_BIN_SIZE + way; 1521 } 1522 1523 static int sja1105et_is_fdb_entry_in_bin(struct sja1105_private *priv, int bin, 1524 const u8 *addr, u16 vid, 1525 struct sja1105_l2_lookup_entry *match, 1526 int *last_unused) 1527 { 1528 int way; 1529 1530 for (way = 0; way < SJA1105ET_FDB_BIN_SIZE; way++) { 1531 struct sja1105_l2_lookup_entry l2_lookup = {0}; 1532 int index = sja1105et_fdb_index(bin, way); 1533 1534 /* Skip unused entries, optionally marking them 1535 * into the return value 1536 */ 1537 if (sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1538 index, &l2_lookup)) { 1539 if (last_unused) 1540 *last_unused = way; 1541 continue; 1542 } 1543 1544 if (l2_lookup.macaddr == ether_addr_to_u64(addr) && 1545 l2_lookup.vlanid == vid) { 1546 if (match) 1547 *match = l2_lookup; 1548 return way; 1549 } 1550 } 1551 /* Return an invalid entry index if not found */ 1552 return -1; 1553 } 1554 1555 int sja1105et_fdb_add(struct dsa_switch *ds, int port, 1556 const unsigned char *addr, u16 vid) 1557 { 1558 struct sja1105_l2_lookup_entry l2_lookup = {0}, tmp; 1559 struct sja1105_private *priv = ds->priv; 1560 struct device *dev = ds->dev; 1561 int last_unused = -1; 1562 int start, end, i; 1563 int bin, way, rc; 1564 1565 bin = sja1105et_fdb_hash(priv, addr, vid); 1566 1567 way = sja1105et_is_fdb_entry_in_bin(priv, bin, addr, vid, 1568 &l2_lookup, &last_unused); 1569 if (way >= 0) { 1570 /* We have an FDB entry. Is our port in the destination 1571 * mask? If yes, we need to do nothing. If not, we need 1572 * to rewrite the entry by adding this port to it. 1573 */ 1574 if ((l2_lookup.destports & BIT(port)) && l2_lookup.lockeds) 1575 return 0; 1576 l2_lookup.destports |= BIT(port); 1577 } else { 1578 int index = sja1105et_fdb_index(bin, way); 1579 1580 /* We don't have an FDB entry. We construct a new one and 1581 * try to find a place for it within the FDB table. 1582 */ 1583 l2_lookup.macaddr = ether_addr_to_u64(addr); 1584 l2_lookup.destports = BIT(port); 1585 l2_lookup.vlanid = vid; 1586 1587 if (last_unused >= 0) { 1588 way = last_unused; 1589 } else { 1590 /* Bin is full, need to evict somebody. 1591 * Choose victim at random. If you get these messages 1592 * often, you may need to consider changing the 1593 * distribution function: 1594 * static_config[BLK_IDX_L2_LOOKUP_PARAMS].entries->poly 1595 */ 1596 get_random_bytes(&way, sizeof(u8)); 1597 way %= SJA1105ET_FDB_BIN_SIZE; 1598 dev_warn(dev, "Warning, FDB bin %d full while adding entry for %pM. Evicting entry %u.\n", 1599 bin, addr, way); 1600 /* Evict entry */ 1601 sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1602 index, NULL, false); 1603 } 1604 } 1605 l2_lookup.lockeds = true; 1606 l2_lookup.index = sja1105et_fdb_index(bin, way); 1607 1608 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1609 l2_lookup.index, &l2_lookup, 1610 true); 1611 if (rc < 0) 1612 return rc; 1613 1614 /* Invalidate a dynamically learned entry if that exists */ 1615 start = sja1105et_fdb_index(bin, 0); 1616 end = sja1105et_fdb_index(bin, way); 1617 1618 for (i = start; i < end; i++) { 1619 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1620 i, &tmp); 1621 if (rc == -ENOENT) 1622 continue; 1623 if (rc) 1624 return rc; 1625 1626 if (tmp.macaddr != ether_addr_to_u64(addr) || tmp.vlanid != vid) 1627 continue; 1628 1629 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1630 i, NULL, false); 1631 if (rc) 1632 return rc; 1633 1634 break; 1635 } 1636 1637 return sja1105_static_fdb_change(priv, port, &l2_lookup, true); 1638 } 1639 1640 int sja1105et_fdb_del(struct dsa_switch *ds, int port, 1641 const unsigned char *addr, u16 vid) 1642 { 1643 struct sja1105_l2_lookup_entry l2_lookup = {0}; 1644 struct sja1105_private *priv = ds->priv; 1645 int index, bin, way, rc; 1646 bool keep; 1647 1648 bin = sja1105et_fdb_hash(priv, addr, vid); 1649 way = sja1105et_is_fdb_entry_in_bin(priv, bin, addr, vid, 1650 &l2_lookup, NULL); 1651 if (way < 0) 1652 return 0; 1653 index = sja1105et_fdb_index(bin, way); 1654 1655 /* We have an FDB entry. Is our port in the destination mask? If yes, 1656 * we need to remove it. If the resulting port mask becomes empty, we 1657 * need to completely evict the FDB entry. 1658 * Otherwise we just write it back. 1659 */ 1660 l2_lookup.destports &= ~BIT(port); 1661 1662 if (l2_lookup.destports) 1663 keep = true; 1664 else 1665 keep = false; 1666 1667 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1668 index, &l2_lookup, keep); 1669 if (rc < 0) 1670 return rc; 1671 1672 return sja1105_static_fdb_change(priv, port, &l2_lookup, keep); 1673 } 1674 1675 int sja1105pqrs_fdb_add(struct dsa_switch *ds, int port, 1676 const unsigned char *addr, u16 vid) 1677 { 1678 struct sja1105_l2_lookup_entry l2_lookup = {0}, tmp; 1679 struct sja1105_private *priv = ds->priv; 1680 int rc, i; 1681 1682 /* Search for an existing entry in the FDB table */ 1683 l2_lookup.macaddr = ether_addr_to_u64(addr); 1684 l2_lookup.vlanid = vid; 1685 l2_lookup.mask_macaddr = GENMASK_ULL(ETH_ALEN * 8 - 1, 0); 1686 l2_lookup.mask_vlanid = VLAN_VID_MASK; 1687 l2_lookup.destports = BIT(port); 1688 1689 tmp = l2_lookup; 1690 1691 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1692 SJA1105_SEARCH, &tmp); 1693 if (rc == 0 && tmp.index != SJA1105_MAX_L2_LOOKUP_COUNT - 1) { 1694 /* Found a static entry and this port is already in the entry's 1695 * port mask => job done 1696 */ 1697 if ((tmp.destports & BIT(port)) && tmp.lockeds) 1698 return 0; 1699 1700 l2_lookup = tmp; 1701 1702 /* l2_lookup.index is populated by the switch in case it 1703 * found something. 1704 */ 1705 l2_lookup.destports |= BIT(port); 1706 goto skip_finding_an_index; 1707 } 1708 1709 /* Not found, so try to find an unused spot in the FDB. 1710 * This is slightly inefficient because the strategy is knock-knock at 1711 * every possible position from 0 to 1023. 1712 */ 1713 for (i = 0; i < SJA1105_MAX_L2_LOOKUP_COUNT; i++) { 1714 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1715 i, NULL); 1716 if (rc < 0) 1717 break; 1718 } 1719 if (i == SJA1105_MAX_L2_LOOKUP_COUNT) { 1720 dev_err(ds->dev, "FDB is full, cannot add entry.\n"); 1721 return -EINVAL; 1722 } 1723 l2_lookup.index = i; 1724 1725 skip_finding_an_index: 1726 l2_lookup.lockeds = true; 1727 1728 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1729 l2_lookup.index, &l2_lookup, 1730 true); 1731 if (rc < 0) 1732 return rc; 1733 1734 /* The switch learns dynamic entries and looks up the FDB left to 1735 * right. It is possible that our addition was concurrent with the 1736 * dynamic learning of the same address, so now that the static entry 1737 * has been installed, we are certain that address learning for this 1738 * particular address has been turned off, so the dynamic entry either 1739 * is in the FDB at an index smaller than the static one, or isn't (it 1740 * can also be at a larger index, but in that case it is inactive 1741 * because the static FDB entry will match first, and the dynamic one 1742 * will eventually age out). Search for a dynamically learned address 1743 * prior to our static one and invalidate it. 1744 */ 1745 tmp = l2_lookup; 1746 1747 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1748 SJA1105_SEARCH, &tmp); 1749 if (rc < 0) { 1750 dev_err(ds->dev, 1751 "port %d failed to read back entry for %pM vid %d: %pe\n", 1752 port, addr, vid, ERR_PTR(rc)); 1753 return rc; 1754 } 1755 1756 if (tmp.index < l2_lookup.index) { 1757 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1758 tmp.index, NULL, false); 1759 if (rc < 0) 1760 return rc; 1761 } 1762 1763 return sja1105_static_fdb_change(priv, port, &l2_lookup, true); 1764 } 1765 1766 int sja1105pqrs_fdb_del(struct dsa_switch *ds, int port, 1767 const unsigned char *addr, u16 vid) 1768 { 1769 struct sja1105_l2_lookup_entry l2_lookup = {0}; 1770 struct sja1105_private *priv = ds->priv; 1771 bool keep; 1772 int rc; 1773 1774 l2_lookup.macaddr = ether_addr_to_u64(addr); 1775 l2_lookup.vlanid = vid; 1776 l2_lookup.mask_macaddr = GENMASK_ULL(ETH_ALEN * 8 - 1, 0); 1777 l2_lookup.mask_vlanid = VLAN_VID_MASK; 1778 l2_lookup.destports = BIT(port); 1779 1780 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1781 SJA1105_SEARCH, &l2_lookup); 1782 if (rc < 0) 1783 return 0; 1784 1785 l2_lookup.destports &= ~BIT(port); 1786 1787 /* Decide whether we remove just this port from the FDB entry, 1788 * or if we remove it completely. 1789 */ 1790 if (l2_lookup.destports) 1791 keep = true; 1792 else 1793 keep = false; 1794 1795 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 1796 l2_lookup.index, &l2_lookup, keep); 1797 if (rc < 0) 1798 return rc; 1799 1800 return sja1105_static_fdb_change(priv, port, &l2_lookup, keep); 1801 } 1802 1803 static int sja1105_fdb_add(struct dsa_switch *ds, int port, 1804 const unsigned char *addr, u16 vid, 1805 struct dsa_db db) 1806 { 1807 struct sja1105_private *priv = ds->priv; 1808 int rc; 1809 1810 if (!vid) { 1811 switch (db.type) { 1812 case DSA_DB_PORT: 1813 vid = dsa_tag_8021q_standalone_vid(db.dp); 1814 break; 1815 case DSA_DB_BRIDGE: 1816 vid = dsa_tag_8021q_bridge_vid(db.bridge.num); 1817 break; 1818 default: 1819 return -EOPNOTSUPP; 1820 } 1821 } 1822 1823 mutex_lock(&priv->fdb_lock); 1824 rc = priv->info->fdb_add_cmd(ds, port, addr, vid); 1825 mutex_unlock(&priv->fdb_lock); 1826 1827 return rc; 1828 } 1829 1830 static int __sja1105_fdb_del(struct dsa_switch *ds, int port, 1831 const unsigned char *addr, u16 vid, 1832 struct dsa_db db) 1833 { 1834 struct sja1105_private *priv = ds->priv; 1835 1836 if (!vid) { 1837 switch (db.type) { 1838 case DSA_DB_PORT: 1839 vid = dsa_tag_8021q_standalone_vid(db.dp); 1840 break; 1841 case DSA_DB_BRIDGE: 1842 vid = dsa_tag_8021q_bridge_vid(db.bridge.num); 1843 break; 1844 default: 1845 return -EOPNOTSUPP; 1846 } 1847 } 1848 1849 return priv->info->fdb_del_cmd(ds, port, addr, vid); 1850 } 1851 1852 static int sja1105_fdb_del(struct dsa_switch *ds, int port, 1853 const unsigned char *addr, u16 vid, 1854 struct dsa_db db) 1855 { 1856 struct sja1105_private *priv = ds->priv; 1857 int rc; 1858 1859 mutex_lock(&priv->fdb_lock); 1860 rc = __sja1105_fdb_del(ds, port, addr, vid, db); 1861 mutex_unlock(&priv->fdb_lock); 1862 1863 return rc; 1864 } 1865 1866 static int sja1105_fdb_dump(struct dsa_switch *ds, int port, 1867 dsa_fdb_dump_cb_t *cb, void *data) 1868 { 1869 struct sja1105_private *priv = ds->priv; 1870 struct device *dev = ds->dev; 1871 int i; 1872 1873 for (i = 0; i < SJA1105_MAX_L2_LOOKUP_COUNT; i++) { 1874 struct sja1105_l2_lookup_entry l2_lookup = {0}; 1875 u8 macaddr[ETH_ALEN]; 1876 int rc; 1877 1878 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1879 i, &l2_lookup); 1880 /* No fdb entry at i, not an issue */ 1881 if (rc == -ENOENT) 1882 continue; 1883 if (rc) { 1884 dev_err(dev, "Failed to dump FDB: %d\n", rc); 1885 return rc; 1886 } 1887 1888 /* FDB dump callback is per port. This means we have to 1889 * disregard a valid entry if it's not for this port, even if 1890 * only to revisit it later. This is inefficient because the 1891 * 1024-sized FDB table needs to be traversed 4 times through 1892 * SPI during a 'bridge fdb show' command. 1893 */ 1894 if (!(l2_lookup.destports & BIT(port))) 1895 continue; 1896 1897 u64_to_ether_addr(l2_lookup.macaddr, macaddr); 1898 1899 /* Hardware FDB is shared for fdb and mdb, "bridge fdb show" 1900 * only wants to see unicast 1901 */ 1902 if (is_multicast_ether_addr(macaddr)) 1903 continue; 1904 1905 /* We need to hide the dsa_8021q VLANs from the user. */ 1906 if (vid_is_dsa_8021q(l2_lookup.vlanid)) 1907 l2_lookup.vlanid = 0; 1908 rc = cb(macaddr, l2_lookup.vlanid, l2_lookup.lockeds, data); 1909 if (rc) 1910 return rc; 1911 } 1912 return 0; 1913 } 1914 1915 static void sja1105_fast_age(struct dsa_switch *ds, int port) 1916 { 1917 struct dsa_port *dp = dsa_to_port(ds, port); 1918 struct sja1105_private *priv = ds->priv; 1919 struct dsa_db db = { 1920 .type = DSA_DB_BRIDGE, 1921 .bridge = { 1922 .dev = dsa_port_bridge_dev_get(dp), 1923 .num = dsa_port_bridge_num_get(dp), 1924 }, 1925 }; 1926 int i; 1927 1928 mutex_lock(&priv->fdb_lock); 1929 1930 for (i = 0; i < SJA1105_MAX_L2_LOOKUP_COUNT; i++) { 1931 struct sja1105_l2_lookup_entry l2_lookup = {0}; 1932 u8 macaddr[ETH_ALEN]; 1933 int rc; 1934 1935 rc = sja1105_dynamic_config_read(priv, BLK_IDX_L2_LOOKUP, 1936 i, &l2_lookup); 1937 /* No fdb entry at i, not an issue */ 1938 if (rc == -ENOENT) 1939 continue; 1940 if (rc) { 1941 dev_err(ds->dev, "Failed to read FDB: %pe\n", 1942 ERR_PTR(rc)); 1943 break; 1944 } 1945 1946 if (!(l2_lookup.destports & BIT(port))) 1947 continue; 1948 1949 /* Don't delete static FDB entries */ 1950 if (l2_lookup.lockeds) 1951 continue; 1952 1953 u64_to_ether_addr(l2_lookup.macaddr, macaddr); 1954 1955 rc = __sja1105_fdb_del(ds, port, macaddr, l2_lookup.vlanid, db); 1956 if (rc) { 1957 dev_err(ds->dev, 1958 "Failed to delete FDB entry %pM vid %lld: %pe\n", 1959 macaddr, l2_lookup.vlanid, ERR_PTR(rc)); 1960 break; 1961 } 1962 } 1963 1964 mutex_unlock(&priv->fdb_lock); 1965 } 1966 1967 static int sja1105_mdb_add(struct dsa_switch *ds, int port, 1968 const struct switchdev_obj_port_mdb *mdb, 1969 struct dsa_db db) 1970 { 1971 return sja1105_fdb_add(ds, port, mdb->addr, mdb->vid, db); 1972 } 1973 1974 static int sja1105_mdb_del(struct dsa_switch *ds, int port, 1975 const struct switchdev_obj_port_mdb *mdb, 1976 struct dsa_db db) 1977 { 1978 return sja1105_fdb_del(ds, port, mdb->addr, mdb->vid, db); 1979 } 1980 1981 /* Common function for unicast and broadcast flood configuration. 1982 * Flooding is configured between each {ingress, egress} port pair, and since 1983 * the bridge's semantics are those of "egress flooding", it means we must 1984 * enable flooding towards this port from all ingress ports that are in the 1985 * same forwarding domain. 1986 */ 1987 static int sja1105_manage_flood_domains(struct sja1105_private *priv) 1988 { 1989 struct sja1105_l2_forwarding_entry *l2_fwd; 1990 struct dsa_switch *ds = priv->ds; 1991 int from, to, rc; 1992 1993 l2_fwd = priv->static_config.tables[BLK_IDX_L2_FORWARDING].entries; 1994 1995 for (from = 0; from < ds->num_ports; from++) { 1996 u64 fl_domain = 0, bc_domain = 0; 1997 1998 for (to = 0; to < priv->ds->num_ports; to++) { 1999 if (!sja1105_can_forward(l2_fwd, from, to)) 2000 continue; 2001 2002 if (priv->ucast_egress_floods & BIT(to)) 2003 fl_domain |= BIT(to); 2004 if (priv->bcast_egress_floods & BIT(to)) 2005 bc_domain |= BIT(to); 2006 } 2007 2008 /* Nothing changed, nothing to do */ 2009 if (l2_fwd[from].fl_domain == fl_domain && 2010 l2_fwd[from].bc_domain == bc_domain) 2011 continue; 2012 2013 l2_fwd[from].fl_domain = fl_domain; 2014 l2_fwd[from].bc_domain = bc_domain; 2015 2016 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_FORWARDING, 2017 from, &l2_fwd[from], true); 2018 if (rc < 0) 2019 return rc; 2020 } 2021 2022 return 0; 2023 } 2024 2025 static int sja1105_bridge_member(struct dsa_switch *ds, int port, 2026 struct dsa_bridge bridge, bool member) 2027 { 2028 struct sja1105_l2_forwarding_entry *l2_fwd; 2029 struct sja1105_private *priv = ds->priv; 2030 int i, rc; 2031 2032 l2_fwd = priv->static_config.tables[BLK_IDX_L2_FORWARDING].entries; 2033 2034 for (i = 0; i < ds->num_ports; i++) { 2035 /* Add this port to the forwarding matrix of the 2036 * other ports in the same bridge, and viceversa. 2037 */ 2038 if (!dsa_is_user_port(ds, i)) 2039 continue; 2040 /* For the ports already under the bridge, only one thing needs 2041 * to be done, and that is to add this port to their 2042 * reachability domain. So we can perform the SPI write for 2043 * them immediately. However, for this port itself (the one 2044 * that is new to the bridge), we need to add all other ports 2045 * to its reachability domain. So we do that incrementally in 2046 * this loop, and perform the SPI write only at the end, once 2047 * the domain contains all other bridge ports. 2048 */ 2049 if (i == port) 2050 continue; 2051 if (!dsa_port_offloads_bridge(dsa_to_port(ds, i), &bridge)) 2052 continue; 2053 sja1105_port_allow_traffic(l2_fwd, i, port, member); 2054 sja1105_port_allow_traffic(l2_fwd, port, i, member); 2055 2056 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_FORWARDING, 2057 i, &l2_fwd[i], true); 2058 if (rc < 0) 2059 return rc; 2060 } 2061 2062 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_FORWARDING, 2063 port, &l2_fwd[port], true); 2064 if (rc) 2065 return rc; 2066 2067 rc = sja1105_commit_pvid(ds, port); 2068 if (rc) 2069 return rc; 2070 2071 return sja1105_manage_flood_domains(priv); 2072 } 2073 2074 static void sja1105_bridge_stp_state_set(struct dsa_switch *ds, int port, 2075 u8 state) 2076 { 2077 struct dsa_port *dp = dsa_to_port(ds, port); 2078 struct sja1105_private *priv = ds->priv; 2079 struct sja1105_mac_config_entry *mac; 2080 2081 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 2082 2083 switch (state) { 2084 case BR_STATE_DISABLED: 2085 case BR_STATE_BLOCKING: 2086 /* From UM10944 description of DRPDTAG (why put this there?): 2087 * "Management traffic flows to the port regardless of the state 2088 * of the INGRESS flag". So BPDUs are still be allowed to pass. 2089 * At the moment no difference between DISABLED and BLOCKING. 2090 */ 2091 mac[port].ingress = false; 2092 mac[port].egress = false; 2093 mac[port].dyn_learn = false; 2094 break; 2095 case BR_STATE_LISTENING: 2096 mac[port].ingress = true; 2097 mac[port].egress = false; 2098 mac[port].dyn_learn = false; 2099 break; 2100 case BR_STATE_LEARNING: 2101 mac[port].ingress = true; 2102 mac[port].egress = false; 2103 mac[port].dyn_learn = dp->learning; 2104 break; 2105 case BR_STATE_FORWARDING: 2106 mac[port].ingress = true; 2107 mac[port].egress = true; 2108 mac[port].dyn_learn = dp->learning; 2109 break; 2110 default: 2111 dev_err(ds->dev, "invalid STP state: %d\n", state); 2112 return; 2113 } 2114 2115 sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, port, 2116 &mac[port], true); 2117 } 2118 2119 static int sja1105_bridge_join(struct dsa_switch *ds, int port, 2120 struct dsa_bridge bridge, 2121 bool *tx_fwd_offload, 2122 struct netlink_ext_ack *extack) 2123 { 2124 int rc; 2125 2126 rc = sja1105_bridge_member(ds, port, bridge, true); 2127 if (rc) 2128 return rc; 2129 2130 rc = dsa_tag_8021q_bridge_join(ds, port, bridge, tx_fwd_offload, 2131 extack); 2132 if (rc) { 2133 sja1105_bridge_member(ds, port, bridge, false); 2134 return rc; 2135 } 2136 2137 return 0; 2138 } 2139 2140 static void sja1105_bridge_leave(struct dsa_switch *ds, int port, 2141 struct dsa_bridge bridge) 2142 { 2143 dsa_tag_8021q_bridge_leave(ds, port, bridge); 2144 sja1105_bridge_member(ds, port, bridge, false); 2145 } 2146 2147 /* Port 0 (the uC port) does not have CBS shapers */ 2148 #define SJA1110_FIXED_CBS(port, prio) ((((port) - 1) * SJA1105_NUM_TC) + (prio)) 2149 2150 static int sja1105_find_cbs_shaper(struct sja1105_private *priv, 2151 int port, int prio) 2152 { 2153 int i; 2154 2155 if (priv->info->fixed_cbs_mapping) { 2156 i = SJA1110_FIXED_CBS(port, prio); 2157 if (i >= 0 && i < priv->info->num_cbs_shapers) 2158 return i; 2159 2160 return -1; 2161 } 2162 2163 for (i = 0; i < priv->info->num_cbs_shapers; i++) 2164 if (priv->cbs[i].port == port && priv->cbs[i].prio == prio) 2165 return i; 2166 2167 return -1; 2168 } 2169 2170 static int sja1105_find_unused_cbs_shaper(struct sja1105_private *priv) 2171 { 2172 int i; 2173 2174 if (priv->info->fixed_cbs_mapping) 2175 return -1; 2176 2177 for (i = 0; i < priv->info->num_cbs_shapers; i++) 2178 if (!priv->cbs[i].idle_slope && !priv->cbs[i].send_slope) 2179 return i; 2180 2181 return -1; 2182 } 2183 2184 static int sja1105_delete_cbs_shaper(struct sja1105_private *priv, int port, 2185 int prio) 2186 { 2187 int i; 2188 2189 for (i = 0; i < priv->info->num_cbs_shapers; i++) { 2190 struct sja1105_cbs_entry *cbs = &priv->cbs[i]; 2191 2192 if (cbs->port == port && cbs->prio == prio) { 2193 memset(cbs, 0, sizeof(*cbs)); 2194 return sja1105_dynamic_config_write(priv, BLK_IDX_CBS, 2195 i, cbs, true); 2196 } 2197 } 2198 2199 return 0; 2200 } 2201 2202 static int sja1105_setup_tc_cbs(struct dsa_switch *ds, int port, 2203 struct tc_cbs_qopt_offload *offload) 2204 { 2205 struct sja1105_private *priv = ds->priv; 2206 struct sja1105_cbs_entry *cbs; 2207 s64 port_transmit_rate_kbps; 2208 int index; 2209 2210 if (!offload->enable) 2211 return sja1105_delete_cbs_shaper(priv, port, offload->queue); 2212 2213 /* The user may be replacing an existing shaper */ 2214 index = sja1105_find_cbs_shaper(priv, port, offload->queue); 2215 if (index < 0) { 2216 /* That isn't the case - see if we can allocate a new one */ 2217 index = sja1105_find_unused_cbs_shaper(priv); 2218 if (index < 0) 2219 return -ENOSPC; 2220 } 2221 2222 cbs = &priv->cbs[index]; 2223 cbs->port = port; 2224 cbs->prio = offload->queue; 2225 /* locredit and sendslope are negative by definition. In hardware, 2226 * positive values must be provided, and the negative sign is implicit. 2227 */ 2228 cbs->credit_hi = offload->hicredit; 2229 cbs->credit_lo = abs(offload->locredit); 2230 /* User space is in kbits/sec, while the hardware in bytes/sec times 2231 * link speed. Since the given offload->sendslope is good only for the 2232 * current link speed anyway, and user space is likely to reprogram it 2233 * when that changes, don't even bother to track the port's link speed, 2234 * but deduce the port transmit rate from idleslope - sendslope. 2235 */ 2236 port_transmit_rate_kbps = offload->idleslope - offload->sendslope; 2237 cbs->idle_slope = div_s64(offload->idleslope * BYTES_PER_KBIT, 2238 port_transmit_rate_kbps); 2239 cbs->send_slope = div_s64(abs(offload->sendslope * BYTES_PER_KBIT), 2240 port_transmit_rate_kbps); 2241 /* Convert the negative values from 64-bit 2's complement 2242 * to 32-bit 2's complement (for the case of 0x80000000 whose 2243 * negative is still negative). 2244 */ 2245 cbs->credit_lo &= GENMASK_ULL(31, 0); 2246 cbs->send_slope &= GENMASK_ULL(31, 0); 2247 2248 return sja1105_dynamic_config_write(priv, BLK_IDX_CBS, index, cbs, 2249 true); 2250 } 2251 2252 static int sja1105_reload_cbs(struct sja1105_private *priv) 2253 { 2254 int rc = 0, i; 2255 2256 /* The credit based shapers are only allocated if 2257 * CONFIG_NET_SCH_CBS is enabled. 2258 */ 2259 if (!priv->cbs) 2260 return 0; 2261 2262 for (i = 0; i < priv->info->num_cbs_shapers; i++) { 2263 struct sja1105_cbs_entry *cbs = &priv->cbs[i]; 2264 2265 if (!cbs->idle_slope && !cbs->send_slope) 2266 continue; 2267 2268 rc = sja1105_dynamic_config_write(priv, BLK_IDX_CBS, i, cbs, 2269 true); 2270 if (rc) 2271 break; 2272 } 2273 2274 return rc; 2275 } 2276 2277 static const char * const sja1105_reset_reasons[] = { 2278 [SJA1105_VLAN_FILTERING] = "VLAN filtering", 2279 [SJA1105_AGEING_TIME] = "Ageing time", 2280 [SJA1105_SCHEDULING] = "Time-aware scheduling", 2281 [SJA1105_BEST_EFFORT_POLICING] = "Best-effort policing", 2282 [SJA1105_VIRTUAL_LINKS] = "Virtual links", 2283 }; 2284 2285 /* For situations where we need to change a setting at runtime that is only 2286 * available through the static configuration, resetting the switch in order 2287 * to upload the new static config is unavoidable. Back up the settings we 2288 * modify at runtime (currently only MAC) and restore them after uploading, 2289 * such that this operation is relatively seamless. 2290 */ 2291 int sja1105_static_config_reload(struct sja1105_private *priv, 2292 enum sja1105_reset_reason reason) 2293 { 2294 struct ptp_system_timestamp ptp_sts_before; 2295 struct ptp_system_timestamp ptp_sts_after; 2296 int speed_mbps[SJA1105_MAX_NUM_PORTS]; 2297 u16 bmcr[SJA1105_MAX_NUM_PORTS] = {0}; 2298 struct sja1105_mac_config_entry *mac; 2299 struct dsa_switch *ds = priv->ds; 2300 s64 t1, t2, t3, t4; 2301 s64 t12, t34; 2302 int rc, i; 2303 s64 now; 2304 2305 mutex_lock(&priv->fdb_lock); 2306 mutex_lock(&priv->mgmt_lock); 2307 2308 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 2309 2310 /* Back up the dynamic link speed changed by sja1105_adjust_port_config 2311 * in order to temporarily restore it to SJA1105_SPEED_AUTO - which the 2312 * switch wants to see in the static config in order to allow us to 2313 * change it through the dynamic interface later. 2314 */ 2315 for (i = 0; i < ds->num_ports; i++) { 2316 speed_mbps[i] = sja1105_port_speed_to_ethtool(priv, 2317 mac[i].speed); 2318 mac[i].speed = priv->info->port_speed[SJA1105_SPEED_AUTO]; 2319 2320 if (priv->xpcs[i]) 2321 bmcr[i] = mdiobus_c45_read(priv->mdio_pcs, i, 2322 MDIO_MMD_VEND2, MDIO_CTRL1); 2323 } 2324 2325 /* No PTP operations can run right now */ 2326 mutex_lock(&priv->ptp_data.lock); 2327 2328 rc = __sja1105_ptp_gettimex(ds, &now, &ptp_sts_before); 2329 if (rc < 0) { 2330 mutex_unlock(&priv->ptp_data.lock); 2331 goto out; 2332 } 2333 2334 /* Reset switch and send updated static configuration */ 2335 rc = sja1105_static_config_upload(priv); 2336 if (rc < 0) { 2337 mutex_unlock(&priv->ptp_data.lock); 2338 goto out; 2339 } 2340 2341 rc = __sja1105_ptp_settime(ds, 0, &ptp_sts_after); 2342 if (rc < 0) { 2343 mutex_unlock(&priv->ptp_data.lock); 2344 goto out; 2345 } 2346 2347 t1 = timespec64_to_ns(&ptp_sts_before.pre_ts); 2348 t2 = timespec64_to_ns(&ptp_sts_before.post_ts); 2349 t3 = timespec64_to_ns(&ptp_sts_after.pre_ts); 2350 t4 = timespec64_to_ns(&ptp_sts_after.post_ts); 2351 /* Mid point, corresponds to pre-reset PTPCLKVAL */ 2352 t12 = t1 + (t2 - t1) / 2; 2353 /* Mid point, corresponds to post-reset PTPCLKVAL, aka 0 */ 2354 t34 = t3 + (t4 - t3) / 2; 2355 /* Advance PTPCLKVAL by the time it took since its readout */ 2356 now += (t34 - t12); 2357 2358 __sja1105_ptp_adjtime(ds, now); 2359 2360 mutex_unlock(&priv->ptp_data.lock); 2361 2362 dev_info(priv->ds->dev, 2363 "Reset switch and programmed static config. Reason: %s\n", 2364 sja1105_reset_reasons[reason]); 2365 2366 /* Configure the CGU (PLLs) for MII and RMII PHYs. 2367 * For these interfaces there is no dynamic configuration 2368 * needed, since PLLs have same settings at all speeds. 2369 */ 2370 if (priv->info->clocking_setup) { 2371 rc = priv->info->clocking_setup(priv); 2372 if (rc < 0) 2373 goto out; 2374 } 2375 2376 for (i = 0; i < ds->num_ports; i++) { 2377 struct dw_xpcs *xpcs = priv->xpcs[i]; 2378 unsigned int neg_mode; 2379 2380 rc = sja1105_adjust_port_config(priv, i, speed_mbps[i]); 2381 if (rc < 0) 2382 goto out; 2383 2384 if (!xpcs) 2385 continue; 2386 2387 if (bmcr[i] & BMCR_ANENABLE) 2388 neg_mode = PHYLINK_PCS_NEG_INBAND_ENABLED; 2389 else 2390 neg_mode = PHYLINK_PCS_NEG_OUTBAND; 2391 2392 rc = xpcs_do_config(xpcs, priv->phy_mode[i], NULL, neg_mode); 2393 if (rc < 0) 2394 goto out; 2395 2396 if (neg_mode == PHYLINK_PCS_NEG_OUTBAND) { 2397 int speed = SPEED_UNKNOWN; 2398 2399 if (priv->phy_mode[i] == PHY_INTERFACE_MODE_2500BASEX) 2400 speed = SPEED_2500; 2401 else if (bmcr[i] & BMCR_SPEED1000) 2402 speed = SPEED_1000; 2403 else if (bmcr[i] & BMCR_SPEED100) 2404 speed = SPEED_100; 2405 else 2406 speed = SPEED_10; 2407 2408 xpcs_link_up(&xpcs->pcs, neg_mode, priv->phy_mode[i], 2409 speed, DUPLEX_FULL); 2410 } 2411 } 2412 2413 rc = sja1105_reload_cbs(priv); 2414 if (rc < 0) 2415 goto out; 2416 out: 2417 mutex_unlock(&priv->mgmt_lock); 2418 mutex_unlock(&priv->fdb_lock); 2419 2420 return rc; 2421 } 2422 2423 static enum dsa_tag_protocol 2424 sja1105_get_tag_protocol(struct dsa_switch *ds, int port, 2425 enum dsa_tag_protocol mp) 2426 { 2427 struct sja1105_private *priv = ds->priv; 2428 2429 return priv->info->tag_proto; 2430 } 2431 2432 /* The TPID setting belongs to the General Parameters table, 2433 * which can only be partially reconfigured at runtime (and not the TPID). 2434 * So a switch reset is required. 2435 */ 2436 int sja1105_vlan_filtering(struct dsa_switch *ds, int port, bool enabled, 2437 struct netlink_ext_ack *extack) 2438 { 2439 struct sja1105_general_params_entry *general_params; 2440 struct sja1105_private *priv = ds->priv; 2441 struct sja1105_table *table; 2442 struct sja1105_rule *rule; 2443 u16 tpid, tpid2; 2444 int rc; 2445 2446 list_for_each_entry(rule, &priv->flow_block.rules, list) { 2447 if (rule->type == SJA1105_RULE_VL) { 2448 NL_SET_ERR_MSG_MOD(extack, 2449 "Cannot change VLAN filtering with active VL rules"); 2450 return -EBUSY; 2451 } 2452 } 2453 2454 if (enabled) { 2455 /* Enable VLAN filtering. */ 2456 tpid = ETH_P_8021Q; 2457 tpid2 = ETH_P_8021AD; 2458 } else { 2459 /* Disable VLAN filtering. */ 2460 tpid = ETH_P_SJA1105; 2461 tpid2 = ETH_P_SJA1105; 2462 } 2463 2464 table = &priv->static_config.tables[BLK_IDX_GENERAL_PARAMS]; 2465 general_params = table->entries; 2466 /* EtherType used to identify inner tagged (C-tag) VLAN traffic */ 2467 general_params->tpid = tpid; 2468 /* EtherType used to identify outer tagged (S-tag) VLAN traffic */ 2469 general_params->tpid2 = tpid2; 2470 2471 for (port = 0; port < ds->num_ports; port++) { 2472 if (dsa_is_unused_port(ds, port)) 2473 continue; 2474 2475 rc = sja1105_commit_pvid(ds, port); 2476 if (rc) 2477 return rc; 2478 } 2479 2480 rc = sja1105_static_config_reload(priv, SJA1105_VLAN_FILTERING); 2481 if (rc) 2482 NL_SET_ERR_MSG_MOD(extack, "Failed to change VLAN Ethertype"); 2483 2484 return rc; 2485 } 2486 2487 static int sja1105_vlan_add(struct sja1105_private *priv, int port, u16 vid, 2488 u16 flags, bool allowed_ingress) 2489 { 2490 struct sja1105_vlan_lookup_entry *vlan; 2491 struct sja1105_table *table; 2492 int match, rc; 2493 2494 table = &priv->static_config.tables[BLK_IDX_VLAN_LOOKUP]; 2495 2496 match = sja1105_is_vlan_configured(priv, vid); 2497 if (match < 0) { 2498 rc = sja1105_table_resize(table, table->entry_count + 1); 2499 if (rc) 2500 return rc; 2501 match = table->entry_count - 1; 2502 } 2503 2504 /* Assign pointer after the resize (it's new memory) */ 2505 vlan = table->entries; 2506 2507 vlan[match].type_entry = SJA1110_VLAN_D_TAG; 2508 vlan[match].vlanid = vid; 2509 vlan[match].vlan_bc |= BIT(port); 2510 2511 if (allowed_ingress) 2512 vlan[match].vmemb_port |= BIT(port); 2513 else 2514 vlan[match].vmemb_port &= ~BIT(port); 2515 2516 if (flags & BRIDGE_VLAN_INFO_UNTAGGED) 2517 vlan[match].tag_port &= ~BIT(port); 2518 else 2519 vlan[match].tag_port |= BIT(port); 2520 2521 return sja1105_dynamic_config_write(priv, BLK_IDX_VLAN_LOOKUP, vid, 2522 &vlan[match], true); 2523 } 2524 2525 static int sja1105_vlan_del(struct sja1105_private *priv, int port, u16 vid) 2526 { 2527 struct sja1105_vlan_lookup_entry *vlan; 2528 struct sja1105_table *table; 2529 bool keep = true; 2530 int match, rc; 2531 2532 table = &priv->static_config.tables[BLK_IDX_VLAN_LOOKUP]; 2533 2534 match = sja1105_is_vlan_configured(priv, vid); 2535 /* Can't delete a missing entry. */ 2536 if (match < 0) 2537 return 0; 2538 2539 /* Assign pointer after the resize (it's new memory) */ 2540 vlan = table->entries; 2541 2542 vlan[match].vlanid = vid; 2543 vlan[match].vlan_bc &= ~BIT(port); 2544 vlan[match].vmemb_port &= ~BIT(port); 2545 /* Also unset tag_port, just so we don't have a confusing bitmap 2546 * (no practical purpose). 2547 */ 2548 vlan[match].tag_port &= ~BIT(port); 2549 2550 /* If there's no port left as member of this VLAN, 2551 * it's time for it to go. 2552 */ 2553 if (!vlan[match].vmemb_port) 2554 keep = false; 2555 2556 rc = sja1105_dynamic_config_write(priv, BLK_IDX_VLAN_LOOKUP, vid, 2557 &vlan[match], keep); 2558 if (rc < 0) 2559 return rc; 2560 2561 if (!keep) 2562 return sja1105_table_delete_entry(table, match); 2563 2564 return 0; 2565 } 2566 2567 static int sja1105_bridge_vlan_add(struct dsa_switch *ds, int port, 2568 const struct switchdev_obj_port_vlan *vlan, 2569 struct netlink_ext_ack *extack) 2570 { 2571 struct sja1105_private *priv = ds->priv; 2572 u16 flags = vlan->flags; 2573 int rc; 2574 2575 /* Be sure to deny alterations to the configuration done by tag_8021q. 2576 */ 2577 if (vid_is_dsa_8021q(vlan->vid)) { 2578 NL_SET_ERR_MSG_MOD(extack, 2579 "Range 3072-4095 reserved for dsa_8021q operation"); 2580 return -EBUSY; 2581 } 2582 2583 /* Always install bridge VLANs as egress-tagged on CPU and DSA ports */ 2584 if (dsa_is_cpu_port(ds, port) || dsa_is_dsa_port(ds, port)) 2585 flags = 0; 2586 2587 rc = sja1105_vlan_add(priv, port, vlan->vid, flags, true); 2588 if (rc) 2589 return rc; 2590 2591 if (vlan->flags & BRIDGE_VLAN_INFO_PVID) 2592 priv->bridge_pvid[port] = vlan->vid; 2593 2594 return sja1105_commit_pvid(ds, port); 2595 } 2596 2597 static int sja1105_bridge_vlan_del(struct dsa_switch *ds, int port, 2598 const struct switchdev_obj_port_vlan *vlan) 2599 { 2600 struct sja1105_private *priv = ds->priv; 2601 int rc; 2602 2603 rc = sja1105_vlan_del(priv, port, vlan->vid); 2604 if (rc) 2605 return rc; 2606 2607 /* In case the pvid was deleted, make sure that untagged packets will 2608 * be dropped. 2609 */ 2610 return sja1105_commit_pvid(ds, port); 2611 } 2612 2613 static int sja1105_dsa_8021q_vlan_add(struct dsa_switch *ds, int port, u16 vid, 2614 u16 flags) 2615 { 2616 struct sja1105_private *priv = ds->priv; 2617 bool allowed_ingress = true; 2618 int rc; 2619 2620 /* Prevent attackers from trying to inject a DSA tag from 2621 * the outside world. 2622 */ 2623 if (dsa_is_user_port(ds, port)) 2624 allowed_ingress = false; 2625 2626 rc = sja1105_vlan_add(priv, port, vid, flags, allowed_ingress); 2627 if (rc) 2628 return rc; 2629 2630 if (flags & BRIDGE_VLAN_INFO_PVID) 2631 priv->tag_8021q_pvid[port] = vid; 2632 2633 return sja1105_commit_pvid(ds, port); 2634 } 2635 2636 static int sja1105_dsa_8021q_vlan_del(struct dsa_switch *ds, int port, u16 vid) 2637 { 2638 struct sja1105_private *priv = ds->priv; 2639 2640 return sja1105_vlan_del(priv, port, vid); 2641 } 2642 2643 static int sja1105_prechangeupper(struct dsa_switch *ds, int port, 2644 struct netdev_notifier_changeupper_info *info) 2645 { 2646 struct netlink_ext_ack *extack = info->info.extack; 2647 struct net_device *upper = info->upper_dev; 2648 struct dsa_switch_tree *dst = ds->dst; 2649 struct dsa_port *dp; 2650 2651 if (is_vlan_dev(upper)) { 2652 NL_SET_ERR_MSG_MOD(extack, "8021q uppers are not supported"); 2653 return -EBUSY; 2654 } 2655 2656 if (netif_is_bridge_master(upper)) { 2657 list_for_each_entry(dp, &dst->ports, list) { 2658 struct net_device *br = dsa_port_bridge_dev_get(dp); 2659 2660 if (br && br != upper && br_vlan_enabled(br)) { 2661 NL_SET_ERR_MSG_MOD(extack, 2662 "Only one VLAN-aware bridge is supported"); 2663 return -EBUSY; 2664 } 2665 } 2666 } 2667 2668 return 0; 2669 } 2670 2671 static int sja1105_mgmt_xmit(struct dsa_switch *ds, int port, int slot, 2672 struct sk_buff *skb, bool takets) 2673 { 2674 struct sja1105_mgmt_entry mgmt_route = {0}; 2675 struct sja1105_private *priv = ds->priv; 2676 struct ethhdr *hdr; 2677 int timeout = 10; 2678 int rc; 2679 2680 hdr = eth_hdr(skb); 2681 2682 mgmt_route.macaddr = ether_addr_to_u64(hdr->h_dest); 2683 mgmt_route.destports = BIT(port); 2684 mgmt_route.enfport = 1; 2685 mgmt_route.tsreg = 0; 2686 mgmt_route.takets = takets; 2687 2688 rc = sja1105_dynamic_config_write(priv, BLK_IDX_MGMT_ROUTE, 2689 slot, &mgmt_route, true); 2690 if (rc < 0) { 2691 kfree_skb(skb); 2692 return rc; 2693 } 2694 2695 /* Transfer skb to the host port. */ 2696 dsa_enqueue_skb(skb, dsa_to_port(ds, port)->user); 2697 2698 /* Wait until the switch has processed the frame */ 2699 do { 2700 rc = sja1105_dynamic_config_read(priv, BLK_IDX_MGMT_ROUTE, 2701 slot, &mgmt_route); 2702 if (rc < 0) { 2703 dev_err_ratelimited(priv->ds->dev, 2704 "failed to poll for mgmt route\n"); 2705 continue; 2706 } 2707 2708 /* UM10944: The ENFPORT flag of the respective entry is 2709 * cleared when a match is found. The host can use this 2710 * flag as an acknowledgment. 2711 */ 2712 cpu_relax(); 2713 } while (mgmt_route.enfport && --timeout); 2714 2715 if (!timeout) { 2716 /* Clean up the management route so that a follow-up 2717 * frame may not match on it by mistake. 2718 * This is only hardware supported on P/Q/R/S - on E/T it is 2719 * a no-op and we are silently discarding the -EOPNOTSUPP. 2720 */ 2721 sja1105_dynamic_config_write(priv, BLK_IDX_MGMT_ROUTE, 2722 slot, &mgmt_route, false); 2723 dev_err_ratelimited(priv->ds->dev, "xmit timed out\n"); 2724 } 2725 2726 return NETDEV_TX_OK; 2727 } 2728 2729 #define work_to_xmit_work(w) \ 2730 container_of((w), struct sja1105_deferred_xmit_work, work) 2731 2732 /* Deferred work is unfortunately necessary because setting up the management 2733 * route cannot be done from atomit context (SPI transfer takes a sleepable 2734 * lock on the bus) 2735 */ 2736 static void sja1105_port_deferred_xmit(struct kthread_work *work) 2737 { 2738 struct sja1105_deferred_xmit_work *xmit_work = work_to_xmit_work(work); 2739 struct sk_buff *clone, *skb = xmit_work->skb; 2740 struct dsa_switch *ds = xmit_work->dp->ds; 2741 struct sja1105_private *priv = ds->priv; 2742 int port = xmit_work->dp->index; 2743 2744 clone = SJA1105_SKB_CB(skb)->clone; 2745 2746 mutex_lock(&priv->mgmt_lock); 2747 2748 sja1105_mgmt_xmit(ds, port, 0, skb, !!clone); 2749 2750 /* The clone, if there, was made by dsa_skb_tx_timestamp */ 2751 if (clone) 2752 sja1105_ptp_txtstamp_skb(ds, port, clone); 2753 2754 mutex_unlock(&priv->mgmt_lock); 2755 2756 kfree(xmit_work); 2757 } 2758 2759 static int sja1105_connect_tag_protocol(struct dsa_switch *ds, 2760 enum dsa_tag_protocol proto) 2761 { 2762 struct sja1105_private *priv = ds->priv; 2763 struct sja1105_tagger_data *tagger_data; 2764 2765 if (proto != priv->info->tag_proto) 2766 return -EPROTONOSUPPORT; 2767 2768 tagger_data = sja1105_tagger_data(ds); 2769 tagger_data->xmit_work_fn = sja1105_port_deferred_xmit; 2770 tagger_data->meta_tstamp_handler = sja1110_process_meta_tstamp; 2771 2772 return 0; 2773 } 2774 2775 /* The MAXAGE setting belongs to the L2 Forwarding Parameters table, 2776 * which cannot be reconfigured at runtime. So a switch reset is required. 2777 */ 2778 static int sja1105_set_ageing_time(struct dsa_switch *ds, 2779 unsigned int ageing_time) 2780 { 2781 struct sja1105_l2_lookup_params_entry *l2_lookup_params; 2782 struct sja1105_private *priv = ds->priv; 2783 struct sja1105_table *table; 2784 unsigned int maxage; 2785 2786 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP_PARAMS]; 2787 l2_lookup_params = table->entries; 2788 2789 maxage = SJA1105_AGEING_TIME_MS(ageing_time); 2790 2791 if (l2_lookup_params->maxage == maxage) 2792 return 0; 2793 2794 l2_lookup_params->maxage = maxage; 2795 2796 return sja1105_static_config_reload(priv, SJA1105_AGEING_TIME); 2797 } 2798 2799 static int sja1105_change_mtu(struct dsa_switch *ds, int port, int new_mtu) 2800 { 2801 struct sja1105_l2_policing_entry *policing; 2802 struct sja1105_private *priv = ds->priv; 2803 2804 new_mtu += VLAN_ETH_HLEN + ETH_FCS_LEN; 2805 2806 if (dsa_is_cpu_port(ds, port) || dsa_is_dsa_port(ds, port)) 2807 new_mtu += VLAN_HLEN; 2808 2809 policing = priv->static_config.tables[BLK_IDX_L2_POLICING].entries; 2810 2811 if (policing[port].maxlen == new_mtu) 2812 return 0; 2813 2814 policing[port].maxlen = new_mtu; 2815 2816 return sja1105_static_config_reload(priv, SJA1105_BEST_EFFORT_POLICING); 2817 } 2818 2819 static int sja1105_get_max_mtu(struct dsa_switch *ds, int port) 2820 { 2821 return 2043 - VLAN_ETH_HLEN - ETH_FCS_LEN; 2822 } 2823 2824 static int sja1105_port_setup_tc(struct dsa_switch *ds, int port, 2825 enum tc_setup_type type, 2826 void *type_data) 2827 { 2828 switch (type) { 2829 case TC_SETUP_QDISC_TAPRIO: 2830 return sja1105_setup_tc_taprio(ds, port, type_data); 2831 case TC_SETUP_QDISC_CBS: 2832 return sja1105_setup_tc_cbs(ds, port, type_data); 2833 default: 2834 return -EOPNOTSUPP; 2835 } 2836 } 2837 2838 /* We have a single mirror (@to) port, but can configure ingress and egress 2839 * mirroring on all other (@from) ports. 2840 * We need to allow mirroring rules only as long as the @to port is always the 2841 * same, and we need to unset the @to port from mirr_port only when there is no 2842 * mirroring rule that references it. 2843 */ 2844 static int sja1105_mirror_apply(struct sja1105_private *priv, int from, int to, 2845 bool ingress, bool enabled) 2846 { 2847 struct sja1105_general_params_entry *general_params; 2848 struct sja1105_mac_config_entry *mac; 2849 struct dsa_switch *ds = priv->ds; 2850 struct sja1105_table *table; 2851 bool already_enabled; 2852 u64 new_mirr_port; 2853 int rc; 2854 2855 table = &priv->static_config.tables[BLK_IDX_GENERAL_PARAMS]; 2856 general_params = table->entries; 2857 2858 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 2859 2860 already_enabled = (general_params->mirr_port != ds->num_ports); 2861 if (already_enabled && enabled && general_params->mirr_port != to) { 2862 dev_err(priv->ds->dev, 2863 "Delete mirroring rules towards port %llu first\n", 2864 general_params->mirr_port); 2865 return -EBUSY; 2866 } 2867 2868 new_mirr_port = to; 2869 if (!enabled) { 2870 bool keep = false; 2871 int port; 2872 2873 /* Anybody still referencing mirr_port? */ 2874 for (port = 0; port < ds->num_ports; port++) { 2875 if (mac[port].ing_mirr || mac[port].egr_mirr) { 2876 keep = true; 2877 break; 2878 } 2879 } 2880 /* Unset already_enabled for next time */ 2881 if (!keep) 2882 new_mirr_port = ds->num_ports; 2883 } 2884 if (new_mirr_port != general_params->mirr_port) { 2885 general_params->mirr_port = new_mirr_port; 2886 2887 rc = sja1105_dynamic_config_write(priv, BLK_IDX_GENERAL_PARAMS, 2888 0, general_params, true); 2889 if (rc < 0) 2890 return rc; 2891 } 2892 2893 if (ingress) 2894 mac[from].ing_mirr = enabled; 2895 else 2896 mac[from].egr_mirr = enabled; 2897 2898 return sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, from, 2899 &mac[from], true); 2900 } 2901 2902 static int sja1105_mirror_add(struct dsa_switch *ds, int port, 2903 struct dsa_mall_mirror_tc_entry *mirror, 2904 bool ingress, struct netlink_ext_ack *extack) 2905 { 2906 return sja1105_mirror_apply(ds->priv, port, mirror->to_local_port, 2907 ingress, true); 2908 } 2909 2910 static void sja1105_mirror_del(struct dsa_switch *ds, int port, 2911 struct dsa_mall_mirror_tc_entry *mirror) 2912 { 2913 sja1105_mirror_apply(ds->priv, port, mirror->to_local_port, 2914 mirror->ingress, false); 2915 } 2916 2917 static int sja1105_port_policer_add(struct dsa_switch *ds, int port, 2918 struct dsa_mall_policer_tc_entry *policer) 2919 { 2920 struct sja1105_l2_policing_entry *policing; 2921 struct sja1105_private *priv = ds->priv; 2922 2923 policing = priv->static_config.tables[BLK_IDX_L2_POLICING].entries; 2924 2925 /* In hardware, every 8 microseconds the credit level is incremented by 2926 * the value of RATE bytes divided by 64, up to a maximum of SMAX 2927 * bytes. 2928 */ 2929 policing[port].rate = div_u64(512 * policer->rate_bytes_per_sec, 2930 1000000); 2931 policing[port].smax = policer->burst; 2932 2933 return sja1105_static_config_reload(priv, SJA1105_BEST_EFFORT_POLICING); 2934 } 2935 2936 static void sja1105_port_policer_del(struct dsa_switch *ds, int port) 2937 { 2938 struct sja1105_l2_policing_entry *policing; 2939 struct sja1105_private *priv = ds->priv; 2940 2941 policing = priv->static_config.tables[BLK_IDX_L2_POLICING].entries; 2942 2943 policing[port].rate = SJA1105_RATE_MBPS(1000); 2944 policing[port].smax = 65535; 2945 2946 sja1105_static_config_reload(priv, SJA1105_BEST_EFFORT_POLICING); 2947 } 2948 2949 static int sja1105_port_set_learning(struct sja1105_private *priv, int port, 2950 bool enabled) 2951 { 2952 struct sja1105_mac_config_entry *mac; 2953 2954 mac = priv->static_config.tables[BLK_IDX_MAC_CONFIG].entries; 2955 2956 mac[port].dyn_learn = enabled; 2957 2958 return sja1105_dynamic_config_write(priv, BLK_IDX_MAC_CONFIG, port, 2959 &mac[port], true); 2960 } 2961 2962 static int sja1105_port_ucast_bcast_flood(struct sja1105_private *priv, int to, 2963 struct switchdev_brport_flags flags) 2964 { 2965 if (flags.mask & BR_FLOOD) { 2966 if (flags.val & BR_FLOOD) 2967 priv->ucast_egress_floods |= BIT(to); 2968 else 2969 priv->ucast_egress_floods &= ~BIT(to); 2970 } 2971 2972 if (flags.mask & BR_BCAST_FLOOD) { 2973 if (flags.val & BR_BCAST_FLOOD) 2974 priv->bcast_egress_floods |= BIT(to); 2975 else 2976 priv->bcast_egress_floods &= ~BIT(to); 2977 } 2978 2979 return sja1105_manage_flood_domains(priv); 2980 } 2981 2982 static int sja1105_port_mcast_flood(struct sja1105_private *priv, int to, 2983 struct switchdev_brport_flags flags, 2984 struct netlink_ext_ack *extack) 2985 { 2986 struct sja1105_l2_lookup_entry *l2_lookup; 2987 struct sja1105_table *table; 2988 int match, rc; 2989 2990 mutex_lock(&priv->fdb_lock); 2991 2992 table = &priv->static_config.tables[BLK_IDX_L2_LOOKUP]; 2993 l2_lookup = table->entries; 2994 2995 for (match = 0; match < table->entry_count; match++) 2996 if (l2_lookup[match].macaddr == SJA1105_UNKNOWN_MULTICAST && 2997 l2_lookup[match].mask_macaddr == SJA1105_UNKNOWN_MULTICAST) 2998 break; 2999 3000 if (match == table->entry_count) { 3001 NL_SET_ERR_MSG_MOD(extack, 3002 "Could not find FDB entry for unknown multicast"); 3003 rc = -ENOSPC; 3004 goto out; 3005 } 3006 3007 if (flags.val & BR_MCAST_FLOOD) 3008 l2_lookup[match].destports |= BIT(to); 3009 else 3010 l2_lookup[match].destports &= ~BIT(to); 3011 3012 rc = sja1105_dynamic_config_write(priv, BLK_IDX_L2_LOOKUP, 3013 l2_lookup[match].index, 3014 &l2_lookup[match], true); 3015 out: 3016 mutex_unlock(&priv->fdb_lock); 3017 3018 return rc; 3019 } 3020 3021 static int sja1105_port_pre_bridge_flags(struct dsa_switch *ds, int port, 3022 struct switchdev_brport_flags flags, 3023 struct netlink_ext_ack *extack) 3024 { 3025 struct sja1105_private *priv = ds->priv; 3026 3027 if (flags.mask & ~(BR_LEARNING | BR_FLOOD | BR_MCAST_FLOOD | 3028 BR_BCAST_FLOOD)) 3029 return -EINVAL; 3030 3031 if (flags.mask & (BR_FLOOD | BR_MCAST_FLOOD) && 3032 !priv->info->can_limit_mcast_flood) { 3033 bool multicast = !!(flags.val & BR_MCAST_FLOOD); 3034 bool unicast = !!(flags.val & BR_FLOOD); 3035 3036 if (unicast != multicast) { 3037 NL_SET_ERR_MSG_MOD(extack, 3038 "This chip cannot configure multicast flooding independently of unicast"); 3039 return -EINVAL; 3040 } 3041 } 3042 3043 return 0; 3044 } 3045 3046 static int sja1105_port_bridge_flags(struct dsa_switch *ds, int port, 3047 struct switchdev_brport_flags flags, 3048 struct netlink_ext_ack *extack) 3049 { 3050 struct sja1105_private *priv = ds->priv; 3051 int rc; 3052 3053 if (flags.mask & BR_LEARNING) { 3054 bool learn_ena = !!(flags.val & BR_LEARNING); 3055 3056 rc = sja1105_port_set_learning(priv, port, learn_ena); 3057 if (rc) 3058 return rc; 3059 } 3060 3061 if (flags.mask & (BR_FLOOD | BR_BCAST_FLOOD)) { 3062 rc = sja1105_port_ucast_bcast_flood(priv, port, flags); 3063 if (rc) 3064 return rc; 3065 } 3066 3067 /* For chips that can't offload BR_MCAST_FLOOD independently, there 3068 * is nothing to do here, we ensured the configuration is in sync by 3069 * offloading BR_FLOOD. 3070 */ 3071 if (flags.mask & BR_MCAST_FLOOD && priv->info->can_limit_mcast_flood) { 3072 rc = sja1105_port_mcast_flood(priv, port, flags, 3073 extack); 3074 if (rc) 3075 return rc; 3076 } 3077 3078 return 0; 3079 } 3080 3081 /* The programming model for the SJA1105 switch is "all-at-once" via static 3082 * configuration tables. Some of these can be dynamically modified at runtime, 3083 * but not the xMII mode parameters table. 3084 * Furthermode, some PHYs may not have crystals for generating their clocks 3085 * (e.g. RMII). Instead, their 50MHz clock is supplied via the SJA1105 port's 3086 * ref_clk pin. So port clocking needs to be initialized early, before 3087 * connecting to PHYs is attempted, otherwise they won't respond through MDIO. 3088 * Setting correct PHY link speed does not matter now. 3089 * But dsa_user_phy_setup is called later than sja1105_setup, so the PHY 3090 * bindings are not yet parsed by DSA core. We need to parse early so that we 3091 * can populate the xMII mode parameters table. 3092 */ 3093 static int sja1105_setup(struct dsa_switch *ds) 3094 { 3095 struct sja1105_private *priv = ds->priv; 3096 int rc; 3097 3098 if (priv->info->disable_microcontroller) { 3099 rc = priv->info->disable_microcontroller(priv); 3100 if (rc < 0) { 3101 dev_err(ds->dev, 3102 "Failed to disable microcontroller: %pe\n", 3103 ERR_PTR(rc)); 3104 return rc; 3105 } 3106 } 3107 3108 /* Create and send configuration down to device */ 3109 rc = sja1105_static_config_load(priv); 3110 if (rc < 0) { 3111 dev_err(ds->dev, "Failed to load static config: %d\n", rc); 3112 return rc; 3113 } 3114 3115 /* Configure the CGU (PHY link modes and speeds) */ 3116 if (priv->info->clocking_setup) { 3117 rc = priv->info->clocking_setup(priv); 3118 if (rc < 0) { 3119 dev_err(ds->dev, 3120 "Failed to configure MII clocking: %pe\n", 3121 ERR_PTR(rc)); 3122 goto out_static_config_free; 3123 } 3124 } 3125 3126 sja1105_tas_setup(ds); 3127 sja1105_flower_setup(ds); 3128 3129 rc = sja1105_ptp_clock_register(ds); 3130 if (rc < 0) { 3131 dev_err(ds->dev, "Failed to register PTP clock: %d\n", rc); 3132 goto out_flower_teardown; 3133 } 3134 3135 rc = sja1105_mdiobus_register(ds); 3136 if (rc < 0) { 3137 dev_err(ds->dev, "Failed to register MDIO bus: %pe\n", 3138 ERR_PTR(rc)); 3139 goto out_ptp_clock_unregister; 3140 } 3141 3142 rc = sja1105_devlink_setup(ds); 3143 if (rc < 0) 3144 goto out_mdiobus_unregister; 3145 3146 rtnl_lock(); 3147 rc = dsa_tag_8021q_register(ds, htons(ETH_P_8021Q)); 3148 rtnl_unlock(); 3149 if (rc) 3150 goto out_devlink_teardown; 3151 3152 /* On SJA1105, VLAN filtering per se is always enabled in hardware. 3153 * The only thing we can do to disable it is lie about what the 802.1Q 3154 * EtherType is. 3155 * So it will still try to apply VLAN filtering, but all ingress 3156 * traffic (except frames received with EtherType of ETH_P_SJA1105) 3157 * will be internally tagged with a distorted VLAN header where the 3158 * TPID is ETH_P_SJA1105, and the VLAN ID is the port pvid. 3159 */ 3160 ds->vlan_filtering_is_global = true; 3161 ds->fdb_isolation = true; 3162 ds->max_num_bridges = DSA_TAG_8021Q_MAX_NUM_BRIDGES; 3163 3164 /* Advertise the 8 egress queues */ 3165 ds->num_tx_queues = SJA1105_NUM_TC; 3166 3167 ds->mtu_enforcement_ingress = true; 3168 ds->assisted_learning_on_cpu_port = true; 3169 3170 return 0; 3171 3172 out_devlink_teardown: 3173 sja1105_devlink_teardown(ds); 3174 out_mdiobus_unregister: 3175 sja1105_mdiobus_unregister(ds); 3176 out_ptp_clock_unregister: 3177 sja1105_ptp_clock_unregister(ds); 3178 out_flower_teardown: 3179 sja1105_flower_teardown(ds); 3180 sja1105_tas_teardown(ds); 3181 out_static_config_free: 3182 sja1105_static_config_free(&priv->static_config); 3183 3184 return rc; 3185 } 3186 3187 static void sja1105_teardown(struct dsa_switch *ds) 3188 { 3189 struct sja1105_private *priv = ds->priv; 3190 3191 rtnl_lock(); 3192 dsa_tag_8021q_unregister(ds); 3193 rtnl_unlock(); 3194 3195 sja1105_devlink_teardown(ds); 3196 sja1105_mdiobus_unregister(ds); 3197 sja1105_ptp_clock_unregister(ds); 3198 sja1105_flower_teardown(ds); 3199 sja1105_tas_teardown(ds); 3200 sja1105_static_config_free(&priv->static_config); 3201 } 3202 3203 static const struct phylink_mac_ops sja1105_phylink_mac_ops = { 3204 .mac_select_pcs = sja1105_mac_select_pcs, 3205 .mac_config = sja1105_mac_config, 3206 .mac_link_up = sja1105_mac_link_up, 3207 .mac_link_down = sja1105_mac_link_down, 3208 }; 3209 3210 static const struct dsa_switch_ops sja1105_switch_ops = { 3211 .get_tag_protocol = sja1105_get_tag_protocol, 3212 .connect_tag_protocol = sja1105_connect_tag_protocol, 3213 .setup = sja1105_setup, 3214 .teardown = sja1105_teardown, 3215 .set_ageing_time = sja1105_set_ageing_time, 3216 .port_change_mtu = sja1105_change_mtu, 3217 .port_max_mtu = sja1105_get_max_mtu, 3218 .phylink_get_caps = sja1105_phylink_get_caps, 3219 .get_strings = sja1105_get_strings, 3220 .get_ethtool_stats = sja1105_get_ethtool_stats, 3221 .get_sset_count = sja1105_get_sset_count, 3222 .get_ts_info = sja1105_get_ts_info, 3223 .port_fdb_dump = sja1105_fdb_dump, 3224 .port_fdb_add = sja1105_fdb_add, 3225 .port_fdb_del = sja1105_fdb_del, 3226 .port_fast_age = sja1105_fast_age, 3227 .port_bridge_join = sja1105_bridge_join, 3228 .port_bridge_leave = sja1105_bridge_leave, 3229 .port_pre_bridge_flags = sja1105_port_pre_bridge_flags, 3230 .port_bridge_flags = sja1105_port_bridge_flags, 3231 .port_stp_state_set = sja1105_bridge_stp_state_set, 3232 .port_vlan_filtering = sja1105_vlan_filtering, 3233 .port_vlan_add = sja1105_bridge_vlan_add, 3234 .port_vlan_del = sja1105_bridge_vlan_del, 3235 .port_mdb_add = sja1105_mdb_add, 3236 .port_mdb_del = sja1105_mdb_del, 3237 .port_hwtstamp_get = sja1105_hwtstamp_get, 3238 .port_hwtstamp_set = sja1105_hwtstamp_set, 3239 .port_rxtstamp = sja1105_port_rxtstamp, 3240 .port_txtstamp = sja1105_port_txtstamp, 3241 .port_setup_tc = sja1105_port_setup_tc, 3242 .port_mirror_add = sja1105_mirror_add, 3243 .port_mirror_del = sja1105_mirror_del, 3244 .port_policer_add = sja1105_port_policer_add, 3245 .port_policer_del = sja1105_port_policer_del, 3246 .cls_flower_add = sja1105_cls_flower_add, 3247 .cls_flower_del = sja1105_cls_flower_del, 3248 .cls_flower_stats = sja1105_cls_flower_stats, 3249 .devlink_info_get = sja1105_devlink_info_get, 3250 .tag_8021q_vlan_add = sja1105_dsa_8021q_vlan_add, 3251 .tag_8021q_vlan_del = sja1105_dsa_8021q_vlan_del, 3252 .port_prechangeupper = sja1105_prechangeupper, 3253 }; 3254 3255 static const struct of_device_id sja1105_dt_ids[]; 3256 3257 static int sja1105_check_device_id(struct sja1105_private *priv) 3258 { 3259 const struct sja1105_regs *regs = priv->info->regs; 3260 u8 prod_id[SJA1105_SIZE_DEVICE_ID] = {0}; 3261 struct device *dev = &priv->spidev->dev; 3262 const struct of_device_id *match; 3263 u32 device_id; 3264 u64 part_no; 3265 int rc; 3266 3267 rc = sja1105_xfer_u32(priv, SPI_READ, regs->device_id, &device_id, 3268 NULL); 3269 if (rc < 0) 3270 return rc; 3271 3272 rc = sja1105_xfer_buf(priv, SPI_READ, regs->prod_id, prod_id, 3273 SJA1105_SIZE_DEVICE_ID); 3274 if (rc < 0) 3275 return rc; 3276 3277 sja1105_unpack(prod_id, &part_no, 19, 4, SJA1105_SIZE_DEVICE_ID); 3278 3279 for (match = sja1105_dt_ids; match->compatible[0]; match++) { 3280 const struct sja1105_info *info = match->data; 3281 3282 /* Is what's been probed in our match table at all? */ 3283 if (info->device_id != device_id || info->part_no != part_no) 3284 continue; 3285 3286 /* But is it what's in the device tree? */ 3287 if (priv->info->device_id != device_id || 3288 priv->info->part_no != part_no) { 3289 dev_warn(dev, "Device tree specifies chip %s but found %s, please fix it!\n", 3290 priv->info->name, info->name); 3291 /* It isn't. No problem, pick that up. */ 3292 priv->info = info; 3293 } 3294 3295 return 0; 3296 } 3297 3298 dev_err(dev, "Unexpected {device ID, part number}: 0x%x 0x%llx\n", 3299 device_id, part_no); 3300 3301 return -ENODEV; 3302 } 3303 3304 static int sja1105_probe(struct spi_device *spi) 3305 { 3306 struct device *dev = &spi->dev; 3307 struct sja1105_private *priv; 3308 size_t max_xfer, max_msg; 3309 struct dsa_switch *ds; 3310 int rc; 3311 3312 if (!dev->of_node) { 3313 dev_err(dev, "No DTS bindings for SJA1105 driver\n"); 3314 return -EINVAL; 3315 } 3316 3317 rc = sja1105_hw_reset(dev, 1, 1); 3318 if (rc) 3319 return rc; 3320 3321 priv = devm_kzalloc(dev, sizeof(struct sja1105_private), GFP_KERNEL); 3322 if (!priv) 3323 return -ENOMEM; 3324 3325 /* Populate our driver private structure (priv) based on 3326 * the device tree node that was probed (spi) 3327 */ 3328 priv->spidev = spi; 3329 spi_set_drvdata(spi, priv); 3330 3331 /* Configure the SPI bus */ 3332 spi->bits_per_word = 8; 3333 rc = spi_setup(spi); 3334 if (rc < 0) { 3335 dev_err(dev, "Could not init SPI\n"); 3336 return rc; 3337 } 3338 3339 /* In sja1105_xfer, we send spi_messages composed of two spi_transfers: 3340 * a small one for the message header and another one for the current 3341 * chunk of the packed buffer. 3342 * Check that the restrictions imposed by the SPI controller are 3343 * respected: the chunk buffer is smaller than the max transfer size, 3344 * and the total length of the chunk plus its message header is smaller 3345 * than the max message size. 3346 * We do that during probe time since the maximum transfer size is a 3347 * runtime invariant. 3348 */ 3349 max_xfer = spi_max_transfer_size(spi); 3350 max_msg = spi_max_message_size(spi); 3351 3352 /* We need to send at least one 64-bit word of SPI payload per message 3353 * in order to be able to make useful progress. 3354 */ 3355 if (max_msg < SJA1105_SIZE_SPI_MSG_HEADER + 8) { 3356 dev_err(dev, "SPI master cannot send large enough buffers, aborting\n"); 3357 return -EINVAL; 3358 } 3359 3360 priv->max_xfer_len = SJA1105_SIZE_SPI_MSG_MAXLEN; 3361 if (priv->max_xfer_len > max_xfer) 3362 priv->max_xfer_len = max_xfer; 3363 if (priv->max_xfer_len > max_msg - SJA1105_SIZE_SPI_MSG_HEADER) 3364 priv->max_xfer_len = max_msg - SJA1105_SIZE_SPI_MSG_HEADER; 3365 3366 priv->info = of_device_get_match_data(dev); 3367 3368 /* Detect hardware device */ 3369 rc = sja1105_check_device_id(priv); 3370 if (rc < 0) { 3371 dev_err(dev, "Device ID check failed: %d\n", rc); 3372 return rc; 3373 } 3374 3375 dev_info(dev, "Probed switch chip: %s\n", priv->info->name); 3376 3377 ds = devm_kzalloc(dev, sizeof(*ds), GFP_KERNEL); 3378 if (!ds) 3379 return -ENOMEM; 3380 3381 ds->dev = dev; 3382 ds->num_ports = priv->info->num_ports; 3383 ds->ops = &sja1105_switch_ops; 3384 ds->phylink_mac_ops = &sja1105_phylink_mac_ops; 3385 ds->priv = priv; 3386 priv->ds = ds; 3387 3388 mutex_init(&priv->ptp_data.lock); 3389 mutex_init(&priv->dynamic_config_lock); 3390 mutex_init(&priv->mgmt_lock); 3391 mutex_init(&priv->fdb_lock); 3392 spin_lock_init(&priv->ts_id_lock); 3393 3394 rc = sja1105_parse_dt(priv); 3395 if (rc < 0) { 3396 dev_err(ds->dev, "Failed to parse DT: %d\n", rc); 3397 return rc; 3398 } 3399 3400 if (IS_ENABLED(CONFIG_NET_SCH_CBS)) { 3401 priv->cbs = devm_kcalloc(dev, priv->info->num_cbs_shapers, 3402 sizeof(struct sja1105_cbs_entry), 3403 GFP_KERNEL); 3404 if (!priv->cbs) 3405 return -ENOMEM; 3406 } 3407 3408 return dsa_register_switch(priv->ds); 3409 } 3410 3411 static void sja1105_remove(struct spi_device *spi) 3412 { 3413 struct sja1105_private *priv = spi_get_drvdata(spi); 3414 3415 if (!priv) 3416 return; 3417 3418 dsa_unregister_switch(priv->ds); 3419 } 3420 3421 static void sja1105_shutdown(struct spi_device *spi) 3422 { 3423 struct sja1105_private *priv = spi_get_drvdata(spi); 3424 3425 if (!priv) 3426 return; 3427 3428 dsa_switch_shutdown(priv->ds); 3429 3430 spi_set_drvdata(spi, NULL); 3431 } 3432 3433 static const struct of_device_id sja1105_dt_ids[] = { 3434 { .compatible = "nxp,sja1105e", .data = &sja1105e_info }, 3435 { .compatible = "nxp,sja1105t", .data = &sja1105t_info }, 3436 { .compatible = "nxp,sja1105p", .data = &sja1105p_info }, 3437 { .compatible = "nxp,sja1105q", .data = &sja1105q_info }, 3438 { .compatible = "nxp,sja1105r", .data = &sja1105r_info }, 3439 { .compatible = "nxp,sja1105s", .data = &sja1105s_info }, 3440 { .compatible = "nxp,sja1110a", .data = &sja1110a_info }, 3441 { .compatible = "nxp,sja1110b", .data = &sja1110b_info }, 3442 { .compatible = "nxp,sja1110c", .data = &sja1110c_info }, 3443 { .compatible = "nxp,sja1110d", .data = &sja1110d_info }, 3444 { /* sentinel */ }, 3445 }; 3446 MODULE_DEVICE_TABLE(of, sja1105_dt_ids); 3447 3448 static const struct spi_device_id sja1105_spi_ids[] = { 3449 { "sja1105e" }, 3450 { "sja1105t" }, 3451 { "sja1105p" }, 3452 { "sja1105q" }, 3453 { "sja1105r" }, 3454 { "sja1105s" }, 3455 { "sja1110a" }, 3456 { "sja1110b" }, 3457 { "sja1110c" }, 3458 { "sja1110d" }, 3459 { }, 3460 }; 3461 MODULE_DEVICE_TABLE(spi, sja1105_spi_ids); 3462 3463 static struct spi_driver sja1105_driver = { 3464 .driver = { 3465 .name = "sja1105", 3466 .of_match_table = of_match_ptr(sja1105_dt_ids), 3467 }, 3468 .id_table = sja1105_spi_ids, 3469 .probe = sja1105_probe, 3470 .remove = sja1105_remove, 3471 .shutdown = sja1105_shutdown, 3472 }; 3473 3474 module_spi_driver(sja1105_driver); 3475 3476 MODULE_AUTHOR("Vladimir Oltean <olteanv@gmail.com>"); 3477 MODULE_AUTHOR("Georg Waibel <georg.waibel@sensor-technik.de>"); 3478 MODULE_DESCRIPTION("SJA1105 Driver"); 3479 MODULE_LICENSE("GPL v2"); 3480