1 // SPDX-License-Identifier: GPL-2.0 OR MIT 2 /* 3 * Copyright 2014-2022 Advanced Micro Devices, Inc. 4 * 5 * Permission is hereby granted, free of charge, to any person obtaining a 6 * copy of this software and associated documentation files (the "Software"), 7 * to deal in the Software without restriction, including without limitation 8 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 9 * and/or sell copies of the Software, and to permit persons to whom the 10 * Software is furnished to do so, subject to the following conditions: 11 * 12 * The above copyright notice and this permission notice shall be included in 13 * all copies or substantial portions of the Software. 14 * 15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 18 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 19 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 20 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 21 * OTHER DEALINGS IN THE SOFTWARE. 22 */ 23 24 #include <linux/mm_types.h> 25 #include <linux/slab.h> 26 #include <linux/types.h> 27 #include <linux/sched/signal.h> 28 #include <linux/sched/mm.h> 29 #include <linux/uaccess.h> 30 #include <linux/mman.h> 31 #include <linux/memory.h> 32 #include "kfd_priv.h" 33 #include "kfd_events.h" 34 #include "kfd_device_queue_manager.h" 35 #include <linux/device.h> 36 37 /* 38 * Wrapper around wait_queue_entry_t 39 */ 40 struct kfd_event_waiter { 41 wait_queue_entry_t wait; 42 struct kfd_event *event; /* Event to wait for */ 43 bool activated; /* Becomes true when event is signaled */ 44 bool event_age_enabled; /* set to true when last_event_age is non-zero */ 45 }; 46 47 /* 48 * Each signal event needs a 64-bit signal slot where the signaler will write 49 * a 1 before sending an interrupt. (This is needed because some interrupts 50 * do not contain enough spare data bits to identify an event.) 51 * We get whole pages and map them to the process VA. 52 * Individual signal events use their event_id as slot index. 53 */ 54 struct kfd_signal_page { 55 uint64_t *kernel_address; 56 uint64_t __user *user_address; 57 bool need_to_free_pages; 58 }; 59 60 static uint64_t *page_slots(struct kfd_signal_page *page) 61 { 62 return page->kernel_address; 63 } 64 65 static struct kfd_signal_page *allocate_signal_page(struct kfd_process *p) 66 { 67 void *backing_store; 68 struct kfd_signal_page *page; 69 70 page = kzalloc_obj(*page); 71 if (!page) 72 return NULL; 73 74 backing_store = (void *) __get_free_pages(GFP_KERNEL, 75 get_order(KFD_SIGNAL_EVENT_LIMIT * 8)); 76 if (!backing_store) 77 goto fail_alloc_signal_store; 78 79 /* Initialize all events to unsignaled */ 80 memset(backing_store, (uint8_t) UNSIGNALED_EVENT_SLOT, 81 KFD_SIGNAL_EVENT_LIMIT * 8); 82 83 page->kernel_address = backing_store; 84 page->need_to_free_pages = true; 85 pr_debug("Allocated new event signal page at %p, for process %p\n", 86 page, p); 87 88 return page; 89 90 fail_alloc_signal_store: 91 kfree(page); 92 return NULL; 93 } 94 95 static int allocate_event_notification_slot(struct kfd_process *p, 96 struct kfd_event *ev, 97 const int *restore_id) 98 { 99 int id; 100 101 if (!p->signal_page) { 102 p->signal_page = allocate_signal_page(p); 103 if (!p->signal_page) 104 return -ENOMEM; 105 /* Oldest user mode expects 256 event slots */ 106 p->signal_mapped_size = 256*8; 107 } 108 109 if (restore_id) { 110 id = idr_alloc(&p->event_idr, ev, *restore_id, *restore_id + 1, 111 GFP_KERNEL); 112 } else { 113 /* 114 * Compatibility with old user mode: Only use signal slots 115 * user mode has mapped, may be less than 116 * KFD_SIGNAL_EVENT_LIMIT. This also allows future increase 117 * of the event limit without breaking user mode. 118 */ 119 id = idr_alloc(&p->event_idr, ev, 0, p->signal_mapped_size / 8, 120 GFP_KERNEL); 121 } 122 if (id < 0) 123 return id; 124 125 ev->event_id = id; 126 page_slots(p->signal_page)[id] = UNSIGNALED_EVENT_SLOT; 127 128 return 0; 129 } 130 131 /* 132 * Assumes that p->event_mutex or rcu_readlock is held and of course that p is 133 * not going away. 134 */ 135 static struct kfd_event *lookup_event_by_id(struct kfd_process *p, uint32_t id) 136 { 137 return idr_find(&p->event_idr, id); 138 } 139 140 /** 141 * lookup_signaled_event_by_partial_id - Lookup signaled event from partial ID 142 * @p: Pointer to struct kfd_process 143 * @id: ID to look up 144 * @bits: Number of valid bits in @id 145 * 146 * Finds the first signaled event with a matching partial ID. If no 147 * matching signaled event is found, returns NULL. In that case the 148 * caller should assume that the partial ID is invalid and do an 149 * exhaustive search of all siglaned events. 150 * 151 * If multiple events with the same partial ID signal at the same 152 * time, they will be found one interrupt at a time, not necessarily 153 * in the same order the interrupts occurred. As long as the number of 154 * interrupts is correct, all signaled events will be seen by the 155 * driver. 156 */ 157 static struct kfd_event *lookup_signaled_event_by_partial_id( 158 struct kfd_process *p, uint32_t id, uint32_t bits) 159 { 160 struct kfd_event *ev; 161 162 if (!p->signal_page || id >= KFD_SIGNAL_EVENT_LIMIT) 163 return NULL; 164 165 /* Fast path for the common case that @id is not a partial ID 166 * and we only need a single lookup. 167 */ 168 if (bits > 31 || (1U << bits) >= KFD_SIGNAL_EVENT_LIMIT) { 169 if (page_slots(p->signal_page)[id] == UNSIGNALED_EVENT_SLOT) 170 return NULL; 171 172 return idr_find(&p->event_idr, id); 173 } 174 175 /* General case for partial IDs: Iterate over all matching IDs 176 * and find the first one that has signaled. 177 */ 178 for (ev = NULL; id < KFD_SIGNAL_EVENT_LIMIT && !ev; id += 1U << bits) { 179 if (page_slots(p->signal_page)[id] == UNSIGNALED_EVENT_SLOT) 180 continue; 181 182 ev = idr_find(&p->event_idr, id); 183 } 184 185 return ev; 186 } 187 188 static int create_signal_event(struct file *devkfd, struct kfd_process *p, 189 struct kfd_event *ev, const int *restore_id) 190 { 191 int ret; 192 193 if (p->signal_mapped_size && 194 p->signal_event_count == p->signal_mapped_size / 8) { 195 if (!p->signal_event_limit_reached) { 196 pr_debug("Signal event wasn't created because limit was reached\n"); 197 p->signal_event_limit_reached = true; 198 } 199 return -ENOSPC; 200 } 201 202 ret = allocate_event_notification_slot(p, ev, restore_id); 203 if (ret) { 204 pr_warn("Signal event wasn't created because out of kernel memory\n"); 205 return ret; 206 } 207 208 p->signal_event_count++; 209 210 ev->user_signal_address = &p->signal_page->user_address[ev->event_id]; 211 pr_debug("Signal event number %zu created with id %d, address %p\n", 212 p->signal_event_count, ev->event_id, 213 ev->user_signal_address); 214 215 return 0; 216 } 217 218 static int create_other_event(struct kfd_process *p, struct kfd_event *ev, const int *restore_id) 219 { 220 int id; 221 222 if (restore_id) 223 id = idr_alloc(&p->event_idr, ev, *restore_id, *restore_id + 1, 224 GFP_KERNEL); 225 else 226 /* Cast KFD_LAST_NONSIGNAL_EVENT to uint32_t. This allows an 227 * intentional integer overflow to -1 without a compiler 228 * warning. idr_alloc treats a negative value as "maximum 229 * signed integer". 230 */ 231 id = idr_alloc(&p->event_idr, ev, KFD_FIRST_NONSIGNAL_EVENT_ID, 232 (uint32_t)KFD_LAST_NONSIGNAL_EVENT_ID + 1, 233 GFP_KERNEL); 234 235 if (id < 0) 236 return id; 237 ev->event_id = id; 238 239 return 0; 240 } 241 242 int kfd_event_init_process(struct kfd_process *p) 243 { 244 int id; 245 246 mutex_init(&p->event_mutex); 247 idr_init(&p->event_idr); 248 p->signal_page = NULL; 249 p->signal_event_count = 1; 250 /* Allocate event ID 0. It is used for a fast path to ignore bogus events 251 * that are sent by the CP without a context ID 252 */ 253 id = idr_alloc(&p->event_idr, NULL, 0, 1, GFP_KERNEL); 254 if (id < 0) { 255 idr_destroy(&p->event_idr); 256 mutex_destroy(&p->event_mutex); 257 return id; 258 } 259 return 0; 260 } 261 262 static void destroy_event(struct kfd_process *p, struct kfd_event *ev) 263 { 264 struct kfd_event_waiter *waiter; 265 266 /* Wake up pending waiters. They will return failure */ 267 spin_lock(&ev->lock); 268 list_for_each_entry(waiter, &ev->wq.head, wait.entry) 269 WRITE_ONCE(waiter->event, NULL); 270 wake_up_all(&ev->wq); 271 spin_unlock(&ev->lock); 272 273 if (ev->type == KFD_EVENT_TYPE_SIGNAL || 274 ev->type == KFD_EVENT_TYPE_DEBUG) 275 p->signal_event_count--; 276 277 idr_remove(&p->event_idr, ev->event_id); 278 kfree_rcu(ev, rcu); 279 } 280 281 static void destroy_events(struct kfd_process *p) 282 { 283 struct kfd_event *ev; 284 uint32_t id; 285 286 idr_for_each_entry(&p->event_idr, ev, id) 287 if (ev) 288 destroy_event(p, ev); 289 idr_destroy(&p->event_idr); 290 mutex_destroy(&p->event_mutex); 291 } 292 293 /* 294 * We assume that the process is being destroyed and there is no need to 295 * unmap the pages or keep bookkeeping data in order. 296 */ 297 static void shutdown_signal_page(struct kfd_process *p) 298 { 299 struct kfd_signal_page *page = p->signal_page; 300 301 if (page) { 302 if (page->need_to_free_pages) 303 free_pages((unsigned long)page->kernel_address, 304 get_order(KFD_SIGNAL_EVENT_LIMIT * 8)); 305 kfree(page); 306 } 307 } 308 309 void kfd_event_free_process(struct kfd_process *p) 310 { 311 destroy_events(p); 312 shutdown_signal_page(p); 313 } 314 315 static bool event_can_be_gpu_signaled(const struct kfd_event *ev) 316 { 317 return ev->type == KFD_EVENT_TYPE_SIGNAL || 318 ev->type == KFD_EVENT_TYPE_DEBUG; 319 } 320 321 static bool event_can_be_cpu_signaled(const struct kfd_event *ev) 322 { 323 return ev->type == KFD_EVENT_TYPE_SIGNAL; 324 } 325 326 static int kfd_event_page_set(struct kfd_process *p, void *kernel_address, 327 uint64_t size, uint64_t user_handle) 328 { 329 struct kfd_signal_page *page; 330 331 if (p->signal_page) 332 return -EBUSY; 333 334 if (size < KFD_SIGNAL_EVENT_LIMIT * 8) { 335 pr_err("Event page size %llu is too small, need at least %lu bytes\n", 336 size, (unsigned long)(KFD_SIGNAL_EVENT_LIMIT * 8)); 337 return -EINVAL; 338 } 339 340 page = kzalloc_obj(*page); 341 if (!page) 342 return -ENOMEM; 343 344 /* Initialize all events to unsignaled */ 345 memset(kernel_address, (uint8_t) UNSIGNALED_EVENT_SLOT, 346 KFD_SIGNAL_EVENT_LIMIT * 8); 347 348 page->kernel_address = kernel_address; 349 350 p->signal_page = page; 351 p->signal_mapped_size = size; 352 p->signal_handle = user_handle; 353 return 0; 354 } 355 356 int kfd_kmap_event_page(struct kfd_process *p, uint64_t event_page_offset) 357 { 358 struct kfd_node *kfd; 359 struct kfd_process_device *pdd; 360 void *mem, *kern_addr; 361 uint64_t size; 362 int err = 0; 363 364 if (p->signal_page) { 365 pr_err("Event page is already set\n"); 366 return -EINVAL; 367 } 368 369 pdd = kfd_process_device_data_by_id(p, GET_GPU_ID(event_page_offset)); 370 if (!pdd) { 371 pr_err("Getting device by id failed in %s\n", __func__); 372 return -EINVAL; 373 } 374 kfd = pdd->dev; 375 376 pdd = kfd_bind_process_to_device(kfd, p); 377 if (IS_ERR(pdd)) 378 return PTR_ERR(pdd); 379 380 mem = kfd_process_device_translate_handle(pdd, 381 GET_IDR_HANDLE(event_page_offset)); 382 if (!mem) { 383 pr_err("Can't find BO, offset is 0x%llx\n", event_page_offset); 384 return -EINVAL; 385 } 386 387 err = amdgpu_amdkfd_gpuvm_map_gtt_bo_to_kernel(mem, &kern_addr, &size); 388 if (err) { 389 pr_err("Failed to map event page to kernel\n"); 390 return err; 391 } 392 393 err = kfd_event_page_set(p, kern_addr, size, event_page_offset); 394 if (err) { 395 pr_err("Failed to set event page\n"); 396 amdgpu_amdkfd_gpuvm_unmap_gtt_bo_from_kernel(mem); 397 return err; 398 } 399 return err; 400 } 401 402 int kfd_event_create(struct file *devkfd, struct kfd_process *p, 403 uint32_t event_type, bool auto_reset, uint32_t node_id, 404 uint32_t *event_id, uint32_t *event_trigger_data, 405 uint64_t *event_page_offset, uint32_t *event_slot_index) 406 { 407 int ret = 0; 408 struct kfd_event *ev = kzalloc_obj(*ev); 409 410 if (!ev) 411 return -ENOMEM; 412 413 ev->type = event_type; 414 ev->auto_reset = auto_reset; 415 ev->signaled = false; 416 417 spin_lock_init(&ev->lock); 418 init_waitqueue_head(&ev->wq); 419 420 *event_page_offset = 0; 421 422 mutex_lock(&p->event_mutex); 423 424 switch (event_type) { 425 case KFD_EVENT_TYPE_SIGNAL: 426 case KFD_EVENT_TYPE_DEBUG: 427 ret = create_signal_event(devkfd, p, ev, NULL); 428 if (!ret) { 429 *event_page_offset = KFD_MMAP_TYPE_EVENTS; 430 *event_slot_index = ev->event_id; 431 } 432 break; 433 default: 434 ret = create_other_event(p, ev, NULL); 435 break; 436 } 437 438 if (!ret) { 439 *event_id = ev->event_id; 440 *event_trigger_data = ev->event_id; 441 ev->event_age = 1; 442 } else { 443 kfree(ev); 444 } 445 446 mutex_unlock(&p->event_mutex); 447 448 return ret; 449 } 450 451 int kfd_criu_restore_event(struct file *devkfd, 452 struct kfd_process *p, 453 uint8_t __user *user_priv_ptr, 454 uint64_t *priv_data_offset, 455 uint64_t max_priv_data_size) 456 { 457 struct kfd_criu_event_priv_data *ev_priv; 458 struct kfd_event *ev = NULL; 459 int ret = 0; 460 461 ev_priv = kmalloc_obj(*ev_priv); 462 if (!ev_priv) 463 return -ENOMEM; 464 465 ev = kzalloc_obj(*ev); 466 if (!ev) { 467 ret = -ENOMEM; 468 goto exit; 469 } 470 471 if (*priv_data_offset + sizeof(*ev_priv) > max_priv_data_size) { 472 ret = -EINVAL; 473 goto exit; 474 } 475 476 ret = copy_from_user(ev_priv, user_priv_ptr + *priv_data_offset, sizeof(*ev_priv)); 477 if (ret) { 478 ret = -EFAULT; 479 goto exit; 480 } 481 *priv_data_offset += sizeof(*ev_priv); 482 483 if (ev_priv->user_handle) { 484 ret = kfd_kmap_event_page(p, ev_priv->user_handle); 485 if (ret) 486 goto exit; 487 } 488 489 ev->type = ev_priv->type; 490 ev->auto_reset = ev_priv->auto_reset; 491 ev->signaled = ev_priv->signaled; 492 493 spin_lock_init(&ev->lock); 494 init_waitqueue_head(&ev->wq); 495 496 mutex_lock(&p->event_mutex); 497 switch (ev->type) { 498 case KFD_EVENT_TYPE_SIGNAL: 499 case KFD_EVENT_TYPE_DEBUG: 500 ret = create_signal_event(devkfd, p, ev, &ev_priv->event_id); 501 break; 502 case KFD_EVENT_TYPE_MEMORY: 503 memcpy(&ev->memory_exception_data, 504 &ev_priv->memory_exception_data, 505 sizeof(struct kfd_hsa_memory_exception_data)); 506 507 ret = create_other_event(p, ev, &ev_priv->event_id); 508 break; 509 case KFD_EVENT_TYPE_HW_EXCEPTION: 510 memcpy(&ev->hw_exception_data, 511 &ev_priv->hw_exception_data, 512 sizeof(struct kfd_hsa_hw_exception_data)); 513 514 ret = create_other_event(p, ev, &ev_priv->event_id); 515 break; 516 } 517 mutex_unlock(&p->event_mutex); 518 519 exit: 520 if (ret) 521 kfree(ev); 522 523 kfree(ev_priv); 524 525 return ret; 526 } 527 528 int kfd_criu_checkpoint_events(struct kfd_process *p, 529 uint8_t __user *user_priv_data, 530 uint64_t *priv_data_offset) 531 { 532 struct kfd_criu_event_priv_data *ev_privs; 533 int i = 0; 534 int ret = 0; 535 struct kfd_event *ev; 536 uint32_t ev_id; 537 538 uint32_t num_events = kfd_get_num_events(p); 539 540 if (!num_events) 541 return 0; 542 543 ev_privs = kvzalloc(num_events * sizeof(*ev_privs), GFP_KERNEL); 544 if (!ev_privs) 545 return -ENOMEM; 546 547 548 idr_for_each_entry(&p->event_idr, ev, ev_id) { 549 struct kfd_criu_event_priv_data *ev_priv; 550 551 /* 552 * Currently, all events have same size of private_data, but the current ioctl's 553 * and CRIU plugin supports private_data of variable sizes 554 */ 555 ev_priv = &ev_privs[i]; 556 557 ev_priv->object_type = KFD_CRIU_OBJECT_TYPE_EVENT; 558 559 /* We store the user_handle with the first event */ 560 if (i == 0 && p->signal_page) 561 ev_priv->user_handle = p->signal_handle; 562 563 ev_priv->event_id = ev->event_id; 564 ev_priv->auto_reset = ev->auto_reset; 565 ev_priv->type = ev->type; 566 ev_priv->signaled = ev->signaled; 567 568 if (ev_priv->type == KFD_EVENT_TYPE_MEMORY) 569 memcpy(&ev_priv->memory_exception_data, 570 &ev->memory_exception_data, 571 sizeof(struct kfd_hsa_memory_exception_data)); 572 else if (ev_priv->type == KFD_EVENT_TYPE_HW_EXCEPTION) 573 memcpy(&ev_priv->hw_exception_data, 574 &ev->hw_exception_data, 575 sizeof(struct kfd_hsa_hw_exception_data)); 576 577 pr_debug("Checkpointed event[%d] id = 0x%08x auto_reset = %x type = %x signaled = %x\n", 578 i, 579 ev_priv->event_id, 580 ev_priv->auto_reset, 581 ev_priv->type, 582 ev_priv->signaled); 583 i++; 584 } 585 586 ret = copy_to_user(user_priv_data + *priv_data_offset, 587 ev_privs, num_events * sizeof(*ev_privs)); 588 if (ret) { 589 pr_err("Failed to copy events priv to user\n"); 590 ret = -EFAULT; 591 } 592 593 *priv_data_offset += num_events * sizeof(*ev_privs); 594 595 kvfree(ev_privs); 596 return ret; 597 } 598 599 int kfd_get_num_events(struct kfd_process *p) 600 { 601 struct kfd_event *ev; 602 uint32_t id; 603 u32 num_events = 0; 604 605 idr_for_each_entry(&p->event_idr, ev, id) 606 num_events++; 607 608 return num_events; 609 } 610 611 /* Assumes that p is current. */ 612 int kfd_event_destroy(struct kfd_process *p, uint32_t event_id) 613 { 614 struct kfd_event *ev; 615 int ret = 0; 616 617 mutex_lock(&p->event_mutex); 618 619 ev = lookup_event_by_id(p, event_id); 620 621 if (ev) 622 destroy_event(p, ev); 623 else 624 ret = -EINVAL; 625 626 mutex_unlock(&p->event_mutex); 627 return ret; 628 } 629 630 static void set_event(struct kfd_event *ev) 631 { 632 struct kfd_event_waiter *waiter; 633 634 /* Auto reset if the list is non-empty and we're waking 635 * someone. waitqueue_active is safe here because we're 636 * protected by the ev->lock, which is also held when 637 * updating the wait queues in kfd_wait_on_events. 638 */ 639 ev->signaled = !ev->auto_reset || !waitqueue_active(&ev->wq); 640 if (!(++ev->event_age)) { 641 /* Never wrap back to reserved/default event age 0/1 */ 642 ev->event_age = 2; 643 WARN_ONCE(1, "event_age wrap back!"); 644 } 645 646 list_for_each_entry(waiter, &ev->wq.head, wait.entry) 647 WRITE_ONCE(waiter->activated, true); 648 649 wake_up_all(&ev->wq); 650 } 651 652 /* Assumes that p is current. */ 653 int kfd_set_event(struct kfd_process *p, uint32_t event_id) 654 { 655 int ret = 0; 656 struct kfd_event *ev; 657 658 rcu_read_lock(); 659 660 ev = lookup_event_by_id(p, event_id); 661 if (!ev) { 662 ret = -EINVAL; 663 goto unlock_rcu; 664 } 665 spin_lock(&ev->lock); 666 667 if (event_can_be_cpu_signaled(ev)) 668 set_event(ev); 669 else 670 ret = -EINVAL; 671 672 spin_unlock(&ev->lock); 673 unlock_rcu: 674 rcu_read_unlock(); 675 return ret; 676 } 677 678 static void reset_event(struct kfd_event *ev) 679 { 680 ev->signaled = false; 681 } 682 683 /* Assumes that p is current. */ 684 int kfd_reset_event(struct kfd_process *p, uint32_t event_id) 685 { 686 int ret = 0; 687 struct kfd_event *ev; 688 689 rcu_read_lock(); 690 691 ev = lookup_event_by_id(p, event_id); 692 if (!ev) { 693 ret = -EINVAL; 694 goto unlock_rcu; 695 } 696 spin_lock(&ev->lock); 697 698 if (event_can_be_cpu_signaled(ev)) 699 reset_event(ev); 700 else 701 ret = -EINVAL; 702 703 spin_unlock(&ev->lock); 704 unlock_rcu: 705 rcu_read_unlock(); 706 return ret; 707 708 } 709 710 static void acknowledge_signal(struct kfd_process *p, struct kfd_event *ev) 711 { 712 WRITE_ONCE(page_slots(p->signal_page)[ev->event_id], UNSIGNALED_EVENT_SLOT); 713 } 714 715 static void set_event_from_interrupt(struct kfd_process *p, 716 struct kfd_event *ev) 717 { 718 if (ev && event_can_be_gpu_signaled(ev)) { 719 acknowledge_signal(p, ev); 720 spin_lock(&ev->lock); 721 set_event(ev); 722 spin_unlock(&ev->lock); 723 } 724 } 725 726 void kfd_signal_event_interrupt(u32 pasid, uint32_t partial_id, 727 uint32_t valid_id_bits) 728 { 729 struct kfd_event *ev = NULL; 730 731 /* 732 * Because we are called from arbitrary context (workqueue) as opposed 733 * to process context, kfd_process could attempt to exit while we are 734 * running so the lookup function increments the process ref count. 735 */ 736 struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL); 737 738 if (!p) 739 return; /* Presumably process exited. */ 740 741 rcu_read_lock(); 742 743 if (valid_id_bits) 744 ev = lookup_signaled_event_by_partial_id(p, partial_id, 745 valid_id_bits); 746 if (ev) { 747 set_event_from_interrupt(p, ev); 748 } else if (p->signal_page) { 749 /* 750 * Partial ID lookup failed. Assume that the event ID 751 * in the interrupt payload was invalid and do an 752 * exhaustive search of signaled events. 753 */ 754 uint64_t *slots = page_slots(p->signal_page); 755 uint32_t id; 756 757 if (valid_id_bits) 758 pr_debug_ratelimited("Partial ID invalid: %u (%u valid bits)\n", 759 partial_id, valid_id_bits); 760 761 if (p->signal_event_count < KFD_SIGNAL_EVENT_LIMIT / 64) { 762 /* With relatively few events, it's faster to 763 * iterate over the event IDR 764 */ 765 idr_for_each_entry(&p->event_idr, ev, id) { 766 if (id >= KFD_SIGNAL_EVENT_LIMIT) 767 break; 768 769 if (READ_ONCE(slots[id]) != UNSIGNALED_EVENT_SLOT) 770 set_event_from_interrupt(p, ev); 771 } 772 } else { 773 /* With relatively many events, it's faster to 774 * iterate over the signal slots and lookup 775 * only signaled events from the IDR. 776 */ 777 for (id = 1; id < KFD_SIGNAL_EVENT_LIMIT; id++) 778 if (READ_ONCE(slots[id]) != UNSIGNALED_EVENT_SLOT) { 779 ev = lookup_event_by_id(p, id); 780 set_event_from_interrupt(p, ev); 781 } 782 } 783 } 784 785 rcu_read_unlock(); 786 kfd_unref_process(p); 787 } 788 789 static struct kfd_event_waiter *alloc_event_waiters(uint32_t num_events) 790 { 791 struct kfd_event_waiter *event_waiters; 792 uint32_t i; 793 794 event_waiters = kzalloc_objs(struct kfd_event_waiter, num_events); 795 if (!event_waiters) 796 return NULL; 797 798 for (i = 0; i < num_events; i++) 799 init_wait(&event_waiters[i].wait); 800 801 return event_waiters; 802 } 803 804 static int init_event_waiter(struct kfd_process *p, 805 struct kfd_event_waiter *waiter, 806 struct kfd_event_data *event_data) 807 { 808 struct kfd_event *ev = lookup_event_by_id(p, event_data->event_id); 809 810 if (!ev) 811 return -EINVAL; 812 813 spin_lock(&ev->lock); 814 waiter->event = ev; 815 waiter->activated = ev->signaled; 816 ev->signaled = ev->signaled && !ev->auto_reset; 817 818 /* last_event_age = 0 reserved for backward compatible */ 819 if (waiter->event->type == KFD_EVENT_TYPE_SIGNAL && 820 event_data->signal_event_data.last_event_age) { 821 waiter->event_age_enabled = true; 822 if (ev->event_age != event_data->signal_event_data.last_event_age) 823 waiter->activated = true; 824 } 825 826 if (!waiter->activated) 827 add_wait_queue(&ev->wq, &waiter->wait); 828 spin_unlock(&ev->lock); 829 830 return 0; 831 } 832 833 /* test_event_condition - Test condition of events being waited for 834 * @all: Return completion only if all events have signaled 835 * @num_events: Number of events to wait for 836 * @event_waiters: Array of event waiters, one per event 837 * 838 * Returns KFD_IOC_WAIT_RESULT_COMPLETE if all (or one) event(s) have 839 * signaled. Returns KFD_IOC_WAIT_RESULT_TIMEOUT if no (or not all) 840 * events have signaled. Returns KFD_IOC_WAIT_RESULT_FAIL if any of 841 * the events have been destroyed. 842 */ 843 static uint32_t test_event_condition(bool all, uint32_t num_events, 844 struct kfd_event_waiter *event_waiters) 845 { 846 uint32_t i; 847 uint32_t activated_count = 0; 848 849 for (i = 0; i < num_events; i++) { 850 if (!READ_ONCE(event_waiters[i].event)) 851 return KFD_IOC_WAIT_RESULT_FAIL; 852 853 if (READ_ONCE(event_waiters[i].activated)) { 854 if (!all) 855 return KFD_IOC_WAIT_RESULT_COMPLETE; 856 857 activated_count++; 858 } 859 } 860 861 return activated_count == num_events ? 862 KFD_IOC_WAIT_RESULT_COMPLETE : KFD_IOC_WAIT_RESULT_TIMEOUT; 863 } 864 865 /* 866 * Copy event specific data, if defined. 867 * Currently only memory exception events have additional data to copy to user 868 */ 869 static int copy_signaled_event_data(uint32_t num_events, 870 struct kfd_event_waiter *event_waiters, 871 struct kfd_event_data __user *data) 872 { 873 void *src; 874 void __user *dst; 875 struct kfd_event_waiter *waiter; 876 struct kfd_event *event; 877 uint32_t i, size = 0; 878 879 for (i = 0; i < num_events; i++) { 880 waiter = &event_waiters[i]; 881 event = waiter->event; 882 if (!event) 883 return -EINVAL; /* event was destroyed */ 884 if (waiter->activated) { 885 if (event->type == KFD_EVENT_TYPE_MEMORY) { 886 dst = &data[i].memory_exception_data; 887 src = &event->memory_exception_data; 888 size = sizeof(struct kfd_hsa_memory_exception_data); 889 } else if (event->type == KFD_EVENT_TYPE_HW_EXCEPTION) { 890 dst = &data[i].memory_exception_data; 891 src = &event->hw_exception_data; 892 size = sizeof(struct kfd_hsa_hw_exception_data); 893 } else if (event->type == KFD_EVENT_TYPE_SIGNAL && 894 waiter->event_age_enabled) { 895 dst = &data[i].signal_event_data.last_event_age; 896 src = &event->event_age; 897 size = sizeof(u64); 898 } 899 if (size && copy_to_user(dst, src, size)) 900 return -EFAULT; 901 } 902 } 903 904 return 0; 905 } 906 907 static long user_timeout_to_jiffies(uint32_t user_timeout_ms) 908 { 909 if (user_timeout_ms == KFD_EVENT_TIMEOUT_IMMEDIATE) 910 return 0; 911 912 if (user_timeout_ms == KFD_EVENT_TIMEOUT_INFINITE) 913 return MAX_SCHEDULE_TIMEOUT; 914 915 /* 916 * msecs_to_jiffies interprets all values above 2^31-1 as infinite, 917 * but we consider them finite. 918 * This hack is wrong, but nobody is likely to notice. 919 */ 920 user_timeout_ms = min_t(uint32_t, user_timeout_ms, 0x7FFFFFFF); 921 922 return msecs_to_jiffies(user_timeout_ms) + 1; 923 } 924 925 static void free_waiters(uint32_t num_events, struct kfd_event_waiter *waiters, 926 bool undo_auto_reset) 927 { 928 uint32_t i; 929 930 for (i = 0; i < num_events; i++) 931 if (waiters[i].event) { 932 spin_lock(&waiters[i].event->lock); 933 remove_wait_queue(&waiters[i].event->wq, 934 &waiters[i].wait); 935 if (undo_auto_reset && waiters[i].activated && 936 waiters[i].event && waiters[i].event->auto_reset) 937 set_event(waiters[i].event); 938 spin_unlock(&waiters[i].event->lock); 939 } 940 941 kfree(waiters); 942 } 943 944 int kfd_wait_on_events(struct kfd_process *p, 945 uint32_t num_events, void __user *data, 946 bool all, uint32_t *user_timeout_ms, 947 uint32_t *wait_result) 948 { 949 struct kfd_event_data __user *events = 950 (struct kfd_event_data __user *) data; 951 uint32_t i; 952 int ret = 0; 953 954 struct kfd_event_waiter *event_waiters = NULL; 955 long timeout = user_timeout_to_jiffies(*user_timeout_ms); 956 957 event_waiters = alloc_event_waiters(num_events); 958 if (!event_waiters) { 959 ret = -ENOMEM; 960 goto out; 961 } 962 963 /* Use p->event_mutex here to protect against concurrent creation and 964 * destruction of events while we initialize event_waiters. 965 */ 966 mutex_lock(&p->event_mutex); 967 968 for (i = 0; i < num_events; i++) { 969 struct kfd_event_data event_data; 970 971 if (copy_from_user(&event_data, &events[i], 972 sizeof(struct kfd_event_data))) { 973 ret = -EFAULT; 974 goto out_unlock; 975 } 976 977 ret = init_event_waiter(p, &event_waiters[i], &event_data); 978 if (ret) 979 goto out_unlock; 980 } 981 982 /* Check condition once. */ 983 *wait_result = test_event_condition(all, num_events, event_waiters); 984 if (*wait_result == KFD_IOC_WAIT_RESULT_COMPLETE) { 985 ret = copy_signaled_event_data(num_events, 986 event_waiters, events); 987 goto out_unlock; 988 } else if (WARN_ON(*wait_result == KFD_IOC_WAIT_RESULT_FAIL)) { 989 /* This should not happen. Events shouldn't be 990 * destroyed while we're holding the event_mutex 991 */ 992 goto out_unlock; 993 } 994 995 mutex_unlock(&p->event_mutex); 996 997 while (true) { 998 if (fatal_signal_pending(current)) { 999 ret = -EINTR; 1000 break; 1001 } 1002 1003 if (signal_pending(current)) { 1004 ret = -ERESTARTSYS; 1005 if (*user_timeout_ms != KFD_EVENT_TIMEOUT_IMMEDIATE && 1006 *user_timeout_ms != KFD_EVENT_TIMEOUT_INFINITE) 1007 *user_timeout_ms = jiffies_to_msecs( 1008 max(0l, timeout-1)); 1009 break; 1010 } 1011 1012 /* Set task state to interruptible sleep before 1013 * checking wake-up conditions. A concurrent wake-up 1014 * will put the task back into runnable state. In that 1015 * case schedule_timeout will not put the task to 1016 * sleep and we'll get a chance to re-check the 1017 * updated conditions almost immediately. Otherwise, 1018 * this race condition would lead to a soft hang or a 1019 * very long sleep. 1020 */ 1021 set_current_state(TASK_INTERRUPTIBLE); 1022 1023 *wait_result = test_event_condition(all, num_events, 1024 event_waiters); 1025 if (*wait_result != KFD_IOC_WAIT_RESULT_TIMEOUT) 1026 break; 1027 1028 if (timeout <= 0) 1029 break; 1030 1031 timeout = schedule_timeout(timeout); 1032 } 1033 __set_current_state(TASK_RUNNING); 1034 1035 mutex_lock(&p->event_mutex); 1036 /* copy_signaled_event_data may sleep. So this has to happen 1037 * after the task state is set back to RUNNING. 1038 * 1039 * The event may also have been destroyed after signaling. So 1040 * copy_signaled_event_data also must confirm that the event 1041 * still exists. Therefore this must be under the p->event_mutex 1042 * which is also held when events are destroyed. 1043 */ 1044 if (!ret && *wait_result == KFD_IOC_WAIT_RESULT_COMPLETE) 1045 ret = copy_signaled_event_data(num_events, 1046 event_waiters, events); 1047 1048 out_unlock: 1049 free_waiters(num_events, event_waiters, ret == -ERESTARTSYS); 1050 mutex_unlock(&p->event_mutex); 1051 out: 1052 if (ret) 1053 *wait_result = KFD_IOC_WAIT_RESULT_FAIL; 1054 else if (*wait_result == KFD_IOC_WAIT_RESULT_FAIL) 1055 ret = -EIO; 1056 1057 return ret; 1058 } 1059 1060 int kfd_event_mmap(struct kfd_process *p, struct vm_area_struct *vma) 1061 { 1062 unsigned long pfn; 1063 struct kfd_signal_page *page; 1064 int ret; 1065 1066 /* check required size doesn't exceed the allocated size */ 1067 if (get_order(KFD_SIGNAL_EVENT_LIMIT * 8) < 1068 get_order(vma->vm_end - vma->vm_start)) { 1069 pr_err("Event page mmap requested illegal size\n"); 1070 return -EINVAL; 1071 } 1072 1073 page = p->signal_page; 1074 if (!page) { 1075 /* Probably KFD bug, but mmap is user-accessible. */ 1076 pr_debug("Signal page could not be found\n"); 1077 return -EINVAL; 1078 } 1079 1080 pfn = __pa(page->kernel_address); 1081 pfn >>= PAGE_SHIFT; 1082 1083 vm_flags_set(vma, VM_IO | VM_DONTCOPY | VM_DONTEXPAND | VM_NORESERVE 1084 | VM_DONTDUMP | VM_PFNMAP); 1085 1086 pr_debug("Mapping signal page\n"); 1087 pr_debug(" start user address == 0x%08lx\n", vma->vm_start); 1088 pr_debug(" end user address == 0x%08lx\n", vma->vm_end); 1089 pr_debug(" pfn == 0x%016lX\n", pfn); 1090 pr_debug(" vm_flags == 0x%08lX\n", vma->vm_flags); 1091 pr_debug(" size == 0x%08lX\n", 1092 vma->vm_end - vma->vm_start); 1093 1094 page->user_address = (uint64_t __user *)vma->vm_start; 1095 1096 /* mapping the page to user process */ 1097 ret = remap_pfn_range(vma, vma->vm_start, pfn, 1098 vma->vm_end - vma->vm_start, vma->vm_page_prot); 1099 if (!ret) 1100 p->signal_mapped_size = vma->vm_end - vma->vm_start; 1101 1102 return ret; 1103 } 1104 1105 /* 1106 * Assumes that p is not going away. 1107 */ 1108 static void lookup_events_by_type_and_signal(struct kfd_process *p, 1109 int type, void *event_data) 1110 { 1111 struct kfd_hsa_memory_exception_data *ev_data; 1112 struct kfd_event *ev; 1113 uint32_t id; 1114 bool send_signal = true; 1115 1116 ev_data = (struct kfd_hsa_memory_exception_data *) event_data; 1117 1118 rcu_read_lock(); 1119 1120 id = KFD_FIRST_NONSIGNAL_EVENT_ID; 1121 idr_for_each_entry_continue(&p->event_idr, ev, id) 1122 if (ev->type == type) { 1123 send_signal = false; 1124 dev_dbg(kfd_device, 1125 "Event found: id %X type %d", 1126 ev->event_id, ev->type); 1127 spin_lock(&ev->lock); 1128 set_event(ev); 1129 if (ev->type == KFD_EVENT_TYPE_MEMORY && ev_data) 1130 ev->memory_exception_data = *ev_data; 1131 spin_unlock(&ev->lock); 1132 } 1133 1134 if (type == KFD_EVENT_TYPE_MEMORY) { 1135 dev_warn(kfd_device, 1136 "Sending SIGSEGV to process pid %d", 1137 p->lead_thread->pid); 1138 send_sig(SIGSEGV, p->lead_thread, 0); 1139 } 1140 1141 /* Send SIGTERM no event of type "type" has been found*/ 1142 if (send_signal) { 1143 if (send_sigterm) { 1144 dev_warn(kfd_device, 1145 "Sending SIGTERM to process pid %d", 1146 p->lead_thread->pid); 1147 send_sig(SIGTERM, p->lead_thread, 0); 1148 } else { 1149 dev_err(kfd_device, 1150 "Process pid %d got unhandled exception", 1151 p->lead_thread->pid); 1152 } 1153 } 1154 1155 rcu_read_unlock(); 1156 } 1157 1158 void kfd_signal_hw_exception_event(u32 pasid) 1159 { 1160 /* 1161 * Because we are called from arbitrary context (workqueue) as opposed 1162 * to process context, kfd_process could attempt to exit while we are 1163 * running so the lookup function increments the process ref count. 1164 */ 1165 struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL); 1166 1167 if (!p) 1168 return; /* Presumably process exited. */ 1169 1170 lookup_events_by_type_and_signal(p, KFD_EVENT_TYPE_HW_EXCEPTION, NULL); 1171 kfd_unref_process(p); 1172 } 1173 1174 void kfd_signal_vm_fault_event_with_userptr(struct kfd_process *p, uint64_t gpu_va) 1175 { 1176 struct kfd_process_device *pdd; 1177 struct kfd_hsa_memory_exception_data exception_data; 1178 int i; 1179 1180 memset(&exception_data, 0, sizeof(exception_data)); 1181 exception_data.va = gpu_va; 1182 exception_data.failure.NotPresent = 1; 1183 1184 // Send VM seg fault to all kfd process device 1185 for (i = 0; i < p->n_pdds; i++) { 1186 pdd = p->pdds[i]; 1187 exception_data.gpu_id = pdd->user_gpu_id; 1188 kfd_evict_process_device(pdd); 1189 kfd_signal_vm_fault_event(pdd, NULL, &exception_data); 1190 } 1191 } 1192 1193 void kfd_signal_vm_fault_event(struct kfd_process_device *pdd, 1194 struct kfd_vm_fault_info *info, 1195 struct kfd_hsa_memory_exception_data *data) 1196 { 1197 struct kfd_event *ev; 1198 uint32_t id; 1199 struct kfd_process *p = pdd->process; 1200 struct kfd_hsa_memory_exception_data memory_exception_data; 1201 int user_gpu_id; 1202 1203 user_gpu_id = kfd_process_get_user_gpu_id(p, pdd->dev->id); 1204 if (unlikely(user_gpu_id == -EINVAL)) { 1205 WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n", 1206 pdd->dev->id); 1207 return; 1208 } 1209 1210 /* SoC15 chips and onwards will pass in data from now on. */ 1211 if (!data) { 1212 memset(&memory_exception_data, 0, sizeof(memory_exception_data)); 1213 memory_exception_data.gpu_id = user_gpu_id; 1214 memory_exception_data.failure.imprecise = true; 1215 1216 /* Set failure reason */ 1217 if (info) { 1218 memory_exception_data.va = (info->page_addr) << 1219 PAGE_SHIFT; 1220 memory_exception_data.failure.NotPresent = 1221 info->prot_valid ? 1 : 0; 1222 memory_exception_data.failure.NoExecute = 1223 info->prot_exec ? 1 : 0; 1224 memory_exception_data.failure.ReadOnly = 1225 info->prot_write ? 1 : 0; 1226 memory_exception_data.failure.imprecise = 0; 1227 } 1228 } 1229 1230 rcu_read_lock(); 1231 1232 id = KFD_FIRST_NONSIGNAL_EVENT_ID; 1233 idr_for_each_entry_continue(&p->event_idr, ev, id) 1234 if (ev->type == KFD_EVENT_TYPE_MEMORY) { 1235 spin_lock(&ev->lock); 1236 ev->memory_exception_data = data ? *data : 1237 memory_exception_data; 1238 set_event(ev); 1239 spin_unlock(&ev->lock); 1240 } 1241 1242 rcu_read_unlock(); 1243 } 1244 1245 void kfd_signal_reset_event(struct kfd_node *dev) 1246 { 1247 struct kfd_hsa_hw_exception_data hw_exception_data; 1248 struct kfd_hsa_memory_exception_data memory_exception_data; 1249 struct kfd_process *p; 1250 struct kfd_event *ev; 1251 unsigned int temp; 1252 uint32_t id, idx; 1253 int reset_cause = atomic_read(&dev->sram_ecc_flag) ? 1254 KFD_HW_EXCEPTION_ECC : 1255 KFD_HW_EXCEPTION_GPU_HANG; 1256 1257 /* Whole gpu reset caused by GPU hang and memory is lost */ 1258 memset(&hw_exception_data, 0, sizeof(hw_exception_data)); 1259 hw_exception_data.memory_lost = 1; 1260 hw_exception_data.reset_cause = reset_cause; 1261 1262 memset(&memory_exception_data, 0, sizeof(memory_exception_data)); 1263 memory_exception_data.ErrorType = KFD_MEM_ERR_SRAM_ECC; 1264 memory_exception_data.failure.imprecise = true; 1265 1266 idx = srcu_read_lock(&kfd_processes_srcu); 1267 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 1268 int user_gpu_id = kfd_process_get_user_gpu_id(p, dev->id); 1269 struct kfd_process_device *pdd = kfd_get_process_device_data(dev, p); 1270 1271 if (unlikely(user_gpu_id == -EINVAL)) { 1272 WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n", dev->id); 1273 continue; 1274 } 1275 1276 if (unlikely(!pdd)) { 1277 WARN_ONCE(1, "Could not get device data from process pid:%d\n", 1278 p->lead_thread->pid); 1279 continue; 1280 } 1281 1282 if (dev->dqm->detect_hang_count && !pdd->has_reset_queue) 1283 continue; 1284 1285 if (dev->dqm->detect_hang_count) { 1286 struct amdgpu_task_info *ti; 1287 struct amdgpu_fpriv *drv_priv; 1288 1289 if (unlikely(amdgpu_file_to_fpriv(pdd->drm_file, &drv_priv))) { 1290 WARN_ONCE(1, "Could not get vm for device %x from pid:%d\n", 1291 dev->id, p->lead_thread->pid); 1292 continue; 1293 } 1294 1295 ti = amdgpu_vm_get_task_info_vm(&drv_priv->vm); 1296 if (ti) { 1297 dev_err(dev->adev->dev, 1298 "Queues reset on process %s tid %d thread %s pid %d\n", 1299 ti->process_name, ti->tgid, ti->task.comm, ti->task.pid); 1300 amdgpu_vm_put_task_info(ti); 1301 } 1302 } 1303 1304 rcu_read_lock(); 1305 1306 id = KFD_FIRST_NONSIGNAL_EVENT_ID; 1307 idr_for_each_entry_continue(&p->event_idr, ev, id) { 1308 if (ev->type == KFD_EVENT_TYPE_HW_EXCEPTION) { 1309 spin_lock(&ev->lock); 1310 ev->hw_exception_data = hw_exception_data; 1311 ev->hw_exception_data.gpu_id = user_gpu_id; 1312 set_event(ev); 1313 spin_unlock(&ev->lock); 1314 } 1315 if (ev->type == KFD_EVENT_TYPE_MEMORY && 1316 reset_cause == KFD_HW_EXCEPTION_ECC) { 1317 spin_lock(&ev->lock); 1318 ev->memory_exception_data = memory_exception_data; 1319 ev->memory_exception_data.gpu_id = user_gpu_id; 1320 set_event(ev); 1321 spin_unlock(&ev->lock); 1322 } 1323 } 1324 1325 rcu_read_unlock(); 1326 } 1327 srcu_read_unlock(&kfd_processes_srcu, idx); 1328 } 1329 1330 void kfd_signal_poison_consumed_event(struct kfd_node *dev, u32 pasid) 1331 { 1332 struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL); 1333 struct kfd_hsa_memory_exception_data memory_exception_data; 1334 struct kfd_hsa_hw_exception_data hw_exception_data; 1335 struct kfd_event *ev; 1336 uint32_t id = KFD_FIRST_NONSIGNAL_EVENT_ID; 1337 int user_gpu_id; 1338 1339 if (!p) { 1340 dev_warn(dev->adev->dev, "Not find process with pasid:%d\n", pasid); 1341 return; /* Presumably process exited. */ 1342 } 1343 1344 user_gpu_id = kfd_process_get_user_gpu_id(p, dev->id); 1345 if (unlikely(user_gpu_id == -EINVAL)) { 1346 WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n", dev->id); 1347 kfd_unref_process(p); 1348 return; 1349 } 1350 1351 memset(&hw_exception_data, 0, sizeof(hw_exception_data)); 1352 hw_exception_data.gpu_id = user_gpu_id; 1353 hw_exception_data.memory_lost = 1; 1354 hw_exception_data.reset_cause = KFD_HW_EXCEPTION_ECC; 1355 1356 memset(&memory_exception_data, 0, sizeof(memory_exception_data)); 1357 memory_exception_data.ErrorType = KFD_MEM_ERR_POISON_CONSUMED; 1358 memory_exception_data.gpu_id = user_gpu_id; 1359 memory_exception_data.failure.imprecise = true; 1360 1361 rcu_read_lock(); 1362 1363 idr_for_each_entry_continue(&p->event_idr, ev, id) { 1364 if (ev->type == KFD_EVENT_TYPE_HW_EXCEPTION) { 1365 spin_lock(&ev->lock); 1366 ev->hw_exception_data = hw_exception_data; 1367 set_event(ev); 1368 spin_unlock(&ev->lock); 1369 } 1370 1371 if (ev->type == KFD_EVENT_TYPE_MEMORY) { 1372 spin_lock(&ev->lock); 1373 ev->memory_exception_data = memory_exception_data; 1374 set_event(ev); 1375 spin_unlock(&ev->lock); 1376 } 1377 } 1378 1379 dev_warn(dev->adev->dev, "Send SIGBUS to process %s(pasid:%d)\n", 1380 p->lead_thread->comm, pasid); 1381 rcu_read_unlock(); 1382 1383 /* user application will handle SIGBUS signal */ 1384 send_sig(SIGBUS, p->lead_thread, 0); 1385 1386 kfd_unref_process(p); 1387 } 1388 1389 /* signal KFD_EVENT_TYPE_SIGNAL events from process p 1390 * send signal SIGBUS to correspondent user space process 1391 */ 1392 void kfd_signal_process_terminate_event(struct kfd_process *p) 1393 { 1394 struct kfd_event *ev; 1395 u32 id; 1396 1397 rcu_read_lock(); 1398 1399 /* iterate from id 1 for KFD_EVENT_TYPE_SIGNAL events */ 1400 id = 1; 1401 idr_for_each_entry_continue(&p->event_idr, ev, id) 1402 if (ev->type == KFD_EVENT_TYPE_SIGNAL) { 1403 spin_lock(&ev->lock); 1404 set_event(ev); 1405 spin_unlock(&ev->lock); 1406 } 1407 1408 /* Send SIGBUS to p->lead_thread */ 1409 dev_notice(kfd_device, 1410 "Sending SIGBUS to process %d", 1411 p->lead_thread->pid); 1412 1413 send_sig(SIGBUS, p->lead_thread, 0); 1414 1415 rcu_read_unlock(); 1416 } 1417