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radeon_ttm.c 29.7 KB
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/*
 * Copyright 2009 Jerome Glisse.
 * All Rights Reserved.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a
 * copy of this software and associated documentation files (the
 * "Software"), to deal in the Software without restriction, including
 * without limitation the rights to use, copy, modify, merge, publish,
 * distribute, sub license, and/or sell copies of the Software, and to
 * permit persons to whom the Software is furnished to do so, subject to
 * the following conditions:
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
 * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
 * USE OR OTHER DEALINGS IN THE SOFTWARE.
 *
 * The above copyright notice and this permission notice (including the
 * next paragraph) shall be included in all copies or substantial portions
 * of the Software.
 *
 */
/*
 * Authors:
 *    Jerome Glisse <glisse@freedesktop.org>
 *    Thomas Hellstrom <thomas-at-tungstengraphics-dot-com>
 *    Dave Airlie
 */
#include <ttm/ttm_bo_api.h>
#include <ttm/ttm_bo_driver.h>
#include <ttm/ttm_placement.h>
#include <ttm/ttm_module.h>
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#include <ttm/ttm_page_alloc.h>
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#include <drm/drmP.h>
#include <drm/radeon_drm.h>
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#include <linux/seq_file.h>
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#include <linux/slab.h>
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#include <linux/swiotlb.h>
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#include <linux/swap.h>
#include <linux/pagemap.h>
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#include <linux/debugfs.h>
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#include "radeon_reg.h"
#include "radeon.h"

#define DRM_FILE_PAGE_OFFSET (0x100000000ULL >> PAGE_SHIFT)

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static int radeon_ttm_debugfs_init(struct radeon_device *rdev);
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static void radeon_ttm_debugfs_fini(struct radeon_device *rdev);
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static struct radeon_device *radeon_get_rdev(struct ttm_bo_device *bdev)
{
	struct radeon_mman *mman;
	struct radeon_device *rdev;

	mman = container_of(bdev, struct radeon_mman, bdev);
	rdev = container_of(mman, struct radeon_device, mman);
	return rdev;
}


/*
 * Global memory.
 */
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static int radeon_ttm_mem_global_init(struct drm_global_reference *ref)
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{
	return ttm_mem_global_init(ref->object);
}

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static void radeon_ttm_mem_global_release(struct drm_global_reference *ref)
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{
	ttm_mem_global_release(ref->object);
}

static int radeon_ttm_global_init(struct radeon_device *rdev)
{
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	struct drm_global_reference *global_ref;
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	int r;

	rdev->mman.mem_global_referenced = false;
	global_ref = &rdev->mman.mem_global_ref;
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	global_ref->global_type = DRM_GLOBAL_TTM_MEM;
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	global_ref->size = sizeof(struct ttm_mem_global);
	global_ref->init = &radeon_ttm_mem_global_init;
	global_ref->release = &radeon_ttm_mem_global_release;
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	r = drm_global_item_ref(global_ref);
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	if (r != 0) {
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		DRM_ERROR("Failed setting up TTM memory accounting "
			  "subsystem.\n");
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		return r;
	}
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	rdev->mman.bo_global_ref.mem_glob =
		rdev->mman.mem_global_ref.object;
	global_ref = &rdev->mman.bo_global_ref.ref;
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	global_ref->global_type = DRM_GLOBAL_TTM_BO;
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	global_ref->size = sizeof(struct ttm_bo_global);
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	global_ref->init = &ttm_bo_global_init;
	global_ref->release = &ttm_bo_global_release;
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	r = drm_global_item_ref(global_ref);
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	if (r != 0) {
		DRM_ERROR("Failed setting up TTM BO subsystem.\n");
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		drm_global_item_unref(&rdev->mman.mem_global_ref);
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		return r;
	}

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	rdev->mman.mem_global_referenced = true;
	return 0;
}

static void radeon_ttm_global_fini(struct radeon_device *rdev)
{
	if (rdev->mman.mem_global_referenced) {
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		drm_global_item_unref(&rdev->mman.bo_global_ref.ref);
		drm_global_item_unref(&rdev->mman.mem_global_ref);
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		rdev->mman.mem_global_referenced = false;
	}
}

static int radeon_invalidate_caches(struct ttm_bo_device *bdev, uint32_t flags)
{
	return 0;
}

static int radeon_init_mem_type(struct ttm_bo_device *bdev, uint32_t type,
				struct ttm_mem_type_manager *man)
{
	struct radeon_device *rdev;

	rdev = radeon_get_rdev(bdev);

	switch (type) {
	case TTM_PL_SYSTEM:
		/* System memory */
		man->flags = TTM_MEMTYPE_FLAG_MAPPABLE;
		man->available_caching = TTM_PL_MASK_CACHING;
		man->default_caching = TTM_PL_FLAG_CACHED;
		break;
	case TTM_PL_TT:
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		man->func = &ttm_bo_manager_func;
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		man->gpu_offset = rdev->mc.gtt_start;
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		man->available_caching = TTM_PL_MASK_CACHING;
		man->default_caching = TTM_PL_FLAG_CACHED;
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		man->flags = TTM_MEMTYPE_FLAG_MAPPABLE | TTM_MEMTYPE_FLAG_CMA;
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#if __OS_HAS_AGP
		if (rdev->flags & RADEON_IS_AGP) {
D
Daniel Vetter 已提交
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			if (!rdev->ddev->agp) {
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				DRM_ERROR("AGP is not enabled for memory type %u\n",
					  (unsigned)type);
				return -EINVAL;
			}
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			if (!rdev->ddev->agp->cant_use_aperture)
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				man->flags = TTM_MEMTYPE_FLAG_MAPPABLE;
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			man->available_caching = TTM_PL_FLAG_UNCACHED |
						 TTM_PL_FLAG_WC;
			man->default_caching = TTM_PL_FLAG_WC;
		}
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#endif
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		break;
	case TTM_PL_VRAM:
		/* "On-card" video ram */
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		man->func = &ttm_bo_manager_func;
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		man->gpu_offset = rdev->mc.vram_start;
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		man->flags = TTM_MEMTYPE_FLAG_FIXED |
			     TTM_MEMTYPE_FLAG_MAPPABLE;
		man->available_caching = TTM_PL_FLAG_UNCACHED | TTM_PL_FLAG_WC;
		man->default_caching = TTM_PL_FLAG_WC;
		break;
	default:
		DRM_ERROR("Unsupported memory type %u\n", (unsigned)type);
		return -EINVAL;
	}
	return 0;
}

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static void radeon_evict_flags(struct ttm_buffer_object *bo,
				struct ttm_placement *placement)
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{
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	struct radeon_bo *rbo;
	static u32 placements = TTM_PL_MASK_CACHING | TTM_PL_FLAG_SYSTEM;

	if (!radeon_ttm_bo_is_radeon_bo(bo)) {
		placement->fpfn = 0;
		placement->lpfn = 0;
		placement->placement = &placements;
		placement->busy_placement = &placements;
		placement->num_placement = 1;
		placement->num_busy_placement = 1;
		return;
	}
	rbo = container_of(bo, struct radeon_bo, tbo);
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	switch (bo->mem.mem_type) {
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	case TTM_PL_VRAM:
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		if (rbo->rdev->ring[RADEON_RING_TYPE_GFX_INDEX].ready == false)
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			radeon_ttm_placement_from_domain(rbo, RADEON_GEM_DOMAIN_CPU);
		else
			radeon_ttm_placement_from_domain(rbo, RADEON_GEM_DOMAIN_GTT);
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		break;
	case TTM_PL_TT:
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	default:
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		radeon_ttm_placement_from_domain(rbo, RADEON_GEM_DOMAIN_CPU);
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	}
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	*placement = rbo->placement;
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}

static int radeon_verify_access(struct ttm_buffer_object *bo, struct file *filp)
{
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	struct radeon_bo *rbo = container_of(bo, struct radeon_bo, tbo);

	return drm_vma_node_verify_access(&rbo->gem_base.vma_node, filp);
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}

static void radeon_move_null(struct ttm_buffer_object *bo,
			     struct ttm_mem_reg *new_mem)
{
	struct ttm_mem_reg *old_mem = &bo->mem;

	BUG_ON(old_mem->mm_node != NULL);
	*old_mem = *new_mem;
	new_mem->mm_node = NULL;
}

static int radeon_move_blit(struct ttm_buffer_object *bo,
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			bool evict, bool no_wait_gpu,
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			struct ttm_mem_reg *new_mem,
			struct ttm_mem_reg *old_mem)
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{
	struct radeon_device *rdev;
	uint64_t old_start, new_start;
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	struct radeon_fence *fence;
	int r, ridx;
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	rdev = radeon_get_rdev(bo->bdev);
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	ridx = radeon_copy_ring_index(rdev);
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	old_start = old_mem->start << PAGE_SHIFT;
	new_start = new_mem->start << PAGE_SHIFT;
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	switch (old_mem->mem_type) {
	case TTM_PL_VRAM:
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		old_start += rdev->mc.vram_start;
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		break;
	case TTM_PL_TT:
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		old_start += rdev->mc.gtt_start;
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		break;
	default:
		DRM_ERROR("Unknown placement %d\n", old_mem->mem_type);
		return -EINVAL;
	}
	switch (new_mem->mem_type) {
	case TTM_PL_VRAM:
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		new_start += rdev->mc.vram_start;
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		break;
	case TTM_PL_TT:
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		new_start += rdev->mc.gtt_start;
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		break;
	default:
		DRM_ERROR("Unknown placement %d\n", old_mem->mem_type);
		return -EINVAL;
	}
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	if (!rdev->ring[ridx].ready) {
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		DRM_ERROR("Trying to move memory with ring turned off.\n");
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		return -EINVAL;
	}
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	BUILD_BUG_ON((PAGE_SIZE % RADEON_GPU_PAGE_SIZE) != 0);

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	/* sync other rings */
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	fence = bo->sync_obj;
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	r = radeon_copy(rdev, old_start, new_start,
			new_mem->num_pages * (PAGE_SIZE / RADEON_GPU_PAGE_SIZE), /* GPU pages */
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			&fence);
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	/* FIXME: handle copy error */
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	r = ttm_bo_move_accel_cleanup(bo, (void *)fence,
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				      evict, no_wait_gpu, new_mem);
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	radeon_fence_unref(&fence);
	return r;
}

static int radeon_move_vram_ram(struct ttm_buffer_object *bo,
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				bool evict, bool interruptible,
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				bool no_wait_gpu,
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				struct ttm_mem_reg *new_mem)
{
	struct radeon_device *rdev;
	struct ttm_mem_reg *old_mem = &bo->mem;
	struct ttm_mem_reg tmp_mem;
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	u32 placements;
	struct ttm_placement placement;
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	int r;

	rdev = radeon_get_rdev(bo->bdev);
	tmp_mem = *new_mem;
	tmp_mem.mm_node = NULL;
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	placement.fpfn = 0;
	placement.lpfn = 0;
	placement.num_placement = 1;
	placement.placement = &placements;
	placement.num_busy_placement = 1;
	placement.busy_placement = &placements;
	placements = TTM_PL_MASK_CACHING | TTM_PL_FLAG_TT;
	r = ttm_bo_mem_space(bo, &placement, &tmp_mem,
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			     interruptible, no_wait_gpu);
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	if (unlikely(r)) {
		return r;
	}
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	r = ttm_tt_set_placement_caching(bo->ttm, tmp_mem.placement);
	if (unlikely(r)) {
		goto out_cleanup;
	}

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	r = ttm_tt_bind(bo->ttm, &tmp_mem);
	if (unlikely(r)) {
		goto out_cleanup;
	}
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	r = radeon_move_blit(bo, true, no_wait_gpu, &tmp_mem, old_mem);
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	if (unlikely(r)) {
		goto out_cleanup;
	}
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	r = ttm_bo_move_ttm(bo, true, no_wait_gpu, new_mem);
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out_cleanup:
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	ttm_bo_mem_put(bo, &tmp_mem);
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	return r;
}

static int radeon_move_ram_vram(struct ttm_buffer_object *bo,
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				bool evict, bool interruptible,
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				bool no_wait_gpu,
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				struct ttm_mem_reg *new_mem)
{
	struct radeon_device *rdev;
	struct ttm_mem_reg *old_mem = &bo->mem;
	struct ttm_mem_reg tmp_mem;
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	struct ttm_placement placement;
	u32 placements;
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	int r;

	rdev = radeon_get_rdev(bo->bdev);
	tmp_mem = *new_mem;
	tmp_mem.mm_node = NULL;
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	placement.fpfn = 0;
	placement.lpfn = 0;
	placement.num_placement = 1;
	placement.placement = &placements;
	placement.num_busy_placement = 1;
	placement.busy_placement = &placements;
	placements = TTM_PL_MASK_CACHING | TTM_PL_FLAG_TT;
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	r = ttm_bo_mem_space(bo, &placement, &tmp_mem,
			     interruptible, no_wait_gpu);
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	if (unlikely(r)) {
		return r;
	}
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	r = ttm_bo_move_ttm(bo, true, no_wait_gpu, &tmp_mem);
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	if (unlikely(r)) {
		goto out_cleanup;
	}
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	r = radeon_move_blit(bo, true, no_wait_gpu, new_mem, old_mem);
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	if (unlikely(r)) {
		goto out_cleanup;
	}
out_cleanup:
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	ttm_bo_mem_put(bo, &tmp_mem);
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	return r;
}

static int radeon_bo_move(struct ttm_buffer_object *bo,
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			bool evict, bool interruptible,
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			bool no_wait_gpu,
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			struct ttm_mem_reg *new_mem)
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{
	struct radeon_device *rdev;
	struct ttm_mem_reg *old_mem = &bo->mem;
	int r;

	rdev = radeon_get_rdev(bo->bdev);
	if (old_mem->mem_type == TTM_PL_SYSTEM && bo->ttm == NULL) {
		radeon_move_null(bo, new_mem);
		return 0;
	}
	if ((old_mem->mem_type == TTM_PL_TT &&
	     new_mem->mem_type == TTM_PL_SYSTEM) ||
	    (old_mem->mem_type == TTM_PL_SYSTEM &&
	     new_mem->mem_type == TTM_PL_TT)) {
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		/* bind is enough */
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		radeon_move_null(bo, new_mem);
		return 0;
	}
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	if (!rdev->ring[radeon_copy_ring_index(rdev)].ready ||
	    rdev->asic->copy.copy == NULL) {
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		/* use memcpy */
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		goto memcpy;
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	}

	if (old_mem->mem_type == TTM_PL_VRAM &&
	    new_mem->mem_type == TTM_PL_SYSTEM) {
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		r = radeon_move_vram_ram(bo, evict, interruptible,
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					no_wait_gpu, new_mem);
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	} else if (old_mem->mem_type == TTM_PL_SYSTEM &&
		   new_mem->mem_type == TTM_PL_VRAM) {
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		r = radeon_move_ram_vram(bo, evict, interruptible,
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					    no_wait_gpu, new_mem);
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	} else {
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		r = radeon_move_blit(bo, evict, no_wait_gpu, new_mem, old_mem);
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	}
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	if (r) {
memcpy:
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		r = ttm_bo_move_memcpy(bo, evict, no_wait_gpu, new_mem);
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		if (r) {
			return r;
		}
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	}
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	/* update statistics */
	atomic64_add((u64)bo->num_pages << PAGE_SHIFT, &rdev->num_bytes_moved);
	return 0;
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}

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static int radeon_ttm_io_mem_reserve(struct ttm_bo_device *bdev, struct ttm_mem_reg *mem)
{
	struct ttm_mem_type_manager *man = &bdev->man[mem->mem_type];
	struct radeon_device *rdev = radeon_get_rdev(bdev);

	mem->bus.addr = NULL;
	mem->bus.offset = 0;
	mem->bus.size = mem->num_pages << PAGE_SHIFT;
	mem->bus.base = 0;
	mem->bus.is_iomem = false;
	if (!(man->flags & TTM_MEMTYPE_FLAG_MAPPABLE))
		return -EINVAL;
	switch (mem->mem_type) {
	case TTM_PL_SYSTEM:
		/* system memory */
		return 0;
	case TTM_PL_TT:
#if __OS_HAS_AGP
		if (rdev->flags & RADEON_IS_AGP) {
			/* RADEON_IS_AGP is set only if AGP is active */
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			mem->bus.offset = mem->start << PAGE_SHIFT;
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			mem->bus.base = rdev->mc.agp_base;
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			mem->bus.is_iomem = !rdev->ddev->agp->cant_use_aperture;
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		}
#endif
		break;
	case TTM_PL_VRAM:
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		mem->bus.offset = mem->start << PAGE_SHIFT;
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		/* check if it's visible */
		if ((mem->bus.offset + mem->bus.size) > rdev->mc.visible_vram_size)
			return -EINVAL;
		mem->bus.base = rdev->mc.aper_base;
		mem->bus.is_iomem = true;
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#ifdef __alpha__
		/*
		 * Alpha: use bus.addr to hold the ioremap() return,
		 * so we can modify bus.base below.
		 */
		if (mem->placement & TTM_PL_FLAG_WC)
			mem->bus.addr =
				ioremap_wc(mem->bus.base + mem->bus.offset,
					   mem->bus.size);
		else
			mem->bus.addr =
				ioremap_nocache(mem->bus.base + mem->bus.offset,
						mem->bus.size);

		/*
		 * Alpha: Use just the bus offset plus
		 * the hose/domain memory base for bus.base.
		 * It then can be used to build PTEs for VRAM
		 * access, as done in ttm_bo_vm_fault().
		 */
		mem->bus.base = (mem->bus.base & 0x0ffffffffUL) +
			rdev->ddev->hose->dense_mem_base;
#endif
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		break;
	default:
		return -EINVAL;
	}
	return 0;
}

static void radeon_ttm_io_mem_free(struct ttm_bo_device *bdev, struct ttm_mem_reg *mem)
{
}

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static int radeon_sync_obj_wait(void *sync_obj, bool lazy, bool interruptible)
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{
	return radeon_fence_wait((struct radeon_fence *)sync_obj, interruptible);
}

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static int radeon_sync_obj_flush(void *sync_obj)
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{
	return 0;
}

static void radeon_sync_obj_unref(void **sync_obj)
{
	radeon_fence_unref((struct radeon_fence **)sync_obj);
}

static void *radeon_sync_obj_ref(void *sync_obj)
{
	return radeon_fence_ref((struct radeon_fence *)sync_obj);
}

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static bool radeon_sync_obj_signaled(void *sync_obj)
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{
	return radeon_fence_signaled((struct radeon_fence *)sync_obj);
}

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/*
 * TTM backend functions.
 */
struct radeon_ttm_tt {
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	struct ttm_dma_tt		ttm;
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	struct radeon_device		*rdev;
	u64				offset;
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	uint64_t			userptr;
	struct mm_struct		*usermm;
	uint32_t			userflags;
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};

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/* prepare the sg table with the user pages */
static int radeon_ttm_tt_pin_userptr(struct ttm_tt *ttm)
{
	struct radeon_device *rdev = radeon_get_rdev(ttm->bdev);
	struct radeon_ttm_tt *gtt = (void *)ttm;
	unsigned pinned = 0, nents;
	int r;

	int write = !(gtt->userflags & RADEON_GEM_USERPTR_READONLY);
	enum dma_data_direction direction = write ?
		DMA_BIDIRECTIONAL : DMA_TO_DEVICE;

	if (current->mm != gtt->usermm)
		return -EPERM;

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	if (gtt->userflags & RADEON_GEM_USERPTR_ANONONLY) {
		/* check that we only pin down anonymous memory
		   to prevent problems with writeback */
		unsigned long end = gtt->userptr + ttm->num_pages * PAGE_SIZE;
		struct vm_area_struct *vma;
		vma = find_vma(gtt->usermm, gtt->userptr);
		if (!vma || vma->vm_file || vma->vm_end < end)
			return -EPERM;
	}

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	do {
		unsigned num_pages = ttm->num_pages - pinned;
		uint64_t userptr = gtt->userptr + pinned * PAGE_SIZE;
		struct page **pages = ttm->pages + pinned;

		r = get_user_pages(current, current->mm, userptr, num_pages,
				   write, 0, pages, NULL);
		if (r < 0)
			goto release_pages;

		pinned += r;

	} while (pinned < ttm->num_pages);

	r = sg_alloc_table_from_pages(ttm->sg, ttm->pages, ttm->num_pages, 0,
				      ttm->num_pages << PAGE_SHIFT,
				      GFP_KERNEL);
	if (r)
		goto release_sg;

	r = -ENOMEM;
	nents = dma_map_sg(rdev->dev, ttm->sg->sgl, ttm->sg->nents, direction);
	if (nents != ttm->sg->nents)
		goto release_sg;

	drm_prime_sg_to_page_addr_arrays(ttm->sg, ttm->pages,
					 gtt->ttm.dma_address, ttm->num_pages);

	return 0;

release_sg:
	kfree(ttm->sg);

release_pages:
	release_pages(ttm->pages, pinned, 0);
	return r;
}

static void radeon_ttm_tt_unpin_userptr(struct ttm_tt *ttm)
{
	struct radeon_device *rdev = radeon_get_rdev(ttm->bdev);
	struct radeon_ttm_tt *gtt = (void *)ttm;
	struct scatterlist *sg;
	int i;

	int write = !(gtt->userflags & RADEON_GEM_USERPTR_READONLY);
	enum dma_data_direction direction = write ?
		DMA_BIDIRECTIONAL : DMA_TO_DEVICE;

	/* free the sg table and pages again */
	dma_unmap_sg(rdev->dev, ttm->sg->sgl, ttm->sg->nents, direction);

	for_each_sg(ttm->sg->sgl, sg, ttm->sg->nents, i) {
		struct page *page = sg_page(sg);

		if (!(gtt->userflags & RADEON_GEM_USERPTR_READONLY))
			set_page_dirty(page);

		mark_page_accessed(page);
		page_cache_release(page);
	}

	sg_free_table(ttm->sg);
}

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static int radeon_ttm_backend_bind(struct ttm_tt *ttm,
				   struct ttm_mem_reg *bo_mem)
{
619
	struct radeon_ttm_tt *gtt = (void*)ttm;
620 621
	uint32_t flags = RADEON_GART_PAGE_VALID | RADEON_GART_PAGE_READ |
		RADEON_GART_PAGE_WRITE;
622 623
	int r;

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	if (gtt->userptr) {
		radeon_ttm_tt_pin_userptr(ttm);
		flags &= ~RADEON_GART_PAGE_WRITE;
	}

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	gtt->offset = (unsigned long)(bo_mem->start << PAGE_SHIFT);
	if (!ttm->num_pages) {
		WARN(1, "nothing to bind %lu pages for mreg %p back %p!\n",
		     ttm->num_pages, bo_mem, ttm);
	}
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	if (ttm->caching_state == tt_cached)
		flags |= RADEON_GART_PAGE_SNOOP;
	r = radeon_gart_bind(gtt->rdev, gtt->offset, ttm->num_pages,
			     ttm->pages, gtt->ttm.dma_address, flags);
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	if (r) {
		DRM_ERROR("failed to bind %lu pages at 0x%08X\n",
			  ttm->num_pages, (unsigned)gtt->offset);
		return r;
	}
	return 0;
}

static int radeon_ttm_backend_unbind(struct ttm_tt *ttm)
{
648
	struct radeon_ttm_tt *gtt = (void *)ttm;
649 650

	radeon_gart_unbind(gtt->rdev, gtt->offset, ttm->num_pages);
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	if (gtt->userptr)
		radeon_ttm_tt_unpin_userptr(ttm);

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	return 0;
}

static void radeon_ttm_backend_destroy(struct ttm_tt *ttm)
{
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	struct radeon_ttm_tt *gtt = (void *)ttm;
661

662
	ttm_dma_tt_fini(&gtt->ttm);
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	kfree(gtt);
}

static struct ttm_backend_func radeon_backend_func = {
	.bind = &radeon_ttm_backend_bind,
	.unbind = &radeon_ttm_backend_unbind,
	.destroy = &radeon_ttm_backend_destroy,
};

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static struct ttm_tt *radeon_ttm_tt_create(struct ttm_bo_device *bdev,
673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690
				    unsigned long size, uint32_t page_flags,
				    struct page *dummy_read_page)
{
	struct radeon_device *rdev;
	struct radeon_ttm_tt *gtt;

	rdev = radeon_get_rdev(bdev);
#if __OS_HAS_AGP
	if (rdev->flags & RADEON_IS_AGP) {
		return ttm_agp_tt_create(bdev, rdev->ddev->agp->bridge,
					 size, page_flags, dummy_read_page);
	}
#endif

	gtt = kzalloc(sizeof(struct radeon_ttm_tt), GFP_KERNEL);
	if (gtt == NULL) {
		return NULL;
	}
691
	gtt->ttm.ttm.func = &radeon_backend_func;
692
	gtt->rdev = rdev;
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	if (ttm_dma_tt_init(&gtt->ttm, bdev, size, page_flags, dummy_read_page)) {
		kfree(gtt);
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		return NULL;
	}
697
	return &gtt->ttm.ttm;
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}

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static int radeon_ttm_tt_populate(struct ttm_tt *ttm)
{
	struct radeon_device *rdev;
703
	struct radeon_ttm_tt *gtt = (void *)ttm;
704 705
	unsigned i;
	int r;
706
	bool slave = !!(ttm->page_flags & TTM_PAGE_FLAG_SG);
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	if (ttm->state != tt_unpopulated)
		return 0;

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	if (gtt->userptr) {
		ttm->sg = kcalloc(1, sizeof(struct sg_table), GFP_KERNEL);
		if (!ttm->sg)
			return -ENOMEM;

		ttm->page_flags |= TTM_PAGE_FLAG_SG;
		ttm->state = tt_unbound;
		return 0;
	}

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	if (slave && ttm->sg) {
		drm_prime_sg_to_page_addr_arrays(ttm->sg, ttm->pages,
						 gtt->ttm.dma_address, ttm->num_pages);
		ttm->state = tt_unbound;
		return 0;
	}

728
	rdev = radeon_get_rdev(ttm->bdev);
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#if __OS_HAS_AGP
	if (rdev->flags & RADEON_IS_AGP) {
		return ttm_agp_tt_populate(ttm);
	}
#endif
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#ifdef CONFIG_SWIOTLB
	if (swiotlb_nr_tbl()) {
737
		return ttm_dma_populate(&gtt->ttm, rdev->dev);
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	}
#endif

	r = ttm_pool_populate(ttm);
	if (r) {
		return r;
	}

	for (i = 0; i < ttm->num_pages; i++) {
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		gtt->ttm.dma_address[i] = pci_map_page(rdev->pdev, ttm->pages[i],
						       0, PAGE_SIZE,
						       PCI_DMA_BIDIRECTIONAL);
		if (pci_dma_mapping_error(rdev->pdev, gtt->ttm.dma_address[i])) {
751
			while (--i) {
752
				pci_unmap_page(rdev->pdev, gtt->ttm.dma_address[i],
753
					       PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
754
				gtt->ttm.dma_address[i] = 0;
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			}
			ttm_pool_unpopulate(ttm);
			return -EFAULT;
		}
	}
	return 0;
}

static void radeon_ttm_tt_unpopulate(struct ttm_tt *ttm)
{
	struct radeon_device *rdev;
766
	struct radeon_ttm_tt *gtt = (void *)ttm;
767
	unsigned i;
768 769
	bool slave = !!(ttm->page_flags & TTM_PAGE_FLAG_SG);

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	if (gtt->userptr) {
		kfree(ttm->sg);
		ttm->page_flags &= ~TTM_PAGE_FLAG_SG;
		return;
	}

776 777
	if (slave)
		return;
778 779

	rdev = radeon_get_rdev(ttm->bdev);
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#if __OS_HAS_AGP
	if (rdev->flags & RADEON_IS_AGP) {
		ttm_agp_tt_unpopulate(ttm);
		return;
	}
#endif
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#ifdef CONFIG_SWIOTLB
	if (swiotlb_nr_tbl()) {
789
		ttm_dma_unpopulate(&gtt->ttm, rdev->dev);
790 791 792 793 794
		return;
	}
#endif

	for (i = 0; i < ttm->num_pages; i++) {
795 796
		if (gtt->ttm.dma_address[i]) {
			pci_unmap_page(rdev->pdev, gtt->ttm.dma_address[i],
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				       PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
		}
	}

	ttm_pool_unpopulate(ttm);
}
803

804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837
int radeon_ttm_tt_set_userptr(struct ttm_tt *ttm, uint64_t addr,
			      uint32_t flags)
{
	struct radeon_ttm_tt *gtt = (void *)ttm;

	if (gtt == NULL)
		return -EINVAL;

	gtt->userptr = addr;
	gtt->usermm = current->mm;
	gtt->userflags = flags;
	return 0;
}

bool radeon_ttm_tt_has_userptr(struct ttm_tt *ttm)
{
	struct radeon_ttm_tt *gtt = (void *)ttm;

	if (gtt == NULL)
		return false;

	return !!gtt->userptr;
}

bool radeon_ttm_tt_is_readonly(struct ttm_tt *ttm)
{
	struct radeon_ttm_tt *gtt = (void *)ttm;

	if (gtt == NULL)
		return false;

	return !!(gtt->userflags & RADEON_GEM_USERPTR_READONLY);
}

838
static struct ttm_bo_driver radeon_bo_driver = {
839
	.ttm_tt_create = &radeon_ttm_tt_create,
840 841
	.ttm_tt_populate = &radeon_ttm_tt_populate,
	.ttm_tt_unpopulate = &radeon_ttm_tt_unpopulate,
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	.invalidate_caches = &radeon_invalidate_caches,
	.init_mem_type = &radeon_init_mem_type,
	.evict_flags = &radeon_evict_flags,
	.move = &radeon_bo_move,
	.verify_access = &radeon_verify_access,
	.sync_obj_signaled = &radeon_sync_obj_signaled,
	.sync_obj_wait = &radeon_sync_obj_wait,
	.sync_obj_flush = &radeon_sync_obj_flush,
	.sync_obj_unref = &radeon_sync_obj_unref,
	.sync_obj_ref = &radeon_sync_obj_ref,
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	.move_notify = &radeon_bo_move_notify,
	.fault_reserve_notify = &radeon_bo_fault_reserve_notify,
854 855
	.io_mem_reserve = &radeon_ttm_io_mem_reserve,
	.io_mem_free = &radeon_ttm_io_mem_free,
856 857 858 859 860 861 862 863 864 865 866 867
};

int radeon_ttm_init(struct radeon_device *rdev)
{
	int r;

	r = radeon_ttm_global_init(rdev);
	if (r) {
		return r;
	}
	/* No others user of address space so set it to 0 */
	r = ttm_bo_device_init(&rdev->mman.bdev,
868
			       rdev->mman.bo_global_ref.ref.object,
869 870 871
			       &radeon_bo_driver,
			       rdev->ddev->anon_inode->i_mapping,
			       DRM_FILE_PAGE_OFFSET,
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			       rdev->need_dma32);
873 874 875 876
	if (r) {
		DRM_ERROR("failed initializing buffer object driver(%d).\n", r);
		return r;
	}
877
	rdev->mman.initialized = true;
878
	r = ttm_bo_init_mm(&rdev->mman.bdev, TTM_PL_VRAM,
879
				rdev->mc.real_vram_size >> PAGE_SHIFT);
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	if (r) {
		DRM_ERROR("Failed initializing VRAM heap.\n");
		return r;
	}
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	/* Change the size here instead of the init above so only lpfn is affected */
	radeon_ttm_set_active_vram_size(rdev, rdev->mc.visible_vram_size);

887
	r = radeon_bo_create(rdev, 256 * 1024, PAGE_SIZE, true,
888
			     RADEON_GEM_DOMAIN_VRAM, 0,
889
			     NULL, &rdev->stollen_vga_memory);
890 891 892
	if (r) {
		return r;
	}
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	r = radeon_bo_reserve(rdev->stollen_vga_memory, false);
	if (r)
		return r;
	r = radeon_bo_pin(rdev->stollen_vga_memory, RADEON_GEM_DOMAIN_VRAM, NULL);
	radeon_bo_unreserve(rdev->stollen_vga_memory);
898
	if (r) {
899
		radeon_bo_unref(&rdev->stollen_vga_memory);
900 901 902
		return r;
	}
	DRM_INFO("radeon: %uM of VRAM memory ready\n",
903
		 (unsigned) (rdev->mc.real_vram_size / (1024 * 1024)));
904
	r = ttm_bo_init_mm(&rdev->mman.bdev, TTM_PL_TT,
905
				rdev->mc.gtt_size >> PAGE_SHIFT);
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	if (r) {
		DRM_ERROR("Failed initializing GTT heap.\n");
		return r;
	}
	DRM_INFO("radeon: %uM of GTT memory ready.\n",
911
		 (unsigned)(rdev->mc.gtt_size / (1024 * 1024)));
912 913 914 915 916 917

	r = radeon_ttm_debugfs_init(rdev);
	if (r) {
		DRM_ERROR("Failed to init debugfs\n");
		return r;
	}
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	return 0;
}

void radeon_ttm_fini(struct radeon_device *rdev)
{
923 924
	int r;

925 926
	if (!rdev->mman.initialized)
		return;
927
	radeon_ttm_debugfs_fini(rdev);
928
	if (rdev->stollen_vga_memory) {
929 930 931 932 933 934
		r = radeon_bo_reserve(rdev->stollen_vga_memory, false);
		if (r == 0) {
			radeon_bo_unpin(rdev->stollen_vga_memory);
			radeon_bo_unreserve(rdev->stollen_vga_memory);
		}
		radeon_bo_unref(&rdev->stollen_vga_memory);
935 936 937 938 939 940
	}
	ttm_bo_clean_mm(&rdev->mman.bdev, TTM_PL_VRAM);
	ttm_bo_clean_mm(&rdev->mman.bdev, TTM_PL_TT);
	ttm_bo_device_release(&rdev->mman.bdev);
	radeon_gart_fini(rdev);
	radeon_ttm_global_fini(rdev);
941
	rdev->mman.initialized = false;
942 943 944
	DRM_INFO("radeon: ttm finalized\n");
}

945 946 947 948 949 950 951 952 953 954 955 956 957 958
/* this should only be called at bootup or when userspace
 * isn't running */
void radeon_ttm_set_active_vram_size(struct radeon_device *rdev, u64 size)
{
	struct ttm_mem_type_manager *man;

	if (!rdev->mman.initialized)
		return;

	man = &rdev->mman.bdev.man[TTM_PL_VRAM];
	/* this just adjusts TTM size idea, which sets lpfn to the correct value */
	man->size = size >> PAGE_SHIFT;
}

959
static struct vm_operations_struct radeon_ttm_vm_ops;
960
static const struct vm_operations_struct *ttm_vm_ops = NULL;
961 962 963 964

static int radeon_ttm_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
{
	struct ttm_buffer_object *bo;
965
	struct radeon_device *rdev;
966 967
	int r;

968
	bo = (struct ttm_buffer_object *)vma->vm_private_data;	
969 970 971
	if (bo == NULL) {
		return VM_FAULT_NOPAGE;
	}
972
	rdev = radeon_get_rdev(bo->bdev);
973
	down_read(&rdev->pm.mclk_lock);
974
	r = ttm_vm_ops->fault(vma, vmf);
975
	up_read(&rdev->pm.mclk_lock);
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	return r;
}

int radeon_mmap(struct file *filp, struct vm_area_struct *vma)
{
	struct drm_file *file_priv;
	struct radeon_device *rdev;
	int r;

	if (unlikely(vma->vm_pgoff < DRM_FILE_PAGE_OFFSET)) {
		return drm_mmap(filp, vma);
	}

989
	file_priv = filp->private_data;
990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006
	rdev = file_priv->minor->dev->dev_private;
	if (rdev == NULL) {
		return -EINVAL;
	}
	r = ttm_bo_mmap(filp, vma, &rdev->mman.bdev);
	if (unlikely(r != 0)) {
		return r;
	}
	if (unlikely(ttm_vm_ops == NULL)) {
		ttm_vm_ops = vma->vm_ops;
		radeon_ttm_vm_ops = *ttm_vm_ops;
		radeon_ttm_vm_ops.fault = &radeon_ttm_fault;
	}
	vma->vm_ops = &radeon_ttm_vm_ops;
	return 0;
}

1007
#if defined(CONFIG_DEBUG_FS)
1008

1009 1010 1011
static int radeon_mm_dump_table(struct seq_file *m, void *data)
{
	struct drm_info_node *node = (struct drm_info_node *)m->private;
1012
	unsigned ttm_pl = *(int *)node->info_ent->data;
1013 1014
	struct drm_device *dev = node->minor->dev;
	struct radeon_device *rdev = dev->dev_private;
1015
	struct drm_mm *mm = (struct drm_mm *)rdev->mman.bdev.man[ttm_pl].priv;
1016 1017 1018 1019 1020 1021 1022 1023
	int ret;
	struct ttm_bo_global *glob = rdev->mman.bdev.glob;

	spin_lock(&glob->lru_lock);
	ret = drm_mm_dump_table(m, mm);
	spin_unlock(&glob->lru_lock);
	return ret;
}
1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036

static int ttm_pl_vram = TTM_PL_VRAM;
static int ttm_pl_tt = TTM_PL_TT;

static struct drm_info_list radeon_ttm_debugfs_list[] = {
	{"radeon_vram_mm", radeon_mm_dump_table, 0, &ttm_pl_vram},
	{"radeon_gtt_mm", radeon_mm_dump_table, 0, &ttm_pl_tt},
	{"ttm_page_pool", ttm_page_alloc_debugfs, 0, NULL},
#ifdef CONFIG_SWIOTLB
	{"ttm_dma_page_pool", ttm_dma_page_alloc_debugfs, 0, NULL}
#endif
};

1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088
static int radeon_ttm_vram_open(struct inode *inode, struct file *filep)
{
	struct radeon_device *rdev = inode->i_private;
	i_size_write(inode, rdev->mc.mc_vram_size);
	filep->private_data = inode->i_private;
	return 0;
}

static ssize_t radeon_ttm_vram_read(struct file *f, char __user *buf,
				    size_t size, loff_t *pos)
{
	struct radeon_device *rdev = f->private_data;
	ssize_t result = 0;
	int r;

	if (size & 0x3 || *pos & 0x3)
		return -EINVAL;

	while (size) {
		unsigned long flags;
		uint32_t value;

		if (*pos >= rdev->mc.mc_vram_size)
			return result;

		spin_lock_irqsave(&rdev->mmio_idx_lock, flags);
		WREG32(RADEON_MM_INDEX, ((uint32_t)*pos) | 0x80000000);
		if (rdev->family >= CHIP_CEDAR)
			WREG32(EVERGREEN_MM_INDEX_HI, *pos >> 31);
		value = RREG32(RADEON_MM_DATA);
		spin_unlock_irqrestore(&rdev->mmio_idx_lock, flags);

		r = put_user(value, (uint32_t *)buf);
		if (r)
			return r;

		result += 4;
		buf += 4;
		*pos += 4;
		size -= 4;
	}

	return result;
}

static const struct file_operations radeon_ttm_vram_fops = {
	.owner = THIS_MODULE,
	.open = radeon_ttm_vram_open,
	.read = radeon_ttm_vram_read,
	.llseek = default_llseek
};

1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106
static int radeon_ttm_gtt_open(struct inode *inode, struct file *filep)
{
	struct radeon_device *rdev = inode->i_private;
	i_size_write(inode, rdev->mc.gtt_size);
	filep->private_data = inode->i_private;
	return 0;
}

static ssize_t radeon_ttm_gtt_read(struct file *f, char __user *buf,
				   size_t size, loff_t *pos)
{
	struct radeon_device *rdev = f->private_data;
	ssize_t result = 0;
	int r;

	while (size) {
		loff_t p = *pos / PAGE_SIZE;
		unsigned off = *pos & ~PAGE_MASK;
1107
		size_t cur_size = min_t(size_t, size, PAGE_SIZE - off);
1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142
		struct page *page;
		void *ptr;

		if (p >= rdev->gart.num_cpu_pages)
			return result;

		page = rdev->gart.pages[p];
		if (page) {
			ptr = kmap(page);
			ptr += off;

			r = copy_to_user(buf, ptr, cur_size);
			kunmap(rdev->gart.pages[p]);
		} else
			r = clear_user(buf, cur_size);

		if (r)
			return -EFAULT;

		result += cur_size;
		buf += cur_size;
		*pos += cur_size;
		size -= cur_size;
	}

	return result;
}

static const struct file_operations radeon_ttm_gtt_fops = {
	.owner = THIS_MODULE,
	.open = radeon_ttm_gtt_open,
	.read = radeon_ttm_gtt_read,
	.llseek = default_llseek
};

1143 1144 1145 1146
#endif

static int radeon_ttm_debugfs_init(struct radeon_device *rdev)
{
1147
#if defined(CONFIG_DEBUG_FS)
1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158
	unsigned count;

	struct drm_minor *minor = rdev->ddev->primary;
	struct dentry *ent, *root = minor->debugfs_root;

	ent = debugfs_create_file("radeon_vram", S_IFREG | S_IRUGO, root,
				  rdev, &radeon_ttm_vram_fops);
	if (IS_ERR(ent))
		return PTR_ERR(ent);
	rdev->mman.vram = ent;

1159 1160 1161 1162 1163 1164
	ent = debugfs_create_file("radeon_gtt", S_IFREG | S_IRUGO, root,
				  rdev, &radeon_ttm_gtt_fops);
	if (IS_ERR(ent))
		return PTR_ERR(ent);
	rdev->mman.gtt = ent;

1165
	count = ARRAY_SIZE(radeon_ttm_debugfs_list);
1166

1167
#ifdef CONFIG_SWIOTLB
1168 1169
	if (!swiotlb_nr_tbl())
		--count;
1170
#endif
1171

1172 1173 1174
	return radeon_debugfs_add_files(rdev, radeon_ttm_debugfs_list, count);
#else

1175
	return 0;
1176
#endif
1177
}
1178 1179 1180 1181 1182 1183 1184

static void radeon_ttm_debugfs_fini(struct radeon_device *rdev)
{
#if defined(CONFIG_DEBUG_FS)

	debugfs_remove(rdev->mman.vram);
	rdev->mman.vram = NULL;
1185 1186 1187

	debugfs_remove(rdev->mman.gtt);
	rdev->mman.gtt = NULL;
1188 1189
#endif
}