1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2016 Red Hat 4 * Author: Rob Clark <robdclark@gmail.com> 5 */ 6 7 #include "drm/drm_file.h" 8 #include "drm/msm_drm.h" 9 #include "linux/file.h" 10 #include "linux/sync_file.h" 11 12 #include "msm_drv.h" 13 #include "msm_gem.h" 14 #include "msm_gpu.h" 15 #include "msm_mmu.h" 16 #include "msm_syncobj.h" 17 18 #define vm_dbg(fmt, ...) pr_debug("%s:%d: "fmt"\n", __func__, __LINE__, ##__VA_ARGS__) 19 20 static uint vm_log_shift = 0; 21 MODULE_PARM_DESC(vm_log_shift, "Length of VM op log"); 22 module_param_named(vm_log_shift, vm_log_shift, uint, 0600); 23 24 /** 25 * struct msm_vm_map_op - create new pgtable mapping 26 */ 27 struct msm_vm_map_op { 28 /** @iova: start address for mapping */ 29 uint64_t iova; 30 /** @range: size of the region to map */ 31 uint64_t range; 32 /** @offset: offset into @sgt to map */ 33 uint64_t offset; 34 /** @sgt: pages to map, or NULL for a PRR mapping */ 35 struct sg_table *sgt; 36 /** @prot: the mapping protection flags */ 37 int prot; 38 39 /** 40 * @queue_id: The id of the submitqueue the operation is performed 41 * on, or zero for (in particular) UNMAP ops triggered outside of 42 * a submitqueue (ie. process cleanup) 43 */ 44 int queue_id; 45 }; 46 47 /** 48 * struct msm_vm_unmap_op - unmap a range of pages from pgtable 49 */ 50 struct msm_vm_unmap_op { 51 /** @iova: start address for unmap */ 52 uint64_t iova; 53 /** @range: size of region to unmap */ 54 uint64_t range; 55 56 /** @reason: The reason for the unmap */ 57 const char *reason; 58 59 /** 60 * @queue_id: The id of the submitqueue the operation is performed 61 * on, or zero for (in particular) UNMAP ops triggered outside of 62 * a submitqueue (ie. process cleanup) 63 */ 64 int queue_id; 65 }; 66 67 /** 68 * struct msm_vma_op - A MAP or UNMAP operation 69 */ 70 struct msm_vm_op { 71 /** @op: The operation type */ 72 enum { 73 MSM_VM_OP_MAP = 1, 74 MSM_VM_OP_UNMAP, 75 } op; 76 union { 77 /** @map: Parameters used if op == MSM_VMA_OP_MAP */ 78 struct msm_vm_map_op map; 79 /** @unmap: Parameters used if op == MSM_VMA_OP_UNMAP */ 80 struct msm_vm_unmap_op unmap; 81 }; 82 /** @node: list head in msm_vm_bind_job::vm_ops */ 83 struct list_head node; 84 85 /** 86 * @obj: backing object for pages to be mapped/unmapped 87 * 88 * Async unmap ops, in particular, must hold a reference to the 89 * original GEM object backing the mapping that will be unmapped. 90 * But the same can be required in the map path, for example if 91 * there is not a corresponding unmap op, such as process exit. 92 * 93 * This ensures that the pages backing the mapping are not freed 94 * before the mapping is torn down. 95 */ 96 struct drm_gem_object *obj; 97 }; 98 99 /** 100 * struct msm_vm_bind_job - Tracking for a VM_BIND ioctl 101 * 102 * A table of userspace requested VM updates (MSM_VM_BIND_OP_UNMAP/MAP/MAP_NULL) 103 * gets applied to the vm, generating a list of VM ops (MSM_VM_OP_MAP/UNMAP) 104 * which are applied to the pgtables asynchronously. For example a userspace 105 * requested MSM_VM_BIND_OP_MAP could end up generating both an MSM_VM_OP_UNMAP 106 * to unmap an existing mapping, and a MSM_VM_OP_MAP to apply the new mapping. 107 */ 108 struct msm_vm_bind_job { 109 /** @base: base class for drm_sched jobs */ 110 struct drm_sched_job base; 111 /** @vm: The VM being operated on */ 112 struct drm_gpuvm *vm; 113 /** @fence: The fence that is signaled when job completes */ 114 struct dma_fence *fence; 115 /** @queue: The queue that the job runs on */ 116 struct msm_gpu_submitqueue *queue; 117 /** @prealloc: Tracking for pre-allocated MMU pgtable pages */ 118 struct msm_mmu_prealloc prealloc; 119 /** @vm_ops: a list of struct msm_vm_op */ 120 struct list_head vm_ops; 121 /** @bos_pinned: are the GEM objects being bound pinned? */ 122 bool bos_pinned; 123 /** @nr_ops: the number of userspace requested ops */ 124 unsigned int nr_ops; 125 /** 126 * @ops: the userspace requested ops 127 * 128 * The userspace requested ops are copied/parsed and validated 129 * before we start applying the updates to try to do as much up- 130 * front error checking as possible, to avoid the VM being in an 131 * undefined state due to partially executed VM_BIND. 132 * 133 * This table also serves to hold a reference to the backing GEM 134 * objects. 135 */ 136 struct msm_vm_bind_op { 137 uint32_t op; 138 uint32_t flags; 139 union { 140 struct drm_gem_object *obj; 141 uint32_t handle; 142 }; 143 uint64_t obj_offset; 144 uint64_t iova; 145 uint64_t range; 146 } ops[]; 147 }; 148 149 #define job_foreach_bo(obj, _job) \ 150 for (unsigned i = 0; i < (_job)->nr_ops; i++) \ 151 if ((obj = (_job)->ops[i].obj)) 152 153 static inline struct msm_vm_bind_job *to_msm_vm_bind_job(struct drm_sched_job *job) 154 { 155 return container_of(job, struct msm_vm_bind_job, base); 156 } 157 158 static void 159 msm_gem_vm_free(struct drm_gpuvm *gpuvm) 160 { 161 struct msm_gem_vm *vm = container_of(gpuvm, struct msm_gem_vm, base); 162 163 drm_mm_takedown(&vm->mm); 164 if (vm->mmu) 165 vm->mmu->funcs->destroy(vm->mmu); 166 dma_fence_put(vm->last_fence); 167 put_pid(vm->pid); 168 kfree(vm->log); 169 kfree(vm); 170 } 171 172 /** 173 * msm_gem_vm_unusable() - Mark a VM as unusable 174 * @gpuvm: the VM to mark unusable 175 */ 176 void 177 msm_gem_vm_unusable(struct drm_gpuvm *gpuvm) 178 { 179 struct msm_gem_vm *vm = to_msm_vm(gpuvm); 180 uint32_t vm_log_len = (1 << vm->log_shift); 181 uint32_t vm_log_mask = vm_log_len - 1; 182 uint32_t nr_vm_logs; 183 int first; 184 185 vm->unusable = true; 186 187 /* Bail if no log, or empty log: */ 188 if (!vm->log || !vm->log[0].op) 189 return; 190 191 mutex_lock(&vm->mmu_lock); 192 193 /* 194 * log_idx is the next entry to overwrite, meaning it is the oldest, or 195 * first, entry (other than the special case handled below where the 196 * log hasn't wrapped around yet) 197 */ 198 first = vm->log_idx; 199 200 if (!vm->log[first].op) { 201 /* 202 * If the next log entry has not been written yet, then only 203 * entries 0 to idx-1 are valid (ie. we haven't wrapped around 204 * yet) 205 */ 206 nr_vm_logs = MAX(0, first - 1); 207 first = 0; 208 } else { 209 nr_vm_logs = vm_log_len; 210 } 211 212 pr_err("vm-log:\n"); 213 for (int i = 0; i < nr_vm_logs; i++) { 214 int idx = (i + first) & vm_log_mask; 215 struct msm_gem_vm_log_entry *e = &vm->log[idx]; 216 pr_err(" - %s:%d: 0x%016llx-0x%016llx\n", 217 e->op, e->queue_id, e->iova, 218 e->iova + e->range); 219 } 220 221 mutex_unlock(&vm->mmu_lock); 222 } 223 224 static void 225 vm_log(struct msm_gem_vm *vm, const char *op, uint64_t iova, uint64_t range, int queue_id) 226 { 227 int idx; 228 229 if (!vm->managed) 230 lockdep_assert_held(&vm->mmu_lock); 231 232 vm_dbg("%s:%p:%d: %016llx %016llx", op, vm, queue_id, iova, iova + range); 233 234 if (!vm->log) 235 return; 236 237 idx = vm->log_idx; 238 vm->log[idx].op = op; 239 vm->log[idx].iova = iova; 240 vm->log[idx].range = range; 241 vm->log[idx].queue_id = queue_id; 242 vm->log_idx = (vm->log_idx + 1) & ((1 << vm->log_shift) - 1); 243 } 244 245 static void 246 vm_unmap_op(struct msm_gem_vm *vm, const struct msm_vm_unmap_op *op) 247 { 248 const char *reason = op->reason; 249 250 if (!reason) 251 reason = "unmap"; 252 253 vm_log(vm, reason, op->iova, op->range, op->queue_id); 254 255 vm->mmu->funcs->unmap(vm->mmu, op->iova, op->range); 256 } 257 258 static int 259 vm_map_op(struct msm_gem_vm *vm, const struct msm_vm_map_op *op) 260 { 261 vm_log(vm, "map", op->iova, op->range, op->queue_id); 262 263 return vm->mmu->funcs->map(vm->mmu, op->iova, op->sgt, op->offset, 264 op->range, op->prot); 265 } 266 267 /* Actually unmap memory for the vma */ 268 void msm_gem_vma_unmap(struct drm_gpuva *vma, const char *reason) 269 { 270 struct msm_gem_vm *vm = to_msm_vm(vma->vm); 271 struct msm_gem_vma *msm_vma = to_msm_vma(vma); 272 273 /* Don't do anything if the memory isn't mapped */ 274 if (!msm_vma->mapped) 275 return; 276 277 /* 278 * The mmu_lock is only needed when preallocation is used. But 279 * in that case we don't need to worry about recursion into 280 * shrinker 281 */ 282 if (!vm->managed) 283 mutex_lock(&vm->mmu_lock); 284 285 vm_unmap_op(vm, &(struct msm_vm_unmap_op){ 286 .iova = vma->va.addr, 287 .range = vma->va.range, 288 .reason = reason, 289 }); 290 291 if (!vm->managed) 292 mutex_unlock(&vm->mmu_lock); 293 294 msm_vma->mapped = false; 295 } 296 297 /* Map and pin vma: */ 298 int 299 msm_gem_vma_map(struct drm_gpuva *vma, int prot, struct sg_table *sgt) 300 { 301 struct msm_gem_vm *vm = to_msm_vm(vma->vm); 302 struct msm_gem_vma *msm_vma = to_msm_vma(vma); 303 int ret; 304 305 if (GEM_WARN_ON(!vma->va.addr)) 306 return -EINVAL; 307 308 if (msm_vma->mapped) 309 return 0; 310 311 msm_vma->mapped = true; 312 313 /* 314 * The mmu_lock is only needed when preallocation is used. But 315 * in that case we don't need to worry about recursion into 316 * shrinker 317 */ 318 if (!vm->managed) 319 mutex_lock(&vm->mmu_lock); 320 321 /* 322 * NOTE: if not using pgtable preallocation, we cannot hold 323 * a lock across map/unmap which is also used in the job_run() 324 * path, as this can cause deadlock in job_run() vs shrinker/ 325 * reclaim. 326 */ 327 ret = vm_map_op(vm, &(struct msm_vm_map_op){ 328 .iova = vma->va.addr, 329 .range = vma->va.range, 330 .offset = vma->gem.offset, 331 .sgt = sgt, 332 .prot = prot, 333 }); 334 335 if (!vm->managed) 336 mutex_unlock(&vm->mmu_lock); 337 338 if (ret) 339 msm_vma->mapped = false; 340 341 return ret; 342 } 343 344 /* Close an iova. Warn if it is still in use */ 345 void msm_gem_vma_close(struct drm_gpuva *vma) 346 { 347 struct msm_gem_vm *vm = to_msm_vm(vma->vm); 348 struct msm_gem_vma *msm_vma = to_msm_vma(vma); 349 350 GEM_WARN_ON(msm_vma->mapped); 351 352 drm_gpuvm_resv_assert_held(&vm->base); 353 354 if (vma->gem.obj) 355 msm_gem_assert_locked(vma->gem.obj); 356 357 if (vma->va.addr && vm->managed) 358 drm_mm_remove_node(&msm_vma->node); 359 360 drm_gpuva_remove(vma); 361 drm_gpuva_unlink(vma); 362 363 kfree(vma); 364 } 365 366 /* Create a new vma and allocate an iova for it */ 367 struct drm_gpuva * 368 msm_gem_vma_new(struct drm_gpuvm *gpuvm, struct drm_gem_object *obj, 369 u64 offset, u64 range_start, u64 range_end) 370 { 371 struct msm_gem_vm *vm = to_msm_vm(gpuvm); 372 struct drm_gpuvm_bo *vm_bo; 373 struct msm_gem_vma *vma; 374 int ret; 375 376 drm_gpuvm_resv_assert_held(&vm->base); 377 378 vma = kzalloc(sizeof(*vma), GFP_KERNEL); 379 if (!vma) 380 return ERR_PTR(-ENOMEM); 381 382 if (vm->managed) { 383 BUG_ON(offset != 0); 384 BUG_ON(!obj); /* NULL mappings not valid for kernel managed VM */ 385 ret = drm_mm_insert_node_in_range(&vm->mm, &vma->node, 386 obj->size, PAGE_SIZE, 0, 387 range_start, range_end, 0); 388 389 if (ret) 390 goto err_free_vma; 391 392 range_start = vma->node.start; 393 range_end = range_start + obj->size; 394 } 395 396 if (obj) 397 GEM_WARN_ON((range_end - range_start) > obj->size); 398 399 struct drm_gpuva_op_map op_map = { 400 .va.addr = range_start, 401 .va.range = range_end - range_start, 402 .gem.obj = obj, 403 .gem.offset = offset, 404 }; 405 406 drm_gpuva_init_from_op(&vma->base, &op_map); 407 vma->mapped = false; 408 409 ret = drm_gpuva_insert(&vm->base, &vma->base); 410 if (ret) 411 goto err_free_range; 412 413 if (!obj) 414 return &vma->base; 415 416 vm_bo = drm_gpuvm_bo_obtain(&vm->base, obj); 417 if (IS_ERR(vm_bo)) { 418 ret = PTR_ERR(vm_bo); 419 goto err_va_remove; 420 } 421 422 drm_gpuvm_bo_extobj_add(vm_bo); 423 drm_gpuva_link(&vma->base, vm_bo); 424 GEM_WARN_ON(drm_gpuvm_bo_put(vm_bo)); 425 426 return &vma->base; 427 428 err_va_remove: 429 drm_gpuva_remove(&vma->base); 430 err_free_range: 431 if (vm->managed) 432 drm_mm_remove_node(&vma->node); 433 err_free_vma: 434 kfree(vma); 435 return ERR_PTR(ret); 436 } 437 438 static int 439 msm_gem_vm_bo_validate(struct drm_gpuvm_bo *vm_bo, struct drm_exec *exec) 440 { 441 struct drm_gem_object *obj = vm_bo->obj; 442 struct drm_gpuva *vma; 443 int ret; 444 445 vm_dbg("validate: %p", obj); 446 447 msm_gem_assert_locked(obj); 448 449 drm_gpuvm_bo_for_each_va (vma, vm_bo) { 450 ret = msm_gem_pin_vma_locked(obj, vma); 451 if (ret) 452 return ret; 453 } 454 455 return 0; 456 } 457 458 struct op_arg { 459 unsigned flags; 460 struct msm_vm_bind_job *job; 461 const struct msm_vm_bind_op *op; 462 bool kept; 463 }; 464 465 static int 466 vm_op_enqueue(struct op_arg *arg, struct msm_vm_op _op) 467 { 468 struct msm_vm_op *op = kmalloc(sizeof(*op), GFP_KERNEL); 469 if (!op) 470 return -ENOMEM; 471 472 *op = _op; 473 list_add_tail(&op->node, &arg->job->vm_ops); 474 475 if (op->obj) 476 drm_gem_object_get(op->obj); 477 478 return 0; 479 } 480 481 static struct drm_gpuva * 482 vma_from_op(struct op_arg *arg, struct drm_gpuva_op_map *op) 483 { 484 return msm_gem_vma_new(arg->job->vm, op->gem.obj, op->gem.offset, 485 op->va.addr, op->va.addr + op->va.range); 486 } 487 488 static int 489 msm_gem_vm_sm_step_map(struct drm_gpuva_op *op, void *_arg) 490 { 491 struct op_arg *arg = _arg; 492 struct msm_vm_bind_job *job = arg->job; 493 struct drm_gem_object *obj = op->map.gem.obj; 494 struct drm_gpuva *vma; 495 struct sg_table *sgt; 496 unsigned prot; 497 int ret; 498 499 if (arg->kept) 500 return 0; 501 502 vma = vma_from_op(arg, &op->map); 503 if (WARN_ON(IS_ERR(vma))) 504 return PTR_ERR(vma); 505 506 vm_dbg("%p:%p:%p: %016llx %016llx", vma->vm, vma, vma->gem.obj, 507 vma->va.addr, vma->va.range); 508 509 if (obj) { 510 sgt = to_msm_bo(obj)->sgt; 511 prot = msm_gem_prot(obj); 512 } else { 513 sgt = NULL; 514 prot = IOMMU_READ | IOMMU_WRITE; 515 } 516 517 ret = vm_op_enqueue(arg, (struct msm_vm_op){ 518 .op = MSM_VM_OP_MAP, 519 .map = { 520 .sgt = sgt, 521 .iova = vma->va.addr, 522 .range = vma->va.range, 523 .offset = vma->gem.offset, 524 .prot = prot, 525 .queue_id = job->queue->id, 526 }, 527 .obj = vma->gem.obj, 528 }); 529 530 if (ret) 531 return ret; 532 533 vma->flags = ((struct op_arg *)arg)->flags; 534 to_msm_vma(vma)->mapped = true; 535 536 return 0; 537 } 538 539 static int 540 msm_gem_vm_sm_step_remap(struct drm_gpuva_op *op, void *arg) 541 { 542 struct msm_vm_bind_job *job = ((struct op_arg *)arg)->job; 543 struct drm_gpuvm *vm = job->vm; 544 struct drm_gpuva *orig_vma = op->remap.unmap->va; 545 struct drm_gpuva *prev_vma = NULL, *next_vma = NULL; 546 struct drm_gpuvm_bo *vm_bo = orig_vma->vm_bo; 547 bool mapped = to_msm_vma(orig_vma)->mapped; 548 unsigned flags; 549 int ret; 550 551 vm_dbg("orig_vma: %p:%p:%p: %016llx %016llx", vm, orig_vma, 552 orig_vma->gem.obj, orig_vma->va.addr, orig_vma->va.range); 553 554 if (mapped) { 555 uint64_t unmap_start, unmap_range; 556 557 drm_gpuva_op_remap_to_unmap_range(&op->remap, &unmap_start, &unmap_range); 558 559 ret = vm_op_enqueue(arg, (struct msm_vm_op){ 560 .op = MSM_VM_OP_UNMAP, 561 .unmap = { 562 .iova = unmap_start, 563 .range = unmap_range, 564 .queue_id = job->queue->id, 565 }, 566 .obj = orig_vma->gem.obj, 567 }); 568 569 if (ret) 570 return ret; 571 572 /* 573 * Part of this GEM obj is still mapped, but we're going to kill the 574 * existing VMA and replace it with one or two new ones (ie. two if 575 * the unmapped range is in the middle of the existing (unmap) VMA). 576 * So just set the state to unmapped: 577 */ 578 to_msm_vma(orig_vma)->mapped = false; 579 } 580 581 /* 582 * Hold a ref to the vm_bo between the msm_gem_vma_close() and the 583 * creation of the new prev/next vma's, in case the vm_bo is tracked 584 * in the VM's evict list: 585 */ 586 if (vm_bo) 587 drm_gpuvm_bo_get(vm_bo); 588 589 /* 590 * The prev_vma and/or next_vma are replacing the unmapped vma, and 591 * therefore should preserve it's flags: 592 */ 593 flags = orig_vma->flags; 594 595 msm_gem_vma_close(orig_vma); 596 597 if (op->remap.prev) { 598 prev_vma = vma_from_op(arg, op->remap.prev); 599 if (WARN_ON(IS_ERR(prev_vma))) 600 return PTR_ERR(prev_vma); 601 602 vm_dbg("prev_vma: %p:%p: %016llx %016llx", vm, prev_vma, prev_vma->va.addr, prev_vma->va.range); 603 to_msm_vma(prev_vma)->mapped = mapped; 604 prev_vma->flags = flags; 605 } 606 607 if (op->remap.next) { 608 next_vma = vma_from_op(arg, op->remap.next); 609 if (WARN_ON(IS_ERR(next_vma))) 610 return PTR_ERR(next_vma); 611 612 vm_dbg("next_vma: %p:%p: %016llx %016llx", vm, next_vma, next_vma->va.addr, next_vma->va.range); 613 to_msm_vma(next_vma)->mapped = mapped; 614 next_vma->flags = flags; 615 } 616 617 if (!mapped) 618 drm_gpuvm_bo_evict(vm_bo, true); 619 620 /* Drop the previous ref: */ 621 drm_gpuvm_bo_put(vm_bo); 622 623 return 0; 624 } 625 626 static int 627 msm_gem_vm_sm_step_unmap(struct drm_gpuva_op *op, void *_arg) 628 { 629 struct op_arg *arg = _arg; 630 struct msm_vm_bind_job *job = arg->job; 631 struct drm_gpuva *vma = op->unmap.va; 632 struct msm_gem_vma *msm_vma = to_msm_vma(vma); 633 int ret; 634 635 vm_dbg("%p:%p:%p: %016llx %016llx", vma->vm, vma, vma->gem.obj, 636 vma->va.addr, vma->va.range); 637 638 /* 639 * Detect in-place remap. Turnip does this to change the vma flags, 640 * in particular MSM_VMA_DUMP. In this case we want to avoid actually 641 * touching the page tables, as that would require synchronization 642 * against SUBMIT jobs running on the GPU. 643 */ 644 if (op->unmap.keep && 645 (arg->op->op == MSM_VM_BIND_OP_MAP) && 646 (vma->gem.obj == arg->op->obj) && 647 (vma->gem.offset == arg->op->obj_offset) && 648 (vma->va.addr == arg->op->iova) && 649 (vma->va.range == arg->op->range)) { 650 /* We are only expecting a single in-place unmap+map cb pair: */ 651 WARN_ON(arg->kept); 652 653 /* Leave the existing VMA in place, but signal that to the map cb: */ 654 arg->kept = true; 655 656 /* Only flags are changing, so update that in-place: */ 657 unsigned orig_flags = vma->flags & (DRM_GPUVA_USERBITS - 1); 658 vma->flags = orig_flags | arg->flags; 659 660 return 0; 661 } 662 663 if (!msm_vma->mapped) 664 goto out_close; 665 666 ret = vm_op_enqueue(arg, (struct msm_vm_op){ 667 .op = MSM_VM_OP_UNMAP, 668 .unmap = { 669 .iova = vma->va.addr, 670 .range = vma->va.range, 671 .queue_id = job->queue->id, 672 }, 673 .obj = vma->gem.obj, 674 }); 675 676 if (ret) 677 return ret; 678 679 msm_vma->mapped = false; 680 681 out_close: 682 msm_gem_vma_close(vma); 683 684 return 0; 685 } 686 687 static const struct drm_gpuvm_ops msm_gpuvm_ops = { 688 .vm_free = msm_gem_vm_free, 689 .vm_bo_validate = msm_gem_vm_bo_validate, 690 .sm_step_map = msm_gem_vm_sm_step_map, 691 .sm_step_remap = msm_gem_vm_sm_step_remap, 692 .sm_step_unmap = msm_gem_vm_sm_step_unmap, 693 }; 694 695 static struct dma_fence * 696 msm_vma_job_run(struct drm_sched_job *_job) 697 { 698 struct msm_vm_bind_job *job = to_msm_vm_bind_job(_job); 699 struct msm_gem_vm *vm = to_msm_vm(job->vm); 700 struct drm_gem_object *obj; 701 int ret = vm->unusable ? -EINVAL : 0; 702 703 vm_dbg(""); 704 705 mutex_lock(&vm->mmu_lock); 706 vm->mmu->prealloc = &job->prealloc; 707 708 while (!list_empty(&job->vm_ops)) { 709 struct msm_vm_op *op = 710 list_first_entry(&job->vm_ops, struct msm_vm_op, node); 711 712 switch (op->op) { 713 case MSM_VM_OP_MAP: 714 /* 715 * On error, stop trying to map new things.. but we 716 * still want to process the unmaps (or in particular, 717 * the drm_gem_object_put()s) 718 */ 719 if (!ret) 720 ret = vm_map_op(vm, &op->map); 721 break; 722 case MSM_VM_OP_UNMAP: 723 vm_unmap_op(vm, &op->unmap); 724 break; 725 } 726 drm_gem_object_put(op->obj); 727 list_del(&op->node); 728 kfree(op); 729 } 730 731 vm->mmu->prealloc = NULL; 732 mutex_unlock(&vm->mmu_lock); 733 734 /* 735 * We failed to perform at least _some_ of the pgtable updates, so 736 * now the VM is in an undefined state. Game over! 737 */ 738 if (ret) 739 msm_gem_vm_unusable(job->vm); 740 741 job_foreach_bo (obj, job) { 742 msm_gem_lock(obj); 743 msm_gem_unpin_locked(obj); 744 msm_gem_unlock(obj); 745 } 746 747 /* VM_BIND ops are synchronous, so no fence to wait on: */ 748 return NULL; 749 } 750 751 static void 752 msm_vma_job_free(struct drm_sched_job *_job) 753 { 754 struct msm_vm_bind_job *job = to_msm_vm_bind_job(_job); 755 struct msm_gem_vm *vm = to_msm_vm(job->vm); 756 struct drm_gem_object *obj; 757 758 vm->mmu->funcs->prealloc_cleanup(vm->mmu, &job->prealloc); 759 760 atomic_sub(job->prealloc.count, &vm->prealloc_throttle.in_flight); 761 762 drm_sched_job_cleanup(_job); 763 764 job_foreach_bo (obj, job) 765 drm_gem_object_put(obj); 766 767 msm_submitqueue_put(job->queue); 768 dma_fence_put(job->fence); 769 770 /* In error paths, we could have unexecuted ops: */ 771 while (!list_empty(&job->vm_ops)) { 772 struct msm_vm_op *op = 773 list_first_entry(&job->vm_ops, struct msm_vm_op, node); 774 list_del(&op->node); 775 kfree(op); 776 } 777 778 wake_up(&vm->prealloc_throttle.wait); 779 780 kfree(job); 781 } 782 783 static const struct drm_sched_backend_ops msm_vm_bind_ops = { 784 .run_job = msm_vma_job_run, 785 .free_job = msm_vma_job_free 786 }; 787 788 /** 789 * msm_gem_vm_create() - Create and initialize a &msm_gem_vm 790 * @drm: the drm device 791 * @mmu: the backing MMU objects handling mapping/unmapping 792 * @name: the name of the VM 793 * @va_start: the start offset of the VA space 794 * @va_size: the size of the VA space 795 * @managed: is it a kernel managed VM? 796 * 797 * In a kernel managed VM, the kernel handles address allocation, and only 798 * synchronous operations are supported. In a user managed VM, userspace 799 * handles virtual address allocation, and both async and sync operations 800 * are supported. 801 */ 802 struct drm_gpuvm * 803 msm_gem_vm_create(struct drm_device *drm, struct msm_mmu *mmu, const char *name, 804 u64 va_start, u64 va_size, bool managed) 805 { 806 /* 807 * We mostly want to use DRM_GPUVM_RESV_PROTECTED, except that 808 * makes drm_gpuvm_bo_evict() a no-op for extobjs (ie. we loose 809 * tracking that an extobj is evicted) :facepalm: 810 */ 811 enum drm_gpuvm_flags flags = 0; 812 struct msm_gem_vm *vm; 813 struct drm_gem_object *dummy_gem; 814 int ret = 0; 815 816 if (IS_ERR(mmu)) 817 return ERR_CAST(mmu); 818 819 vm = kzalloc(sizeof(*vm), GFP_KERNEL); 820 if (!vm) 821 return ERR_PTR(-ENOMEM); 822 823 dummy_gem = drm_gpuvm_resv_object_alloc(drm); 824 if (!dummy_gem) { 825 ret = -ENOMEM; 826 goto err_free_vm; 827 } 828 829 if (!managed) { 830 struct drm_sched_init_args args = { 831 .ops = &msm_vm_bind_ops, 832 .num_rqs = 1, 833 .credit_limit = 1, 834 .timeout = MAX_SCHEDULE_TIMEOUT, 835 .name = "msm-vm-bind", 836 .dev = drm->dev, 837 }; 838 839 ret = drm_sched_init(&vm->sched, &args); 840 if (ret) 841 goto err_free_dummy; 842 843 init_waitqueue_head(&vm->prealloc_throttle.wait); 844 } 845 846 drm_gpuvm_init(&vm->base, name, flags, drm, dummy_gem, 847 va_start, va_size, 0, 0, &msm_gpuvm_ops); 848 drm_gem_object_put(dummy_gem); 849 850 vm->mmu = mmu; 851 mutex_init(&vm->mmu_lock); 852 vm->managed = managed; 853 854 drm_mm_init(&vm->mm, va_start, va_size); 855 856 /* 857 * We don't really need vm log for kernel managed VMs, as the kernel 858 * is responsible for ensuring that GEM objs are mapped if they are 859 * used by a submit. Furthermore we piggyback on mmu_lock to serialize 860 * access to the log. 861 * 862 * Limit the max log_shift to 8 to prevent userspace from asking us 863 * for an unreasonable log size. 864 */ 865 if (!managed) 866 vm->log_shift = MIN(vm_log_shift, 8); 867 868 if (vm->log_shift) { 869 vm->log = kmalloc_array(1 << vm->log_shift, sizeof(vm->log[0]), 870 GFP_KERNEL | __GFP_ZERO); 871 } 872 873 return &vm->base; 874 875 err_free_dummy: 876 drm_gem_object_put(dummy_gem); 877 878 err_free_vm: 879 kfree(vm); 880 return ERR_PTR(ret); 881 } 882 883 /** 884 * msm_gem_vm_close() - Close a VM 885 * @gpuvm: The VM to close 886 * 887 * Called when the drm device file is closed, to tear down VM related resources 888 * (which will drop refcounts to GEM objects that were still mapped into the 889 * VM at the time). 890 */ 891 void 892 msm_gem_vm_close(struct drm_gpuvm *gpuvm) 893 { 894 struct msm_gem_vm *vm = to_msm_vm(gpuvm); 895 struct drm_gpuva *vma, *tmp; 896 struct drm_exec exec; 897 898 /* 899 * For kernel managed VMs, the VMAs are torn down when the handle is 900 * closed, so nothing more to do. 901 */ 902 if (vm->managed) 903 return; 904 905 if (vm->last_fence) 906 dma_fence_wait(vm->last_fence, false); 907 908 /* Kill the scheduler now, so we aren't racing with it for cleanup: */ 909 drm_sched_stop(&vm->sched, NULL); 910 drm_sched_fini(&vm->sched); 911 912 /* Tear down any remaining mappings: */ 913 drm_exec_init(&exec, 0, 2); 914 drm_exec_until_all_locked (&exec) { 915 drm_exec_lock_obj(&exec, drm_gpuvm_resv_obj(gpuvm)); 916 drm_exec_retry_on_contention(&exec); 917 918 drm_gpuvm_for_each_va_safe (vma, tmp, gpuvm) { 919 struct drm_gem_object *obj = vma->gem.obj; 920 921 /* 922 * MSM_BO_NO_SHARE objects share the same resv as the 923 * VM, in which case the obj is already locked: 924 */ 925 if (obj && (obj->resv == drm_gpuvm_resv(gpuvm))) 926 obj = NULL; 927 928 if (obj) { 929 drm_exec_lock_obj(&exec, obj); 930 drm_exec_retry_on_contention(&exec); 931 } 932 933 msm_gem_vma_unmap(vma, "close"); 934 msm_gem_vma_close(vma); 935 936 if (obj) { 937 drm_exec_unlock_obj(&exec, obj); 938 } 939 } 940 } 941 drm_exec_fini(&exec); 942 } 943 944 945 static struct msm_vm_bind_job * 946 vm_bind_job_create(struct drm_device *dev, struct drm_file *file, 947 struct msm_gpu_submitqueue *queue, uint32_t nr_ops) 948 { 949 struct msm_vm_bind_job *job; 950 uint64_t sz; 951 int ret; 952 953 sz = struct_size(job, ops, nr_ops); 954 955 if (sz > SIZE_MAX) 956 return ERR_PTR(-ENOMEM); 957 958 job = kzalloc(sz, GFP_KERNEL | __GFP_NOWARN); 959 if (!job) 960 return ERR_PTR(-ENOMEM); 961 962 ret = drm_sched_job_init(&job->base, queue->entity, 1, queue, 963 file->client_id); 964 if (ret) { 965 kfree(job); 966 return ERR_PTR(ret); 967 } 968 969 job->vm = msm_context_vm(dev, queue->ctx); 970 job->queue = queue; 971 INIT_LIST_HEAD(&job->vm_ops); 972 973 return job; 974 } 975 976 static bool invalid_alignment(uint64_t addr) 977 { 978 /* 979 * Technically this is about GPU alignment, not CPU alignment. But 980 * I've not seen any qcom SoC where the SMMU does not support the 981 * CPU's smallest page size. 982 */ 983 return !PAGE_ALIGNED(addr); 984 } 985 986 static int 987 lookup_op(struct msm_vm_bind_job *job, const struct drm_msm_vm_bind_op *op) 988 { 989 struct drm_device *dev = job->vm->drm; 990 struct msm_drm_private *priv = dev->dev_private; 991 int i = job->nr_ops++; 992 int ret = 0; 993 994 job->ops[i].op = op->op; 995 job->ops[i].handle = op->handle; 996 job->ops[i].obj_offset = op->obj_offset; 997 job->ops[i].iova = op->iova; 998 job->ops[i].range = op->range; 999 job->ops[i].flags = op->flags; 1000 1001 if (op->flags & ~MSM_VM_BIND_OP_FLAGS) 1002 ret = UERR(EINVAL, dev, "invalid flags: %x\n", op->flags); 1003 1004 if (invalid_alignment(op->iova)) 1005 ret = UERR(EINVAL, dev, "invalid address: %016llx\n", op->iova); 1006 1007 if (invalid_alignment(op->obj_offset)) 1008 ret = UERR(EINVAL, dev, "invalid bo_offset: %016llx\n", op->obj_offset); 1009 1010 if (invalid_alignment(op->range)) 1011 ret = UERR(EINVAL, dev, "invalid range: %016llx\n", op->range); 1012 1013 if (!drm_gpuvm_range_valid(job->vm, op->iova, op->range)) 1014 ret = UERR(EINVAL, dev, "invalid range: %016llx, %016llx\n", op->iova, op->range); 1015 1016 /* 1017 * MAP must specify a valid handle. But the handle MBZ for 1018 * UNMAP or MAP_NULL. 1019 */ 1020 if (op->op == MSM_VM_BIND_OP_MAP) { 1021 if (!op->handle) 1022 ret = UERR(EINVAL, dev, "invalid handle\n"); 1023 } else if (op->handle) { 1024 ret = UERR(EINVAL, dev, "handle must be zero\n"); 1025 } 1026 1027 switch (op->op) { 1028 case MSM_VM_BIND_OP_MAP: 1029 case MSM_VM_BIND_OP_MAP_NULL: 1030 case MSM_VM_BIND_OP_UNMAP: 1031 break; 1032 default: 1033 ret = UERR(EINVAL, dev, "invalid op: %u\n", op->op); 1034 break; 1035 } 1036 1037 if ((op->op == MSM_VM_BIND_OP_MAP_NULL) && 1038 !adreno_smmu_has_prr(priv->gpu)) { 1039 ret = UERR(EINVAL, dev, "PRR not supported\n"); 1040 } 1041 1042 return ret; 1043 } 1044 1045 /* 1046 * ioctl parsing, parameter validation, and GEM handle lookup 1047 */ 1048 static int 1049 vm_bind_job_lookup_ops(struct msm_vm_bind_job *job, struct drm_msm_vm_bind *args, 1050 struct drm_file *file, int *nr_bos) 1051 { 1052 struct drm_device *dev = job->vm->drm; 1053 int ret = 0; 1054 int cnt = 0; 1055 int i = -1; 1056 1057 if (args->nr_ops == 1) { 1058 /* Single op case, the op is inlined: */ 1059 ret = lookup_op(job, &args->op); 1060 } else { 1061 for (unsigned i = 0; i < args->nr_ops; i++) { 1062 struct drm_msm_vm_bind_op op; 1063 void __user *userptr = 1064 u64_to_user_ptr(args->ops + (i * sizeof(op))); 1065 1066 /* make sure we don't have garbage flags, in case we hit 1067 * error path before flags is initialized: 1068 */ 1069 job->ops[i].flags = 0; 1070 1071 if (copy_from_user(&op, userptr, sizeof(op))) { 1072 ret = -EFAULT; 1073 break; 1074 } 1075 1076 ret = lookup_op(job, &op); 1077 if (ret) 1078 break; 1079 } 1080 } 1081 1082 if (ret) { 1083 job->nr_ops = 0; 1084 goto out; 1085 } 1086 1087 spin_lock(&file->table_lock); 1088 1089 for (i = 0; i < args->nr_ops; i++) { 1090 struct msm_vm_bind_op *op = &job->ops[i]; 1091 struct drm_gem_object *obj; 1092 1093 if (!op->handle) { 1094 op->obj = NULL; 1095 continue; 1096 } 1097 1098 /* 1099 * normally use drm_gem_object_lookup(), but for bulk lookup 1100 * all under single table_lock just hit object_idr directly: 1101 */ 1102 obj = idr_find(&file->object_idr, op->handle); 1103 if (!obj) { 1104 ret = UERR(EINVAL, dev, "invalid handle %u at index %u\n", op->handle, i); 1105 goto out_unlock; 1106 } 1107 1108 drm_gem_object_get(obj); 1109 1110 op->obj = obj; 1111 cnt++; 1112 1113 if ((op->range + op->obj_offset) > obj->size) { 1114 ret = UERR(EINVAL, dev, "invalid range: %016llx + %016llx > %016zx\n", 1115 op->range, op->obj_offset, obj->size); 1116 goto out_unlock; 1117 } 1118 } 1119 1120 *nr_bos = cnt; 1121 1122 out_unlock: 1123 spin_unlock(&file->table_lock); 1124 1125 if (ret) { 1126 for (; i >= 0; i--) { 1127 struct msm_vm_bind_op *op = &job->ops[i]; 1128 1129 if (!op->obj) 1130 continue; 1131 1132 drm_gem_object_put(op->obj); 1133 op->obj = NULL; 1134 } 1135 } 1136 out: 1137 return ret; 1138 } 1139 1140 static void 1141 prealloc_count(struct msm_vm_bind_job *job, 1142 struct msm_vm_bind_op *first, 1143 struct msm_vm_bind_op *last) 1144 { 1145 struct msm_mmu *mmu = to_msm_vm(job->vm)->mmu; 1146 1147 if (!first) 1148 return; 1149 1150 uint64_t start_iova = first->iova; 1151 uint64_t end_iova = last->iova + last->range; 1152 1153 mmu->funcs->prealloc_count(mmu, &job->prealloc, start_iova, end_iova - start_iova); 1154 } 1155 1156 static bool 1157 ops_are_same_pte(struct msm_vm_bind_op *first, struct msm_vm_bind_op *next) 1158 { 1159 /* 1160 * Last level pte covers 2MB.. so we should merge two ops, from 1161 * the PoV of figuring out how much pgtable pages to pre-allocate 1162 * if they land in the same 2MB range: 1163 */ 1164 uint64_t pte_mask = ~(SZ_2M - 1); 1165 return ((first->iova + first->range) & pte_mask) == (next->iova & pte_mask); 1166 } 1167 1168 /* 1169 * Determine the amount of memory to prealloc for pgtables. For sparse images, 1170 * in particular, userspace plays some tricks with the order of page mappings 1171 * to get the desired swizzle pattern, resulting in a large # of tiny MAP ops. 1172 * So detect when multiple MAP operations are physically contiguous, and count 1173 * them as a single mapping. Otherwise the prealloc_count() will not realize 1174 * they can share pagetable pages and vastly overcount. 1175 */ 1176 static int 1177 vm_bind_prealloc_count(struct msm_vm_bind_job *job) 1178 { 1179 struct msm_vm_bind_op *first = NULL, *last = NULL; 1180 struct msm_gem_vm *vm = to_msm_vm(job->vm); 1181 int ret; 1182 1183 for (int i = 0; i < job->nr_ops; i++) { 1184 struct msm_vm_bind_op *op = &job->ops[i]; 1185 1186 /* We only care about MAP/MAP_NULL: */ 1187 if (op->op == MSM_VM_BIND_OP_UNMAP) 1188 continue; 1189 1190 /* 1191 * If op is contiguous with last in the current range, then 1192 * it becomes the new last in the range and we continue 1193 * looping: 1194 */ 1195 if (last && ops_are_same_pte(last, op)) { 1196 last = op; 1197 continue; 1198 } 1199 1200 /* 1201 * If op is not contiguous with the current range, flush 1202 * the current range and start anew: 1203 */ 1204 prealloc_count(job, first, last); 1205 first = last = op; 1206 } 1207 1208 /* Flush the remaining range: */ 1209 prealloc_count(job, first, last); 1210 1211 /* 1212 * Now that we know the needed amount to pre-alloc, throttle on pending 1213 * VM_BIND jobs if we already have too much pre-alloc memory in flight 1214 */ 1215 ret = wait_event_interruptible( 1216 vm->prealloc_throttle.wait, 1217 atomic_read(&vm->prealloc_throttle.in_flight) <= 1024); 1218 if (ret) 1219 return ret; 1220 1221 atomic_add(job->prealloc.count, &vm->prealloc_throttle.in_flight); 1222 1223 return 0; 1224 } 1225 1226 /* 1227 * Lock VM and GEM objects 1228 */ 1229 static int 1230 vm_bind_job_lock_objects(struct msm_vm_bind_job *job, struct drm_exec *exec) 1231 { 1232 int ret; 1233 1234 /* Lock VM and objects: */ 1235 drm_exec_until_all_locked (exec) { 1236 ret = drm_exec_lock_obj(exec, drm_gpuvm_resv_obj(job->vm)); 1237 drm_exec_retry_on_contention(exec); 1238 if (ret) 1239 return ret; 1240 1241 for (unsigned i = 0; i < job->nr_ops; i++) { 1242 const struct msm_vm_bind_op *op = &job->ops[i]; 1243 1244 switch (op->op) { 1245 case MSM_VM_BIND_OP_UNMAP: 1246 ret = drm_gpuvm_sm_unmap_exec_lock(job->vm, exec, 1247 op->iova, 1248 op->obj_offset); 1249 break; 1250 case MSM_VM_BIND_OP_MAP: 1251 case MSM_VM_BIND_OP_MAP_NULL: { 1252 struct drm_gpuvm_map_req map_req = { 1253 .map.va.addr = op->iova, 1254 .map.va.range = op->range, 1255 .map.gem.obj = op->obj, 1256 .map.gem.offset = op->obj_offset, 1257 }; 1258 1259 ret = drm_gpuvm_sm_map_exec_lock(job->vm, exec, 1, &map_req); 1260 break; 1261 } 1262 default: 1263 /* 1264 * lookup_op() should have already thrown an error for 1265 * invalid ops 1266 */ 1267 WARN_ON("unreachable"); 1268 } 1269 1270 drm_exec_retry_on_contention(exec); 1271 if (ret) 1272 return ret; 1273 } 1274 } 1275 1276 return 0; 1277 } 1278 1279 /* 1280 * Pin GEM objects, ensuring that we have backing pages. Pinning will move 1281 * the object to the pinned LRU so that the shrinker knows to first consider 1282 * other objects for evicting. 1283 */ 1284 static int 1285 vm_bind_job_pin_objects(struct msm_vm_bind_job *job) 1286 { 1287 struct drm_gem_object *obj; 1288 1289 /* 1290 * First loop, before holding the LRU lock, avoids holding the 1291 * LRU lock while calling msm_gem_pin_vma_locked (which could 1292 * trigger get_pages()) 1293 */ 1294 job_foreach_bo (obj, job) { 1295 struct page **pages; 1296 1297 pages = msm_gem_get_pages_locked(obj, MSM_MADV_WILLNEED); 1298 if (IS_ERR(pages)) 1299 return PTR_ERR(pages); 1300 } 1301 1302 struct msm_drm_private *priv = job->vm->drm->dev_private; 1303 1304 /* 1305 * A second loop while holding the LRU lock (a) avoids acquiring/dropping 1306 * the LRU lock for each individual bo, while (b) avoiding holding the 1307 * LRU lock while calling msm_gem_pin_vma_locked() (which could trigger 1308 * get_pages() which could trigger reclaim.. and if we held the LRU lock 1309 * could trigger deadlock with the shrinker). 1310 */ 1311 mutex_lock(&priv->lru.lock); 1312 job_foreach_bo (obj, job) 1313 msm_gem_pin_obj_locked(obj); 1314 mutex_unlock(&priv->lru.lock); 1315 1316 job->bos_pinned = true; 1317 1318 return 0; 1319 } 1320 1321 /* 1322 * Unpin GEM objects. Normally this is done after the bind job is run. 1323 */ 1324 static void 1325 vm_bind_job_unpin_objects(struct msm_vm_bind_job *job) 1326 { 1327 struct drm_gem_object *obj; 1328 1329 if (!job->bos_pinned) 1330 return; 1331 1332 job_foreach_bo (obj, job) 1333 msm_gem_unpin_locked(obj); 1334 1335 job->bos_pinned = false; 1336 } 1337 1338 /* 1339 * Pre-allocate pgtable memory, and translate the VM bind requests into a 1340 * sequence of pgtable updates to be applied asynchronously. 1341 */ 1342 static int 1343 vm_bind_job_prepare(struct msm_vm_bind_job *job) 1344 { 1345 struct msm_gem_vm *vm = to_msm_vm(job->vm); 1346 struct msm_mmu *mmu = vm->mmu; 1347 int ret; 1348 1349 ret = mmu->funcs->prealloc_allocate(mmu, &job->prealloc); 1350 if (ret) 1351 return ret; 1352 1353 for (unsigned i = 0; i < job->nr_ops; i++) { 1354 const struct msm_vm_bind_op *op = &job->ops[i]; 1355 struct op_arg arg = { 1356 .job = job, 1357 .op = op, 1358 }; 1359 1360 switch (op->op) { 1361 case MSM_VM_BIND_OP_UNMAP: 1362 ret = drm_gpuvm_sm_unmap(job->vm, &arg, op->iova, 1363 op->range); 1364 break; 1365 case MSM_VM_BIND_OP_MAP: 1366 if (op->flags & MSM_VM_BIND_OP_DUMP) 1367 arg.flags |= MSM_VMA_DUMP; 1368 fallthrough; 1369 case MSM_VM_BIND_OP_MAP_NULL: { 1370 struct drm_gpuvm_map_req map_req = { 1371 .map.va.addr = op->iova, 1372 .map.va.range = op->range, 1373 .map.gem.obj = op->obj, 1374 .map.gem.offset = op->obj_offset, 1375 }; 1376 1377 ret = drm_gpuvm_sm_map(job->vm, &arg, &map_req); 1378 break; 1379 } 1380 default: 1381 /* 1382 * lookup_op() should have already thrown an error for 1383 * invalid ops 1384 */ 1385 BUG_ON("unreachable"); 1386 } 1387 1388 if (ret) { 1389 /* 1390 * If we've already started modifying the vm, we can't 1391 * adequetly describe to userspace the intermediate 1392 * state the vm is in. So throw up our hands! 1393 */ 1394 if (i > 0) 1395 msm_gem_vm_unusable(job->vm); 1396 return ret; 1397 } 1398 } 1399 1400 return 0; 1401 } 1402 1403 /* 1404 * Attach fences to the GEM objects being bound. This will signify to 1405 * the shrinker that they are busy even after dropping the locks (ie. 1406 * drm_exec_fini()) 1407 */ 1408 static void 1409 vm_bind_job_attach_fences(struct msm_vm_bind_job *job) 1410 { 1411 for (unsigned i = 0; i < job->nr_ops; i++) { 1412 struct drm_gem_object *obj = job->ops[i].obj; 1413 1414 if (!obj) 1415 continue; 1416 1417 dma_resv_add_fence(obj->resv, job->fence, 1418 DMA_RESV_USAGE_KERNEL); 1419 } 1420 } 1421 1422 int 1423 msm_ioctl_vm_bind(struct drm_device *dev, void *data, struct drm_file *file) 1424 { 1425 struct msm_drm_private *priv = dev->dev_private; 1426 struct drm_msm_vm_bind *args = data; 1427 struct msm_context *ctx = file->driver_priv; 1428 struct msm_vm_bind_job *job = NULL; 1429 struct msm_gpu *gpu = priv->gpu; 1430 struct msm_gpu_submitqueue *queue; 1431 struct msm_syncobj_post_dep *post_deps = NULL; 1432 struct drm_syncobj **syncobjs_to_reset = NULL; 1433 struct sync_file *sync_file = NULL; 1434 struct dma_fence *fence; 1435 int out_fence_fd = -1; 1436 int ret, nr_bos = 0; 1437 unsigned i; 1438 1439 if (!gpu) 1440 return -ENXIO; 1441 1442 /* 1443 * Maybe we could allow just UNMAP ops? OTOH userspace should just 1444 * immediately close the device file and all will be torn down. 1445 */ 1446 if (to_msm_vm(msm_context_vm(dev, ctx))->unusable) 1447 return UERR(EPIPE, dev, "context is unusable"); 1448 1449 /* 1450 * Technically, you cannot create a VM_BIND submitqueue in the first 1451 * place, if you haven't opted in to VM_BIND context. But it is 1452 * cleaner / less confusing, to check this case directly. 1453 */ 1454 if (!msm_context_is_vmbind(ctx)) 1455 return UERR(EINVAL, dev, "context does not support vmbind"); 1456 1457 if (args->flags & ~MSM_VM_BIND_FLAGS) 1458 return UERR(EINVAL, dev, "invalid flags"); 1459 1460 queue = msm_submitqueue_get(ctx, args->queue_id); 1461 if (!queue) 1462 return -ENOENT; 1463 1464 if (!(queue->flags & MSM_SUBMITQUEUE_VM_BIND)) { 1465 ret = UERR(EINVAL, dev, "Invalid queue type"); 1466 goto out_post_unlock; 1467 } 1468 1469 if (args->flags & MSM_VM_BIND_FENCE_FD_OUT) { 1470 out_fence_fd = get_unused_fd_flags(O_CLOEXEC); 1471 if (out_fence_fd < 0) { 1472 ret = out_fence_fd; 1473 goto out_post_unlock; 1474 } 1475 } 1476 1477 job = vm_bind_job_create(dev, file, queue, args->nr_ops); 1478 if (IS_ERR(job)) { 1479 ret = PTR_ERR(job); 1480 goto out_post_unlock; 1481 } 1482 1483 ret = mutex_lock_interruptible(&queue->lock); 1484 if (ret) 1485 goto out_post_unlock; 1486 1487 if (args->flags & MSM_VM_BIND_FENCE_FD_IN) { 1488 struct dma_fence *in_fence; 1489 1490 in_fence = sync_file_get_fence(args->fence_fd); 1491 1492 if (!in_fence) { 1493 ret = UERR(EINVAL, dev, "invalid in-fence"); 1494 goto out_unlock; 1495 } 1496 1497 ret = drm_sched_job_add_dependency(&job->base, in_fence); 1498 if (ret) 1499 goto out_unlock; 1500 } 1501 1502 if (args->in_syncobjs > 0) { 1503 syncobjs_to_reset = msm_syncobj_parse_deps(dev, &job->base, 1504 file, args->in_syncobjs, 1505 args->nr_in_syncobjs, 1506 args->syncobj_stride); 1507 if (IS_ERR(syncobjs_to_reset)) { 1508 ret = PTR_ERR(syncobjs_to_reset); 1509 goto out_unlock; 1510 } 1511 } 1512 1513 if (args->out_syncobjs > 0) { 1514 post_deps = msm_syncobj_parse_post_deps(dev, file, 1515 args->out_syncobjs, 1516 args->nr_out_syncobjs, 1517 args->syncobj_stride); 1518 if (IS_ERR(post_deps)) { 1519 ret = PTR_ERR(post_deps); 1520 goto out_unlock; 1521 } 1522 } 1523 1524 ret = vm_bind_job_lookup_ops(job, args, file, &nr_bos); 1525 if (ret) 1526 goto out_unlock; 1527 1528 ret = vm_bind_prealloc_count(job); 1529 if (ret) 1530 goto out_unlock; 1531 1532 struct drm_exec exec; 1533 unsigned flags = DRM_EXEC_IGNORE_DUPLICATES | DRM_EXEC_INTERRUPTIBLE_WAIT; 1534 drm_exec_init(&exec, flags, nr_bos + 1); 1535 1536 ret = vm_bind_job_lock_objects(job, &exec); 1537 if (ret) 1538 goto out; 1539 1540 ret = vm_bind_job_pin_objects(job); 1541 if (ret) 1542 goto out; 1543 1544 ret = vm_bind_job_prepare(job); 1545 if (ret) 1546 goto out; 1547 1548 drm_sched_job_arm(&job->base); 1549 1550 job->fence = dma_fence_get(&job->base.s_fence->finished); 1551 1552 if (args->flags & MSM_VM_BIND_FENCE_FD_OUT) { 1553 sync_file = sync_file_create(job->fence); 1554 if (!sync_file) 1555 ret = -ENOMEM; 1556 } 1557 1558 if (ret) 1559 goto out; 1560 1561 vm_bind_job_attach_fences(job); 1562 1563 /* 1564 * The job can be free'd (and fence unref'd) at any point after 1565 * drm_sched_entity_push_job(), so we need to hold our own ref 1566 */ 1567 fence = dma_fence_get(job->fence); 1568 1569 drm_sched_entity_push_job(&job->base); 1570 1571 msm_syncobj_reset(syncobjs_to_reset, args->nr_in_syncobjs); 1572 msm_syncobj_process_post_deps(post_deps, args->nr_out_syncobjs, fence); 1573 1574 dma_fence_put(fence); 1575 1576 out: 1577 if (ret) 1578 vm_bind_job_unpin_objects(job); 1579 1580 drm_exec_fini(&exec); 1581 out_unlock: 1582 mutex_unlock(&queue->lock); 1583 out_post_unlock: 1584 if (ret) { 1585 if (out_fence_fd >= 0) 1586 put_unused_fd(out_fence_fd); 1587 if (sync_file) 1588 fput(sync_file->file); 1589 } else if (sync_file) { 1590 fd_install(out_fence_fd, sync_file->file); 1591 args->fence_fd = out_fence_fd; 1592 } 1593 1594 if (!IS_ERR_OR_NULL(job)) { 1595 if (ret) 1596 msm_vma_job_free(&job->base); 1597 } else { 1598 /* 1599 * If the submit hasn't yet taken ownership of the queue 1600 * then we need to drop the reference ourself: 1601 */ 1602 msm_submitqueue_put(queue); 1603 } 1604 1605 if (!IS_ERR_OR_NULL(post_deps)) { 1606 for (i = 0; i < args->nr_out_syncobjs; ++i) { 1607 kfree(post_deps[i].chain); 1608 drm_syncobj_put(post_deps[i].syncobj); 1609 } 1610 kfree(post_deps); 1611 } 1612 1613 if (!IS_ERR_OR_NULL(syncobjs_to_reset)) { 1614 for (i = 0; i < args->nr_in_syncobjs; ++i) { 1615 if (syncobjs_to_reset[i]) 1616 drm_syncobj_put(syncobjs_to_reset[i]); 1617 } 1618 kfree(syncobjs_to_reset); 1619 } 1620 1621 return ret; 1622 } 1623