1 /* 2 * Copyright 2017 Red Hat 3 * Parts ported from amdgpu (fence wait code). 4 * Copyright 2016 Advanced Micro Devices, Inc. 5 * 6 * Permission is hereby granted, free of charge, to any person obtaining a 7 * copy of this software and associated documentation files (the "Software"), 8 * to deal in the Software without restriction, including without limitation 9 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 10 * and/or sell copies of the Software, and to permit persons to whom the 11 * Software is furnished to do so, subject to the following conditions: 12 * 13 * The above copyright notice and this permission notice (including the next 14 * paragraph) shall be included in all copies or substantial portions of the 15 * Software. 16 * 17 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 18 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 19 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 20 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER 21 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING 22 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS 23 * IN THE SOFTWARE. 24 * 25 * Authors: 26 * 27 */ 28 29 /** 30 * DOC: Overview 31 * 32 * DRM synchronisation objects (syncobj, see struct &drm_syncobj) provide a 33 * container for a synchronization primitive which can be used by userspace 34 * to explicitly synchronize GPU commands, can be shared between userspace 35 * processes, and can be shared between different DRM drivers. 36 * Their primary use-case is to implement Vulkan fences and semaphores. 37 * The syncobj userspace API provides ioctls for several operations: 38 * 39 * - Creation and destruction of syncobjs 40 * - Import and export of syncobjs to/from a syncobj file descriptor 41 * - Import and export a syncobj's underlying fence to/from a sync file 42 * - Reset a syncobj (set its fence to NULL) 43 * - Signal a syncobj (set a trivially signaled fence) 44 * - Wait for a syncobj's fence to appear and be signaled 45 * 46 * The syncobj userspace API also provides operations to manipulate a syncobj 47 * in terms of a timeline of struct &dma_fence_chain rather than a single 48 * struct &dma_fence, through the following operations: 49 * 50 * - Signal a given point on the timeline 51 * - Wait for a given point to appear and/or be signaled 52 * - Import and export from/to a given point of a timeline 53 * 54 * At it's core, a syncobj is simply a wrapper around a pointer to a struct 55 * &dma_fence which may be NULL. 56 * When a syncobj is first created, its pointer is either NULL or a pointer 57 * to an already signaled fence depending on whether the 58 * &DRM_SYNCOBJ_CREATE_SIGNALED flag is passed to 59 * &DRM_IOCTL_SYNCOBJ_CREATE. 60 * 61 * If the syncobj is considered as a binary (its state is either signaled or 62 * unsignaled) primitive, when GPU work is enqueued in a DRM driver to signal 63 * the syncobj, the syncobj's fence is replaced with a fence which will be 64 * signaled by the completion of that work. 65 * If the syncobj is considered as a timeline primitive, when GPU work is 66 * enqueued in a DRM driver to signal the a given point of the syncobj, a new 67 * struct &dma_fence_chain pointing to the DRM driver's fence and also 68 * pointing to the previous fence that was in the syncobj. The new struct 69 * &dma_fence_chain fence replace the syncobj's fence and will be signaled by 70 * completion of the DRM driver's work and also any work associated with the 71 * fence previously in the syncobj. 72 * 73 * When GPU work which waits on a syncobj is enqueued in a DRM driver, at the 74 * time the work is enqueued, it waits on the syncobj's fence before 75 * submitting the work to hardware. That fence is either : 76 * 77 * - The syncobj's current fence if the syncobj is considered as a binary 78 * primitive. 79 * - The struct &dma_fence associated with a given point if the syncobj is 80 * considered as a timeline primitive. 81 * 82 * If the syncobj's fence is NULL or not present in the syncobj's timeline, 83 * the enqueue operation is expected to fail. 84 * 85 * With binary syncobj, all manipulation of the syncobjs's fence happens in 86 * terms of the current fence at the time the ioctl is called by userspace 87 * regardless of whether that operation is an immediate host-side operation 88 * (signal or reset) or or an operation which is enqueued in some driver 89 * queue. &DRM_IOCTL_SYNCOBJ_RESET and &DRM_IOCTL_SYNCOBJ_SIGNAL can be used 90 * to manipulate a syncobj from the host by resetting its pointer to NULL or 91 * setting its pointer to a fence which is already signaled. 92 * 93 * With a timeline syncobj, all manipulation of the synobj's fence happens in 94 * terms of a u64 value referring to point in the timeline. See 95 * dma_fence_chain_find_seqno() to see how a given point is found in the 96 * timeline. 97 * 98 * Note that applications should be careful to always use timeline set of 99 * ioctl() when dealing with syncobj considered as timeline. Using a binary 100 * set of ioctl() with a syncobj considered as timeline could result incorrect 101 * synchronization. The use of binary syncobj is supported through the 102 * timeline set of ioctl() by using a point value of 0, this will reproduce 103 * the behavior of the binary set of ioctl() (for example replace the 104 * syncobj's fence when signaling). 105 * 106 * 107 * Host-side wait on syncobjs 108 * -------------------------- 109 * 110 * &DRM_IOCTL_SYNCOBJ_WAIT takes an array of syncobj handles and does a 111 * host-side wait on all of the syncobj fences simultaneously. 112 * If &DRM_SYNCOBJ_WAIT_FLAGS_WAIT_ALL is set, the wait ioctl will wait on 113 * all of the syncobj fences to be signaled before it returns. 114 * Otherwise, it returns once at least one syncobj fence has been signaled 115 * and the index of a signaled fence is written back to the client. 116 * 117 * Unlike the enqueued GPU work dependencies which fail if they see a NULL 118 * fence in a syncobj, if &DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT is set, 119 * the host-side wait will first wait for the syncobj to receive a non-NULL 120 * fence and then wait on that fence. 121 * If &DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT is not set and any one of the 122 * syncobjs in the array has a NULL fence, -EINVAL will be returned. 123 * Assuming the syncobj starts off with a NULL fence, this allows a client 124 * to do a host wait in one thread (or process) which waits on GPU work 125 * submitted in another thread (or process) without having to manually 126 * synchronize between the two. 127 * This requirement is inherited from the Vulkan fence API. 128 * 129 * Similarly, &DRM_IOCTL_SYNCOBJ_TIMELINE_WAIT takes an array of syncobj 130 * handles as well as an array of u64 points and does a host-side wait on all 131 * of syncobj fences at the given points simultaneously. 132 * 133 * &DRM_IOCTL_SYNCOBJ_TIMELINE_WAIT also adds the ability to wait for a given 134 * fence to materialize on the timeline without waiting for the fence to be 135 * signaled by using the &DRM_SYNCOBJ_WAIT_FLAGS_WAIT_AVAILABLE flag. This 136 * requirement is inherited from the wait-before-signal behavior required by 137 * the Vulkan timeline semaphore API. 138 * 139 * 140 * Import/export of syncobjs 141 * ------------------------- 142 * 143 * &DRM_IOCTL_SYNCOBJ_FD_TO_HANDLE and &DRM_IOCTL_SYNCOBJ_HANDLE_TO_FD 144 * provide two mechanisms for import/export of syncobjs. 145 * 146 * The first lets the client import or export an entire syncobj to a file 147 * descriptor. 148 * These fd's are opaque and have no other use case, except passing the 149 * syncobj between processes. 150 * All exported file descriptors and any syncobj handles created as a 151 * result of importing those file descriptors own a reference to the 152 * same underlying struct &drm_syncobj and the syncobj can be used 153 * persistently across all the processes with which it is shared. 154 * The syncobj is freed only once the last reference is dropped. 155 * Unlike dma-buf, importing a syncobj creates a new handle (with its own 156 * reference) for every import instead of de-duplicating. 157 * The primary use-case of this persistent import/export is for shared 158 * Vulkan fences and semaphores. 159 * 160 * The second import/export mechanism, which is indicated by 161 * &DRM_SYNCOBJ_FD_TO_HANDLE_FLAGS_IMPORT_SYNC_FILE or 162 * &DRM_SYNCOBJ_HANDLE_TO_FD_FLAGS_EXPORT_SYNC_FILE lets the client 163 * import/export the syncobj's current fence from/to a &sync_file. 164 * When a syncobj is exported to a sync file, that sync file wraps the 165 * sycnobj's fence at the time of export and any later signal or reset 166 * operations on the syncobj will not affect the exported sync file. 167 * When a sync file is imported into a syncobj, the syncobj's fence is set 168 * to the fence wrapped by that sync file. 169 * Because sync files are immutable, resetting or signaling the syncobj 170 * will not affect any sync files whose fences have been imported into the 171 * syncobj. 172 * 173 * 174 * Import/export of timeline points in timeline syncobjs 175 * ----------------------------------------------------- 176 * 177 * &DRM_IOCTL_SYNCOBJ_TRANSFER provides a mechanism to transfer a struct 178 * &dma_fence_chain of a syncobj at a given u64 point to another u64 point 179 * into another syncobj. 180 * 181 * Note that if you want to transfer a struct &dma_fence_chain from a given 182 * point on a timeline syncobj from/into a binary syncobj, you can use the 183 * point 0 to mean take/replace the fence in the syncobj. 184 */ 185 186 #include <linux/anon_inodes.h> 187 #include <linux/file.h> 188 #include <linux/fs.h> 189 #include <linux/sched/signal.h> 190 #include <linux/sync_file.h> 191 #include <linux/uaccess.h> 192 193 #include <drm/drm.h> 194 #include <drm/drm_drv.h> 195 #include <drm/drm_file.h> 196 #include <drm/drm_gem.h> 197 #include <drm/drm_print.h> 198 #include <drm/drm_syncobj.h> 199 #include <drm/drm_utils.h> 200 201 #include "drm_internal.h" 202 203 struct syncobj_wait_entry { 204 struct list_head node; 205 #ifdef __linux__ 206 struct task_struct *task; 207 #else 208 struct proc *task; 209 #endif 210 struct dma_fence *fence; 211 struct dma_fence_cb fence_cb; 212 u64 point; 213 }; 214 215 static void syncobj_wait_syncobj_func(struct drm_syncobj *syncobj, 216 struct syncobj_wait_entry *wait); 217 218 /** 219 * drm_syncobj_find - lookup and reference a sync object. 220 * @file_private: drm file private pointer 221 * @handle: sync object handle to lookup. 222 * 223 * Returns a reference to the syncobj pointed to by handle or NULL. The 224 * reference must be released by calling drm_syncobj_put(). 225 */ 226 struct drm_syncobj *drm_syncobj_find(struct drm_file *file_private, 227 u32 handle) 228 { 229 struct drm_syncobj *syncobj; 230 231 spin_lock(&file_private->syncobj_table_lock); 232 233 /* Check if we currently have a reference on the object */ 234 syncobj = idr_find(&file_private->syncobj_idr, handle); 235 if (syncobj) 236 drm_syncobj_get(syncobj); 237 238 spin_unlock(&file_private->syncobj_table_lock); 239 240 return syncobj; 241 } 242 EXPORT_SYMBOL(drm_syncobj_find); 243 244 static void drm_syncobj_fence_add_wait(struct drm_syncobj *syncobj, 245 struct syncobj_wait_entry *wait) 246 { 247 struct dma_fence *fence; 248 249 if (wait->fence) 250 return; 251 252 spin_lock(&syncobj->lock); 253 /* We've already tried once to get a fence and failed. Now that we 254 * have the lock, try one more time just to be sure we don't add a 255 * callback when a fence has already been set. 256 */ 257 fence = dma_fence_get(rcu_dereference_protected(syncobj->fence, 1)); 258 if (!fence || dma_fence_chain_find_seqno(&fence, wait->point)) { 259 dma_fence_put(fence); 260 list_add_tail(&wait->node, &syncobj->cb_list); 261 } else if (!fence) { 262 wait->fence = dma_fence_get_stub(); 263 } else { 264 wait->fence = fence; 265 } 266 spin_unlock(&syncobj->lock); 267 } 268 269 static void drm_syncobj_remove_wait(struct drm_syncobj *syncobj, 270 struct syncobj_wait_entry *wait) 271 { 272 if (!wait->node.next) 273 return; 274 275 spin_lock(&syncobj->lock); 276 list_del_init(&wait->node); 277 spin_unlock(&syncobj->lock); 278 } 279 280 /** 281 * drm_syncobj_add_point - add new timeline point to the syncobj 282 * @syncobj: sync object to add timeline point do 283 * @chain: chain node to use to add the point 284 * @fence: fence to encapsulate in the chain node 285 * @point: sequence number to use for the point 286 * 287 * Add the chain node as new timeline point to the syncobj. 288 */ 289 void drm_syncobj_add_point(struct drm_syncobj *syncobj, 290 struct dma_fence_chain *chain, 291 struct dma_fence *fence, 292 uint64_t point) 293 { 294 struct syncobj_wait_entry *cur, *tmp; 295 struct dma_fence *prev; 296 297 dma_fence_get(fence); 298 299 spin_lock(&syncobj->lock); 300 301 prev = drm_syncobj_fence_get(syncobj); 302 /* You are adding an unorder point to timeline, which could cause payload returned from query_ioctl is 0! */ 303 if (prev && prev->seqno >= point) 304 DRM_DEBUG("You are adding an unorder point to timeline!\n"); 305 dma_fence_chain_init(chain, prev, fence, point); 306 rcu_assign_pointer(syncobj->fence, &chain->base); 307 308 list_for_each_entry_safe(cur, tmp, &syncobj->cb_list, node) 309 syncobj_wait_syncobj_func(syncobj, cur); 310 spin_unlock(&syncobj->lock); 311 312 /* Walk the chain once to trigger garbage collection */ 313 dma_fence_chain_for_each(fence, prev); 314 dma_fence_put(prev); 315 } 316 EXPORT_SYMBOL(drm_syncobj_add_point); 317 318 /** 319 * drm_syncobj_replace_fence - replace fence in a sync object. 320 * @syncobj: Sync object to replace fence in 321 * @fence: fence to install in sync file. 322 * 323 * This replaces the fence on a sync object. 324 */ 325 void drm_syncobj_replace_fence(struct drm_syncobj *syncobj, 326 struct dma_fence *fence) 327 { 328 struct dma_fence *old_fence; 329 struct syncobj_wait_entry *cur, *tmp; 330 331 if (fence) 332 dma_fence_get(fence); 333 334 spin_lock(&syncobj->lock); 335 336 old_fence = rcu_dereference_protected(syncobj->fence, 337 lockdep_is_held(&syncobj->lock)); 338 rcu_assign_pointer(syncobj->fence, fence); 339 340 if (fence != old_fence) { 341 list_for_each_entry_safe(cur, tmp, &syncobj->cb_list, node) 342 syncobj_wait_syncobj_func(syncobj, cur); 343 } 344 345 spin_unlock(&syncobj->lock); 346 347 dma_fence_put(old_fence); 348 } 349 EXPORT_SYMBOL(drm_syncobj_replace_fence); 350 351 /** 352 * drm_syncobj_assign_null_handle - assign a stub fence to the sync object 353 * @syncobj: sync object to assign the fence on 354 * 355 * Assign a already signaled stub fence to the sync object. 356 */ 357 static void drm_syncobj_assign_null_handle(struct drm_syncobj *syncobj) 358 { 359 struct dma_fence *fence = dma_fence_get_stub(); 360 361 drm_syncobj_replace_fence(syncobj, fence); 362 dma_fence_put(fence); 363 } 364 365 /* 5s default for wait submission */ 366 #define DRM_SYNCOBJ_WAIT_FOR_SUBMIT_TIMEOUT 5000000000ULL 367 /** 368 * drm_syncobj_find_fence - lookup and reference the fence in a sync object 369 * @file_private: drm file private pointer 370 * @handle: sync object handle to lookup. 371 * @point: timeline point 372 * @flags: DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT or not 373 * @fence: out parameter for the fence 374 * 375 * This is just a convenience function that combines drm_syncobj_find() and 376 * drm_syncobj_fence_get(). 377 * 378 * Returns 0 on success or a negative error value on failure. On success @fence 379 * contains a reference to the fence, which must be released by calling 380 * dma_fence_put(). 381 */ 382 int drm_syncobj_find_fence(struct drm_file *file_private, 383 u32 handle, u64 point, u64 flags, 384 struct dma_fence **fence) 385 { 386 struct drm_syncobj *syncobj = drm_syncobj_find(file_private, handle); 387 struct syncobj_wait_entry wait; 388 u64 timeout = nsecs_to_jiffies64(DRM_SYNCOBJ_WAIT_FOR_SUBMIT_TIMEOUT); 389 int ret; 390 391 if (!syncobj) 392 return -ENOENT; 393 394 *fence = drm_syncobj_fence_get(syncobj); 395 396 if (*fence) { 397 ret = dma_fence_chain_find_seqno(fence, point); 398 if (!ret) 399 goto out; 400 dma_fence_put(*fence); 401 } else { 402 ret = -EINVAL; 403 } 404 405 if (!(flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT)) 406 goto out; 407 408 memset(&wait, 0, sizeof(wait)); 409 #ifdef __linux__ 410 wait.task = current; 411 #else 412 wait.task = curproc; 413 #endif 414 wait.point = point; 415 drm_syncobj_fence_add_wait(syncobj, &wait); 416 417 do { 418 set_current_state(TASK_INTERRUPTIBLE); 419 if (wait.fence) { 420 ret = 0; 421 break; 422 } 423 if (timeout == 0) { 424 ret = -ETIME; 425 break; 426 } 427 428 if (signal_pending(current)) { 429 ret = -ERESTARTSYS; 430 break; 431 } 432 433 timeout = schedule_timeout(timeout); 434 } while (1); 435 436 __set_current_state(TASK_RUNNING); 437 *fence = wait.fence; 438 439 if (wait.node.next) 440 drm_syncobj_remove_wait(syncobj, &wait); 441 442 out: 443 drm_syncobj_put(syncobj); 444 445 return ret; 446 } 447 EXPORT_SYMBOL(drm_syncobj_find_fence); 448 449 /** 450 * drm_syncobj_free - free a sync object. 451 * @kref: kref to free. 452 * 453 * Only to be called from kref_put in drm_syncobj_put. 454 */ 455 void drm_syncobj_free(struct kref *kref) 456 { 457 struct drm_syncobj *syncobj = container_of(kref, 458 struct drm_syncobj, 459 refcount); 460 drm_syncobj_replace_fence(syncobj, NULL); 461 kfree(syncobj); 462 } 463 EXPORT_SYMBOL(drm_syncobj_free); 464 465 /** 466 * drm_syncobj_create - create a new syncobj 467 * @out_syncobj: returned syncobj 468 * @flags: DRM_SYNCOBJ_* flags 469 * @fence: if non-NULL, the syncobj will represent this fence 470 * 471 * This is the first function to create a sync object. After creating, drivers 472 * probably want to make it available to userspace, either through 473 * drm_syncobj_get_handle() or drm_syncobj_get_fd(). 474 * 475 * Returns 0 on success or a negative error value on failure. 476 */ 477 int drm_syncobj_create(struct drm_syncobj **out_syncobj, uint32_t flags, 478 struct dma_fence *fence) 479 { 480 struct drm_syncobj *syncobj; 481 482 syncobj = kzalloc(sizeof(struct drm_syncobj), GFP_KERNEL); 483 if (!syncobj) 484 return -ENOMEM; 485 486 kref_init(&syncobj->refcount); 487 INIT_LIST_HEAD(&syncobj->cb_list); 488 mtx_init(&syncobj->lock, IPL_NONE); 489 490 if (flags & DRM_SYNCOBJ_CREATE_SIGNALED) 491 drm_syncobj_assign_null_handle(syncobj); 492 493 if (fence) 494 drm_syncobj_replace_fence(syncobj, fence); 495 496 *out_syncobj = syncobj; 497 return 0; 498 } 499 EXPORT_SYMBOL(drm_syncobj_create); 500 501 /** 502 * drm_syncobj_get_handle - get a handle from a syncobj 503 * @file_private: drm file private pointer 504 * @syncobj: Sync object to export 505 * @handle: out parameter with the new handle 506 * 507 * Exports a sync object created with drm_syncobj_create() as a handle on 508 * @file_private to userspace. 509 * 510 * Returns 0 on success or a negative error value on failure. 511 */ 512 int drm_syncobj_get_handle(struct drm_file *file_private, 513 struct drm_syncobj *syncobj, u32 *handle) 514 { 515 int ret; 516 517 /* take a reference to put in the idr */ 518 drm_syncobj_get(syncobj); 519 520 idr_preload(GFP_KERNEL); 521 spin_lock(&file_private->syncobj_table_lock); 522 ret = idr_alloc(&file_private->syncobj_idr, syncobj, 1, 0, GFP_NOWAIT); 523 spin_unlock(&file_private->syncobj_table_lock); 524 525 idr_preload_end(); 526 527 if (ret < 0) { 528 drm_syncobj_put(syncobj); 529 return ret; 530 } 531 532 *handle = ret; 533 return 0; 534 } 535 EXPORT_SYMBOL(drm_syncobj_get_handle); 536 537 static int drm_syncobj_create_as_handle(struct drm_file *file_private, 538 u32 *handle, uint32_t flags) 539 { 540 int ret; 541 struct drm_syncobj *syncobj; 542 543 ret = drm_syncobj_create(&syncobj, flags, NULL); 544 if (ret) 545 return ret; 546 547 ret = drm_syncobj_get_handle(file_private, syncobj, handle); 548 drm_syncobj_put(syncobj); 549 return ret; 550 } 551 552 static int drm_syncobj_destroy(struct drm_file *file_private, 553 u32 handle) 554 { 555 struct drm_syncobj *syncobj; 556 557 spin_lock(&file_private->syncobj_table_lock); 558 syncobj = idr_remove(&file_private->syncobj_idr, handle); 559 spin_unlock(&file_private->syncobj_table_lock); 560 561 if (!syncobj) 562 return -EINVAL; 563 564 drm_syncobj_put(syncobj); 565 return 0; 566 } 567 568 #ifdef notyet 569 static int drm_syncobj_file_release(struct inode *inode, struct file *file) 570 { 571 struct drm_syncobj *syncobj = file->private_data; 572 573 drm_syncobj_put(syncobj); 574 return 0; 575 } 576 577 static const struct file_operations drm_syncobj_file_fops = { 578 .release = drm_syncobj_file_release, 579 }; 580 #endif 581 582 /** 583 * drm_syncobj_get_fd - get a file descriptor from a syncobj 584 * @syncobj: Sync object to export 585 * @p_fd: out parameter with the new file descriptor 586 * 587 * Exports a sync object created with drm_syncobj_create() as a file descriptor. 588 * 589 * Returns 0 on success or a negative error value on failure. 590 */ 591 int drm_syncobj_get_fd(struct drm_syncobj *syncobj, int *p_fd) 592 { 593 STUB(); 594 return -ENOSYS; 595 #ifdef notyet 596 struct file *file; 597 int fd; 598 599 fd = get_unused_fd_flags(O_CLOEXEC); 600 if (fd < 0) 601 return fd; 602 603 file = anon_inode_getfile("syncobj_file", 604 &drm_syncobj_file_fops, 605 syncobj, 0); 606 if (IS_ERR(file)) { 607 put_unused_fd(fd); 608 return PTR_ERR(file); 609 } 610 611 drm_syncobj_get(syncobj); 612 fd_install(fd, file); 613 614 *p_fd = fd; 615 return 0; 616 #endif 617 } 618 EXPORT_SYMBOL(drm_syncobj_get_fd); 619 620 static int drm_syncobj_handle_to_fd(struct drm_file *file_private, 621 u32 handle, int *p_fd) 622 { 623 struct drm_syncobj *syncobj = drm_syncobj_find(file_private, handle); 624 int ret; 625 626 if (!syncobj) 627 return -EINVAL; 628 629 ret = drm_syncobj_get_fd(syncobj, p_fd); 630 drm_syncobj_put(syncobj); 631 return ret; 632 } 633 634 static int drm_syncobj_fd_to_handle(struct drm_file *file_private, 635 int fd, u32 *handle) 636 { 637 STUB(); 638 return -ENOSYS; 639 #ifdef notyet 640 struct drm_syncobj *syncobj; 641 struct fd f = fdget(fd); 642 int ret; 643 644 if (!f.file) 645 return -EINVAL; 646 647 if (f.file->f_op != &drm_syncobj_file_fops) { 648 fdput(f); 649 return -EINVAL; 650 } 651 652 /* take a reference to put in the idr */ 653 syncobj = f.file->private_data; 654 drm_syncobj_get(syncobj); 655 656 idr_preload(GFP_KERNEL); 657 spin_lock(&file_private->syncobj_table_lock); 658 ret = idr_alloc(&file_private->syncobj_idr, syncobj, 1, 0, GFP_NOWAIT); 659 spin_unlock(&file_private->syncobj_table_lock); 660 idr_preload_end(); 661 662 if (ret > 0) { 663 *handle = ret; 664 ret = 0; 665 } else 666 drm_syncobj_put(syncobj); 667 668 fdput(f); 669 return ret; 670 #endif 671 } 672 673 static int drm_syncobj_import_sync_file_fence(struct drm_file *file_private, 674 int fd, int handle) 675 { 676 struct dma_fence *fence = sync_file_get_fence(fd); 677 struct drm_syncobj *syncobj; 678 679 if (!fence) 680 return -EINVAL; 681 682 syncobj = drm_syncobj_find(file_private, handle); 683 if (!syncobj) { 684 dma_fence_put(fence); 685 return -ENOENT; 686 } 687 688 drm_syncobj_replace_fence(syncobj, fence); 689 dma_fence_put(fence); 690 drm_syncobj_put(syncobj); 691 return 0; 692 } 693 694 static int drm_syncobj_export_sync_file(struct drm_file *file_private, 695 int handle, int *p_fd) 696 { 697 int ret; 698 struct dma_fence *fence; 699 struct sync_file *sync_file; 700 int fd = get_unused_fd_flags(O_CLOEXEC); 701 702 if (fd < 0) 703 return fd; 704 705 ret = drm_syncobj_find_fence(file_private, handle, 0, 0, &fence); 706 if (ret) 707 goto err_put_fd; 708 709 sync_file = sync_file_create(fence); 710 711 dma_fence_put(fence); 712 713 if (!sync_file) { 714 ret = -EINVAL; 715 goto err_put_fd; 716 } 717 718 fd_install(fd, sync_file->file); 719 720 *p_fd = fd; 721 return 0; 722 err_put_fd: 723 put_unused_fd(fd); 724 return ret; 725 } 726 /** 727 * drm_syncobj_open - initalizes syncobj file-private structures at devnode open time 728 * @file_private: drm file-private structure to set up 729 * 730 * Called at device open time, sets up the structure for handling refcounting 731 * of sync objects. 732 */ 733 void 734 drm_syncobj_open(struct drm_file *file_private) 735 { 736 idr_init_base(&file_private->syncobj_idr, 1); 737 mtx_init(&file_private->syncobj_table_lock, IPL_NONE); 738 } 739 740 static int 741 drm_syncobj_release_handle(int id, void *ptr, void *data) 742 { 743 struct drm_syncobj *syncobj = ptr; 744 745 drm_syncobj_put(syncobj); 746 return 0; 747 } 748 749 /** 750 * drm_syncobj_release - release file-private sync object resources 751 * @file_private: drm file-private structure to clean up 752 * 753 * Called at close time when the filp is going away. 754 * 755 * Releases any remaining references on objects by this filp. 756 */ 757 void 758 drm_syncobj_release(struct drm_file *file_private) 759 { 760 idr_for_each(&file_private->syncobj_idr, 761 &drm_syncobj_release_handle, file_private); 762 idr_destroy(&file_private->syncobj_idr); 763 } 764 765 int 766 drm_syncobj_create_ioctl(struct drm_device *dev, void *data, 767 struct drm_file *file_private) 768 { 769 struct drm_syncobj_create *args = data; 770 771 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 772 return -EOPNOTSUPP; 773 774 /* no valid flags yet */ 775 if (args->flags & ~DRM_SYNCOBJ_CREATE_SIGNALED) 776 return -EINVAL; 777 778 return drm_syncobj_create_as_handle(file_private, 779 &args->handle, args->flags); 780 } 781 782 int 783 drm_syncobj_destroy_ioctl(struct drm_device *dev, void *data, 784 struct drm_file *file_private) 785 { 786 struct drm_syncobj_destroy *args = data; 787 788 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 789 return -EOPNOTSUPP; 790 791 /* make sure padding is empty */ 792 if (args->pad) 793 return -EINVAL; 794 return drm_syncobj_destroy(file_private, args->handle); 795 } 796 797 int 798 drm_syncobj_handle_to_fd_ioctl(struct drm_device *dev, void *data, 799 struct drm_file *file_private) 800 { 801 struct drm_syncobj_handle *args = data; 802 803 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 804 return -EOPNOTSUPP; 805 806 if (args->pad) 807 return -EINVAL; 808 809 if (args->flags != 0 && 810 args->flags != DRM_SYNCOBJ_HANDLE_TO_FD_FLAGS_EXPORT_SYNC_FILE) 811 return -EINVAL; 812 813 if (args->flags & DRM_SYNCOBJ_HANDLE_TO_FD_FLAGS_EXPORT_SYNC_FILE) 814 return drm_syncobj_export_sync_file(file_private, args->handle, 815 &args->fd); 816 817 return drm_syncobj_handle_to_fd(file_private, args->handle, 818 &args->fd); 819 } 820 821 int 822 drm_syncobj_fd_to_handle_ioctl(struct drm_device *dev, void *data, 823 struct drm_file *file_private) 824 { 825 struct drm_syncobj_handle *args = data; 826 827 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 828 return -EOPNOTSUPP; 829 830 if (args->pad) 831 return -EINVAL; 832 833 if (args->flags != 0 && 834 args->flags != DRM_SYNCOBJ_FD_TO_HANDLE_FLAGS_IMPORT_SYNC_FILE) 835 return -EINVAL; 836 837 if (args->flags & DRM_SYNCOBJ_FD_TO_HANDLE_FLAGS_IMPORT_SYNC_FILE) 838 return drm_syncobj_import_sync_file_fence(file_private, 839 args->fd, 840 args->handle); 841 842 return drm_syncobj_fd_to_handle(file_private, args->fd, 843 &args->handle); 844 } 845 846 static int drm_syncobj_transfer_to_timeline(struct drm_file *file_private, 847 struct drm_syncobj_transfer *args) 848 { 849 struct drm_syncobj *timeline_syncobj = NULL; 850 struct dma_fence *fence; 851 struct dma_fence_chain *chain; 852 int ret; 853 854 timeline_syncobj = drm_syncobj_find(file_private, args->dst_handle); 855 if (!timeline_syncobj) { 856 return -ENOENT; 857 } 858 ret = drm_syncobj_find_fence(file_private, args->src_handle, 859 args->src_point, args->flags, 860 &fence); 861 if (ret) 862 goto err; 863 chain = kzalloc(sizeof(struct dma_fence_chain), GFP_KERNEL); 864 if (!chain) { 865 ret = -ENOMEM; 866 goto err1; 867 } 868 drm_syncobj_add_point(timeline_syncobj, chain, fence, args->dst_point); 869 err1: 870 dma_fence_put(fence); 871 err: 872 drm_syncobj_put(timeline_syncobj); 873 874 return ret; 875 } 876 877 static int 878 drm_syncobj_transfer_to_binary(struct drm_file *file_private, 879 struct drm_syncobj_transfer *args) 880 { 881 struct drm_syncobj *binary_syncobj = NULL; 882 struct dma_fence *fence; 883 int ret; 884 885 binary_syncobj = drm_syncobj_find(file_private, args->dst_handle); 886 if (!binary_syncobj) 887 return -ENOENT; 888 ret = drm_syncobj_find_fence(file_private, args->src_handle, 889 args->src_point, args->flags, &fence); 890 if (ret) 891 goto err; 892 drm_syncobj_replace_fence(binary_syncobj, fence); 893 dma_fence_put(fence); 894 err: 895 drm_syncobj_put(binary_syncobj); 896 897 return ret; 898 } 899 int 900 drm_syncobj_transfer_ioctl(struct drm_device *dev, void *data, 901 struct drm_file *file_private) 902 { 903 struct drm_syncobj_transfer *args = data; 904 int ret; 905 906 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ_TIMELINE)) 907 return -EOPNOTSUPP; 908 909 if (args->pad) 910 return -EINVAL; 911 912 if (args->dst_point) 913 ret = drm_syncobj_transfer_to_timeline(file_private, args); 914 else 915 ret = drm_syncobj_transfer_to_binary(file_private, args); 916 917 return ret; 918 } 919 920 static void syncobj_wait_fence_func(struct dma_fence *fence, 921 struct dma_fence_cb *cb) 922 { 923 struct syncobj_wait_entry *wait = 924 container_of(cb, struct syncobj_wait_entry, fence_cb); 925 926 wake_up_process(wait->task); 927 } 928 929 static void syncobj_wait_syncobj_func(struct drm_syncobj *syncobj, 930 struct syncobj_wait_entry *wait) 931 { 932 struct dma_fence *fence; 933 934 /* This happens inside the syncobj lock */ 935 fence = rcu_dereference_protected(syncobj->fence, 936 lockdep_is_held(&syncobj->lock)); 937 dma_fence_get(fence); 938 if (!fence || dma_fence_chain_find_seqno(&fence, wait->point)) { 939 dma_fence_put(fence); 940 return; 941 } else if (!fence) { 942 wait->fence = dma_fence_get_stub(); 943 } else { 944 wait->fence = fence; 945 } 946 947 wake_up_process(wait->task); 948 list_del_init(&wait->node); 949 } 950 951 static signed long drm_syncobj_array_wait_timeout(struct drm_syncobj **syncobjs, 952 void __user *user_points, 953 uint32_t count, 954 uint32_t flags, 955 signed long timeout, 956 uint32_t *idx) 957 { 958 struct syncobj_wait_entry *entries; 959 struct dma_fence *fence; 960 uint64_t *points; 961 uint32_t signaled_count, i; 962 963 points = kmalloc_array(count, sizeof(*points), GFP_KERNEL); 964 if (points == NULL) 965 return -ENOMEM; 966 967 if (!user_points) { 968 memset(points, 0, count * sizeof(uint64_t)); 969 970 } else if (copy_from_user(points, user_points, 971 sizeof(uint64_t) * count)) { 972 timeout = -EFAULT; 973 goto err_free_points; 974 } 975 976 entries = kcalloc(count, sizeof(*entries), GFP_KERNEL); 977 if (!entries) { 978 timeout = -ENOMEM; 979 goto err_free_points; 980 } 981 /* Walk the list of sync objects and initialize entries. We do 982 * this up-front so that we can properly return -EINVAL if there is 983 * a syncobj with a missing fence and then never have the chance of 984 * returning -EINVAL again. 985 */ 986 signaled_count = 0; 987 for (i = 0; i < count; ++i) { 988 struct dma_fence *fence; 989 990 #ifdef __linux__ 991 entries[i].task = current; 992 #else 993 entries[i].task = curproc; 994 #endif 995 entries[i].point = points[i]; 996 fence = drm_syncobj_fence_get(syncobjs[i]); 997 if (!fence || dma_fence_chain_find_seqno(&fence, points[i])) { 998 dma_fence_put(fence); 999 if (flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT) { 1000 continue; 1001 } else { 1002 timeout = -EINVAL; 1003 goto cleanup_entries; 1004 } 1005 } 1006 1007 if (fence) 1008 entries[i].fence = fence; 1009 else 1010 entries[i].fence = dma_fence_get_stub(); 1011 1012 if ((flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_AVAILABLE) || 1013 dma_fence_is_signaled(entries[i].fence)) { 1014 if (signaled_count == 0 && idx) 1015 *idx = i; 1016 signaled_count++; 1017 } 1018 } 1019 1020 if (signaled_count == count || 1021 (signaled_count > 0 && 1022 !(flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_ALL))) 1023 goto cleanup_entries; 1024 1025 /* There's a very annoying laxness in the dma_fence API here, in 1026 * that backends are not required to automatically report when a 1027 * fence is signaled prior to fence->ops->enable_signaling() being 1028 * called. So here if we fail to match signaled_count, we need to 1029 * fallthough and try a 0 timeout wait! 1030 */ 1031 1032 if (flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT) { 1033 for (i = 0; i < count; ++i) 1034 drm_syncobj_fence_add_wait(syncobjs[i], &entries[i]); 1035 } 1036 1037 do { 1038 set_current_state(TASK_INTERRUPTIBLE); 1039 1040 signaled_count = 0; 1041 for (i = 0; i < count; ++i) { 1042 fence = entries[i].fence; 1043 if (!fence) 1044 continue; 1045 1046 if ((flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_AVAILABLE) || 1047 dma_fence_is_signaled(fence) || 1048 (!entries[i].fence_cb.func && 1049 dma_fence_add_callback(fence, 1050 &entries[i].fence_cb, 1051 syncobj_wait_fence_func))) { 1052 /* The fence has been signaled */ 1053 if (flags & DRM_SYNCOBJ_WAIT_FLAGS_WAIT_ALL) { 1054 signaled_count++; 1055 } else { 1056 if (idx) 1057 *idx = i; 1058 goto done_waiting; 1059 } 1060 } 1061 } 1062 1063 if (signaled_count == count) 1064 goto done_waiting; 1065 1066 if (timeout == 0) { 1067 timeout = -ETIME; 1068 goto done_waiting; 1069 } 1070 1071 if (signal_pending(current)) { 1072 timeout = -ERESTARTSYS; 1073 goto done_waiting; 1074 } 1075 1076 timeout = schedule_timeout(timeout); 1077 } while (1); 1078 1079 done_waiting: 1080 __set_current_state(TASK_RUNNING); 1081 1082 cleanup_entries: 1083 for (i = 0; i < count; ++i) { 1084 drm_syncobj_remove_wait(syncobjs[i], &entries[i]); 1085 if (entries[i].fence_cb.func) 1086 dma_fence_remove_callback(entries[i].fence, 1087 &entries[i].fence_cb); 1088 dma_fence_put(entries[i].fence); 1089 } 1090 kfree(entries); 1091 1092 err_free_points: 1093 kfree(points); 1094 1095 return timeout; 1096 } 1097 1098 /** 1099 * drm_timeout_abs_to_jiffies - calculate jiffies timeout from absolute value 1100 * 1101 * @timeout_nsec: timeout nsec component in ns, 0 for poll 1102 * 1103 * Calculate the timeout in jiffies from an absolute time in sec/nsec. 1104 */ 1105 signed long drm_timeout_abs_to_jiffies(int64_t timeout_nsec) 1106 { 1107 ktime_t abs_timeout, now; 1108 u64 timeout_ns, timeout_jiffies64; 1109 1110 /* make 0 timeout means poll - absolute 0 doesn't seem valid */ 1111 if (timeout_nsec == 0) 1112 return 0; 1113 1114 abs_timeout = ns_to_ktime(timeout_nsec); 1115 now = ktime_get(); 1116 1117 if (!ktime_after(abs_timeout, now)) 1118 return 0; 1119 1120 timeout_ns = ktime_to_ns(ktime_sub(abs_timeout, now)); 1121 1122 timeout_jiffies64 = nsecs_to_jiffies64(timeout_ns); 1123 /* clamp timeout to avoid infinite timeout */ 1124 if (timeout_jiffies64 >= MAX_SCHEDULE_TIMEOUT - 1) 1125 return MAX_SCHEDULE_TIMEOUT - 1; 1126 1127 return timeout_jiffies64 + 1; 1128 } 1129 EXPORT_SYMBOL(drm_timeout_abs_to_jiffies); 1130 1131 static int drm_syncobj_array_wait(struct drm_device *dev, 1132 struct drm_file *file_private, 1133 struct drm_syncobj_wait *wait, 1134 struct drm_syncobj_timeline_wait *timeline_wait, 1135 struct drm_syncobj **syncobjs, bool timeline) 1136 { 1137 signed long timeout = 0; 1138 uint32_t first = ~0; 1139 1140 if (!timeline) { 1141 timeout = drm_timeout_abs_to_jiffies(wait->timeout_nsec); 1142 timeout = drm_syncobj_array_wait_timeout(syncobjs, 1143 NULL, 1144 wait->count_handles, 1145 wait->flags, 1146 timeout, &first); 1147 if (timeout < 0) 1148 return timeout; 1149 wait->first_signaled = first; 1150 } else { 1151 timeout = drm_timeout_abs_to_jiffies(timeline_wait->timeout_nsec); 1152 timeout = drm_syncobj_array_wait_timeout(syncobjs, 1153 u64_to_user_ptr(timeline_wait->points), 1154 timeline_wait->count_handles, 1155 timeline_wait->flags, 1156 timeout, &first); 1157 if (timeout < 0) 1158 return timeout; 1159 timeline_wait->first_signaled = first; 1160 } 1161 return 0; 1162 } 1163 1164 static int drm_syncobj_array_find(struct drm_file *file_private, 1165 void __user *user_handles, 1166 uint32_t count_handles, 1167 struct drm_syncobj ***syncobjs_out) 1168 { 1169 uint32_t i, *handles; 1170 struct drm_syncobj **syncobjs; 1171 int ret; 1172 1173 handles = kmalloc_array(count_handles, sizeof(*handles), GFP_KERNEL); 1174 if (handles == NULL) 1175 return -ENOMEM; 1176 1177 if (copy_from_user(handles, user_handles, 1178 sizeof(uint32_t) * count_handles)) { 1179 ret = -EFAULT; 1180 goto err_free_handles; 1181 } 1182 1183 syncobjs = kmalloc_array(count_handles, sizeof(*syncobjs), GFP_KERNEL); 1184 if (syncobjs == NULL) { 1185 ret = -ENOMEM; 1186 goto err_free_handles; 1187 } 1188 1189 for (i = 0; i < count_handles; i++) { 1190 syncobjs[i] = drm_syncobj_find(file_private, handles[i]); 1191 if (!syncobjs[i]) { 1192 ret = -ENOENT; 1193 goto err_put_syncobjs; 1194 } 1195 } 1196 1197 kfree(handles); 1198 *syncobjs_out = syncobjs; 1199 return 0; 1200 1201 err_put_syncobjs: 1202 while (i-- > 0) 1203 drm_syncobj_put(syncobjs[i]); 1204 kfree(syncobjs); 1205 err_free_handles: 1206 kfree(handles); 1207 1208 return ret; 1209 } 1210 1211 static void drm_syncobj_array_free(struct drm_syncobj **syncobjs, 1212 uint32_t count) 1213 { 1214 uint32_t i; 1215 1216 for (i = 0; i < count; i++) 1217 drm_syncobj_put(syncobjs[i]); 1218 kfree(syncobjs); 1219 } 1220 1221 int 1222 drm_syncobj_wait_ioctl(struct drm_device *dev, void *data, 1223 struct drm_file *file_private) 1224 { 1225 struct drm_syncobj_wait *args = data; 1226 struct drm_syncobj **syncobjs; 1227 int ret = 0; 1228 1229 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 1230 return -EOPNOTSUPP; 1231 1232 if (args->flags & ~(DRM_SYNCOBJ_WAIT_FLAGS_WAIT_ALL | 1233 DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT)) 1234 return -EINVAL; 1235 1236 if (args->count_handles == 0) 1237 return -EINVAL; 1238 1239 ret = drm_syncobj_array_find(file_private, 1240 u64_to_user_ptr(args->handles), 1241 args->count_handles, 1242 &syncobjs); 1243 if (ret < 0) 1244 return ret; 1245 1246 ret = drm_syncobj_array_wait(dev, file_private, 1247 args, NULL, syncobjs, false); 1248 1249 drm_syncobj_array_free(syncobjs, args->count_handles); 1250 1251 return ret; 1252 } 1253 1254 int 1255 drm_syncobj_timeline_wait_ioctl(struct drm_device *dev, void *data, 1256 struct drm_file *file_private) 1257 { 1258 struct drm_syncobj_timeline_wait *args = data; 1259 struct drm_syncobj **syncobjs; 1260 int ret = 0; 1261 1262 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ_TIMELINE)) 1263 return -EOPNOTSUPP; 1264 1265 if (args->flags & ~(DRM_SYNCOBJ_WAIT_FLAGS_WAIT_ALL | 1266 DRM_SYNCOBJ_WAIT_FLAGS_WAIT_FOR_SUBMIT | 1267 DRM_SYNCOBJ_WAIT_FLAGS_WAIT_AVAILABLE)) 1268 return -EINVAL; 1269 1270 if (args->count_handles == 0) 1271 return -EINVAL; 1272 1273 ret = drm_syncobj_array_find(file_private, 1274 u64_to_user_ptr(args->handles), 1275 args->count_handles, 1276 &syncobjs); 1277 if (ret < 0) 1278 return ret; 1279 1280 ret = drm_syncobj_array_wait(dev, file_private, 1281 NULL, args, syncobjs, true); 1282 1283 drm_syncobj_array_free(syncobjs, args->count_handles); 1284 1285 return ret; 1286 } 1287 1288 1289 int 1290 drm_syncobj_reset_ioctl(struct drm_device *dev, void *data, 1291 struct drm_file *file_private) 1292 { 1293 struct drm_syncobj_array *args = data; 1294 struct drm_syncobj **syncobjs; 1295 uint32_t i; 1296 int ret; 1297 1298 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 1299 return -EOPNOTSUPP; 1300 1301 if (args->pad != 0) 1302 return -EINVAL; 1303 1304 if (args->count_handles == 0) 1305 return -EINVAL; 1306 1307 ret = drm_syncobj_array_find(file_private, 1308 u64_to_user_ptr(args->handles), 1309 args->count_handles, 1310 &syncobjs); 1311 if (ret < 0) 1312 return ret; 1313 1314 for (i = 0; i < args->count_handles; i++) 1315 drm_syncobj_replace_fence(syncobjs[i], NULL); 1316 1317 drm_syncobj_array_free(syncobjs, args->count_handles); 1318 1319 return 0; 1320 } 1321 1322 int 1323 drm_syncobj_signal_ioctl(struct drm_device *dev, void *data, 1324 struct drm_file *file_private) 1325 { 1326 struct drm_syncobj_array *args = data; 1327 struct drm_syncobj **syncobjs; 1328 uint32_t i; 1329 int ret; 1330 1331 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ)) 1332 return -EOPNOTSUPP; 1333 1334 if (args->pad != 0) 1335 return -EINVAL; 1336 1337 if (args->count_handles == 0) 1338 return -EINVAL; 1339 1340 ret = drm_syncobj_array_find(file_private, 1341 u64_to_user_ptr(args->handles), 1342 args->count_handles, 1343 &syncobjs); 1344 if (ret < 0) 1345 return ret; 1346 1347 for (i = 0; i < args->count_handles; i++) 1348 drm_syncobj_assign_null_handle(syncobjs[i]); 1349 1350 drm_syncobj_array_free(syncobjs, args->count_handles); 1351 1352 return ret; 1353 } 1354 1355 int 1356 drm_syncobj_timeline_signal_ioctl(struct drm_device *dev, void *data, 1357 struct drm_file *file_private) 1358 { 1359 struct drm_syncobj_timeline_array *args = data; 1360 struct drm_syncobj **syncobjs; 1361 struct dma_fence_chain **chains; 1362 uint64_t *points; 1363 uint32_t i, j; 1364 int ret; 1365 1366 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ_TIMELINE)) 1367 return -EOPNOTSUPP; 1368 1369 if (args->flags != 0) 1370 return -EINVAL; 1371 1372 if (args->count_handles == 0) 1373 return -EINVAL; 1374 1375 ret = drm_syncobj_array_find(file_private, 1376 u64_to_user_ptr(args->handles), 1377 args->count_handles, 1378 &syncobjs); 1379 if (ret < 0) 1380 return ret; 1381 1382 points = kmalloc_array(args->count_handles, sizeof(*points), 1383 GFP_KERNEL); 1384 if (!points) { 1385 ret = -ENOMEM; 1386 goto out; 1387 } 1388 if (!u64_to_user_ptr(args->points)) { 1389 memset(points, 0, args->count_handles * sizeof(uint64_t)); 1390 } else if (copy_from_user(points, u64_to_user_ptr(args->points), 1391 sizeof(uint64_t) * args->count_handles)) { 1392 ret = -EFAULT; 1393 goto err_points; 1394 } 1395 1396 chains = kmalloc_array(args->count_handles, sizeof(void *), GFP_KERNEL); 1397 if (!chains) { 1398 ret = -ENOMEM; 1399 goto err_points; 1400 } 1401 for (i = 0; i < args->count_handles; i++) { 1402 chains[i] = kzalloc(sizeof(struct dma_fence_chain), GFP_KERNEL); 1403 if (!chains[i]) { 1404 for (j = 0; j < i; j++) 1405 kfree(chains[j]); 1406 ret = -ENOMEM; 1407 goto err_chains; 1408 } 1409 } 1410 1411 for (i = 0; i < args->count_handles; i++) { 1412 struct dma_fence *fence = dma_fence_get_stub(); 1413 1414 drm_syncobj_add_point(syncobjs[i], chains[i], 1415 fence, points[i]); 1416 dma_fence_put(fence); 1417 } 1418 err_chains: 1419 kfree(chains); 1420 err_points: 1421 kfree(points); 1422 out: 1423 drm_syncobj_array_free(syncobjs, args->count_handles); 1424 1425 return ret; 1426 } 1427 1428 int drm_syncobj_query_ioctl(struct drm_device *dev, void *data, 1429 struct drm_file *file_private) 1430 { 1431 struct drm_syncobj_timeline_array *args = data; 1432 struct drm_syncobj **syncobjs; 1433 uint64_t __user *points = u64_to_user_ptr(args->points); 1434 uint32_t i; 1435 int ret; 1436 1437 if (!drm_core_check_feature(dev, DRIVER_SYNCOBJ_TIMELINE)) 1438 return -EOPNOTSUPP; 1439 1440 if (args->flags & ~DRM_SYNCOBJ_QUERY_FLAGS_LAST_SUBMITTED) 1441 return -EINVAL; 1442 1443 if (args->count_handles == 0) 1444 return -EINVAL; 1445 1446 ret = drm_syncobj_array_find(file_private, 1447 u64_to_user_ptr(args->handles), 1448 args->count_handles, 1449 &syncobjs); 1450 if (ret < 0) 1451 return ret; 1452 1453 for (i = 0; i < args->count_handles; i++) { 1454 struct dma_fence_chain *chain; 1455 struct dma_fence *fence; 1456 uint64_t point; 1457 1458 fence = drm_syncobj_fence_get(syncobjs[i]); 1459 chain = to_dma_fence_chain(fence); 1460 if (chain) { 1461 struct dma_fence *iter, *last_signaled = 1462 dma_fence_get(fence); 1463 1464 if (args->flags & 1465 DRM_SYNCOBJ_QUERY_FLAGS_LAST_SUBMITTED) { 1466 point = fence->seqno; 1467 } else { 1468 dma_fence_chain_for_each(iter, fence) { 1469 if (iter->context != fence->context) { 1470 dma_fence_put(iter); 1471 /* It is most likely that timeline has 1472 * unorder points. */ 1473 break; 1474 } 1475 dma_fence_put(last_signaled); 1476 last_signaled = dma_fence_get(iter); 1477 } 1478 point = dma_fence_is_signaled(last_signaled) ? 1479 last_signaled->seqno : 1480 to_dma_fence_chain(last_signaled)->prev_seqno; 1481 } 1482 dma_fence_put(last_signaled); 1483 } else { 1484 point = 0; 1485 } 1486 dma_fence_put(fence); 1487 ret = copy_to_user(&points[i], &point, sizeof(uint64_t)); 1488 ret = ret ? -EFAULT : 0; 1489 if (ret) 1490 break; 1491 } 1492 drm_syncobj_array_free(syncobjs, args->count_handles); 1493 1494 return ret; 1495 } 1496