1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Internal Thunderbolt Connection Manager. This is a firmware running on 4 * the Thunderbolt host controller performing most of the low-level 5 * handling. 6 * 7 * Copyright (C) 2017, Intel Corporation 8 * Authors: Michael Jamet <michael.jamet@intel.com> 9 * Mika Westerberg <mika.westerberg@linux.intel.com> 10 */ 11 12 #include <linux/delay.h> 13 #include <linux/mutex.h> 14 #include <linux/moduleparam.h> 15 #include <linux/pci.h> 16 #include <linux/pm_runtime.h> 17 #include <linux/platform_data/x86/apple.h> 18 #include <linux/sizes.h> 19 #include <linux/slab.h> 20 #include <linux/workqueue.h> 21 22 #include "ctl.h" 23 #include "nhi_regs.h" 24 #include "tb.h" 25 #include "tunnel.h" 26 27 #define PCIE2CIO_CMD 0x30 28 #define PCIE2CIO_CMD_TIMEOUT BIT(31) 29 #define PCIE2CIO_CMD_START BIT(30) 30 #define PCIE2CIO_CMD_WRITE BIT(21) 31 #define PCIE2CIO_CMD_CS_MASK GENMASK(20, 19) 32 #define PCIE2CIO_CMD_CS_SHIFT 19 33 #define PCIE2CIO_CMD_PORT_MASK GENMASK(18, 13) 34 #define PCIE2CIO_CMD_PORT_SHIFT 13 35 36 #define PCIE2CIO_WRDATA 0x34 37 #define PCIE2CIO_RDDATA 0x38 38 39 #define PHY_PORT_CS1 0x37 40 #define PHY_PORT_CS1_LINK_DISABLE BIT(14) 41 #define PHY_PORT_CS1_LINK_STATE_MASK GENMASK(29, 26) 42 #define PHY_PORT_CS1_LINK_STATE_SHIFT 26 43 44 #define ICM_TIMEOUT 5000 /* ms */ 45 #define ICM_RETRIES 3 46 #define ICM_APPROVE_TIMEOUT 10000 /* ms */ 47 #define ICM_MAX_LINK 4 48 49 static bool start_icm; 50 module_param(start_icm, bool, 0444); 51 MODULE_PARM_DESC(start_icm, "start ICM firmware if it is not running (default: false)"); 52 53 /** 54 * struct usb4_switch_nvm_auth - Holds USB4 NVM_AUTH status 55 * @reply: Reply from ICM firmware is placed here 56 * @request: Request that is sent to ICM firmware 57 * @icm: Pointer to ICM private data 58 */ 59 struct usb4_switch_nvm_auth { 60 struct icm_usb4_switch_op_response reply; 61 struct icm_usb4_switch_op request; 62 struct icm *icm; 63 }; 64 65 /** 66 * struct icm - Internal connection manager private data 67 * @request_lock: Makes sure only one message is send to ICM at time 68 * @rescan_work: Work used to rescan the surviving switches after resume 69 * @upstream_port: Pointer to the PCIe upstream port this host 70 * controller is connected. This is only set for systems 71 * where ICM needs to be started manually 72 * @vnd_cap: Vendor defined capability where PCIe2CIO mailbox resides 73 * (only set when @upstream_port is not %NULL) 74 * @safe_mode: ICM is in safe mode 75 * @max_boot_acl: Maximum number of preboot ACL entries (%0 if not supported) 76 * @rpm: Does the controller support runtime PM (RTD3) 77 * @can_upgrade_nvm: Can the NVM firmware be upgrade on this controller 78 * @proto_version: Firmware protocol version 79 * @last_nvm_auth: Last USB4 router NVM_AUTH result (or %NULL if not set) 80 * @veto: Is RTD3 veto in effect 81 * @is_supported: Checks if we can support ICM on this controller 82 * @cio_reset: Trigger CIO reset 83 * @get_mode: Read and return the ICM firmware mode (optional) 84 * @get_route: Find a route string for given switch 85 * @save_devices: Ask ICM to save devices to ACL when suspending (optional) 86 * @driver_ready: Send driver ready message to ICM 87 * @set_uuid: Set UUID for the root switch (optional) 88 * @device_connected: Handle device connected ICM message 89 * @device_disconnected: Handle device disconnected ICM message 90 * @xdomain_connected: Handle XDomain connected ICM message 91 * @xdomain_disconnected: Handle XDomain disconnected ICM message 92 * @rtd3_veto: Handle RTD3 veto notification ICM message 93 */ 94 struct icm { 95 struct mutex request_lock; 96 struct delayed_work rescan_work; 97 struct pci_dev *upstream_port; 98 int vnd_cap; 99 bool safe_mode; 100 size_t max_boot_acl; 101 bool rpm; 102 bool can_upgrade_nvm; 103 u8 proto_version; 104 struct usb4_switch_nvm_auth *last_nvm_auth; 105 bool veto; 106 bool (*is_supported)(struct tb *tb); 107 int (*cio_reset)(struct tb *tb); 108 int (*get_mode)(struct tb *tb); 109 int (*get_route)(struct tb *tb, u8 link, u8 depth, u64 *route); 110 void (*save_devices)(struct tb *tb); 111 int (*driver_ready)(struct tb *tb, 112 enum tb_security_level *security_level, 113 u8 *proto_version, size_t *nboot_acl, bool *rpm); 114 void (*set_uuid)(struct tb *tb); 115 void (*device_connected)(struct tb *tb, 116 const struct icm_pkg_header *hdr); 117 void (*device_disconnected)(struct tb *tb, 118 const struct icm_pkg_header *hdr); 119 void (*xdomain_connected)(struct tb *tb, 120 const struct icm_pkg_header *hdr); 121 void (*xdomain_disconnected)(struct tb *tb, 122 const struct icm_pkg_header *hdr); 123 void (*rtd3_veto)(struct tb *tb, const struct icm_pkg_header *hdr); 124 }; 125 126 struct icm_notification { 127 struct work_struct work; 128 struct icm_pkg_header *pkg; 129 struct tb *tb; 130 }; 131 132 struct ep_name_entry { 133 u8 len; 134 u8 type; 135 u8 data[]; 136 }; 137 138 #define EP_NAME_INTEL_VSS 0x10 139 140 /* Intel Vendor specific structure */ 141 struct intel_vss { 142 u16 vendor; 143 u16 model; 144 u8 mc; 145 u8 flags; 146 u16 pci_devid; 147 u32 nvm_version; 148 }; 149 150 #define INTEL_VSS_FLAGS_RTD3 BIT(0) 151 152 static const struct intel_vss *parse_intel_vss(const void *ep_name, size_t size) 153 { 154 const void *end = ep_name + size; 155 156 while (ep_name < end) { 157 const struct ep_name_entry *ep = ep_name; 158 159 if (!ep->len) 160 break; 161 if (ep_name + ep->len > end) 162 break; 163 164 if (ep->type == EP_NAME_INTEL_VSS) 165 return (const struct intel_vss *)ep->data; 166 167 ep_name += ep->len; 168 } 169 170 return NULL; 171 } 172 173 static bool intel_vss_is_rtd3(const void *ep_name, size_t size) 174 { 175 const struct intel_vss *vss; 176 177 vss = parse_intel_vss(ep_name, size); 178 if (vss) 179 return !!(vss->flags & INTEL_VSS_FLAGS_RTD3); 180 181 return false; 182 } 183 184 static inline struct tb *icm_to_tb(struct icm *icm) 185 { 186 return ((void *)icm - sizeof(struct tb)); 187 } 188 189 static inline u8 phy_port_from_route(u64 route, u8 depth) 190 { 191 u8 link; 192 193 link = depth ? route >> ((depth - 1) * 8) : route; 194 return tb_phy_port_from_link(link); 195 } 196 197 static inline u8 dual_link_from_link(u8 link) 198 { 199 return link ? ((link - 1) ^ 0x01) + 1 : 0; 200 } 201 202 static inline u64 get_route(u32 route_hi, u32 route_lo) 203 { 204 return (u64)route_hi << 32 | route_lo; 205 } 206 207 static inline u64 get_parent_route(u64 route) 208 { 209 int depth = tb_route_length(route); 210 return depth ? route & ~(0xffULL << (depth - 1) * TB_ROUTE_SHIFT) : 0; 211 } 212 213 static int pci2cio_wait_completion(struct icm *icm, unsigned long timeout_msec) 214 { 215 unsigned long end = jiffies + msecs_to_jiffies(timeout_msec); 216 u32 cmd; 217 218 do { 219 pci_read_config_dword(icm->upstream_port, 220 icm->vnd_cap + PCIE2CIO_CMD, &cmd); 221 if (!(cmd & PCIE2CIO_CMD_START)) { 222 if (cmd & PCIE2CIO_CMD_TIMEOUT) 223 break; 224 return 0; 225 } 226 227 msleep(50); 228 } while (time_before(jiffies, end)); 229 230 return -ETIMEDOUT; 231 } 232 233 static int pcie2cio_read(struct icm *icm, enum tb_cfg_space cs, 234 unsigned int port, unsigned int index, u32 *data) 235 { 236 struct pci_dev *pdev = icm->upstream_port; 237 int ret, vnd_cap = icm->vnd_cap; 238 u32 cmd; 239 240 cmd = index; 241 cmd |= (port << PCIE2CIO_CMD_PORT_SHIFT) & PCIE2CIO_CMD_PORT_MASK; 242 cmd |= (cs << PCIE2CIO_CMD_CS_SHIFT) & PCIE2CIO_CMD_CS_MASK; 243 cmd |= PCIE2CIO_CMD_START; 244 pci_write_config_dword(pdev, vnd_cap + PCIE2CIO_CMD, cmd); 245 246 ret = pci2cio_wait_completion(icm, 5000); 247 if (ret) 248 return ret; 249 250 pci_read_config_dword(pdev, vnd_cap + PCIE2CIO_RDDATA, data); 251 return 0; 252 } 253 254 static int pcie2cio_write(struct icm *icm, enum tb_cfg_space cs, 255 unsigned int port, unsigned int index, u32 data) 256 { 257 struct pci_dev *pdev = icm->upstream_port; 258 int vnd_cap = icm->vnd_cap; 259 u32 cmd; 260 261 pci_write_config_dword(pdev, vnd_cap + PCIE2CIO_WRDATA, data); 262 263 cmd = index; 264 cmd |= (port << PCIE2CIO_CMD_PORT_SHIFT) & PCIE2CIO_CMD_PORT_MASK; 265 cmd |= (cs << PCIE2CIO_CMD_CS_SHIFT) & PCIE2CIO_CMD_CS_MASK; 266 cmd |= PCIE2CIO_CMD_WRITE | PCIE2CIO_CMD_START; 267 pci_write_config_dword(pdev, vnd_cap + PCIE2CIO_CMD, cmd); 268 269 return pci2cio_wait_completion(icm, 5000); 270 } 271 272 static bool icm_match(const struct tb_cfg_request *req, 273 const struct ctl_pkg *pkg) 274 { 275 const struct icm_pkg_header *res_hdr = pkg->buffer; 276 const struct icm_pkg_header *req_hdr = req->request; 277 278 if (pkg->frame.eof != req->response_type) 279 return false; 280 if (res_hdr->code != req_hdr->code) 281 return false; 282 283 return true; 284 } 285 286 static bool icm_copy(struct tb_cfg_request *req, const struct ctl_pkg *pkg) 287 { 288 const struct icm_pkg_header *hdr = pkg->buffer; 289 290 if (hdr->packet_id < req->npackets) { 291 size_t offset = hdr->packet_id * req->response_size; 292 293 memcpy(req->response + offset, pkg->buffer, req->response_size); 294 } 295 296 return hdr->packet_id == hdr->total_packets - 1; 297 } 298 299 static int icm_request(struct tb *tb, const void *request, size_t request_size, 300 void *response, size_t response_size, size_t npackets, 301 int retries, unsigned int timeout_msec) 302 { 303 struct icm *icm = tb_priv(tb); 304 305 do { 306 struct tb_cfg_request *req; 307 struct tb_cfg_result res; 308 309 req = tb_cfg_request_alloc(); 310 if (!req) 311 return -ENOMEM; 312 313 req->match = icm_match; 314 req->copy = icm_copy; 315 req->request = request; 316 req->request_size = request_size; 317 req->request_type = TB_CFG_PKG_ICM_CMD; 318 req->response = response; 319 req->npackets = npackets; 320 req->response_size = response_size; 321 req->response_type = TB_CFG_PKG_ICM_RESP; 322 323 mutex_lock(&icm->request_lock); 324 res = tb_cfg_request_sync(tb->ctl, req, timeout_msec); 325 mutex_unlock(&icm->request_lock); 326 327 tb_cfg_request_put(req); 328 329 if (res.err != -ETIMEDOUT) 330 return res.err == 1 ? -EIO : res.err; 331 332 usleep_range(20, 50); 333 } while (retries--); 334 335 return -ETIMEDOUT; 336 } 337 338 /* 339 * If rescan is queued to run (we are resuming), postpone it to give the 340 * firmware some more time to send device connected notifications for next 341 * devices in the chain. 342 */ 343 static void icm_postpone_rescan(struct tb *tb) 344 { 345 struct icm *icm = tb_priv(tb); 346 347 if (delayed_work_pending(&icm->rescan_work)) 348 mod_delayed_work(tb->wq, &icm->rescan_work, 349 msecs_to_jiffies(500)); 350 } 351 352 static void icm_veto_begin(struct tb *tb) 353 { 354 struct icm *icm = tb_priv(tb); 355 356 if (!icm->veto) { 357 icm->veto = true; 358 /* Keep the domain powered while veto is in effect */ 359 pm_runtime_get(&tb->dev); 360 } 361 } 362 363 static void icm_veto_end(struct tb *tb) 364 { 365 struct icm *icm = tb_priv(tb); 366 367 if (icm->veto) { 368 icm->veto = false; 369 /* Allow the domain suspend now */ 370 pm_runtime_mark_last_busy(&tb->dev); 371 pm_runtime_put_autosuspend(&tb->dev); 372 } 373 } 374 375 static bool icm_firmware_running(const struct tb_nhi *nhi) 376 { 377 u32 val; 378 379 val = ioread32(nhi->iobase + REG_FW_STS); 380 return !!(val & REG_FW_STS_ICM_EN); 381 } 382 383 static void icm_xdomain_activated(struct tb_xdomain *xd, bool activated) 384 { 385 struct tb_port *nhi_port, *dst_port; 386 struct tb *tb = xd->tb; 387 388 nhi_port = tb_switch_find_port(tb->root_switch, TB_TYPE_NHI); 389 dst_port = tb_xdomain_downstream_port(xd); 390 391 if (activated) 392 tb_tunnel_event(tb, TB_TUNNEL_ACTIVATED, TB_TUNNEL_DMA, 393 nhi_port, dst_port); 394 else 395 tb_tunnel_event(tb, TB_TUNNEL_DEACTIVATED, TB_TUNNEL_DMA, 396 nhi_port, dst_port); 397 } 398 399 static void icm_dp_event(struct tb *tb) 400 { 401 tb_tunnel_event(tb, TB_TUNNEL_CHANGED, TB_TUNNEL_DP, NULL, NULL); 402 } 403 404 static bool icm_fr_is_supported(struct tb *tb) 405 { 406 return !x86_apple_machine; 407 } 408 409 static inline int icm_fr_get_switch_index(u32 port) 410 { 411 int index; 412 413 if ((port & ICM_PORT_TYPE_MASK) != TB_TYPE_PORT) 414 return 0; 415 416 index = port >> ICM_PORT_INDEX_SHIFT; 417 return index != 0xff ? index : 0; 418 } 419 420 static int icm_fr_get_route(struct tb *tb, u8 link, u8 depth, u64 *route) 421 { 422 struct icm_fr_pkg_get_topology_response *switches, *sw; 423 struct icm_fr_pkg_get_topology request = { 424 .hdr = { .code = ICM_GET_TOPOLOGY }, 425 }; 426 size_t npackets = ICM_GET_TOPOLOGY_PACKETS; 427 int ret, index; 428 u8 i; 429 430 switches = kzalloc_objs(*switches, npackets); 431 if (!switches) 432 return -ENOMEM; 433 434 ret = icm_request(tb, &request, sizeof(request), switches, 435 sizeof(*switches), npackets, ICM_RETRIES, ICM_TIMEOUT); 436 if (ret) 437 goto err_free; 438 439 sw = &switches[0]; 440 index = icm_fr_get_switch_index(sw->ports[link]); 441 if (!index) { 442 ret = -ENODEV; 443 goto err_free; 444 } 445 446 sw = &switches[index]; 447 for (i = 1; i < depth; i++) { 448 unsigned int j; 449 450 if (!(sw->first_data & ICM_SWITCH_USED)) { 451 ret = -ENODEV; 452 goto err_free; 453 } 454 455 for (j = 0; j < ARRAY_SIZE(sw->ports); j++) { 456 index = icm_fr_get_switch_index(sw->ports[j]); 457 if (index > sw->switch_index) { 458 sw = &switches[index]; 459 break; 460 } 461 } 462 } 463 464 *route = get_route(sw->route_hi, sw->route_lo); 465 466 err_free: 467 kfree(switches); 468 return ret; 469 } 470 471 static void icm_fr_save_devices(struct tb *tb) 472 { 473 nhi_mailbox_cmd(tb->nhi, NHI_MAILBOX_SAVE_DEVS, 0); 474 } 475 476 static int 477 icm_fr_driver_ready(struct tb *tb, enum tb_security_level *security_level, 478 u8 *proto_version, size_t *nboot_acl, bool *rpm) 479 { 480 struct icm_fr_pkg_driver_ready_response reply; 481 struct icm_pkg_driver_ready request = { 482 .hdr.code = ICM_DRIVER_READY, 483 }; 484 int ret; 485 486 memset(&reply, 0, sizeof(reply)); 487 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 488 1, ICM_RETRIES, ICM_TIMEOUT); 489 if (ret) 490 return ret; 491 492 if (security_level) 493 *security_level = reply.security_level & ICM_FR_SLEVEL_MASK; 494 495 return 0; 496 } 497 498 static int icm_fr_approve_switch(struct tb *tb, struct tb_switch *sw) 499 { 500 struct icm_fr_pkg_approve_device request; 501 struct icm_fr_pkg_approve_device reply; 502 int ret; 503 504 memset(&request, 0, sizeof(request)); 505 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 506 request.hdr.code = ICM_APPROVE_DEVICE; 507 request.connection_id = sw->connection_id; 508 request.connection_key = sw->connection_key; 509 510 memset(&reply, 0, sizeof(reply)); 511 /* Use larger timeout as establishing tunnels can take some time */ 512 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 513 1, ICM_RETRIES, ICM_APPROVE_TIMEOUT); 514 if (ret) 515 return ret; 516 517 if (reply.hdr.flags & ICM_FLAGS_ERROR) { 518 tb_warn(tb, "PCIe tunnel creation failed\n"); 519 return -EIO; 520 } 521 522 return 0; 523 } 524 525 static int icm_fr_add_switch_key(struct tb *tb, struct tb_switch *sw) 526 { 527 struct icm_fr_pkg_add_device_key request; 528 struct icm_fr_pkg_add_device_key_response reply; 529 int ret; 530 531 memset(&request, 0, sizeof(request)); 532 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 533 request.hdr.code = ICM_ADD_DEVICE_KEY; 534 request.connection_id = sw->connection_id; 535 request.connection_key = sw->connection_key; 536 memcpy(request.key, sw->key, TB_SWITCH_KEY_SIZE); 537 538 memset(&reply, 0, sizeof(reply)); 539 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 540 1, ICM_RETRIES, ICM_TIMEOUT); 541 if (ret) 542 return ret; 543 544 if (reply.hdr.flags & ICM_FLAGS_ERROR) { 545 tb_warn(tb, "Adding key to switch failed\n"); 546 return -EIO; 547 } 548 549 return 0; 550 } 551 552 static int icm_fr_challenge_switch_key(struct tb *tb, struct tb_switch *sw, 553 const u8 *challenge, u8 *response) 554 { 555 struct icm_fr_pkg_challenge_device request; 556 struct icm_fr_pkg_challenge_device_response reply; 557 int ret; 558 559 memset(&request, 0, sizeof(request)); 560 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 561 request.hdr.code = ICM_CHALLENGE_DEVICE; 562 request.connection_id = sw->connection_id; 563 request.connection_key = sw->connection_key; 564 memcpy(request.challenge, challenge, TB_SWITCH_KEY_SIZE); 565 566 memset(&reply, 0, sizeof(reply)); 567 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 568 1, ICM_RETRIES, ICM_TIMEOUT); 569 if (ret) 570 return ret; 571 572 if (reply.hdr.flags & ICM_FLAGS_ERROR) 573 return -EKEYREJECTED; 574 if (reply.hdr.flags & ICM_FLAGS_NO_KEY) 575 return -ENOKEY; 576 577 memcpy(response, reply.response, TB_SWITCH_KEY_SIZE); 578 579 return 0; 580 } 581 582 static int icm_fr_approve_xdomain_paths(struct tb *tb, struct tb_xdomain *xd, 583 int transmit_path, int transmit_ring, 584 int receive_path, int receive_ring) 585 { 586 struct icm_fr_pkg_approve_xdomain_response reply; 587 struct icm_fr_pkg_approve_xdomain request; 588 int ret; 589 590 if (atomic_read(&xd->ntunnels) >= 1) { 591 tb_warn(tb, "only one tunnel is supported by the firmware\n"); 592 return -EOPNOTSUPP; 593 } 594 595 memset(&request, 0, sizeof(request)); 596 request.hdr.code = ICM_APPROVE_XDOMAIN; 597 request.link_info = xd->depth << ICM_LINK_INFO_DEPTH_SHIFT | xd->link; 598 memcpy(&request.remote_uuid, xd->remote_uuid, sizeof(*xd->remote_uuid)); 599 600 request.transmit_path = transmit_path; 601 request.transmit_ring = transmit_ring; 602 request.receive_path = receive_path; 603 request.receive_ring = receive_ring; 604 605 memset(&reply, 0, sizeof(reply)); 606 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 607 1, ICM_RETRIES, ICM_TIMEOUT); 608 if (ret) 609 return ret; 610 611 if (reply.hdr.flags & ICM_FLAGS_ERROR) 612 return -EIO; 613 614 icm_xdomain_activated(xd, true); 615 return 0; 616 } 617 618 static int icm_fr_disconnect_xdomain_paths(struct tb *tb, struct tb_xdomain *xd, 619 int transmit_path, int transmit_ring, 620 int receive_path, int receive_ring) 621 { 622 u8 phy_port; 623 u8 cmd; 624 625 phy_port = tb_phy_port_from_link(xd->link); 626 if (phy_port == 0) 627 cmd = NHI_MAILBOX_DISCONNECT_PA; 628 else 629 cmd = NHI_MAILBOX_DISCONNECT_PB; 630 631 nhi_mailbox_cmd(tb->nhi, cmd, 1); 632 usleep_range(10, 50); 633 nhi_mailbox_cmd(tb->nhi, cmd, 2); 634 635 icm_xdomain_activated(xd, false); 636 return 0; 637 } 638 639 static struct tb_switch *alloc_switch(struct tb_switch *parent_sw, u64 route, 640 const uuid_t *uuid) 641 { 642 struct tb *tb = parent_sw->tb; 643 struct tb_switch *sw; 644 645 sw = tb_switch_alloc(tb, &parent_sw->dev, route); 646 if (IS_ERR(sw)) { 647 tb_warn(tb, "failed to allocate switch at %llx\n", route); 648 return sw; 649 } 650 651 sw->uuid = kmemdup(uuid, sizeof(*uuid), GFP_KERNEL); 652 if (!sw->uuid) { 653 tb_switch_put(sw); 654 return ERR_PTR(-ENOMEM); 655 } 656 657 init_completion(&sw->rpm_complete); 658 return sw; 659 } 660 661 static int add_switch(struct tb_switch *parent_sw, struct tb_switch *sw) 662 { 663 u64 route = tb_route(sw); 664 int ret; 665 666 /* Link the two switches now */ 667 tb_port_at(route, parent_sw)->remote = tb_upstream_port(sw); 668 tb_upstream_port(sw)->remote = tb_port_at(route, parent_sw); 669 670 ret = tb_switch_add(sw); 671 if (ret) 672 tb_port_at(tb_route(sw), parent_sw)->remote = NULL; 673 674 return ret; 675 } 676 677 static void update_switch(struct tb_switch *sw, u64 route, u8 connection_id, 678 u8 connection_key, u8 link, u8 depth, bool boot) 679 { 680 struct tb_switch *parent_sw = tb_switch_parent(sw); 681 682 /* Disconnect from parent */ 683 tb_switch_downstream_port(sw)->remote = NULL; 684 /* Re-connect via updated port */ 685 tb_port_at(route, parent_sw)->remote = tb_upstream_port(sw); 686 687 /* Update with the new addressing information */ 688 sw->config.route_hi = upper_32_bits(route); 689 sw->config.route_lo = lower_32_bits(route); 690 sw->connection_id = connection_id; 691 sw->connection_key = connection_key; 692 sw->link = link; 693 sw->depth = depth; 694 sw->boot = boot; 695 696 /* This switch still exists */ 697 sw->is_unplugged = false; 698 699 /* Runtime resume is now complete */ 700 complete(&sw->rpm_complete); 701 } 702 703 static void remove_switch(struct tb_switch *sw) 704 { 705 tb_switch_downstream_port(sw)->remote = NULL; 706 tb_switch_remove(sw); 707 } 708 709 static void add_xdomain(struct tb_switch *sw, u64 route, 710 const uuid_t *local_uuid, const uuid_t *remote_uuid, 711 u8 link, u8 depth) 712 { 713 struct tb_xdomain *xd; 714 715 pm_runtime_get_sync(&sw->dev); 716 717 xd = tb_xdomain_alloc(sw->tb, &sw->dev, route, local_uuid, remote_uuid); 718 if (!xd) 719 goto out; 720 721 xd->link = link; 722 xd->depth = depth; 723 724 tb_port_at(route, sw)->xdomain = xd; 725 726 tb_xdomain_add(xd); 727 728 out: 729 pm_runtime_mark_last_busy(&sw->dev); 730 pm_runtime_put_autosuspend(&sw->dev); 731 } 732 733 static void update_xdomain(struct tb_xdomain *xd, u64 route, u8 link) 734 { 735 xd->link = link; 736 xd->route = route; 737 xd->is_unplugged = false; 738 } 739 740 static void remove_xdomain(struct tb_xdomain *xd) 741 { 742 struct tb_switch *sw; 743 744 sw = tb_to_switch(xd->dev.parent); 745 tb_port_at(xd->route, sw)->xdomain = NULL; 746 xd->is_unplugged = true; 747 tb_xdomain_remove(xd); 748 } 749 750 static void 751 icm_fr_device_connected(struct tb *tb, const struct icm_pkg_header *hdr) 752 { 753 const struct icm_fr_event_device_connected *pkg = 754 (const struct icm_fr_event_device_connected *)hdr; 755 enum tb_security_level security_level; 756 struct tb_switch *sw, *parent_sw; 757 bool boot, dual_lane, speed_gen3; 758 struct icm *icm = tb_priv(tb); 759 bool authorized = false; 760 struct tb_xdomain *xd; 761 u8 link, depth; 762 u64 route; 763 int ret; 764 765 icm_postpone_rescan(tb); 766 767 link = pkg->link_info & ICM_LINK_INFO_LINK_MASK; 768 depth = (pkg->link_info & ICM_LINK_INFO_DEPTH_MASK) >> 769 ICM_LINK_INFO_DEPTH_SHIFT; 770 authorized = pkg->link_info & ICM_LINK_INFO_APPROVED; 771 security_level = (pkg->hdr.flags & ICM_FLAGS_SLEVEL_MASK) >> 772 ICM_FLAGS_SLEVEL_SHIFT; 773 boot = pkg->link_info & ICM_LINK_INFO_BOOT; 774 dual_lane = pkg->hdr.flags & ICM_FLAGS_DUAL_LANE; 775 speed_gen3 = pkg->hdr.flags & ICM_FLAGS_SPEED_GEN3; 776 777 if (pkg->link_info & ICM_LINK_INFO_REJECTED) { 778 tb_info(tb, "switch at %u.%u was rejected by ICM firmware because topology limit exceeded\n", 779 link, depth); 780 return; 781 } 782 783 sw = tb_switch_find_by_uuid(tb, &pkg->ep_uuid); 784 if (sw) { 785 u8 phy_port, sw_phy_port; 786 787 sw_phy_port = tb_phy_port_from_link(sw->link); 788 phy_port = tb_phy_port_from_link(link); 789 790 /* 791 * On resume ICM will send us connected events for the 792 * devices that still are present. However, that 793 * information might have changed for example by the 794 * fact that a switch on a dual-link connection might 795 * have been enumerated using the other link now. Make 796 * sure our bookkeeping matches that. 797 */ 798 if (sw->depth == depth && sw_phy_port == phy_port && 799 !!sw->authorized == authorized) { 800 /* 801 * It was enumerated through another link so update 802 * route string accordingly. 803 */ 804 if (sw->link != link) { 805 ret = icm->get_route(tb, link, depth, &route); 806 if (ret) { 807 tb_err(tb, "failed to update route string for switch at %u.%u\n", 808 link, depth); 809 tb_switch_put(sw); 810 return; 811 } 812 } else { 813 route = tb_route(sw); 814 } 815 816 update_switch(sw, route, pkg->connection_id, 817 pkg->connection_key, link, depth, boot); 818 tb_switch_put(sw); 819 return; 820 } 821 822 /* 823 * User connected the same switch to another physical 824 * port or to another part of the topology. Remove the 825 * existing switch now before adding the new one. 826 */ 827 remove_switch(sw); 828 tb_switch_put(sw); 829 } 830 831 /* 832 * If the switch was not found by UUID, look for a switch on 833 * same physical port (taking possible link aggregation into 834 * account) and depth. If we found one it is definitely a stale 835 * one so remove it first. 836 */ 837 sw = tb_switch_find_by_link_depth(tb, link, depth); 838 if (!sw) { 839 u8 dual_link; 840 841 dual_link = dual_link_from_link(link); 842 if (dual_link) 843 sw = tb_switch_find_by_link_depth(tb, dual_link, depth); 844 } 845 if (sw) { 846 remove_switch(sw); 847 tb_switch_put(sw); 848 } 849 850 /* Remove existing XDomain connection if found */ 851 xd = tb_xdomain_find_by_link_depth(tb, link, depth); 852 if (xd) { 853 remove_xdomain(xd); 854 tb_xdomain_put(xd); 855 } 856 857 parent_sw = tb_switch_find_by_link_depth(tb, link, depth - 1); 858 if (!parent_sw) { 859 tb_err(tb, "failed to find parent switch for %u.%u\n", 860 link, depth); 861 return; 862 } 863 864 ret = icm->get_route(tb, link, depth, &route); 865 if (ret) { 866 tb_err(tb, "failed to find route string for switch at %u.%u\n", 867 link, depth); 868 tb_switch_put(parent_sw); 869 return; 870 } 871 872 pm_runtime_get_sync(&parent_sw->dev); 873 874 sw = alloc_switch(parent_sw, route, &pkg->ep_uuid); 875 if (!IS_ERR(sw)) { 876 sw->connection_id = pkg->connection_id; 877 sw->connection_key = pkg->connection_key; 878 sw->link = link; 879 sw->depth = depth; 880 sw->authorized = authorized; 881 sw->security_level = security_level; 882 sw->boot = boot; 883 sw->link_speed = speed_gen3 ? 20 : 10; 884 sw->link_width = dual_lane ? TB_LINK_WIDTH_DUAL : 885 TB_LINK_WIDTH_SINGLE; 886 sw->rpm = intel_vss_is_rtd3(pkg->ep_name, sizeof(pkg->ep_name)); 887 888 if (add_switch(parent_sw, sw)) 889 tb_switch_put(sw); 890 } 891 892 pm_runtime_mark_last_busy(&parent_sw->dev); 893 pm_runtime_put_autosuspend(&parent_sw->dev); 894 895 tb_switch_put(parent_sw); 896 } 897 898 static void 899 icm_fr_device_disconnected(struct tb *tb, const struct icm_pkg_header *hdr) 900 { 901 const struct icm_fr_event_device_disconnected *pkg = 902 (const struct icm_fr_event_device_disconnected *)hdr; 903 struct tb_switch *sw; 904 u8 link, depth; 905 906 link = pkg->link_info & ICM_LINK_INFO_LINK_MASK; 907 depth = (pkg->link_info & ICM_LINK_INFO_DEPTH_MASK) >> 908 ICM_LINK_INFO_DEPTH_SHIFT; 909 910 if (link > ICM_MAX_LINK || depth > TB_SWITCH_MAX_DEPTH) { 911 tb_warn(tb, "invalid topology %u.%u, ignoring\n", link, depth); 912 return; 913 } 914 915 sw = tb_switch_find_by_link_depth(tb, link, depth); 916 if (!sw) { 917 tb_warn(tb, "no switch exists at %u.%u, ignoring\n", link, 918 depth); 919 return; 920 } 921 922 pm_runtime_get_sync(sw->dev.parent); 923 924 remove_switch(sw); 925 926 pm_runtime_mark_last_busy(sw->dev.parent); 927 pm_runtime_put_autosuspend(sw->dev.parent); 928 929 tb_switch_put(sw); 930 } 931 932 static void 933 icm_fr_xdomain_connected(struct tb *tb, const struct icm_pkg_header *hdr) 934 { 935 const struct icm_fr_event_xdomain_connected *pkg = 936 (const struct icm_fr_event_xdomain_connected *)hdr; 937 struct tb_xdomain *xd; 938 struct tb_switch *sw; 939 u8 link, depth; 940 u64 route; 941 942 link = pkg->link_info & ICM_LINK_INFO_LINK_MASK; 943 depth = (pkg->link_info & ICM_LINK_INFO_DEPTH_MASK) >> 944 ICM_LINK_INFO_DEPTH_SHIFT; 945 946 if (link > ICM_MAX_LINK || depth > TB_SWITCH_MAX_DEPTH) { 947 tb_warn(tb, "invalid topology %u.%u, ignoring\n", link, depth); 948 return; 949 } 950 951 route = get_route(pkg->local_route_hi, pkg->local_route_lo); 952 953 xd = tb_xdomain_find_by_uuid(tb, &pkg->remote_uuid); 954 if (xd) { 955 u8 xd_phy_port, phy_port; 956 957 xd_phy_port = phy_port_from_route(xd->route, xd->depth); 958 phy_port = phy_port_from_route(route, depth); 959 960 if (xd->depth == depth && xd_phy_port == phy_port) { 961 update_xdomain(xd, route, link); 962 tb_xdomain_put(xd); 963 return; 964 } 965 966 /* 967 * If we find an existing XDomain connection remove it 968 * now. We need to go through login handshake and 969 * everything anyway to be able to re-establish the 970 * connection. 971 */ 972 remove_xdomain(xd); 973 tb_xdomain_put(xd); 974 } 975 976 /* 977 * Look if there already exists an XDomain in the same place 978 * as the new one and in that case remove it because it is 979 * most likely another host that got disconnected. 980 */ 981 xd = tb_xdomain_find_by_link_depth(tb, link, depth); 982 if (!xd) { 983 u8 dual_link; 984 985 dual_link = dual_link_from_link(link); 986 if (dual_link) 987 xd = tb_xdomain_find_by_link_depth(tb, dual_link, 988 depth); 989 } 990 if (xd) { 991 remove_xdomain(xd); 992 tb_xdomain_put(xd); 993 } 994 995 /* 996 * If the user disconnected a switch during suspend and 997 * connected another host to the same port, remove the switch 998 * first. 999 */ 1000 sw = tb_switch_find_by_route(tb, route); 1001 if (sw) { 1002 remove_switch(sw); 1003 tb_switch_put(sw); 1004 } 1005 1006 sw = tb_switch_find_by_link_depth(tb, link, depth); 1007 if (!sw) { 1008 tb_warn(tb, "no switch exists at %u.%u, ignoring\n", link, 1009 depth); 1010 return; 1011 } 1012 1013 add_xdomain(sw, route, &pkg->local_uuid, &pkg->remote_uuid, link, 1014 depth); 1015 tb_switch_put(sw); 1016 } 1017 1018 static void 1019 icm_fr_xdomain_disconnected(struct tb *tb, const struct icm_pkg_header *hdr) 1020 { 1021 const struct icm_fr_event_xdomain_disconnected *pkg = 1022 (const struct icm_fr_event_xdomain_disconnected *)hdr; 1023 struct tb_xdomain *xd; 1024 1025 /* 1026 * If the connection is through one or multiple devices, the 1027 * XDomain device is removed along with them so it is fine if we 1028 * cannot find it here. 1029 */ 1030 xd = tb_xdomain_find_by_uuid(tb, &pkg->remote_uuid); 1031 if (xd) { 1032 remove_xdomain(xd); 1033 tb_xdomain_put(xd); 1034 } 1035 } 1036 1037 static int icm_tr_cio_reset(struct tb *tb) 1038 { 1039 return pcie2cio_write(tb_priv(tb), TB_CFG_SWITCH, 0, 0x777, BIT(1)); 1040 } 1041 1042 static int 1043 icm_tr_driver_ready(struct tb *tb, enum tb_security_level *security_level, 1044 u8 *proto_version, size_t *nboot_acl, bool *rpm) 1045 { 1046 struct icm_tr_pkg_driver_ready_response reply; 1047 struct icm_pkg_driver_ready request = { 1048 .hdr.code = ICM_DRIVER_READY, 1049 }; 1050 int ret; 1051 1052 memset(&reply, 0, sizeof(reply)); 1053 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1054 1, 10, 250); 1055 if (ret) 1056 return ret; 1057 1058 if (security_level) 1059 *security_level = reply.info & ICM_TR_INFO_SLEVEL_MASK; 1060 if (proto_version) 1061 *proto_version = (reply.info & ICM_TR_INFO_PROTO_VERSION_MASK) >> 1062 ICM_TR_INFO_PROTO_VERSION_SHIFT; 1063 if (nboot_acl) 1064 *nboot_acl = (reply.info & ICM_TR_INFO_BOOT_ACL_MASK) >> 1065 ICM_TR_INFO_BOOT_ACL_SHIFT; 1066 if (rpm) 1067 *rpm = !!(reply.hdr.flags & ICM_TR_FLAGS_RTD3); 1068 1069 return 0; 1070 } 1071 1072 static int icm_tr_approve_switch(struct tb *tb, struct tb_switch *sw) 1073 { 1074 struct icm_tr_pkg_approve_device request; 1075 struct icm_tr_pkg_approve_device reply; 1076 int ret; 1077 1078 memset(&request, 0, sizeof(request)); 1079 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 1080 request.hdr.code = ICM_APPROVE_DEVICE; 1081 request.route_lo = sw->config.route_lo; 1082 request.route_hi = sw->config.route_hi; 1083 request.connection_id = sw->connection_id; 1084 1085 memset(&reply, 0, sizeof(reply)); 1086 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1087 1, ICM_RETRIES, ICM_APPROVE_TIMEOUT); 1088 if (ret) 1089 return ret; 1090 1091 if (reply.hdr.flags & ICM_FLAGS_ERROR) { 1092 tb_warn(tb, "PCIe tunnel creation failed\n"); 1093 return -EIO; 1094 } 1095 1096 return 0; 1097 } 1098 1099 static int icm_tr_add_switch_key(struct tb *tb, struct tb_switch *sw) 1100 { 1101 struct icm_tr_pkg_add_device_key_response reply; 1102 struct icm_tr_pkg_add_device_key request; 1103 int ret; 1104 1105 memset(&request, 0, sizeof(request)); 1106 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 1107 request.hdr.code = ICM_ADD_DEVICE_KEY; 1108 request.route_lo = sw->config.route_lo; 1109 request.route_hi = sw->config.route_hi; 1110 request.connection_id = sw->connection_id; 1111 memcpy(request.key, sw->key, TB_SWITCH_KEY_SIZE); 1112 1113 memset(&reply, 0, sizeof(reply)); 1114 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1115 1, ICM_RETRIES, ICM_TIMEOUT); 1116 if (ret) 1117 return ret; 1118 1119 if (reply.hdr.flags & ICM_FLAGS_ERROR) { 1120 tb_warn(tb, "Adding key to switch failed\n"); 1121 return -EIO; 1122 } 1123 1124 return 0; 1125 } 1126 1127 static int icm_tr_challenge_switch_key(struct tb *tb, struct tb_switch *sw, 1128 const u8 *challenge, u8 *response) 1129 { 1130 struct icm_tr_pkg_challenge_device_response reply; 1131 struct icm_tr_pkg_challenge_device request; 1132 int ret; 1133 1134 memset(&request, 0, sizeof(request)); 1135 memcpy(&request.ep_uuid, sw->uuid, sizeof(request.ep_uuid)); 1136 request.hdr.code = ICM_CHALLENGE_DEVICE; 1137 request.route_lo = sw->config.route_lo; 1138 request.route_hi = sw->config.route_hi; 1139 request.connection_id = sw->connection_id; 1140 memcpy(request.challenge, challenge, TB_SWITCH_KEY_SIZE); 1141 1142 memset(&reply, 0, sizeof(reply)); 1143 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1144 1, ICM_RETRIES, ICM_TIMEOUT); 1145 if (ret) 1146 return ret; 1147 1148 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1149 return -EKEYREJECTED; 1150 if (reply.hdr.flags & ICM_FLAGS_NO_KEY) 1151 return -ENOKEY; 1152 1153 memcpy(response, reply.response, TB_SWITCH_KEY_SIZE); 1154 1155 return 0; 1156 } 1157 1158 static int icm_tr_approve_xdomain_paths(struct tb *tb, struct tb_xdomain *xd, 1159 int transmit_path, int transmit_ring, 1160 int receive_path, int receive_ring) 1161 { 1162 struct icm_tr_pkg_approve_xdomain_response reply; 1163 struct icm_tr_pkg_approve_xdomain request; 1164 int ret; 1165 1166 if (atomic_read(&xd->ntunnels) >= 1) { 1167 tb_warn(tb, "only one tunnel is supported by the firmware\n"); 1168 return -EOPNOTSUPP; 1169 } 1170 1171 memset(&request, 0, sizeof(request)); 1172 request.hdr.code = ICM_APPROVE_XDOMAIN; 1173 request.route_hi = upper_32_bits(xd->route); 1174 request.route_lo = lower_32_bits(xd->route); 1175 request.transmit_path = transmit_path; 1176 request.transmit_ring = transmit_ring; 1177 request.receive_path = receive_path; 1178 request.receive_ring = receive_ring; 1179 memcpy(&request.remote_uuid, xd->remote_uuid, sizeof(*xd->remote_uuid)); 1180 1181 memset(&reply, 0, sizeof(reply)); 1182 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1183 1, ICM_RETRIES, ICM_TIMEOUT); 1184 if (ret) 1185 return ret; 1186 1187 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1188 return -EIO; 1189 1190 icm_xdomain_activated(xd, true); 1191 return 0; 1192 } 1193 1194 static int icm_tr_xdomain_tear_down(struct tb *tb, struct tb_xdomain *xd, 1195 int stage) 1196 { 1197 struct icm_tr_pkg_disconnect_xdomain_response reply; 1198 struct icm_tr_pkg_disconnect_xdomain request; 1199 int ret; 1200 1201 memset(&request, 0, sizeof(request)); 1202 request.hdr.code = ICM_DISCONNECT_XDOMAIN; 1203 request.stage = stage; 1204 request.route_hi = upper_32_bits(xd->route); 1205 request.route_lo = lower_32_bits(xd->route); 1206 memcpy(&request.remote_uuid, xd->remote_uuid, sizeof(*xd->remote_uuid)); 1207 1208 memset(&reply, 0, sizeof(reply)); 1209 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1210 1, ICM_RETRIES, ICM_TIMEOUT); 1211 if (ret) 1212 return ret; 1213 1214 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1215 return -EIO; 1216 1217 return 0; 1218 } 1219 1220 static int icm_tr_disconnect_xdomain_paths(struct tb *tb, struct tb_xdomain *xd, 1221 int transmit_path, int transmit_ring, 1222 int receive_path, int receive_ring) 1223 { 1224 int ret; 1225 1226 ret = icm_tr_xdomain_tear_down(tb, xd, 1); 1227 if (ret) 1228 return ret; 1229 1230 usleep_range(10, 50); 1231 ret = icm_tr_xdomain_tear_down(tb, xd, 2); 1232 if (ret) 1233 return ret; 1234 1235 icm_xdomain_activated(xd, false); 1236 return 0; 1237 } 1238 1239 static void 1240 __icm_tr_device_connected(struct tb *tb, const struct icm_pkg_header *hdr, 1241 bool force_rtd3) 1242 { 1243 const struct icm_tr_event_device_connected *pkg = 1244 (const struct icm_tr_event_device_connected *)hdr; 1245 bool authorized, boot, dual_lane, speed_gen3; 1246 enum tb_security_level security_level; 1247 struct tb_switch *sw, *parent_sw; 1248 struct tb_xdomain *xd; 1249 u64 route; 1250 1251 icm_postpone_rescan(tb); 1252 1253 /* 1254 * Currently we don't use the QoS information coming with the 1255 * device connected message so simply just ignore that extra 1256 * packet for now. 1257 */ 1258 if (pkg->hdr.packet_id) 1259 return; 1260 1261 route = get_route(pkg->route_hi, pkg->route_lo); 1262 authorized = pkg->link_info & ICM_LINK_INFO_APPROVED; 1263 security_level = (pkg->hdr.flags & ICM_FLAGS_SLEVEL_MASK) >> 1264 ICM_FLAGS_SLEVEL_SHIFT; 1265 boot = pkg->link_info & ICM_LINK_INFO_BOOT; 1266 dual_lane = pkg->hdr.flags & ICM_FLAGS_DUAL_LANE; 1267 speed_gen3 = pkg->hdr.flags & ICM_FLAGS_SPEED_GEN3; 1268 1269 if (pkg->link_info & ICM_LINK_INFO_REJECTED) { 1270 tb_info(tb, "switch at %llx was rejected by ICM firmware because topology limit exceeded\n", 1271 route); 1272 return; 1273 } 1274 1275 sw = tb_switch_find_by_uuid(tb, &pkg->ep_uuid); 1276 if (sw) { 1277 /* Update the switch if it is still in the same place */ 1278 if (tb_route(sw) == route && !!sw->authorized == authorized) { 1279 update_switch(sw, route, pkg->connection_id, 0, 0, 0, 1280 boot); 1281 tb_switch_put(sw); 1282 return; 1283 } 1284 1285 remove_switch(sw); 1286 tb_switch_put(sw); 1287 } 1288 1289 /* Another switch with the same address */ 1290 sw = tb_switch_find_by_route(tb, route); 1291 if (sw) { 1292 remove_switch(sw); 1293 tb_switch_put(sw); 1294 } 1295 1296 /* XDomain connection with the same address */ 1297 xd = tb_xdomain_find_by_route(tb, route); 1298 if (xd) { 1299 remove_xdomain(xd); 1300 tb_xdomain_put(xd); 1301 } 1302 1303 parent_sw = tb_switch_find_by_route(tb, get_parent_route(route)); 1304 if (!parent_sw) { 1305 tb_err(tb, "failed to find parent switch for %llx\n", route); 1306 return; 1307 } 1308 1309 pm_runtime_get_sync(&parent_sw->dev); 1310 1311 sw = alloc_switch(parent_sw, route, &pkg->ep_uuid); 1312 if (!IS_ERR(sw)) { 1313 sw->connection_id = pkg->connection_id; 1314 sw->authorized = authorized; 1315 sw->security_level = security_level; 1316 sw->boot = boot; 1317 sw->link_speed = speed_gen3 ? 20 : 10; 1318 sw->link_width = dual_lane ? TB_LINK_WIDTH_DUAL : 1319 TB_LINK_WIDTH_SINGLE; 1320 sw->rpm = force_rtd3; 1321 if (!sw->rpm) 1322 sw->rpm = intel_vss_is_rtd3(pkg->ep_name, 1323 sizeof(pkg->ep_name)); 1324 1325 if (add_switch(parent_sw, sw)) 1326 tb_switch_put(sw); 1327 } 1328 1329 pm_runtime_mark_last_busy(&parent_sw->dev); 1330 pm_runtime_put_autosuspend(&parent_sw->dev); 1331 1332 tb_switch_put(parent_sw); 1333 } 1334 1335 static void 1336 icm_tr_device_connected(struct tb *tb, const struct icm_pkg_header *hdr) 1337 { 1338 __icm_tr_device_connected(tb, hdr, false); 1339 } 1340 1341 static void 1342 icm_tr_device_disconnected(struct tb *tb, const struct icm_pkg_header *hdr) 1343 { 1344 const struct icm_tr_event_device_disconnected *pkg = 1345 (const struct icm_tr_event_device_disconnected *)hdr; 1346 struct tb_switch *sw; 1347 u64 route; 1348 1349 route = get_route(pkg->route_hi, pkg->route_lo); 1350 1351 sw = tb_switch_find_by_route(tb, route); 1352 if (!sw) { 1353 tb_warn(tb, "no switch exists at %llx, ignoring\n", route); 1354 return; 1355 } 1356 pm_runtime_get_sync(sw->dev.parent); 1357 1358 remove_switch(sw); 1359 1360 pm_runtime_mark_last_busy(sw->dev.parent); 1361 pm_runtime_put_autosuspend(sw->dev.parent); 1362 1363 tb_switch_put(sw); 1364 } 1365 1366 static void 1367 icm_tr_xdomain_connected(struct tb *tb, const struct icm_pkg_header *hdr) 1368 { 1369 const struct icm_tr_event_xdomain_connected *pkg = 1370 (const struct icm_tr_event_xdomain_connected *)hdr; 1371 struct tb_xdomain *xd; 1372 struct tb_switch *sw; 1373 u64 route; 1374 1375 if (!tb->root_switch) 1376 return; 1377 1378 route = get_route(pkg->local_route_hi, pkg->local_route_lo); 1379 1380 xd = tb_xdomain_find_by_uuid(tb, &pkg->remote_uuid); 1381 if (xd) { 1382 if (xd->route == route) { 1383 update_xdomain(xd, route, 0); 1384 tb_xdomain_put(xd); 1385 return; 1386 } 1387 1388 remove_xdomain(xd); 1389 tb_xdomain_put(xd); 1390 } 1391 1392 /* An existing xdomain with the same address */ 1393 xd = tb_xdomain_find_by_route(tb, route); 1394 if (xd) { 1395 remove_xdomain(xd); 1396 tb_xdomain_put(xd); 1397 } 1398 1399 /* 1400 * If the user disconnected a switch during suspend and 1401 * connected another host to the same port, remove the switch 1402 * first. 1403 */ 1404 sw = tb_switch_find_by_route(tb, route); 1405 if (sw) { 1406 remove_switch(sw); 1407 tb_switch_put(sw); 1408 } 1409 1410 sw = tb_switch_find_by_route(tb, get_parent_route(route)); 1411 if (!sw) { 1412 tb_warn(tb, "no switch exists at %llx, ignoring\n", route); 1413 return; 1414 } 1415 1416 add_xdomain(sw, route, &pkg->local_uuid, &pkg->remote_uuid, 0, 0); 1417 tb_switch_put(sw); 1418 } 1419 1420 static void 1421 icm_tr_xdomain_disconnected(struct tb *tb, const struct icm_pkg_header *hdr) 1422 { 1423 const struct icm_tr_event_xdomain_disconnected *pkg = 1424 (const struct icm_tr_event_xdomain_disconnected *)hdr; 1425 struct tb_xdomain *xd; 1426 u64 route; 1427 1428 route = get_route(pkg->route_hi, pkg->route_lo); 1429 1430 xd = tb_xdomain_find_by_route(tb, route); 1431 if (xd) { 1432 remove_xdomain(xd); 1433 tb_xdomain_put(xd); 1434 } 1435 } 1436 1437 static struct pci_dev *get_upstream_port(struct pci_dev *pdev) 1438 { 1439 struct pci_dev *parent; 1440 1441 parent = pci_upstream_bridge(pdev); 1442 while (parent) { 1443 if (!pci_is_pcie(parent)) 1444 return NULL; 1445 if (pci_pcie_type(parent) == PCI_EXP_TYPE_UPSTREAM) 1446 break; 1447 parent = pci_upstream_bridge(parent); 1448 } 1449 1450 if (!parent) 1451 return NULL; 1452 1453 switch (parent->device) { 1454 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_2C_BRIDGE: 1455 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_4C_BRIDGE: 1456 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_LP_BRIDGE: 1457 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_C_4C_BRIDGE: 1458 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_C_2C_BRIDGE: 1459 case PCI_DEVICE_ID_INTEL_TITAN_RIDGE_2C_BRIDGE: 1460 case PCI_DEVICE_ID_INTEL_TITAN_RIDGE_4C_BRIDGE: 1461 return parent; 1462 } 1463 1464 return NULL; 1465 } 1466 1467 static bool icm_ar_is_supported(struct tb *tb) 1468 { 1469 struct pci_dev *pdev = to_pci_dev(tb->nhi->dev); 1470 struct pci_dev *upstream_port; 1471 struct icm *icm = tb_priv(tb); 1472 1473 /* 1474 * Starting from Alpine Ridge we can use ICM on Apple machines 1475 * as well. We just need to reset and re-enable it first. 1476 * However, only start it if explicitly asked by the user. 1477 */ 1478 if (icm_firmware_running(tb->nhi)) 1479 return true; 1480 if (!start_icm) 1481 return false; 1482 1483 /* 1484 * Find the upstream PCIe port in case we need to do reset 1485 * through its vendor specific registers. 1486 */ 1487 upstream_port = get_upstream_port(pdev); 1488 if (upstream_port) { 1489 int cap; 1490 1491 cap = pci_find_ext_capability(upstream_port, 1492 PCI_EXT_CAP_ID_VNDR); 1493 if (cap > 0) { 1494 icm->upstream_port = upstream_port; 1495 icm->vnd_cap = cap; 1496 1497 return true; 1498 } 1499 } 1500 1501 return false; 1502 } 1503 1504 static int icm_ar_cio_reset(struct tb *tb) 1505 { 1506 return pcie2cio_write(tb_priv(tb), TB_CFG_SWITCH, 0, 0x50, BIT(9)); 1507 } 1508 1509 static int icm_ar_get_mode(struct tb *tb) 1510 { 1511 struct tb_nhi *nhi = tb->nhi; 1512 int retries = 60; 1513 u32 val; 1514 1515 do { 1516 val = ioread32(nhi->iobase + REG_FW_STS); 1517 if (val & REG_FW_STS_NVM_AUTH_DONE) 1518 break; 1519 msleep(50); 1520 } while (--retries); 1521 1522 if (!retries) { 1523 dev_err(nhi->dev, "ICM firmware not authenticated\n"); 1524 return -ENODEV; 1525 } 1526 1527 return nhi_mailbox_mode(nhi); 1528 } 1529 1530 static int 1531 icm_ar_driver_ready(struct tb *tb, enum tb_security_level *security_level, 1532 u8 *proto_version, size_t *nboot_acl, bool *rpm) 1533 { 1534 struct icm_ar_pkg_driver_ready_response reply; 1535 struct icm_pkg_driver_ready request = { 1536 .hdr.code = ICM_DRIVER_READY, 1537 }; 1538 int ret; 1539 1540 memset(&reply, 0, sizeof(reply)); 1541 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1542 1, ICM_RETRIES, ICM_TIMEOUT); 1543 if (ret) 1544 return ret; 1545 1546 if (security_level) 1547 *security_level = reply.info & ICM_AR_INFO_SLEVEL_MASK; 1548 if (nboot_acl && (reply.info & ICM_AR_INFO_BOOT_ACL_SUPPORTED)) 1549 *nboot_acl = (reply.info & ICM_AR_INFO_BOOT_ACL_MASK) >> 1550 ICM_AR_INFO_BOOT_ACL_SHIFT; 1551 if (rpm) 1552 *rpm = !!(reply.hdr.flags & ICM_AR_FLAGS_RTD3); 1553 1554 return 0; 1555 } 1556 1557 static int icm_ar_get_route(struct tb *tb, u8 link, u8 depth, u64 *route) 1558 { 1559 struct icm_ar_pkg_get_route_response reply; 1560 struct icm_ar_pkg_get_route request = { 1561 .hdr = { .code = ICM_GET_ROUTE }, 1562 .link_info = depth << ICM_LINK_INFO_DEPTH_SHIFT | link, 1563 }; 1564 int ret; 1565 1566 memset(&reply, 0, sizeof(reply)); 1567 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1568 1, ICM_RETRIES, ICM_TIMEOUT); 1569 if (ret) 1570 return ret; 1571 1572 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1573 return -EIO; 1574 1575 *route = get_route(reply.route_hi, reply.route_lo); 1576 return 0; 1577 } 1578 1579 static int icm_ar_get_boot_acl(struct tb *tb, uuid_t *uuids, size_t nuuids) 1580 { 1581 struct icm_ar_pkg_preboot_acl_response reply; 1582 struct icm_ar_pkg_preboot_acl request = { 1583 .hdr = { .code = ICM_PREBOOT_ACL }, 1584 }; 1585 int ret, i; 1586 1587 memset(&reply, 0, sizeof(reply)); 1588 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1589 1, ICM_RETRIES, ICM_TIMEOUT); 1590 if (ret) 1591 return ret; 1592 1593 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1594 return -EIO; 1595 1596 for (i = 0; i < nuuids; i++) { 1597 u32 *uuid = (u32 *)&uuids[i]; 1598 1599 uuid[0] = reply.acl[i].uuid_lo; 1600 uuid[1] = reply.acl[i].uuid_hi; 1601 1602 if (uuid[0] == 0xffffffff && uuid[1] == 0xffffffff) { 1603 /* Map empty entries to null UUID */ 1604 uuid[0] = 0; 1605 uuid[1] = 0; 1606 } else if (uuid[0] != 0 || uuid[1] != 0) { 1607 /* Upper two DWs are always one's */ 1608 uuid[2] = 0xffffffff; 1609 uuid[3] = 0xffffffff; 1610 } 1611 } 1612 1613 return ret; 1614 } 1615 1616 static int icm_ar_set_boot_acl(struct tb *tb, const uuid_t *uuids, 1617 size_t nuuids) 1618 { 1619 struct icm_ar_pkg_preboot_acl_response reply; 1620 struct icm_ar_pkg_preboot_acl request = { 1621 .hdr = { 1622 .code = ICM_PREBOOT_ACL, 1623 .flags = ICM_FLAGS_WRITE, 1624 }, 1625 }; 1626 int ret, i; 1627 1628 for (i = 0; i < nuuids; i++) { 1629 const u32 *uuid = (const u32 *)&uuids[i]; 1630 1631 if (uuid_is_null(&uuids[i])) { 1632 /* 1633 * Map null UUID to the empty (all one) entries 1634 * for ICM. 1635 */ 1636 request.acl[i].uuid_lo = 0xffffffff; 1637 request.acl[i].uuid_hi = 0xffffffff; 1638 } else { 1639 /* Two high DWs need to be set to all one */ 1640 if (uuid[2] != 0xffffffff || uuid[3] != 0xffffffff) 1641 return -EINVAL; 1642 1643 request.acl[i].uuid_lo = uuid[0]; 1644 request.acl[i].uuid_hi = uuid[1]; 1645 } 1646 } 1647 1648 memset(&reply, 0, sizeof(reply)); 1649 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1650 1, ICM_RETRIES, ICM_TIMEOUT); 1651 if (ret) 1652 return ret; 1653 1654 if (reply.hdr.flags & ICM_FLAGS_ERROR) 1655 return -EIO; 1656 1657 return 0; 1658 } 1659 1660 static int 1661 icm_icl_driver_ready(struct tb *tb, enum tb_security_level *security_level, 1662 u8 *proto_version, size_t *nboot_acl, bool *rpm) 1663 { 1664 struct icm_tr_pkg_driver_ready_response reply; 1665 struct icm_pkg_driver_ready request = { 1666 .hdr.code = ICM_DRIVER_READY, 1667 }; 1668 int ret; 1669 1670 memset(&reply, 0, sizeof(reply)); 1671 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 1672 1, ICM_RETRIES, 20000); 1673 if (ret) 1674 return ret; 1675 1676 if (proto_version) 1677 *proto_version = (reply.info & ICM_TR_INFO_PROTO_VERSION_MASK) >> 1678 ICM_TR_INFO_PROTO_VERSION_SHIFT; 1679 1680 /* Ice Lake always supports RTD3 */ 1681 if (rpm) 1682 *rpm = true; 1683 1684 return 0; 1685 } 1686 1687 static void icm_icl_set_uuid(struct tb *tb) 1688 { 1689 struct pci_dev *pdev = to_pci_dev(tb->nhi->dev); 1690 u32 uuid[4]; 1691 1692 pci_read_config_dword(pdev, VS_CAP_10, &uuid[0]); 1693 pci_read_config_dword(pdev, VS_CAP_11, &uuid[1]); 1694 uuid[2] = 0xffffffff; 1695 uuid[3] = 0xffffffff; 1696 1697 tb->root_switch->uuid = kmemdup(uuid, sizeof(uuid), GFP_KERNEL); 1698 } 1699 1700 static void 1701 icm_icl_device_connected(struct tb *tb, const struct icm_pkg_header *hdr) 1702 { 1703 __icm_tr_device_connected(tb, hdr, true); 1704 } 1705 1706 static void icm_icl_rtd3_veto(struct tb *tb, const struct icm_pkg_header *hdr) 1707 { 1708 const struct icm_icl_event_rtd3_veto *pkg = 1709 (const struct icm_icl_event_rtd3_veto *)hdr; 1710 1711 tb_dbg(tb, "ICM rtd3 veto=0x%08x\n", pkg->veto_reason); 1712 1713 if (pkg->veto_reason) 1714 icm_veto_begin(tb); 1715 else 1716 icm_veto_end(tb); 1717 } 1718 1719 static bool icm_tgl_is_supported(struct tb *tb) 1720 { 1721 unsigned long end = jiffies + msecs_to_jiffies(10); 1722 1723 do { 1724 u32 val; 1725 1726 val = ioread32(tb->nhi->iobase + REG_FW_STS); 1727 if (val & REG_FW_STS_NVM_AUTH_DONE) 1728 return true; 1729 usleep_range(100, 500); 1730 } while (time_before(jiffies, end)); 1731 1732 return false; 1733 } 1734 1735 static void icm_handle_notification(struct work_struct *work) 1736 { 1737 struct icm_notification *n = container_of(work, typeof(*n), work); 1738 struct tb *tb = n->tb; 1739 struct icm *icm = tb_priv(tb); 1740 1741 mutex_lock(&tb->lock); 1742 1743 /* 1744 * When the domain is stopped we flush its workqueue but before 1745 * that the root switch is removed. In that case we should treat 1746 * the queued events as being canceled. 1747 */ 1748 if (tb->root_switch) { 1749 switch (n->pkg->code) { 1750 case ICM_EVENT_DEVICE_CONNECTED: 1751 icm->device_connected(tb, n->pkg); 1752 break; 1753 case ICM_EVENT_DEVICE_DISCONNECTED: 1754 icm->device_disconnected(tb, n->pkg); 1755 break; 1756 case ICM_EVENT_XDOMAIN_CONNECTED: 1757 if (tb_is_xdomain_enabled()) 1758 icm->xdomain_connected(tb, n->pkg); 1759 break; 1760 case ICM_EVENT_XDOMAIN_DISCONNECTED: 1761 if (tb_is_xdomain_enabled()) 1762 icm->xdomain_disconnected(tb, n->pkg); 1763 break; 1764 case ICM_EVENT_DP_CONFIG_CHANGED: 1765 icm_dp_event(tb); 1766 break; 1767 case ICM_EVENT_RTD3_VETO: 1768 icm->rtd3_veto(tb, n->pkg); 1769 break; 1770 } 1771 } 1772 1773 mutex_unlock(&tb->lock); 1774 1775 kfree(n->pkg); 1776 kfree(n); 1777 1778 tb_domain_unregister_unplugged_xdomains(tb); 1779 } 1780 1781 static void icm_handle_event(struct tb *tb, enum tb_cfg_pkg_type type, 1782 const void *buf, size_t size) 1783 { 1784 struct icm_notification *n; 1785 1786 n = kmalloc_obj(*n); 1787 if (!n) 1788 return; 1789 1790 n->pkg = kmemdup(buf, size, GFP_KERNEL); 1791 if (!n->pkg) { 1792 kfree(n); 1793 return; 1794 } 1795 1796 INIT_WORK(&n->work, icm_handle_notification); 1797 n->tb = tb; 1798 1799 queue_work(tb->wq, &n->work); 1800 } 1801 1802 static int 1803 __icm_driver_ready(struct tb *tb, enum tb_security_level *security_level, 1804 u8 *proto_version, size_t *nboot_acl, bool *rpm) 1805 { 1806 struct icm *icm = tb_priv(tb); 1807 unsigned int retries = 50; 1808 int ret; 1809 1810 ret = icm->driver_ready(tb, security_level, proto_version, nboot_acl, 1811 rpm); 1812 if (ret) { 1813 tb_err(tb, "failed to send driver ready to ICM\n"); 1814 return ret; 1815 } 1816 1817 /* 1818 * Hold on here until the switch config space is accessible so 1819 * that we can read root switch config successfully. 1820 */ 1821 do { 1822 struct tb_cfg_result res; 1823 u32 tmp; 1824 1825 res = tb_cfg_read_raw(tb->ctl, &tmp, 0, 0, TB_CFG_SWITCH, 1826 0, 1, 100); 1827 if (!res.err) 1828 return 0; 1829 1830 msleep(50); 1831 } while (--retries); 1832 1833 tb_err(tb, "failed to read root switch config space, giving up\n"); 1834 return -ETIMEDOUT; 1835 } 1836 1837 static int icm_firmware_reset(struct tb *tb, struct tb_nhi *nhi) 1838 { 1839 struct icm *icm = tb_priv(tb); 1840 u32 val; 1841 1842 if (!icm->upstream_port) 1843 return -ENODEV; 1844 1845 /* Put ARC to wait for CIO reset event to happen */ 1846 val = ioread32(nhi->iobase + REG_FW_STS); 1847 val |= REG_FW_STS_CIO_RESET_REQ; 1848 iowrite32(val, nhi->iobase + REG_FW_STS); 1849 1850 /* Re-start ARC */ 1851 val = ioread32(nhi->iobase + REG_FW_STS); 1852 val |= REG_FW_STS_ICM_EN_INVERT; 1853 val |= REG_FW_STS_ICM_EN_CPU; 1854 iowrite32(val, nhi->iobase + REG_FW_STS); 1855 1856 /* Trigger CIO reset now */ 1857 return icm->cio_reset(tb); 1858 } 1859 1860 static int icm_firmware_start(struct tb *tb, struct tb_nhi *nhi) 1861 { 1862 unsigned int retries = 10; 1863 int ret; 1864 u32 val; 1865 1866 /* Check if the ICM firmware is already running */ 1867 if (icm_firmware_running(nhi)) 1868 return 0; 1869 1870 dev_dbg(nhi->dev, "starting ICM firmware\n"); 1871 1872 ret = icm_firmware_reset(tb, nhi); 1873 if (ret) 1874 return ret; 1875 1876 /* Wait until the ICM firmware tells us it is up and running */ 1877 do { 1878 /* Check that the ICM firmware is running */ 1879 val = ioread32(nhi->iobase + REG_FW_STS); 1880 if (val & REG_FW_STS_NVM_AUTH_DONE) 1881 return 0; 1882 1883 msleep(300); 1884 } while (--retries); 1885 1886 return -ETIMEDOUT; 1887 } 1888 1889 static int icm_reset_phy_port(struct tb *tb, int phy_port) 1890 { 1891 struct icm *icm = tb_priv(tb); 1892 u32 state0, state1; 1893 int port0, port1; 1894 u32 val0, val1; 1895 int ret; 1896 1897 if (!icm->upstream_port) 1898 return 0; 1899 1900 if (phy_port) { 1901 port0 = 3; 1902 port1 = 4; 1903 } else { 1904 port0 = 1; 1905 port1 = 2; 1906 } 1907 1908 /* 1909 * Read link status of both null ports belonging to a single 1910 * physical port. 1911 */ 1912 ret = pcie2cio_read(icm, TB_CFG_PORT, port0, PHY_PORT_CS1, &val0); 1913 if (ret) 1914 return ret; 1915 ret = pcie2cio_read(icm, TB_CFG_PORT, port1, PHY_PORT_CS1, &val1); 1916 if (ret) 1917 return ret; 1918 1919 state0 = val0 & PHY_PORT_CS1_LINK_STATE_MASK; 1920 state0 >>= PHY_PORT_CS1_LINK_STATE_SHIFT; 1921 state1 = val1 & PHY_PORT_CS1_LINK_STATE_MASK; 1922 state1 >>= PHY_PORT_CS1_LINK_STATE_SHIFT; 1923 1924 /* If they are both up we need to reset them now */ 1925 if (state0 != TB_PORT_UP || state1 != TB_PORT_UP) 1926 return 0; 1927 1928 val0 |= PHY_PORT_CS1_LINK_DISABLE; 1929 ret = pcie2cio_write(icm, TB_CFG_PORT, port0, PHY_PORT_CS1, val0); 1930 if (ret) 1931 return ret; 1932 1933 val1 |= PHY_PORT_CS1_LINK_DISABLE; 1934 ret = pcie2cio_write(icm, TB_CFG_PORT, port1, PHY_PORT_CS1, val1); 1935 if (ret) 1936 return ret; 1937 1938 /* Wait a bit and then re-enable both ports */ 1939 usleep_range(10, 100); 1940 1941 ret = pcie2cio_read(icm, TB_CFG_PORT, port0, PHY_PORT_CS1, &val0); 1942 if (ret) 1943 return ret; 1944 ret = pcie2cio_read(icm, TB_CFG_PORT, port1, PHY_PORT_CS1, &val1); 1945 if (ret) 1946 return ret; 1947 1948 val0 &= ~PHY_PORT_CS1_LINK_DISABLE; 1949 ret = pcie2cio_write(icm, TB_CFG_PORT, port0, PHY_PORT_CS1, val0); 1950 if (ret) 1951 return ret; 1952 1953 val1 &= ~PHY_PORT_CS1_LINK_DISABLE; 1954 return pcie2cio_write(icm, TB_CFG_PORT, port1, PHY_PORT_CS1, val1); 1955 } 1956 1957 static int icm_firmware_init(struct tb *tb) 1958 { 1959 struct icm *icm = tb_priv(tb); 1960 struct tb_nhi *nhi = tb->nhi; 1961 int ret; 1962 1963 ret = icm_firmware_start(tb, nhi); 1964 if (ret) { 1965 dev_err(nhi->dev, "could not start ICM firmware\n"); 1966 return ret; 1967 } 1968 1969 if (icm->get_mode) { 1970 ret = icm->get_mode(tb); 1971 1972 switch (ret) { 1973 case NHI_FW_SAFE_MODE: 1974 icm->safe_mode = true; 1975 break; 1976 1977 case NHI_FW_CM_MODE: 1978 /* Ask ICM to accept all Thunderbolt devices */ 1979 nhi_mailbox_cmd(nhi, NHI_MAILBOX_ALLOW_ALL_DEVS, 0); 1980 break; 1981 1982 default: 1983 if (ret < 0) 1984 return ret; 1985 1986 tb_err(tb, "ICM firmware is in wrong mode: %u\n", ret); 1987 return -ENODEV; 1988 } 1989 } 1990 1991 /* 1992 * Reset both physical ports if there is anything connected to 1993 * them already. 1994 */ 1995 ret = icm_reset_phy_port(tb, 0); 1996 if (ret) 1997 dev_warn(nhi->dev, "failed to reset links on port0\n"); 1998 ret = icm_reset_phy_port(tb, 1); 1999 if (ret) 2000 dev_warn(nhi->dev, "failed to reset links on port1\n"); 2001 2002 return 0; 2003 } 2004 2005 static int icm_driver_ready(struct tb *tb) 2006 { 2007 struct icm *icm = tb_priv(tb); 2008 int ret; 2009 2010 ret = icm_firmware_init(tb); 2011 if (ret) 2012 return ret; 2013 2014 if (icm->safe_mode) { 2015 tb_info(tb, "Thunderbolt host controller is in safe mode.\n"); 2016 tb_info(tb, "You need to update NVM firmware of the controller before it can be used.\n"); 2017 tb_info(tb, "Use fwupd tool to apply update. Check Documentation/admin-guide/thunderbolt.rst for details.\n"); 2018 return 0; 2019 } 2020 2021 ret = __icm_driver_ready(tb, &tb->security_level, &icm->proto_version, 2022 &tb->nboot_acl, &icm->rpm); 2023 if (ret) 2024 return ret; 2025 2026 /* 2027 * Make sure the number of supported preboot ACL matches what we 2028 * expect or disable the whole feature. 2029 */ 2030 if (tb->nboot_acl > icm->max_boot_acl) 2031 tb->nboot_acl = 0; 2032 2033 if (icm->proto_version >= 3) 2034 tb_dbg(tb, "USB4 proxy operations supported\n"); 2035 2036 return 0; 2037 } 2038 2039 static int icm_suspend(struct tb *tb) 2040 { 2041 struct icm *icm = tb_priv(tb); 2042 2043 if (icm->save_devices) 2044 icm->save_devices(tb); 2045 2046 nhi_mailbox_cmd(tb->nhi, NHI_MAILBOX_DRV_UNLOADS, 0); 2047 return 0; 2048 } 2049 2050 /* 2051 * Mark all switches (except root switch) below this one unplugged. ICM 2052 * firmware will send us an updated list of switches after we have send 2053 * it driver ready command. If a switch is not in that list it will be 2054 * removed when we perform rescan. 2055 */ 2056 static void icm_unplug_children(struct tb_switch *sw) 2057 { 2058 struct tb_port *port; 2059 2060 if (tb_route(sw)) 2061 sw->is_unplugged = true; 2062 2063 tb_switch_for_each_port(sw, port) { 2064 if (port->xdomain) 2065 port->xdomain->is_unplugged = true; 2066 else if (tb_port_has_remote(port)) 2067 icm_unplug_children(port->remote->sw); 2068 } 2069 } 2070 2071 static int complete_rpm(struct device *dev, void *data) 2072 { 2073 struct tb_switch *sw = tb_to_switch(dev); 2074 2075 if (sw) 2076 complete(&sw->rpm_complete); 2077 return 0; 2078 } 2079 2080 static void remove_unplugged_switch(struct tb_switch *sw) 2081 { 2082 struct device *parent = get_device(sw->dev.parent); 2083 2084 pm_runtime_get_sync(parent); 2085 2086 /* 2087 * Signal this and switches below for rpm_complete because 2088 * tb_switch_remove() calls pm_runtime_get_sync() that then waits 2089 * for it. 2090 */ 2091 complete_rpm(&sw->dev, NULL); 2092 bus_for_each_dev(&tb_bus_type, &sw->dev, NULL, complete_rpm); 2093 tb_switch_remove(sw); 2094 2095 pm_runtime_mark_last_busy(parent); 2096 pm_runtime_put_autosuspend(parent); 2097 2098 put_device(parent); 2099 } 2100 2101 static void icm_free_unplugged_children(struct tb_switch *sw) 2102 { 2103 struct tb_port *port; 2104 2105 tb_switch_for_each_port(sw, port) { 2106 if (port->xdomain && port->xdomain->is_unplugged) { 2107 tb_xdomain_remove(port->xdomain); 2108 port->xdomain = NULL; 2109 } else if (tb_port_has_remote(port)) { 2110 if (port->remote->sw->is_unplugged) { 2111 remove_unplugged_switch(port->remote->sw); 2112 port->remote = NULL; 2113 } else { 2114 icm_free_unplugged_children(port->remote->sw); 2115 } 2116 } 2117 } 2118 } 2119 2120 static void icm_rescan_work(struct work_struct *work) 2121 { 2122 struct icm *icm = container_of(work, struct icm, rescan_work.work); 2123 struct tb *tb = icm_to_tb(icm); 2124 2125 mutex_lock(&tb->lock); 2126 if (tb->root_switch) 2127 icm_free_unplugged_children(tb->root_switch); 2128 mutex_unlock(&tb->lock); 2129 2130 tb_domain_unregister_unplugged_xdomains(tb); 2131 } 2132 2133 static void icm_complete(struct tb *tb) 2134 { 2135 struct icm *icm = tb_priv(tb); 2136 2137 if (tb->nhi->going_away) 2138 return; 2139 2140 /* 2141 * If RTD3 was vetoed before we entered system suspend allow it 2142 * again now before driver ready is sent. Firmware sends a new RTD3 2143 * veto if it is still the case after we have sent it driver ready 2144 * command. 2145 */ 2146 icm_veto_end(tb); 2147 icm_unplug_children(tb->root_switch); 2148 2149 /* 2150 * Now all existing children should be resumed, start events 2151 * from ICM to get updated status. 2152 */ 2153 __icm_driver_ready(tb, NULL, NULL, NULL, NULL); 2154 2155 /* 2156 * We do not get notifications of devices that have been 2157 * unplugged during suspend so schedule rescan to clean them up 2158 * if any. 2159 */ 2160 queue_delayed_work(tb->wq, &icm->rescan_work, msecs_to_jiffies(500)); 2161 } 2162 2163 static int icm_runtime_suspend(struct tb *tb) 2164 { 2165 nhi_mailbox_cmd(tb->nhi, NHI_MAILBOX_DRV_UNLOADS, 0); 2166 return 0; 2167 } 2168 2169 static int icm_runtime_suspend_switch(struct tb_switch *sw) 2170 { 2171 if (tb_route(sw)) 2172 reinit_completion(&sw->rpm_complete); 2173 return 0; 2174 } 2175 2176 static int icm_runtime_resume_switch(struct tb_switch *sw) 2177 { 2178 if (tb_route(sw)) { 2179 if (!wait_for_completion_timeout(&sw->rpm_complete, 2180 msecs_to_jiffies(500))) { 2181 dev_dbg(&sw->dev, "runtime resuming timed out\n"); 2182 } 2183 } 2184 return 0; 2185 } 2186 2187 static int icm_runtime_resume(struct tb *tb) 2188 { 2189 /* 2190 * We can reuse the same resume functionality as with system 2191 * suspend. 2192 */ 2193 icm_complete(tb); 2194 return 0; 2195 } 2196 2197 static int icm_start(struct tb *tb, bool not_used) 2198 { 2199 struct icm *icm = tb_priv(tb); 2200 int ret; 2201 2202 if (icm->safe_mode) 2203 tb->root_switch = tb_switch_alloc_safe_mode(tb, &tb->dev, 0); 2204 else 2205 tb->root_switch = tb_switch_alloc(tb, &tb->dev, 0); 2206 if (IS_ERR(tb->root_switch)) 2207 return PTR_ERR(tb->root_switch); 2208 2209 tb->root_switch->no_nvm_upgrade = !icm->can_upgrade_nvm; 2210 tb->root_switch->rpm = icm->rpm; 2211 2212 if (icm->set_uuid) 2213 icm->set_uuid(tb); 2214 2215 ret = tb_switch_add(tb->root_switch); 2216 if (ret) { 2217 tb_switch_put(tb->root_switch); 2218 tb->root_switch = NULL; 2219 } 2220 2221 return ret; 2222 } 2223 2224 static void icm_stop(struct tb *tb) 2225 { 2226 struct icm *icm = tb_priv(tb); 2227 2228 cancel_delayed_work(&icm->rescan_work); 2229 tb_switch_remove(tb->root_switch); 2230 tb->root_switch = NULL; 2231 nhi_mailbox_cmd(tb->nhi, NHI_MAILBOX_DRV_UNLOADS, 0); 2232 kfree(icm->last_nvm_auth); 2233 icm->last_nvm_auth = NULL; 2234 } 2235 2236 static int icm_disconnect_pcie_paths(struct tb *tb) 2237 { 2238 return nhi_mailbox_cmd(tb->nhi, NHI_MAILBOX_DISCONNECT_PCIE_PATHS, 0); 2239 } 2240 2241 static void icm_usb4_switch_nvm_auth_complete(void *data) 2242 { 2243 struct usb4_switch_nvm_auth *auth = data; 2244 struct icm *icm = auth->icm; 2245 struct tb *tb = icm_to_tb(icm); 2246 2247 tb_dbg(tb, "NVM_AUTH response for %llx flags %#x status %#x\n", 2248 get_route(auth->reply.route_hi, auth->reply.route_lo), 2249 auth->reply.hdr.flags, auth->reply.status); 2250 2251 mutex_lock(&tb->lock); 2252 if (WARN_ON(icm->last_nvm_auth)) 2253 kfree(icm->last_nvm_auth); 2254 icm->last_nvm_auth = auth; 2255 mutex_unlock(&tb->lock); 2256 } 2257 2258 static int icm_usb4_switch_nvm_authenticate(struct tb *tb, u64 route) 2259 { 2260 struct usb4_switch_nvm_auth *auth; 2261 struct icm *icm = tb_priv(tb); 2262 struct tb_cfg_request *req; 2263 int ret; 2264 2265 auth = kzalloc_obj(*auth); 2266 if (!auth) 2267 return -ENOMEM; 2268 2269 auth->icm = icm; 2270 auth->request.hdr.code = ICM_USB4_SWITCH_OP; 2271 auth->request.route_hi = upper_32_bits(route); 2272 auth->request.route_lo = lower_32_bits(route); 2273 auth->request.opcode = USB4_SWITCH_OP_NVM_AUTH; 2274 2275 req = tb_cfg_request_alloc(); 2276 if (!req) { 2277 ret = -ENOMEM; 2278 goto err_free_auth; 2279 } 2280 2281 req->match = icm_match; 2282 req->copy = icm_copy; 2283 req->request = &auth->request; 2284 req->request_size = sizeof(auth->request); 2285 req->request_type = TB_CFG_PKG_ICM_CMD; 2286 req->response = &auth->reply; 2287 req->npackets = 1; 2288 req->response_size = sizeof(auth->reply); 2289 req->response_type = TB_CFG_PKG_ICM_RESP; 2290 2291 tb_dbg(tb, "NVM_AUTH request for %llx\n", route); 2292 2293 mutex_lock(&icm->request_lock); 2294 ret = tb_cfg_request(tb->ctl, req, icm_usb4_switch_nvm_auth_complete, 2295 auth); 2296 mutex_unlock(&icm->request_lock); 2297 2298 tb_cfg_request_put(req); 2299 if (ret) 2300 goto err_free_auth; 2301 return 0; 2302 2303 err_free_auth: 2304 kfree(auth); 2305 return ret; 2306 } 2307 2308 static int icm_usb4_switch_op(struct tb_switch *sw, u16 opcode, u32 *metadata, 2309 u8 *status, const void *tx_data, size_t tx_data_len, 2310 void *rx_data, size_t rx_data_len) 2311 { 2312 struct icm_usb4_switch_op_response reply; 2313 struct icm_usb4_switch_op request; 2314 struct tb *tb = sw->tb; 2315 struct icm *icm = tb_priv(tb); 2316 u64 route = tb_route(sw); 2317 int ret; 2318 2319 /* 2320 * USB4 router operation proxy is supported in firmware if the 2321 * protocol version is 3 or higher. 2322 */ 2323 if (icm->proto_version < 3) 2324 return -EOPNOTSUPP; 2325 2326 /* 2327 * NVM_AUTH is a special USB4 proxy operation that does not 2328 * return immediately so handle it separately. 2329 */ 2330 if (opcode == USB4_SWITCH_OP_NVM_AUTH) 2331 return icm_usb4_switch_nvm_authenticate(tb, route); 2332 2333 memset(&request, 0, sizeof(request)); 2334 request.hdr.code = ICM_USB4_SWITCH_OP; 2335 request.route_hi = upper_32_bits(route); 2336 request.route_lo = lower_32_bits(route); 2337 request.opcode = opcode; 2338 if (metadata) 2339 request.metadata = *metadata; 2340 2341 if (tx_data_len) { 2342 request.data_len_valid |= ICM_USB4_SWITCH_DATA_VALID; 2343 if (tx_data_len < ARRAY_SIZE(request.data)) 2344 request.data_len_valid = 2345 tx_data_len & ICM_USB4_SWITCH_DATA_LEN_MASK; 2346 memcpy(request.data, tx_data, tx_data_len * sizeof(u32)); 2347 } 2348 2349 memset(&reply, 0, sizeof(reply)); 2350 ret = icm_request(tb, &request, sizeof(request), &reply, sizeof(reply), 2351 1, ICM_RETRIES, ICM_TIMEOUT); 2352 if (ret) 2353 return ret; 2354 2355 if (reply.hdr.flags & ICM_FLAGS_ERROR) 2356 return -EIO; 2357 2358 if (status) 2359 *status = reply.status; 2360 2361 if (metadata) 2362 *metadata = reply.metadata; 2363 2364 if (rx_data_len) 2365 memcpy(rx_data, reply.data, rx_data_len * sizeof(u32)); 2366 2367 return 0; 2368 } 2369 2370 static int icm_usb4_switch_nvm_authenticate_status(struct tb_switch *sw, 2371 u32 *status) 2372 { 2373 struct usb4_switch_nvm_auth *auth; 2374 struct tb *tb = sw->tb; 2375 struct icm *icm = tb_priv(tb); 2376 int ret = 0; 2377 2378 if (icm->proto_version < 3) 2379 return -EOPNOTSUPP; 2380 2381 auth = icm->last_nvm_auth; 2382 icm->last_nvm_auth = NULL; 2383 2384 if (auth && auth->reply.route_hi == sw->config.route_hi && 2385 auth->reply.route_lo == sw->config.route_lo) { 2386 tb_dbg(tb, "NVM_AUTH found for %llx flags %#x status %#x\n", 2387 tb_route(sw), auth->reply.hdr.flags, auth->reply.status); 2388 if (auth->reply.hdr.flags & ICM_FLAGS_ERROR) 2389 ret = -EIO; 2390 else 2391 *status = auth->reply.status; 2392 } else { 2393 *status = 0; 2394 } 2395 2396 kfree(auth); 2397 return ret; 2398 } 2399 2400 /* Falcon Ridge */ 2401 static const struct tb_cm_ops icm_fr_ops = { 2402 .driver_ready = icm_driver_ready, 2403 .start = icm_start, 2404 .stop = icm_stop, 2405 .suspend = icm_suspend, 2406 .complete = icm_complete, 2407 .handle_event = icm_handle_event, 2408 .approve_switch = icm_fr_approve_switch, 2409 .add_switch_key = icm_fr_add_switch_key, 2410 .challenge_switch_key = icm_fr_challenge_switch_key, 2411 .disconnect_pcie_paths = icm_disconnect_pcie_paths, 2412 .approve_xdomain_paths = icm_fr_approve_xdomain_paths, 2413 .disconnect_xdomain_paths = icm_fr_disconnect_xdomain_paths, 2414 }; 2415 2416 /* Alpine Ridge */ 2417 static const struct tb_cm_ops icm_ar_ops = { 2418 .driver_ready = icm_driver_ready, 2419 .start = icm_start, 2420 .stop = icm_stop, 2421 .suspend = icm_suspend, 2422 .complete = icm_complete, 2423 .runtime_suspend = icm_runtime_suspend, 2424 .runtime_resume = icm_runtime_resume, 2425 .runtime_suspend_switch = icm_runtime_suspend_switch, 2426 .runtime_resume_switch = icm_runtime_resume_switch, 2427 .handle_event = icm_handle_event, 2428 .get_boot_acl = icm_ar_get_boot_acl, 2429 .set_boot_acl = icm_ar_set_boot_acl, 2430 .approve_switch = icm_fr_approve_switch, 2431 .add_switch_key = icm_fr_add_switch_key, 2432 .challenge_switch_key = icm_fr_challenge_switch_key, 2433 .disconnect_pcie_paths = icm_disconnect_pcie_paths, 2434 .approve_xdomain_paths = icm_fr_approve_xdomain_paths, 2435 .disconnect_xdomain_paths = icm_fr_disconnect_xdomain_paths, 2436 }; 2437 2438 /* Titan Ridge */ 2439 static const struct tb_cm_ops icm_tr_ops = { 2440 .driver_ready = icm_driver_ready, 2441 .start = icm_start, 2442 .stop = icm_stop, 2443 .suspend = icm_suspend, 2444 .complete = icm_complete, 2445 .runtime_suspend = icm_runtime_suspend, 2446 .runtime_resume = icm_runtime_resume, 2447 .runtime_suspend_switch = icm_runtime_suspend_switch, 2448 .runtime_resume_switch = icm_runtime_resume_switch, 2449 .handle_event = icm_handle_event, 2450 .get_boot_acl = icm_ar_get_boot_acl, 2451 .set_boot_acl = icm_ar_set_boot_acl, 2452 .approve_switch = icm_tr_approve_switch, 2453 .add_switch_key = icm_tr_add_switch_key, 2454 .challenge_switch_key = icm_tr_challenge_switch_key, 2455 .disconnect_pcie_paths = icm_disconnect_pcie_paths, 2456 .approve_xdomain_paths = icm_tr_approve_xdomain_paths, 2457 .disconnect_xdomain_paths = icm_tr_disconnect_xdomain_paths, 2458 .usb4_switch_op = icm_usb4_switch_op, 2459 .usb4_switch_nvm_authenticate_status = 2460 icm_usb4_switch_nvm_authenticate_status, 2461 }; 2462 2463 /* Ice Lake */ 2464 static const struct tb_cm_ops icm_icl_ops = { 2465 .driver_ready = icm_driver_ready, 2466 .start = icm_start, 2467 .stop = icm_stop, 2468 .complete = icm_complete, 2469 .runtime_suspend = icm_runtime_suspend, 2470 .runtime_resume = icm_runtime_resume, 2471 .handle_event = icm_handle_event, 2472 .approve_xdomain_paths = icm_tr_approve_xdomain_paths, 2473 .disconnect_xdomain_paths = icm_tr_disconnect_xdomain_paths, 2474 .usb4_switch_op = icm_usb4_switch_op, 2475 .usb4_switch_nvm_authenticate_status = 2476 icm_usb4_switch_nvm_authenticate_status, 2477 }; 2478 2479 struct tb *icm_probe(struct tb_nhi *nhi) 2480 { 2481 struct pci_dev *pdev = to_pci_dev(nhi->dev); 2482 struct icm *icm; 2483 struct tb *tb; 2484 2485 tb = tb_domain_alloc(nhi, ICM_TIMEOUT, sizeof(struct icm)); 2486 if (!tb) 2487 return NULL; 2488 2489 icm = tb_priv(tb); 2490 INIT_DELAYED_WORK(&icm->rescan_work, icm_rescan_work); 2491 mutex_init(&icm->request_lock); 2492 2493 switch (pdev->device) { 2494 case PCI_DEVICE_ID_INTEL_FALCON_RIDGE_2C_NHI: 2495 case PCI_DEVICE_ID_INTEL_FALCON_RIDGE_4C_NHI: 2496 icm->can_upgrade_nvm = true; 2497 icm->is_supported = icm_fr_is_supported; 2498 icm->get_route = icm_fr_get_route; 2499 icm->save_devices = icm_fr_save_devices; 2500 icm->driver_ready = icm_fr_driver_ready; 2501 icm->device_connected = icm_fr_device_connected; 2502 icm->device_disconnected = icm_fr_device_disconnected; 2503 icm->xdomain_connected = icm_fr_xdomain_connected; 2504 icm->xdomain_disconnected = icm_fr_xdomain_disconnected; 2505 tb->cm_ops = &icm_fr_ops; 2506 break; 2507 2508 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_2C_NHI: 2509 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_4C_NHI: 2510 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_LP_NHI: 2511 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_C_4C_NHI: 2512 case PCI_DEVICE_ID_INTEL_ALPINE_RIDGE_C_2C_NHI: 2513 icm->max_boot_acl = ICM_AR_PREBOOT_ACL_ENTRIES; 2514 /* 2515 * NVM upgrade has not been tested on Apple systems and 2516 * they don't provide images publicly either. To be on 2517 * the safe side prevent root switch NVM upgrade on Macs 2518 * for now. 2519 */ 2520 icm->can_upgrade_nvm = !x86_apple_machine; 2521 icm->is_supported = icm_ar_is_supported; 2522 icm->cio_reset = icm_ar_cio_reset; 2523 icm->get_mode = icm_ar_get_mode; 2524 icm->get_route = icm_ar_get_route; 2525 icm->save_devices = icm_fr_save_devices; 2526 icm->driver_ready = icm_ar_driver_ready; 2527 icm->device_connected = icm_fr_device_connected; 2528 icm->device_disconnected = icm_fr_device_disconnected; 2529 icm->xdomain_connected = icm_fr_xdomain_connected; 2530 icm->xdomain_disconnected = icm_fr_xdomain_disconnected; 2531 tb->cm_ops = &icm_ar_ops; 2532 break; 2533 2534 case PCI_DEVICE_ID_INTEL_TITAN_RIDGE_2C_NHI: 2535 case PCI_DEVICE_ID_INTEL_TITAN_RIDGE_4C_NHI: 2536 icm->max_boot_acl = ICM_AR_PREBOOT_ACL_ENTRIES; 2537 icm->can_upgrade_nvm = !x86_apple_machine; 2538 icm->is_supported = icm_ar_is_supported; 2539 icm->cio_reset = icm_tr_cio_reset; 2540 icm->get_mode = icm_ar_get_mode; 2541 icm->driver_ready = icm_tr_driver_ready; 2542 icm->device_connected = icm_tr_device_connected; 2543 icm->device_disconnected = icm_tr_device_disconnected; 2544 icm->xdomain_connected = icm_tr_xdomain_connected; 2545 icm->xdomain_disconnected = icm_tr_xdomain_disconnected; 2546 tb->cm_ops = &icm_tr_ops; 2547 break; 2548 2549 case PCI_DEVICE_ID_INTEL_ICL_NHI0: 2550 case PCI_DEVICE_ID_INTEL_ICL_NHI1: 2551 icm->is_supported = icm_fr_is_supported; 2552 icm->driver_ready = icm_icl_driver_ready; 2553 icm->set_uuid = icm_icl_set_uuid; 2554 icm->device_connected = icm_icl_device_connected; 2555 icm->device_disconnected = icm_tr_device_disconnected; 2556 icm->xdomain_connected = icm_tr_xdomain_connected; 2557 icm->xdomain_disconnected = icm_tr_xdomain_disconnected; 2558 icm->rtd3_veto = icm_icl_rtd3_veto; 2559 tb->cm_ops = &icm_icl_ops; 2560 break; 2561 2562 case PCI_DEVICE_ID_INTEL_TGL_NHI0: 2563 case PCI_DEVICE_ID_INTEL_TGL_NHI1: 2564 case PCI_DEVICE_ID_INTEL_TGL_H_NHI0: 2565 case PCI_DEVICE_ID_INTEL_TGL_H_NHI1: 2566 case PCI_DEVICE_ID_INTEL_ADL_NHI0: 2567 case PCI_DEVICE_ID_INTEL_ADL_NHI1: 2568 case PCI_DEVICE_ID_INTEL_RPL_NHI0: 2569 case PCI_DEVICE_ID_INTEL_RPL_NHI1: 2570 case PCI_DEVICE_ID_INTEL_MTL_M_NHI0: 2571 case PCI_DEVICE_ID_INTEL_MTL_P_NHI0: 2572 case PCI_DEVICE_ID_INTEL_MTL_P_NHI1: 2573 icm->is_supported = icm_tgl_is_supported; 2574 icm->driver_ready = icm_icl_driver_ready; 2575 icm->set_uuid = icm_icl_set_uuid; 2576 icm->device_connected = icm_icl_device_connected; 2577 icm->device_disconnected = icm_tr_device_disconnected; 2578 icm->xdomain_connected = icm_tr_xdomain_connected; 2579 icm->xdomain_disconnected = icm_tr_xdomain_disconnected; 2580 icm->rtd3_veto = icm_icl_rtd3_veto; 2581 tb->cm_ops = &icm_icl_ops; 2582 break; 2583 2584 case PCI_DEVICE_ID_INTEL_MAPLE_RIDGE_2C_NHI: 2585 case PCI_DEVICE_ID_INTEL_MAPLE_RIDGE_4C_NHI: 2586 icm->can_upgrade_nvm = true; 2587 icm->is_supported = icm_tgl_is_supported; 2588 icm->get_mode = icm_ar_get_mode; 2589 icm->driver_ready = icm_tr_driver_ready; 2590 icm->device_connected = icm_tr_device_connected; 2591 icm->device_disconnected = icm_tr_device_disconnected; 2592 icm->xdomain_connected = icm_tr_xdomain_connected; 2593 icm->xdomain_disconnected = icm_tr_xdomain_disconnected; 2594 tb->cm_ops = &icm_tr_ops; 2595 break; 2596 } 2597 2598 if (!icm->is_supported || !icm->is_supported(tb)) { 2599 dev_dbg(nhi->dev, "ICM not supported on this controller\n"); 2600 tb_domain_put(tb); 2601 return NULL; 2602 } 2603 2604 tb_dbg(tb, "using firmware connection manager\n"); 2605 2606 return tb; 2607 } 2608