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ttm_bo.c revision 1.10.18.2
      1 /*	$NetBSD: ttm_bo.c,v 1.10.18.2 2020/04/08 14:08:26 martin Exp $	*/
      2 
      3 /**************************************************************************
      4  *
      5  * Copyright (c) 2006-2009 VMware, Inc., Palo Alto, CA., USA
      6  * All Rights Reserved.
      7  *
      8  * Permission is hereby granted, free of charge, to any person obtaining a
      9  * copy of this software and associated documentation files (the
     10  * "Software"), to deal in the Software without restriction, including
     11  * without limitation the rights to use, copy, modify, merge, publish,
     12  * distribute, sub license, and/or sell copies of the Software, and to
     13  * permit persons to whom the Software is furnished to do so, subject to
     14  * the following conditions:
     15  *
     16  * The above copyright notice and this permission notice (including the
     17  * next paragraph) shall be included in all copies or substantial portions
     18  * of the 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 NON-INFRINGEMENT. IN NO EVENT SHALL
     23  * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
     24  * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
     25  * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
     26  * USE OR OTHER DEALINGS IN THE SOFTWARE.
     27  *
     28  **************************************************************************/
     29 /*
     30  * Authors: Thomas Hellstrom <thellstrom-at-vmware-dot-com>
     31  */
     32 
     33 #include <sys/cdefs.h>
     34 __KERNEL_RCSID(0, "$NetBSD: ttm_bo.c,v 1.10.18.2 2020/04/08 14:08:26 martin Exp $");
     35 
     36 #define pr_fmt(fmt) "[TTM] " fmt
     37 
     38 #ifdef __NetBSD__
     39 #include <sys/types.h>
     40 #include <uvm/uvm_extern.h>
     41 #include <uvm/uvm_object.h>
     42 #endif
     43 
     44 #include <drm/drmP.h>
     45 #include <drm/ttm/ttm_module.h>
     46 #include <drm/ttm/ttm_bo_driver.h>
     47 #include <drm/ttm/ttm_placement.h>
     48 #include <linux/jiffies.h>
     49 #include <linux/slab.h>
     50 #include <linux/sched.h>
     51 #include <linux/mm.h>
     52 #include <linux/file.h>
     53 #include <linux/module.h>
     54 #include <linux/atomic.h>
     55 #include <linux/reservation.h>
     56 
     57 #include <linux/nbsd-namespace.h>
     58 
     59 #define TTM_ASSERT_LOCKED(param)
     60 #define TTM_DEBUG(fmt, arg...)	do {} while (0)
     61 #define TTM_BO_HASH_ORDER 13
     62 
     63 static int ttm_bo_swapout(struct ttm_mem_shrink *shrink);
     64 #ifndef __NetBSD__
     65 static void ttm_bo_global_kobj_release(struct kobject *kobj);
     66 #endif
     67 
     68 #ifndef __NetBSD__		/* XXX sysfs */
     69 static struct attribute ttm_bo_count = {
     70 	.name = "bo_count",
     71 	.mode = S_IRUGO
     72 };
     73 #endif
     74 
     75 static inline int ttm_mem_type_from_place(const struct ttm_place *place,
     76 					  uint32_t *mem_type)
     77 {
     78 	int i;
     79 
     80 	for (i = 0; i <= TTM_PL_PRIV5; i++)
     81 		if (place->flags & (1 << i)) {
     82 			*mem_type = i;
     83 			return 0;
     84 		}
     85 	return -EINVAL;
     86 }
     87 
     88 static void ttm_mem_type_debug(struct ttm_bo_device *bdev, int mem_type)
     89 {
     90 	struct ttm_mem_type_manager *man = &bdev->man[mem_type];
     91 
     92 	pr_err("    has_type: %d\n", man->has_type);
     93 	pr_err("    use_type: %d\n", man->use_type);
     94 	pr_err("    flags: 0x%08X\n", man->flags);
     95 	pr_err("    gpu_offset: 0x%"PRIX64"\n", man->gpu_offset);
     96 	pr_err("    size: %"PRIu64"\n", man->size);
     97 	pr_err("    available_caching: 0x%08X\n", man->available_caching);
     98 	pr_err("    default_caching: 0x%08X\n", man->default_caching);
     99 	if (mem_type != TTM_PL_SYSTEM)
    100 		(*man->func->debug)(man, TTM_PFX);
    101 }
    102 
    103 static void ttm_bo_mem_space_debug(struct ttm_buffer_object *bo,
    104 					struct ttm_placement *placement)
    105 {
    106 	int i, ret, mem_type;
    107 
    108 	pr_err("No space for %p (%lu pages, %luK, %luM)\n",
    109 	       bo, bo->mem.num_pages, bo->mem.size >> 10,
    110 	       bo->mem.size >> 20);
    111 	for (i = 0; i < placement->num_placement; i++) {
    112 		ret = ttm_mem_type_from_place(&placement->placement[i],
    113 						&mem_type);
    114 		if (ret)
    115 			return;
    116 		pr_err("  placement[%d]=0x%08X (%d)\n",
    117 		       i, placement->placement[i].flags, mem_type);
    118 		ttm_mem_type_debug(bo->bdev, mem_type);
    119 	}
    120 }
    121 
    122 #ifndef __NetBSD__		/* XXX sysfs */
    123 static ssize_t ttm_bo_global_show(struct kobject *kobj,
    124 				  struct attribute *attr,
    125 				  char *buffer)
    126 {
    127 	struct ttm_bo_global *glob =
    128 		container_of(kobj, struct ttm_bo_global, kobj);
    129 
    130 	return snprintf(buffer, PAGE_SIZE, "%lu\n",
    131 			(unsigned long) atomic_read(&glob->bo_count));
    132 }
    133 
    134 static struct attribute *ttm_bo_global_attrs[] = {
    135 	&ttm_bo_count,
    136 	NULL
    137 };
    138 
    139 static const struct sysfs_ops ttm_bo_global_ops = {
    140 	.show = &ttm_bo_global_show
    141 };
    142 
    143 static struct kobj_type ttm_bo_glob_kobj_type  = {
    144 	.release = &ttm_bo_global_kobj_release,
    145 	.sysfs_ops = &ttm_bo_global_ops,
    146 	.default_attrs = ttm_bo_global_attrs
    147 };
    148 #endif	/* __NetBSD__ */
    149 
    150 
    151 static inline uint32_t ttm_bo_type_flags(unsigned type)
    152 {
    153 	return 1 << (type);
    154 }
    155 
    156 static void ttm_bo_release_list(struct kref *list_kref)
    157 {
    158 	struct ttm_buffer_object *bo =
    159 	    container_of(list_kref, struct ttm_buffer_object, list_kref);
    160 	struct ttm_bo_device *bdev = bo->bdev;
    161 	size_t acc_size = bo->acc_size;
    162 
    163 	BUG_ON(kref_referenced_p(&bo->list_kref));
    164 	BUG_ON(kref_referenced_p(&bo->kref));
    165 	BUG_ON(atomic_read(&bo->cpu_writers));
    166 	BUG_ON(bo->mem.mm_node != NULL);
    167 	BUG_ON(!list_empty(&bo->lru));
    168 	BUG_ON(!list_empty(&bo->ddestroy));
    169 
    170 	if (bo->ttm)
    171 		ttm_tt_destroy(bo->ttm);
    172 	atomic_dec(&bo->glob->bo_count);
    173 	if (bo->resv == &bo->ttm_resv)
    174 		reservation_object_fini(&bo->ttm_resv);
    175 	mutex_destroy(&bo->wu_mutex);
    176 	if (bo->destroy)
    177 		bo->destroy(bo);
    178 	else {
    179 		kfree(bo);
    180 	}
    181 	ttm_mem_global_free(bdev->glob->mem_glob, acc_size);
    182 }
    183 
    184 void ttm_bo_add_to_lru(struct ttm_buffer_object *bo)
    185 {
    186 	struct ttm_bo_device *bdev = bo->bdev;
    187 	struct ttm_mem_type_manager *man;
    188 
    189 	lockdep_assert_held(&bo->resv->lock.base);
    190 
    191 	if (!(bo->mem.placement & TTM_PL_FLAG_NO_EVICT)) {
    192 
    193 		BUG_ON(!list_empty(&bo->lru));
    194 
    195 		man = &bdev->man[bo->mem.mem_type];
    196 		list_add_tail(&bo->lru, &man->lru);
    197 		kref_get(&bo->list_kref);
    198 
    199 		if (bo->ttm != NULL) {
    200 			list_add_tail(&bo->swap, &bo->glob->swap_lru);
    201 			kref_get(&bo->list_kref);
    202 		}
    203 	}
    204 }
    205 EXPORT_SYMBOL(ttm_bo_add_to_lru);
    206 
    207 int ttm_bo_del_from_lru(struct ttm_buffer_object *bo)
    208 {
    209 	int put_count = 0;
    210 
    211 	if (!list_empty(&bo->swap)) {
    212 		list_del_init(&bo->swap);
    213 		++put_count;
    214 	}
    215 	if (!list_empty(&bo->lru)) {
    216 		list_del_init(&bo->lru);
    217 		++put_count;
    218 	}
    219 
    220 	/*
    221 	 * TODO: Add a driver hook to delete from
    222 	 * driver-specific LRU's here.
    223 	 */
    224 
    225 	return put_count;
    226 }
    227 
    228 static void ttm_bo_ref_bug(struct kref *list_kref)
    229 {
    230 	BUG();
    231 }
    232 
    233 void ttm_bo_list_ref_sub(struct ttm_buffer_object *bo, int count,
    234 			 bool never_free)
    235 {
    236 	kref_sub(&bo->list_kref, count,
    237 		 (never_free) ? ttm_bo_ref_bug : ttm_bo_release_list);
    238 }
    239 
    240 void ttm_bo_del_sub_from_lru(struct ttm_buffer_object *bo)
    241 {
    242 	int put_count;
    243 
    244 	spin_lock(&bo->glob->lru_lock);
    245 	put_count = ttm_bo_del_from_lru(bo);
    246 	spin_unlock(&bo->glob->lru_lock);
    247 	ttm_bo_list_ref_sub(bo, put_count, true);
    248 }
    249 EXPORT_SYMBOL(ttm_bo_del_sub_from_lru);
    250 
    251 /*
    252  * Call bo->mutex locked.
    253  */
    254 static int ttm_bo_add_ttm(struct ttm_buffer_object *bo, bool zero_alloc)
    255 {
    256 	struct ttm_bo_device *bdev = bo->bdev;
    257 	struct ttm_bo_global *glob = bo->glob;
    258 	int ret = 0;
    259 	uint32_t page_flags = 0;
    260 
    261 	TTM_ASSERT_LOCKED(&bo->mutex);
    262 	bo->ttm = NULL;
    263 
    264 	if (bdev->need_dma32)
    265 		page_flags |= TTM_PAGE_FLAG_DMA32;
    266 
    267 	switch (bo->type) {
    268 	case ttm_bo_type_device:
    269 		if (zero_alloc)
    270 			page_flags |= TTM_PAGE_FLAG_ZERO_ALLOC;
    271 	case ttm_bo_type_kernel:
    272 		bo->ttm = bdev->driver->ttm_tt_create(bdev, bo->num_pages << PAGE_SHIFT,
    273 						      page_flags, glob->dummy_read_page);
    274 		if (unlikely(bo->ttm == NULL))
    275 			ret = -ENOMEM;
    276 		break;
    277 	case ttm_bo_type_sg:
    278 		bo->ttm = bdev->driver->ttm_tt_create(bdev, bo->num_pages << PAGE_SHIFT,
    279 						      page_flags | TTM_PAGE_FLAG_SG,
    280 						      glob->dummy_read_page);
    281 		if (unlikely(bo->ttm == NULL)) {
    282 			ret = -ENOMEM;
    283 			break;
    284 		}
    285 		bo->ttm->sg = bo->sg;
    286 		break;
    287 	default:
    288 		pr_err("Illegal buffer object type\n");
    289 		ret = -EINVAL;
    290 		break;
    291 	}
    292 
    293 #ifdef __NetBSD__
    294 	if (ret)
    295 		return ret;
    296 
    297 	/*
    298 	 * XXX This is gross.  We ought to do it the other way around:
    299 	 * set the uao to have the main uvm object's lock.  However,
    300 	 * uvm_obj_setlock is not safe on uvm_aobjs.
    301 	 */
    302 	rw_obj_hold(bo->ttm->swap_storage->vmobjlock);
    303 	uvm_obj_setlock(&bo->uvmobj, bo->ttm->swap_storage->vmobjlock);
    304 	return 0;
    305 #else
    306 	return ret;
    307 #endif
    308 }
    309 
    310 static int ttm_bo_handle_move_mem(struct ttm_buffer_object *bo,
    311 				  struct ttm_mem_reg *mem,
    312 				  bool evict, bool interruptible,
    313 				  bool no_wait_gpu)
    314 {
    315 	struct ttm_bo_device *bdev = bo->bdev;
    316 	bool old_is_pci = ttm_mem_reg_is_pci(bdev, &bo->mem);
    317 	bool new_is_pci = ttm_mem_reg_is_pci(bdev, mem);
    318 	struct ttm_mem_type_manager *old_man = &bdev->man[bo->mem.mem_type];
    319 	struct ttm_mem_type_manager *new_man = &bdev->man[mem->mem_type];
    320 	int ret = 0;
    321 
    322 	if (old_is_pci || new_is_pci ||
    323 	    ((mem->placement & bo->mem.placement & TTM_PL_MASK_CACHING) == 0)) {
    324 		ret = ttm_mem_io_lock(old_man, true);
    325 		if (unlikely(ret != 0))
    326 			goto out_err;
    327 		ttm_bo_unmap_virtual_locked(bo);
    328 		ttm_mem_io_unlock(old_man);
    329 	}
    330 
    331 	/*
    332 	 * Create and bind a ttm if required.
    333 	 */
    334 
    335 	if (!(new_man->flags & TTM_MEMTYPE_FLAG_FIXED)) {
    336 		if (bo->ttm == NULL) {
    337 			bool zero = !(old_man->flags & TTM_MEMTYPE_FLAG_FIXED);
    338 			ret = ttm_bo_add_ttm(bo, zero);
    339 			if (ret)
    340 				goto out_err;
    341 		}
    342 
    343 		ret = ttm_tt_set_placement_caching(bo->ttm, mem->placement);
    344 		if (ret)
    345 			goto out_err;
    346 
    347 		if (mem->mem_type != TTM_PL_SYSTEM) {
    348 			ret = ttm_tt_bind(bo->ttm, mem);
    349 			if (ret)
    350 				goto out_err;
    351 		}
    352 
    353 		if (bo->mem.mem_type == TTM_PL_SYSTEM) {
    354 			if (bdev->driver->move_notify)
    355 				bdev->driver->move_notify(bo, mem);
    356 			bo->mem = *mem;
    357 			mem->mm_node = NULL;
    358 			goto moved;
    359 		}
    360 	}
    361 
    362 	if (bdev->driver->move_notify)
    363 		bdev->driver->move_notify(bo, mem);
    364 
    365 	if (!(old_man->flags & TTM_MEMTYPE_FLAG_FIXED) &&
    366 	    !(new_man->flags & TTM_MEMTYPE_FLAG_FIXED))
    367 		ret = ttm_bo_move_ttm(bo, evict, no_wait_gpu, mem);
    368 	else if (bdev->driver->move)
    369 		ret = bdev->driver->move(bo, evict, interruptible,
    370 					 no_wait_gpu, mem);
    371 	else
    372 		ret = ttm_bo_move_memcpy(bo, evict, no_wait_gpu, mem);
    373 
    374 	if (ret) {
    375 		if (bdev->driver->move_notify) {
    376 			struct ttm_mem_reg tmp_mem = *mem;
    377 			*mem = bo->mem;
    378 			bo->mem = tmp_mem;
    379 			bdev->driver->move_notify(bo, mem);
    380 			bo->mem = *mem;
    381 			*mem = tmp_mem;
    382 		}
    383 
    384 		goto out_err;
    385 	}
    386 
    387 moved:
    388 	if (bo->evicted) {
    389 		if (bdev->driver->invalidate_caches) {
    390 			ret = bdev->driver->invalidate_caches(bdev, bo->mem.placement);
    391 			if (ret)
    392 				pr_err("Can not flush read caches\n");
    393 		}
    394 		bo->evicted = false;
    395 	}
    396 
    397 	if (bo->mem.mm_node) {
    398 		bo->offset = (bo->mem.start << PAGE_SHIFT) +
    399 		    bdev->man[bo->mem.mem_type].gpu_offset;
    400 		bo->cur_placement = bo->mem.placement;
    401 	} else
    402 		bo->offset = 0;
    403 
    404 	return 0;
    405 
    406 out_err:
    407 	new_man = &bdev->man[bo->mem.mem_type];
    408 	if ((new_man->flags & TTM_MEMTYPE_FLAG_FIXED) && bo->ttm) {
    409 		ttm_tt_unbind(bo->ttm);
    410 		ttm_tt_destroy(bo->ttm);
    411 		bo->ttm = NULL;
    412 	}
    413 
    414 	return ret;
    415 }
    416 
    417 /**
    418  * Call bo::reserved.
    419  * Will release GPU memory type usage on destruction.
    420  * This is the place to put in driver specific hooks to release
    421  * driver private resources.
    422  * Will release the bo::reserved lock.
    423  */
    424 
    425 static void ttm_bo_cleanup_memtype_use(struct ttm_buffer_object *bo)
    426 {
    427 	if (bo->bdev->driver->move_notify)
    428 		bo->bdev->driver->move_notify(bo, NULL);
    429 
    430 	if (bo->ttm) {
    431 		ttm_tt_unbind(bo->ttm);
    432 		ttm_tt_destroy(bo->ttm);
    433 		bo->ttm = NULL;
    434 	}
    435 	ttm_bo_mem_put(bo, &bo->mem);
    436 
    437 	ww_mutex_unlock (&bo->resv->lock);
    438 }
    439 
    440 static void ttm_bo_flush_all_fences(struct ttm_buffer_object *bo)
    441 {
    442 	struct reservation_object_list *fobj;
    443 	struct fence *fence;
    444 	int i;
    445 
    446 	fobj = reservation_object_get_list(bo->resv);
    447 	fence = reservation_object_get_excl(bo->resv);
    448 	if (fence && !fence->ops->signaled)
    449 		fence_enable_sw_signaling(fence);
    450 
    451 	for (i = 0; fobj && i < fobj->shared_count; ++i) {
    452 		fence = rcu_dereference_protected(fobj->shared[i],
    453 					reservation_object_held(bo->resv));
    454 
    455 		if (!fence->ops->signaled)
    456 			fence_enable_sw_signaling(fence);
    457 	}
    458 }
    459 
    460 static void ttm_bo_cleanup_refs_or_queue(struct ttm_buffer_object *bo)
    461 {
    462 	struct ttm_bo_device *bdev = bo->bdev;
    463 	struct ttm_bo_global *glob = bo->glob;
    464 	int put_count;
    465 	int ret;
    466 
    467 	spin_lock(&glob->lru_lock);
    468 	ret = __ttm_bo_reserve(bo, false, true, false, NULL);
    469 
    470 	if (!ret) {
    471 		if (!ttm_bo_wait(bo, false, false, true)) {
    472 			put_count = ttm_bo_del_from_lru(bo);
    473 
    474 			spin_unlock(&glob->lru_lock);
    475 			ttm_bo_cleanup_memtype_use(bo);
    476 
    477 			ttm_bo_list_ref_sub(bo, put_count, true);
    478 
    479 			return;
    480 		} else
    481 			ttm_bo_flush_all_fences(bo);
    482 
    483 		/*
    484 		 * Make NO_EVICT bos immediately available to
    485 		 * shrinkers, now that they are queued for
    486 		 * destruction.
    487 		 */
    488 		if (bo->mem.placement & TTM_PL_FLAG_NO_EVICT) {
    489 			bo->mem.placement &= ~TTM_PL_FLAG_NO_EVICT;
    490 			ttm_bo_add_to_lru(bo);
    491 		}
    492 
    493 		__ttm_bo_unreserve(bo);
    494 	}
    495 
    496 	kref_get(&bo->list_kref);
    497 	list_add_tail(&bo->ddestroy, &bdev->ddestroy);
    498 	spin_unlock(&glob->lru_lock);
    499 
    500 	schedule_delayed_work(&bdev->wq,
    501 			      ((HZ / 100) < 1) ? 1 : HZ / 100);
    502 }
    503 
    504 /**
    505  * function ttm_bo_cleanup_refs_and_unlock
    506  * If bo idle, remove from delayed- and lru lists, and unref.
    507  * If not idle, do nothing.
    508  *
    509  * Must be called with lru_lock and reservation held, this function
    510  * will drop both before returning.
    511  *
    512  * @interruptible         Any sleeps should occur interruptibly.
    513  * @no_wait_gpu           Never wait for gpu. Return -EBUSY instead.
    514  */
    515 
    516 static int ttm_bo_cleanup_refs_and_unlock(struct ttm_buffer_object *bo,
    517 					  bool interruptible,
    518 					  bool no_wait_gpu)
    519 {
    520 	struct ttm_bo_global *glob = bo->glob;
    521 	int put_count;
    522 	int ret;
    523 
    524 	ret = ttm_bo_wait(bo, false, false, true);
    525 
    526 	if (ret && !no_wait_gpu) {
    527 		long lret;
    528 		ww_mutex_unlock(&bo->resv->lock);
    529 		spin_unlock(&glob->lru_lock);
    530 
    531 		lret = reservation_object_wait_timeout_rcu(bo->resv,
    532 							   true,
    533 							   interruptible,
    534 							   30 * HZ);
    535 
    536 		if (lret < 0)
    537 			return lret;
    538 		else if (lret == 0)
    539 			return -EBUSY;
    540 
    541 		spin_lock(&glob->lru_lock);
    542 		ret = __ttm_bo_reserve(bo, false, true, false, NULL);
    543 
    544 		/*
    545 		 * We raced, and lost, someone else holds the reservation now,
    546 		 * and is probably busy in ttm_bo_cleanup_memtype_use.
    547 		 *
    548 		 * Even if it's not the case, because we finished waiting any
    549 		 * delayed destruction would succeed, so just return success
    550 		 * here.
    551 		 */
    552 		if (ret) {
    553 			spin_unlock(&glob->lru_lock);
    554 			return 0;
    555 		}
    556 
    557 		/*
    558 		 * remove sync_obj with ttm_bo_wait, the wait should be
    559 		 * finished, and no new wait object should have been added.
    560 		 */
    561 		ret = ttm_bo_wait(bo, false, false, true);
    562 		WARN_ON(ret);
    563 	}
    564 
    565 	if (ret || unlikely(list_empty(&bo->ddestroy))) {
    566 		__ttm_bo_unreserve(bo);
    567 		spin_unlock(&glob->lru_lock);
    568 		return ret;
    569 	}
    570 
    571 	put_count = ttm_bo_del_from_lru(bo);
    572 	list_del_init(&bo->ddestroy);
    573 	++put_count;
    574 
    575 	spin_unlock(&glob->lru_lock);
    576 	ttm_bo_cleanup_memtype_use(bo);
    577 
    578 	ttm_bo_list_ref_sub(bo, put_count, true);
    579 
    580 	return 0;
    581 }
    582 
    583 /**
    584  * Traverse the delayed list, and call ttm_bo_cleanup_refs on all
    585  * encountered buffers.
    586  */
    587 
    588 static int ttm_bo_delayed_delete(struct ttm_bo_device *bdev, bool remove_all)
    589 {
    590 	struct ttm_bo_global *glob = bdev->glob;
    591 	struct ttm_buffer_object *entry = NULL;
    592 	int ret = 0;
    593 
    594 	spin_lock(&glob->lru_lock);
    595 	if (list_empty(&bdev->ddestroy))
    596 		goto out_unlock;
    597 
    598 	entry = list_first_entry(&bdev->ddestroy,
    599 		struct ttm_buffer_object, ddestroy);
    600 	kref_get(&entry->list_kref);
    601 
    602 	for (;;) {
    603 		struct ttm_buffer_object *nentry = NULL;
    604 
    605 		if (entry->ddestroy.next != &bdev->ddestroy) {
    606 			nentry = list_first_entry(&entry->ddestroy,
    607 				struct ttm_buffer_object, ddestroy);
    608 			kref_get(&nentry->list_kref);
    609 		}
    610 
    611 		ret = __ttm_bo_reserve(entry, false, true, false, NULL);
    612 		if (remove_all && ret) {
    613 			spin_unlock(&glob->lru_lock);
    614 			ret = __ttm_bo_reserve(entry, false, false,
    615 					       false, NULL);
    616 			spin_lock(&glob->lru_lock);
    617 		}
    618 
    619 		if (!ret)
    620 			ret = ttm_bo_cleanup_refs_and_unlock(entry, false,
    621 							     !remove_all);
    622 		else
    623 			spin_unlock(&glob->lru_lock);
    624 
    625 		kref_put(&entry->list_kref, ttm_bo_release_list);
    626 		entry = nentry;
    627 
    628 		if (ret || !entry)
    629 			goto out;
    630 
    631 		spin_lock(&glob->lru_lock);
    632 		if (list_empty(&entry->ddestroy))
    633 			break;
    634 	}
    635 
    636 out_unlock:
    637 	spin_unlock(&glob->lru_lock);
    638 out:
    639 	if (entry)
    640 		kref_put(&entry->list_kref, ttm_bo_release_list);
    641 	return ret;
    642 }
    643 
    644 static void ttm_bo_delayed_workqueue(struct work_struct *work)
    645 {
    646 	struct ttm_bo_device *bdev =
    647 	    container_of(work, struct ttm_bo_device, wq.work);
    648 
    649 	if (ttm_bo_delayed_delete(bdev, false)) {
    650 		schedule_delayed_work(&bdev->wq,
    651 				      ((HZ / 100) < 1) ? 1 : HZ / 100);
    652 	}
    653 }
    654 
    655 static void ttm_bo_release(struct kref *kref)
    656 {
    657 	struct ttm_buffer_object *bo =
    658 	    container_of(kref, struct ttm_buffer_object, kref);
    659 	struct ttm_bo_device *bdev = bo->bdev;
    660 	struct ttm_mem_type_manager *man = &bdev->man[bo->mem.mem_type];
    661 
    662 #ifdef __NetBSD__
    663 	uvm_obj_destroy(&bo->uvmobj, true);
    664 #endif
    665 	drm_vma_offset_remove(&bdev->vma_manager, &bo->vma_node);
    666 #ifdef __NetBSD__
    667 	drm_vma_node_destroy(&bo->vma_node);
    668 #endif
    669 	ttm_mem_io_lock(man, false);
    670 	ttm_mem_io_free_vm(bo);
    671 	ttm_mem_io_unlock(man);
    672 	ttm_bo_cleanup_refs_or_queue(bo);
    673 	kref_put(&bo->list_kref, ttm_bo_release_list);
    674 }
    675 
    676 void ttm_bo_unref(struct ttm_buffer_object **p_bo)
    677 {
    678 	struct ttm_buffer_object *bo = *p_bo;
    679 
    680 	*p_bo = NULL;
    681 	kref_put(&bo->kref, ttm_bo_release);
    682 }
    683 EXPORT_SYMBOL(ttm_bo_unref);
    684 
    685 int ttm_bo_lock_delayed_workqueue(struct ttm_bo_device *bdev)
    686 {
    687 	return cancel_delayed_work_sync(&bdev->wq);
    688 }
    689 EXPORT_SYMBOL(ttm_bo_lock_delayed_workqueue);
    690 
    691 void ttm_bo_unlock_delayed_workqueue(struct ttm_bo_device *bdev, int resched)
    692 {
    693 	if (resched)
    694 		schedule_delayed_work(&bdev->wq,
    695 				      ((HZ / 100) < 1) ? 1 : HZ / 100);
    696 }
    697 EXPORT_SYMBOL(ttm_bo_unlock_delayed_workqueue);
    698 
    699 static int ttm_bo_evict(struct ttm_buffer_object *bo, bool interruptible,
    700 			bool no_wait_gpu)
    701 {
    702 	struct ttm_bo_device *bdev = bo->bdev;
    703 	struct ttm_mem_reg evict_mem;
    704 	struct ttm_placement placement;
    705 	int ret = 0;
    706 
    707 	ret = ttm_bo_wait(bo, false, interruptible, no_wait_gpu);
    708 
    709 	if (unlikely(ret != 0)) {
    710 		if (ret != -ERESTARTSYS) {
    711 			pr_err("Failed to expire sync object before buffer eviction\n");
    712 		}
    713 		goto out;
    714 	}
    715 
    716 	lockdep_assert_held(&bo->resv->lock.base);
    717 
    718 	evict_mem = bo->mem;
    719 	evict_mem.mm_node = NULL;
    720 	evict_mem.bus.io_reserved_vm = false;
    721 	evict_mem.bus.io_reserved_count = 0;
    722 
    723 	placement.num_placement = 0;
    724 	placement.num_busy_placement = 0;
    725 	bdev->driver->evict_flags(bo, &placement);
    726 	ret = ttm_bo_mem_space(bo, &placement, &evict_mem, interruptible,
    727 				no_wait_gpu);
    728 	if (ret) {
    729 		if (ret != -ERESTARTSYS) {
    730 			pr_err("Failed to find memory space for buffer 0x%p eviction\n",
    731 			       bo);
    732 			ttm_bo_mem_space_debug(bo, &placement);
    733 		}
    734 		goto out;
    735 	}
    736 
    737 	ret = ttm_bo_handle_move_mem(bo, &evict_mem, true, interruptible,
    738 				     no_wait_gpu);
    739 	if (ret) {
    740 		if (ret != -ERESTARTSYS)
    741 			pr_err("Buffer eviction failed\n");
    742 		ttm_bo_mem_put(bo, &evict_mem);
    743 		goto out;
    744 	}
    745 	bo->evicted = true;
    746 out:
    747 	return ret;
    748 }
    749 
    750 static int ttm_mem_evict_first(struct ttm_bo_device *bdev,
    751 				uint32_t mem_type,
    752 				const struct ttm_place *place,
    753 				bool interruptible,
    754 				bool no_wait_gpu)
    755 {
    756 	struct ttm_bo_global *glob = bdev->glob;
    757 	struct ttm_mem_type_manager *man = &bdev->man[mem_type];
    758 	struct ttm_buffer_object *bo;
    759 	int ret = -EBUSY, put_count;
    760 
    761 	spin_lock(&glob->lru_lock);
    762 	list_for_each_entry(bo, &man->lru, lru) {
    763 		ret = __ttm_bo_reserve(bo, false, true, false, NULL);
    764 		if (!ret) {
    765 			if (place && (place->fpfn || place->lpfn)) {
    766 				/* Don't evict this BO if it's outside of the
    767 				 * requested placement range
    768 				 */
    769 				if (place->fpfn >= (bo->mem.start + bo->mem.size) ||
    770 				    (place->lpfn && place->lpfn <= bo->mem.start)) {
    771 					__ttm_bo_unreserve(bo);
    772 					ret = -EBUSY;
    773 					continue;
    774 				}
    775 			}
    776 
    777 			break;
    778 		}
    779 	}
    780 
    781 	if (ret) {
    782 		spin_unlock(&glob->lru_lock);
    783 		return ret;
    784 	}
    785 
    786 	kref_get(&bo->list_kref);
    787 
    788 	if (!list_empty(&bo->ddestroy)) {
    789 		ret = ttm_bo_cleanup_refs_and_unlock(bo, interruptible,
    790 						     no_wait_gpu);
    791 		kref_put(&bo->list_kref, ttm_bo_release_list);
    792 		return ret;
    793 	}
    794 
    795 	put_count = ttm_bo_del_from_lru(bo);
    796 	spin_unlock(&glob->lru_lock);
    797 
    798 	BUG_ON(ret != 0);
    799 
    800 	ttm_bo_list_ref_sub(bo, put_count, true);
    801 
    802 	ret = ttm_bo_evict(bo, interruptible, no_wait_gpu);
    803 	ttm_bo_unreserve(bo);
    804 
    805 	kref_put(&bo->list_kref, ttm_bo_release_list);
    806 	return ret;
    807 }
    808 
    809 void ttm_bo_mem_put(struct ttm_buffer_object *bo, struct ttm_mem_reg *mem)
    810 {
    811 	struct ttm_mem_type_manager *man = &bo->bdev->man[mem->mem_type];
    812 
    813 	if (mem->mm_node)
    814 		(*man->func->put_node)(man, mem);
    815 }
    816 EXPORT_SYMBOL(ttm_bo_mem_put);
    817 
    818 /**
    819  * Repeatedly evict memory from the LRU for @mem_type until we create enough
    820  * space, or we've evicted everything and there isn't enough space.
    821  */
    822 static int ttm_bo_mem_force_space(struct ttm_buffer_object *bo,
    823 					uint32_t mem_type,
    824 					const struct ttm_place *place,
    825 					struct ttm_mem_reg *mem,
    826 					bool interruptible,
    827 					bool no_wait_gpu)
    828 {
    829 	struct ttm_bo_device *bdev = bo->bdev;
    830 	struct ttm_mem_type_manager *man = &bdev->man[mem_type];
    831 	int ret;
    832 
    833 	do {
    834 		ret = (*man->func->get_node)(man, bo, place, mem);
    835 		if (unlikely(ret != 0))
    836 			return ret;
    837 		if (mem->mm_node)
    838 			break;
    839 		ret = ttm_mem_evict_first(bdev, mem_type, place,
    840 					  interruptible, no_wait_gpu);
    841 		if (unlikely(ret != 0))
    842 			return ret;
    843 	} while (1);
    844 	if (mem->mm_node == NULL)
    845 		return -ENOMEM;
    846 	mem->mem_type = mem_type;
    847 	return 0;
    848 }
    849 
    850 static uint32_t ttm_bo_select_caching(struct ttm_mem_type_manager *man,
    851 				      uint32_t cur_placement,
    852 				      uint32_t proposed_placement)
    853 {
    854 	uint32_t caching = proposed_placement & TTM_PL_MASK_CACHING;
    855 	uint32_t result = proposed_placement & ~TTM_PL_MASK_CACHING;
    856 
    857 	/**
    858 	 * Keep current caching if possible.
    859 	 */
    860 
    861 	if ((cur_placement & caching) != 0)
    862 		result |= (cur_placement & caching);
    863 	else if ((man->default_caching & caching) != 0)
    864 		result |= man->default_caching;
    865 	else if ((TTM_PL_FLAG_CACHED & caching) != 0)
    866 		result |= TTM_PL_FLAG_CACHED;
    867 	else if ((TTM_PL_FLAG_WC & caching) != 0)
    868 		result |= TTM_PL_FLAG_WC;
    869 	else if ((TTM_PL_FLAG_UNCACHED & caching) != 0)
    870 		result |= TTM_PL_FLAG_UNCACHED;
    871 
    872 	return result;
    873 }
    874 
    875 static bool ttm_bo_mt_compatible(struct ttm_mem_type_manager *man,
    876 				 uint32_t mem_type,
    877 				 const struct ttm_place *place,
    878 				 uint32_t *masked_placement)
    879 {
    880 	uint32_t cur_flags = ttm_bo_type_flags(mem_type);
    881 
    882 	if ((cur_flags & place->flags & TTM_PL_MASK_MEM) == 0)
    883 		return false;
    884 
    885 	if ((place->flags & man->available_caching) == 0)
    886 		return false;
    887 
    888 	cur_flags |= (place->flags & man->available_caching);
    889 
    890 	*masked_placement = cur_flags;
    891 	return true;
    892 }
    893 
    894 /**
    895  * Creates space for memory region @mem according to its type.
    896  *
    897  * This function first searches for free space in compatible memory types in
    898  * the priority order defined by the driver.  If free space isn't found, then
    899  * ttm_bo_mem_force_space is attempted in priority order to evict and find
    900  * space.
    901  */
    902 int ttm_bo_mem_space(struct ttm_buffer_object *bo,
    903 			struct ttm_placement *placement,
    904 			struct ttm_mem_reg *mem,
    905 			bool interruptible,
    906 			bool no_wait_gpu)
    907 {
    908 	struct ttm_bo_device *bdev = bo->bdev;
    909 	struct ttm_mem_type_manager *man;
    910 	uint32_t mem_type = TTM_PL_SYSTEM;
    911 	uint32_t cur_flags = 0;
    912 	bool type_found = false;
    913 	bool type_ok = false;
    914 	bool has_erestartsys = false;
    915 	int i, ret;
    916 
    917 	mem->mm_node = NULL;
    918 	for (i = 0; i < placement->num_placement; ++i) {
    919 		const struct ttm_place *place = &placement->placement[i];
    920 
    921 		ret = ttm_mem_type_from_place(place, &mem_type);
    922 		if (ret)
    923 			return ret;
    924 		man = &bdev->man[mem_type];
    925 		if (!man->has_type || !man->use_type)
    926 			continue;
    927 
    928 		type_ok = ttm_bo_mt_compatible(man, mem_type, place,
    929 						&cur_flags);
    930 
    931 		if (!type_ok)
    932 			continue;
    933 
    934 		type_found = true;
    935 		cur_flags = ttm_bo_select_caching(man, bo->mem.placement,
    936 						  cur_flags);
    937 		/*
    938 		 * Use the access and other non-mapping-related flag bits from
    939 		 * the memory placement flags to the current flags
    940 		 */
    941 		ttm_flag_masked(&cur_flags, place->flags,
    942 				~TTM_PL_MASK_MEMTYPE);
    943 
    944 		if (mem_type == TTM_PL_SYSTEM)
    945 			break;
    946 
    947 		ret = (*man->func->get_node)(man, bo, place, mem);
    948 		if (unlikely(ret))
    949 			return ret;
    950 
    951 		if (mem->mm_node)
    952 			break;
    953 	}
    954 
    955 	if ((type_ok && (mem_type == TTM_PL_SYSTEM)) || mem->mm_node) {
    956 		mem->mem_type = mem_type;
    957 		mem->placement = cur_flags;
    958 		return 0;
    959 	}
    960 
    961 	for (i = 0; i < placement->num_busy_placement; ++i) {
    962 		const struct ttm_place *place = &placement->busy_placement[i];
    963 
    964 		ret = ttm_mem_type_from_place(place, &mem_type);
    965 		if (ret)
    966 			return ret;
    967 		man = &bdev->man[mem_type];
    968 		if (!man->has_type || !man->use_type)
    969 			continue;
    970 		if (!ttm_bo_mt_compatible(man, mem_type, place, &cur_flags))
    971 			continue;
    972 
    973 		type_found = true;
    974 		cur_flags = ttm_bo_select_caching(man, bo->mem.placement,
    975 						  cur_flags);
    976 		/*
    977 		 * Use the access and other non-mapping-related flag bits from
    978 		 * the memory placement flags to the current flags
    979 		 */
    980 		ttm_flag_masked(&cur_flags, place->flags,
    981 				~TTM_PL_MASK_MEMTYPE);
    982 
    983 		if (mem_type == TTM_PL_SYSTEM) {
    984 			mem->mem_type = mem_type;
    985 			mem->placement = cur_flags;
    986 			mem->mm_node = NULL;
    987 			return 0;
    988 		}
    989 
    990 		ret = ttm_bo_mem_force_space(bo, mem_type, place, mem,
    991 						interruptible, no_wait_gpu);
    992 		if (ret == 0 && mem->mm_node) {
    993 			mem->placement = cur_flags;
    994 			return 0;
    995 		}
    996 		if (ret == -ERESTARTSYS)
    997 			has_erestartsys = true;
    998 	}
    999 
   1000 	if (!type_found) {
   1001 		printk(KERN_ERR TTM_PFX "No compatible memory type found.\n");
   1002 		return -EINVAL;
   1003 	}
   1004 
   1005 	return (has_erestartsys) ? -ERESTARTSYS : -ENOMEM;
   1006 }
   1007 EXPORT_SYMBOL(ttm_bo_mem_space);
   1008 
   1009 static int ttm_bo_move_buffer(struct ttm_buffer_object *bo,
   1010 			struct ttm_placement *placement,
   1011 			bool interruptible,
   1012 			bool no_wait_gpu)
   1013 {
   1014 	int ret = 0;
   1015 	struct ttm_mem_reg mem;
   1016 
   1017 	lockdep_assert_held(&bo->resv->lock.base);
   1018 
   1019 	/*
   1020 	 * FIXME: It's possible to pipeline buffer moves.
   1021 	 * Have the driver move function wait for idle when necessary,
   1022 	 * instead of doing it here.
   1023 	 */
   1024 	ret = ttm_bo_wait(bo, false, interruptible, no_wait_gpu);
   1025 	if (ret)
   1026 		return ret;
   1027 	mem.num_pages = bo->num_pages;
   1028 	mem.size = mem.num_pages << PAGE_SHIFT;
   1029 	mem.page_alignment = bo->mem.page_alignment;
   1030 	mem.bus.is_iomem = false;
   1031 	mem.bus.io_reserved_vm = false;
   1032 	mem.bus.io_reserved_count = 0;
   1033 	/*
   1034 	 * Determine where to move the buffer.
   1035 	 */
   1036 	ret = ttm_bo_mem_space(bo, placement, &mem,
   1037 			       interruptible, no_wait_gpu);
   1038 	if (ret)
   1039 		goto out_unlock;
   1040 	ret = ttm_bo_handle_move_mem(bo, &mem, false,
   1041 				     interruptible, no_wait_gpu);
   1042 out_unlock:
   1043 	if (ret && mem.mm_node)
   1044 		ttm_bo_mem_put(bo, &mem);
   1045 	return ret;
   1046 }
   1047 
   1048 bool ttm_bo_mem_compat(struct ttm_placement *placement,
   1049 		       struct ttm_mem_reg *mem,
   1050 		       uint32_t *new_flags)
   1051 {
   1052 	int i;
   1053 
   1054 	for (i = 0; i < placement->num_placement; i++) {
   1055 		const struct ttm_place *heap = &placement->placement[i];
   1056 		if (mem->mm_node &&
   1057 		    (mem->start < heap->fpfn ||
   1058 		     (heap->lpfn != 0 && (mem->start + mem->num_pages) > heap->lpfn)))
   1059 			continue;
   1060 
   1061 		*new_flags = heap->flags;
   1062 		if ((*new_flags & mem->placement & TTM_PL_MASK_CACHING) &&
   1063 		    (*new_flags & mem->placement & TTM_PL_MASK_MEM))
   1064 			return true;
   1065 	}
   1066 
   1067 	for (i = 0; i < placement->num_busy_placement; i++) {
   1068 		const struct ttm_place *heap = &placement->busy_placement[i];
   1069 		if (mem->mm_node &&
   1070 		    (mem->start < heap->fpfn ||
   1071 		     (heap->lpfn != 0 && (mem->start + mem->num_pages) > heap->lpfn)))
   1072 			continue;
   1073 
   1074 		*new_flags = heap->flags;
   1075 		if ((*new_flags & mem->placement & TTM_PL_MASK_CACHING) &&
   1076 		    (*new_flags & mem->placement & TTM_PL_MASK_MEM))
   1077 			return true;
   1078 	}
   1079 
   1080 	return false;
   1081 }
   1082 EXPORT_SYMBOL(ttm_bo_mem_compat);
   1083 
   1084 int ttm_bo_validate(struct ttm_buffer_object *bo,
   1085 			struct ttm_placement *placement,
   1086 			bool interruptible,
   1087 			bool no_wait_gpu)
   1088 {
   1089 	int ret;
   1090 	uint32_t new_flags;
   1091 
   1092 	lockdep_assert_held(&bo->resv->lock.base);
   1093 	/*
   1094 	 * Check whether we need to move buffer.
   1095 	 */
   1096 	if (!ttm_bo_mem_compat(placement, &bo->mem, &new_flags)) {
   1097 		ret = ttm_bo_move_buffer(bo, placement, interruptible,
   1098 					 no_wait_gpu);
   1099 		if (ret)
   1100 			return ret;
   1101 	} else {
   1102 		/*
   1103 		 * Use the access and other non-mapping-related flag bits from
   1104 		 * the compatible memory placement flags to the active flags
   1105 		 */
   1106 		ttm_flag_masked(&bo->mem.placement, new_flags,
   1107 				~TTM_PL_MASK_MEMTYPE);
   1108 	}
   1109 	/*
   1110 	 * We might need to add a TTM.
   1111 	 */
   1112 	if (bo->mem.mem_type == TTM_PL_SYSTEM && bo->ttm == NULL) {
   1113 		ret = ttm_bo_add_ttm(bo, true);
   1114 		if (ret)
   1115 			return ret;
   1116 	}
   1117 	return 0;
   1118 }
   1119 EXPORT_SYMBOL(ttm_bo_validate);
   1120 
   1121 int ttm_bo_init(struct ttm_bo_device *bdev,
   1122 		struct ttm_buffer_object *bo,
   1123 		unsigned long size,
   1124 		enum ttm_bo_type type,
   1125 		struct ttm_placement *placement,
   1126 		uint32_t page_alignment,
   1127 		bool interruptible,
   1128 		struct file *persistent_swap_storage,
   1129 		size_t acc_size,
   1130 		struct sg_table *sg,
   1131 		struct reservation_object *resv,
   1132 		void (*destroy) (struct ttm_buffer_object *))
   1133 {
   1134 	int ret = 0;
   1135 	unsigned long num_pages;
   1136 	struct ttm_mem_global *mem_glob = bdev->glob->mem_glob;
   1137 	bool locked;
   1138 
   1139 	if (sg && !drm_prime_sg_importable(bdev->dmat, sg)) {
   1140 		pr_err("DRM prime buffer violates DMA constraints\n");
   1141 		return -EIO;
   1142 	}
   1143 
   1144 	ret = ttm_mem_global_alloc(mem_glob, acc_size, false, false);
   1145 	if (ret) {
   1146 		pr_err("Out of kernel memory\n");
   1147 		if (destroy)
   1148 			(*destroy)(bo);
   1149 		else
   1150 			kfree(bo);
   1151 		return -ENOMEM;
   1152 	}
   1153 
   1154 	num_pages = (size + PAGE_SIZE - 1) >> PAGE_SHIFT;
   1155 	if (num_pages == 0) {
   1156 		pr_err("Illegal buffer object size\n");
   1157 		if (destroy)
   1158 			(*destroy)(bo);
   1159 		else
   1160 			kfree(bo);
   1161 		ttm_mem_global_free(mem_glob, acc_size);
   1162 		return -EINVAL;
   1163 	}
   1164 	bo->destroy = destroy;
   1165 
   1166 	kref_init(&bo->kref);
   1167 	kref_init(&bo->list_kref);
   1168 	atomic_set(&bo->cpu_writers, 0);
   1169 	INIT_LIST_HEAD(&bo->lru);
   1170 	INIT_LIST_HEAD(&bo->ddestroy);
   1171 	INIT_LIST_HEAD(&bo->swap);
   1172 	INIT_LIST_HEAD(&bo->io_reserve_lru);
   1173 	mutex_init(&bo->wu_mutex);
   1174 	bo->bdev = bdev;
   1175 	bo->glob = bdev->glob;
   1176 	bo->type = type;
   1177 	bo->num_pages = num_pages;
   1178 	bo->mem.size = num_pages << PAGE_SHIFT;
   1179 	bo->mem.mem_type = TTM_PL_SYSTEM;
   1180 	bo->mem.num_pages = bo->num_pages;
   1181 	bo->mem.mm_node = NULL;
   1182 	bo->mem.page_alignment = page_alignment;
   1183 	bo->mem.bus.io_reserved_vm = false;
   1184 	bo->mem.bus.io_reserved_count = 0;
   1185 	bo->priv_flags = 0;
   1186 	bo->mem.placement = (TTM_PL_FLAG_SYSTEM | TTM_PL_FLAG_CACHED);
   1187 	bo->persistent_swap_storage = persistent_swap_storage;
   1188 	bo->acc_size = acc_size;
   1189 	bo->sg = sg;
   1190 	if (resv) {
   1191 		bo->resv = resv;
   1192 		lockdep_assert_held(&bo->resv->lock.base);
   1193 	} else {
   1194 		bo->resv = &bo->ttm_resv;
   1195 		reservation_object_init(&bo->ttm_resv);
   1196 	}
   1197 	atomic_inc(&bo->glob->bo_count);
   1198 #ifdef __NetBSD__
   1199 	drm_vma_node_init(&bo->vma_node);
   1200 	uvm_obj_init(&bo->uvmobj, bdev->driver->ttm_uvm_ops, true, 1);
   1201 #else
   1202 	drm_vma_node_reset(&bo->vma_node);
   1203 #endif
   1204 
   1205 	/*
   1206 	 * For ttm_bo_type_device buffers, allocate
   1207 	 * address space from the device.
   1208 	 */
   1209 	if (bo->type == ttm_bo_type_device ||
   1210 	    bo->type == ttm_bo_type_sg)
   1211 		ret = drm_vma_offset_add(&bdev->vma_manager, &bo->vma_node,
   1212 					 bo->mem.num_pages);
   1213 
   1214 	/* passed reservation objects should already be locked,
   1215 	 * since otherwise lockdep will be angered in radeon.
   1216 	 */
   1217 	if (!resv) {
   1218 		locked = ww_mutex_trylock(&bo->resv->lock);
   1219 		WARN_ON(!locked);
   1220 	}
   1221 
   1222 	if (likely(!ret))
   1223 		ret = ttm_bo_validate(bo, placement, interruptible, false);
   1224 
   1225 	if (!resv)
   1226 		ttm_bo_unreserve(bo);
   1227 
   1228 	if (unlikely(ret))
   1229 		ttm_bo_unref(&bo);
   1230 
   1231 	return ret;
   1232 }
   1233 EXPORT_SYMBOL(ttm_bo_init);
   1234 
   1235 size_t ttm_bo_acc_size(struct ttm_bo_device *bdev,
   1236 		       unsigned long bo_size,
   1237 		       unsigned struct_size)
   1238 {
   1239 	unsigned npages = (PAGE_ALIGN(bo_size)) >> PAGE_SHIFT;
   1240 	size_t size = 0;
   1241 
   1242 	size += ttm_round_pot(struct_size);
   1243 	size += PAGE_ALIGN(npages * sizeof(void *));
   1244 	size += ttm_round_pot(sizeof(struct ttm_tt));
   1245 	return size;
   1246 }
   1247 EXPORT_SYMBOL(ttm_bo_acc_size);
   1248 
   1249 size_t ttm_bo_dma_acc_size(struct ttm_bo_device *bdev,
   1250 			   unsigned long bo_size,
   1251 			   unsigned struct_size)
   1252 {
   1253 	unsigned npages = (PAGE_ALIGN(bo_size)) >> PAGE_SHIFT;
   1254 	size_t size = 0;
   1255 
   1256 	size += ttm_round_pot(struct_size);
   1257 	size += PAGE_ALIGN(npages * sizeof(void *));
   1258 	size += PAGE_ALIGN(npages * sizeof(dma_addr_t));
   1259 	size += ttm_round_pot(sizeof(struct ttm_dma_tt));
   1260 	return size;
   1261 }
   1262 EXPORT_SYMBOL(ttm_bo_dma_acc_size);
   1263 
   1264 int ttm_bo_create(struct ttm_bo_device *bdev,
   1265 			unsigned long size,
   1266 			enum ttm_bo_type type,
   1267 			struct ttm_placement *placement,
   1268 			uint32_t page_alignment,
   1269 			bool interruptible,
   1270 			struct file *persistent_swap_storage,
   1271 			struct ttm_buffer_object **p_bo)
   1272 {
   1273 	struct ttm_buffer_object *bo;
   1274 	size_t acc_size;
   1275 	int ret;
   1276 
   1277 	bo = kzalloc(sizeof(*bo), GFP_KERNEL);
   1278 	if (unlikely(bo == NULL))
   1279 		return -ENOMEM;
   1280 
   1281 	acc_size = ttm_bo_acc_size(bdev, size, sizeof(struct ttm_buffer_object));
   1282 	ret = ttm_bo_init(bdev, bo, size, type, placement, page_alignment,
   1283 			  interruptible, persistent_swap_storage, acc_size,
   1284 			  NULL, NULL, NULL);
   1285 	if (likely(ret == 0))
   1286 		*p_bo = bo;
   1287 
   1288 	return ret;
   1289 }
   1290 EXPORT_SYMBOL(ttm_bo_create);
   1291 
   1292 static int ttm_bo_force_list_clean(struct ttm_bo_device *bdev,
   1293 					unsigned mem_type, bool allow_errors)
   1294 {
   1295 	struct ttm_mem_type_manager *man = &bdev->man[mem_type];
   1296 	struct ttm_bo_global *glob = bdev->glob;
   1297 	int ret;
   1298 
   1299 	/*
   1300 	 * Can't use standard list traversal since we're unlocking.
   1301 	 */
   1302 
   1303 	spin_lock(&glob->lru_lock);
   1304 	while (!list_empty(&man->lru)) {
   1305 		spin_unlock(&glob->lru_lock);
   1306 		ret = ttm_mem_evict_first(bdev, mem_type, NULL, false, false);
   1307 		if (ret) {
   1308 			if (allow_errors) {
   1309 				return ret;
   1310 			} else {
   1311 				pr_err("Cleanup eviction failed\n");
   1312 			}
   1313 		}
   1314 		spin_lock(&glob->lru_lock);
   1315 	}
   1316 	spin_unlock(&glob->lru_lock);
   1317 	return 0;
   1318 }
   1319 
   1320 int ttm_bo_clean_mm(struct ttm_bo_device *bdev, unsigned mem_type)
   1321 {
   1322 	struct ttm_mem_type_manager *man;
   1323 	int ret = -EINVAL;
   1324 
   1325 	if (mem_type >= TTM_NUM_MEM_TYPES) {
   1326 		pr_err("Illegal memory type %d\n", mem_type);
   1327 		return ret;
   1328 	}
   1329 	man = &bdev->man[mem_type];
   1330 
   1331 	if (!man->has_type) {
   1332 		pr_err("Trying to take down uninitialized memory manager type %u\n",
   1333 		       mem_type);
   1334 		return ret;
   1335 	}
   1336 
   1337 	man->use_type = false;
   1338 	man->has_type = false;
   1339 
   1340 	ret = 0;
   1341 	if (mem_type > 0) {
   1342 		ttm_bo_force_list_clean(bdev, mem_type, false);
   1343 
   1344 		ret = (*man->func->takedown)(man);
   1345 	}
   1346 
   1347 	mutex_destroy(&man->io_reserve_mutex);
   1348 
   1349 	return ret;
   1350 }
   1351 EXPORT_SYMBOL(ttm_bo_clean_mm);
   1352 
   1353 int ttm_bo_evict_mm(struct ttm_bo_device *bdev, unsigned mem_type)
   1354 {
   1355 	struct ttm_mem_type_manager *man = &bdev->man[mem_type];
   1356 
   1357 	if (mem_type == 0 || mem_type >= TTM_NUM_MEM_TYPES) {
   1358 		pr_err("Illegal memory manager memory type %u\n", mem_type);
   1359 		return -EINVAL;
   1360 	}
   1361 
   1362 	if (!man->has_type) {
   1363 		pr_err("Memory type %u has not been initialized\n", mem_type);
   1364 		return 0;
   1365 	}
   1366 
   1367 	return ttm_bo_force_list_clean(bdev, mem_type, true);
   1368 }
   1369 EXPORT_SYMBOL(ttm_bo_evict_mm);
   1370 
   1371 int ttm_bo_init_mm(struct ttm_bo_device *bdev, unsigned type,
   1372 			unsigned long p_size)
   1373 {
   1374 	int ret = -EINVAL;
   1375 	struct ttm_mem_type_manager *man;
   1376 
   1377 	BUG_ON(type >= TTM_NUM_MEM_TYPES);
   1378 	man = &bdev->man[type];
   1379 	BUG_ON(man->has_type);
   1380 	man->io_reserve_fastpath = true;
   1381 	man->use_io_reserve_lru = false;
   1382 	mutex_init(&man->io_reserve_mutex);
   1383 	INIT_LIST_HEAD(&man->io_reserve_lru);
   1384 
   1385 	ret = bdev->driver->init_mem_type(bdev, type, man);
   1386 	if (ret)
   1387 		return ret;
   1388 	man->bdev = bdev;
   1389 
   1390 	ret = 0;
   1391 	if (type != TTM_PL_SYSTEM) {
   1392 		ret = (*man->func->init)(man, p_size);
   1393 		if (ret)
   1394 			return ret;
   1395 	}
   1396 	man->has_type = true;
   1397 	man->use_type = true;
   1398 	man->size = p_size;
   1399 
   1400 	INIT_LIST_HEAD(&man->lru);
   1401 
   1402 	return 0;
   1403 }
   1404 EXPORT_SYMBOL(ttm_bo_init_mm);
   1405 
   1406 #ifndef __NetBSD__
   1407 static void ttm_bo_global_kobj_release(struct kobject *kobj)
   1408 {
   1409 	struct ttm_bo_global *glob =
   1410 		container_of(kobj, struct ttm_bo_global, kobj);
   1411 
   1412 	ttm_mem_unregister_shrink(glob->mem_glob, &glob->shrink);
   1413 	__free_page(glob->dummy_read_page);
   1414 	mutex_destroy(&glob->device_list_mutex);
   1415 	kfree(glob);
   1416 }
   1417 #endif
   1418 
   1419 void ttm_bo_global_release(struct drm_global_reference *ref)
   1420 {
   1421 	struct ttm_bo_global *glob = ref->object;
   1422 
   1423 #ifdef __NetBSD__
   1424 	ttm_mem_unregister_shrink(glob->mem_glob, &glob->shrink);
   1425 	BUG_ON(glob->dummy_read_page != NULL);
   1426 	spin_lock_destroy(&glob->lru_lock);
   1427 	mutex_destroy(&glob->device_list_mutex);
   1428 	kfree(glob);
   1429 #else
   1430 	kobject_del(&glob->kobj);
   1431 	kobject_put(&glob->kobj);
   1432 #endif
   1433 }
   1434 EXPORT_SYMBOL(ttm_bo_global_release);
   1435 
   1436 int ttm_bo_global_init(struct drm_global_reference *ref)
   1437 {
   1438 	struct ttm_bo_global_ref *bo_ref =
   1439 		container_of(ref, struct ttm_bo_global_ref, ref);
   1440 	struct ttm_bo_global *glob = ref->object;
   1441 	int ret;
   1442 
   1443 	mutex_init(&glob->device_list_mutex);
   1444 	spin_lock_init(&glob->lru_lock);
   1445 	glob->mem_glob = bo_ref->mem_glob;
   1446 #ifdef __NetBSD__
   1447 	/* Only used by agp back end, will fix there.  */
   1448 	/* XXX Fix agp back end to DTRT.  */
   1449 	glob->dummy_read_page = NULL;
   1450 #else
   1451 	glob->dummy_read_page = alloc_page(__GFP_ZERO | GFP_DMA32);
   1452 
   1453 	if (unlikely(glob->dummy_read_page == NULL)) {
   1454 		ret = -ENOMEM;
   1455 		goto out_no_drp;
   1456 	}
   1457 #endif
   1458 
   1459 	INIT_LIST_HEAD(&glob->swap_lru);
   1460 	INIT_LIST_HEAD(&glob->device_list);
   1461 
   1462 	ttm_mem_init_shrink(&glob->shrink, ttm_bo_swapout);
   1463 	ret = ttm_mem_register_shrink(glob->mem_glob, &glob->shrink);
   1464 	if (unlikely(ret != 0)) {
   1465 		pr_err("Could not register buffer object swapout\n");
   1466 		goto out_no_shrink;
   1467 	}
   1468 
   1469 	atomic_set(&glob->bo_count, 0);
   1470 
   1471 #ifdef __NetBSD__
   1472 	ret = 0;
   1473 #else
   1474 	ret = kobject_init_and_add(
   1475 		&glob->kobj, &ttm_bo_glob_kobj_type, ttm_get_kobj(), "buffer_objects");
   1476 	if (unlikely(ret != 0))
   1477 		kobject_put(&glob->kobj);
   1478 #endif
   1479 	return ret;
   1480 out_no_shrink:
   1481 #ifndef __NetBSD__
   1482 	__free_page(glob->dummy_read_page);
   1483 out_no_drp:
   1484 #endif
   1485 	kfree(glob);
   1486 	return ret;
   1487 }
   1488 EXPORT_SYMBOL(ttm_bo_global_init);
   1489 
   1490 
   1491 int ttm_bo_device_release(struct ttm_bo_device *bdev)
   1492 {
   1493 	int ret = 0;
   1494 	unsigned i = TTM_NUM_MEM_TYPES;
   1495 	struct ttm_mem_type_manager *man;
   1496 	struct ttm_bo_global *glob = bdev->glob;
   1497 
   1498 	while (i--) {
   1499 		man = &bdev->man[i];
   1500 		if (man->has_type) {
   1501 			man->use_type = false;
   1502 			if ((i != TTM_PL_SYSTEM) && ttm_bo_clean_mm(bdev, i)) {
   1503 				ret = -EBUSY;
   1504 				pr_err("DRM memory manager type %d is not clean\n",
   1505 				       i);
   1506 			}
   1507 			man->has_type = false;
   1508 		}
   1509 	}
   1510 
   1511 	mutex_lock(&glob->device_list_mutex);
   1512 	list_del(&bdev->device_list);
   1513 	mutex_unlock(&glob->device_list_mutex);
   1514 
   1515 	cancel_delayed_work_sync(&bdev->wq);
   1516 
   1517 	while (ttm_bo_delayed_delete(bdev, true))
   1518 		;
   1519 
   1520 	spin_lock(&glob->lru_lock);
   1521 	if (list_empty(&bdev->ddestroy))
   1522 		TTM_DEBUG("Delayed destroy list was clean\n");
   1523 
   1524 	if (list_empty(&bdev->man[0].lru))
   1525 		TTM_DEBUG("Swap list was clean\n");
   1526 	spin_unlock(&glob->lru_lock);
   1527 
   1528 	drm_vma_offset_manager_destroy(&bdev->vma_manager);
   1529 
   1530 	return ret;
   1531 }
   1532 EXPORT_SYMBOL(ttm_bo_device_release);
   1533 
   1534 int ttm_bo_device_init(struct ttm_bo_device *bdev,
   1535 		       struct ttm_bo_global *glob,
   1536 		       struct ttm_bo_driver *driver,
   1537 #ifdef __NetBSD__
   1538 		       bus_space_tag_t memt,
   1539 		       bus_dma_tag_t dmat,
   1540 #else
   1541 		       struct address_space *mapping,
   1542 #endif
   1543 		       uint64_t file_page_offset,
   1544 		       bool need_dma32)
   1545 {
   1546 	int ret = -EINVAL;
   1547 
   1548 	bdev->driver = driver;
   1549 
   1550 	memset(bdev->man, 0, sizeof(bdev->man));
   1551 
   1552 	/*
   1553 	 * Initialize the system memory buffer type.
   1554 	 * Other types need to be driver / IOCTL initialized.
   1555 	 */
   1556 	ret = ttm_bo_init_mm(bdev, TTM_PL_SYSTEM, 0);
   1557 	if (unlikely(ret != 0))
   1558 		goto out_no_sys;
   1559 
   1560 	drm_vma_offset_manager_init(&bdev->vma_manager, file_page_offset,
   1561 				    0x10000000);
   1562 	INIT_DELAYED_WORK(&bdev->wq, ttm_bo_delayed_workqueue);
   1563 	INIT_LIST_HEAD(&bdev->ddestroy);
   1564 #ifdef __NetBSD__
   1565 	bdev->memt = memt;
   1566 	bdev->dmat = dmat;
   1567 #else
   1568 	bdev->dev_mapping = mapping;
   1569 #endif
   1570 	bdev->glob = glob;
   1571 	bdev->need_dma32 = need_dma32;
   1572 	bdev->val_seq = 0;
   1573 	mutex_lock(&glob->device_list_mutex);
   1574 	list_add_tail(&bdev->device_list, &glob->device_list);
   1575 	mutex_unlock(&glob->device_list_mutex);
   1576 
   1577 	return 0;
   1578 out_no_sys:
   1579 	return ret;
   1580 }
   1581 EXPORT_SYMBOL(ttm_bo_device_init);
   1582 
   1583 /*
   1584  * buffer object vm functions.
   1585  */
   1586 
   1587 bool ttm_mem_reg_is_pci(struct ttm_bo_device *bdev, struct ttm_mem_reg *mem)
   1588 {
   1589 	struct ttm_mem_type_manager *man = &bdev->man[mem->mem_type];
   1590 
   1591 	if (!(man->flags & TTM_MEMTYPE_FLAG_FIXED)) {
   1592 		if (mem->mem_type == TTM_PL_SYSTEM)
   1593 			return false;
   1594 
   1595 		if (man->flags & TTM_MEMTYPE_FLAG_CMA)
   1596 			return false;
   1597 
   1598 		if (mem->placement & TTM_PL_FLAG_CACHED)
   1599 			return false;
   1600 	}
   1601 	return true;
   1602 }
   1603 
   1604 void ttm_bo_unmap_virtual_locked(struct ttm_buffer_object *bo)
   1605 {
   1606 #ifdef __NetBSD__
   1607 	if (bo->mem.bus.is_iomem) {
   1608 		paddr_t start, end, pa;
   1609 
   1610 		KASSERTMSG((bo->mem.bus.base & (PAGE_SIZE - 1)) == 0,
   1611 		    "bo bus base addr not page-aligned: %lx",
   1612 		    bo->mem.bus.base);
   1613 		KASSERTMSG((bo->mem.bus.offset & (PAGE_SIZE - 1)) == 0,
   1614 		    "bo bus offset not page-aligned: %lx",
   1615 		    bo->mem.bus.offset);
   1616 		start = bo->mem.bus.base + bo->mem.bus.offset;
   1617 		KASSERT((bo->mem.bus.size & (PAGE_SIZE - 1)) == 0);
   1618 		end = start + bo->mem.bus.size;
   1619 
   1620 		for (pa = start; pa < end; pa += PAGE_SIZE)
   1621 			pmap_pv_protect(pa, VM_PROT_NONE);
   1622 	} else if (bo->ttm != NULL) {
   1623 		unsigned i;
   1624 
   1625 		rw_enter(bo->uvmobj.vmobjlock, RW_WRITER);
   1626 		for (i = 0; i < bo->ttm->num_pages; i++)
   1627 			pmap_page_protect(&bo->ttm->pages[i]->p_vmp,
   1628 			    VM_PROT_NONE);
   1629 		rw_exit(bo->uvmobj.vmobjlock);
   1630 	}
   1631 #else
   1632 	struct ttm_bo_device *bdev = bo->bdev;
   1633 
   1634 	drm_vma_node_unmap(&bo->vma_node, bdev->dev_mapping);
   1635 #endif
   1636 	ttm_mem_io_free_vm(bo);
   1637 }
   1638 
   1639 void ttm_bo_unmap_virtual(struct ttm_buffer_object *bo)
   1640 {
   1641 	struct ttm_bo_device *bdev = bo->bdev;
   1642 	struct ttm_mem_type_manager *man = &bdev->man[bo->mem.mem_type];
   1643 
   1644 	ttm_mem_io_lock(man, false);
   1645 	ttm_bo_unmap_virtual_locked(bo);
   1646 	ttm_mem_io_unlock(man);
   1647 }
   1648 
   1649 
   1650 EXPORT_SYMBOL(ttm_bo_unmap_virtual);
   1651 
   1652 int ttm_bo_wait(struct ttm_buffer_object *bo,
   1653 		bool lazy, bool interruptible, bool no_wait)
   1654 {
   1655 	struct reservation_object_list *fobj;
   1656 	struct reservation_object *resv;
   1657 	struct fence *excl;
   1658 	long timeout = 15 * HZ;
   1659 	int i;
   1660 
   1661 	resv = bo->resv;
   1662 	fobj = reservation_object_get_list(resv);
   1663 	excl = reservation_object_get_excl(resv);
   1664 	if (excl) {
   1665 		if (!fence_is_signaled(excl)) {
   1666 			if (no_wait)
   1667 				return -EBUSY;
   1668 
   1669 			timeout = fence_wait_timeout(excl,
   1670 						     interruptible, timeout);
   1671 		}
   1672 	}
   1673 
   1674 	for (i = 0; fobj && timeout > 0 && i < fobj->shared_count; ++i) {
   1675 		struct fence *fence;
   1676 		fence = rcu_dereference_protected(fobj->shared[i],
   1677 						reservation_object_held(resv));
   1678 
   1679 		if (!fence_is_signaled(fence)) {
   1680 			if (no_wait)
   1681 				return -EBUSY;
   1682 
   1683 			timeout = fence_wait_timeout(fence,
   1684 						     interruptible, timeout);
   1685 		}
   1686 	}
   1687 
   1688 	if (timeout < 0)
   1689 		return timeout;
   1690 
   1691 	if (timeout == 0)
   1692 		return -EBUSY;
   1693 
   1694 	reservation_object_add_excl_fence(resv, NULL);
   1695 	clear_bit(TTM_BO_PRIV_FLAG_MOVING, &bo->priv_flags);
   1696 	return 0;
   1697 }
   1698 EXPORT_SYMBOL(ttm_bo_wait);
   1699 
   1700 int ttm_bo_synccpu_write_grab(struct ttm_buffer_object *bo, bool no_wait)
   1701 {
   1702 	int ret = 0;
   1703 
   1704 	/*
   1705 	 * Using ttm_bo_reserve makes sure the lru lists are updated.
   1706 	 */
   1707 
   1708 	ret = ttm_bo_reserve(bo, true, no_wait, false, NULL);
   1709 	if (unlikely(ret != 0))
   1710 		return ret;
   1711 	ret = ttm_bo_wait(bo, false, true, no_wait);
   1712 	if (likely(ret == 0))
   1713 		atomic_inc(&bo->cpu_writers);
   1714 	ttm_bo_unreserve(bo);
   1715 	return ret;
   1716 }
   1717 EXPORT_SYMBOL(ttm_bo_synccpu_write_grab);
   1718 
   1719 void ttm_bo_synccpu_write_release(struct ttm_buffer_object *bo)
   1720 {
   1721 	atomic_dec(&bo->cpu_writers);
   1722 }
   1723 EXPORT_SYMBOL(ttm_bo_synccpu_write_release);
   1724 
   1725 /**
   1726  * A buffer object shrink method that tries to swap out the first
   1727  * buffer object on the bo_global::swap_lru list.
   1728  */
   1729 
   1730 static int ttm_bo_swapout(struct ttm_mem_shrink *shrink)
   1731 {
   1732 	struct ttm_bo_global *glob =
   1733 	    container_of(shrink, struct ttm_bo_global, shrink);
   1734 	struct ttm_buffer_object *bo;
   1735 	int ret = -EBUSY;
   1736 	int put_count;
   1737 
   1738 	spin_lock(&glob->lru_lock);
   1739 	list_for_each_entry(bo, &glob->swap_lru, swap) {
   1740 		ret = __ttm_bo_reserve(bo, false, true, false, NULL);
   1741 		if (!ret)
   1742 			break;
   1743 	}
   1744 
   1745 	if (ret) {
   1746 		spin_unlock(&glob->lru_lock);
   1747 		return ret;
   1748 	}
   1749 
   1750 	kref_get(&bo->list_kref);
   1751 
   1752 	if (!list_empty(&bo->ddestroy)) {
   1753 		ret = ttm_bo_cleanup_refs_and_unlock(bo, false, false);
   1754 		kref_put(&bo->list_kref, ttm_bo_release_list);
   1755 		return ret;
   1756 	}
   1757 
   1758 	put_count = ttm_bo_del_from_lru(bo);
   1759 	spin_unlock(&glob->lru_lock);
   1760 
   1761 	ttm_bo_list_ref_sub(bo, put_count, true);
   1762 
   1763 	/**
   1764 	 * Wait for GPU, then move to system cached.
   1765 	 */
   1766 
   1767 	ret = ttm_bo_wait(bo, false, false, false);
   1768 
   1769 	if (unlikely(ret != 0))
   1770 		goto out;
   1771 
   1772 	if (bo->mem.mem_type != TTM_PL_SYSTEM ||
   1773 	    bo->ttm->caching_state != tt_cached) {
   1774 		struct ttm_mem_reg evict_mem;
   1775 
   1776 		evict_mem = bo->mem;
   1777 		evict_mem.mm_node = NULL;
   1778 		evict_mem.placement = TTM_PL_FLAG_SYSTEM | TTM_PL_FLAG_CACHED;
   1779 		evict_mem.mem_type = TTM_PL_SYSTEM;
   1780 
   1781 		ret = ttm_bo_handle_move_mem(bo, &evict_mem, true,
   1782 					     false, false);
   1783 		if (unlikely(ret != 0))
   1784 			goto out;
   1785 	}
   1786 
   1787 	ttm_bo_unmap_virtual(bo);
   1788 
   1789 	/**
   1790 	 * Swap out. Buffer will be swapped in again as soon as
   1791 	 * anyone tries to access a ttm page.
   1792 	 */
   1793 
   1794 	if (bo->bdev->driver->swap_notify)
   1795 		bo->bdev->driver->swap_notify(bo);
   1796 
   1797 	ret = ttm_tt_swapout(bo->ttm, bo->persistent_swap_storage);
   1798 out:
   1799 
   1800 	/**
   1801 	 *
   1802 	 * Unreserve without putting on LRU to avoid swapping out an
   1803 	 * already swapped buffer.
   1804 	 */
   1805 
   1806 	__ttm_bo_unreserve(bo);
   1807 	kref_put(&bo->list_kref, ttm_bo_release_list);
   1808 	return ret;
   1809 }
   1810 
   1811 void ttm_bo_swapout_all(struct ttm_bo_device *bdev)
   1812 {
   1813 	while (ttm_bo_swapout(&bdev->glob->shrink) == 0)
   1814 		;
   1815 }
   1816 EXPORT_SYMBOL(ttm_bo_swapout_all);
   1817 
   1818 /**
   1819  * ttm_bo_wait_unreserved - interruptible wait for a buffer object to become
   1820  * unreserved
   1821  *
   1822  * @bo: Pointer to buffer
   1823  */
   1824 int ttm_bo_wait_unreserved(struct ttm_buffer_object *bo)
   1825 {
   1826 	int ret;
   1827 
   1828 	/*
   1829 	 * In the absense of a wait_unlocked API,
   1830 	 * Use the bo::wu_mutex to avoid triggering livelocks due to
   1831 	 * concurrent use of this function. Note that this use of
   1832 	 * bo::wu_mutex can go away if we change locking order to
   1833 	 * mmap_sem -> bo::reserve.
   1834 	 */
   1835 	ret = mutex_lock_interruptible(&bo->wu_mutex);
   1836 	if (unlikely(ret != 0))
   1837 		return -ERESTARTSYS;
   1838 	if (!ww_mutex_is_locked(&bo->resv->lock))
   1839 		goto out_unlock;
   1840 	ret = __ttm_bo_reserve(bo, true, false, false, NULL);
   1841 	if (unlikely(ret != 0))
   1842 		goto out_unlock;
   1843 	__ttm_bo_unreserve(bo);
   1844 
   1845 out_unlock:
   1846 	mutex_unlock(&bo->wu_mutex);
   1847 	return ret;
   1848 }
   1849