1 /* 2 * Copyright (C) 2015 Red Hat, Inc. 3 * All Rights Reserved. 4 * 5 * Authors: 6 * Dave Airlie <airlied@redhat.com> 7 * Gerd Hoffmann <kraxel@redhat.com> 8 * 9 * Permission is hereby granted, free of charge, to any person obtaining a 10 * copy of this software and associated documentation files (the "Software"), 11 * to deal in the Software without restriction, including without limitation 12 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 13 * and/or sell copies of the Software, and to permit persons to whom the 14 * Software is furnished to do so, subject to the following conditions: 15 * 16 * The above copyright notice and this permission notice (including the next 17 * paragraph) shall be included in all copies or substantial portions of the 18 * Software. 19 * 20 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 21 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 22 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 23 * VA LINUX SYSTEMS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR 24 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 25 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 26 * OTHER DEALINGS IN THE SOFTWARE. 27 */ 28 29 #include <linux/dma-mapping.h> 30 #include <linux/virtio.h> 31 #include <linux/virtio_config.h> 32 #include <linux/virtio_ring.h> 33 34 #include <drm/drm_edid.h> 35 #include <drm/drm_print.h> 36 37 #include "virtgpu_drv.h" 38 #include "virtgpu_trace.h" 39 40 #define MAX_INLINE_CMD_SIZE 96 41 #define MAX_INLINE_RESP_SIZE 24 42 #define VBUFFER_SIZE (sizeof(struct virtio_gpu_vbuffer) \ 43 + MAX_INLINE_CMD_SIZE \ 44 + MAX_INLINE_RESP_SIZE) 45 46 static void convert_to_hw_box(struct virtio_gpu_box *dst, 47 const struct drm_virtgpu_3d_box *src) 48 { 49 dst->x = cpu_to_le32(src->x); 50 dst->y = cpu_to_le32(src->y); 51 dst->z = cpu_to_le32(src->z); 52 dst->w = cpu_to_le32(src->w); 53 dst->h = cpu_to_le32(src->h); 54 dst->d = cpu_to_le32(src->d); 55 } 56 57 void virtio_gpu_ctrl_ack(struct virtqueue *vq) 58 { 59 struct drm_device *dev = vq->vdev->priv; 60 struct virtio_gpu_device *vgdev = dev->dev_private; 61 62 schedule_work(&vgdev->ctrlq.dequeue_work); 63 } 64 65 void virtio_gpu_cursor_ack(struct virtqueue *vq) 66 { 67 struct drm_device *dev = vq->vdev->priv; 68 struct virtio_gpu_device *vgdev = dev->dev_private; 69 70 schedule_work(&vgdev->cursorq.dequeue_work); 71 } 72 73 int virtio_gpu_alloc_vbufs(struct virtio_gpu_device *vgdev) 74 { 75 vgdev->vbufs = kmem_cache_create("virtio-gpu-vbufs", 76 VBUFFER_SIZE, 77 __alignof__(struct virtio_gpu_vbuffer), 78 0, NULL); 79 if (!vgdev->vbufs) 80 return -ENOMEM; 81 return 0; 82 } 83 84 void virtio_gpu_free_vbufs(struct virtio_gpu_device *vgdev) 85 { 86 kmem_cache_destroy(vgdev->vbufs); 87 vgdev->vbufs = NULL; 88 } 89 90 /* For drm_panic */ 91 static struct virtio_gpu_vbuffer* 92 virtio_gpu_panic_get_vbuf(struct virtio_gpu_device *vgdev, int size) 93 { 94 struct virtio_gpu_vbuffer *vbuf; 95 96 vbuf = kmem_cache_zalloc(vgdev->vbufs, GFP_ATOMIC); 97 98 vbuf->buf = (void *)vbuf + sizeof(*vbuf); 99 vbuf->size = size; 100 vbuf->resp_cb = NULL; 101 vbuf->resp_size = sizeof(struct virtio_gpu_ctrl_hdr); 102 vbuf->resp_buf = (void *)vbuf->buf + size; 103 return vbuf; 104 } 105 106 static struct virtio_gpu_vbuffer* 107 virtio_gpu_get_vbuf(struct virtio_gpu_device *vgdev, 108 int size, int resp_size, void *resp_buf, 109 virtio_gpu_resp_cb resp_cb) 110 { 111 struct virtio_gpu_vbuffer *vbuf; 112 113 vbuf = kmem_cache_zalloc(vgdev->vbufs, GFP_KERNEL | __GFP_NOFAIL); 114 115 BUG_ON(size > MAX_INLINE_CMD_SIZE || 116 size < sizeof(struct virtio_gpu_ctrl_hdr)); 117 vbuf->buf = (void *)vbuf + sizeof(*vbuf); 118 vbuf->size = size; 119 120 vbuf->resp_cb = resp_cb; 121 vbuf->resp_size = resp_size; 122 if (resp_size <= MAX_INLINE_RESP_SIZE) 123 vbuf->resp_buf = (void *)vbuf->buf + size; 124 else 125 vbuf->resp_buf = resp_buf; 126 BUG_ON(!vbuf->resp_buf); 127 return vbuf; 128 } 129 130 static struct virtio_gpu_ctrl_hdr * 131 virtio_gpu_vbuf_ctrl_hdr(struct virtio_gpu_vbuffer *vbuf) 132 { 133 /* this assumes a vbuf contains a command that starts with a 134 * virtio_gpu_ctrl_hdr, which is true for both ctrl and cursor 135 * virtqueues. 136 */ 137 return (struct virtio_gpu_ctrl_hdr *)vbuf->buf; 138 } 139 140 static struct virtio_gpu_update_cursor* 141 virtio_gpu_alloc_cursor(struct virtio_gpu_device *vgdev, 142 struct virtio_gpu_vbuffer **vbuffer_p) 143 { 144 struct virtio_gpu_vbuffer *vbuf; 145 146 vbuf = virtio_gpu_get_vbuf 147 (vgdev, sizeof(struct virtio_gpu_update_cursor), 148 0, NULL, NULL); 149 if (IS_ERR(vbuf)) { 150 *vbuffer_p = NULL; 151 return ERR_CAST(vbuf); 152 } 153 *vbuffer_p = vbuf; 154 return (struct virtio_gpu_update_cursor *)vbuf->buf; 155 } 156 157 /* For drm_panic */ 158 static void *virtio_gpu_panic_alloc_cmd_resp(struct virtio_gpu_device *vgdev, 159 struct virtio_gpu_vbuffer **vbuffer_p, 160 int cmd_size) 161 { 162 struct virtio_gpu_vbuffer *vbuf; 163 164 vbuf = virtio_gpu_panic_get_vbuf(vgdev, cmd_size); 165 *vbuffer_p = vbuf; 166 return (struct virtio_gpu_command *)vbuf->buf; 167 } 168 169 static void *virtio_gpu_alloc_cmd_resp(struct virtio_gpu_device *vgdev, 170 virtio_gpu_resp_cb cb, 171 struct virtio_gpu_vbuffer **vbuffer_p, 172 int cmd_size, int resp_size, 173 void *resp_buf) 174 { 175 struct virtio_gpu_vbuffer *vbuf; 176 177 vbuf = virtio_gpu_get_vbuf(vgdev, cmd_size, 178 resp_size, resp_buf, cb); 179 *vbuffer_p = vbuf; 180 return (struct virtio_gpu_command *)vbuf->buf; 181 } 182 183 static void *virtio_gpu_alloc_cmd(struct virtio_gpu_device *vgdev, 184 struct virtio_gpu_vbuffer **vbuffer_p, 185 int size) 186 { 187 return virtio_gpu_alloc_cmd_resp(vgdev, NULL, vbuffer_p, size, 188 sizeof(struct virtio_gpu_ctrl_hdr), 189 NULL); 190 } 191 192 static void *virtio_gpu_alloc_cmd_cb(struct virtio_gpu_device *vgdev, 193 struct virtio_gpu_vbuffer **vbuffer_p, 194 int size, 195 virtio_gpu_resp_cb cb) 196 { 197 return virtio_gpu_alloc_cmd_resp(vgdev, cb, vbuffer_p, size, 198 sizeof(struct virtio_gpu_ctrl_hdr), 199 NULL); 200 } 201 202 static void free_vbuf(struct virtio_gpu_device *vgdev, 203 struct virtio_gpu_vbuffer *vbuf) 204 { 205 if (vbuf->resp_size > MAX_INLINE_RESP_SIZE) 206 kfree(vbuf->resp_buf); 207 kvfree(vbuf->data_buf); 208 kmem_cache_free(vgdev->vbufs, vbuf); 209 } 210 211 static void reclaim_vbufs(struct virtqueue *vq, struct list_head *reclaim_list) 212 { 213 struct virtio_gpu_vbuffer *vbuf; 214 unsigned int len; 215 int freed = 0; 216 217 while ((vbuf = virtqueue_get_buf(vq, &len))) { 218 list_add_tail(&vbuf->list, reclaim_list); 219 freed++; 220 } 221 if (freed == 0) 222 DRM_DEBUG("Huh? zero vbufs reclaimed"); 223 } 224 225 void virtio_gpu_dequeue_ctrl_func(struct work_struct *work) 226 { 227 struct virtio_gpu_device *vgdev = 228 container_of(work, struct virtio_gpu_device, 229 ctrlq.dequeue_work); 230 struct list_head reclaim_list; 231 struct virtio_gpu_vbuffer *entry, *tmp; 232 struct virtio_gpu_ctrl_hdr *resp; 233 u64 fence_id; 234 235 INIT_LIST_HEAD(&reclaim_list); 236 spin_lock(&vgdev->ctrlq.qlock); 237 do { 238 virtqueue_disable_cb(vgdev->ctrlq.vq); 239 reclaim_vbufs(vgdev->ctrlq.vq, &reclaim_list); 240 241 } while (!virtqueue_enable_cb(vgdev->ctrlq.vq)); 242 spin_unlock(&vgdev->ctrlq.qlock); 243 244 list_for_each_entry(entry, &reclaim_list, list) { 245 resp = (struct virtio_gpu_ctrl_hdr *)entry->resp_buf; 246 247 trace_virtio_gpu_cmd_response(vgdev->ctrlq.vq, resp, entry->seqno); 248 249 if (resp->type != cpu_to_le32(VIRTIO_GPU_RESP_OK_NODATA)) { 250 if (le32_to_cpu(resp->type) >= VIRTIO_GPU_RESP_ERR_UNSPEC) { 251 struct virtio_gpu_ctrl_hdr *cmd; 252 253 cmd = virtio_gpu_vbuf_ctrl_hdr(entry); 254 DRM_ERROR_RATELIMITED("response 0x%x (command 0x%x)\n", 255 le32_to_cpu(resp->type), 256 le32_to_cpu(cmd->type)); 257 } else 258 DRM_DEBUG("response 0x%x\n", le32_to_cpu(resp->type)); 259 } 260 if (resp->flags & cpu_to_le32(VIRTIO_GPU_FLAG_FENCE)) { 261 fence_id = le64_to_cpu(resp->fence_id); 262 virtio_gpu_fence_event_process(vgdev, fence_id); 263 } 264 if (entry->resp_cb) 265 entry->resp_cb(vgdev, entry); 266 } 267 wake_up(&vgdev->ctrlq.ack_queue); 268 269 list_for_each_entry_safe(entry, tmp, &reclaim_list, list) { 270 if (entry->objs) 271 virtio_gpu_array_put_free_delayed(vgdev, entry->objs); 272 list_del(&entry->list); 273 free_vbuf(vgdev, entry); 274 } 275 } 276 277 void virtio_gpu_dequeue_cursor_func(struct work_struct *work) 278 { 279 struct virtio_gpu_device *vgdev = 280 container_of(work, struct virtio_gpu_device, 281 cursorq.dequeue_work); 282 struct list_head reclaim_list; 283 struct virtio_gpu_vbuffer *entry, *tmp; 284 285 INIT_LIST_HEAD(&reclaim_list); 286 spin_lock(&vgdev->cursorq.qlock); 287 do { 288 virtqueue_disable_cb(vgdev->cursorq.vq); 289 reclaim_vbufs(vgdev->cursorq.vq, &reclaim_list); 290 } while (!virtqueue_enable_cb(vgdev->cursorq.vq)); 291 spin_unlock(&vgdev->cursorq.qlock); 292 293 list_for_each_entry_safe(entry, tmp, &reclaim_list, list) { 294 struct virtio_gpu_ctrl_hdr *resp = 295 (struct virtio_gpu_ctrl_hdr *)entry->resp_buf; 296 297 trace_virtio_gpu_cmd_response(vgdev->cursorq.vq, resp, entry->seqno); 298 list_del(&entry->list); 299 free_vbuf(vgdev, entry); 300 } 301 wake_up(&vgdev->cursorq.ack_queue); 302 } 303 304 /* Create sg_table from a vmalloc'd buffer. */ 305 static struct sg_table *vmalloc_to_sgt(char *data, uint32_t size, int *sg_ents) 306 { 307 int ret, s, i; 308 struct sg_table *sgt; 309 struct scatterlist *sg; 310 struct page *pg; 311 312 if (WARN_ON(!PAGE_ALIGNED(data))) 313 return NULL; 314 315 sgt = kmalloc_obj(*sgt); 316 if (!sgt) 317 return NULL; 318 319 *sg_ents = DIV_ROUND_UP(size, PAGE_SIZE); 320 ret = sg_alloc_table(sgt, *sg_ents, GFP_KERNEL); 321 if (ret) { 322 kfree(sgt); 323 return NULL; 324 } 325 326 for_each_sgtable_sg(sgt, sg, i) { 327 pg = vmalloc_to_page(data); 328 if (!pg) { 329 sg_free_table(sgt); 330 kfree(sgt); 331 return NULL; 332 } 333 334 s = min_t(int, PAGE_SIZE, size); 335 sg_set_page(sg, pg, s, 0); 336 337 size -= s; 338 data += s; 339 } 340 341 return sgt; 342 } 343 344 /* For drm_panic */ 345 static int virtio_gpu_panic_queue_ctrl_sgs(struct virtio_gpu_device *vgdev, 346 struct virtio_gpu_vbuffer *vbuf, 347 int elemcnt, 348 struct scatterlist **sgs, 349 int outcnt, 350 int incnt) 351 { 352 struct virtqueue *vq = vgdev->ctrlq.vq; 353 int ret; 354 355 if (vgdev->has_indirect) 356 elemcnt = 1; 357 358 if (vq->num_free < elemcnt) 359 return -ENOMEM; 360 361 ret = virtqueue_add_sgs(vq, sgs, outcnt, incnt, vbuf, GFP_ATOMIC); 362 WARN_ON(ret); 363 364 vbuf->seqno = ++vgdev->ctrlq.seqno; 365 trace_virtio_gpu_cmd_queue(vq, virtio_gpu_vbuf_ctrl_hdr(vbuf), vbuf->seqno); 366 367 atomic_inc(&vgdev->pending_commands); 368 369 return 0; 370 } 371 372 int virtio_gpu_wait_queue(struct virtio_gpu_queue *vgvq, unsigned int num_elem) 373 { 374 int ret; 375 376 /* Wait up to 5 seconds for enough free slots to become available */ 377 ret = wait_event_timeout(vgvq->ack_queue, 378 vgvq->vq->num_free >= num_elem, 379 5 * HZ); 380 if (ret == 0) 381 return -ETIMEDOUT; 382 383 return 0; 384 } 385 386 static int virtio_gpu_queue_ctrl_sgs(struct virtio_gpu_device *vgdev, 387 struct virtio_gpu_vbuffer *vbuf, 388 struct virtio_gpu_fence *fence, 389 int elemcnt, 390 struct scatterlist **sgs, 391 int outcnt, 392 int incnt) 393 { 394 struct virtqueue *vq = vgdev->ctrlq.vq; 395 int ret, idx; 396 397 if (!drm_dev_enter(vgdev->ddev, &idx)) { 398 if (fence && vbuf->objs) 399 virtio_gpu_array_unlock_resv(vbuf->objs); 400 free_vbuf(vgdev, vbuf); 401 return -ENODEV; 402 } 403 404 if (vgdev->has_indirect) 405 elemcnt = 1; 406 407 again: 408 spin_lock(&vgdev->ctrlq.qlock); 409 410 if (vq->num_free < elemcnt) { 411 spin_unlock(&vgdev->ctrlq.qlock); 412 virtio_gpu_notify(vgdev); 413 wait_event(vgdev->ctrlq.ack_queue, 414 vq->num_free >= elemcnt || vgdev->vqs_released); 415 /* 416 * Set by virtio_gpu_release_vqs() to unblock 417 * synchronize_srcu() wait in drm_dev_unplug(). 418 */ 419 if (vgdev->vqs_released) { 420 if (fence && vbuf->objs) 421 virtio_gpu_array_unlock_resv(vbuf->objs); 422 free_vbuf(vgdev, vbuf); 423 drm_dev_exit(idx); 424 return -ENODEV; 425 } 426 goto again; 427 } 428 429 /* now that the position of the vbuf in the virtqueue is known, we can 430 * finally set the fence id 431 */ 432 if (fence) { 433 virtio_gpu_fence_emit(vgdev, virtio_gpu_vbuf_ctrl_hdr(vbuf), 434 fence); 435 if (vbuf->objs) { 436 virtio_gpu_array_add_fence(vbuf->objs, &fence->f); 437 virtio_gpu_array_unlock_resv(vbuf->objs); 438 } 439 } 440 441 ret = virtqueue_add_sgs(vq, sgs, outcnt, incnt, vbuf, GFP_ATOMIC); 442 WARN_ON(ret); 443 444 vbuf->seqno = ++vgdev->ctrlq.seqno; 445 trace_virtio_gpu_cmd_queue(vq, virtio_gpu_vbuf_ctrl_hdr(vbuf), vbuf->seqno); 446 447 atomic_inc(&vgdev->pending_commands); 448 449 spin_unlock(&vgdev->ctrlq.qlock); 450 451 drm_dev_exit(idx); 452 return 0; 453 } 454 455 /* For drm_panic */ 456 static int virtio_gpu_panic_queue_ctrl_buffer(struct virtio_gpu_device *vgdev, 457 struct virtio_gpu_vbuffer *vbuf) 458 { 459 struct scatterlist *sgs[3], vcmd, vresp; 460 int elemcnt = 0, outcnt = 0, incnt = 0; 461 462 /* set up vcmd */ 463 sg_init_one(&vcmd, vbuf->buf, vbuf->size); 464 elemcnt++; 465 sgs[outcnt] = &vcmd; 466 outcnt++; 467 468 /* set up vresp */ 469 if (vbuf->resp_size) { 470 sg_init_one(&vresp, vbuf->resp_buf, vbuf->resp_size); 471 elemcnt++; 472 sgs[outcnt + incnt] = &vresp; 473 incnt++; 474 } 475 476 return virtio_gpu_panic_queue_ctrl_sgs(vgdev, vbuf, 477 elemcnt, sgs, 478 outcnt, incnt); 479 } 480 481 static int virtio_gpu_queue_fenced_ctrl_buffer(struct virtio_gpu_device *vgdev, 482 struct virtio_gpu_vbuffer *vbuf, 483 struct virtio_gpu_fence *fence) 484 { 485 struct scatterlist *sgs[3], vcmd, vout, vresp; 486 struct sg_table *sgt = NULL; 487 int elemcnt = 0, outcnt = 0, incnt = 0, ret; 488 489 /* set up vcmd */ 490 sg_init_one(&vcmd, vbuf->buf, vbuf->size); 491 elemcnt++; 492 sgs[outcnt] = &vcmd; 493 outcnt++; 494 495 /* set up vout */ 496 if (vbuf->data_size) { 497 if (is_vmalloc_addr(vbuf->data_buf)) { 498 int sg_ents; 499 500 sgt = vmalloc_to_sgt(vbuf->data_buf, vbuf->data_size, 501 &sg_ents); 502 if (!sgt) { 503 if (fence && vbuf->objs) 504 virtio_gpu_array_unlock_resv(vbuf->objs); 505 return -ENOMEM; 506 } 507 508 elemcnt += sg_ents; 509 sgs[outcnt] = sgt->sgl; 510 } else { 511 sg_init_one(&vout, vbuf->data_buf, vbuf->data_size); 512 elemcnt++; 513 sgs[outcnt] = &vout; 514 } 515 outcnt++; 516 } 517 518 /* set up vresp */ 519 if (vbuf->resp_size) { 520 sg_init_one(&vresp, vbuf->resp_buf, vbuf->resp_size); 521 elemcnt++; 522 sgs[outcnt + incnt] = &vresp; 523 incnt++; 524 } 525 526 ret = virtio_gpu_queue_ctrl_sgs(vgdev, vbuf, fence, elemcnt, sgs, outcnt, 527 incnt); 528 529 if (sgt) { 530 sg_free_table(sgt); 531 kfree(sgt); 532 } 533 return ret; 534 } 535 536 /* For drm_panic */ 537 void virtio_gpu_panic_notify(struct virtio_gpu_device *vgdev) 538 { 539 bool notify; 540 541 if (!atomic_read(&vgdev->pending_commands)) 542 return; 543 544 atomic_set(&vgdev->pending_commands, 0); 545 notify = virtqueue_kick_prepare(vgdev->ctrlq.vq); 546 547 if (notify) 548 virtqueue_notify(vgdev->ctrlq.vq); 549 } 550 551 void virtio_gpu_notify(struct virtio_gpu_device *vgdev) 552 { 553 bool notify; 554 555 if (!atomic_read(&vgdev->pending_commands)) 556 return; 557 558 spin_lock(&vgdev->ctrlq.qlock); 559 atomic_set(&vgdev->pending_commands, 0); 560 notify = virtqueue_kick_prepare(vgdev->ctrlq.vq); 561 spin_unlock(&vgdev->ctrlq.qlock); 562 563 if (notify) 564 virtqueue_notify(vgdev->ctrlq.vq); 565 } 566 567 static int virtio_gpu_queue_ctrl_buffer(struct virtio_gpu_device *vgdev, 568 struct virtio_gpu_vbuffer *vbuf) 569 { 570 return virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, NULL); 571 } 572 573 static void virtio_gpu_queue_cursor(struct virtio_gpu_device *vgdev, 574 struct virtio_gpu_vbuffer *vbuf) 575 { 576 struct virtqueue *vq = vgdev->cursorq.vq; 577 struct scatterlist *sgs[1], ccmd; 578 int idx, ret, outcnt; 579 bool notify; 580 581 if (!drm_dev_enter(vgdev->ddev, &idx)) { 582 free_vbuf(vgdev, vbuf); 583 return; 584 } 585 586 sg_init_one(&ccmd, vbuf->buf, vbuf->size); 587 sgs[0] = &ccmd; 588 outcnt = 1; 589 590 spin_lock(&vgdev->cursorq.qlock); 591 retry: 592 ret = virtqueue_add_sgs(vq, sgs, outcnt, 0, vbuf, GFP_ATOMIC); 593 if (ret == -ENOSPC) { 594 spin_unlock(&vgdev->cursorq.qlock); 595 wait_event(vgdev->cursorq.ack_queue, 596 vq->num_free >= outcnt || vgdev->vqs_released); 597 /* See comment in virtio_gpu_queue_ctrl_sgs(). */ 598 if (vgdev->vqs_released) { 599 free_vbuf(vgdev, vbuf); 600 drm_dev_exit(idx); 601 return; 602 } 603 spin_lock(&vgdev->cursorq.qlock); 604 goto retry; 605 } else { 606 vbuf->seqno = ++vgdev->cursorq.seqno; 607 trace_virtio_gpu_cmd_queue(vq, 608 virtio_gpu_vbuf_ctrl_hdr(vbuf), 609 vbuf->seqno); 610 611 notify = virtqueue_kick_prepare(vq); 612 } 613 614 spin_unlock(&vgdev->cursorq.qlock); 615 616 if (notify) 617 virtqueue_notify(vq); 618 619 drm_dev_exit(idx); 620 } 621 622 /* just create gem objects for userspace and long lived objects, 623 * just use dma_alloced pages for the queue objects? 624 */ 625 626 /* create a basic resource */ 627 void virtio_gpu_cmd_create_resource(struct virtio_gpu_device *vgdev, 628 struct virtio_gpu_object *bo, 629 struct virtio_gpu_object_params *params, 630 struct virtio_gpu_object_array *objs, 631 struct virtio_gpu_fence *fence) 632 { 633 struct virtio_gpu_resource_create_2d *cmd_p; 634 struct virtio_gpu_vbuffer *vbuf; 635 636 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 637 memset(cmd_p, 0, sizeof(*cmd_p)); 638 vbuf->objs = objs; 639 640 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_CREATE_2D); 641 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 642 cmd_p->format = cpu_to_le32(params->format); 643 cmd_p->width = cpu_to_le32(params->width); 644 cmd_p->height = cpu_to_le32(params->height); 645 646 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 647 bo->created = true; 648 } 649 650 static void virtio_gpu_cmd_unref_cb(struct virtio_gpu_device *vgdev, 651 struct virtio_gpu_vbuffer *vbuf) 652 { 653 struct virtio_gpu_object *bo; 654 655 bo = vbuf->resp_cb_data; 656 vbuf->resp_cb_data = NULL; 657 658 virtio_gpu_cleanup_object(bo); 659 } 660 661 void virtio_gpu_cmd_unref_resource(struct virtio_gpu_device *vgdev, 662 struct virtio_gpu_object *bo, 663 bool no_cb) 664 { 665 struct virtio_gpu_resource_unref *cmd_p; 666 struct virtio_gpu_vbuffer *vbuf; 667 int ret; 668 669 if (no_cb) { 670 cmd_p = virtio_gpu_alloc_cmd_cb(vgdev, &vbuf, sizeof(*cmd_p), 671 NULL); 672 } else { 673 cmd_p = virtio_gpu_alloc_cmd_cb(vgdev, &vbuf, sizeof(*cmd_p), 674 virtio_gpu_cmd_unref_cb); 675 } 676 677 memset(cmd_p, 0, sizeof(*cmd_p)); 678 679 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_UNREF); 680 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 681 682 vbuf->resp_cb_data = bo; 683 ret = virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 684 if (ret < 0) 685 virtio_gpu_cleanup_object(bo); 686 } 687 688 void virtio_gpu_cmd_set_scanout(struct virtio_gpu_device *vgdev, 689 uint32_t scanout_id, uint32_t resource_id, 690 uint32_t width, uint32_t height, 691 uint32_t x, uint32_t y) 692 { 693 struct virtio_gpu_set_scanout *cmd_p; 694 struct virtio_gpu_vbuffer *vbuf; 695 696 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 697 memset(cmd_p, 0, sizeof(*cmd_p)); 698 699 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_SET_SCANOUT); 700 cmd_p->resource_id = cpu_to_le32(resource_id); 701 cmd_p->scanout_id = cpu_to_le32(scanout_id); 702 cmd_p->r.width = cpu_to_le32(width); 703 cmd_p->r.height = cpu_to_le32(height); 704 cmd_p->r.x = cpu_to_le32(x); 705 cmd_p->r.y = cpu_to_le32(y); 706 707 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 708 } 709 710 /* For drm_panic */ 711 void virtio_gpu_panic_cmd_resource_flush(struct virtio_gpu_device *vgdev, 712 uint32_t resource_id, 713 uint32_t x, uint32_t y, 714 uint32_t width, uint32_t height) 715 { 716 struct virtio_gpu_resource_flush *cmd_p; 717 struct virtio_gpu_vbuffer *vbuf; 718 719 cmd_p = virtio_gpu_panic_alloc_cmd_resp(vgdev, &vbuf, sizeof(*cmd_p)); 720 memset(cmd_p, 0, sizeof(*cmd_p)); 721 vbuf->objs = NULL; 722 723 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_FLUSH); 724 cmd_p->resource_id = cpu_to_le32(resource_id); 725 cmd_p->r.width = cpu_to_le32(width); 726 cmd_p->r.height = cpu_to_le32(height); 727 cmd_p->r.x = cpu_to_le32(x); 728 cmd_p->r.y = cpu_to_le32(y); 729 730 virtio_gpu_panic_queue_ctrl_buffer(vgdev, vbuf); 731 } 732 733 void virtio_gpu_cmd_resource_flush(struct virtio_gpu_device *vgdev, 734 uint32_t resource_id, 735 uint32_t x, uint32_t y, 736 uint32_t width, uint32_t height, 737 struct virtio_gpu_object_array *objs, 738 struct virtio_gpu_fence *fence) 739 { 740 struct virtio_gpu_resource_flush *cmd_p; 741 struct virtio_gpu_vbuffer *vbuf; 742 743 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 744 memset(cmd_p, 0, sizeof(*cmd_p)); 745 vbuf->objs = objs; 746 747 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_FLUSH); 748 cmd_p->resource_id = cpu_to_le32(resource_id); 749 cmd_p->r.width = cpu_to_le32(width); 750 cmd_p->r.height = cpu_to_le32(height); 751 cmd_p->r.x = cpu_to_le32(x); 752 cmd_p->r.y = cpu_to_le32(y); 753 754 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 755 } 756 757 /* For drm_panic */ 758 int virtio_gpu_panic_cmd_transfer_to_host_2d(struct virtio_gpu_device *vgdev, 759 uint64_t offset, 760 uint32_t width, uint32_t height, 761 uint32_t x, uint32_t y, 762 struct virtio_gpu_object_array *objs) 763 { 764 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 765 struct virtio_gpu_transfer_to_host_2d *cmd_p; 766 struct virtio_gpu_vbuffer *vbuf; 767 bool use_dma_api = !virtio_has_dma_quirk(vgdev->vdev); 768 769 if (virtio_gpu_is_shmem(bo) && use_dma_api) 770 dma_sync_sgtable_for_device(vgdev->vdev->dev.parent, 771 bo->base.sgt, DMA_TO_DEVICE); 772 773 cmd_p = virtio_gpu_panic_alloc_cmd_resp(vgdev, &vbuf, sizeof(*cmd_p)); 774 memset(cmd_p, 0, sizeof(*cmd_p)); 775 vbuf->objs = objs; 776 777 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_TRANSFER_TO_HOST_2D); 778 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 779 cmd_p->offset = cpu_to_le64(offset); 780 cmd_p->r.width = cpu_to_le32(width); 781 cmd_p->r.height = cpu_to_le32(height); 782 cmd_p->r.x = cpu_to_le32(x); 783 cmd_p->r.y = cpu_to_le32(y); 784 785 return virtio_gpu_panic_queue_ctrl_buffer(vgdev, vbuf); 786 } 787 788 void virtio_gpu_cmd_transfer_to_host_2d(struct virtio_gpu_device *vgdev, 789 uint64_t offset, 790 uint32_t width, uint32_t height, 791 uint32_t x, uint32_t y, 792 struct virtio_gpu_object_array *objs, 793 struct virtio_gpu_fence *fence) 794 { 795 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 796 struct virtio_gpu_transfer_to_host_2d *cmd_p; 797 struct virtio_gpu_vbuffer *vbuf; 798 bool use_dma_api = !virtio_has_dma_quirk(vgdev->vdev); 799 800 if (virtio_gpu_is_shmem(bo) && use_dma_api) 801 dma_sync_sgtable_for_device(vgdev->vdev->dev.parent, 802 bo->base.sgt, DMA_TO_DEVICE); 803 804 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 805 memset(cmd_p, 0, sizeof(*cmd_p)); 806 vbuf->objs = objs; 807 808 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_TRANSFER_TO_HOST_2D); 809 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 810 cmd_p->offset = cpu_to_le64(offset); 811 cmd_p->r.width = cpu_to_le32(width); 812 cmd_p->r.height = cpu_to_le32(height); 813 cmd_p->r.x = cpu_to_le32(x); 814 cmd_p->r.y = cpu_to_le32(y); 815 816 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 817 } 818 819 static void 820 virtio_gpu_cmd_resource_attach_backing(struct virtio_gpu_device *vgdev, 821 uint32_t resource_id, 822 struct virtio_gpu_mem_entry *ents, 823 uint32_t nents, 824 struct virtio_gpu_fence *fence) 825 { 826 struct virtio_gpu_resource_attach_backing *cmd_p; 827 struct virtio_gpu_vbuffer *vbuf; 828 829 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 830 memset(cmd_p, 0, sizeof(*cmd_p)); 831 832 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_ATTACH_BACKING); 833 cmd_p->resource_id = cpu_to_le32(resource_id); 834 cmd_p->nr_entries = cpu_to_le32(nents); 835 836 vbuf->data_buf = ents; 837 vbuf->data_size = sizeof(*ents) * nents; 838 839 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 840 } 841 842 static void 843 virtio_gpu_cmd_resource_detach_backing(struct virtio_gpu_device *vgdev, 844 uint32_t resource_id, 845 struct virtio_gpu_fence *fence) 846 { 847 struct virtio_gpu_resource_detach_backing *cmd_p; 848 struct virtio_gpu_vbuffer *vbuf; 849 850 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 851 memset(cmd_p, 0, sizeof(*cmd_p)); 852 853 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_DETACH_BACKING); 854 cmd_p->resource_id = cpu_to_le32(resource_id); 855 856 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 857 } 858 859 static void virtio_gpu_cmd_get_display_info_cb(struct virtio_gpu_device *vgdev, 860 struct virtio_gpu_vbuffer *vbuf) 861 { 862 struct virtio_gpu_resp_display_info *resp = 863 (struct virtio_gpu_resp_display_info *)vbuf->resp_buf; 864 int i; 865 866 spin_lock(&vgdev->display_info_lock); 867 for (i = 0; i < vgdev->num_scanouts; i++) { 868 vgdev->outputs[i].info = resp->pmodes[i]; 869 if (resp->pmodes[i].enabled) { 870 DRM_DEBUG("output %d: %dx%d+%d+%d", i, 871 le32_to_cpu(resp->pmodes[i].r.width), 872 le32_to_cpu(resp->pmodes[i].r.height), 873 le32_to_cpu(resp->pmodes[i].r.x), 874 le32_to_cpu(resp->pmodes[i].r.y)); 875 } else { 876 DRM_DEBUG("output %d: disabled", i); 877 } 878 } 879 880 vgdev->display_info_pending = false; 881 spin_unlock(&vgdev->display_info_lock); 882 wake_up(&vgdev->resp_wq); 883 } 884 885 static void virtio_gpu_cmd_get_capset_info_cb(struct virtio_gpu_device *vgdev, 886 struct virtio_gpu_vbuffer *vbuf) 887 { 888 struct virtio_gpu_get_capset_info *cmd = 889 (struct virtio_gpu_get_capset_info *)vbuf->buf; 890 struct virtio_gpu_resp_capset_info *resp = 891 (struct virtio_gpu_resp_capset_info *)vbuf->resp_buf; 892 int i = le32_to_cpu(cmd->capset_index); 893 894 spin_lock(&vgdev->display_info_lock); 895 if (vgdev->capsets) { 896 vgdev->capsets[i].id = le32_to_cpu(resp->capset_id); 897 vgdev->capsets[i].max_version = le32_to_cpu(resp->capset_max_version); 898 vgdev->capsets[i].max_size = le32_to_cpu(resp->capset_max_size); 899 } else { 900 DRM_ERROR("invalid capset memory."); 901 } 902 spin_unlock(&vgdev->display_info_lock); 903 wake_up(&vgdev->resp_wq); 904 } 905 906 static void virtio_gpu_cmd_capset_cb(struct virtio_gpu_device *vgdev, 907 struct virtio_gpu_vbuffer *vbuf) 908 { 909 struct virtio_gpu_get_capset *cmd = 910 (struct virtio_gpu_get_capset *)vbuf->buf; 911 struct virtio_gpu_resp_capset *resp = 912 (struct virtio_gpu_resp_capset *)vbuf->resp_buf; 913 struct virtio_gpu_drv_cap_cache *cache_ent; 914 915 spin_lock(&vgdev->display_info_lock); 916 list_for_each_entry(cache_ent, &vgdev->cap_cache, head) { 917 if (cache_ent->version == le32_to_cpu(cmd->capset_version) && 918 cache_ent->id == le32_to_cpu(cmd->capset_id)) { 919 memcpy(cache_ent->caps_cache, resp->capset_data, 920 cache_ent->size); 921 /* Copy must occur before is_valid is signalled. */ 922 smp_wmb(); 923 atomic_set(&cache_ent->is_valid, 1); 924 break; 925 } 926 } 927 spin_unlock(&vgdev->display_info_lock); 928 wake_up_all(&vgdev->resp_wq); 929 } 930 931 static int virtio_get_edid_block(void *data, u8 *buf, 932 unsigned int block, size_t len) 933 { 934 struct virtio_gpu_resp_edid *resp = data; 935 size_t start = block * EDID_LENGTH; 936 937 if (start + len > le32_to_cpu(resp->size) || 938 start + len > sizeof(resp->edid)) 939 return -EINVAL; 940 memcpy(buf, resp->edid + start, len); 941 return 0; 942 } 943 944 static void virtio_gpu_cmd_get_edid_cb(struct virtio_gpu_device *vgdev, 945 struct virtio_gpu_vbuffer *vbuf) 946 { 947 struct virtio_gpu_cmd_get_edid *cmd = 948 (struct virtio_gpu_cmd_get_edid *)vbuf->buf; 949 struct virtio_gpu_resp_edid *resp = 950 (struct virtio_gpu_resp_edid *)vbuf->resp_buf; 951 uint32_t scanout = le32_to_cpu(cmd->scanout); 952 struct virtio_gpu_output *output; 953 const struct drm_edid *new_edid, *old_edid; 954 955 if (scanout >= vgdev->num_scanouts) 956 return; 957 output = vgdev->outputs + scanout; 958 959 new_edid = drm_edid_read_custom(&output->conn, virtio_get_edid_block, resp); 960 drm_edid_connector_update(&output->conn, new_edid); 961 962 spin_lock(&vgdev->display_info_lock); 963 old_edid = output->drm_edid; 964 output->drm_edid = new_edid; 965 spin_unlock(&vgdev->display_info_lock); 966 967 drm_edid_free(old_edid); 968 wake_up(&vgdev->resp_wq); 969 } 970 971 int virtio_gpu_cmd_get_display_info(struct virtio_gpu_device *vgdev) 972 { 973 struct virtio_gpu_ctrl_hdr *cmd_p; 974 struct virtio_gpu_vbuffer *vbuf; 975 void *resp_buf; 976 977 resp_buf = kzalloc_obj(struct virtio_gpu_resp_display_info); 978 if (!resp_buf) 979 return -ENOMEM; 980 981 cmd_p = virtio_gpu_alloc_cmd_resp 982 (vgdev, &virtio_gpu_cmd_get_display_info_cb, &vbuf, 983 sizeof(*cmd_p), sizeof(struct virtio_gpu_resp_display_info), 984 resp_buf); 985 memset(cmd_p, 0, sizeof(*cmd_p)); 986 987 vgdev->display_info_pending = true; 988 cmd_p->type = cpu_to_le32(VIRTIO_GPU_CMD_GET_DISPLAY_INFO); 989 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 990 return 0; 991 } 992 993 int virtio_gpu_cmd_get_capset_info(struct virtio_gpu_device *vgdev, int idx) 994 { 995 struct virtio_gpu_get_capset_info *cmd_p; 996 struct virtio_gpu_vbuffer *vbuf; 997 void *resp_buf; 998 999 resp_buf = kzalloc_obj(struct virtio_gpu_resp_capset_info); 1000 if (!resp_buf) 1001 return -ENOMEM; 1002 1003 cmd_p = virtio_gpu_alloc_cmd_resp 1004 (vgdev, &virtio_gpu_cmd_get_capset_info_cb, &vbuf, 1005 sizeof(*cmd_p), sizeof(struct virtio_gpu_resp_capset_info), 1006 resp_buf); 1007 memset(cmd_p, 0, sizeof(*cmd_p)); 1008 1009 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_GET_CAPSET_INFO); 1010 cmd_p->capset_index = cpu_to_le32(idx); 1011 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1012 return 0; 1013 } 1014 1015 int virtio_gpu_cmd_get_capset(struct virtio_gpu_device *vgdev, 1016 int idx, int version, 1017 struct virtio_gpu_drv_cap_cache **cache_p) 1018 { 1019 struct virtio_gpu_get_capset *cmd_p; 1020 struct virtio_gpu_vbuffer *vbuf; 1021 int max_size; 1022 struct virtio_gpu_drv_cap_cache *cache_ent; 1023 struct virtio_gpu_drv_cap_cache *search_ent; 1024 void *resp_buf; 1025 1026 *cache_p = NULL; 1027 1028 if (idx >= vgdev->num_capsets) 1029 return -EINVAL; 1030 1031 if (version > vgdev->capsets[idx].max_version) 1032 return -EINVAL; 1033 1034 cache_ent = kzalloc_obj(*cache_ent); 1035 if (!cache_ent) 1036 return -ENOMEM; 1037 1038 max_size = vgdev->capsets[idx].max_size; 1039 cache_ent->caps_cache = kmalloc(max_size, GFP_KERNEL); 1040 if (!cache_ent->caps_cache) { 1041 kfree(cache_ent); 1042 return -ENOMEM; 1043 } 1044 1045 resp_buf = kzalloc(sizeof(struct virtio_gpu_resp_capset) + max_size, 1046 GFP_KERNEL); 1047 if (!resp_buf) { 1048 kfree(cache_ent->caps_cache); 1049 kfree(cache_ent); 1050 return -ENOMEM; 1051 } 1052 1053 cache_ent->version = version; 1054 cache_ent->id = vgdev->capsets[idx].id; 1055 atomic_set(&cache_ent->is_valid, 0); 1056 cache_ent->size = max_size; 1057 spin_lock(&vgdev->display_info_lock); 1058 /* Search while under lock in case it was added by another task. */ 1059 list_for_each_entry(search_ent, &vgdev->cap_cache, head) { 1060 if (search_ent->id == vgdev->capsets[idx].id && 1061 search_ent->version == version) { 1062 *cache_p = search_ent; 1063 break; 1064 } 1065 } 1066 if (!*cache_p) 1067 list_add_tail(&cache_ent->head, &vgdev->cap_cache); 1068 spin_unlock(&vgdev->display_info_lock); 1069 1070 if (*cache_p) { 1071 /* Entry was found, so free everything that was just created. */ 1072 kfree(resp_buf); 1073 kfree(cache_ent->caps_cache); 1074 kfree(cache_ent); 1075 return 0; 1076 } 1077 1078 cmd_p = virtio_gpu_alloc_cmd_resp 1079 (vgdev, &virtio_gpu_cmd_capset_cb, &vbuf, sizeof(*cmd_p), 1080 sizeof(struct virtio_gpu_resp_capset) + max_size, 1081 resp_buf); 1082 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_GET_CAPSET); 1083 cmd_p->capset_id = cpu_to_le32(vgdev->capsets[idx].id); 1084 cmd_p->capset_version = cpu_to_le32(version); 1085 *cache_p = cache_ent; 1086 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1087 1088 return 0; 1089 } 1090 1091 int virtio_gpu_cmd_get_edids(struct virtio_gpu_device *vgdev) 1092 { 1093 struct virtio_gpu_cmd_get_edid *cmd_p; 1094 struct virtio_gpu_vbuffer *vbuf; 1095 void *resp_buf; 1096 int scanout; 1097 1098 if (WARN_ON(!vgdev->has_edid)) 1099 return -EINVAL; 1100 1101 for (scanout = 0; scanout < vgdev->num_scanouts; scanout++) { 1102 resp_buf = kzalloc_obj(struct virtio_gpu_resp_edid); 1103 if (!resp_buf) 1104 return -ENOMEM; 1105 1106 cmd_p = virtio_gpu_alloc_cmd_resp 1107 (vgdev, &virtio_gpu_cmd_get_edid_cb, &vbuf, 1108 sizeof(*cmd_p), sizeof(struct virtio_gpu_resp_edid), 1109 resp_buf); 1110 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_GET_EDID); 1111 cmd_p->scanout = cpu_to_le32(scanout); 1112 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1113 } 1114 1115 return 0; 1116 } 1117 1118 void virtio_gpu_cmd_context_create(struct virtio_gpu_device *vgdev, uint32_t id, 1119 uint32_t context_init, uint32_t nlen, 1120 const char *name) 1121 { 1122 struct virtio_gpu_ctx_create *cmd_p; 1123 struct virtio_gpu_vbuffer *vbuf; 1124 1125 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1126 memset(cmd_p, 0, sizeof(*cmd_p)); 1127 1128 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_CTX_CREATE); 1129 cmd_p->hdr.ctx_id = cpu_to_le32(id); 1130 cmd_p->nlen = cpu_to_le32(nlen); 1131 cmd_p->context_init = cpu_to_le32(context_init); 1132 strscpy(cmd_p->debug_name, name, sizeof(cmd_p->debug_name)); 1133 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1134 } 1135 1136 void virtio_gpu_cmd_context_destroy(struct virtio_gpu_device *vgdev, 1137 uint32_t id) 1138 { 1139 struct virtio_gpu_ctx_destroy *cmd_p; 1140 struct virtio_gpu_vbuffer *vbuf; 1141 1142 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1143 memset(cmd_p, 0, sizeof(*cmd_p)); 1144 1145 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_CTX_DESTROY); 1146 cmd_p->hdr.ctx_id = cpu_to_le32(id); 1147 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1148 } 1149 1150 void virtio_gpu_cmd_context_attach_resource(struct virtio_gpu_device *vgdev, 1151 uint32_t ctx_id, 1152 struct virtio_gpu_object_array *objs) 1153 { 1154 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1155 struct virtio_gpu_ctx_resource *cmd_p; 1156 struct virtio_gpu_vbuffer *vbuf; 1157 1158 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1159 memset(cmd_p, 0, sizeof(*cmd_p)); 1160 vbuf->objs = objs; 1161 1162 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_CTX_ATTACH_RESOURCE); 1163 cmd_p->hdr.ctx_id = cpu_to_le32(ctx_id); 1164 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1165 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1166 } 1167 1168 void virtio_gpu_cmd_context_detach_resource(struct virtio_gpu_device *vgdev, 1169 uint32_t ctx_id, 1170 struct virtio_gpu_object_array *objs) 1171 { 1172 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1173 struct virtio_gpu_ctx_resource *cmd_p; 1174 struct virtio_gpu_vbuffer *vbuf; 1175 1176 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1177 memset(cmd_p, 0, sizeof(*cmd_p)); 1178 vbuf->objs = objs; 1179 1180 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_CTX_DETACH_RESOURCE); 1181 cmd_p->hdr.ctx_id = cpu_to_le32(ctx_id); 1182 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1183 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1184 } 1185 1186 void 1187 virtio_gpu_cmd_resource_create_3d(struct virtio_gpu_device *vgdev, 1188 struct virtio_gpu_object *bo, 1189 struct virtio_gpu_object_params *params, 1190 struct virtio_gpu_object_array *objs, 1191 struct virtio_gpu_fence *fence) 1192 { 1193 struct virtio_gpu_resource_create_3d *cmd_p; 1194 struct virtio_gpu_vbuffer *vbuf; 1195 1196 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1197 memset(cmd_p, 0, sizeof(*cmd_p)); 1198 vbuf->objs = objs; 1199 1200 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_CREATE_3D); 1201 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1202 cmd_p->format = cpu_to_le32(params->format); 1203 cmd_p->width = cpu_to_le32(params->width); 1204 cmd_p->height = cpu_to_le32(params->height); 1205 1206 cmd_p->target = cpu_to_le32(params->target); 1207 cmd_p->bind = cpu_to_le32(params->bind); 1208 cmd_p->depth = cpu_to_le32(params->depth); 1209 cmd_p->array_size = cpu_to_le32(params->array_size); 1210 cmd_p->last_level = cpu_to_le32(params->last_level); 1211 cmd_p->nr_samples = cpu_to_le32(params->nr_samples); 1212 cmd_p->flags = cpu_to_le32(params->flags); 1213 1214 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 1215 1216 bo->created = true; 1217 } 1218 1219 void virtio_gpu_cmd_transfer_to_host_3d(struct virtio_gpu_device *vgdev, 1220 uint32_t ctx_id, 1221 uint64_t offset, uint32_t level, 1222 uint32_t stride, 1223 uint32_t layer_stride, 1224 struct drm_virtgpu_3d_box *box, 1225 struct virtio_gpu_object_array *objs, 1226 struct virtio_gpu_fence *fence) 1227 { 1228 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1229 struct virtio_gpu_transfer_host_3d *cmd_p; 1230 struct virtio_gpu_vbuffer *vbuf; 1231 bool use_dma_api = !virtio_has_dma_quirk(vgdev->vdev); 1232 1233 if (virtio_gpu_is_shmem(bo) && use_dma_api) 1234 dma_sync_sgtable_for_device(vgdev->vdev->dev.parent, 1235 bo->base.sgt, DMA_TO_DEVICE); 1236 1237 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1238 memset(cmd_p, 0, sizeof(*cmd_p)); 1239 1240 vbuf->objs = objs; 1241 1242 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_TRANSFER_TO_HOST_3D); 1243 cmd_p->hdr.ctx_id = cpu_to_le32(ctx_id); 1244 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1245 convert_to_hw_box(&cmd_p->box, box); 1246 cmd_p->offset = cpu_to_le64(offset); 1247 cmd_p->level = cpu_to_le32(level); 1248 cmd_p->stride = cpu_to_le32(stride); 1249 cmd_p->layer_stride = cpu_to_le32(layer_stride); 1250 1251 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 1252 } 1253 1254 void virtio_gpu_cmd_transfer_from_host_3d(struct virtio_gpu_device *vgdev, 1255 uint32_t ctx_id, 1256 uint64_t offset, uint32_t level, 1257 uint32_t stride, 1258 uint32_t layer_stride, 1259 struct drm_virtgpu_3d_box *box, 1260 struct virtio_gpu_object_array *objs, 1261 struct virtio_gpu_fence *fence) 1262 { 1263 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1264 struct virtio_gpu_transfer_host_3d *cmd_p; 1265 struct virtio_gpu_vbuffer *vbuf; 1266 1267 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1268 memset(cmd_p, 0, sizeof(*cmd_p)); 1269 1270 vbuf->objs = objs; 1271 1272 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_TRANSFER_FROM_HOST_3D); 1273 cmd_p->hdr.ctx_id = cpu_to_le32(ctx_id); 1274 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1275 convert_to_hw_box(&cmd_p->box, box); 1276 cmd_p->offset = cpu_to_le64(offset); 1277 cmd_p->level = cpu_to_le32(level); 1278 cmd_p->stride = cpu_to_le32(stride); 1279 cmd_p->layer_stride = cpu_to_le32(layer_stride); 1280 1281 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 1282 } 1283 1284 void virtio_gpu_cmd_submit(struct virtio_gpu_device *vgdev, 1285 void *data, uint32_t data_size, 1286 uint32_t ctx_id, 1287 struct virtio_gpu_object_array *objs, 1288 struct virtio_gpu_fence *fence) 1289 { 1290 struct virtio_gpu_cmd_submit *cmd_p; 1291 struct virtio_gpu_vbuffer *vbuf; 1292 1293 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1294 memset(cmd_p, 0, sizeof(*cmd_p)); 1295 1296 vbuf->data_buf = data; 1297 vbuf->data_size = data_size; 1298 vbuf->objs = objs; 1299 1300 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_SUBMIT_3D); 1301 cmd_p->hdr.ctx_id = cpu_to_le32(ctx_id); 1302 cmd_p->size = cpu_to_le32(data_size); 1303 1304 virtio_gpu_queue_fenced_ctrl_buffer(vgdev, vbuf, fence); 1305 } 1306 1307 void virtio_gpu_object_attach(struct virtio_gpu_device *vgdev, 1308 struct virtio_gpu_object *obj, 1309 struct virtio_gpu_mem_entry *ents, 1310 unsigned int nents) 1311 { 1312 if (obj->attached) 1313 return; 1314 1315 virtio_gpu_cmd_resource_attach_backing(vgdev, obj->hw_res_handle, 1316 ents, nents, NULL); 1317 1318 obj->attached = true; 1319 } 1320 1321 void virtio_gpu_object_detach(struct virtio_gpu_device *vgdev, 1322 struct virtio_gpu_object *obj, 1323 struct virtio_gpu_fence *fence) 1324 { 1325 if (!obj->attached) 1326 return; 1327 1328 virtio_gpu_cmd_resource_detach_backing(vgdev, obj->hw_res_handle, 1329 fence); 1330 1331 obj->attached = false; 1332 } 1333 1334 void virtio_gpu_cursor_ping(struct virtio_gpu_device *vgdev, 1335 struct virtio_gpu_output *output) 1336 { 1337 struct virtio_gpu_vbuffer *vbuf; 1338 struct virtio_gpu_update_cursor *cur_p; 1339 1340 output->cursor.pos.scanout_id = cpu_to_le32(output->index); 1341 cur_p = virtio_gpu_alloc_cursor(vgdev, &vbuf); 1342 memcpy(cur_p, &output->cursor, sizeof(output->cursor)); 1343 virtio_gpu_queue_cursor(vgdev, vbuf); 1344 } 1345 1346 static void virtio_gpu_cmd_resource_uuid_cb(struct virtio_gpu_device *vgdev, 1347 struct virtio_gpu_vbuffer *vbuf) 1348 { 1349 struct virtio_gpu_object *obj = 1350 gem_to_virtio_gpu_obj(vbuf->objs->objs[0]); 1351 struct virtio_gpu_resp_resource_uuid *resp = 1352 (struct virtio_gpu_resp_resource_uuid *)vbuf->resp_buf; 1353 uint32_t resp_type = le32_to_cpu(resp->hdr.type); 1354 1355 spin_lock(&vgdev->resource_export_lock); 1356 WARN_ON(obj->uuid_state != STATE_INITIALIZING); 1357 1358 if (resp_type == VIRTIO_GPU_RESP_OK_RESOURCE_UUID && 1359 obj->uuid_state == STATE_INITIALIZING) { 1360 import_uuid(&obj->uuid, resp->uuid); 1361 obj->uuid_state = STATE_OK; 1362 } else { 1363 obj->uuid_state = STATE_ERR; 1364 } 1365 spin_unlock(&vgdev->resource_export_lock); 1366 1367 wake_up_all(&vgdev->resp_wq); 1368 } 1369 1370 int 1371 virtio_gpu_cmd_resource_assign_uuid(struct virtio_gpu_device *vgdev, 1372 struct virtio_gpu_object_array *objs) 1373 { 1374 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1375 struct virtio_gpu_resource_assign_uuid *cmd_p; 1376 struct virtio_gpu_vbuffer *vbuf; 1377 struct virtio_gpu_resp_resource_uuid *resp_buf; 1378 1379 resp_buf = kzalloc_obj(*resp_buf); 1380 if (!resp_buf) { 1381 spin_lock(&vgdev->resource_export_lock); 1382 bo->uuid_state = STATE_ERR; 1383 spin_unlock(&vgdev->resource_export_lock); 1384 virtio_gpu_array_put_free(objs); 1385 return -ENOMEM; 1386 } 1387 1388 cmd_p = virtio_gpu_alloc_cmd_resp 1389 (vgdev, virtio_gpu_cmd_resource_uuid_cb, &vbuf, sizeof(*cmd_p), 1390 sizeof(struct virtio_gpu_resp_resource_uuid), resp_buf); 1391 memset(cmd_p, 0, sizeof(*cmd_p)); 1392 1393 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_ASSIGN_UUID); 1394 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1395 1396 vbuf->objs = objs; 1397 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1398 return 0; 1399 } 1400 1401 static void virtio_gpu_cmd_resource_map_cb(struct virtio_gpu_device *vgdev, 1402 struct virtio_gpu_vbuffer *vbuf) 1403 { 1404 struct virtio_gpu_object *bo = 1405 gem_to_virtio_gpu_obj(vbuf->objs->objs[0]); 1406 struct virtio_gpu_resp_map_info *resp = 1407 (struct virtio_gpu_resp_map_info *)vbuf->resp_buf; 1408 struct virtio_gpu_object_vram *vram = to_virtio_gpu_vram(bo); 1409 uint32_t resp_type = le32_to_cpu(resp->hdr.type); 1410 1411 spin_lock(&vgdev->host_visible_lock); 1412 1413 if (resp_type == VIRTIO_GPU_RESP_OK_MAP_INFO) { 1414 vram->map_info = resp->map_info; 1415 vram->map_state = STATE_OK; 1416 } else { 1417 vram->map_state = STATE_ERR; 1418 } 1419 1420 spin_unlock(&vgdev->host_visible_lock); 1421 wake_up_all(&vgdev->resp_wq); 1422 } 1423 1424 int virtio_gpu_cmd_map(struct virtio_gpu_device *vgdev, 1425 struct virtio_gpu_object_array *objs, uint64_t offset) 1426 { 1427 struct virtio_gpu_resource_map_blob *cmd_p; 1428 struct virtio_gpu_object *bo = gem_to_virtio_gpu_obj(objs->objs[0]); 1429 struct virtio_gpu_vbuffer *vbuf; 1430 struct virtio_gpu_resp_map_info *resp_buf; 1431 1432 resp_buf = kzalloc_obj(*resp_buf); 1433 if (!resp_buf) 1434 return -ENOMEM; 1435 1436 cmd_p = virtio_gpu_alloc_cmd_resp 1437 (vgdev, virtio_gpu_cmd_resource_map_cb, &vbuf, sizeof(*cmd_p), 1438 sizeof(struct virtio_gpu_resp_map_info), resp_buf); 1439 memset(cmd_p, 0, sizeof(*cmd_p)); 1440 1441 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_MAP_BLOB); 1442 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1443 cmd_p->offset = cpu_to_le64(offset); 1444 vbuf->objs = objs; 1445 1446 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1447 return 0; 1448 } 1449 1450 void virtio_gpu_cmd_unmap(struct virtio_gpu_device *vgdev, 1451 struct virtio_gpu_object *bo) 1452 { 1453 struct virtio_gpu_resource_unmap_blob *cmd_p; 1454 struct virtio_gpu_vbuffer *vbuf; 1455 1456 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1457 memset(cmd_p, 0, sizeof(*cmd_p)); 1458 1459 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_UNMAP_BLOB); 1460 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1461 1462 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1463 } 1464 1465 void 1466 virtio_gpu_cmd_resource_create_blob(struct virtio_gpu_device *vgdev, 1467 struct virtio_gpu_object *bo, 1468 struct virtio_gpu_object_params *params, 1469 struct virtio_gpu_mem_entry *ents, 1470 uint32_t nents) 1471 { 1472 struct virtio_gpu_resource_create_blob *cmd_p; 1473 struct virtio_gpu_vbuffer *vbuf; 1474 1475 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1476 memset(cmd_p, 0, sizeof(*cmd_p)); 1477 1478 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_RESOURCE_CREATE_BLOB); 1479 cmd_p->hdr.ctx_id = cpu_to_le32(params->ctx_id); 1480 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1481 cmd_p->blob_mem = cpu_to_le32(params->blob_mem); 1482 cmd_p->blob_flags = cpu_to_le32(params->blob_flags); 1483 cmd_p->blob_id = cpu_to_le64(params->blob_id); 1484 cmd_p->size = cpu_to_le64(params->size); 1485 cmd_p->nr_entries = cpu_to_le32(nents); 1486 1487 vbuf->data_buf = ents; 1488 vbuf->data_size = sizeof(*ents) * nents; 1489 1490 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1491 bo->created = true; 1492 1493 if (nents) 1494 bo->attached = true; 1495 } 1496 1497 void virtio_gpu_cmd_set_scanout_blob(struct virtio_gpu_device *vgdev, 1498 uint32_t scanout_id, 1499 struct virtio_gpu_object *bo, 1500 struct drm_framebuffer *fb, 1501 uint32_t width, uint32_t height, 1502 uint32_t x, uint32_t y) 1503 { 1504 uint32_t i; 1505 struct virtio_gpu_set_scanout_blob *cmd_p; 1506 struct virtio_gpu_vbuffer *vbuf; 1507 uint32_t format = virtio_gpu_translate_format(fb->format->format); 1508 1509 cmd_p = virtio_gpu_alloc_cmd(vgdev, &vbuf, sizeof(*cmd_p)); 1510 memset(cmd_p, 0, sizeof(*cmd_p)); 1511 1512 cmd_p->hdr.type = cpu_to_le32(VIRTIO_GPU_CMD_SET_SCANOUT_BLOB); 1513 cmd_p->resource_id = cpu_to_le32(bo->hw_res_handle); 1514 cmd_p->scanout_id = cpu_to_le32(scanout_id); 1515 1516 cmd_p->format = cpu_to_le32(format); 1517 cmd_p->width = cpu_to_le32(fb->width); 1518 cmd_p->height = cpu_to_le32(fb->height); 1519 1520 for (i = 0; i < 4; i++) { 1521 cmd_p->strides[i] = cpu_to_le32(fb->pitches[i]); 1522 cmd_p->offsets[i] = cpu_to_le32(fb->offsets[i]); 1523 } 1524 1525 cmd_p->r.width = cpu_to_le32(width); 1526 cmd_p->r.height = cpu_to_le32(height); 1527 cmd_p->r.x = cpu_to_le32(x); 1528 cmd_p->r.y = cpu_to_le32(y); 1529 1530 virtio_gpu_queue_ctrl_buffer(vgdev, vbuf); 1531 } 1532