1 // SPDX-License-Identifier: MIT 2 /* 3 * Copyright © 2016-2019 Intel Corporation 4 */ 5 6 #include <linux/circ_buf.h> 7 #include <linux/ktime.h> 8 #include <linux/string_helpers.h> 9 #include <linux/time64.h> 10 #include <linux/timekeeping.h> 11 12 #include "i915_drv.h" 13 #include "i915_wait_util.h" 14 #include "intel_guc_ct.h" 15 #include "intel_guc_print.h" 16 17 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG) 18 enum { 19 CT_DEAD_ALIVE = 0, 20 CT_DEAD_SETUP, 21 CT_DEAD_WRITE, 22 CT_DEAD_DEADLOCK, 23 CT_DEAD_H2G_HAS_ROOM, 24 CT_DEAD_READ, 25 CT_DEAD_PROCESS_FAILED, 26 }; 27 28 static void ct_dead_ct_worker_func(struct work_struct *w); 29 30 #define CT_DEAD(ct, reason) \ 31 do { \ 32 if (!(ct)->dead_ct_reported) { \ 33 (ct)->dead_ct_reason |= 1 << CT_DEAD_##reason; \ 34 queue_work(system_dfl_wq, &(ct)->dead_ct_worker); \ 35 } \ 36 } while (0) 37 #else 38 #define CT_DEAD(ct, reason) do { } while (0) 39 #endif 40 41 static inline struct intel_guc *ct_to_guc(struct intel_guc_ct *ct) 42 { 43 return container_of(ct, struct intel_guc, ct); 44 } 45 46 #define CT_ERROR(_ct, _fmt, ...) \ 47 guc_err(ct_to_guc(_ct), "CT: " _fmt, ##__VA_ARGS__) 48 #ifdef CONFIG_DRM_I915_DEBUG_GUC 49 #define CT_DEBUG(_ct, _fmt, ...) \ 50 guc_dbg(ct_to_guc(_ct), "CT: " _fmt, ##__VA_ARGS__) 51 #else 52 #define CT_DEBUG(...) do { } while (0) 53 #endif 54 #define CT_PROBE_ERROR(_ct, _fmt, ...) \ 55 guc_probe_error(ct_to_guc(ct), "CT: " _fmt, ##__VA_ARGS__) 56 57 /** 58 * DOC: CTB Blob 59 * 60 * We allocate single blob to hold both CTB descriptors and buffers: 61 * 62 * +--------+-----------------------------------------------+------+ 63 * | offset | contents | size | 64 * +========+===============================================+======+ 65 * | 0x0000 | H2G `CTB Descriptor`_ (send) | | 66 * +--------+-----------------------------------------------+ 4K | 67 * | 0x0800 | G2H `CTB Descriptor`_ (recv) | | 68 * +--------+-----------------------------------------------+------+ 69 * | 0x1000 | H2G `CT Buffer`_ (send) | n*4K | 70 * | | | | 71 * +--------+-----------------------------------------------+------+ 72 * | 0x1000 | G2H `CT Buffer`_ (recv) | m*4K | 73 * | + n*4K | | | 74 * +--------+-----------------------------------------------+------+ 75 * 76 * Size of each `CT Buffer`_ must be multiple of 4K. 77 * We don't expect too many messages in flight at any time, unless we are 78 * using the GuC submission. In that case each request requires a minimum 79 * 2 dwords which gives us a maximum 256 queue'd requests. Hopefully this 80 * enough space to avoid backpressure on the driver. We increase the size 81 * of the receive buffer (relative to the send) to ensure a G2H response 82 * CTB has a landing spot. 83 */ 84 #define CTB_DESC_SIZE ALIGN(sizeof(struct guc_ct_buffer_desc), SZ_2K) 85 #define CTB_H2G_BUFFER_SIZE (SZ_4K) 86 #define CTB_G2H_BUFFER_SIZE (4 * CTB_H2G_BUFFER_SIZE) 87 #define G2H_ROOM_BUFFER_SIZE (CTB_G2H_BUFFER_SIZE / 4) 88 89 struct ct_request { 90 struct list_head link; 91 u32 fence; 92 u32 status; 93 u32 response_len; 94 u32 *response_buf; 95 }; 96 97 struct ct_incoming_msg { 98 struct list_head link; 99 u32 size; 100 u32 msg[] __counted_by(size); 101 }; 102 103 enum { CTB_SEND = 0, CTB_RECV = 1 }; 104 105 enum { CTB_OWNER_HOST = 0 }; 106 107 /* 108 * Some H2G commands involve a synchronous response that the driver needs 109 * to wait for. In such cases, a timeout is required to prevent the driver 110 * from waiting forever in the case of an error (either no error response 111 * is defined in the protocol or something has died and requires a reset). 112 * The specific command may be defined as having a time bound response but 113 * the CT is a queue and that time guarantee only starts from the point 114 * when the command reaches the head of the queue and is processed by GuC. 115 * 116 * Ideally there would be a helper to report the progress of a given 117 * command through the CT. However, that would require a significant 118 * amount of work in the CT layer. In the meantime, provide a reasonable 119 * estimation of the worst case latency it should take for the entire 120 * queue to drain. And therefore, how long a caller should wait before 121 * giving up on their request. The current estimate is based on empirical 122 * measurement of a test that fills the buffer with context creation and 123 * destruction requests as they seem to be the slowest operation. 124 */ 125 long intel_guc_ct_max_queue_time_jiffies(void) 126 { 127 /* 128 * A 4KB buffer full of context destroy commands takes a little 129 * over a second to process so bump that to 2s to be super safe. 130 */ 131 return (CTB_H2G_BUFFER_SIZE * HZ) / SZ_2K; 132 } 133 134 static void ct_receive_tasklet_func(struct tasklet_struct *t); 135 static void ct_incoming_request_worker_func(struct work_struct *w); 136 137 /** 138 * intel_guc_ct_init_early - Initialize CT state without requiring device access 139 * @ct: pointer to CT struct 140 */ 141 void intel_guc_ct_init_early(struct intel_guc_ct *ct) 142 { 143 spin_lock_init(&ct->ctbs.send.lock); 144 spin_lock_init(&ct->ctbs.recv.lock); 145 spin_lock_init(&ct->requests.lock); 146 INIT_LIST_HEAD(&ct->requests.pending); 147 INIT_LIST_HEAD(&ct->requests.incoming); 148 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG) 149 INIT_WORK(&ct->dead_ct_worker, ct_dead_ct_worker_func); 150 #endif 151 INIT_WORK(&ct->requests.worker, ct_incoming_request_worker_func); 152 tasklet_setup(&ct->receive_tasklet, ct_receive_tasklet_func); 153 init_waitqueue_head(&ct->wq); 154 } 155 156 static void guc_ct_buffer_desc_init(struct guc_ct_buffer_desc *desc) 157 { 158 memset(desc, 0, sizeof(*desc)); 159 } 160 161 static void guc_ct_buffer_reset(struct intel_guc_ct_buffer *ctb) 162 { 163 u32 space; 164 165 ctb->broken = false; 166 ctb->tail = 0; 167 ctb->head = 0; 168 space = CIRC_SPACE(ctb->tail, ctb->head, ctb->size) - ctb->resv_space; 169 atomic_set(&ctb->space, space); 170 171 guc_ct_buffer_desc_init(ctb->desc); 172 } 173 174 static void guc_ct_buffer_init(struct intel_guc_ct_buffer *ctb, 175 struct guc_ct_buffer_desc *desc, 176 u32 *cmds, u32 size_in_bytes, u32 resv_space) 177 { 178 GEM_BUG_ON(size_in_bytes % 4); 179 180 ctb->desc = desc; 181 ctb->cmds = cmds; 182 ctb->size = size_in_bytes / 4; 183 ctb->resv_space = resv_space / 4; 184 185 guc_ct_buffer_reset(ctb); 186 } 187 188 static int guc_action_control_ctb(struct intel_guc *guc, u32 control) 189 { 190 u32 request[HOST2GUC_CONTROL_CTB_REQUEST_MSG_LEN] = { 191 FIELD_PREP(GUC_HXG_MSG_0_ORIGIN, GUC_HXG_ORIGIN_HOST) | 192 FIELD_PREP(GUC_HXG_MSG_0_TYPE, GUC_HXG_TYPE_REQUEST) | 193 FIELD_PREP(GUC_HXG_REQUEST_MSG_0_ACTION, GUC_ACTION_HOST2GUC_CONTROL_CTB), 194 FIELD_PREP(HOST2GUC_CONTROL_CTB_REQUEST_MSG_1_CONTROL, control), 195 }; 196 int ret; 197 198 GEM_BUG_ON(control != GUC_CTB_CONTROL_DISABLE && control != GUC_CTB_CONTROL_ENABLE); 199 200 /* CT control must go over MMIO */ 201 ret = intel_guc_send_mmio(guc, request, ARRAY_SIZE(request), NULL, 0); 202 203 return ret > 0 ? -EPROTO : ret; 204 } 205 206 static int ct_control_enable(struct intel_guc_ct *ct, bool enable) 207 { 208 int err; 209 210 err = guc_action_control_ctb(ct_to_guc(ct), enable ? 211 GUC_CTB_CONTROL_ENABLE : GUC_CTB_CONTROL_DISABLE); 212 if (unlikely(err)) 213 CT_PROBE_ERROR(ct, "Failed to control/%s CTB (%pe)\n", 214 str_enable_disable(enable), ERR_PTR(err)); 215 216 return err; 217 } 218 219 static int ct_register_buffer(struct intel_guc_ct *ct, bool send, 220 u32 desc_addr, u32 buff_addr, u32 size) 221 { 222 int err; 223 224 err = intel_guc_self_cfg64(ct_to_guc(ct), send ? 225 GUC_KLV_SELF_CFG_H2G_CTB_DESCRIPTOR_ADDR_KEY : 226 GUC_KLV_SELF_CFG_G2H_CTB_DESCRIPTOR_ADDR_KEY, 227 desc_addr); 228 if (unlikely(err)) 229 goto failed; 230 231 err = intel_guc_self_cfg64(ct_to_guc(ct), send ? 232 GUC_KLV_SELF_CFG_H2G_CTB_ADDR_KEY : 233 GUC_KLV_SELF_CFG_G2H_CTB_ADDR_KEY, 234 buff_addr); 235 if (unlikely(err)) 236 goto failed; 237 238 err = intel_guc_self_cfg32(ct_to_guc(ct), send ? 239 GUC_KLV_SELF_CFG_H2G_CTB_SIZE_KEY : 240 GUC_KLV_SELF_CFG_G2H_CTB_SIZE_KEY, 241 size); 242 if (unlikely(err)) 243 failed: 244 CT_PROBE_ERROR(ct, "Failed to register %s buffer (%pe)\n", 245 send ? "SEND" : "RECV", ERR_PTR(err)); 246 247 return err; 248 } 249 250 /** 251 * intel_guc_ct_init - Init buffer-based communication 252 * @ct: pointer to CT struct 253 * 254 * Allocate memory required for buffer-based communication. 255 * 256 * Return: 0 on success, a negative errno code on failure. 257 */ 258 int intel_guc_ct_init(struct intel_guc_ct *ct) 259 { 260 struct intel_guc *guc = ct_to_guc(ct); 261 struct guc_ct_buffer_desc *desc; 262 u32 blob_size; 263 u32 cmds_size; 264 u32 resv_space; 265 void *blob; 266 u32 *cmds; 267 int err; 268 269 GEM_BUG_ON(ct->vma); 270 271 blob_size = 2 * CTB_DESC_SIZE + CTB_H2G_BUFFER_SIZE + CTB_G2H_BUFFER_SIZE; 272 err = intel_guc_allocate_and_map_vma(guc, blob_size, &ct->vma, &blob); 273 if (unlikely(err)) { 274 CT_PROBE_ERROR(ct, "Failed to allocate %u for CTB data (%pe)\n", 275 blob_size, ERR_PTR(err)); 276 return err; 277 } 278 279 CT_DEBUG(ct, "base=%#x size=%u\n", intel_guc_ggtt_offset(guc, ct->vma), blob_size); 280 281 /* store pointers to desc and cmds for send ctb */ 282 desc = blob; 283 cmds = blob + 2 * CTB_DESC_SIZE; 284 cmds_size = CTB_H2G_BUFFER_SIZE; 285 resv_space = 0; 286 CT_DEBUG(ct, "%s desc %#tx cmds %#tx size %u/%u\n", "send", 287 ptrdiff(desc, blob), ptrdiff(cmds, blob), cmds_size, 288 resv_space); 289 290 guc_ct_buffer_init(&ct->ctbs.send, desc, cmds, cmds_size, resv_space); 291 292 /* store pointers to desc and cmds for recv ctb */ 293 desc = blob + CTB_DESC_SIZE; 294 cmds = blob + 2 * CTB_DESC_SIZE + CTB_H2G_BUFFER_SIZE; 295 cmds_size = CTB_G2H_BUFFER_SIZE; 296 resv_space = G2H_ROOM_BUFFER_SIZE; 297 CT_DEBUG(ct, "%s desc %#tx cmds %#tx size %u/%u\n", "recv", 298 ptrdiff(desc, blob), ptrdiff(cmds, blob), cmds_size, 299 resv_space); 300 301 guc_ct_buffer_init(&ct->ctbs.recv, desc, cmds, cmds_size, resv_space); 302 303 return 0; 304 } 305 ALLOW_ERROR_INJECTION(intel_guc_ct_init, ERRNO); 306 307 /** 308 * intel_guc_ct_fini - Fini buffer-based communication 309 * @ct: pointer to CT struct 310 * 311 * Deallocate memory required for buffer-based communication. 312 */ 313 void intel_guc_ct_fini(struct intel_guc_ct *ct) 314 { 315 GEM_BUG_ON(ct->enabled); 316 317 tasklet_kill(&ct->receive_tasklet); 318 i915_vma_unpin_and_release(&ct->vma, I915_VMA_RELEASE_MAP); 319 memset(ct, 0, sizeof(*ct)); 320 } 321 322 /** 323 * intel_guc_ct_enable - Enable buffer based command transport. 324 * @ct: pointer to CT struct 325 * 326 * Return: 0 on success, a negative errno code on failure. 327 */ 328 int intel_guc_ct_enable(struct intel_guc_ct *ct) 329 { 330 struct intel_guc *guc = ct_to_guc(ct); 331 u32 base, desc, cmds, size; 332 void *blob; 333 int err; 334 335 GEM_BUG_ON(ct->enabled); 336 337 /* vma should be already allocated and map'ed */ 338 GEM_BUG_ON(!ct->vma); 339 GEM_BUG_ON(!i915_gem_object_has_pinned_pages(ct->vma->obj)); 340 base = intel_guc_ggtt_offset(guc, ct->vma); 341 342 /* blob should start with send descriptor */ 343 blob = __px_vaddr(ct->vma->obj); 344 GEM_BUG_ON(blob != ct->ctbs.send.desc); 345 346 /* (re)initialize descriptors */ 347 guc_ct_buffer_reset(&ct->ctbs.send); 348 guc_ct_buffer_reset(&ct->ctbs.recv); 349 350 /* 351 * Register both CT buffers starting with RECV buffer. 352 * Descriptors are in first half of the blob. 353 */ 354 desc = base + ptrdiff(ct->ctbs.recv.desc, blob); 355 cmds = base + ptrdiff(ct->ctbs.recv.cmds, blob); 356 size = ct->ctbs.recv.size * 4; 357 err = ct_register_buffer(ct, false, desc, cmds, size); 358 if (unlikely(err)) 359 goto err_out; 360 361 desc = base + ptrdiff(ct->ctbs.send.desc, blob); 362 cmds = base + ptrdiff(ct->ctbs.send.cmds, blob); 363 size = ct->ctbs.send.size * 4; 364 err = ct_register_buffer(ct, true, desc, cmds, size); 365 if (unlikely(err)) 366 goto err_out; 367 368 err = ct_control_enable(ct, true); 369 if (unlikely(err)) 370 goto err_out; 371 372 ct->enabled = true; 373 ct->stall_time = KTIME_MAX; 374 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG) 375 ct->dead_ct_reported = false; 376 ct->dead_ct_reason = CT_DEAD_ALIVE; 377 #endif 378 379 return 0; 380 381 err_out: 382 CT_PROBE_ERROR(ct, "Failed to enable CTB (%pe)\n", ERR_PTR(err)); 383 CT_DEAD(ct, SETUP); 384 return err; 385 } 386 387 /** 388 * intel_guc_ct_disable - Disable buffer based command transport. 389 * @ct: pointer to CT struct 390 */ 391 void intel_guc_ct_disable(struct intel_guc_ct *ct) 392 { 393 struct intel_guc *guc = ct_to_guc(ct); 394 395 GEM_BUG_ON(!ct->enabled); 396 397 ct->enabled = false; 398 399 if (intel_guc_is_fw_running(guc)) { 400 ct_control_enable(ct, false); 401 } 402 } 403 404 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG_GEM) 405 static void ct_track_lost_and_found(struct intel_guc_ct *ct, u32 fence, u32 action) 406 { 407 unsigned int lost = fence % ARRAY_SIZE(ct->requests.lost_and_found); 408 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG_GUC) 409 unsigned long entries[SZ_32]; 410 unsigned int n; 411 412 n = stack_trace_save(entries, ARRAY_SIZE(entries), 1); 413 414 /* May be called under spinlock, so avoid sleeping */ 415 ct->requests.lost_and_found[lost].stack = stack_depot_save(entries, n, GFP_NOWAIT); 416 #endif 417 ct->requests.lost_and_found[lost].fence = fence; 418 ct->requests.lost_and_found[lost].action = action; 419 } 420 #endif 421 422 static u32 ct_get_next_fence(struct intel_guc_ct *ct) 423 { 424 /* For now it's trivial */ 425 return ++ct->requests.last_fence; 426 } 427 428 static int ct_write(struct intel_guc_ct *ct, 429 const u32 *action, 430 u32 len /* in dwords */, 431 u32 fence, u32 flags) 432 { 433 struct intel_guc_ct_buffer *ctb = &ct->ctbs.send; 434 struct guc_ct_buffer_desc *desc = ctb->desc; 435 u32 tail = ctb->tail; 436 u32 size = ctb->size; 437 u32 header; 438 u32 hxg; 439 u32 type; 440 u32 *cmds = ctb->cmds; 441 unsigned int i; 442 443 if (unlikely(desc->status)) 444 goto corrupted; 445 446 GEM_BUG_ON(tail > size); 447 448 #ifdef CONFIG_DRM_I915_DEBUG_GUC 449 if (unlikely(tail != READ_ONCE(desc->tail))) { 450 CT_ERROR(ct, "Tail was modified %u != %u\n", 451 desc->tail, tail); 452 desc->status |= GUC_CTB_STATUS_MISMATCH; 453 goto corrupted; 454 } 455 if (unlikely(READ_ONCE(desc->head) >= size)) { 456 CT_ERROR(ct, "Invalid head offset %u >= %u)\n", 457 desc->head, size); 458 desc->status |= GUC_CTB_STATUS_OVERFLOW; 459 goto corrupted; 460 } 461 #endif 462 463 /* 464 * dw0: CT header (including fence) 465 * dw1: HXG header (including action code) 466 * dw2+: action data 467 */ 468 header = FIELD_PREP(GUC_CTB_MSG_0_FORMAT, GUC_CTB_FORMAT_HXG) | 469 FIELD_PREP(GUC_CTB_MSG_0_NUM_DWORDS, len) | 470 FIELD_PREP(GUC_CTB_MSG_0_FENCE, fence); 471 472 type = (flags & INTEL_GUC_CT_SEND_NB) ? GUC_HXG_TYPE_FAST_REQUEST : 473 GUC_HXG_TYPE_REQUEST; 474 hxg = FIELD_PREP(GUC_HXG_MSG_0_TYPE, type) | 475 FIELD_PREP(GUC_HXG_REQUEST_MSG_0_ACTION | 476 GUC_HXG_REQUEST_MSG_0_DATA0, action[0]); 477 478 CT_DEBUG(ct, "writing (tail %u) %*ph %*ph %*ph\n", 479 tail, 4, &header, 4, &hxg, 4 * (len - 1), &action[1]); 480 481 cmds[tail] = header; 482 tail = (tail + 1) % size; 483 484 cmds[tail] = hxg; 485 tail = (tail + 1) % size; 486 487 for (i = 1; i < len; i++) { 488 cmds[tail] = action[i]; 489 tail = (tail + 1) % size; 490 } 491 GEM_BUG_ON(tail > size); 492 493 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG_GEM) 494 ct_track_lost_and_found(ct, fence, 495 FIELD_GET(GUC_HXG_EVENT_MSG_0_ACTION, action[0])); 496 #endif 497 498 /* 499 * make sure H2G buffer update and LRC tail update (if this triggering a 500 * submission) are visible before updating the descriptor tail 501 */ 502 intel_guc_write_barrier(ct_to_guc(ct)); 503 504 /* update local copies */ 505 ctb->tail = tail; 506 GEM_BUG_ON(atomic_read(&ctb->space) < len + GUC_CTB_HDR_LEN); 507 atomic_sub(len + GUC_CTB_HDR_LEN, &ctb->space); 508 509 /* now update descriptor */ 510 WRITE_ONCE(desc->tail, tail); 511 512 return 0; 513 514 corrupted: 515 CT_ERROR(ct, "Corrupted descriptor head=%u tail=%u status=%#x\n", 516 desc->head, desc->tail, desc->status); 517 CT_DEAD(ct, WRITE); 518 ctb->broken = true; 519 return -EPIPE; 520 } 521 522 /** 523 * wait_for_ct_request_update - Wait for CT request state update. 524 * @ct: pointer to CT 525 * @req: pointer to pending request 526 * @status: placeholder for status 527 * 528 * For each sent request, GuC shall send back CT response message. 529 * Our message handler will update status of tracked request once 530 * response message with given fence is received. Wait here and 531 * check for valid response status value. 532 * 533 * Return: 534 * * 0 response received (status is valid) 535 * * -ETIMEDOUT no response within hardcoded timeout 536 */ 537 static int wait_for_ct_request_update(struct intel_guc_ct *ct, struct ct_request *req, u32 *status) 538 { 539 int err; 540 bool ct_enabled; 541 542 /* 543 * Fast commands should complete in less than 10us, so sample quickly 544 * up to that length of time, then switch to a slower sleep-wait loop. 545 * No GuC command should ever take longer than 10ms but many GuC 546 * commands can be inflight at time, so use a 1s timeout on the slower 547 * sleep-wait loop. 548 */ 549 #define GUC_CTB_RESPONSE_TIMEOUT_SHORT_MS 10 550 #define GUC_CTB_RESPONSE_TIMEOUT_LONG_MS 1000 551 #define done \ 552 (!(ct_enabled = intel_guc_ct_enabled(ct)) || \ 553 FIELD_GET(GUC_HXG_MSG_0_ORIGIN, READ_ONCE(req->status)) == \ 554 GUC_HXG_ORIGIN_GUC) 555 err = wait_for_us(done, GUC_CTB_RESPONSE_TIMEOUT_SHORT_MS); 556 if (err) 557 err = wait_for(done, GUC_CTB_RESPONSE_TIMEOUT_LONG_MS); 558 #undef done 559 if (!ct_enabled) 560 err = -ENODEV; 561 562 *status = req->status; 563 return err; 564 } 565 566 #define GUC_CTB_TIMEOUT_MS 1500 567 static inline bool ct_deadlocked(struct intel_guc_ct *ct) 568 { 569 long timeout = GUC_CTB_TIMEOUT_MS; 570 bool ret = ktime_ms_delta(ktime_get(), ct->stall_time) > timeout; 571 572 if (unlikely(ret)) { 573 struct guc_ct_buffer_desc *send = ct->ctbs.send.desc; 574 struct guc_ct_buffer_desc *recv = ct->ctbs.send.desc; 575 576 CT_ERROR(ct, "Communication stalled for %lld ms, desc status=%#x,%#x\n", 577 ktime_ms_delta(ktime_get(), ct->stall_time), 578 send->status, recv->status); 579 CT_ERROR(ct, "H2G Space: %u (Bytes)\n", 580 atomic_read(&ct->ctbs.send.space) * 4); 581 CT_ERROR(ct, "Head: %u (Dwords)\n", ct->ctbs.send.desc->head); 582 CT_ERROR(ct, "Tail: %u (Dwords)\n", ct->ctbs.send.desc->tail); 583 CT_ERROR(ct, "G2H Space: %u (Bytes)\n", 584 atomic_read(&ct->ctbs.recv.space) * 4); 585 CT_ERROR(ct, "Head: %u\n (Dwords)", ct->ctbs.recv.desc->head); 586 CT_ERROR(ct, "Tail: %u\n (Dwords)", ct->ctbs.recv.desc->tail); 587 588 CT_DEAD(ct, DEADLOCK); 589 ct->ctbs.send.broken = true; 590 } 591 592 return ret; 593 } 594 595 static inline bool g2h_has_room(struct intel_guc_ct *ct, u32 g2h_len_dw) 596 { 597 struct intel_guc_ct_buffer *ctb = &ct->ctbs.recv; 598 599 /* 600 * We leave a certain amount of space in the G2H CTB buffer for 601 * unexpected G2H CTBs (e.g. logging, engine hang, etc...) 602 */ 603 return !g2h_len_dw || atomic_read(&ctb->space) >= g2h_len_dw; 604 } 605 606 static inline void g2h_reserve_space(struct intel_guc_ct *ct, u32 g2h_len_dw) 607 { 608 lockdep_assert_held(&ct->ctbs.send.lock); 609 610 GEM_BUG_ON(!g2h_has_room(ct, g2h_len_dw)); 611 612 if (g2h_len_dw) 613 atomic_sub(g2h_len_dw, &ct->ctbs.recv.space); 614 } 615 616 static inline void g2h_release_space(struct intel_guc_ct *ct, u32 g2h_len_dw) 617 { 618 atomic_add(g2h_len_dw, &ct->ctbs.recv.space); 619 } 620 621 static inline bool h2g_has_room(struct intel_guc_ct *ct, u32 len_dw) 622 { 623 struct intel_guc_ct_buffer *ctb = &ct->ctbs.send; 624 struct guc_ct_buffer_desc *desc = ctb->desc; 625 u32 head; 626 u32 space; 627 628 if (atomic_read(&ctb->space) >= len_dw) 629 return true; 630 631 head = READ_ONCE(desc->head); 632 if (unlikely(head > ctb->size)) { 633 CT_ERROR(ct, "Invalid head offset %u >= %u)\n", 634 head, ctb->size); 635 desc->status |= GUC_CTB_STATUS_OVERFLOW; 636 ctb->broken = true; 637 CT_DEAD(ct, H2G_HAS_ROOM); 638 return false; 639 } 640 641 space = CIRC_SPACE(ctb->tail, head, ctb->size); 642 atomic_set(&ctb->space, space); 643 644 return space >= len_dw; 645 } 646 647 static int has_room_nb(struct intel_guc_ct *ct, u32 h2g_dw, u32 g2h_dw) 648 { 649 bool h2g = h2g_has_room(ct, h2g_dw); 650 bool g2h = g2h_has_room(ct, g2h_dw); 651 652 lockdep_assert_held(&ct->ctbs.send.lock); 653 654 if (unlikely(!h2g || !g2h)) { 655 if (ct->stall_time == KTIME_MAX) 656 ct->stall_time = ktime_get(); 657 658 /* Be paranoid and kick G2H tasklet to free credits */ 659 if (!g2h) 660 tasklet_hi_schedule(&ct->receive_tasklet); 661 662 if (unlikely(ct_deadlocked(ct))) 663 return -EPIPE; 664 else 665 return -EBUSY; 666 } 667 668 ct->stall_time = KTIME_MAX; 669 return 0; 670 } 671 672 #define G2H_LEN_DW(f) ({ \ 673 typeof(f) f_ = (f); \ 674 FIELD_GET(INTEL_GUC_CT_SEND_G2H_DW_MASK, f_) ? \ 675 FIELD_GET(INTEL_GUC_CT_SEND_G2H_DW_MASK, f_) + \ 676 GUC_CTB_HXG_MSG_MIN_LEN : 0; \ 677 }) 678 static int ct_send_nb(struct intel_guc_ct *ct, 679 const u32 *action, 680 u32 len, 681 u32 flags) 682 { 683 struct intel_guc_ct_buffer *ctb = &ct->ctbs.send; 684 unsigned long spin_flags; 685 u32 g2h_len_dw = G2H_LEN_DW(flags); 686 u32 fence; 687 int ret; 688 689 spin_lock_irqsave(&ctb->lock, spin_flags); 690 691 ret = has_room_nb(ct, len + GUC_CTB_HDR_LEN, g2h_len_dw); 692 if (unlikely(ret)) 693 goto out; 694 695 fence = ct_get_next_fence(ct); 696 ret = ct_write(ct, action, len, fence, flags); 697 if (unlikely(ret)) 698 goto out; 699 700 g2h_reserve_space(ct, g2h_len_dw); 701 intel_guc_notify(ct_to_guc(ct)); 702 703 out: 704 spin_unlock_irqrestore(&ctb->lock, spin_flags); 705 706 return ret; 707 } 708 709 static int ct_send(struct intel_guc_ct *ct, 710 const u32 *action, 711 u32 len, 712 u32 *response_buf, 713 u32 response_buf_size, 714 u32 *status) 715 { 716 struct intel_guc_ct_buffer *ctb = &ct->ctbs.send; 717 struct ct_request request; 718 unsigned long flags; 719 unsigned int sleep_period_ms = 1; 720 bool send_again; 721 u32 fence; 722 int err; 723 724 GEM_BUG_ON(!ct->enabled); 725 GEM_BUG_ON(!len); 726 GEM_BUG_ON(len > GUC_CTB_HXG_MSG_MAX_LEN - GUC_CTB_HDR_LEN); 727 GEM_BUG_ON(!response_buf && response_buf_size); 728 might_sleep(); 729 730 resend: 731 send_again = false; 732 733 /* 734 * We use a lazy spin wait loop here as we believe that if the CT 735 * buffers are sized correctly the flow control condition should be 736 * rare. Reserving the maximum size in the G2H credits as we don't know 737 * how big the response is going to be. 738 */ 739 retry: 740 spin_lock_irqsave(&ctb->lock, flags); 741 if (unlikely(!h2g_has_room(ct, len + GUC_CTB_HDR_LEN) || 742 !g2h_has_room(ct, GUC_CTB_HXG_MSG_MAX_LEN))) { 743 if (ct->stall_time == KTIME_MAX) 744 ct->stall_time = ktime_get(); 745 spin_unlock_irqrestore(&ctb->lock, flags); 746 747 if (unlikely(ct_deadlocked(ct))) 748 return -EPIPE; 749 750 if (msleep_interruptible(sleep_period_ms)) 751 return -EINTR; 752 sleep_period_ms = sleep_period_ms << 1; 753 754 goto retry; 755 } 756 757 ct->stall_time = KTIME_MAX; 758 759 fence = ct_get_next_fence(ct); 760 request.fence = fence; 761 request.status = 0; 762 request.response_len = response_buf_size; 763 request.response_buf = response_buf; 764 765 spin_lock(&ct->requests.lock); 766 list_add_tail(&request.link, &ct->requests.pending); 767 spin_unlock(&ct->requests.lock); 768 769 err = ct_write(ct, action, len, fence, 0); 770 g2h_reserve_space(ct, GUC_CTB_HXG_MSG_MAX_LEN); 771 772 spin_unlock_irqrestore(&ctb->lock, flags); 773 774 if (unlikely(err)) 775 goto unlink; 776 777 intel_guc_notify(ct_to_guc(ct)); 778 779 err = wait_for_ct_request_update(ct, &request, status); 780 g2h_release_space(ct, GUC_CTB_HXG_MSG_MAX_LEN); 781 if (unlikely(err)) { 782 if (err == -ENODEV) 783 /* wait_for_ct_request_update returns -ENODEV on reset/suspend in progress. 784 * In this case, output is debug rather than error info 785 */ 786 CT_DEBUG(ct, "Request %#x (fence %u) cancelled as CTB is disabled\n", 787 action[0], request.fence); 788 else 789 CT_ERROR(ct, "No response for request %#x (fence %u)\n", 790 action[0], request.fence); 791 goto unlink; 792 } 793 794 if (FIELD_GET(GUC_HXG_MSG_0_TYPE, *status) == GUC_HXG_TYPE_NO_RESPONSE_RETRY) { 795 CT_DEBUG(ct, "retrying request %#x (%u)\n", *action, 796 FIELD_GET(GUC_HXG_RETRY_MSG_0_REASON, *status)); 797 send_again = true; 798 goto unlink; 799 } 800 801 if (FIELD_GET(GUC_HXG_MSG_0_TYPE, *status) != GUC_HXG_TYPE_RESPONSE_SUCCESS) { 802 err = -EIO; 803 goto unlink; 804 } 805 806 if (response_buf) { 807 /* There shall be no data in the status */ 808 WARN_ON(FIELD_GET(GUC_HXG_RESPONSE_MSG_0_DATA0, request.status)); 809 /* Return actual response len */ 810 err = request.response_len; 811 } else { 812 /* There shall be no response payload */ 813 WARN_ON(request.response_len); 814 /* Return data decoded from the status dword */ 815 err = FIELD_GET(GUC_HXG_RESPONSE_MSG_0_DATA0, *status); 816 } 817 818 unlink: 819 spin_lock_irqsave(&ct->requests.lock, flags); 820 list_del(&request.link); 821 spin_unlock_irqrestore(&ct->requests.lock, flags); 822 823 if (unlikely(send_again)) 824 goto resend; 825 826 return err; 827 } 828 829 /* 830 * Command Transport (CT) buffer based GuC send function. 831 */ 832 int intel_guc_ct_send(struct intel_guc_ct *ct, const u32 *action, u32 len, 833 u32 *response_buf, u32 response_buf_size, u32 flags) 834 { 835 u32 status = ~0; /* undefined */ 836 int ret; 837 838 if (unlikely(!ct->enabled)) { 839 struct intel_guc *guc = ct_to_guc(ct); 840 struct intel_uc *uc = container_of(guc, struct intel_uc, guc); 841 842 WARN(!uc->reset_in_progress, "Unexpected send: action=%#x\n", *action); 843 return -ENODEV; 844 } 845 846 if (unlikely(ct->ctbs.send.broken)) 847 return -EPIPE; 848 849 if (flags & INTEL_GUC_CT_SEND_NB) 850 return ct_send_nb(ct, action, len, flags); 851 852 ret = ct_send(ct, action, len, response_buf, response_buf_size, &status); 853 if (unlikely(ret < 0)) { 854 if (ret != -ENODEV) 855 CT_ERROR(ct, "Sending action %#x failed (%pe) status=%#X\n", 856 action[0], ERR_PTR(ret), status); 857 } else if (unlikely(ret)) { 858 CT_DEBUG(ct, "send action %#x returned %d (%#x)\n", 859 action[0], ret, ret); 860 } 861 862 return ret; 863 } 864 865 static struct ct_incoming_msg *ct_alloc_msg(u32 num_dwords) 866 { 867 struct ct_incoming_msg *msg; 868 869 msg = kmalloc_flex(*msg, msg, num_dwords, GFP_ATOMIC); 870 if (msg) 871 msg->size = num_dwords; 872 return msg; 873 } 874 875 static void ct_free_msg(struct ct_incoming_msg *msg) 876 { 877 kfree(msg); 878 } 879 880 /* 881 * Return: number available remaining dwords to read (0 if empty) 882 * or a negative error code on failure 883 */ 884 static int ct_read(struct intel_guc_ct *ct, struct ct_incoming_msg **msg) 885 { 886 struct intel_guc_ct_buffer *ctb = &ct->ctbs.recv; 887 struct guc_ct_buffer_desc *desc = ctb->desc; 888 u32 head = ctb->head; 889 u32 tail = READ_ONCE(desc->tail); 890 u32 size = ctb->size; 891 u32 *cmds = ctb->cmds; 892 s32 available; 893 unsigned int len; 894 unsigned int i; 895 u32 header; 896 897 if (unlikely(ctb->broken)) 898 return -EPIPE; 899 900 if (unlikely(desc->status)) { 901 u32 status = desc->status; 902 903 if (status & GUC_CTB_STATUS_UNUSED) { 904 /* 905 * Potentially valid if a CLIENT_RESET request resulted in 906 * contexts/engines being reset. But should never happen as 907 * no contexts should be active when CLIENT_RESET is sent. 908 */ 909 CT_ERROR(ct, "Unexpected G2H after GuC has stopped!\n"); 910 status &= ~GUC_CTB_STATUS_UNUSED; 911 } 912 913 if (status) 914 goto corrupted; 915 } 916 917 GEM_BUG_ON(head > size); 918 919 #ifdef CONFIG_DRM_I915_DEBUG_GUC 920 if (unlikely(head != READ_ONCE(desc->head))) { 921 CT_ERROR(ct, "Head was modified %u != %u\n", 922 desc->head, head); 923 desc->status |= GUC_CTB_STATUS_MISMATCH; 924 goto corrupted; 925 } 926 #endif 927 if (unlikely(tail >= size)) { 928 CT_ERROR(ct, "Invalid tail offset %u >= %u)\n", 929 tail, size); 930 desc->status |= GUC_CTB_STATUS_OVERFLOW; 931 goto corrupted; 932 } 933 934 /* tail == head condition indicates empty */ 935 available = tail - head; 936 if (unlikely(available == 0)) { 937 *msg = NULL; 938 return 0; 939 } 940 941 /* beware of buffer wrap case */ 942 if (unlikely(available < 0)) 943 available += size; 944 CT_DEBUG(ct, "available %d (%u:%u:%u)\n", available, head, tail, size); 945 GEM_BUG_ON(available < 0); 946 947 header = cmds[head]; 948 head = (head + 1) % size; 949 950 /* message len with header */ 951 len = FIELD_GET(GUC_CTB_MSG_0_NUM_DWORDS, header) + GUC_CTB_MSG_MIN_LEN; 952 if (unlikely(len > (u32)available)) { 953 CT_ERROR(ct, "Incomplete message %*ph %*ph %*ph\n", 954 4, &header, 955 4 * (head + available - 1 > size ? 956 size - head : available - 1), &cmds[head], 957 4 * (head + available - 1 > size ? 958 available - 1 - size + head : 0), &cmds[0]); 959 desc->status |= GUC_CTB_STATUS_UNDERFLOW; 960 goto corrupted; 961 } 962 963 *msg = ct_alloc_msg(len); 964 if (!*msg) { 965 CT_ERROR(ct, "No memory for message %*ph %*ph %*ph\n", 966 4, &header, 967 4 * (head + available - 1 > size ? 968 size - head : available - 1), &cmds[head], 969 4 * (head + available - 1 > size ? 970 available - 1 - size + head : 0), &cmds[0]); 971 return available; 972 } 973 974 (*msg)->msg[0] = header; 975 976 for (i = 1; i < len; i++) { 977 (*msg)->msg[i] = cmds[head]; 978 head = (head + 1) % size; 979 } 980 CT_DEBUG(ct, "received %*ph\n", 4 * len, (*msg)->msg); 981 982 /* update local copies */ 983 ctb->head = head; 984 985 /* now update descriptor */ 986 WRITE_ONCE(desc->head, head); 987 988 intel_guc_write_barrier(ct_to_guc(ct)); 989 990 return available - len; 991 992 corrupted: 993 CT_ERROR(ct, "Corrupted descriptor head=%u tail=%u status=%#x\n", 994 desc->head, desc->tail, desc->status); 995 ctb->broken = true; 996 CT_DEAD(ct, READ); 997 return -EPIPE; 998 } 999 1000 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG_GEM) 1001 static bool ct_check_lost_and_found(struct intel_guc_ct *ct, u32 fence) 1002 { 1003 unsigned int n; 1004 char *buf = NULL; 1005 bool found = false; 1006 1007 lockdep_assert_held(&ct->requests.lock); 1008 1009 for (n = 0; n < ARRAY_SIZE(ct->requests.lost_and_found); n++) { 1010 if (ct->requests.lost_and_found[n].fence != fence) 1011 continue; 1012 found = true; 1013 1014 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG_GUC) 1015 buf = kmalloc(SZ_4K, GFP_NOWAIT); 1016 if (buf && stack_depot_snprint(ct->requests.lost_and_found[n].stack, 1017 buf, SZ_4K, 0)) { 1018 CT_ERROR(ct, "Fence %u was used by action %#04x sent at\n%s", 1019 fence, ct->requests.lost_and_found[n].action, buf); 1020 break; 1021 } 1022 #endif 1023 CT_ERROR(ct, "Fence %u was used by action %#04x\n", 1024 fence, ct->requests.lost_and_found[n].action); 1025 break; 1026 } 1027 kfree(buf); 1028 return found; 1029 } 1030 #else 1031 static bool ct_check_lost_and_found(struct intel_guc_ct *ct, u32 fence) 1032 { 1033 return false; 1034 } 1035 #endif 1036 1037 static int ct_handle_response(struct intel_guc_ct *ct, struct ct_incoming_msg *response) 1038 { 1039 u32 len = FIELD_GET(GUC_CTB_MSG_0_NUM_DWORDS, response->msg[0]); 1040 u32 fence = FIELD_GET(GUC_CTB_MSG_0_FENCE, response->msg[0]); 1041 const u32 *hxg = &response->msg[GUC_CTB_MSG_MIN_LEN]; 1042 const u32 *data = &hxg[GUC_HXG_MSG_MIN_LEN]; 1043 u32 datalen = len - GUC_HXG_MSG_MIN_LEN; 1044 struct ct_request *req; 1045 unsigned long flags; 1046 bool found = false; 1047 int err = 0; 1048 1049 GEM_BUG_ON(len < GUC_HXG_MSG_MIN_LEN); 1050 GEM_BUG_ON(FIELD_GET(GUC_HXG_MSG_0_ORIGIN, hxg[0]) != GUC_HXG_ORIGIN_GUC); 1051 GEM_BUG_ON(FIELD_GET(GUC_HXG_MSG_0_TYPE, hxg[0]) != GUC_HXG_TYPE_RESPONSE_SUCCESS && 1052 FIELD_GET(GUC_HXG_MSG_0_TYPE, hxg[0]) != GUC_HXG_TYPE_NO_RESPONSE_RETRY && 1053 FIELD_GET(GUC_HXG_MSG_0_TYPE, hxg[0]) != GUC_HXG_TYPE_RESPONSE_FAILURE); 1054 1055 CT_DEBUG(ct, "response fence %u status %#x\n", fence, hxg[0]); 1056 1057 spin_lock_irqsave(&ct->requests.lock, flags); 1058 list_for_each_entry(req, &ct->requests.pending, link) { 1059 if (unlikely(fence != req->fence)) { 1060 CT_DEBUG(ct, "request %u awaits response\n", 1061 req->fence); 1062 continue; 1063 } 1064 if (unlikely(datalen > req->response_len)) { 1065 CT_ERROR(ct, "Response %u too long (datalen %u > %u)\n", 1066 req->fence, datalen, req->response_len); 1067 datalen = min(datalen, req->response_len); 1068 err = -EMSGSIZE; 1069 } 1070 if (datalen) 1071 memcpy(req->response_buf, data, 4 * datalen); 1072 req->response_len = datalen; 1073 WRITE_ONCE(req->status, hxg[0]); 1074 found = true; 1075 break; 1076 } 1077 1078 #ifdef CONFIG_DRM_I915_SELFTEST 1079 if (!found && ct_to_guc(ct)->fast_response_selftest) { 1080 CT_DEBUG(ct, "Assuming unsolicited response due to FAST_REQUEST selftest\n"); 1081 ct_to_guc(ct)->fast_response_selftest++; 1082 found = true; 1083 } 1084 #endif 1085 1086 if (!found) { 1087 CT_ERROR(ct, "Unsolicited response message: len %u, data %#x (fence %u, last %u)\n", 1088 len, hxg[0], fence, ct->requests.last_fence); 1089 if (!ct_check_lost_and_found(ct, fence)) { 1090 list_for_each_entry(req, &ct->requests.pending, link) 1091 CT_ERROR(ct, "request %u awaits response\n", 1092 req->fence); 1093 } 1094 err = -ENOKEY; 1095 } 1096 spin_unlock_irqrestore(&ct->requests.lock, flags); 1097 1098 if (unlikely(err)) 1099 return err; 1100 1101 ct_free_msg(response); 1102 return 0; 1103 } 1104 1105 static int ct_process_request(struct intel_guc_ct *ct, struct ct_incoming_msg *request) 1106 { 1107 struct intel_guc *guc = ct_to_guc(ct); 1108 const u32 *hxg; 1109 const u32 *payload; 1110 u32 hxg_len, action, len; 1111 int ret; 1112 1113 hxg = &request->msg[GUC_CTB_MSG_MIN_LEN]; 1114 hxg_len = request->size - GUC_CTB_MSG_MIN_LEN; 1115 payload = &hxg[GUC_HXG_MSG_MIN_LEN]; 1116 action = FIELD_GET(GUC_HXG_EVENT_MSG_0_ACTION, hxg[0]); 1117 len = hxg_len - GUC_HXG_MSG_MIN_LEN; 1118 1119 CT_DEBUG(ct, "request %x %*ph\n", action, 4 * len, payload); 1120 1121 switch (action) { 1122 case INTEL_GUC_ACTION_DEFAULT: 1123 ret = intel_guc_to_host_process_recv_msg(guc, payload, len); 1124 break; 1125 case INTEL_GUC_ACTION_DEREGISTER_CONTEXT_DONE: 1126 ret = intel_guc_deregister_done_process_msg(guc, payload, 1127 len); 1128 break; 1129 case INTEL_GUC_ACTION_SCHED_CONTEXT_MODE_DONE: 1130 ret = intel_guc_sched_done_process_msg(guc, payload, len); 1131 break; 1132 case INTEL_GUC_ACTION_CONTEXT_RESET_NOTIFICATION: 1133 ret = intel_guc_context_reset_process_msg(guc, payload, len); 1134 break; 1135 case INTEL_GUC_ACTION_STATE_CAPTURE_NOTIFICATION: 1136 ret = intel_guc_error_capture_process_msg(guc, payload, len); 1137 if (unlikely(ret)) 1138 CT_ERROR(ct, "error capture notification failed %x %*ph\n", 1139 action, 4 * len, payload); 1140 break; 1141 case INTEL_GUC_ACTION_ENGINE_FAILURE_NOTIFICATION: 1142 ret = intel_guc_engine_failure_process_msg(guc, payload, len); 1143 break; 1144 case INTEL_GUC_ACTION_NOTIFY_FLUSH_LOG_BUFFER_TO_FILE: 1145 intel_guc_log_handle_flush_event(&guc->log); 1146 ret = 0; 1147 break; 1148 case INTEL_GUC_ACTION_NOTIFY_CRASH_DUMP_POSTED: 1149 case INTEL_GUC_ACTION_NOTIFY_EXCEPTION: 1150 ret = intel_guc_crash_process_msg(guc, action); 1151 break; 1152 case INTEL_GUC_ACTION_TLB_INVALIDATION_DONE: 1153 ret = intel_guc_tlb_invalidation_done(guc, payload, len); 1154 break; 1155 default: 1156 ret = -EOPNOTSUPP; 1157 break; 1158 } 1159 1160 if (unlikely(ret)) { 1161 CT_ERROR(ct, "Failed to process request %04x (%pe)\n", 1162 action, ERR_PTR(ret)); 1163 return ret; 1164 } 1165 1166 ct_free_msg(request); 1167 return 0; 1168 } 1169 1170 static bool ct_process_incoming_requests(struct intel_guc_ct *ct) 1171 { 1172 unsigned long flags; 1173 struct ct_incoming_msg *request; 1174 bool done; 1175 int err; 1176 1177 spin_lock_irqsave(&ct->requests.lock, flags); 1178 request = list_first_entry_or_null(&ct->requests.incoming, 1179 struct ct_incoming_msg, link); 1180 if (request) 1181 list_del(&request->link); 1182 done = !!list_empty(&ct->requests.incoming); 1183 spin_unlock_irqrestore(&ct->requests.lock, flags); 1184 1185 if (!request) 1186 return true; 1187 1188 err = ct_process_request(ct, request); 1189 if (unlikely(err)) { 1190 CT_ERROR(ct, "Failed to process CT message (%pe) %*ph\n", 1191 ERR_PTR(err), 4 * request->size, request->msg); 1192 CT_DEAD(ct, PROCESS_FAILED); 1193 ct_free_msg(request); 1194 } 1195 1196 return done; 1197 } 1198 1199 static void ct_incoming_request_worker_func(struct work_struct *w) 1200 { 1201 struct intel_guc_ct *ct = 1202 container_of(w, struct intel_guc_ct, requests.worker); 1203 bool done; 1204 1205 do { 1206 done = ct_process_incoming_requests(ct); 1207 } while (!done); 1208 } 1209 1210 static int ct_handle_event(struct intel_guc_ct *ct, struct ct_incoming_msg *request) 1211 { 1212 const u32 *hxg = &request->msg[GUC_CTB_MSG_MIN_LEN]; 1213 u32 action = FIELD_GET(GUC_HXG_EVENT_MSG_0_ACTION, hxg[0]); 1214 unsigned long flags; 1215 1216 GEM_BUG_ON(FIELD_GET(GUC_HXG_MSG_0_TYPE, hxg[0]) != GUC_HXG_TYPE_EVENT); 1217 1218 /* 1219 * Adjusting the space must be done in IRQ or deadlock can occur as the 1220 * CTB processing in the below workqueue can send CTBs which creates a 1221 * circular dependency if the space was returned there. 1222 */ 1223 switch (action) { 1224 case INTEL_GUC_ACTION_SCHED_CONTEXT_MODE_DONE: 1225 case INTEL_GUC_ACTION_DEREGISTER_CONTEXT_DONE: 1226 case INTEL_GUC_ACTION_TLB_INVALIDATION_DONE: 1227 g2h_release_space(ct, request->size); 1228 } 1229 1230 /* 1231 * TLB invalidation responses must be handled immediately as processing 1232 * of other G2H notifications may be blocked by an invalidation request. 1233 */ 1234 if (action == INTEL_GUC_ACTION_TLB_INVALIDATION_DONE) 1235 return ct_process_request(ct, request); 1236 1237 spin_lock_irqsave(&ct->requests.lock, flags); 1238 list_add_tail(&request->link, &ct->requests.incoming); 1239 spin_unlock_irqrestore(&ct->requests.lock, flags); 1240 1241 queue_work(system_dfl_wq, &ct->requests.worker); 1242 return 0; 1243 } 1244 1245 static int ct_handle_hxg(struct intel_guc_ct *ct, struct ct_incoming_msg *msg) 1246 { 1247 u32 origin, type; 1248 u32 *hxg; 1249 int err; 1250 1251 if (unlikely(msg->size < GUC_CTB_HXG_MSG_MIN_LEN)) 1252 return -EBADMSG; 1253 1254 hxg = &msg->msg[GUC_CTB_MSG_MIN_LEN]; 1255 1256 origin = FIELD_GET(GUC_HXG_MSG_0_ORIGIN, hxg[0]); 1257 if (unlikely(origin != GUC_HXG_ORIGIN_GUC)) { 1258 err = -EPROTO; 1259 goto failed; 1260 } 1261 1262 type = FIELD_GET(GUC_HXG_MSG_0_TYPE, hxg[0]); 1263 switch (type) { 1264 case GUC_HXG_TYPE_EVENT: 1265 err = ct_handle_event(ct, msg); 1266 break; 1267 case GUC_HXG_TYPE_RESPONSE_SUCCESS: 1268 case GUC_HXG_TYPE_RESPONSE_FAILURE: 1269 case GUC_HXG_TYPE_NO_RESPONSE_RETRY: 1270 err = ct_handle_response(ct, msg); 1271 break; 1272 default: 1273 err = -EOPNOTSUPP; 1274 } 1275 1276 if (unlikely(err)) { 1277 failed: 1278 CT_ERROR(ct, "Failed to handle HXG message (%pe) %*ph\n", 1279 ERR_PTR(err), 4 * GUC_HXG_MSG_MIN_LEN, hxg); 1280 } 1281 return err; 1282 } 1283 1284 static void ct_handle_msg(struct intel_guc_ct *ct, struct ct_incoming_msg *msg) 1285 { 1286 u32 format = FIELD_GET(GUC_CTB_MSG_0_FORMAT, msg->msg[0]); 1287 int err; 1288 1289 if (format == GUC_CTB_FORMAT_HXG) 1290 err = ct_handle_hxg(ct, msg); 1291 else 1292 err = -EOPNOTSUPP; 1293 1294 if (unlikely(err)) { 1295 CT_ERROR(ct, "Failed to process CT message (%pe) %*ph\n", 1296 ERR_PTR(err), 4 * msg->size, msg->msg); 1297 ct_free_msg(msg); 1298 } 1299 } 1300 1301 /* 1302 * Return: number available remaining dwords to read (0 if empty) 1303 * or a negative error code on failure 1304 */ 1305 static int ct_receive(struct intel_guc_ct *ct) 1306 { 1307 struct ct_incoming_msg *msg = NULL; 1308 unsigned long flags; 1309 int ret; 1310 1311 spin_lock_irqsave(&ct->ctbs.recv.lock, flags); 1312 ret = ct_read(ct, &msg); 1313 spin_unlock_irqrestore(&ct->ctbs.recv.lock, flags); 1314 if (ret < 0) 1315 return ret; 1316 1317 if (msg) 1318 ct_handle_msg(ct, msg); 1319 1320 return ret; 1321 } 1322 1323 static void ct_try_receive_message(struct intel_guc_ct *ct) 1324 { 1325 struct intel_guc *guc = ct_to_guc(ct); 1326 int ret; 1327 1328 if (!ct->enabled) { 1329 GEM_WARN_ON(!guc_to_gt(guc)->uc.reset_in_progress); 1330 return; 1331 } 1332 1333 /* When interrupt disabled, message handling is not expected */ 1334 if (!guc->interrupts.enabled) 1335 return; 1336 1337 ret = ct_receive(ct); 1338 if (ret > 0) 1339 tasklet_hi_schedule(&ct->receive_tasklet); 1340 } 1341 1342 static void ct_receive_tasklet_func(struct tasklet_struct *t) 1343 { 1344 struct intel_guc_ct *ct = from_tasklet(ct, t, receive_tasklet); 1345 1346 ct_try_receive_message(ct); 1347 } 1348 1349 /* 1350 * When we're communicating with the GuC over CT, GuC uses events 1351 * to notify us about new messages being posted on the RECV buffer. 1352 */ 1353 void intel_guc_ct_event_handler(struct intel_guc_ct *ct) 1354 { 1355 if (unlikely(!ct->enabled)) { 1356 WARN(1, "Unexpected GuC event received while CT disabled!\n"); 1357 return; 1358 } 1359 1360 ct_try_receive_message(ct); 1361 } 1362 1363 void intel_guc_ct_print_info(struct intel_guc_ct *ct, 1364 struct drm_printer *p) 1365 { 1366 drm_printf(p, "CT %s\n", str_enabled_disabled(ct->enabled)); 1367 1368 if (!ct->enabled) 1369 return; 1370 1371 drm_printf(p, "H2G Space: %u\n", 1372 atomic_read(&ct->ctbs.send.space) * 4); 1373 drm_printf(p, "Head: %u\n", 1374 ct->ctbs.send.desc->head); 1375 drm_printf(p, "Tail: %u\n", 1376 ct->ctbs.send.desc->tail); 1377 drm_printf(p, "G2H Space: %u\n", 1378 atomic_read(&ct->ctbs.recv.space) * 4); 1379 drm_printf(p, "Head: %u\n", 1380 ct->ctbs.recv.desc->head); 1381 drm_printf(p, "Tail: %u\n", 1382 ct->ctbs.recv.desc->tail); 1383 } 1384 1385 #if IS_ENABLED(CONFIG_DRM_I915_DEBUG) 1386 static void ct_dead_ct_worker_func(struct work_struct *w) 1387 { 1388 struct intel_guc_ct *ct = container_of(w, struct intel_guc_ct, dead_ct_worker); 1389 struct intel_guc *guc = ct_to_guc(ct); 1390 1391 if (ct->dead_ct_reported) 1392 return; 1393 1394 ct->dead_ct_reported = true; 1395 1396 guc_info(guc, "CTB is dead - reason=0x%X\n", ct->dead_ct_reason); 1397 intel_klog_error_capture(guc_to_gt(guc), (intel_engine_mask_t)~0U); 1398 } 1399 #endif 1400