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/mutex.h> 25 #include <linux/log2.h> 26 #include <linux/sched.h> 27 #include <linux/sched/mm.h> 28 #include <linux/sched/task.h> 29 #include <linux/mmu_context.h> 30 #include <linux/slab.h> 31 #include <linux/notifier.h> 32 #include <linux/compat.h> 33 #include <linux/mman.h> 34 #include <linux/file.h> 35 #include <linux/pm_runtime.h> 36 #include "amdgpu_amdkfd.h" 37 #include "amdgpu.h" 38 #include "amdgpu_reset.h" 39 40 struct mm_struct; 41 42 #include "kfd_priv.h" 43 #include "kfd_device_queue_manager.h" 44 #include "kfd_svm.h" 45 #include "kfd_smi_events.h" 46 #include "kfd_debug.h" 47 48 /* 49 * List of struct kfd_process (field kfd_process). 50 * Unique/indexed by mm_struct* 51 */ 52 DEFINE_HASHTABLE(kfd_processes_table, KFD_PROCESS_TABLE_SIZE); 53 DEFINE_MUTEX(kfd_processes_mutex); 54 55 DEFINE_SRCU(kfd_processes_srcu); 56 57 /* For process termination handling */ 58 static struct workqueue_struct *kfd_process_wq; 59 60 /* Ordered, single-threaded workqueue for restoring evicted 61 * processes. Restoring multiple processes concurrently under memory 62 * pressure can lead to processes blocking each other from validating 63 * their BOs and result in a live-lock situation where processes 64 * remain evicted indefinitely. 65 */ 66 static struct workqueue_struct *kfd_restore_wq; 67 68 static struct kfd_process *find_process(const struct task_struct *thread, 69 bool ref); 70 static void kfd_process_ref_release(struct kref *ref); 71 72 static void evict_process_worker(struct work_struct *work); 73 static void restore_process_worker(struct work_struct *work); 74 75 static void kfd_process_device_destroy_cwsr_dgpu(struct kfd_process_device *pdd); 76 77 struct kfd_procfs_tree { 78 struct kobject *kobj; 79 }; 80 81 static struct kfd_procfs_tree procfs; 82 83 /* 84 * Structure for SDMA activity tracking 85 */ 86 struct kfd_sdma_activity_handler_workarea { 87 struct work_struct sdma_activity_work; 88 struct kfd_process_device *pdd; 89 uint64_t sdma_activity_counter; 90 }; 91 92 struct temp_sdma_queue_list { 93 uint64_t __user *rptr; 94 uint64_t sdma_val; 95 unsigned int queue_id; 96 struct list_head list; 97 }; 98 99 static void kfd_sdma_activity_worker(struct work_struct *work) 100 { 101 struct kfd_sdma_activity_handler_workarea *workarea; 102 struct kfd_process_device *pdd; 103 uint64_t val; 104 struct mm_struct *mm; 105 struct queue *q; 106 struct qcm_process_device *qpd; 107 struct device_queue_manager *dqm; 108 int ret = 0; 109 struct temp_sdma_queue_list sdma_q_list; 110 struct temp_sdma_queue_list *sdma_q, *next; 111 112 workarea = container_of(work, struct kfd_sdma_activity_handler_workarea, 113 sdma_activity_work); 114 115 pdd = workarea->pdd; 116 if (!pdd) 117 return; 118 dqm = pdd->dev->dqm; 119 qpd = &pdd->qpd; 120 if (!dqm || !qpd) 121 return; 122 /* 123 * Total SDMA activity is current SDMA activity + past SDMA activity 124 * Past SDMA count is stored in pdd. 125 * To get the current activity counters for all active SDMA queues, 126 * we loop over all SDMA queues and get their counts from user-space. 127 * 128 * We cannot call get_user() with dqm_lock held as it can cause 129 * a circular lock dependency situation. To read the SDMA stats, 130 * we need to do the following: 131 * 132 * 1. Create a temporary list of SDMA queue nodes from the qpd->queues_list, 133 * with dqm_lock/dqm_unlock(). 134 * 2. Call get_user() for each node in temporary list without dqm_lock. 135 * Save the SDMA count for each node and also add the count to the total 136 * SDMA count counter. 137 * Its possible, during this step, a few SDMA queue nodes got deleted 138 * from the qpd->queues_list. 139 * 3. Do a second pass over qpd->queues_list to check if any nodes got deleted. 140 * If any node got deleted, its SDMA count would be captured in the sdma 141 * past activity counter. So subtract the SDMA counter stored in step 2 142 * for this node from the total SDMA count. 143 */ 144 INIT_LIST_HEAD(&sdma_q_list.list); 145 146 /* 147 * Create the temp list of all SDMA queues 148 */ 149 dqm_lock(dqm); 150 151 list_for_each_entry(q, &qpd->queues_list, list) { 152 if ((q->properties.type != KFD_QUEUE_TYPE_SDMA) && 153 (q->properties.type != KFD_QUEUE_TYPE_SDMA_XGMI)) 154 continue; 155 156 sdma_q = kzalloc_obj(struct temp_sdma_queue_list, GFP_KERNEL); 157 if (!sdma_q) { 158 dqm_unlock(dqm); 159 goto cleanup; 160 } 161 162 INIT_LIST_HEAD(&sdma_q->list); 163 sdma_q->rptr = (uint64_t __user *)q->properties.read_ptr; 164 sdma_q->queue_id = q->properties.queue_id; 165 list_add_tail(&sdma_q->list, &sdma_q_list.list); 166 } 167 168 /* 169 * If the temp list is empty, then no SDMA queues nodes were found in 170 * qpd->queues_list. Return the past activity count as the total sdma 171 * count 172 */ 173 if (list_empty(&sdma_q_list.list)) { 174 workarea->sdma_activity_counter = pdd->sdma_past_activity_counter; 175 dqm_unlock(dqm); 176 return; 177 } 178 179 dqm_unlock(dqm); 180 181 /* 182 * Get the usage count for each SDMA queue in temp_list. 183 */ 184 mm = get_task_mm(pdd->process->lead_thread); 185 if (!mm) 186 goto cleanup; 187 188 kthread_use_mm(mm); 189 190 list_for_each_entry(sdma_q, &sdma_q_list.list, list) { 191 val = 0; 192 ret = read_sdma_queue_counter(sdma_q->rptr, &val); 193 if (ret) { 194 pr_debug("Failed to read SDMA queue active counter for queue id: %d", 195 sdma_q->queue_id); 196 } else { 197 sdma_q->sdma_val = val; 198 workarea->sdma_activity_counter += val; 199 } 200 } 201 202 kthread_unuse_mm(mm); 203 mmput(mm); 204 205 /* 206 * Do a second iteration over qpd_queues_list to check if any SDMA 207 * nodes got deleted while fetching SDMA counter. 208 */ 209 dqm_lock(dqm); 210 211 workarea->sdma_activity_counter += pdd->sdma_past_activity_counter; 212 213 list_for_each_entry(q, &qpd->queues_list, list) { 214 if (list_empty(&sdma_q_list.list)) 215 break; 216 217 if ((q->properties.type != KFD_QUEUE_TYPE_SDMA) && 218 (q->properties.type != KFD_QUEUE_TYPE_SDMA_XGMI)) 219 continue; 220 221 list_for_each_entry_safe(sdma_q, next, &sdma_q_list.list, list) { 222 if (((uint64_t __user *)q->properties.read_ptr == sdma_q->rptr) && 223 (sdma_q->queue_id == q->properties.queue_id)) { 224 list_del(&sdma_q->list); 225 kfree(sdma_q); 226 break; 227 } 228 } 229 } 230 231 dqm_unlock(dqm); 232 233 /* 234 * If temp list is not empty, it implies some queues got deleted 235 * from qpd->queues_list during SDMA usage read. Subtract the SDMA 236 * count for each node from the total SDMA count. 237 */ 238 list_for_each_entry_safe(sdma_q, next, &sdma_q_list.list, list) { 239 workarea->sdma_activity_counter -= sdma_q->sdma_val; 240 list_del(&sdma_q->list); 241 kfree(sdma_q); 242 } 243 244 return; 245 246 cleanup: 247 list_for_each_entry_safe(sdma_q, next, &sdma_q_list.list, list) { 248 list_del(&sdma_q->list); 249 kfree(sdma_q); 250 } 251 } 252 253 /** 254 * kfd_get_cu_occupancy - Collect number of waves in-flight on this device 255 * by current process. Translates acquired wave count into number of compute units 256 * that are occupied. 257 * 258 * @attr: Handle of attribute that allows reporting of wave count. The attribute 259 * handle encapsulates GPU device it is associated with, thereby allowing collection 260 * of waves in flight, etc 261 * @buffer: Handle of user provided buffer updated with wave count 262 * 263 * Return: Number of bytes written to user buffer or an error value 264 */ 265 static int kfd_get_cu_occupancy(struct attribute *attr, char *buffer) 266 { 267 int cu_cnt; 268 int wave_cnt; 269 int max_waves_per_cu; 270 struct kfd_node *dev = NULL; 271 struct kfd_process *proc = NULL; 272 struct kfd_process_device *pdd = NULL; 273 int i; 274 struct kfd_cu_occupancy *cu_occupancy; 275 u32 queue_format; 276 277 pdd = container_of(attr, struct kfd_process_device, attr_cu_occupancy); 278 dev = pdd->dev; 279 if (dev->kfd2kgd->get_cu_occupancy == NULL) 280 return -EINVAL; 281 282 cu_cnt = 0; 283 proc = pdd->process; 284 if (pdd->qpd.queue_count == 0) { 285 pr_debug("Gpu-Id: %d has no active queues for process pid %d\n", 286 dev->id, (int)proc->lead_thread->pid); 287 return snprintf(buffer, PAGE_SIZE, "%d\n", cu_cnt); 288 } 289 290 /* Collect wave count from device if it supports */ 291 wave_cnt = 0; 292 max_waves_per_cu = 0; 293 294 cu_occupancy = kzalloc_objs(*cu_occupancy, AMDGPU_MAX_QUEUES, 295 GFP_KERNEL); 296 if (!cu_occupancy) 297 return -ENOMEM; 298 299 /* 300 * For GFX 9.4.3, fetch the CU occupancy from the first XCC in the partition. 301 * For AQL queues, because of cooperative dispatch we multiply the wave count 302 * by number of XCCs in the partition to get the total wave counts across all 303 * XCCs in the partition. 304 * For PM4 queues, there is no cooperative dispatch so wave_cnt stay as it is. 305 */ 306 dev->kfd2kgd->get_cu_occupancy(dev->adev, cu_occupancy, 307 &max_waves_per_cu, ffs(dev->xcc_mask) - 1); 308 309 for (i = 0; i < AMDGPU_MAX_QUEUES; i++) { 310 if (cu_occupancy[i].wave_cnt != 0 && 311 kfd_dqm_is_queue_in_process(dev->dqm, &pdd->qpd, 312 cu_occupancy[i].doorbell_off, 313 &queue_format)) { 314 if (unlikely(queue_format == KFD_QUEUE_FORMAT_PM4)) 315 wave_cnt += cu_occupancy[i].wave_cnt; 316 else 317 wave_cnt += (NUM_XCC(dev->xcc_mask) * 318 cu_occupancy[i].wave_cnt); 319 } 320 } 321 322 /* Translate wave count to number of compute units */ 323 cu_cnt = (wave_cnt + (max_waves_per_cu - 1)) / max_waves_per_cu; 324 kfree(cu_occupancy); 325 return snprintf(buffer, PAGE_SIZE, "%d\n", cu_cnt); 326 } 327 328 static ssize_t kfd_procfs_show(struct kobject *kobj, struct attribute *attr, 329 char *buffer) 330 { 331 if (strcmp(attr->name, "pasid") == 0) 332 return snprintf(buffer, PAGE_SIZE, "%d\n", 0); 333 else if (strncmp(attr->name, "vram_", 5) == 0) { 334 struct kfd_process_device *pdd = container_of(attr, struct kfd_process_device, 335 attr_vram); 336 return snprintf(buffer, PAGE_SIZE, "%llu\n", atomic64_read(&pdd->vram_usage)); 337 } else if (strncmp(attr->name, "sdma_", 5) == 0) { 338 struct kfd_process_device *pdd = container_of(attr, struct kfd_process_device, 339 attr_sdma); 340 struct kfd_sdma_activity_handler_workarea sdma_activity_work_handler; 341 342 INIT_WORK_ONSTACK(&sdma_activity_work_handler.sdma_activity_work, 343 kfd_sdma_activity_worker); 344 345 sdma_activity_work_handler.pdd = pdd; 346 sdma_activity_work_handler.sdma_activity_counter = 0; 347 348 schedule_work(&sdma_activity_work_handler.sdma_activity_work); 349 350 flush_work(&sdma_activity_work_handler.sdma_activity_work); 351 destroy_work_on_stack(&sdma_activity_work_handler.sdma_activity_work); 352 353 return snprintf(buffer, PAGE_SIZE, "%llu\n", 354 (sdma_activity_work_handler.sdma_activity_counter)/ 355 SDMA_ACTIVITY_DIVISOR); 356 } else { 357 pr_err("Invalid attribute"); 358 return -EINVAL; 359 } 360 361 return 0; 362 } 363 364 static void kfd_procfs_kobj_release(struct kobject *kobj) 365 { 366 kfree(kobj); 367 } 368 369 static const struct sysfs_ops kfd_procfs_ops = { 370 .show = kfd_procfs_show, 371 }; 372 373 static const struct kobj_type procfs_type = { 374 .release = kfd_procfs_kobj_release, 375 .sysfs_ops = &kfd_procfs_ops, 376 }; 377 378 void kfd_procfs_init(void) 379 { 380 int ret = 0; 381 382 procfs.kobj = kfd_alloc_struct(procfs.kobj); 383 if (!procfs.kobj) 384 return; 385 386 ret = kobject_init_and_add(procfs.kobj, &procfs_type, 387 &kfd_device->kobj, "proc"); 388 if (ret) { 389 pr_warn("Could not create procfs proc folder"); 390 /* If we fail to create the procfs, clean up */ 391 kfd_procfs_shutdown(); 392 } 393 } 394 395 void kfd_procfs_shutdown(void) 396 { 397 if (procfs.kobj) { 398 kobject_del(procfs.kobj); 399 kobject_put(procfs.kobj); 400 procfs.kobj = NULL; 401 } 402 } 403 404 static ssize_t kfd_procfs_queue_show(struct kobject *kobj, 405 struct attribute *attr, char *buffer) 406 { 407 struct queue *q = container_of(kobj, struct queue, kobj); 408 409 if (!strcmp(attr->name, "size")) 410 return snprintf(buffer, PAGE_SIZE, "%llu", 411 q->properties.queue_size); 412 else if (!strcmp(attr->name, "type")) 413 return snprintf(buffer, PAGE_SIZE, "%d", q->properties.type); 414 else if (!strcmp(attr->name, "gpuid")) 415 return snprintf(buffer, PAGE_SIZE, "%u", q->device->id); 416 else 417 pr_err("Invalid attribute"); 418 419 return 0; 420 } 421 422 static ssize_t kfd_procfs_stats_show(struct kobject *kobj, 423 struct attribute *attr, char *buffer) 424 { 425 if (strcmp(attr->name, "evicted_ms") == 0) { 426 struct kfd_process_device *pdd = container_of(attr, 427 struct kfd_process_device, 428 attr_evict); 429 uint64_t evict_jiffies; 430 431 evict_jiffies = atomic64_read(&pdd->evict_duration_counter); 432 433 return snprintf(buffer, 434 PAGE_SIZE, 435 "%llu\n", 436 jiffies64_to_msecs(evict_jiffies)); 437 438 /* Sysfs handle that gets CU occupancy is per device */ 439 } else if (strcmp(attr->name, "cu_occupancy") == 0) { 440 return kfd_get_cu_occupancy(attr, buffer); 441 } else { 442 pr_err("Invalid attribute"); 443 } 444 445 return 0; 446 } 447 448 static ssize_t kfd_sysfs_counters_show(struct kobject *kobj, 449 struct attribute *attr, char *buf) 450 { 451 struct kfd_process_device *pdd; 452 453 if (!strcmp(attr->name, "faults")) { 454 pdd = container_of(attr, struct kfd_process_device, 455 attr_faults); 456 return sysfs_emit(buf, "%llu\n", READ_ONCE(pdd->faults)); 457 } 458 if (!strcmp(attr->name, "page_in")) { 459 pdd = container_of(attr, struct kfd_process_device, 460 attr_page_in); 461 return sysfs_emit(buf, "%llu\n", READ_ONCE(pdd->page_in)); 462 } 463 if (!strcmp(attr->name, "page_out")) { 464 pdd = container_of(attr, struct kfd_process_device, 465 attr_page_out); 466 return sysfs_emit(buf, "%llu\n", READ_ONCE(pdd->page_out)); 467 } 468 return 0; 469 } 470 471 static struct attribute attr_queue_size = { 472 .name = "size", 473 .mode = KFD_SYSFS_FILE_MODE 474 }; 475 476 static struct attribute attr_queue_type = { 477 .name = "type", 478 .mode = KFD_SYSFS_FILE_MODE 479 }; 480 481 static struct attribute attr_queue_gpuid = { 482 .name = "gpuid", 483 .mode = KFD_SYSFS_FILE_MODE 484 }; 485 486 static struct attribute *procfs_queue_attrs[] = { 487 &attr_queue_size, 488 &attr_queue_type, 489 &attr_queue_gpuid, 490 NULL 491 }; 492 ATTRIBUTE_GROUPS(procfs_queue); 493 494 static const struct sysfs_ops procfs_queue_ops = { 495 .show = kfd_procfs_queue_show, 496 }; 497 498 static const struct kobj_type procfs_queue_type = { 499 .sysfs_ops = &procfs_queue_ops, 500 .default_groups = procfs_queue_groups, 501 }; 502 503 static const struct sysfs_ops procfs_stats_ops = { 504 .show = kfd_procfs_stats_show, 505 }; 506 507 static const struct kobj_type procfs_stats_type = { 508 .sysfs_ops = &procfs_stats_ops, 509 .release = kfd_procfs_kobj_release, 510 }; 511 512 static const struct sysfs_ops sysfs_counters_ops = { 513 .show = kfd_sysfs_counters_show, 514 }; 515 516 static const struct kobj_type sysfs_counters_type = { 517 .sysfs_ops = &sysfs_counters_ops, 518 .release = kfd_procfs_kobj_release, 519 }; 520 521 int kfd_procfs_add_queue(struct queue *q) 522 { 523 struct kfd_process *proc; 524 int ret; 525 526 if (!q || !q->process) 527 return -EINVAL; 528 proc = q->process; 529 530 /* Create proc/<pid>/queues/<queue id> folder */ 531 if (!proc->kobj_queues) 532 return -EFAULT; 533 ret = kobject_init_and_add(&q->kobj, &procfs_queue_type, 534 proc->kobj_queues, "%u", q->properties.queue_id); 535 if (ret < 0) { 536 pr_warn("Creating proc/<pid>/queues/%u failed", 537 q->properties.queue_id); 538 kobject_put(&q->kobj); 539 return ret; 540 } 541 542 return 0; 543 } 544 545 static void kfd_sysfs_create_file(struct kobject *kobj, struct attribute *attr, 546 char *name) 547 { 548 int ret; 549 550 if (!kobj || !attr || !name) 551 return; 552 553 attr->name = name; 554 attr->mode = KFD_SYSFS_FILE_MODE; 555 sysfs_attr_init(attr); 556 557 ret = sysfs_create_file(kobj, attr); 558 if (ret) 559 pr_warn("Create sysfs %s/%s failed %d", kobj->name, name, ret); 560 } 561 562 static void kfd_procfs_add_sysfs_stats(struct kfd_process *p) 563 { 564 int ret; 565 int i; 566 char stats_dir_filename[MAX_SYSFS_FILENAME_LEN]; 567 568 if (!p || !p->kobj) 569 return; 570 571 /* 572 * Create sysfs files for each GPU: 573 * - proc/<pid>/stats_<gpuid>/ 574 * - proc/<pid>/stats_<gpuid>/evicted_ms 575 * - proc/<pid>/stats_<gpuid>/cu_occupancy 576 */ 577 for (i = 0; i < p->n_pdds; i++) { 578 struct kfd_process_device *pdd = p->pdds[i]; 579 580 snprintf(stats_dir_filename, MAX_SYSFS_FILENAME_LEN, 581 "stats_%u", pdd->dev->id); 582 pdd->kobj_stats = kfd_alloc_struct(pdd->kobj_stats); 583 if (!pdd->kobj_stats) 584 return; 585 586 ret = kobject_init_and_add(pdd->kobj_stats, 587 &procfs_stats_type, 588 p->kobj, 589 stats_dir_filename); 590 591 if (ret) { 592 pr_warn("Creating KFD proc/stats_%s folder failed", 593 stats_dir_filename); 594 kobject_put(pdd->kobj_stats); 595 pdd->kobj_stats = NULL; 596 return; 597 } 598 599 kfd_sysfs_create_file(pdd->kobj_stats, &pdd->attr_evict, 600 "evicted_ms"); 601 /* Add sysfs file to report compute unit occupancy */ 602 if (pdd->dev->kfd2kgd->get_cu_occupancy) 603 kfd_sysfs_create_file(pdd->kobj_stats, 604 &pdd->attr_cu_occupancy, 605 "cu_occupancy"); 606 } 607 } 608 609 static void kfd_procfs_add_sysfs_counters(struct kfd_process *p) 610 { 611 int ret = 0; 612 int i; 613 char counters_dir_filename[MAX_SYSFS_FILENAME_LEN]; 614 615 if (!p || !p->kobj) 616 return; 617 618 /* 619 * Create sysfs files for each GPU which supports SVM 620 * - proc/<pid>/counters_<gpuid>/ 621 * - proc/<pid>/counters_<gpuid>/faults 622 * - proc/<pid>/counters_<gpuid>/page_in 623 * - proc/<pid>/counters_<gpuid>/page_out 624 */ 625 for_each_set_bit(i, p->svms.bitmap_supported, p->n_pdds) { 626 struct kfd_process_device *pdd = p->pdds[i]; 627 struct kobject *kobj_counters; 628 629 snprintf(counters_dir_filename, MAX_SYSFS_FILENAME_LEN, 630 "counters_%u", pdd->dev->id); 631 kobj_counters = kfd_alloc_struct(kobj_counters); 632 if (!kobj_counters) 633 return; 634 635 ret = kobject_init_and_add(kobj_counters, &sysfs_counters_type, 636 p->kobj, counters_dir_filename); 637 if (ret) { 638 pr_warn("Creating KFD proc/%s folder failed", 639 counters_dir_filename); 640 kobject_put(kobj_counters); 641 return; 642 } 643 644 pdd->kobj_counters = kobj_counters; 645 kfd_sysfs_create_file(kobj_counters, &pdd->attr_faults, 646 "faults"); 647 kfd_sysfs_create_file(kobj_counters, &pdd->attr_page_in, 648 "page_in"); 649 kfd_sysfs_create_file(kobj_counters, &pdd->attr_page_out, 650 "page_out"); 651 } 652 } 653 654 static void kfd_procfs_add_sysfs_files(struct kfd_process *p) 655 { 656 int i; 657 658 if (!p || !p->kobj) 659 return; 660 661 /* 662 * Create sysfs files for each GPU: 663 * - proc/<pid>/vram_<gpuid> 664 * - proc/<pid>/sdma_<gpuid> 665 */ 666 for (i = 0; i < p->n_pdds; i++) { 667 struct kfd_process_device *pdd = p->pdds[i]; 668 669 snprintf(pdd->vram_filename, MAX_SYSFS_FILENAME_LEN, "vram_%u", 670 pdd->dev->id); 671 kfd_sysfs_create_file(p->kobj, &pdd->attr_vram, 672 pdd->vram_filename); 673 674 snprintf(pdd->sdma_filename, MAX_SYSFS_FILENAME_LEN, "sdma_%u", 675 pdd->dev->id); 676 kfd_sysfs_create_file(p->kobj, &pdd->attr_sdma, 677 pdd->sdma_filename); 678 } 679 } 680 681 void kfd_procfs_del_queue(struct queue *q) 682 { 683 if (!q) 684 return; 685 686 kobject_del(&q->kobj); 687 kobject_put(&q->kobj); 688 } 689 690 int kfd_process_create_wq(void) 691 { 692 if (!kfd_process_wq) 693 kfd_process_wq = alloc_workqueue("kfd_process_wq", 0, 0); 694 if (!kfd_restore_wq) 695 kfd_restore_wq = alloc_ordered_workqueue("kfd_restore_wq", 696 WQ_FREEZABLE); 697 698 if (!kfd_process_wq || !kfd_restore_wq) { 699 kfd_process_destroy_wq(); 700 return -ENOMEM; 701 } 702 703 return 0; 704 } 705 706 void kfd_process_destroy_wq(void) 707 { 708 if (kfd_process_wq) { 709 destroy_workqueue(kfd_process_wq); 710 kfd_process_wq = NULL; 711 } 712 if (kfd_restore_wq) { 713 destroy_workqueue(kfd_restore_wq); 714 kfd_restore_wq = NULL; 715 } 716 } 717 718 static void kfd_process_free_gpuvm(struct kgd_mem *mem, 719 struct kfd_process_device *pdd, void **kptr) 720 { 721 struct kfd_node *dev = pdd->dev; 722 723 if (kptr && *kptr) { 724 amdgpu_amdkfd_gpuvm_unmap_gtt_bo_from_kernel(mem); 725 *kptr = NULL; 726 } 727 728 amdgpu_amdkfd_gpuvm_unmap_memory_from_gpu(dev->adev, mem, pdd->drm_priv); 729 amdgpu_amdkfd_gpuvm_free_memory_of_gpu(dev->adev, mem, pdd->drm_priv, 730 NULL); 731 } 732 733 /* kfd_process_alloc_gpuvm - Allocate GPU VM for the KFD process 734 * This function should be only called right after the process 735 * is created and when kfd_processes_mutex is still being held 736 * to avoid concurrency. Because of that exclusiveness, we do 737 * not need to take p->mutex. 738 */ 739 static int kfd_process_alloc_gpuvm(struct kfd_process_device *pdd, 740 uint64_t gpu_va, uint32_t size, 741 uint32_t flags, struct kgd_mem **mem, void **kptr) 742 { 743 struct kfd_node *kdev = pdd->dev; 744 int err; 745 746 err = amdgpu_amdkfd_gpuvm_alloc_memory_of_gpu(kdev->adev, gpu_va, size, 747 pdd->drm_priv, mem, NULL, 748 flags, false); 749 if (err) 750 goto err_alloc_mem; 751 752 err = amdgpu_amdkfd_gpuvm_map_memory_to_gpu(kdev->adev, *mem, 753 pdd->drm_priv); 754 if (err) 755 goto err_map_mem; 756 757 err = amdgpu_amdkfd_gpuvm_sync_memory(kdev->adev, *mem, true); 758 if (err) { 759 pr_debug("Sync memory failed, wait interrupted by user signal\n"); 760 goto sync_memory_failed; 761 } 762 763 if (kptr) { 764 err = amdgpu_amdkfd_gpuvm_map_gtt_bo_to_kernel( 765 (struct kgd_mem *)*mem, kptr, NULL); 766 if (err) { 767 pr_debug("Map GTT BO to kernel failed\n"); 768 goto sync_memory_failed; 769 } 770 } 771 772 return err; 773 774 sync_memory_failed: 775 amdgpu_amdkfd_gpuvm_unmap_memory_from_gpu(kdev->adev, *mem, pdd->drm_priv); 776 777 err_map_mem: 778 amdgpu_amdkfd_gpuvm_free_memory_of_gpu(kdev->adev, *mem, pdd->drm_priv, 779 NULL); 780 err_alloc_mem: 781 *mem = NULL; 782 *kptr = NULL; 783 return err; 784 } 785 786 /* kfd_process_device_reserve_ib_mem - Reserve memory inside the 787 * process for IB usage The memory reserved is for KFD to submit 788 * IB to AMDGPU from kernel. If the memory is reserved 789 * successfully, ib_kaddr will have the CPU/kernel 790 * address. Check ib_kaddr before accessing the memory. 791 */ 792 static int kfd_process_device_reserve_ib_mem(struct kfd_process_device *pdd) 793 { 794 struct qcm_process_device *qpd = &pdd->qpd; 795 uint32_t flags = KFD_IOC_ALLOC_MEM_FLAGS_GTT | 796 KFD_IOC_ALLOC_MEM_FLAGS_NO_SUBSTITUTE | 797 KFD_IOC_ALLOC_MEM_FLAGS_WRITABLE | 798 KFD_IOC_ALLOC_MEM_FLAGS_EXECUTABLE; 799 struct kgd_mem *mem; 800 void *kaddr; 801 int ret; 802 803 if (qpd->ib_kaddr || !qpd->ib_base) 804 return 0; 805 806 /* ib_base is only set for dGPU */ 807 ret = kfd_process_alloc_gpuvm(pdd, qpd->ib_base, PAGE_SIZE, flags, 808 &mem, &kaddr); 809 if (ret) 810 return ret; 811 812 qpd->ib_mem = mem; 813 qpd->ib_kaddr = kaddr; 814 815 return 0; 816 } 817 818 static void kfd_process_device_destroy_ib_mem(struct kfd_process_device *pdd) 819 { 820 struct qcm_process_device *qpd = &pdd->qpd; 821 822 if (!qpd->ib_kaddr || !qpd->ib_base) 823 return; 824 825 kfd_process_free_gpuvm(qpd->ib_mem, pdd, &qpd->ib_kaddr); 826 } 827 828 int kfd_create_process_sysfs(struct kfd_process *process) 829 { 830 struct kfd_process *primary_process; 831 int ret; 832 833 if (process->kobj) { 834 pr_warn("kobject already exists for the kfd_process\n"); 835 return -EINVAL; 836 } 837 838 process->kobj = kfd_alloc_struct(process->kobj); 839 if (!process->kobj) { 840 pr_warn("Creating procfs kobject failed"); 841 return -ENOMEM; 842 } 843 844 if (process->context_id == KFD_CONTEXT_ID_PRIMARY) 845 ret = kobject_init_and_add(process->kobj, &procfs_type, 846 procfs.kobj, "%d", 847 (int)process->lead_thread->pid); 848 else { 849 primary_process = kfd_lookup_process_by_mm(process->lead_thread->mm); 850 if (!primary_process) 851 return -ESRCH; 852 853 ret = kobject_init_and_add(process->kobj, &procfs_type, 854 primary_process->kobj, "context_%u", 855 process->context_id); 856 kfd_unref_process(primary_process); 857 } 858 859 if (ret) { 860 pr_warn("Creating procfs pid directory failed"); 861 kobject_put(process->kobj); 862 return ret; 863 } 864 865 kfd_sysfs_create_file(process->kobj, &process->attr_pasid, 866 "pasid"); 867 868 process->kobj_queues = kobject_create_and_add("queues", 869 process->kobj); 870 if (!process->kobj_queues) 871 pr_warn("Creating KFD proc/queues folder failed"); 872 873 kfd_procfs_add_sysfs_stats(process); 874 kfd_procfs_add_sysfs_files(process); 875 kfd_procfs_add_sysfs_counters(process); 876 877 return 0; 878 } 879 880 static int kfd_process_alloc_id(struct kfd_process *process) 881 { 882 int ret; 883 struct kfd_process *primary_process; 884 885 /* already assign 0xFFFF when create */ 886 if (process->context_id == KFD_CONTEXT_ID_PRIMARY) 887 return 0; 888 889 primary_process = kfd_lookup_process_by_mm(process->lead_thread->mm); 890 if (!primary_process) 891 return -ESRCH; 892 893 /* id range: KFD_CONTEXT_ID_MIN to 0xFFFE */ 894 ret = ida_alloc_range(&primary_process->id_table, KFD_CONTEXT_ID_MIN, 895 KFD_CONTEXT_ID_PRIMARY - 1, GFP_KERNEL); 896 if (ret < 0) 897 goto out; 898 899 process->context_id = ret; 900 ret = 0; 901 902 out: 903 kfd_unref_process(primary_process); 904 905 return ret; 906 } 907 908 static void kfd_process_free_id(struct kfd_process *process) 909 { 910 struct kfd_process *primary_process; 911 912 if (process->context_id != KFD_CONTEXT_ID_PRIMARY) 913 return; 914 915 primary_process = kfd_lookup_process_by_mm(process->lead_thread->mm); 916 if (!primary_process) 917 return; 918 919 ida_free(&primary_process->id_table, process->context_id); 920 921 kfd_unref_process(primary_process); 922 } 923 924 struct kfd_process *kfd_create_process(struct task_struct *thread) 925 { 926 struct kfd_process *process; 927 int ret; 928 929 if (!(thread->mm && mmget_not_zero(thread->mm))) 930 return ERR_PTR(-EINVAL); 931 932 /* If the process just called exec(3), it is possible that the 933 * cleanup of the kfd_process (following the release of the mm 934 * of the old process image) is still in the cleanup work queue. 935 * Make sure to drain any job before trying to recreate any 936 * resource for this process. 937 */ 938 flush_workqueue(kfd_process_wq); 939 940 /* 941 * take kfd processes mutex before starting of process creation 942 * so there won't be a case where two threads of the same process 943 * create two kfd_process structures 944 */ 945 mutex_lock(&kfd_processes_mutex); 946 947 if (kfd_gpu_node_num() <= 0) { 948 pr_warn("no gpu node! Cannot create KFD process"); 949 process = ERR_PTR(-EINVAL); 950 goto out; 951 } 952 953 if (kfd_is_locked(NULL)) { 954 pr_debug("KFD is locked! Cannot create process"); 955 process = ERR_PTR(-EINVAL); 956 goto out; 957 } 958 959 /* A prior open of /dev/kfd could have already created the process. 960 * find_process will increase process kref in this case 961 */ 962 process = find_process(thread, true); 963 if (process) { 964 pr_debug("Process already found\n"); 965 } else { 966 process = create_process(thread, true); 967 if (IS_ERR(process)) 968 goto out; 969 970 if (!procfs.kobj) 971 goto out; 972 973 ret = kfd_create_process_sysfs(process); 974 if (ret) 975 pr_warn("Failed to create sysfs entry for the kfd_process"); 976 977 kfd_debugfs_add_process(process); 978 979 init_waitqueue_head(&process->wait_irq_drain); 980 } 981 out: 982 mutex_unlock(&kfd_processes_mutex); 983 mmput(thread->mm); 984 985 return process; 986 } 987 988 static struct kfd_process *find_process_by_mm(const struct mm_struct *mm) 989 { 990 struct kfd_process *process; 991 992 hash_for_each_possible_rcu(kfd_processes_table, process, 993 kfd_processes, (uintptr_t)mm) 994 if (process->mm == mm && process->context_id == KFD_CONTEXT_ID_PRIMARY) 995 return process; 996 997 return NULL; 998 } 999 1000 static struct kfd_process *find_process(const struct task_struct *thread, 1001 bool ref) 1002 { 1003 struct kfd_process *p; 1004 int idx; 1005 1006 idx = srcu_read_lock(&kfd_processes_srcu); 1007 p = find_process_by_mm(thread->mm); 1008 if (p && ref) 1009 kref_get(&p->ref); 1010 srcu_read_unlock(&kfd_processes_srcu, idx); 1011 1012 return p; 1013 } 1014 1015 void kfd_unref_process(struct kfd_process *p) 1016 { 1017 kref_put(&p->ref, kfd_process_ref_release); 1018 } 1019 1020 /* This increments the process->ref counter. */ 1021 struct kfd_process *kfd_lookup_process_by_pid(struct pid *pid) 1022 { 1023 struct task_struct *task = NULL; 1024 struct kfd_process *p = NULL; 1025 1026 if (!pid) { 1027 task = current; 1028 get_task_struct(task); 1029 } else { 1030 task = get_pid_task(pid, PIDTYPE_PID); 1031 } 1032 1033 if (task) { 1034 p = find_process(task, true); 1035 put_task_struct(task); 1036 } 1037 1038 return p; 1039 } 1040 1041 static void kfd_process_device_free_bos(struct kfd_process_device *pdd) 1042 { 1043 struct kfd_process *p = pdd->process; 1044 void *mem; 1045 int id; 1046 int i; 1047 1048 /* 1049 * Remove all handles from idr and release appropriate 1050 * local memory object 1051 */ 1052 idr_for_each_entry(&pdd->alloc_idr, mem, id) { 1053 1054 for (i = 0; i < p->n_pdds; i++) { 1055 struct kfd_process_device *peer_pdd = p->pdds[i]; 1056 1057 if (!peer_pdd->drm_priv) 1058 continue; 1059 amdgpu_amdkfd_gpuvm_unmap_memory_from_gpu( 1060 peer_pdd->dev->adev, mem, peer_pdd->drm_priv); 1061 } 1062 1063 amdgpu_amdkfd_gpuvm_free_memory_of_gpu(pdd->dev->adev, mem, 1064 pdd->drm_priv, NULL); 1065 kfd_process_device_remove_obj_handle(pdd, id); 1066 } 1067 } 1068 1069 /* 1070 * Just kunmap and unpin signal BO here. It will be freed in 1071 * kfd_process_free_outstanding_kfd_bos() 1072 */ 1073 static void kfd_process_kunmap_signal_bo(struct kfd_process *p) 1074 { 1075 struct kfd_process_device *pdd; 1076 struct kfd_node *kdev; 1077 void *mem; 1078 1079 kdev = kfd_device_by_id(GET_GPU_ID(p->signal_handle)); 1080 if (!kdev) 1081 return; 1082 1083 mutex_lock(&p->mutex); 1084 1085 pdd = kfd_get_process_device_data(kdev, p); 1086 if (!pdd) 1087 goto out; 1088 1089 mem = kfd_process_device_translate_handle( 1090 pdd, GET_IDR_HANDLE(p->signal_handle)); 1091 if (!mem) 1092 goto out; 1093 1094 amdgpu_amdkfd_gpuvm_unmap_gtt_bo_from_kernel(mem); 1095 1096 out: 1097 mutex_unlock(&p->mutex); 1098 } 1099 1100 static void kfd_process_free_outstanding_kfd_bos(struct kfd_process *p) 1101 { 1102 int i; 1103 1104 for (i = 0; i < p->n_pdds; i++) 1105 kfd_process_device_free_bos(p->pdds[i]); 1106 } 1107 1108 static void kfd_process_destroy_pdds(struct kfd_process *p) 1109 { 1110 int i; 1111 1112 for (i = 0; i < p->n_pdds; i++) { 1113 struct kfd_process_device *pdd = p->pdds[i]; 1114 1115 kfd_smi_event_process(pdd, false); 1116 1117 pr_debug("Releasing pdd (topology id %d, for pid %d)\n", 1118 pdd->dev->id, p->lead_thread->pid); 1119 kfd_process_device_destroy_cwsr_dgpu(pdd); 1120 kfd_process_device_destroy_ib_mem(pdd); 1121 1122 if (pdd->drm_file) 1123 fput(pdd->drm_file); 1124 1125 if (pdd->qpd.cwsr_kaddr && !pdd->qpd.cwsr_base) 1126 free_pages((unsigned long)pdd->qpd.cwsr_kaddr, 1127 get_order(KFD_CWSR_TBA_TMA_SIZE)); 1128 1129 idr_destroy(&pdd->alloc_idr); 1130 1131 kfd_free_process_doorbells(pdd->dev->kfd, pdd); 1132 1133 if (pdd->dev->kfd->shared_resources.enable_mes && 1134 pdd->proc_ctx_cpu_ptr) 1135 amdgpu_amdkfd_free_kernel_mem(pdd->dev->adev, 1136 &pdd->proc_ctx_bo); 1137 /* 1138 * before destroying pdd, make sure to report availability 1139 * for auto suspend 1140 */ 1141 if (pdd->runtime_inuse) { 1142 pm_runtime_put_autosuspend(adev_to_drm(pdd->dev->adev)->dev); 1143 pdd->runtime_inuse = false; 1144 } 1145 1146 atomic_dec(&pdd->dev->kfd->kfd_processes_count); 1147 1148 kfree(pdd); 1149 p->pdds[i] = NULL; 1150 } 1151 p->n_pdds = 0; 1152 } 1153 1154 static void kfd_process_remove_sysfs(struct kfd_process *p) 1155 { 1156 struct kfd_process_device *pdd; 1157 int i; 1158 1159 if (!p->kobj) 1160 return; 1161 1162 sysfs_remove_file(p->kobj, &p->attr_pasid); 1163 kobject_del(p->kobj_queues); 1164 kobject_put(p->kobj_queues); 1165 p->kobj_queues = NULL; 1166 1167 for (i = 0; i < p->n_pdds; i++) { 1168 pdd = p->pdds[i]; 1169 1170 sysfs_remove_file(p->kobj, &pdd->attr_vram); 1171 sysfs_remove_file(p->kobj, &pdd->attr_sdma); 1172 1173 sysfs_remove_file(pdd->kobj_stats, &pdd->attr_evict); 1174 if (pdd->dev->kfd2kgd->get_cu_occupancy) 1175 sysfs_remove_file(pdd->kobj_stats, 1176 &pdd->attr_cu_occupancy); 1177 kobject_del(pdd->kobj_stats); 1178 kobject_put(pdd->kobj_stats); 1179 pdd->kobj_stats = NULL; 1180 } 1181 1182 for_each_set_bit(i, p->svms.bitmap_supported, p->n_pdds) { 1183 pdd = p->pdds[i]; 1184 1185 sysfs_remove_file(pdd->kobj_counters, &pdd->attr_faults); 1186 sysfs_remove_file(pdd->kobj_counters, &pdd->attr_page_in); 1187 sysfs_remove_file(pdd->kobj_counters, &pdd->attr_page_out); 1188 kobject_del(pdd->kobj_counters); 1189 kobject_put(pdd->kobj_counters); 1190 pdd->kobj_counters = NULL; 1191 } 1192 1193 kobject_del(p->kobj); 1194 kobject_put(p->kobj); 1195 p->kobj = NULL; 1196 } 1197 1198 /* 1199 * If any GPU is ongoing reset, wait for reset complete. 1200 */ 1201 static void kfd_process_wait_gpu_reset_complete(struct kfd_process *p) 1202 { 1203 int i; 1204 1205 for (i = 0; i < p->n_pdds; i++) 1206 flush_workqueue(p->pdds[i]->dev->adev->reset_domain->wq); 1207 } 1208 1209 /* No process locking is needed in this function, because the process 1210 * is not findable any more. We must assume that no other thread is 1211 * using it any more, otherwise we couldn't safely free the process 1212 * structure in the end. 1213 */ 1214 static void kfd_process_wq_release(struct work_struct *work) 1215 { 1216 struct kfd_process *p = container_of(work, struct kfd_process, 1217 release_work); 1218 struct dma_fence *ef; 1219 1220 /* 1221 * If GPU in reset, user queues may still running, wait for reset complete. 1222 */ 1223 kfd_process_wait_gpu_reset_complete(p); 1224 1225 /* Signal the eviction fence after user mode queues are 1226 * destroyed. This allows any BOs to be freed without 1227 * triggering pointless evictions or waiting for fences. 1228 */ 1229 synchronize_rcu(); 1230 ef = rcu_access_pointer(p->ef); 1231 if (ef) 1232 dma_fence_signal(ef); 1233 1234 if (p->context_id != KFD_CONTEXT_ID_PRIMARY) 1235 kfd_process_free_id(p); 1236 else 1237 ida_destroy(&p->id_table); 1238 1239 kfd_debugfs_remove_process(p); 1240 1241 kfd_process_kunmap_signal_bo(p); 1242 kfd_process_free_outstanding_kfd_bos(p); 1243 svm_range_list_fini(p); 1244 1245 kfd_process_destroy_pdds(p); 1246 dma_fence_put(ef); 1247 1248 kfd_event_free_process(p); 1249 1250 mutex_destroy(&p->mutex); 1251 1252 put_task_struct(p->lead_thread); 1253 1254 /* the last step is removing process entries under /sys 1255 * to indicate the process has been terminated. 1256 */ 1257 kfd_process_remove_sysfs(p); 1258 1259 kfree(p); 1260 } 1261 1262 static void kfd_process_ref_release(struct kref *ref) 1263 { 1264 struct kfd_process *p = container_of(ref, struct kfd_process, ref); 1265 1266 INIT_WORK(&p->release_work, kfd_process_wq_release); 1267 queue_work(kfd_process_wq, &p->release_work); 1268 } 1269 1270 static struct mmu_notifier *kfd_process_alloc_notifier(struct mm_struct *mm) 1271 { 1272 /* This increments p->ref counter if kfd process p exists */ 1273 struct kfd_process *p = kfd_lookup_process_by_mm(mm); 1274 1275 return p ? &p->mmu_notifier : ERR_PTR(-ESRCH); 1276 } 1277 1278 static void kfd_process_free_notifier(struct mmu_notifier *mn) 1279 { 1280 kfd_unref_process(container_of(mn, struct kfd_process, mmu_notifier)); 1281 } 1282 1283 static void kfd_process_table_remove(struct kfd_process *p) 1284 { 1285 mutex_lock(&kfd_processes_mutex); 1286 /* 1287 * Do early return if table is empty. 1288 * 1289 * This could potentially happen if this function is called concurrently 1290 * by mmu_notifier and by kfd_cleanup_pocesses. 1291 * 1292 */ 1293 if (hash_empty(kfd_processes_table)) { 1294 mutex_unlock(&kfd_processes_mutex); 1295 return; 1296 } 1297 hash_del_rcu(&p->kfd_processes); 1298 mutex_unlock(&kfd_processes_mutex); 1299 synchronize_srcu(&kfd_processes_srcu); 1300 } 1301 1302 void kfd_process_notifier_release_internal(struct kfd_process *p) 1303 { 1304 int i; 1305 1306 kfd_process_table_remove(p); 1307 cancel_delayed_work_sync(&p->eviction_work); 1308 cancel_delayed_work_sync(&p->restore_work); 1309 1310 /* 1311 * Dequeue and destroy user queues, it is not safe for GPU to access 1312 * system memory after mmu release notifier callback returns because 1313 * exit_mmap free process memory afterwards. 1314 */ 1315 kfd_process_dequeue_from_all_devices(p); 1316 pqm_uninit(&p->pqm); 1317 1318 for (i = 0; i < p->n_pdds; i++) { 1319 struct kfd_process_device *pdd = p->pdds[i]; 1320 1321 /* re-enable GFX OFF since runtime enable with ttmp setup disabled it. */ 1322 if (!kfd_dbg_is_rlc_restore_supported(pdd->dev) && p->runtime_info.ttmp_setup) 1323 amdgpu_gfx_off_ctrl(pdd->dev->adev, true); 1324 } 1325 1326 /* Indicate to other users that MM is no longer valid */ 1327 p->mm = NULL; 1328 kfd_dbg_trap_disable(p); 1329 1330 if (atomic_read(&p->debugged_process_count) > 0) { 1331 struct kfd_process *target; 1332 unsigned int temp; 1333 int idx = srcu_read_lock(&kfd_processes_srcu); 1334 1335 hash_for_each_rcu(kfd_processes_table, temp, target, kfd_processes) { 1336 if (target->debugger_process && target->debugger_process == p) { 1337 mutex_lock_nested(&target->mutex, 1); 1338 kfd_dbg_trap_disable(target); 1339 mutex_unlock(&target->mutex); 1340 if (atomic_read(&p->debugged_process_count) == 0) 1341 break; 1342 } 1343 } 1344 1345 srcu_read_unlock(&kfd_processes_srcu, idx); 1346 } 1347 1348 if (p->context_id == KFD_CONTEXT_ID_PRIMARY) 1349 mmu_notifier_put(&p->mmu_notifier); 1350 } 1351 1352 static void kfd_process_notifier_release(struct mmu_notifier *mn, 1353 struct mm_struct *mm) 1354 { 1355 struct kfd_process *p; 1356 1357 /* 1358 * The kfd_process structure can not be free because the 1359 * mmu_notifier srcu is read locked 1360 */ 1361 p = container_of(mn, struct kfd_process, mmu_notifier); 1362 if (WARN_ON(p->mm != mm)) 1363 return; 1364 1365 kfd_process_notifier_release_internal(p); 1366 } 1367 1368 static const struct mmu_notifier_ops kfd_process_mmu_notifier_ops = { 1369 .release = kfd_process_notifier_release, 1370 .alloc_notifier = kfd_process_alloc_notifier, 1371 .free_notifier = kfd_process_free_notifier, 1372 }; 1373 1374 /* 1375 * This code handles the case when driver is being unloaded before all 1376 * mm_struct are released. We need to safely free the kfd_process and 1377 * avoid race conditions with mmu_notifier that might try to free them. 1378 * 1379 */ 1380 void kfd_cleanup_processes(void) 1381 { 1382 struct kfd_process *p; 1383 struct hlist_node *p_temp; 1384 unsigned int temp; 1385 HLIST_HEAD(cleanup_list); 1386 1387 /* 1388 * Move all remaining kfd_process from the process table to a 1389 * temp list for processing. Once done, callback from mmu_notifier 1390 * release will not see the kfd_process in the table and do early return, 1391 * avoiding double free issues. 1392 */ 1393 mutex_lock(&kfd_processes_mutex); 1394 hash_for_each_safe(kfd_processes_table, temp, p_temp, p, kfd_processes) { 1395 hash_del_rcu(&p->kfd_processes); 1396 synchronize_srcu(&kfd_processes_srcu); 1397 hlist_add_head(&p->kfd_processes, &cleanup_list); 1398 } 1399 mutex_unlock(&kfd_processes_mutex); 1400 1401 hlist_for_each_entry_safe(p, p_temp, &cleanup_list, kfd_processes) 1402 kfd_process_notifier_release_internal(p); 1403 1404 /* 1405 * Ensures that all outstanding free_notifier get called, triggering 1406 * the release of the kfd_process struct. 1407 */ 1408 mmu_notifier_synchronize(); 1409 } 1410 1411 int kfd_process_init_cwsr_apu(struct kfd_process *p, struct file *filep) 1412 { 1413 unsigned long offset; 1414 int i; 1415 1416 if (p->has_cwsr) 1417 return 0; 1418 1419 for (i = 0; i < p->n_pdds; i++) { 1420 struct kfd_node *dev = p->pdds[i]->dev; 1421 struct qcm_process_device *qpd = &p->pdds[i]->qpd; 1422 1423 if (!dev->kfd->cwsr_enabled || qpd->cwsr_kaddr || qpd->cwsr_base) 1424 continue; 1425 1426 offset = KFD_MMAP_TYPE_RESERVED_MEM | KFD_MMAP_GPU_ID(dev->id); 1427 qpd->tba_addr = (int64_t)vm_mmap(filep, 0, 1428 KFD_CWSR_TBA_TMA_SIZE, PROT_READ | PROT_EXEC, 1429 MAP_SHARED, offset); 1430 1431 if (IS_ERR_VALUE(qpd->tba_addr)) { 1432 int err = qpd->tba_addr; 1433 1434 dev_err(dev->adev->dev, 1435 "Failure to set tba address. error %d.\n", err); 1436 qpd->tba_addr = 0; 1437 qpd->cwsr_kaddr = NULL; 1438 return err; 1439 } 1440 1441 memcpy(qpd->cwsr_kaddr, dev->kfd->cwsr_isa, dev->kfd->cwsr_isa_size); 1442 1443 kfd_process_set_trap_debug_flag(qpd, p->debug_trap_enabled); 1444 1445 qpd->tma_addr = qpd->tba_addr + KFD_CWSR_TMA_OFFSET; 1446 pr_debug("set tba :0x%llx, tma:0x%llx, cwsr_kaddr:%p for pqm.\n", 1447 qpd->tba_addr, qpd->tma_addr, qpd->cwsr_kaddr); 1448 } 1449 1450 p->has_cwsr = true; 1451 1452 return 0; 1453 } 1454 1455 static int kfd_process_device_init_cwsr_dgpu(struct kfd_process_device *pdd) 1456 { 1457 struct kfd_node *dev = pdd->dev; 1458 struct qcm_process_device *qpd = &pdd->qpd; 1459 uint32_t flags = KFD_IOC_ALLOC_MEM_FLAGS_GTT 1460 | KFD_IOC_ALLOC_MEM_FLAGS_NO_SUBSTITUTE 1461 | KFD_IOC_ALLOC_MEM_FLAGS_EXECUTABLE; 1462 struct kgd_mem *mem; 1463 void *kaddr; 1464 int ret; 1465 1466 if (!dev->kfd->cwsr_enabled || qpd->cwsr_kaddr || !qpd->cwsr_base) 1467 return 0; 1468 1469 /* cwsr_base is only set for dGPU */ 1470 ret = kfd_process_alloc_gpuvm(pdd, qpd->cwsr_base, 1471 KFD_CWSR_TBA_TMA_SIZE, flags, &mem, &kaddr); 1472 if (ret) 1473 return ret; 1474 1475 qpd->cwsr_mem = mem; 1476 qpd->cwsr_kaddr = kaddr; 1477 qpd->tba_addr = qpd->cwsr_base; 1478 1479 memcpy(qpd->cwsr_kaddr, dev->kfd->cwsr_isa, dev->kfd->cwsr_isa_size); 1480 1481 kfd_process_set_trap_debug_flag(&pdd->qpd, 1482 pdd->process->debug_trap_enabled); 1483 1484 qpd->tma_addr = qpd->tba_addr + KFD_CWSR_TMA_OFFSET; 1485 pr_debug("set tba :0x%llx, tma:0x%llx, cwsr_kaddr:%p for pqm.\n", 1486 qpd->tba_addr, qpd->tma_addr, qpd->cwsr_kaddr); 1487 1488 return 0; 1489 } 1490 1491 static void kfd_process_device_destroy_cwsr_dgpu(struct kfd_process_device *pdd) 1492 { 1493 struct kfd_node *dev = pdd->dev; 1494 struct qcm_process_device *qpd = &pdd->qpd; 1495 1496 if (!dev->kfd->cwsr_enabled || !qpd->cwsr_kaddr || !qpd->cwsr_base) 1497 return; 1498 1499 kfd_process_free_gpuvm(qpd->cwsr_mem, pdd, &qpd->cwsr_kaddr); 1500 } 1501 1502 void kfd_process_set_trap_handler(struct qcm_process_device *qpd, 1503 uint64_t tba_addr, 1504 uint64_t tma_addr) 1505 { 1506 if (qpd->cwsr_kaddr) { 1507 /* KFD trap handler is bound, record as second-level TBA/TMA 1508 * in first-level TMA. First-level trap will jump to second. 1509 */ 1510 uint64_t *tma = 1511 (uint64_t *)(qpd->cwsr_kaddr + KFD_CWSR_TMA_OFFSET); 1512 tma[0] = tba_addr; 1513 tma[1] = tma_addr; 1514 } else { 1515 /* No trap handler bound, bind as first-level TBA/TMA. */ 1516 qpd->tba_addr = tba_addr; 1517 qpd->tma_addr = tma_addr; 1518 } 1519 } 1520 1521 bool kfd_process_xnack_mode(struct kfd_process *p, bool supported) 1522 { 1523 int i; 1524 1525 /* On most GFXv9 GPUs, the retry mode in the SQ must match the 1526 * boot time retry setting. Mixing processes with different 1527 * XNACK/retry settings can hang the GPU. 1528 * 1529 * Different GPUs can have different noretry settings depending 1530 * on HW bugs or limitations. We need to find at least one 1531 * XNACK mode for this process that's compatible with all GPUs. 1532 * Fortunately GPUs with retry enabled (noretry=0) can run code 1533 * built for XNACK-off. On GFXv9 it may perform slower. 1534 * 1535 * Therefore applications built for XNACK-off can always be 1536 * supported and will be our fallback if any GPU does not 1537 * support retry. 1538 */ 1539 for (i = 0; i < p->n_pdds; i++) { 1540 struct kfd_node *dev = p->pdds[i]->dev; 1541 1542 /* Only consider GFXv9 and higher GPUs. Older GPUs don't 1543 * support the SVM APIs and don't need to be considered 1544 * for the XNACK mode selection. 1545 */ 1546 if (!KFD_IS_SOC15(dev)) 1547 continue; 1548 /* Aldebaran can always support XNACK because it can support 1549 * per-process XNACK mode selection. But let the dev->noretry 1550 * setting still influence the default XNACK mode. 1551 */ 1552 if (supported && KFD_SUPPORT_XNACK_PER_PROCESS(dev)) { 1553 if (!amdgpu_sriov_xnack_support(dev->kfd->adev)) { 1554 pr_debug("SRIOV platform xnack not supported\n"); 1555 return false; 1556 } 1557 continue; 1558 } 1559 1560 /* GFXv10 and later GPUs do not support shader preemption 1561 * during page faults. This can lead to poor QoS for queue 1562 * management and memory-manager-related preemptions or 1563 * even deadlocks. 1564 */ 1565 if (KFD_GC_VERSION(dev) >= IP_VERSION(10, 1, 1) && 1566 KFD_GC_VERSION(dev) < IP_VERSION(12, 1, 0)) 1567 return false; 1568 1569 if (dev->kfd->noretry) 1570 return false; 1571 } 1572 1573 return true; 1574 } 1575 1576 void kfd_process_set_trap_debug_flag(struct qcm_process_device *qpd, 1577 bool enabled) 1578 { 1579 if (qpd->cwsr_kaddr) { 1580 uint64_t *tma = 1581 (uint64_t *)(qpd->cwsr_kaddr + KFD_CWSR_TMA_OFFSET); 1582 tma[2] = enabled; 1583 } 1584 } 1585 1586 /* 1587 * On return the kfd_process is fully operational and will be freed when the 1588 * mm is released 1589 */ 1590 struct kfd_process *create_process(const struct task_struct *thread, bool primary) 1591 { 1592 struct kfd_process *process; 1593 struct mmu_notifier *mn; 1594 int err = -ENOMEM; 1595 1596 process = kzalloc_obj(*process, GFP_KERNEL); 1597 if (!process) 1598 goto err_alloc_process; 1599 1600 kref_init(&process->ref); 1601 mutex_init(&process->mutex); 1602 process->mm = thread->mm; 1603 process->lead_thread = thread->group_leader; 1604 process->n_pdds = 0; 1605 process->queues_paused = false; 1606 1607 INIT_DELAYED_WORK(&process->eviction_work, evict_process_worker); 1608 INIT_DELAYED_WORK(&process->restore_work, restore_process_worker); 1609 process->last_restore_timestamp = get_jiffies_64(); 1610 err = kfd_event_init_process(process); 1611 if (err) 1612 goto err_event_init; 1613 process->is_32bit_user_mode = in_compat_syscall(); 1614 process->debug_trap_enabled = false; 1615 process->debugger_process = NULL; 1616 process->exception_enable_mask = 0; 1617 atomic_set(&process->debugged_process_count, 0); 1618 sema_init(&process->runtime_enable_sema, 0); 1619 1620 err = pqm_init(&process->pqm, process); 1621 if (err != 0) 1622 goto err_process_pqm_init; 1623 1624 /* init process apertures*/ 1625 err = kfd_init_apertures(process); 1626 if (err != 0) 1627 goto err_init_apertures; 1628 1629 /* Check XNACK support after PDDs are created in kfd_init_apertures */ 1630 process->xnack_enabled = kfd_process_xnack_mode(process, false); 1631 1632 err = svm_range_list_init(process); 1633 if (err) 1634 goto err_init_svm_range_list; 1635 1636 /* alloc_notifier needs to find the process in the hash table */ 1637 hash_add_rcu(kfd_processes_table, &process->kfd_processes, 1638 (uintptr_t)process->mm); 1639 1640 /* Avoid free_notifier to start kfd_process_wq_release if 1641 * mmu_notifier_get failed because of pending signal. 1642 */ 1643 kref_get(&process->ref); 1644 1645 /* MMU notifier registration must be the last call that can fail 1646 * because after this point we cannot unwind the process creation. 1647 * After this point, mmu_notifier_put will trigger the cleanup by 1648 * dropping the last process reference in the free_notifier. 1649 */ 1650 if (primary) { 1651 process->context_id = KFD_CONTEXT_ID_PRIMARY; 1652 mn = mmu_notifier_get(&kfd_process_mmu_notifier_ops, process->mm); 1653 if (IS_ERR(mn)) { 1654 err = PTR_ERR(mn); 1655 goto err_register_notifier; 1656 } 1657 BUG_ON(mn != &process->mmu_notifier); 1658 ida_init(&process->id_table); 1659 } 1660 1661 err = kfd_process_alloc_id(process); 1662 if (err) { 1663 pr_err("Creating kfd process: failed to alloc an id\n"); 1664 goto err_alloc_id; 1665 } 1666 1667 kfd_unref_process(process); 1668 get_task_struct(process->lead_thread); 1669 1670 INIT_WORK(&process->debug_event_workarea, debug_event_write_work_handler); 1671 1672 return process; 1673 1674 err_alloc_id: 1675 kfd_process_free_id(process); 1676 err_register_notifier: 1677 hash_del_rcu(&process->kfd_processes); 1678 svm_range_list_fini(process); 1679 err_init_svm_range_list: 1680 kfd_process_free_outstanding_kfd_bos(process); 1681 kfd_process_destroy_pdds(process); 1682 err_init_apertures: 1683 pqm_uninit(&process->pqm); 1684 err_process_pqm_init: 1685 kfd_event_free_process(process); 1686 err_event_init: 1687 mutex_destroy(&process->mutex); 1688 kfree(process); 1689 err_alloc_process: 1690 return ERR_PTR(err); 1691 } 1692 1693 struct kfd_process_device *kfd_get_process_device_data(struct kfd_node *dev, 1694 struct kfd_process *p) 1695 { 1696 int i; 1697 1698 for (i = 0; i < p->n_pdds; i++) 1699 if (p->pdds[i]->dev == dev) 1700 return p->pdds[i]; 1701 1702 return NULL; 1703 } 1704 1705 struct kfd_process_device *kfd_create_process_device_data(struct kfd_node *dev, 1706 struct kfd_process *p) 1707 { 1708 struct kfd_process_device *pdd = NULL; 1709 1710 if (WARN_ON_ONCE(p->n_pdds >= MAX_GPU_INSTANCE)) 1711 return NULL; 1712 pdd = kzalloc_obj(*pdd, GFP_KERNEL); 1713 if (!pdd) 1714 return NULL; 1715 1716 pdd->dev = dev; 1717 INIT_LIST_HEAD(&pdd->qpd.queues_list); 1718 INIT_LIST_HEAD(&pdd->qpd.priv_queue_list); 1719 pdd->qpd.dqm = dev->dqm; 1720 pdd->qpd.pqm = &p->pqm; 1721 pdd->qpd.evicted = 0; 1722 pdd->qpd.mapped_gws_queue = false; 1723 pdd->process = p; 1724 pdd->bound = PDD_UNBOUND; 1725 pdd->already_dequeued = false; 1726 pdd->runtime_inuse = false; 1727 atomic64_set(&pdd->vram_usage, 0); 1728 pdd->sdma_past_activity_counter = 0; 1729 pdd->user_gpu_id = dev->id; 1730 atomic64_set(&pdd->evict_duration_counter, 0); 1731 1732 p->pdds[p->n_pdds++] = pdd; 1733 if (kfd_dbg_is_per_vmid_supported(pdd->dev)) 1734 pdd->spi_dbg_override = pdd->dev->kfd2kgd->disable_debug_trap( 1735 pdd->dev->adev, 1736 false, 1737 0); 1738 1739 /* Init idr used for memory handle translation */ 1740 idr_init(&pdd->alloc_idr); 1741 1742 atomic_inc(&dev->kfd->kfd_processes_count); 1743 1744 return pdd; 1745 } 1746 1747 /** 1748 * kfd_process_device_init_vm - Initialize a VM for a process-device 1749 * 1750 * @pdd: The process-device 1751 * @drm_file: Optional pointer to a DRM file descriptor 1752 * 1753 * If @drm_file is specified, it will be used to acquire the VM from 1754 * that file descriptor. If successful, the @pdd takes ownership of 1755 * the file descriptor. 1756 * 1757 * If @drm_file is NULL, a new VM is created. 1758 * 1759 * Returns 0 on success, -errno on failure. 1760 */ 1761 int kfd_process_device_init_vm(struct kfd_process_device *pdd, 1762 struct file *drm_file) 1763 { 1764 struct amdgpu_fpriv *drv_priv; 1765 struct amdgpu_vm *avm; 1766 struct kfd_process *p; 1767 struct dma_fence *ef; 1768 struct kfd_node *dev; 1769 int ret; 1770 1771 if (pdd->drm_priv) 1772 return -EBUSY; 1773 1774 ret = amdgpu_file_to_fpriv(drm_file, &drv_priv); 1775 if (ret) 1776 return ret; 1777 avm = &drv_priv->vm; 1778 1779 p = pdd->process; 1780 dev = pdd->dev; 1781 1782 ret = amdgpu_amdkfd_gpuvm_acquire_process_vm(dev->adev, avm, 1783 &p->kgd_process_info, 1784 p->ef ? NULL : &ef); 1785 if (ret) { 1786 dev_err(dev->adev->dev, "Failed to create process VM object\n"); 1787 return ret; 1788 } 1789 1790 if (!p->ef) 1791 RCU_INIT_POINTER(p->ef, ef); 1792 1793 pdd->drm_priv = drm_file->private_data; 1794 1795 ret = kfd_process_device_reserve_ib_mem(pdd); 1796 if (ret) 1797 goto err_reserve_ib_mem; 1798 ret = kfd_process_device_init_cwsr_dgpu(pdd); 1799 if (ret) 1800 goto err_init_cwsr; 1801 1802 if (unlikely(!avm->pasid)) { 1803 dev_warn(pdd->dev->adev->dev, "WARN: vm %p has no pasid associated", 1804 avm); 1805 ret = -EINVAL; 1806 goto err_get_pasid; 1807 } 1808 1809 pdd->pasid = avm->pasid; 1810 pdd->drm_file = drm_file; 1811 1812 kfd_smi_event_process(pdd, true); 1813 1814 return 0; 1815 1816 err_get_pasid: 1817 kfd_process_device_destroy_cwsr_dgpu(pdd); 1818 err_init_cwsr: 1819 kfd_process_device_destroy_ib_mem(pdd); 1820 err_reserve_ib_mem: 1821 pdd->drm_priv = NULL; 1822 amdgpu_amdkfd_gpuvm_destroy_cb(dev->adev, avm); 1823 1824 return ret; 1825 } 1826 1827 /* 1828 * Direct the IOMMU to bind the process (specifically the pasid->mm) 1829 * to the device. 1830 * Unbinding occurs when the process dies or the device is removed. 1831 * 1832 * Assumes that the process lock is held. 1833 */ 1834 struct kfd_process_device *kfd_bind_process_to_device(struct kfd_node *dev, 1835 struct kfd_process *p) 1836 { 1837 struct kfd_process_device *pdd; 1838 int err; 1839 1840 pdd = kfd_get_process_device_data(dev, p); 1841 if (!pdd) { 1842 dev_err(dev->adev->dev, "Process device data doesn't exist\n"); 1843 return ERR_PTR(-ENOMEM); 1844 } 1845 1846 if (!pdd->drm_priv) 1847 return ERR_PTR(-ENODEV); 1848 1849 /* 1850 * signal runtime-pm system to auto resume and prevent 1851 * further runtime suspend once device pdd is created until 1852 * pdd is destroyed. 1853 */ 1854 if (!pdd->runtime_inuse) { 1855 err = pm_runtime_get_sync(adev_to_drm(dev->adev)->dev); 1856 if (err < 0) { 1857 pm_runtime_put_autosuspend(adev_to_drm(dev->adev)->dev); 1858 return ERR_PTR(err); 1859 } 1860 } 1861 1862 /* 1863 * make sure that runtime_usage counter is incremented just once 1864 * per pdd 1865 */ 1866 pdd->runtime_inuse = true; 1867 1868 return pdd; 1869 } 1870 1871 /* Create specific handle mapped to mem from process local memory idr 1872 * Assumes that the process lock is held. 1873 */ 1874 int kfd_process_device_create_obj_handle(struct kfd_process_device *pdd, 1875 void *mem) 1876 { 1877 return idr_alloc(&pdd->alloc_idr, mem, 0, 0, GFP_KERNEL); 1878 } 1879 1880 /* Translate specific handle from process local memory idr 1881 * Assumes that the process lock is held. 1882 */ 1883 void *kfd_process_device_translate_handle(struct kfd_process_device *pdd, 1884 int handle) 1885 { 1886 if (handle < 0) 1887 return NULL; 1888 1889 return idr_find(&pdd->alloc_idr, handle); 1890 } 1891 1892 /* Remove specific handle from process local memory idr 1893 * Assumes that the process lock is held. 1894 */ 1895 void kfd_process_device_remove_obj_handle(struct kfd_process_device *pdd, 1896 int handle) 1897 { 1898 if (handle >= 0) 1899 idr_remove(&pdd->alloc_idr, handle); 1900 } 1901 1902 static struct kfd_process_device *kfd_lookup_process_device_by_pasid(u32 pasid) 1903 { 1904 struct kfd_process_device *ret_p = NULL; 1905 struct kfd_process *p; 1906 unsigned int temp; 1907 int i; 1908 1909 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 1910 for (i = 0; i < p->n_pdds; i++) { 1911 if (p->pdds[i]->pasid == pasid) { 1912 ret_p = p->pdds[i]; 1913 break; 1914 } 1915 } 1916 if (ret_p) 1917 break; 1918 } 1919 return ret_p; 1920 } 1921 1922 /* This increments the process->ref counter. */ 1923 struct kfd_process *kfd_lookup_process_by_pasid(u32 pasid, 1924 struct kfd_process_device **pdd) 1925 { 1926 struct kfd_process_device *ret_p; 1927 1928 int idx = srcu_read_lock(&kfd_processes_srcu); 1929 1930 ret_p = kfd_lookup_process_device_by_pasid(pasid); 1931 if (ret_p) { 1932 if (pdd) 1933 *pdd = ret_p; 1934 kref_get(&ret_p->process->ref); 1935 1936 srcu_read_unlock(&kfd_processes_srcu, idx); 1937 return ret_p->process; 1938 } 1939 1940 srcu_read_unlock(&kfd_processes_srcu, idx); 1941 1942 if (pdd) 1943 *pdd = NULL; 1944 1945 return NULL; 1946 } 1947 1948 /* This increments the process->ref counter. */ 1949 struct kfd_process *kfd_lookup_process_by_mm(const struct mm_struct *mm) 1950 { 1951 struct kfd_process *p; 1952 1953 int idx = srcu_read_lock(&kfd_processes_srcu); 1954 1955 p = find_process_by_mm(mm); 1956 if (p) 1957 kref_get(&p->ref); 1958 1959 srcu_read_unlock(&kfd_processes_srcu, idx); 1960 1961 return p; 1962 } 1963 1964 /* This increments the process->ref counter. */ 1965 struct kfd_process *kfd_lookup_process_by_id(const struct mm_struct *mm, u16 id) 1966 { 1967 struct kfd_process *p, *ret_p = NULL; 1968 unsigned int temp; 1969 1970 int idx = srcu_read_lock(&kfd_processes_srcu); 1971 1972 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 1973 if (p->mm == mm && p->context_id == id) { 1974 kref_get(&p->ref); 1975 ret_p = p; 1976 break; 1977 } 1978 } 1979 1980 srcu_read_unlock(&kfd_processes_srcu, idx); 1981 1982 return ret_p; 1983 } 1984 1985 /* kfd_process_evict_queues - Evict all user queues of a process 1986 * 1987 * Eviction is reference-counted per process-device. This means multiple 1988 * evictions from different sources can be nested safely. 1989 */ 1990 int kfd_process_evict_queues(struct kfd_process *p, uint32_t trigger) 1991 { 1992 int r = 0; 1993 int i; 1994 unsigned int n_evicted = 0; 1995 1996 for (i = 0; i < p->n_pdds; i++) { 1997 struct kfd_process_device *pdd = p->pdds[i]; 1998 struct device *dev = pdd->dev->adev->dev; 1999 2000 kfd_smi_event_queue_eviction(pdd->dev, p->lead_thread->pid, 2001 trigger); 2002 2003 r = pdd->dev->dqm->ops.evict_process_queues(pdd->dev->dqm, 2004 &pdd->qpd); 2005 /* evict return -EIO if HWS is hang or asic is resetting, in this case 2006 * we would like to set all the queues to be in evicted state to prevent 2007 * them been add back since they actually not be saved right now. 2008 */ 2009 if (r && r != -EIO) { 2010 dev_err(dev, "Failed to evict process queues\n"); 2011 goto fail; 2012 } 2013 n_evicted++; 2014 2015 pdd->dev->dqm->is_hws_hang = false; 2016 } 2017 2018 return r; 2019 2020 fail: 2021 /* To keep state consistent, roll back partial eviction by 2022 * restoring queues 2023 */ 2024 for (i = 0; i < p->n_pdds; i++) { 2025 struct kfd_process_device *pdd = p->pdds[i]; 2026 2027 if (n_evicted == 0) 2028 break; 2029 2030 kfd_smi_event_queue_restore(pdd->dev, p->lead_thread->pid); 2031 2032 if (pdd->dev->dqm->ops.restore_process_queues(pdd->dev->dqm, 2033 &pdd->qpd)) 2034 dev_err(pdd->dev->adev->dev, 2035 "Failed to restore queues\n"); 2036 2037 n_evicted--; 2038 } 2039 2040 return r; 2041 } 2042 2043 /* kfd_process_restore_queues - Restore all user queues of a process */ 2044 int kfd_process_restore_queues(struct kfd_process *p) 2045 { 2046 int r, ret = 0; 2047 int i; 2048 2049 for (i = 0; i < p->n_pdds; i++) { 2050 struct kfd_process_device *pdd = p->pdds[i]; 2051 struct device *dev = pdd->dev->adev->dev; 2052 2053 kfd_smi_event_queue_restore(pdd->dev, p->lead_thread->pid); 2054 2055 r = pdd->dev->dqm->ops.restore_process_queues(pdd->dev->dqm, 2056 &pdd->qpd); 2057 if (r) { 2058 dev_err(dev, "Failed to restore process queues\n"); 2059 if (!ret) 2060 ret = r; 2061 } 2062 } 2063 2064 return ret; 2065 } 2066 2067 int kfd_process_gpuidx_from_gpuid(struct kfd_process *p, uint32_t gpu_id) 2068 { 2069 int i; 2070 2071 for (i = 0; i < p->n_pdds; i++) 2072 if (p->pdds[i] && gpu_id == p->pdds[i]->user_gpu_id) 2073 return i; 2074 return -EINVAL; 2075 } 2076 2077 int 2078 kfd_process_gpuid_from_node(struct kfd_process *p, struct kfd_node *node, 2079 uint32_t *gpuid, uint32_t *gpuidx) 2080 { 2081 int i; 2082 2083 for (i = 0; i < p->n_pdds; i++) 2084 if (p->pdds[i] && p->pdds[i]->dev == node) { 2085 *gpuid = p->pdds[i]->user_gpu_id; 2086 *gpuidx = i; 2087 return 0; 2088 } 2089 return -EINVAL; 2090 } 2091 2092 static bool signal_eviction_fence(struct kfd_process *p) 2093 { 2094 struct dma_fence *ef; 2095 bool ret; 2096 2097 rcu_read_lock(); 2098 ef = dma_fence_get_rcu_safe(&p->ef); 2099 rcu_read_unlock(); 2100 if (!ef) 2101 return true; 2102 2103 ret = dma_fence_check_and_signal(ef); 2104 dma_fence_put(ef); 2105 2106 return ret; 2107 } 2108 2109 static void evict_process_worker(struct work_struct *work) 2110 { 2111 int ret; 2112 struct kfd_process *p; 2113 struct delayed_work *dwork; 2114 2115 dwork = to_delayed_work(work); 2116 2117 /* Process termination destroys this worker thread. So during the 2118 * lifetime of this thread, kfd_process p will be valid 2119 */ 2120 p = container_of(dwork, struct kfd_process, eviction_work); 2121 2122 pr_debug("Started evicting process pid %d\n", p->lead_thread->pid); 2123 ret = kfd_process_evict_queues(p, KFD_QUEUE_EVICTION_TRIGGER_TTM); 2124 if (!ret) { 2125 /* If another thread already signaled the eviction fence, 2126 * they are responsible stopping the queues and scheduling 2127 * the restore work. 2128 */ 2129 if (signal_eviction_fence(p) || 2130 mod_delayed_work(kfd_restore_wq, &p->restore_work, 2131 msecs_to_jiffies(PROCESS_RESTORE_TIME_MS))) 2132 kfd_process_restore_queues(p); 2133 2134 pr_debug("Finished evicting process pid %d\n", p->lead_thread->pid); 2135 } else 2136 pr_err("Failed to evict queues of process pid %d\n", p->lead_thread->pid); 2137 } 2138 2139 static int restore_process_helper(struct kfd_process *p) 2140 { 2141 int ret = 0; 2142 2143 /* VMs may not have been acquired yet during debugging. */ 2144 if (p->kgd_process_info) { 2145 ret = amdgpu_amdkfd_gpuvm_restore_process_bos( 2146 p->kgd_process_info, &p->ef); 2147 if (ret) 2148 return ret; 2149 } 2150 2151 ret = kfd_process_restore_queues(p); 2152 if (!ret) 2153 pr_debug("Finished restoring process pid %d\n", 2154 p->lead_thread->pid); 2155 else 2156 pr_err("Failed to restore queues of process pid %d\n", 2157 p->lead_thread->pid); 2158 2159 return ret; 2160 } 2161 2162 static void restore_process_worker(struct work_struct *work) 2163 { 2164 struct delayed_work *dwork; 2165 struct kfd_process *p; 2166 int ret = 0; 2167 2168 dwork = to_delayed_work(work); 2169 2170 /* Process termination destroys this worker thread. So during the 2171 * lifetime of this thread, kfd_process p will be valid 2172 */ 2173 p = container_of(dwork, struct kfd_process, restore_work); 2174 pr_debug("Started restoring process pasid %d\n", (int)p->lead_thread->pid); 2175 2176 /* Setting last_restore_timestamp before successful restoration. 2177 * Otherwise this would have to be set by KGD (restore_process_bos) 2178 * before KFD BOs are unreserved. If not, the process can be evicted 2179 * again before the timestamp is set. 2180 * If restore fails, the timestamp will be set again in the next 2181 * attempt. This would mean that the minimum GPU quanta would be 2182 * PROCESS_ACTIVE_TIME_MS - (time to execute the following two 2183 * functions) 2184 */ 2185 2186 p->last_restore_timestamp = get_jiffies_64(); 2187 2188 ret = restore_process_helper(p); 2189 if (ret) { 2190 pr_debug("Failed to restore BOs of process pid %d, retry after %d ms\n", 2191 p->lead_thread->pid, PROCESS_BACK_OFF_TIME_MS); 2192 if (mod_delayed_work(kfd_restore_wq, &p->restore_work, 2193 msecs_to_jiffies(PROCESS_RESTORE_TIME_MS))) 2194 kfd_process_restore_queues(p); 2195 } 2196 } 2197 2198 void kfd_suspend_all_processes(void) 2199 { 2200 struct kfd_process *p; 2201 unsigned int temp; 2202 int idx = srcu_read_lock(&kfd_processes_srcu); 2203 2204 WARN(debug_evictions, "Evicting all processes"); 2205 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 2206 if (kfd_process_evict_queues(p, KFD_QUEUE_EVICTION_TRIGGER_SUSPEND)) 2207 pr_err("Failed to suspend process pid %d\n", p->lead_thread->pid); 2208 signal_eviction_fence(p); 2209 } 2210 srcu_read_unlock(&kfd_processes_srcu, idx); 2211 } 2212 2213 int kfd_resume_all_processes(void) 2214 { 2215 struct kfd_process *p; 2216 unsigned int temp; 2217 int ret = 0, idx = srcu_read_lock(&kfd_processes_srcu); 2218 2219 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 2220 if (restore_process_helper(p)) { 2221 pr_err("Restore process pid %d failed during resume\n", 2222 p->lead_thread->pid); 2223 ret = -EFAULT; 2224 } 2225 } 2226 srcu_read_unlock(&kfd_processes_srcu, idx); 2227 return ret; 2228 } 2229 2230 int kfd_reserved_mem_mmap(struct kfd_node *dev, struct kfd_process *process, 2231 struct vm_area_struct *vma) 2232 { 2233 struct kfd_process_device *pdd; 2234 struct qcm_process_device *qpd; 2235 2236 if ((vma->vm_end - vma->vm_start) != KFD_CWSR_TBA_TMA_SIZE) { 2237 dev_err(dev->adev->dev, "Incorrect CWSR mapping size.\n"); 2238 return -EINVAL; 2239 } 2240 2241 pdd = kfd_get_process_device_data(dev, process); 2242 if (!pdd) 2243 return -EINVAL; 2244 qpd = &pdd->qpd; 2245 2246 qpd->cwsr_kaddr = (void *)__get_free_pages(GFP_KERNEL | __GFP_ZERO, 2247 get_order(KFD_CWSR_TBA_TMA_SIZE)); 2248 if (!qpd->cwsr_kaddr) { 2249 dev_err(dev->adev->dev, 2250 "Error allocating per process CWSR buffer.\n"); 2251 return -ENOMEM; 2252 } 2253 2254 vm_flags_set(vma, VM_IO | VM_DONTCOPY | VM_DONTEXPAND 2255 | VM_NORESERVE | VM_DONTDUMP | VM_PFNMAP); 2256 /* Mapping pages to user process */ 2257 return remap_pfn_range(vma, vma->vm_start, 2258 PFN_DOWN(__pa(qpd->cwsr_kaddr)), 2259 KFD_CWSR_TBA_TMA_SIZE, vma->vm_page_prot); 2260 } 2261 2262 /* assumes caller holds process lock. */ 2263 int kfd_process_drain_interrupts(struct kfd_process_device *pdd) 2264 { 2265 uint32_t irq_drain_fence[8]; 2266 uint8_t node_id = 0; 2267 int r = 0; 2268 2269 if (!KFD_IS_SOC15(pdd->dev)) 2270 return 0; 2271 2272 pdd->process->irq_drain_is_open = true; 2273 2274 memset(irq_drain_fence, 0, sizeof(irq_drain_fence)); 2275 irq_drain_fence[0] = (KFD_IRQ_FENCE_SOURCEID << 8) | 2276 KFD_IRQ_FENCE_CLIENTID; 2277 irq_drain_fence[3] = pdd->pasid; 2278 2279 /* 2280 * For GFX 9.4.3/9.5.0, send the NodeId also in IH cookie DW[3] 2281 */ 2282 if (KFD_GC_VERSION(pdd->dev->kfd) == IP_VERSION(9, 4, 3) || 2283 KFD_GC_VERSION(pdd->dev->kfd) == IP_VERSION(9, 4, 4) || 2284 KFD_GC_VERSION(pdd->dev->kfd) == IP_VERSION(9, 5, 0) || 2285 KFD_GC_VERSION(pdd->dev->kfd) == IP_VERSION(12, 1, 0)) { 2286 node_id = ffs(pdd->dev->interrupt_bitmap) - 1; 2287 irq_drain_fence[3] |= node_id << 16; 2288 } 2289 2290 /* ensure stale irqs scheduled KFD interrupts and send drain fence. */ 2291 if (amdgpu_amdkfd_send_close_event_drain_irq(pdd->dev->adev, 2292 irq_drain_fence)) { 2293 pdd->process->irq_drain_is_open = false; 2294 return 0; 2295 } 2296 2297 r = wait_event_interruptible(pdd->process->wait_irq_drain, 2298 !READ_ONCE(pdd->process->irq_drain_is_open)); 2299 if (r) 2300 pdd->process->irq_drain_is_open = false; 2301 2302 return r; 2303 } 2304 2305 void kfd_process_close_interrupt_drain(unsigned int pasid) 2306 { 2307 struct kfd_process *p; 2308 2309 p = kfd_lookup_process_by_pasid(pasid, NULL); 2310 2311 if (!p) 2312 return; 2313 2314 WRITE_ONCE(p->irq_drain_is_open, false); 2315 wake_up_all(&p->wait_irq_drain); 2316 kfd_unref_process(p); 2317 } 2318 2319 struct send_exception_work_handler_workarea { 2320 struct work_struct work; 2321 struct kfd_process *p; 2322 unsigned int queue_id; 2323 uint64_t error_reason; 2324 }; 2325 2326 static void send_exception_work_handler(struct work_struct *work) 2327 { 2328 struct send_exception_work_handler_workarea *workarea; 2329 struct kfd_process *p; 2330 struct queue *q; 2331 struct mm_struct *mm; 2332 struct kfd_context_save_area_header __user *csa_header; 2333 uint64_t __user *err_payload_ptr; 2334 uint64_t cur_err; 2335 uint32_t ev_id; 2336 2337 workarea = container_of(work, 2338 struct send_exception_work_handler_workarea, 2339 work); 2340 p = workarea->p; 2341 2342 mm = get_task_mm(p->lead_thread); 2343 2344 if (!mm) 2345 return; 2346 2347 kthread_use_mm(mm); 2348 2349 q = pqm_get_user_queue(&p->pqm, workarea->queue_id); 2350 2351 if (!q) 2352 goto out; 2353 2354 csa_header = (void __user *)q->properties.ctx_save_restore_area_address; 2355 2356 get_user(err_payload_ptr, (uint64_t __user **)&csa_header->err_payload_addr); 2357 get_user(cur_err, err_payload_ptr); 2358 cur_err |= workarea->error_reason; 2359 put_user(cur_err, err_payload_ptr); 2360 get_user(ev_id, &csa_header->err_event_id); 2361 2362 kfd_set_event(p, ev_id); 2363 2364 out: 2365 kthread_unuse_mm(mm); 2366 mmput(mm); 2367 } 2368 2369 int kfd_send_exception_to_runtime(struct kfd_process *p, 2370 unsigned int queue_id, 2371 uint64_t error_reason) 2372 { 2373 struct send_exception_work_handler_workarea worker; 2374 2375 INIT_WORK_ONSTACK(&worker.work, send_exception_work_handler); 2376 2377 worker.p = p; 2378 worker.queue_id = queue_id; 2379 worker.error_reason = error_reason; 2380 2381 schedule_work(&worker.work); 2382 flush_work(&worker.work); 2383 destroy_work_on_stack(&worker.work); 2384 2385 return 0; 2386 } 2387 2388 struct kfd_process_device *kfd_process_device_data_by_id(struct kfd_process *p, uint32_t gpu_id) 2389 { 2390 int i; 2391 2392 if (gpu_id) { 2393 for (i = 0; i < p->n_pdds; i++) { 2394 struct kfd_process_device *pdd = p->pdds[i]; 2395 2396 if (pdd->user_gpu_id == gpu_id) 2397 return pdd; 2398 } 2399 } 2400 return NULL; 2401 } 2402 2403 int kfd_process_get_user_gpu_id(struct kfd_process *p, uint32_t actual_gpu_id) 2404 { 2405 int i; 2406 2407 if (!actual_gpu_id) 2408 return 0; 2409 2410 for (i = 0; i < p->n_pdds; i++) { 2411 struct kfd_process_device *pdd = p->pdds[i]; 2412 2413 if (pdd->dev->id == actual_gpu_id) 2414 return pdd->user_gpu_id; 2415 } 2416 return -EINVAL; 2417 } 2418 2419 #if defined(CONFIG_DEBUG_FS) 2420 2421 int kfd_debugfs_mqds_by_process(struct seq_file *m, void *data) 2422 { 2423 struct kfd_process *p; 2424 unsigned int temp; 2425 int r = 0; 2426 2427 int idx = srcu_read_lock(&kfd_processes_srcu); 2428 2429 hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) { 2430 seq_printf(m, "Process %d PASID %d:\n", 2431 p->lead_thread->tgid, p->lead_thread->pid); 2432 2433 mutex_lock(&p->mutex); 2434 r = pqm_debugfs_mqds(m, &p->pqm); 2435 mutex_unlock(&p->mutex); 2436 2437 if (r) 2438 break; 2439 } 2440 2441 srcu_read_unlock(&kfd_processes_srcu, idx); 2442 2443 return r; 2444 } 2445 2446 #endif 2447