i915_gem_gtt.c 104.6 KB
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/*
 * Copyright © 2010 Daniel Vetter
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 * Copyright © 2011-2014 Intel Corporation
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 *
 * 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, sublicense,
 * 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 above copyright notice and this permission notice (including the next
 * paragraph) shall be included in all copies or substantial portions of the
 * Software.
 *
 * 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 NONINFRINGEMENT.  IN NO EVENT SHALL
 * THE AUTHORS OR COPYRIGHT HOLDERS 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.
 *
 */

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#include <linux/slab.h> /* fault-inject.h is not standalone! */

#include <linux/fault-inject.h>
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#include <linux/log2.h>
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#include <linux/random.h>
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#include <linux/seq_file.h>
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#include <linux/stop_machine.h>
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#include <asm/set_memory.h>

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#include <drm/drmP.h>
#include <drm/i915_drm.h>
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#include "i915_drv.h"
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#include "i915_vgpu.h"
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#include "i915_trace.h"
#include "intel_drv.h"
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#include "intel_frontbuffer.h"
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#define I915_GFP_ALLOW_FAIL (GFP_KERNEL | __GFP_RETRY_MAYFAIL | __GFP_NOWARN)
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/**
 * DOC: Global GTT views
 *
 * Background and previous state
 *
 * Historically objects could exists (be bound) in global GTT space only as
 * singular instances with a view representing all of the object's backing pages
 * in a linear fashion. This view will be called a normal view.
 *
 * To support multiple views of the same object, where the number of mapped
 * pages is not equal to the backing store, or where the layout of the pages
 * is not linear, concept of a GGTT view was added.
 *
 * One example of an alternative view is a stereo display driven by a single
 * image. In this case we would have a framebuffer looking like this
 * (2x2 pages):
 *
 *    12
 *    34
 *
 * Above would represent a normal GGTT view as normally mapped for GPU or CPU
 * rendering. In contrast, fed to the display engine would be an alternative
 * view which could look something like this:
 *
 *   1212
 *   3434
 *
 * In this example both the size and layout of pages in the alternative view is
 * different from the normal view.
 *
 * Implementation and usage
 *
 * GGTT views are implemented using VMAs and are distinguished via enum
 * i915_ggtt_view_type and struct i915_ggtt_view.
 *
 * A new flavour of core GEM functions which work with GGTT bound objects were
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 * added with the _ggtt_ infix, and sometimes with _view postfix to avoid
 * renaming  in large amounts of code. They take the struct i915_ggtt_view
 * parameter encapsulating all metadata required to implement a view.
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 *
 * As a helper for callers which are only interested in the normal view,
 * globally const i915_ggtt_view_normal singleton instance exists. All old core
 * GEM API functions, the ones not taking the view parameter, are operating on,
 * or with the normal GGTT view.
 *
 * Code wanting to add or use a new GGTT view needs to:
 *
 * 1. Add a new enum with a suitable name.
 * 2. Extend the metadata in the i915_ggtt_view structure if required.
 * 3. Add support to i915_get_vma_pages().
 *
 * New views are required to build a scatter-gather table from within the
 * i915_get_vma_pages function. This table is stored in the vma.ggtt_view and
 * exists for the lifetime of an VMA.
 *
 * Core API is designed to have copy semantics which means that passed in
 * struct i915_ggtt_view does not need to be persistent (left around after
 * calling the core API functions).
 *
 */

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static int
i915_get_ggtt_vma_pages(struct i915_vma *vma);

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static void gen6_ggtt_invalidate(struct drm_i915_private *dev_priv)
{
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	/*
	 * Note that as an uncached mmio write, this will flush the
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	 * WCB of the writes into the GGTT before it triggers the invalidate.
	 */
	I915_WRITE(GFX_FLSH_CNTL_GEN6, GFX_FLSH_CNTL_EN);
}

static void guc_ggtt_invalidate(struct drm_i915_private *dev_priv)
{
	gen6_ggtt_invalidate(dev_priv);
	I915_WRITE(GEN8_GTCR, GEN8_GTCR_INVALIDATE);
}

static void gmch_ggtt_invalidate(struct drm_i915_private *dev_priv)
{
	intel_gtt_chipset_flush();
}

static inline void i915_ggtt_invalidate(struct drm_i915_private *i915)
{
	i915->ggtt.invalidate(i915);
}

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int intel_sanitize_enable_ppgtt(struct drm_i915_private *dev_priv,
			       	int enable_ppgtt)
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{
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	bool has_full_ppgtt;
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	bool has_full_48bit_ppgtt;
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	if (!dev_priv->info.has_aliasing_ppgtt)
		return 0;

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	has_full_ppgtt = dev_priv->info.has_full_ppgtt;
	has_full_48bit_ppgtt = dev_priv->info.has_full_48bit_ppgtt;
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	if (intel_vgpu_active(dev_priv)) {
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		/* GVT-g has no support for 32bit ppgtt */
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		has_full_ppgtt = false;
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		has_full_48bit_ppgtt = intel_vgpu_has_full_48bit_ppgtt(dev_priv);
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	}
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	/*
	 * We don't allow disabling PPGTT for gen9+ as it's a requirement for
	 * execlists, the sole mechanism available to submit work.
	 */
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	if (enable_ppgtt == 0 && INTEL_GEN(dev_priv) < 9)
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		return 0;

	if (enable_ppgtt == 1)
		return 1;

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	if (enable_ppgtt == 2 && has_full_ppgtt)
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		return 2;

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	if (enable_ppgtt == 3 && has_full_48bit_ppgtt)
		return 3;

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	/* Disable ppgtt on SNB if VT-d is on. */
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	if (IS_GEN6(dev_priv) && intel_vtd_active()) {
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		DRM_INFO("Disabling PPGTT because VT-d is on\n");
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		return 0;
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	}

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	/* Early VLV doesn't have this */
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	if (IS_VALLEYVIEW(dev_priv) && dev_priv->drm.pdev->revision < 0xb) {
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		DRM_DEBUG_DRIVER("disabling PPGTT on pre-B3 step VLV\n");
		return 0;
	}

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	if (HAS_LOGICAL_RING_CONTEXTS(dev_priv)) {
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		if (has_full_48bit_ppgtt)
			return 3;

		if (has_full_ppgtt)
			return 2;
	}

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	return 1;
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}

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static int gen6_ppgtt_bind_vma(struct i915_vma *vma,
			       enum i915_cache_level cache_level,
			       u32 unused)
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{
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	u32 pte_flags;
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	/* Currently applicable only to VLV */
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	pte_flags = 0;
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	if (vma->obj->gt_ro)
		pte_flags |= PTE_READ_ONLY;

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	vma->vm->insert_entries(vma->vm, vma, cache_level, pte_flags);
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	return 0;
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}

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static int gen8_ppgtt_bind_vma(struct i915_vma *vma,
			       enum i915_cache_level cache_level,
			       u32 unused)
{
	int ret;

	if (!(vma->flags & I915_VMA_LOCAL_BIND)) {
		ret = vma->vm->allocate_va_range(vma->vm,
						 vma->node.start, vma->size);
		if (ret)
			return ret;
	}

	return gen6_ppgtt_bind_vma(vma, cache_level, unused);
}

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static void ppgtt_unbind_vma(struct i915_vma *vma)
{
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	vma->vm->clear_range(vma->vm, vma->node.start, vma->size);
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}
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static int ppgtt_set_pages(struct i915_vma *vma)
{
	GEM_BUG_ON(vma->pages);

	vma->pages = vma->obj->mm.pages;

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	vma->page_sizes = vma->obj->mm.page_sizes;

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	return 0;
}

static void clear_pages(struct i915_vma *vma)
{
	GEM_BUG_ON(!vma->pages);

	if (vma->pages != vma->obj->mm.pages) {
		sg_free_table(vma->pages);
		kfree(vma->pages);
	}
	vma->pages = NULL;
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	memset(&vma->page_sizes, 0, sizeof(vma->page_sizes));
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}

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static gen8_pte_t gen8_pte_encode(dma_addr_t addr,
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				  enum i915_cache_level level)
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{
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	gen8_pte_t pte = _PAGE_PRESENT | _PAGE_RW;
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	pte |= addr;
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	switch (level) {
	case I915_CACHE_NONE:
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		pte |= PPAT_UNCACHED;
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		break;
	case I915_CACHE_WT:
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		pte |= PPAT_DISPLAY_ELLC;
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		break;
	default:
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		pte |= PPAT_CACHED;
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		break;
	}

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	return pte;
}

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static gen8_pde_t gen8_pde_encode(const dma_addr_t addr,
				  const enum i915_cache_level level)
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{
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	gen8_pde_t pde = _PAGE_PRESENT | _PAGE_RW;
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	pde |= addr;
	if (level != I915_CACHE_NONE)
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		pde |= PPAT_CACHED_PDE;
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	else
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		pde |= PPAT_UNCACHED;
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	return pde;
}

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#define gen8_pdpe_encode gen8_pde_encode
#define gen8_pml4e_encode gen8_pde_encode

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static gen6_pte_t snb_pte_encode(dma_addr_t addr,
				 enum i915_cache_level level,
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				 u32 unused)
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{
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	gen6_pte_t pte = GEN6_PTE_VALID;
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	pte |= GEN6_PTE_ADDR_ENCODE(addr);
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	switch (level) {
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	case I915_CACHE_L3_LLC:
	case I915_CACHE_LLC:
		pte |= GEN6_PTE_CACHE_LLC;
		break;
	case I915_CACHE_NONE:
		pte |= GEN6_PTE_UNCACHED;
		break;
	default:
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		MISSING_CASE(level);
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	}

	return pte;
}

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static gen6_pte_t ivb_pte_encode(dma_addr_t addr,
				 enum i915_cache_level level,
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				 u32 unused)
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{
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	gen6_pte_t pte = GEN6_PTE_VALID;
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	pte |= GEN6_PTE_ADDR_ENCODE(addr);

	switch (level) {
	case I915_CACHE_L3_LLC:
		pte |= GEN7_PTE_CACHE_L3_LLC;
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		break;
	case I915_CACHE_LLC:
		pte |= GEN6_PTE_CACHE_LLC;
		break;
	case I915_CACHE_NONE:
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		pte |= GEN6_PTE_UNCACHED;
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		break;
	default:
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		MISSING_CASE(level);
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	}

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	return pte;
}

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static gen6_pte_t byt_pte_encode(dma_addr_t addr,
				 enum i915_cache_level level,
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				 u32 flags)
339
{
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	gen6_pte_t pte = GEN6_PTE_VALID;
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	pte |= GEN6_PTE_ADDR_ENCODE(addr);

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	if (!(flags & PTE_READ_ONLY))
		pte |= BYT_PTE_WRITEABLE;
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	if (level != I915_CACHE_NONE)
		pte |= BYT_PTE_SNOOPED_BY_CPU_CACHES;

	return pte;
}

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static gen6_pte_t hsw_pte_encode(dma_addr_t addr,
				 enum i915_cache_level level,
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				 u32 unused)
355
{
356
	gen6_pte_t pte = GEN6_PTE_VALID;
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	pte |= HSW_PTE_ADDR_ENCODE(addr);
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	if (level != I915_CACHE_NONE)
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		pte |= HSW_WB_LLC_AGE3;
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	return pte;
}

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static gen6_pte_t iris_pte_encode(dma_addr_t addr,
				  enum i915_cache_level level,
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				  u32 unused)
368
{
369
	gen6_pte_t pte = GEN6_PTE_VALID;
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	pte |= HSW_PTE_ADDR_ENCODE(addr);

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	switch (level) {
	case I915_CACHE_NONE:
		break;
	case I915_CACHE_WT:
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		pte |= HSW_WT_ELLC_LLC_AGE3;
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		break;
	default:
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		pte |= HSW_WB_ELLC_LLC_AGE3;
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		break;
	}
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	return pte;
}

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static struct page *vm_alloc_page(struct i915_address_space *vm, gfp_t gfp)
387
{
388
	struct pagevec *pvec = &vm->free_pages;
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	struct pagevec stash;
390

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	if (I915_SELFTEST_ONLY(should_fail(&vm->fault_attr, 1)))
		i915_gem_shrink_all(vm->i915);
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	if (likely(pvec->nr))
		return pvec->pages[--pvec->nr];

	if (!vm->pt_kmap_wc)
		return alloc_page(gfp);

	/* A placeholder for a specific mutex to guard the WC stash */
	lockdep_assert_held(&vm->i915->drm.struct_mutex);

	/* Look in our global stash of WC pages... */
	pvec = &vm->i915->mm.wc_stash;
	if (likely(pvec->nr))
		return pvec->pages[--pvec->nr];

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	/*
	 * Otherwise batch allocate pages to amoritize cost of set_pages_wc.
	 *
	 * We have to be careful as page allocation may trigger the shrinker
	 * (via direct reclaim) which will fill up the WC stash underneath us.
	 * So we add our WB pages into a temporary pvec on the stack and merge
	 * them into the WC stash after all the allocations are complete.
	 */
	pagevec_init(&stash);
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	do {
		struct page *page;
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		page = alloc_page(gfp);
		if (unlikely(!page))
			break;

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		stash.pages[stash.nr++] = page;
	} while (stash.nr < pagevec_space(pvec));
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	if (stash.nr) {
		int nr = min_t(int, stash.nr, pagevec_space(pvec));
		struct page **pages = stash.pages + stash.nr - nr;
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		if (nr && !set_pages_array_wc(pages, nr)) {
			memcpy(pvec->pages + pvec->nr,
			       pages, sizeof(pages[0]) * nr);
			pvec->nr += nr;
			stash.nr -= nr;
		}

		pagevec_release(&stash);
	}
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441
	return likely(pvec->nr) ? pvec->pages[--pvec->nr] : NULL;
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}

444 445
static void vm_free_pages_release(struct i915_address_space *vm,
				  bool immediate)
446
{
447 448 449
	struct pagevec *pvec = &vm->free_pages;

	GEM_BUG_ON(!pagevec_count(pvec));
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	if (vm->pt_kmap_wc) {
		struct pagevec *stash = &vm->i915->mm.wc_stash;

		/* When we use WC, first fill up the global stash and then
		 * only if full immediately free the overflow.
		 */
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		lockdep_assert_held(&vm->i915->drm.struct_mutex);
		if (pagevec_space(stash)) {
			do {
				stash->pages[stash->nr++] =
					pvec->pages[--pvec->nr];
				if (!pvec->nr)
					return;
			} while (pagevec_space(stash));

			/* As we have made some room in the VM's free_pages,
			 * we can wait for it to fill again. Unless we are
			 * inside i915_address_space_fini() and must
			 * immediately release the pages!
			 */
			if (!immediate)
				return;
		}

		set_pages_array_wb(pvec->pages, pvec->nr);
	}

	__pagevec_release(pvec);
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}

static void vm_free_page(struct i915_address_space *vm, struct page *page)
{
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	/*
	 * On !llc, we need to change the pages back to WB. We only do so
	 * in bulk, so we rarely need to change the page attributes here,
	 * but doing so requires a stop_machine() from deep inside arch/x86/mm.
	 * To make detection of the possible sleep more likely, use an
	 * unconditional might_sleep() for everybody.
	 */
	might_sleep();
492
	if (!pagevec_add(&vm->free_pages, page))
493
		vm_free_pages_release(vm, false);
494
}
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static int __setup_page_dma(struct i915_address_space *vm,
			    struct i915_page_dma *p,
			    gfp_t gfp)
{
500
	p->page = vm_alloc_page(vm, gfp | I915_GFP_ALLOW_FAIL);
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	if (unlikely(!p->page))
		return -ENOMEM;
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	p->daddr = dma_map_page(vm->dma, p->page, 0, PAGE_SIZE,
				PCI_DMA_BIDIRECTIONAL);
	if (unlikely(dma_mapping_error(vm->dma, p->daddr))) {
		vm_free_page(vm, p->page);
		return -ENOMEM;
509
	}
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	return 0;
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}

514
static int setup_page_dma(struct i915_address_space *vm,
515
			  struct i915_page_dma *p)
516
{
517
	return __setup_page_dma(vm, p, __GFP_HIGHMEM);
518 519
}

520
static void cleanup_page_dma(struct i915_address_space *vm,
521
			     struct i915_page_dma *p)
522
{
523 524
	dma_unmap_page(vm->dma, p->daddr, PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
	vm_free_page(vm, p->page);
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}

527
#define kmap_atomic_px(px) kmap_atomic(px_base(px)->page)
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#define setup_px(vm, px) setup_page_dma((vm), px_base(px))
#define cleanup_px(vm, px) cleanup_page_dma((vm), px_base(px))
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#define fill_px(vm, px, v) fill_page_dma((vm), px_base(px), (v))
#define fill32_px(vm, px, v) fill_page_dma_32((vm), px_base(px), (v))
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static void fill_page_dma(struct i915_address_space *vm,
			  struct i915_page_dma *p,
			  const u64 val)
537
{
538
	u64 * const vaddr = kmap_atomic(p->page);
539

540
	memset64(vaddr, val, PAGE_SIZE / sizeof(val));
541

542
	kunmap_atomic(vaddr);
543 544
}

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static void fill_page_dma_32(struct i915_address_space *vm,
			     struct i915_page_dma *p,
			     const u32 v)
548
{
549
	fill_page_dma(vm, p, (u64)v << 32 | v);
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}

552
static int
553
setup_scratch_page(struct i915_address_space *vm, gfp_t gfp)
554
{
555
	unsigned long size;
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	/*
	 * In order to utilize 64K pages for an object with a size < 2M, we will
	 * need to support a 64K scratch page, given that every 16th entry for a
	 * page-table operating in 64K mode must point to a properly aligned 64K
	 * region, including any PTEs which happen to point to scratch.
	 *
	 * This is only relevant for the 48b PPGTT where we support
	 * huge-gtt-pages, see also i915_vma_insert().
	 *
	 * TODO: we should really consider write-protecting the scratch-page and
	 * sharing between ppgtt
	 */
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	size = I915_GTT_PAGE_SIZE_4K;
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	if (i915_vm_is_48bit(vm) &&
	    HAS_PAGE_SIZES(vm->i915, I915_GTT_PAGE_SIZE_64K)) {
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		size = I915_GTT_PAGE_SIZE_64K;
		gfp |= __GFP_NOWARN;
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	}
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	gfp |= __GFP_ZERO | __GFP_RETRY_MAYFAIL;

	do {
		int order = get_order(size);
		struct page *page;
		dma_addr_t addr;
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		page = alloc_pages(gfp, order);
583
		if (unlikely(!page))
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			goto skip;
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		addr = dma_map_page(vm->dma, page, 0, size,
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				    PCI_DMA_BIDIRECTIONAL);
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		if (unlikely(dma_mapping_error(vm->dma, addr)))
			goto free_page;
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		if (unlikely(!IS_ALIGNED(addr, size)))
			goto unmap_page;
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		vm->scratch_page.page = page;
		vm->scratch_page.daddr = addr;
		vm->scratch_page.order = order;
		return 0;

unmap_page:
		dma_unmap_page(vm->dma, addr, size, PCI_DMA_BIDIRECTIONAL);
free_page:
		__free_pages(page, order);
skip:
		if (size == I915_GTT_PAGE_SIZE_4K)
			return -ENOMEM;

		size = I915_GTT_PAGE_SIZE_4K;
		gfp &= ~__GFP_NOWARN;
	} while (1);
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}

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static void cleanup_scratch_page(struct i915_address_space *vm)
613
{
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	struct i915_page_dma *p = &vm->scratch_page;

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	dma_unmap_page(vm->dma, p->daddr, BIT(p->order) << PAGE_SHIFT,
		       PCI_DMA_BIDIRECTIONAL);
	__free_pages(p->page, p->order);
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}

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static struct i915_page_table *alloc_pt(struct i915_address_space *vm)
622
{
623
	struct i915_page_table *pt;
624

625
	pt = kmalloc(sizeof(*pt), I915_GFP_ALLOW_FAIL);
626
	if (unlikely(!pt))
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		return ERR_PTR(-ENOMEM);

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	if (unlikely(setup_px(vm, pt))) {
		kfree(pt);
		return ERR_PTR(-ENOMEM);
	}
633

634
	pt->used_ptes = 0;
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	return pt;
}

638
static void free_pt(struct i915_address_space *vm, struct i915_page_table *pt)
639
{
640
	cleanup_px(vm, pt);
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	kfree(pt);
}

static void gen8_initialize_pt(struct i915_address_space *vm,
			       struct i915_page_table *pt)
{
647 648
	fill_px(vm, pt,
		gen8_pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC));
649 650 651 652 653
}

static void gen6_initialize_pt(struct i915_address_space *vm,
			       struct i915_page_table *pt)
{
654 655
	fill32_px(vm, pt,
		  vm->pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC, 0));
656 657
}

658
static struct i915_page_directory *alloc_pd(struct i915_address_space *vm)
659
{
660
	struct i915_page_directory *pd;
661

662
	pd = kzalloc(sizeof(*pd), I915_GFP_ALLOW_FAIL);
663
	if (unlikely(!pd))
664 665
		return ERR_PTR(-ENOMEM);

666 667 668 669
	if (unlikely(setup_px(vm, pd))) {
		kfree(pd);
		return ERR_PTR(-ENOMEM);
	}
670

671
	pd->used_pdes = 0;
672 673 674
	return pd;
}

675
static void free_pd(struct i915_address_space *vm,
676
		    struct i915_page_directory *pd)
677
{
678 679
	cleanup_px(vm, pd);
	kfree(pd);
680 681 682 683 684
}

static void gen8_initialize_pd(struct i915_address_space *vm,
			       struct i915_page_directory *pd)
{
685 686
	fill_px(vm, pd,
		gen8_pde_encode(px_dma(vm->scratch_pt), I915_CACHE_LLC));
687
	memset_p((void **)pd->page_table, vm->scratch_pt, I915_PDES);
688 689
}

690
static int __pdp_init(struct i915_address_space *vm,
691 692
		      struct i915_page_directory_pointer *pdp)
{
693
	const unsigned int pdpes = i915_pdpes_per_pdp(vm);
694

695
	pdp->page_directory = kmalloc_array(pdpes, sizeof(*pdp->page_directory),
696
					    I915_GFP_ALLOW_FAIL);
697
	if (unlikely(!pdp->page_directory))
698 699
		return -ENOMEM;

700
	memset_p((void **)pdp->page_directory, vm->scratch_pd, pdpes);
701

702 703 704 705 706 707 708 709 710
	return 0;
}

static void __pdp_fini(struct i915_page_directory_pointer *pdp)
{
	kfree(pdp->page_directory);
	pdp->page_directory = NULL;
}

711 712 713 714 715
static inline bool use_4lvl(const struct i915_address_space *vm)
{
	return i915_vm_is_48bit(vm);
}

716 717
static struct i915_page_directory_pointer *
alloc_pdp(struct i915_address_space *vm)
718 719 720 721
{
	struct i915_page_directory_pointer *pdp;
	int ret = -ENOMEM;

722
	GEM_BUG_ON(!use_4lvl(vm));
723 724 725 726 727

	pdp = kzalloc(sizeof(*pdp), GFP_KERNEL);
	if (!pdp)
		return ERR_PTR(-ENOMEM);

728
	ret = __pdp_init(vm, pdp);
729 730 731
	if (ret)
		goto fail_bitmap;

732
	ret = setup_px(vm, pdp);
733 734 735 736 737 738 739 740 741 742 743 744 745
	if (ret)
		goto fail_page_m;

	return pdp;

fail_page_m:
	__pdp_fini(pdp);
fail_bitmap:
	kfree(pdp);

	return ERR_PTR(ret);
}

746
static void free_pdp(struct i915_address_space *vm,
747 748 749
		     struct i915_page_directory_pointer *pdp)
{
	__pdp_fini(pdp);
750 751 752 753 754 755

	if (!use_4lvl(vm))
		return;

	cleanup_px(vm, pdp);
	kfree(pdp);
756 757
}

758 759 760 761 762 763 764
static void gen8_initialize_pdp(struct i915_address_space *vm,
				struct i915_page_directory_pointer *pdp)
{
	gen8_ppgtt_pdpe_t scratch_pdpe;

	scratch_pdpe = gen8_pdpe_encode(px_dma(vm->scratch_pd), I915_CACHE_LLC);

765
	fill_px(vm, pdp, scratch_pdpe);
766 767 768 769 770
}

static void gen8_initialize_pml4(struct i915_address_space *vm,
				 struct i915_pml4 *pml4)
{
771 772
	fill_px(vm, pml4,
		gen8_pml4e_encode(px_dma(vm->scratch_pdp), I915_CACHE_LLC));
773
	memset_p((void **)pml4->pdps, vm->scratch_pdp, GEN8_PML4ES_PER_PML4);
774 775
}

776 777 778 779 780 781 782
/* PDE TLBs are a pain to invalidate on GEN8+. When we modify
 * the page table structures, we mark them dirty so that
 * context switching/execlist queuing code takes extra steps
 * to ensure that tlbs are flushed.
 */
static void mark_tlbs_dirty(struct i915_hw_ppgtt *ppgtt)
{
783
	ppgtt->pd_dirty_rings = INTEL_INFO(ppgtt->vm.i915)->ring_mask;
784 785
}

786 787 788 789
/* Removes entries from a single page table, releasing it if it's empty.
 * Caller can use the return value to update higher-level entries.
 */
static bool gen8_ppgtt_clear_pt(struct i915_address_space *vm,
790
				struct i915_page_table *pt,
791
				u64 start, u64 length)
792
{
793
	unsigned int num_entries = gen8_pte_count(start, length);
M
Mika Kuoppala 已提交
794 795
	unsigned int pte = gen8_pte_index(start);
	unsigned int pte_end = pte + num_entries;
796 797 798
	const gen8_pte_t scratch_pte =
		gen8_pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC);
	gen8_pte_t *vaddr;
799

800
	GEM_BUG_ON(num_entries > pt->used_ptes);
M
Mika Kuoppala 已提交
801

802 803 804
	pt->used_ptes -= num_entries;
	if (!pt->used_ptes)
		return true;
805

806
	vaddr = kmap_atomic_px(pt);
M
Mika Kuoppala 已提交
807
	while (pte < pte_end)
808
		vaddr[pte++] = scratch_pte;
809
	kunmap_atomic(vaddr);
810 811

	return false;
812
}
813

814 815 816 817 818 819 820 821 822 823 824 825 826 827
static void gen8_ppgtt_set_pde(struct i915_address_space *vm,
			       struct i915_page_directory *pd,
			       struct i915_page_table *pt,
			       unsigned int pde)
{
	gen8_pde_t *vaddr;

	pd->page_table[pde] = pt;

	vaddr = kmap_atomic_px(pd);
	vaddr[pde] = gen8_pde_encode(px_dma(pt), I915_CACHE_LLC);
	kunmap_atomic(vaddr);
}

828
static bool gen8_ppgtt_clear_pd(struct i915_address_space *vm,
829
				struct i915_page_directory *pd,
830
				u64 start, u64 length)
831 832
{
	struct i915_page_table *pt;
833
	u32 pde;
834 835

	gen8_for_each_pde(pt, pd, start, length, pde) {
836 837
		GEM_BUG_ON(pt == vm->scratch_pt);

838 839
		if (!gen8_ppgtt_clear_pt(vm, pt, start, length))
			continue;
840

841
		gen8_ppgtt_set_pde(vm, pd, vm->scratch_pt, pde);
842
		GEM_BUG_ON(!pd->used_pdes);
843
		pd->used_pdes--;
844 845

		free_pt(vm, pt);
846 847
	}

848 849
	return !pd->used_pdes;
}
850

851 852 853 854 855 856 857 858
static void gen8_ppgtt_set_pdpe(struct i915_address_space *vm,
				struct i915_page_directory_pointer *pdp,
				struct i915_page_directory *pd,
				unsigned int pdpe)
{
	gen8_ppgtt_pdpe_t *vaddr;

	pdp->page_directory[pdpe] = pd;
859
	if (!use_4lvl(vm))
860 861 862 863 864
		return;

	vaddr = kmap_atomic_px(pdp);
	vaddr[pdpe] = gen8_pdpe_encode(px_dma(pd), I915_CACHE_LLC);
	kunmap_atomic(vaddr);
865
}
866

867 868 869 870
/* Removes entries from a single page dir pointer, releasing it if it's empty.
 * Caller can use the return value to update higher-level entries
 */
static bool gen8_ppgtt_clear_pdp(struct i915_address_space *vm,
871
				 struct i915_page_directory_pointer *pdp,
872
				 u64 start, u64 length)
873 874
{
	struct i915_page_directory *pd;
875
	unsigned int pdpe;
876

877
	gen8_for_each_pdpe(pd, pdp, start, length, pdpe) {
878 879
		GEM_BUG_ON(pd == vm->scratch_pd);

880 881
		if (!gen8_ppgtt_clear_pd(vm, pd, start, length))
			continue;
882

883
		gen8_ppgtt_set_pdpe(vm, pdp, vm->scratch_pd, pdpe);
884
		GEM_BUG_ON(!pdp->used_pdpes);
885
		pdp->used_pdpes--;
886

887 888
		free_pd(vm, pd);
	}
889

890
	return !pdp->used_pdpes;
891
}
892

893 894 895 896 897 898
static void gen8_ppgtt_clear_3lvl(struct i915_address_space *vm,
				  u64 start, u64 length)
{
	gen8_ppgtt_clear_pdp(vm, &i915_vm_to_ppgtt(vm)->pdp, start, length);
}

899 900 901 902 903 904 905 906 907 908 909 910 911
static void gen8_ppgtt_set_pml4e(struct i915_pml4 *pml4,
				 struct i915_page_directory_pointer *pdp,
				 unsigned int pml4e)
{
	gen8_ppgtt_pml4e_t *vaddr;

	pml4->pdps[pml4e] = pdp;

	vaddr = kmap_atomic_px(pml4);
	vaddr[pml4e] = gen8_pml4e_encode(px_dma(pdp), I915_CACHE_LLC);
	kunmap_atomic(vaddr);
}

912 913 914 915
/* Removes entries from a single pml4.
 * This is the top-level structure in 4-level page tables used on gen8+.
 * Empty entries are always scratch pml4e.
 */
916 917
static void gen8_ppgtt_clear_4lvl(struct i915_address_space *vm,
				  u64 start, u64 length)
918
{
919 920
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
	struct i915_pml4 *pml4 = &ppgtt->pml4;
921
	struct i915_page_directory_pointer *pdp;
922
	unsigned int pml4e;
923

924
	GEM_BUG_ON(!use_4lvl(vm));
925

926
	gen8_for_each_pml4e(pdp, pml4, start, length, pml4e) {
927 928
		GEM_BUG_ON(pdp == vm->scratch_pdp);

929 930
		if (!gen8_ppgtt_clear_pdp(vm, pdp, start, length))
			continue;
931

932 933 934
		gen8_ppgtt_set_pml4e(pml4, vm->scratch_pdp, pml4e);

		free_pdp(vm, pdp);
935 936 937
	}
}

938
static inline struct sgt_dma {
939 940
	struct scatterlist *sg;
	dma_addr_t dma, max;
941 942 943 944 945
} sgt_dma(struct i915_vma *vma) {
	struct scatterlist *sg = vma->pages->sgl;
	dma_addr_t addr = sg_dma_address(sg);
	return (struct sgt_dma) { sg, addr, addr + sg->length };
}
946

947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963
struct gen8_insert_pte {
	u16 pml4e;
	u16 pdpe;
	u16 pde;
	u16 pte;
};

static __always_inline struct gen8_insert_pte gen8_insert_pte(u64 start)
{
	return (struct gen8_insert_pte) {
		 gen8_pml4e_index(start),
		 gen8_pdpe_index(start),
		 gen8_pde_index(start),
		 gen8_pte_index(start),
	};
}

964 965
static __always_inline bool
gen8_ppgtt_insert_pte_entries(struct i915_hw_ppgtt *ppgtt,
966
			      struct i915_page_directory_pointer *pdp,
967
			      struct sgt_dma *iter,
968
			      struct gen8_insert_pte *idx,
969 970
			      enum i915_cache_level cache_level)
{
971 972 973 974
	struct i915_page_directory *pd;
	const gen8_pte_t pte_encode = gen8_pte_encode(0, cache_level);
	gen8_pte_t *vaddr;
	bool ret;
975

976
	GEM_BUG_ON(idx->pdpe >= i915_pdpes_per_pdp(&ppgtt->vm));
977 978
	pd = pdp->page_directory[idx->pdpe];
	vaddr = kmap_atomic_px(pd->page_table[idx->pde]);
979
	do {
980 981
		vaddr[idx->pte] = pte_encode | iter->dma;

982 983 984 985 986 987 988
		iter->dma += PAGE_SIZE;
		if (iter->dma >= iter->max) {
			iter->sg = __sg_next(iter->sg);
			if (!iter->sg) {
				ret = false;
				break;
			}
989

990 991
			iter->dma = sg_dma_address(iter->sg);
			iter->max = iter->dma + iter->sg->length;
B
Ben Widawsky 已提交
992
		}
993

994 995 996 997 998 999
		if (++idx->pte == GEN8_PTES) {
			idx->pte = 0;

			if (++idx->pde == I915_PDES) {
				idx->pde = 0;

1000
				/* Limited by sg length for 3lvl */
1001 1002
				if (++idx->pdpe == GEN8_PML4ES_PER_PML4) {
					idx->pdpe = 0;
1003
					ret = true;
1004
					break;
1005 1006
				}

1007
				GEM_BUG_ON(idx->pdpe >= i915_pdpes_per_pdp(&ppgtt->vm));
1008
				pd = pdp->page_directory[idx->pdpe];
1009
			}
1010

1011
			kunmap_atomic(vaddr);
1012
			vaddr = kmap_atomic_px(pd->page_table[idx->pde]);
1013
		}
1014
	} while (1);
1015
	kunmap_atomic(vaddr);
1016

1017
	return ret;
1018 1019
}

1020
static void gen8_ppgtt_insert_3lvl(struct i915_address_space *vm,
1021
				   struct i915_vma *vma,
1022 1023
				   enum i915_cache_level cache_level,
				   u32 unused)
1024
{
1025
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1026
	struct sgt_dma iter = sgt_dma(vma);
1027
	struct gen8_insert_pte idx = gen8_insert_pte(vma->node.start);
1028

1029 1030
	gen8_ppgtt_insert_pte_entries(ppgtt, &ppgtt->pdp, &iter, &idx,
				      cache_level);
1031 1032

	vma->page_sizes.gtt = I915_GTT_PAGE_SIZE;
1033
}
1034

1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048
static void gen8_ppgtt_insert_huge_entries(struct i915_vma *vma,
					   struct i915_page_directory_pointer **pdps,
					   struct sgt_dma *iter,
					   enum i915_cache_level cache_level)
{
	const gen8_pte_t pte_encode = gen8_pte_encode(0, cache_level);
	u64 start = vma->node.start;
	dma_addr_t rem = iter->sg->length;

	do {
		struct gen8_insert_pte idx = gen8_insert_pte(start);
		struct i915_page_directory_pointer *pdp = pdps[idx.pml4e];
		struct i915_page_directory *pd = pdp->page_directory[idx.pdpe];
		unsigned int page_size;
1049
		bool maybe_64K = false;
1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070
		gen8_pte_t encode = pte_encode;
		gen8_pte_t *vaddr;
		u16 index, max;

		if (vma->page_sizes.sg & I915_GTT_PAGE_SIZE_2M &&
		    IS_ALIGNED(iter->dma, I915_GTT_PAGE_SIZE_2M) &&
		    rem >= I915_GTT_PAGE_SIZE_2M && !idx.pte) {
			index = idx.pde;
			max = I915_PDES;
			page_size = I915_GTT_PAGE_SIZE_2M;

			encode |= GEN8_PDE_PS_2M;

			vaddr = kmap_atomic_px(pd);
		} else {
			struct i915_page_table *pt = pd->page_table[idx.pde];

			index = idx.pte;
			max = GEN8_PTES;
			page_size = I915_GTT_PAGE_SIZE;

1071 1072 1073 1074 1075 1076 1077
			if (!index &&
			    vma->page_sizes.sg & I915_GTT_PAGE_SIZE_64K &&
			    IS_ALIGNED(iter->dma, I915_GTT_PAGE_SIZE_64K) &&
			    (IS_ALIGNED(rem, I915_GTT_PAGE_SIZE_64K) ||
			     rem >= (max - index) << PAGE_SHIFT))
				maybe_64K = true;

1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096
			vaddr = kmap_atomic_px(pt);
		}

		do {
			GEM_BUG_ON(iter->sg->length < page_size);
			vaddr[index++] = encode | iter->dma;

			start += page_size;
			iter->dma += page_size;
			rem -= page_size;
			if (iter->dma >= iter->max) {
				iter->sg = __sg_next(iter->sg);
				if (!iter->sg)
					break;

				rem = iter->sg->length;
				iter->dma = sg_dma_address(iter->sg);
				iter->max = iter->dma + rem;

1097 1098 1099 1100 1101 1102
				if (maybe_64K && index < max &&
				    !(IS_ALIGNED(iter->dma, I915_GTT_PAGE_SIZE_64K) &&
				      (IS_ALIGNED(rem, I915_GTT_PAGE_SIZE_64K) ||
				       rem >= (max - index) << PAGE_SHIFT)))
					maybe_64K = false;

1103 1104 1105 1106 1107 1108
				if (unlikely(!IS_ALIGNED(iter->dma, page_size)))
					break;
			}
		} while (rem >= page_size && index < max);

		kunmap_atomic(vaddr);
1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124

		/*
		 * Is it safe to mark the 2M block as 64K? -- Either we have
		 * filled whole page-table with 64K entries, or filled part of
		 * it and have reached the end of the sg table and we have
		 * enough padding.
		 */
		if (maybe_64K &&
		    (index == max ||
		     (i915_vm_has_scratch_64K(vma->vm) &&
		      !iter->sg && IS_ALIGNED(vma->node.start +
					      vma->node.size,
					      I915_GTT_PAGE_SIZE_2M)))) {
			vaddr = kmap_atomic_px(pd);
			vaddr[idx.pde] |= GEN8_PDE_IPS_64K;
			kunmap_atomic(vaddr);
1125
			page_size = I915_GTT_PAGE_SIZE_64K;
M
Matthew Auld 已提交
1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146

			/*
			 * We write all 4K page entries, even when using 64K
			 * pages. In order to verify that the HW isn't cheating
			 * by using the 4K PTE instead of the 64K PTE, we want
			 * to remove all the surplus entries. If the HW skipped
			 * the 64K PTE, it will read/write into the scratch page
			 * instead - which we detect as missing results during
			 * selftests.
			 */
			if (I915_SELFTEST_ONLY(vma->vm->scrub_64K)) {
				u16 i;

				encode = pte_encode | vma->vm->scratch_page.daddr;
				vaddr = kmap_atomic_px(pd->page_table[idx.pde]);

				for (i = 1; i < index; i += 16)
					memset64(vaddr + i, encode, 15);

				kunmap_atomic(vaddr);
			}
1147
		}
1148 1149

		vma->page_sizes.gtt |= page_size;
1150 1151 1152
	} while (iter->sg);
}

1153
static void gen8_ppgtt_insert_4lvl(struct i915_address_space *vm,
1154
				   struct i915_vma *vma,
1155 1156 1157 1158
				   enum i915_cache_level cache_level,
				   u32 unused)
{
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1159
	struct sgt_dma iter = sgt_dma(vma);
1160
	struct i915_page_directory_pointer **pdps = ppgtt->pml4.pdps;
1161

1162 1163 1164 1165 1166 1167 1168 1169
	if (vma->page_sizes.sg > I915_GTT_PAGE_SIZE) {
		gen8_ppgtt_insert_huge_entries(vma, pdps, &iter, cache_level);
	} else {
		struct gen8_insert_pte idx = gen8_insert_pte(vma->node.start);

		while (gen8_ppgtt_insert_pte_entries(ppgtt, pdps[idx.pml4e++],
						     &iter, &idx, cache_level))
			GEM_BUG_ON(idx.pml4e >= GEN8_PML4ES_PER_PML4);
1170 1171

		vma->page_sizes.gtt = I915_GTT_PAGE_SIZE;
1172
	}
1173 1174
}

1175
static void gen8_free_page_tables(struct i915_address_space *vm,
1176
				  struct i915_page_directory *pd)
1177 1178 1179
{
	int i;

1180
	if (!px_page(pd))
1181 1182
		return;

1183 1184 1185
	for (i = 0; i < I915_PDES; i++) {
		if (pd->page_table[i] != vm->scratch_pt)
			free_pt(vm, pd->page_table[i]);
1186
	}
B
Ben Widawsky 已提交
1187 1188
}

1189 1190
static int gen8_init_scratch(struct i915_address_space *vm)
{
1191
	int ret;
1192

1193
	ret = setup_scratch_page(vm, __GFP_HIGHMEM);
1194 1195
	if (ret)
		return ret;
1196

1197
	vm->scratch_pt = alloc_pt(vm);
1198
	if (IS_ERR(vm->scratch_pt)) {
1199 1200
		ret = PTR_ERR(vm->scratch_pt);
		goto free_scratch_page;
1201 1202
	}

1203
	vm->scratch_pd = alloc_pd(vm);
1204
	if (IS_ERR(vm->scratch_pd)) {
1205 1206
		ret = PTR_ERR(vm->scratch_pd);
		goto free_pt;
1207 1208
	}

1209
	if (use_4lvl(vm)) {
1210
		vm->scratch_pdp = alloc_pdp(vm);
1211
		if (IS_ERR(vm->scratch_pdp)) {
1212 1213
			ret = PTR_ERR(vm->scratch_pdp);
			goto free_pd;
1214 1215 1216
		}
	}

1217 1218
	gen8_initialize_pt(vm, vm->scratch_pt);
	gen8_initialize_pd(vm, vm->scratch_pd);
1219
	if (use_4lvl(vm))
1220
		gen8_initialize_pdp(vm, vm->scratch_pdp);
1221 1222

	return 0;
1223 1224

free_pd:
1225
	free_pd(vm, vm->scratch_pd);
1226
free_pt:
1227
	free_pt(vm, vm->scratch_pt);
1228
free_scratch_page:
1229
	cleanup_scratch_page(vm);
1230 1231

	return ret;
1232 1233
}

1234 1235
static int gen8_ppgtt_notify_vgt(struct i915_hw_ppgtt *ppgtt, bool create)
{
1236
	struct i915_address_space *vm = &ppgtt->vm;
1237
	struct drm_i915_private *dev_priv = vm->i915;
1238 1239 1240
	enum vgt_g2v_type msg;
	int i;

1241 1242
	if (use_4lvl(vm)) {
		const u64 daddr = px_dma(&ppgtt->pml4);
1243

1244 1245
		I915_WRITE(vgtif_reg(pdp[0].lo), lower_32_bits(daddr));
		I915_WRITE(vgtif_reg(pdp[0].hi), upper_32_bits(daddr));
1246 1247 1248 1249

		msg = (create ? VGT_G2V_PPGTT_L4_PAGE_TABLE_CREATE :
				VGT_G2V_PPGTT_L4_PAGE_TABLE_DESTROY);
	} else {
1250
		for (i = 0; i < GEN8_3LVL_PDPES; i++) {
1251
			const u64 daddr = i915_page_dir_dma_addr(ppgtt, i);
1252

1253 1254
			I915_WRITE(vgtif_reg(pdp[i].lo), lower_32_bits(daddr));
			I915_WRITE(vgtif_reg(pdp[i].hi), upper_32_bits(daddr));
1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265
		}

		msg = (create ? VGT_G2V_PPGTT_L3_PAGE_TABLE_CREATE :
				VGT_G2V_PPGTT_L3_PAGE_TABLE_DESTROY);
	}

	I915_WRITE(vgtif_reg(g2v_notify), msg);

	return 0;
}

1266 1267
static void gen8_free_scratch(struct i915_address_space *vm)
{
1268
	if (use_4lvl(vm))
1269 1270 1271 1272
		free_pdp(vm, vm->scratch_pdp);
	free_pd(vm, vm->scratch_pd);
	free_pt(vm, vm->scratch_pt);
	cleanup_scratch_page(vm);
1273 1274
}

1275
static void gen8_ppgtt_cleanup_3lvl(struct i915_address_space *vm,
1276
				    struct i915_page_directory_pointer *pdp)
1277
{
1278
	const unsigned int pdpes = i915_pdpes_per_pdp(vm);
1279 1280
	int i;

1281
	for (i = 0; i < pdpes; i++) {
1282
		if (pdp->page_directory[i] == vm->scratch_pd)
1283 1284
			continue;

1285 1286
		gen8_free_page_tables(vm, pdp->page_directory[i]);
		free_pd(vm, pdp->page_directory[i]);
1287
	}
1288

1289
	free_pdp(vm, pdp);
1290 1291 1292 1293 1294 1295
}

static void gen8_ppgtt_cleanup_4lvl(struct i915_hw_ppgtt *ppgtt)
{
	int i;

1296
	for (i = 0; i < GEN8_PML4ES_PER_PML4; i++) {
1297
		if (ppgtt->pml4.pdps[i] == ppgtt->vm.scratch_pdp)
1298 1299
			continue;

1300
		gen8_ppgtt_cleanup_3lvl(&ppgtt->vm, ppgtt->pml4.pdps[i]);
1301 1302
	}

1303
	cleanup_px(&ppgtt->vm, &ppgtt->pml4);
1304 1305 1306 1307
}

static void gen8_ppgtt_cleanup(struct i915_address_space *vm)
{
1308
	struct drm_i915_private *dev_priv = vm->i915;
1309
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1310

1311
	if (intel_vgpu_active(dev_priv))
1312 1313
		gen8_ppgtt_notify_vgt(ppgtt, false);

1314
	if (use_4lvl(vm))
1315
		gen8_ppgtt_cleanup_4lvl(ppgtt);
1316
	else
1317
		gen8_ppgtt_cleanup_3lvl(&ppgtt->vm, &ppgtt->pdp);
1318

1319
	gen8_free_scratch(vm);
1320 1321
}

1322 1323 1324
static int gen8_ppgtt_alloc_pd(struct i915_address_space *vm,
			       struct i915_page_directory *pd,
			       u64 start, u64 length)
1325
{
1326
	struct i915_page_table *pt;
1327
	u64 from = start;
1328
	unsigned int pde;
1329

1330
	gen8_for_each_pde(pt, pd, start, length, pde) {
1331 1332
		int count = gen8_pte_count(start, length);

1333
		if (pt == vm->scratch_pt) {
1334 1335
			pd->used_pdes++;

1336
			pt = alloc_pt(vm);
1337 1338
			if (IS_ERR(pt)) {
				pd->used_pdes--;
1339
				goto unwind;
1340
			}
1341

1342
			if (count < GEN8_PTES || intel_vgpu_active(vm->i915))
1343
				gen8_initialize_pt(vm, pt);
1344 1345

			gen8_ppgtt_set_pde(vm, pd, pt, pde);
1346
			GEM_BUG_ON(pd->used_pdes > I915_PDES);
1347
		}
1348

1349
		pt->used_ptes += count;
1350
	}
1351
	return 0;
1352

1353 1354
unwind:
	gen8_ppgtt_clear_pd(vm, pd, from, start - from);
B
Ben Widawsky 已提交
1355
	return -ENOMEM;
1356 1357
}

1358 1359 1360
static int gen8_ppgtt_alloc_pdp(struct i915_address_space *vm,
				struct i915_page_directory_pointer *pdp,
				u64 start, u64 length)
1361
{
1362
	struct i915_page_directory *pd;
1363 1364
	u64 from = start;
	unsigned int pdpe;
1365 1366
	int ret;

1367
	gen8_for_each_pdpe(pd, pdp, start, length, pdpe) {
1368
		if (pd == vm->scratch_pd) {
1369 1370
			pdp->used_pdpes++;

1371
			pd = alloc_pd(vm);
1372 1373
			if (IS_ERR(pd)) {
				pdp->used_pdpes--;
1374
				goto unwind;
1375
			}
1376

1377
			gen8_initialize_pd(vm, pd);
1378
			gen8_ppgtt_set_pdpe(vm, pdp, pd, pdpe);
1379
			GEM_BUG_ON(pdp->used_pdpes > i915_pdpes_per_pdp(vm));
1380 1381

			mark_tlbs_dirty(i915_vm_to_ppgtt(vm));
1382 1383 1384
		}

		ret = gen8_ppgtt_alloc_pd(vm, pd, start, length);
1385 1386
		if (unlikely(ret))
			goto unwind_pd;
1387
	}
1388

B
Ben Widawsky 已提交
1389
	return 0;
1390

1391 1392 1393 1394 1395 1396 1397
unwind_pd:
	if (!pd->used_pdes) {
		gen8_ppgtt_set_pdpe(vm, pdp, vm->scratch_pd, pdpe);
		GEM_BUG_ON(!pdp->used_pdpes);
		pdp->used_pdpes--;
		free_pd(vm, pd);
	}
1398 1399 1400
unwind:
	gen8_ppgtt_clear_pdp(vm, pdp, from, start - from);
	return -ENOMEM;
1401 1402
}

1403 1404
static int gen8_ppgtt_alloc_3lvl(struct i915_address_space *vm,
				 u64 start, u64 length)
1405
{
1406 1407 1408
	return gen8_ppgtt_alloc_pdp(vm,
				    &i915_vm_to_ppgtt(vm)->pdp, start, length);
}
1409

1410 1411 1412 1413 1414 1415 1416 1417 1418
static int gen8_ppgtt_alloc_4lvl(struct i915_address_space *vm,
				 u64 start, u64 length)
{
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
	struct i915_pml4 *pml4 = &ppgtt->pml4;
	struct i915_page_directory_pointer *pdp;
	u64 from = start;
	u32 pml4e;
	int ret;
1419

1420
	gen8_for_each_pml4e(pdp, pml4, start, length, pml4e) {
1421 1422 1423 1424
		if (pml4->pdps[pml4e] == vm->scratch_pdp) {
			pdp = alloc_pdp(vm);
			if (IS_ERR(pdp))
				goto unwind;
1425

1426 1427 1428
			gen8_initialize_pdp(vm, pdp);
			gen8_ppgtt_set_pml4e(pml4, pdp, pml4e);
		}
1429

1430
		ret = gen8_ppgtt_alloc_pdp(vm, pdp, start, length);
1431 1432
		if (unlikely(ret))
			goto unwind_pdp;
1433 1434 1435 1436
	}

	return 0;

1437 1438 1439 1440 1441
unwind_pdp:
	if (!pdp->used_pdpes) {
		gen8_ppgtt_set_pml4e(pml4, vm->scratch_pdp, pml4e);
		free_pdp(vm, pdp);
	}
1442 1443 1444
unwind:
	gen8_ppgtt_clear_4lvl(vm, from, start - from);
	return -ENOMEM;
1445 1446
}

1447 1448
static void gen8_dump_pdp(struct i915_hw_ppgtt *ppgtt,
			  struct i915_page_directory_pointer *pdp,
1449
			  u64 start, u64 length,
1450 1451 1452
			  gen8_pte_t scratch_pte,
			  struct seq_file *m)
{
1453
	struct i915_address_space *vm = &ppgtt->vm;
1454
	struct i915_page_directory *pd;
1455
	u32 pdpe;
1456

1457
	gen8_for_each_pdpe(pd, pdp, start, length, pdpe) {
1458
		struct i915_page_table *pt;
1459 1460 1461
		u64 pd_len = length;
		u64 pd_start = start;
		u32 pde;
1462

1463
		if (pdp->page_directory[pdpe] == ppgtt->vm.scratch_pd)
1464 1465 1466
			continue;

		seq_printf(m, "\tPDPE #%d\n", pdpe);
1467
		gen8_for_each_pde(pt, pd, pd_start, pd_len, pde) {
1468
			u32 pte;
1469 1470
			gen8_pte_t *pt_vaddr;

1471
			if (pd->page_table[pde] == ppgtt->vm.scratch_pt)
1472 1473
				continue;

1474
			pt_vaddr = kmap_atomic_px(pt);
1475
			for (pte = 0; pte < GEN8_PTES; pte += 4) {
1476 1477 1478
				u64 va = (pdpe << GEN8_PDPE_SHIFT |
					  pde << GEN8_PDE_SHIFT |
					  pte << GEN8_PTE_SHIFT);
1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503
				int i;
				bool found = false;

				for (i = 0; i < 4; i++)
					if (pt_vaddr[pte + i] != scratch_pte)
						found = true;
				if (!found)
					continue;

				seq_printf(m, "\t\t0x%llx [%03d,%03d,%04d]: =", va, pdpe, pde, pte);
				for (i = 0; i < 4; i++) {
					if (pt_vaddr[pte + i] != scratch_pte)
						seq_printf(m, " %llx", pt_vaddr[pte + i]);
					else
						seq_puts(m, "  SCRATCH ");
				}
				seq_puts(m, "\n");
			}
			kunmap_atomic(pt_vaddr);
		}
	}
}

static void gen8_dump_ppgtt(struct i915_hw_ppgtt *ppgtt, struct seq_file *m)
{
1504
	struct i915_address_space *vm = &ppgtt->vm;
1505 1506
	const gen8_pte_t scratch_pte =
		gen8_pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC);
1507
	u64 start = 0, length = ppgtt->vm.total;
1508

1509
	if (use_4lvl(vm)) {
1510
		u64 pml4e;
1511 1512 1513
		struct i915_pml4 *pml4 = &ppgtt->pml4;
		struct i915_page_directory_pointer *pdp;

1514
		gen8_for_each_pml4e(pdp, pml4, start, length, pml4e) {
1515
			if (pml4->pdps[pml4e] == ppgtt->vm.scratch_pdp)
1516 1517 1518
				continue;

			seq_printf(m, "    PML4E #%llu\n", pml4e);
1519
			gen8_dump_pdp(ppgtt, pdp, start, length, scratch_pte, m);
1520
		}
1521 1522
	} else {
		gen8_dump_pdp(ppgtt, &ppgtt->pdp, start, length, scratch_pte, m);
1523 1524 1525
	}
}

1526
static int gen8_preallocate_top_level_pdp(struct i915_hw_ppgtt *ppgtt)
1527
{
1528
	struct i915_address_space *vm = &ppgtt->vm;
1529 1530
	struct i915_page_directory_pointer *pdp = &ppgtt->pdp;
	struct i915_page_directory *pd;
1531
	u64 start = 0, length = ppgtt->vm.total;
1532 1533
	u64 from = start;
	unsigned int pdpe;
1534

1535 1536 1537 1538
	gen8_for_each_pdpe(pd, pdp, start, length, pdpe) {
		pd = alloc_pd(vm);
		if (IS_ERR(pd))
			goto unwind;
1539

1540 1541 1542 1543
		gen8_initialize_pd(vm, pd);
		gen8_ppgtt_set_pdpe(vm, pdp, pd, pdpe);
		pdp->used_pdpes++;
	}
1544

1545 1546
	pdp->used_pdpes++; /* never remove */
	return 0;
1547

1548 1549 1550 1551 1552 1553 1554 1555
unwind:
	start -= from;
	gen8_for_each_pdpe(pd, pdp, from, start, pdpe) {
		gen8_ppgtt_set_pdpe(vm, pdp, vm->scratch_pd, pdpe);
		free_pd(vm, pd);
	}
	pdp->used_pdpes = 0;
	return -ENOMEM;
1556 1557
}

1558
/*
1559 1560 1561 1562
 * GEN8 legacy ppgtt programming is accomplished through a max 4 PDP registers
 * with a net effect resembling a 2-level page table in normal x86 terms. Each
 * PDP represents 1GB of memory 4 * 512 * 512 * 4096 = 4GB legacy 32b address
 * space.
B
Ben Widawsky 已提交
1563
 *
1564
 */
1565
static int gen8_ppgtt_init(struct i915_hw_ppgtt *ppgtt)
B
Ben Widawsky 已提交
1566
{
1567
	struct i915_address_space *vm = &ppgtt->vm;
1568
	struct drm_i915_private *dev_priv = vm->i915;
1569
	int ret;
1570

1571
	ppgtt->vm.total = USES_FULL_48BIT_PPGTT(dev_priv) ?
1572 1573 1574
		1ULL << 48 :
		1ULL << 32;

1575 1576 1577 1578
	/* There are only few exceptions for gen >=6. chv and bxt.
	 * And we are not sure about the latter so play safe for now.
	 */
	if (IS_CHERRYVIEW(dev_priv) || IS_BROXTON(dev_priv))
1579
		ppgtt->vm.pt_kmap_wc = true;
1580

1581
	ret = gen8_init_scratch(&ppgtt->vm);
1582
	if (ret) {
1583
		ppgtt->vm.total = 0;
1584 1585 1586
		return ret;
	}

1587
	if (use_4lvl(vm)) {
1588
		ret = setup_px(&ppgtt->vm, &ppgtt->pml4);
1589 1590
		if (ret)
			goto free_scratch;
1591

1592
		gen8_initialize_pml4(&ppgtt->vm, &ppgtt->pml4);
1593

1594 1595 1596
		ppgtt->vm.allocate_va_range = gen8_ppgtt_alloc_4lvl;
		ppgtt->vm.insert_entries = gen8_ppgtt_insert_4lvl;
		ppgtt->vm.clear_range = gen8_ppgtt_clear_4lvl;
1597
	} else {
1598
		ret = __pdp_init(&ppgtt->vm, &ppgtt->pdp);
1599 1600 1601
		if (ret)
			goto free_scratch;

1602
		if (intel_vgpu_active(dev_priv)) {
1603 1604 1605
			ret = gen8_preallocate_top_level_pdp(ppgtt);
			if (ret) {
				__pdp_fini(&ppgtt->pdp);
1606
				goto free_scratch;
1607
			}
1608
		}
1609

1610 1611 1612
		ppgtt->vm.allocate_va_range = gen8_ppgtt_alloc_3lvl;
		ppgtt->vm.insert_entries = gen8_ppgtt_insert_3lvl;
		ppgtt->vm.clear_range = gen8_ppgtt_clear_3lvl;
1613
	}
1614

1615
	if (intel_vgpu_active(dev_priv))
1616 1617
		gen8_ppgtt_notify_vgt(ppgtt, true);

1618
	ppgtt->vm.cleanup = gen8_ppgtt_cleanup;
1619 1620
	ppgtt->debug_dump = gen8_dump_ppgtt;

1621 1622 1623 1624 1625
	ppgtt->vm.vma_ops.bind_vma    = gen8_ppgtt_bind_vma;
	ppgtt->vm.vma_ops.unbind_vma  = ppgtt_unbind_vma;
	ppgtt->vm.vma_ops.set_pages   = ppgtt_set_pages;
	ppgtt->vm.vma_ops.clear_pages = clear_pages;

1626
	return 0;
1627 1628

free_scratch:
1629
	gen8_free_scratch(&ppgtt->vm);
1630
	return ret;
1631 1632
}

B
Ben Widawsky 已提交
1633 1634
static void gen6_dump_ppgtt(struct i915_hw_ppgtt *ppgtt, struct seq_file *m)
{
1635
	struct i915_address_space *vm = &ppgtt->vm;
1636
	struct i915_page_table *unused;
1637
	gen6_pte_t scratch_pte;
1638
	u32 pd_entry, pte, pde;
1639
	u32 start = 0, length = ppgtt->vm.total;
B
Ben Widawsky 已提交
1640

1641
	scratch_pte = vm->pte_encode(vm->scratch_page.daddr,
1642
				     I915_CACHE_LLC, 0);
B
Ben Widawsky 已提交
1643

1644
	gen6_for_each_pde(unused, &ppgtt->pd, start, length, pde) {
B
Ben Widawsky 已提交
1645
		u32 expected;
1646
		gen6_pte_t *pt_vaddr;
1647
		const dma_addr_t pt_addr = px_dma(ppgtt->pd.page_table[pde]);
1648
		pd_entry = readl(ppgtt->pd_addr + pde);
B
Ben Widawsky 已提交
1649 1650 1651 1652 1653 1654 1655 1656 1657
		expected = (GEN6_PDE_ADDR_ENCODE(pt_addr) | GEN6_PDE_VALID);

		if (pd_entry != expected)
			seq_printf(m, "\tPDE #%d mismatch: Actual PDE: %x Expected PDE: %x\n",
				   pde,
				   pd_entry,
				   expected);
		seq_printf(m, "\tPDE: %x\n", pd_entry);

1658
		pt_vaddr = kmap_atomic_px(ppgtt->pd.page_table[pde]);
1659

1660
		for (pte = 0; pte < GEN6_PTES; pte+=4) {
B
Ben Widawsky 已提交
1661
			unsigned long va =
1662
				(pde * PAGE_SIZE * GEN6_PTES) +
B
Ben Widawsky 已提交
1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680
				(pte * PAGE_SIZE);
			int i;
			bool found = false;
			for (i = 0; i < 4; i++)
				if (pt_vaddr[pte + i] != scratch_pte)
					found = true;
			if (!found)
				continue;

			seq_printf(m, "\t\t0x%lx [%03d,%04d]: =", va, pde, pte);
			for (i = 0; i < 4; i++) {
				if (pt_vaddr[pte + i] != scratch_pte)
					seq_printf(m, " %08x", pt_vaddr[pte + i]);
				else
					seq_puts(m, "  SCRATCH ");
			}
			seq_puts(m, "\n");
		}
1681
		kunmap_atomic(pt_vaddr);
B
Ben Widawsky 已提交
1682 1683 1684
	}
}

1685
/* Write pde (index) from the page directory @pd to the page table @pt */
C
Chris Wilson 已提交
1686 1687 1688
static inline void gen6_write_pde(const struct i915_hw_ppgtt *ppgtt,
				  const unsigned int pde,
				  const struct i915_page_table *pt)
B
Ben Widawsky 已提交
1689
{
1690
	/* Caller needs to make sure the write completes if necessary */
C
Chris Wilson 已提交
1691 1692
	writel_relaxed(GEN6_PDE_ADDR_ENCODE(px_dma(pt)) | GEN6_PDE_VALID,
		       ppgtt->pd_addr + pde);
1693
}
B
Ben Widawsky 已提交
1694

1695 1696
/* Write all the page tables found in the ppgtt structure to incrementing page
 * directories. */
C
Chris Wilson 已提交
1697
static void gen6_write_page_range(struct i915_hw_ppgtt *ppgtt,
1698
				  u32 start, u32 length)
1699
{
1700
	struct i915_page_table *pt;
C
Chris Wilson 已提交
1701
	unsigned int pde;
1702

C
Chris Wilson 已提交
1703 1704
	gen6_for_each_pde(pt, &ppgtt->pd, start, length, pde)
		gen6_write_pde(ppgtt, pde, pt);
1705

C
Chris Wilson 已提交
1706
	mark_tlbs_dirty(ppgtt);
1707
	wmb();
B
Ben Widawsky 已提交
1708 1709
}

1710
static inline u32 get_pd_offset(struct i915_hw_ppgtt *ppgtt)
B
Ben Widawsky 已提交
1711
{
1712 1713
	GEM_BUG_ON(ppgtt->pd.base.ggtt_offset & 0x3f);
	return ppgtt->pd.base.ggtt_offset << 10;
1714 1715
}

1716
static int hsw_mm_switch(struct i915_hw_ppgtt *ppgtt,
1717
			 struct i915_request *rq)
1718
{
1719
	struct intel_engine_cs *engine = rq->engine;
1720
	u32 *cs;
1721 1722

	/* NB: TLBs must be flushed and invalidated before a switch */
1723
	cs = intel_ring_begin(rq, 6);
1724 1725
	if (IS_ERR(cs))
		return PTR_ERR(cs);
1726

1727 1728 1729 1730 1731 1732
	*cs++ = MI_LOAD_REGISTER_IMM(2);
	*cs++ = i915_mmio_reg_offset(RING_PP_DIR_DCLV(engine));
	*cs++ = PP_DIR_DCLV_2G;
	*cs++ = i915_mmio_reg_offset(RING_PP_DIR_BASE(engine));
	*cs++ = get_pd_offset(ppgtt);
	*cs++ = MI_NOOP;
1733
	intel_ring_advance(rq, cs);
1734 1735 1736 1737

	return 0;
}

1738
static int gen7_mm_switch(struct i915_hw_ppgtt *ppgtt,
1739
			  struct i915_request *rq)
1740
{
1741
	struct intel_engine_cs *engine = rq->engine;
1742
	u32 *cs;
1743 1744

	/* NB: TLBs must be flushed and invalidated before a switch */
1745
	cs = intel_ring_begin(rq, 6);
1746 1747 1748 1749 1750 1751 1752 1753 1754
	if (IS_ERR(cs))
		return PTR_ERR(cs);

	*cs++ = MI_LOAD_REGISTER_IMM(2);
	*cs++ = i915_mmio_reg_offset(RING_PP_DIR_DCLV(engine));
	*cs++ = PP_DIR_DCLV_2G;
	*cs++ = i915_mmio_reg_offset(RING_PP_DIR_BASE(engine));
	*cs++ = get_pd_offset(ppgtt);
	*cs++ = MI_NOOP;
1755
	intel_ring_advance(rq, cs);
1756 1757 1758 1759

	return 0;
}

1760
static int gen6_mm_switch(struct i915_hw_ppgtt *ppgtt,
1761
			  struct i915_request *rq)
1762
{
1763 1764
	struct intel_engine_cs *engine = rq->engine;
	struct drm_i915_private *dev_priv = rq->i915;
1765

1766 1767
	I915_WRITE(RING_PP_DIR_DCLV(engine), PP_DIR_DCLV_2G);
	I915_WRITE(RING_PP_DIR_BASE(engine), get_pd_offset(ppgtt));
1768 1769 1770
	return 0;
}

1771
static void gen8_ppgtt_enable(struct drm_i915_private *dev_priv)
1772
{
1773
	struct intel_engine_cs *engine;
1774
	enum intel_engine_id id;
B
Ben Widawsky 已提交
1775

1776
	for_each_engine(engine, dev_priv, id) {
1777 1778
		u32 four_level = USES_FULL_48BIT_PPGTT(dev_priv) ?
				 GEN8_GFX_PPGTT_48B : 0;
1779
		I915_WRITE(RING_MODE_GEN7(engine),
1780
			   _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE | four_level));
1781 1782
	}
}
B
Ben Widawsky 已提交
1783

1784
static void gen7_ppgtt_enable(struct drm_i915_private *dev_priv)
B
Ben Widawsky 已提交
1785
{
1786
	struct intel_engine_cs *engine;
1787
	u32 ecochk, ecobits;
1788
	enum intel_engine_id id;
B
Ben Widawsky 已提交
1789

1790 1791
	ecobits = I915_READ(GAC_ECO_BITS);
	I915_WRITE(GAC_ECO_BITS, ecobits | ECOBITS_PPGTT_CACHE64B);
1792

1793
	ecochk = I915_READ(GAM_ECOCHK);
1794
	if (IS_HASWELL(dev_priv)) {
1795 1796 1797 1798 1799 1800
		ecochk |= ECOCHK_PPGTT_WB_HSW;
	} else {
		ecochk |= ECOCHK_PPGTT_LLC_IVB;
		ecochk &= ~ECOCHK_PPGTT_GFDT_IVB;
	}
	I915_WRITE(GAM_ECOCHK, ecochk);
1801

1802
	for_each_engine(engine, dev_priv, id) {
B
Ben Widawsky 已提交
1803
		/* GFX_MODE is per-ring on gen7+ */
1804
		I915_WRITE(RING_MODE_GEN7(engine),
1805
			   _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE));
B
Ben Widawsky 已提交
1806
	}
1807
}
B
Ben Widawsky 已提交
1808

1809
static void gen6_ppgtt_enable(struct drm_i915_private *dev_priv)
1810
{
1811
	u32 ecochk, gab_ctl, ecobits;
1812

1813 1814 1815
	ecobits = I915_READ(GAC_ECO_BITS);
	I915_WRITE(GAC_ECO_BITS, ecobits | ECOBITS_SNB_BIT |
		   ECOBITS_PPGTT_CACHE64B);
B
Ben Widawsky 已提交
1816

1817 1818 1819 1820 1821 1822 1823
	gab_ctl = I915_READ(GAB_CTL);
	I915_WRITE(GAB_CTL, gab_ctl | GAB_CTL_CONT_AFTER_PAGEFAULT);

	ecochk = I915_READ(GAM_ECOCHK);
	I915_WRITE(GAM_ECOCHK, ecochk | ECOCHK_SNB_BIT | ECOCHK_PPGTT_CACHE64B);

	I915_WRITE(GFX_MODE, _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE));
B
Ben Widawsky 已提交
1824 1825
}

1826
/* PPGTT support for Sandybdrige/Gen6 and later */
1827
static void gen6_ppgtt_clear_range(struct i915_address_space *vm,
1828
				   u64 start, u64 length)
1829
{
1830
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1831 1832 1833 1834 1835 1836
	unsigned int first_entry = start >> PAGE_SHIFT;
	unsigned int pde = first_entry / GEN6_PTES;
	unsigned int pte = first_entry % GEN6_PTES;
	unsigned int num_entries = length >> PAGE_SHIFT;
	gen6_pte_t scratch_pte =
		vm->pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC, 0);
1837

1838
	while (num_entries) {
1839 1840 1841
		struct i915_page_table *pt = ppgtt->pd.page_table[pde++];
		unsigned int end = min(pte + num_entries, GEN6_PTES);
		gen6_pte_t *vaddr;
1842

1843
		num_entries -= end - pte;
1844

1845 1846 1847 1848 1849
		/* Note that the hw doesn't support removing PDE on the fly
		 * (they are cached inside the context with no means to
		 * invalidate the cache), so we can only reset the PTE
		 * entries back to scratch.
		 */
1850

1851 1852 1853 1854 1855
		vaddr = kmap_atomic_px(pt);
		do {
			vaddr[pte++] = scratch_pte;
		} while (pte < end);
		kunmap_atomic(vaddr);
1856

1857
		pte = 0;
1858
	}
1859 1860
}

1861
static void gen6_ppgtt_insert_entries(struct i915_address_space *vm,
1862
				      struct i915_vma *vma,
1863 1864
				      enum i915_cache_level cache_level,
				      u32 flags)
D
Daniel Vetter 已提交
1865
{
1866
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1867
	unsigned first_entry = vma->node.start >> PAGE_SHIFT;
1868 1869
	unsigned act_pt = first_entry / GEN6_PTES;
	unsigned act_pte = first_entry % GEN6_PTES;
1870
	const u32 pte_encode = vm->pte_encode(0, cache_level, flags);
1871
	struct sgt_dma iter = sgt_dma(vma);
1872 1873
	gen6_pte_t *vaddr;

1874
	vaddr = kmap_atomic_px(ppgtt->pd.page_table[act_pt]);
1875 1876
	do {
		vaddr[act_pte] = pte_encode | GEN6_PTE_ADDR_ENCODE(iter.dma);
1877

1878 1879 1880 1881 1882
		iter.dma += PAGE_SIZE;
		if (iter.dma == iter.max) {
			iter.sg = __sg_next(iter.sg);
			if (!iter.sg)
				break;
1883

1884 1885 1886
			iter.dma = sg_dma_address(iter.sg);
			iter.max = iter.dma + iter.sg->length;
		}
1887

1888
		if (++act_pte == GEN6_PTES) {
1889 1890
			kunmap_atomic(vaddr);
			vaddr = kmap_atomic_px(ppgtt->pd.page_table[++act_pt]);
1891
			act_pte = 0;
D
Daniel Vetter 已提交
1892
		}
1893
	} while (1);
1894
	kunmap_atomic(vaddr);
1895 1896

	vma->page_sizes.gtt = I915_GTT_PAGE_SIZE;
D
Daniel Vetter 已提交
1897 1898
}

1899
static int gen6_alloc_va_range(struct i915_address_space *vm,
1900
			       u64 start, u64 length)
1901
{
1902
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1903
	struct i915_page_table *pt;
1904 1905 1906
	u64 from = start;
	unsigned int pde;
	bool flush = false;
1907

1908
	gen6_for_each_pde(pt, &ppgtt->pd, start, length, pde) {
1909 1910 1911 1912
		if (pt == vm->scratch_pt) {
			pt = alloc_pt(vm);
			if (IS_ERR(pt))
				goto unwind_out;
1913

1914 1915 1916 1917
			gen6_initialize_pt(vm, pt);
			ppgtt->pd.page_table[pde] = pt;
			gen6_write_pde(ppgtt, pde, pt);
			flush = true;
1918 1919 1920
		}
	}

1921 1922 1923
	if (flush) {
		mark_tlbs_dirty(ppgtt);
		wmb();
1924 1925 1926
	}

	return 0;
1927 1928

unwind_out:
1929 1930
	gen6_ppgtt_clear_range(vm, from, start);
	return -ENOMEM;
1931 1932
}

1933 1934
static int gen6_init_scratch(struct i915_address_space *vm)
{
1935
	int ret;
1936

1937
	ret = setup_scratch_page(vm, __GFP_HIGHMEM);
1938 1939
	if (ret)
		return ret;
1940

1941
	vm->scratch_pt = alloc_pt(vm);
1942
	if (IS_ERR(vm->scratch_pt)) {
1943
		cleanup_scratch_page(vm);
1944 1945 1946 1947 1948 1949 1950 1951 1952 1953
		return PTR_ERR(vm->scratch_pt);
	}

	gen6_initialize_pt(vm, vm->scratch_pt);

	return 0;
}

static void gen6_free_scratch(struct i915_address_space *vm)
{
1954 1955
	free_pt(vm, vm->scratch_pt);
	cleanup_scratch_page(vm);
1956 1957
}

1958
static void gen6_ppgtt_cleanup(struct i915_address_space *vm)
1959
{
1960
	struct i915_hw_ppgtt *ppgtt = i915_vm_to_ppgtt(vm);
1961
	struct i915_page_directory *pd = &ppgtt->pd;
1962
	struct i915_page_table *pt;
1963
	u32 pde;
1964

1965 1966
	drm_mm_remove_node(&ppgtt->node);

1967
	gen6_for_all_pdes(pt, pd, pde)
1968
		if (pt != vm->scratch_pt)
1969
			free_pt(vm, pt);
1970

1971
	gen6_free_scratch(vm);
1972 1973
}

1974
static int gen6_ppgtt_allocate_page_directories(struct i915_hw_ppgtt *ppgtt)
1975
{
1976 1977
	struct i915_address_space *vm = &ppgtt->vm;
	struct drm_i915_private *dev_priv = ppgtt->vm.i915;
1978
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
1979
	int ret;
1980

B
Ben Widawsky 已提交
1981 1982 1983 1984
	/* PPGTT PDEs reside in the GGTT and consists of 512 entries. The
	 * allocator works in address space sizes, so it's multiplied by page
	 * size. We allocate at the top of the GTT to avoid fragmentation.
	 */
1985
	BUG_ON(!drm_mm_initialized(&ggtt->vm.mm));
1986

1987 1988 1989
	ret = gen6_init_scratch(vm);
	if (ret)
		return ret;
1990

1991
	ret = i915_gem_gtt_insert(&ggtt->vm, &ppgtt->node,
1992 1993
				  GEN6_PD_SIZE, GEN6_PD_ALIGN,
				  I915_COLOR_UNEVICTABLE,
1994
				  0, ggtt->vm.total,
1995
				  PIN_HIGH);
1996
	if (ret)
1997 1998
		goto err_out;

1999
	if (ppgtt->node.start < ggtt->mappable_end)
B
Ben Widawsky 已提交
2000
		DRM_DEBUG("Forced to use aperture for PDEs\n");
2001

2002 2003 2004 2005 2006 2007
	ppgtt->pd.base.ggtt_offset =
		ppgtt->node.start / PAGE_SIZE * sizeof(gen6_pte_t);

	ppgtt->pd_addr = (gen6_pte_t __iomem *)ggtt->gsm +
		ppgtt->pd.base.ggtt_offset / sizeof(gen6_pte_t);

2008
	return 0;
2009 2010

err_out:
2011
	gen6_free_scratch(vm);
2012
	return ret;
2013 2014 2015 2016
}

static int gen6_ppgtt_alloc(struct i915_hw_ppgtt *ppgtt)
{
2017
	return gen6_ppgtt_allocate_page_directories(ppgtt);
2018
}
2019

2020
static void gen6_scratch_va_range(struct i915_hw_ppgtt *ppgtt,
2021
				  u64 start, u64 length)
2022
{
2023
	struct i915_page_table *unused;
2024
	u32 pde;
2025

2026
	gen6_for_each_pde(unused, &ppgtt->pd, start, length, pde)
2027
		ppgtt->pd.page_table[pde] = ppgtt->vm.scratch_pt;
2028 2029
}

2030
static int gen6_ppgtt_init(struct i915_hw_ppgtt *ppgtt)
2031
{
2032
	struct drm_i915_private *dev_priv = ppgtt->vm.i915;
2033
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
2034 2035
	int ret;

2036
	ppgtt->vm.pte_encode = ggtt->vm.pte_encode;
2037
	if (intel_vgpu_active(dev_priv) || IS_GEN6(dev_priv))
2038
		ppgtt->switch_mm = gen6_mm_switch;
2039
	else if (IS_HASWELL(dev_priv))
2040
		ppgtt->switch_mm = hsw_mm_switch;
2041
	else if (IS_GEN7(dev_priv))
2042
		ppgtt->switch_mm = gen7_mm_switch;
2043
	else
2044 2045 2046 2047 2048 2049
		BUG();

	ret = gen6_ppgtt_alloc(ppgtt);
	if (ret)
		return ret;

2050
	ppgtt->vm.total = I915_PDES * GEN6_PTES * PAGE_SIZE;
2051

2052 2053
	gen6_scratch_va_range(ppgtt, 0, ppgtt->vm.total);
	gen6_write_page_range(ppgtt, 0, ppgtt->vm.total);
2054

2055
	ret = gen6_alloc_va_range(&ppgtt->vm, 0, ppgtt->vm.total);
2056
	if (ret) {
2057
		gen6_ppgtt_cleanup(&ppgtt->vm);
2058 2059 2060
		return ret;
	}

2061 2062 2063
	ppgtt->vm.clear_range = gen6_ppgtt_clear_range;
	ppgtt->vm.insert_entries = gen6_ppgtt_insert_entries;
	ppgtt->vm.cleanup = gen6_ppgtt_cleanup;
2064 2065
	ppgtt->debug_dump = gen6_dump_ppgtt;

2066 2067 2068 2069 2070
	ppgtt->vm.vma_ops.bind_vma    = gen6_ppgtt_bind_vma;
	ppgtt->vm.vma_ops.unbind_vma  = ppgtt_unbind_vma;
	ppgtt->vm.vma_ops.set_pages   = ppgtt_set_pages;
	ppgtt->vm.vma_ops.clear_pages = clear_pages;

2071
	DRM_DEBUG_DRIVER("Allocated pde space (%lldM) at GTT entry: %llx\n",
2072 2073
			 ppgtt->node.size >> 20,
			 ppgtt->node.start / PAGE_SIZE);
2074

2075 2076
	DRM_DEBUG_DRIVER("Adding PPGTT at offset %x\n",
			 ppgtt->pd.base.ggtt_offset << 10);
2077

2078
	return 0;
2079 2080
}

2081 2082
static int __hw_ppgtt_init(struct i915_hw_ppgtt *ppgtt,
			   struct drm_i915_private *dev_priv)
2083
{
2084 2085
	ppgtt->vm.i915 = dev_priv;
	ppgtt->vm.dma = &dev_priv->drm.pdev->dev;
2086

2087
	if (INTEL_GEN(dev_priv) < 8)
2088
		return gen6_ppgtt_init(ppgtt);
B
Ben Widawsky 已提交
2089
	else
2090
		return gen8_ppgtt_init(ppgtt);
2091
}
2092

2093
static void i915_address_space_init(struct i915_address_space *vm,
C
Chris Wilson 已提交
2094 2095
				    struct drm_i915_private *dev_priv,
				    const char *name)
2096
{
2097
	drm_mm_init(&vm->mm, 0, vm->total);
2098 2099
	vm->mm.head_node.color = I915_COLOR_UNEVICTABLE;

2100 2101
	INIT_LIST_HEAD(&vm->active_list);
	INIT_LIST_HEAD(&vm->inactive_list);
2102
	INIT_LIST_HEAD(&vm->unbound_list);
2103

2104
	list_add_tail(&vm->global_link, &dev_priv->vm_list);
2105
	pagevec_init(&vm->free_pages);
2106 2107
}

2108 2109
static void i915_address_space_fini(struct i915_address_space *vm)
{
2110
	if (pagevec_count(&vm->free_pages))
2111
		vm_free_pages_release(vm, true);
2112

2113 2114 2115 2116
	drm_mm_takedown(&vm->mm);
	list_del(&vm->global_link);
}

2117
static void gtt_write_workarounds(struct drm_i915_private *dev_priv)
2118 2119 2120 2121 2122
{
	/* This function is for gtt related workarounds. This function is
	 * called on driver load and after a GPU reset, so you can place
	 * workarounds here even if they get overwritten by GPU reset.
	 */
2123
	/* WaIncreaseDefaultTLBEntries:chv,bdw,skl,bxt,kbl,glk,cfl,cnl,icl */
2124
	if (IS_BROADWELL(dev_priv))
2125
		I915_WRITE(GEN8_L3_LRA_1_GPGPU, GEN8_L3_LRA_1_GPGPU_DEFAULT_VALUE_BDW);
2126
	else if (IS_CHERRYVIEW(dev_priv))
2127
		I915_WRITE(GEN8_L3_LRA_1_GPGPU, GEN8_L3_LRA_1_GPGPU_DEFAULT_VALUE_CHV);
2128
	else if (IS_GEN9_LP(dev_priv))
2129
		I915_WRITE(GEN8_L3_LRA_1_GPGPU, GEN9_L3_LRA_1_GPGPU_DEFAULT_VALUE_BXT);
2130 2131
	else if (INTEL_GEN(dev_priv) >= 9)
		I915_WRITE(GEN8_L3_LRA_1_GPGPU, GEN9_L3_LRA_1_GPGPU_DEFAULT_VALUE_SKL);
2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148

	/*
	 * To support 64K PTEs we need to first enable the use of the
	 * Intermediate-Page-Size(IPS) bit of the PDE field via some magical
	 * mmio, otherwise the page-walker will simply ignore the IPS bit. This
	 * shouldn't be needed after GEN10.
	 *
	 * 64K pages were first introduced from BDW+, although technically they
	 * only *work* from gen9+. For pre-BDW we instead have the option for
	 * 32K pages, but we don't currently have any support for it in our
	 * driver.
	 */
	if (HAS_PAGE_SIZES(dev_priv, I915_GTT_PAGE_SIZE_64K) &&
	    INTEL_GEN(dev_priv) <= 10)
		I915_WRITE(GEN8_GAMW_ECO_DEV_RW_IA,
			   I915_READ(GEN8_GAMW_ECO_DEV_RW_IA) |
			   GAMW_ECO_ENABLE_64K_IPS_FIELD);
2149 2150
}

2151
int i915_ppgtt_init_hw(struct drm_i915_private *dev_priv)
2152
{
2153
	gtt_write_workarounds(dev_priv);
2154

2155 2156 2157
	/* In the case of execlists, PPGTT is enabled by the context descriptor
	 * and the PDPs are contained within the context itself.  We don't
	 * need to do anything here. */
2158
	if (HAS_LOGICAL_RING_CONTEXTS(dev_priv))
2159 2160
		return 0;

2161
	if (!USES_PPGTT(dev_priv))
2162 2163
		return 0;

2164
	if (IS_GEN6(dev_priv))
2165
		gen6_ppgtt_enable(dev_priv);
2166
	else if (IS_GEN7(dev_priv))
2167 2168 2169
		gen7_ppgtt_enable(dev_priv);
	else if (INTEL_GEN(dev_priv) >= 8)
		gen8_ppgtt_enable(dev_priv);
2170
	else
2171
		MISSING_CASE(INTEL_GEN(dev_priv));
2172

2173 2174
	return 0;
}
2175

2176
struct i915_hw_ppgtt *
2177
i915_ppgtt_create(struct drm_i915_private *dev_priv,
C
Chris Wilson 已提交
2178 2179
		  struct drm_i915_file_private *fpriv,
		  const char *name)
2180 2181 2182 2183 2184 2185 2186 2187
{
	struct i915_hw_ppgtt *ppgtt;
	int ret;

	ppgtt = kzalloc(sizeof(*ppgtt), GFP_KERNEL);
	if (!ppgtt)
		return ERR_PTR(-ENOMEM);

2188
	ret = __hw_ppgtt_init(ppgtt, dev_priv);
2189 2190 2191 2192 2193
	if (ret) {
		kfree(ppgtt);
		return ERR_PTR(ret);
	}

2194
	kref_init(&ppgtt->ref);
2195 2196
	i915_address_space_init(&ppgtt->vm, dev_priv, name);
	ppgtt->vm.file = fpriv;
2197

2198
	trace_i915_ppgtt_create(&ppgtt->vm);
2199

2200 2201 2202
	return ppgtt;
}

2203
void i915_ppgtt_close(struct i915_address_space *vm)
2204 2205 2206 2207 2208 2209
{
	GEM_BUG_ON(vm->closed);
	vm->closed = true;
}

static void ppgtt_destroy_vma(struct i915_address_space *vm)
2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222
{
	struct list_head *phases[] = {
		&vm->active_list,
		&vm->inactive_list,
		&vm->unbound_list,
		NULL,
	}, **phase;

	vm->closed = true;
	for (phase = phases; *phase; phase++) {
		struct i915_vma *vma, *vn;

		list_for_each_entry_safe(vma, vn, *phase, vm_link)
2223
			i915_vma_destroy(vma);
2224 2225 2226
	}
}

2227
void i915_ppgtt_release(struct kref *kref)
2228 2229 2230 2231
{
	struct i915_hw_ppgtt *ppgtt =
		container_of(kref, struct i915_hw_ppgtt, ref);

2232
	trace_i915_ppgtt_release(&ppgtt->vm);
2233

2234
	ppgtt_destroy_vma(&ppgtt->vm);
2235

2236 2237 2238
	GEM_BUG_ON(!list_empty(&ppgtt->vm.active_list));
	GEM_BUG_ON(!list_empty(&ppgtt->vm.inactive_list));
	GEM_BUG_ON(!list_empty(&ppgtt->vm.unbound_list));
2239

2240 2241
	ppgtt->vm.cleanup(&ppgtt->vm);
	i915_address_space_fini(&ppgtt->vm);
2242 2243
	kfree(ppgtt);
}
2244

2245 2246 2247
/* Certain Gen5 chipsets require require idling the GPU before
 * unmapping anything from the GTT when VT-d is enabled.
 */
2248
static bool needs_idle_maps(struct drm_i915_private *dev_priv)
2249 2250 2251 2252
{
	/* Query intel_iommu to see if we need the workaround. Presumably that
	 * was loaded first.
	 */
2253
	return IS_GEN5(dev_priv) && IS_MOBILE(dev_priv) && intel_vtd_active();
2254 2255
}

2256
static void gen6_check_and_clear_faults(struct drm_i915_private *dev_priv)
2257
{
2258
	struct intel_engine_cs *engine;
2259
	enum intel_engine_id id;
2260
	u32 fault;
2261

2262
	for_each_engine(engine, dev_priv, id) {
2263 2264
		fault = I915_READ(RING_FAULT_REG(engine));
		if (fault & RING_FAULT_VALID) {
2265
			DRM_DEBUG_DRIVER("Unexpected fault\n"
2266
					 "\tAddr: 0x%08lx\n"
2267 2268 2269
					 "\tAddress space: %s\n"
					 "\tSource ID: %d\n"
					 "\tType: %d\n",
2270 2271 2272 2273
					 fault & PAGE_MASK,
					 fault & RING_FAULT_GTTSEL_MASK ? "GGTT" : "PPGTT",
					 RING_FAULT_SRCID(fault),
					 RING_FAULT_FAULT_TYPE(fault));
2274
			I915_WRITE(RING_FAULT_REG(engine),
2275
				   fault & ~RING_FAULT_VALID);
2276 2277
		}
	}
2278

2279 2280 2281 2282 2283 2284 2285 2286
	POSTING_READ(RING_FAULT_REG(dev_priv->engine[RCS]));
}

static void gen8_check_and_clear_faults(struct drm_i915_private *dev_priv)
{
	u32 fault = I915_READ(GEN8_RING_FAULT_REG);

	if (fault & RING_FAULT_VALID) {
2287 2288 2289 2290 2291 2292 2293 2294
		u32 fault_data0, fault_data1;
		u64 fault_addr;

		fault_data0 = I915_READ(GEN8_FAULT_TLB_DATA0);
		fault_data1 = I915_READ(GEN8_FAULT_TLB_DATA1);
		fault_addr = ((u64)(fault_data1 & FAULT_VA_HIGH_BITS) << 44) |
			     ((u64)fault_data0 << 12);

2295
		DRM_DEBUG_DRIVER("Unexpected fault\n"
2296 2297
				 "\tAddr: 0x%08x_%08x\n"
				 "\tAddress space: %s\n"
2298 2299 2300
				 "\tEngine ID: %d\n"
				 "\tSource ID: %d\n"
				 "\tType: %d\n",
2301 2302 2303
				 upper_32_bits(fault_addr),
				 lower_32_bits(fault_addr),
				 fault_data1 & FAULT_GTT_SEL ? "GGTT" : "PPGTT",
2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322
				 GEN8_RING_FAULT_ENGINE_ID(fault),
				 RING_FAULT_SRCID(fault),
				 RING_FAULT_FAULT_TYPE(fault));
		I915_WRITE(GEN8_RING_FAULT_REG,
			   fault & ~RING_FAULT_VALID);
	}

	POSTING_READ(GEN8_RING_FAULT_REG);
}

void i915_check_and_clear_faults(struct drm_i915_private *dev_priv)
{
	/* From GEN8 onwards we only have one 'All Engine Fault Register' */
	if (INTEL_GEN(dev_priv) >= 8)
		gen8_check_and_clear_faults(dev_priv);
	else if (INTEL_GEN(dev_priv) >= 6)
		gen6_check_and_clear_faults(dev_priv);
	else
		return;
2323 2324
}

2325
void i915_gem_suspend_gtt_mappings(struct drm_i915_private *dev_priv)
2326
{
2327
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
2328 2329 2330 2331

	/* Don't bother messing with faults pre GEN6 as we have little
	 * documentation supporting that it's a good idea.
	 */
2332
	if (INTEL_GEN(dev_priv) < 6)
2333 2334
		return;

2335
	i915_check_and_clear_faults(dev_priv);
2336

2337
	ggtt->vm.clear_range(&ggtt->vm, 0, ggtt->vm.total);
2338

2339
	i915_ggtt_invalidate(dev_priv);
2340 2341
}

2342 2343
int i915_gem_gtt_prepare_pages(struct drm_i915_gem_object *obj,
			       struct sg_table *pages)
2344
{
2345
	do {
2346 2347 2348 2349
		if (dma_map_sg_attrs(&obj->base.dev->pdev->dev,
				     pages->sgl, pages->nents,
				     PCI_DMA_BIDIRECTIONAL,
				     DMA_ATTR_NO_WARN))
2350 2351 2352 2353 2354 2355 2356 2357 2358 2359
			return 0;

		/* If the DMA remap fails, one cause can be that we have
		 * too many objects pinned in a small remapping table,
		 * such as swiotlb. Incrementally purge all other objects and
		 * try again - if there are no more pages to remove from
		 * the DMA remapper, i915_gem_shrink will return 0.
		 */
		GEM_BUG_ON(obj->mm.pages == pages);
	} while (i915_gem_shrink(to_i915(obj->base.dev),
2360
				 obj->base.size >> PAGE_SHIFT, NULL,
2361 2362 2363
				 I915_SHRINK_BOUND |
				 I915_SHRINK_UNBOUND |
				 I915_SHRINK_ACTIVE));
2364

2365
	return -ENOSPC;
2366 2367
}

2368
static void gen8_set_pte(void __iomem *addr, gen8_pte_t pte)
B
Ben Widawsky 已提交
2369 2370 2371 2372
{
	writeq(pte, addr);
}

2373 2374
static void gen8_ggtt_insert_page(struct i915_address_space *vm,
				  dma_addr_t addr,
2375
				  u64 offset,
2376 2377 2378
				  enum i915_cache_level level,
				  u32 unused)
{
2379
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2380
	gen8_pte_t __iomem *pte =
2381
		(gen8_pte_t __iomem *)ggtt->gsm + (offset >> PAGE_SHIFT);
2382

2383
	gen8_set_pte(pte, gen8_pte_encode(addr, level));
2384

2385
	ggtt->invalidate(vm->i915);
2386 2387
}

B
Ben Widawsky 已提交
2388
static void gen8_ggtt_insert_entries(struct i915_address_space *vm,
2389
				     struct i915_vma *vma,
2390 2391
				     enum i915_cache_level level,
				     u32 unused)
B
Ben Widawsky 已提交
2392
{
2393
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2394 2395
	struct sgt_iter sgt_iter;
	gen8_pte_t __iomem *gtt_entries;
2396
	const gen8_pte_t pte_encode = gen8_pte_encode(0, level);
2397
	dma_addr_t addr;
2398

2399
	gtt_entries = (gen8_pte_t __iomem *)ggtt->gsm;
2400 2401
	gtt_entries += vma->node.start >> PAGE_SHIFT;
	for_each_sgt_dma(addr, sgt_iter, vma->pages)
2402
		gen8_set_pte(gtt_entries++, pte_encode | addr);
2403

2404 2405 2406
	/*
	 * We want to flush the TLBs only after we're certain all the PTE
	 * updates have finished.
B
Ben Widawsky 已提交
2407
	 */
2408
	ggtt->invalidate(vm->i915);
B
Ben Widawsky 已提交
2409 2410
}

2411 2412
static void gen6_ggtt_insert_page(struct i915_address_space *vm,
				  dma_addr_t addr,
2413
				  u64 offset,
2414 2415 2416
				  enum i915_cache_level level,
				  u32 flags)
{
2417
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2418
	gen6_pte_t __iomem *pte =
2419
		(gen6_pte_t __iomem *)ggtt->gsm + (offset >> PAGE_SHIFT);
2420

2421
	iowrite32(vm->pte_encode(addr, level, flags), pte);
2422

2423
	ggtt->invalidate(vm->i915);
2424 2425
}

2426 2427 2428 2429 2430 2431
/*
 * Binds an object into the global gtt with the specified cache level. The object
 * will be accessible to the GPU via commands whose operands reference offsets
 * within the global GTT as well as accessible by the GPU through the GMADR
 * mapped BAR (dev_priv->mm.gtt->gtt).
 */
2432
static void gen6_ggtt_insert_entries(struct i915_address_space *vm,
2433
				     struct i915_vma *vma,
2434 2435
				     enum i915_cache_level level,
				     u32 flags)
2436
{
2437
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2438
	gen6_pte_t __iomem *entries = (gen6_pte_t __iomem *)ggtt->gsm;
2439
	unsigned int i = vma->node.start >> PAGE_SHIFT;
2440
	struct sgt_iter iter;
2441
	dma_addr_t addr;
2442
	for_each_sgt_dma(addr, iter, vma->pages)
2443
		iowrite32(vm->pte_encode(addr, level, flags), &entries[i++]);
2444

2445 2446 2447
	/*
	 * We want to flush the TLBs only after we're certain all the PTE
	 * updates have finished.
2448
	 */
2449
	ggtt->invalidate(vm->i915);
2450 2451
}

2452
static void nop_clear_range(struct i915_address_space *vm,
2453
			    u64 start, u64 length)
2454 2455 2456
{
}

B
Ben Widawsky 已提交
2457
static void gen8_ggtt_clear_range(struct i915_address_space *vm,
2458
				  u64 start, u64 length)
B
Ben Widawsky 已提交
2459
{
2460
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2461 2462
	unsigned first_entry = start >> PAGE_SHIFT;
	unsigned num_entries = length >> PAGE_SHIFT;
2463 2464 2465
	const gen8_pte_t scratch_pte =
		gen8_pte_encode(vm->scratch_page.daddr, I915_CACHE_LLC);
	gen8_pte_t __iomem *gtt_base =
2466 2467
		(gen8_pte_t __iomem *)ggtt->gsm + first_entry;
	const int max_entries = ggtt_total_entries(ggtt) - first_entry;
B
Ben Widawsky 已提交
2468 2469 2470 2471 2472 2473 2474 2475 2476 2477 2478
	int i;

	if (WARN(num_entries > max_entries,
		 "First entry = %d; Num entries = %d (max=%d)\n",
		 first_entry, num_entries, max_entries))
		num_entries = max_entries;

	for (i = 0; i < num_entries; i++)
		gen8_set_pte(&gtt_base[i], scratch_pte);
}

2479 2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522
static void bxt_vtd_ggtt_wa(struct i915_address_space *vm)
{
	struct drm_i915_private *dev_priv = vm->i915;

	/*
	 * Make sure the internal GAM fifo has been cleared of all GTT
	 * writes before exiting stop_machine(). This guarantees that
	 * any aperture accesses waiting to start in another process
	 * cannot back up behind the GTT writes causing a hang.
	 * The register can be any arbitrary GAM register.
	 */
	POSTING_READ(GFX_FLSH_CNTL_GEN6);
}

struct insert_page {
	struct i915_address_space *vm;
	dma_addr_t addr;
	u64 offset;
	enum i915_cache_level level;
};

static int bxt_vtd_ggtt_insert_page__cb(void *_arg)
{
	struct insert_page *arg = _arg;

	gen8_ggtt_insert_page(arg->vm, arg->addr, arg->offset, arg->level, 0);
	bxt_vtd_ggtt_wa(arg->vm);

	return 0;
}

static void bxt_vtd_ggtt_insert_page__BKL(struct i915_address_space *vm,
					  dma_addr_t addr,
					  u64 offset,
					  enum i915_cache_level level,
					  u32 unused)
{
	struct insert_page arg = { vm, addr, offset, level };

	stop_machine(bxt_vtd_ggtt_insert_page__cb, &arg, NULL);
}

struct insert_entries {
	struct i915_address_space *vm;
2523
	struct i915_vma *vma;
2524 2525 2526 2527 2528 2529 2530
	enum i915_cache_level level;
};

static int bxt_vtd_ggtt_insert_entries__cb(void *_arg)
{
	struct insert_entries *arg = _arg;

2531
	gen8_ggtt_insert_entries(arg->vm, arg->vma, arg->level, 0);
2532 2533 2534 2535 2536 2537
	bxt_vtd_ggtt_wa(arg->vm);

	return 0;
}

static void bxt_vtd_ggtt_insert_entries__BKL(struct i915_address_space *vm,
2538
					     struct i915_vma *vma,
2539 2540 2541
					     enum i915_cache_level level,
					     u32 unused)
{
2542
	struct insert_entries arg = { vm, vma, level };
2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564 2565 2566 2567 2568 2569 2570 2571

	stop_machine(bxt_vtd_ggtt_insert_entries__cb, &arg, NULL);
}

struct clear_range {
	struct i915_address_space *vm;
	u64 start;
	u64 length;
};

static int bxt_vtd_ggtt_clear_range__cb(void *_arg)
{
	struct clear_range *arg = _arg;

	gen8_ggtt_clear_range(arg->vm, arg->start, arg->length);
	bxt_vtd_ggtt_wa(arg->vm);

	return 0;
}

static void bxt_vtd_ggtt_clear_range__BKL(struct i915_address_space *vm,
					  u64 start,
					  u64 length)
{
	struct clear_range arg = { vm, start, length };

	stop_machine(bxt_vtd_ggtt_clear_range__cb, &arg, NULL);
}

2572
static void gen6_ggtt_clear_range(struct i915_address_space *vm,
2573
				  u64 start, u64 length)
2574
{
2575
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);
2576 2577
	unsigned first_entry = start >> PAGE_SHIFT;
	unsigned num_entries = length >> PAGE_SHIFT;
2578
	gen6_pte_t scratch_pte, __iomem *gtt_base =
2579 2580
		(gen6_pte_t __iomem *)ggtt->gsm + first_entry;
	const int max_entries = ggtt_total_entries(ggtt) - first_entry;
2581 2582 2583 2584 2585 2586 2587
	int i;

	if (WARN(num_entries > max_entries,
		 "First entry = %d; Num entries = %d (max=%d)\n",
		 first_entry, num_entries, max_entries))
		num_entries = max_entries;

2588
	scratch_pte = vm->pte_encode(vm->scratch_page.daddr,
2589
				     I915_CACHE_LLC, 0);
2590

2591 2592 2593 2594
	for (i = 0; i < num_entries; i++)
		iowrite32(scratch_pte, &gtt_base[i]);
}

2595 2596
static void i915_ggtt_insert_page(struct i915_address_space *vm,
				  dma_addr_t addr,
2597
				  u64 offset,
2598 2599 2600 2601 2602 2603 2604 2605 2606
				  enum i915_cache_level cache_level,
				  u32 unused)
{
	unsigned int flags = (cache_level == I915_CACHE_NONE) ?
		AGP_USER_MEMORY : AGP_USER_CACHED_MEMORY;

	intel_gtt_insert_page(addr, offset >> PAGE_SHIFT, flags);
}

2607
static void i915_ggtt_insert_entries(struct i915_address_space *vm,
2608
				     struct i915_vma *vma,
2609 2610
				     enum i915_cache_level cache_level,
				     u32 unused)
2611 2612 2613 2614
{
	unsigned int flags = (cache_level == I915_CACHE_NONE) ?
		AGP_USER_MEMORY : AGP_USER_CACHED_MEMORY;

2615 2616
	intel_gtt_insert_sg_entries(vma->pages, vma->node.start >> PAGE_SHIFT,
				    flags);
2617 2618
}

2619
static void i915_ggtt_clear_range(struct i915_address_space *vm,
2620
				  u64 start, u64 length)
2621
{
2622
	intel_gtt_clear_range(start >> PAGE_SHIFT, length >> PAGE_SHIFT);
2623 2624
}

2625 2626 2627
static int ggtt_bind_vma(struct i915_vma *vma,
			 enum i915_cache_level cache_level,
			 u32 flags)
2628
{
2629
	struct drm_i915_private *i915 = vma->vm->i915;
2630
	struct drm_i915_gem_object *obj = vma->obj;
2631
	u32 pte_flags;
2632 2633

	/* Currently applicable only to VLV */
2634
	pte_flags = 0;
2635 2636 2637
	if (obj->gt_ro)
		pte_flags |= PTE_READ_ONLY;

2638
	intel_runtime_pm_get(i915);
2639
	vma->vm->insert_entries(vma->vm, vma, cache_level, pte_flags);
2640
	intel_runtime_pm_put(i915);
2641

2642 2643
	vma->page_sizes.gtt = I915_GTT_PAGE_SIZE;

2644 2645 2646 2647 2648
	/*
	 * Without aliasing PPGTT there's no difference between
	 * GLOBAL/LOCAL_BIND, it's all the same ptes. Hence unconditionally
	 * upgrade to both bound if we bind either to avoid double-binding.
	 */
2649
	vma->flags |= I915_VMA_GLOBAL_BIND | I915_VMA_LOCAL_BIND;
2650 2651 2652 2653

	return 0;
}

2654 2655 2656 2657 2658 2659 2660 2661 2662
static void ggtt_unbind_vma(struct i915_vma *vma)
{
	struct drm_i915_private *i915 = vma->vm->i915;

	intel_runtime_pm_get(i915);
	vma->vm->clear_range(vma->vm, vma->node.start, vma->size);
	intel_runtime_pm_put(i915);
}

2663 2664 2665
static int aliasing_gtt_bind_vma(struct i915_vma *vma,
				 enum i915_cache_level cache_level,
				 u32 flags)
2666
{
2667
	struct drm_i915_private *i915 = vma->vm->i915;
2668
	u32 pte_flags;
2669
	int ret;
2670

2671
	/* Currently applicable only to VLV */
2672 2673
	pte_flags = 0;
	if (vma->obj->gt_ro)
2674
		pte_flags |= PTE_READ_ONLY;
2675

2676 2677 2678
	if (flags & I915_VMA_LOCAL_BIND) {
		struct i915_hw_ppgtt *appgtt = i915->mm.aliasing_ppgtt;

2679
		if (!(vma->flags & I915_VMA_LOCAL_BIND) &&
2680 2681 2682 2683
		    appgtt->vm.allocate_va_range) {
			ret = appgtt->vm.allocate_va_range(&appgtt->vm,
							   vma->node.start,
							   vma->size);
2684
			if (ret)
2685
				return ret;
2686 2687
		}

2688 2689
		appgtt->vm.insert_entries(&appgtt->vm, vma, cache_level,
					  pte_flags);
2690 2691
	}

2692
	if (flags & I915_VMA_GLOBAL_BIND) {
2693
		intel_runtime_pm_get(i915);
2694
		vma->vm->insert_entries(vma->vm, vma, cache_level, pte_flags);
2695
		intel_runtime_pm_put(i915);
2696
	}
2697

2698
	return 0;
2699 2700
}

2701
static void aliasing_gtt_unbind_vma(struct i915_vma *vma)
2702
{
2703
	struct drm_i915_private *i915 = vma->vm->i915;
2704

2705 2706
	if (vma->flags & I915_VMA_GLOBAL_BIND) {
		intel_runtime_pm_get(i915);
2707
		vma->vm->clear_range(vma->vm, vma->node.start, vma->size);
2708 2709
		intel_runtime_pm_put(i915);
	}
2710

2711
	if (vma->flags & I915_VMA_LOCAL_BIND) {
2712
		struct i915_address_space *vm = &i915->mm.aliasing_ppgtt->vm;
2713 2714 2715

		vm->clear_range(vm, vma->node.start, vma->size);
	}
2716 2717
}

2718 2719
void i915_gem_gtt_finish_pages(struct drm_i915_gem_object *obj,
			       struct sg_table *pages)
2720
{
D
David Weinehall 已提交
2721 2722
	struct drm_i915_private *dev_priv = to_i915(obj->base.dev);
	struct device *kdev = &dev_priv->drm.pdev->dev;
2723
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
B
Ben Widawsky 已提交
2724

2725
	if (unlikely(ggtt->do_idle_maps)) {
2726
		if (i915_gem_wait_for_idle(dev_priv, 0)) {
2727 2728 2729 2730 2731
			DRM_ERROR("Failed to wait for idle; VT'd may hang.\n");
			/* Wait a bit, in hopes it avoids the hang */
			udelay(10);
		}
	}
B
Ben Widawsky 已提交
2732

2733
	dma_unmap_sg(kdev, pages->sgl, pages->nents, PCI_DMA_BIDIRECTIONAL);
2734
}
2735

2736 2737 2738 2739 2740 2741 2742 2743 2744 2745
static int ggtt_set_pages(struct i915_vma *vma)
{
	int ret;

	GEM_BUG_ON(vma->pages);

	ret = i915_get_ggtt_vma_pages(vma);
	if (ret)
		return ret;

2746 2747
	vma->page_sizes = vma->obj->mm.page_sizes;

2748 2749 2750
	return 0;
}

C
Chris Wilson 已提交
2751
static void i915_gtt_color_adjust(const struct drm_mm_node *node,
2752
				  unsigned long color,
2753 2754
				  u64 *start,
				  u64 *end)
2755
{
2756
	if (node->allocated && node->color != color)
2757
		*start += I915_GTT_PAGE_SIZE;
2758

2759 2760 2761 2762 2763
	/* Also leave a space between the unallocated reserved node after the
	 * GTT and any objects within the GTT, i.e. we use the color adjustment
	 * to insert a guard page to prevent prefetches crossing over the
	 * GTT boundary.
	 */
2764
	node = list_next_entry(node, node_list);
2765
	if (node->color != color)
2766
		*end -= I915_GTT_PAGE_SIZE;
2767
}
B
Ben Widawsky 已提交
2768

2769 2770 2771 2772 2773 2774
int i915_gem_init_aliasing_ppgtt(struct drm_i915_private *i915)
{
	struct i915_ggtt *ggtt = &i915->ggtt;
	struct i915_hw_ppgtt *ppgtt;
	int err;

2775
	ppgtt = i915_ppgtt_create(i915, ERR_PTR(-EPERM), "[alias]");
2776 2777
	if (IS_ERR(ppgtt))
		return PTR_ERR(ppgtt);
2778

2779
	if (WARN_ON(ppgtt->vm.total < ggtt->vm.total)) {
2780 2781 2782 2783
		err = -ENODEV;
		goto err_ppgtt;
	}

2784
	if (ppgtt->vm.allocate_va_range) {
2785 2786 2787 2788 2789
		/* Note we only pre-allocate as far as the end of the global
		 * GTT. On 48b / 4-level page-tables, the difference is very,
		 * very significant! We have to preallocate as GVT/vgpu does
		 * not like the page directory disappearing.
		 */
2790 2791
		err = ppgtt->vm.allocate_va_range(&ppgtt->vm,
						  0, ggtt->vm.total);
2792
		if (err)
2793
			goto err_ppgtt;
2794 2795 2796
	}

	i915->mm.aliasing_ppgtt = ppgtt;
2797

2798 2799
	GEM_BUG_ON(ggtt->vm.vma_ops.bind_vma != ggtt_bind_vma);
	ggtt->vm.vma_ops.bind_vma = aliasing_gtt_bind_vma;
2800

2801 2802
	GEM_BUG_ON(ggtt->vm.vma_ops.unbind_vma != ggtt_unbind_vma);
	ggtt->vm.vma_ops.unbind_vma = aliasing_gtt_unbind_vma;
2803

2804 2805 2806
	return 0;

err_ppgtt:
2807
	i915_ppgtt_put(ppgtt);
2808 2809 2810 2811 2812 2813 2814 2815 2816 2817 2818 2819
	return err;
}

void i915_gem_fini_aliasing_ppgtt(struct drm_i915_private *i915)
{
	struct i915_ggtt *ggtt = &i915->ggtt;
	struct i915_hw_ppgtt *ppgtt;

	ppgtt = fetch_and_zero(&i915->mm.aliasing_ppgtt);
	if (!ppgtt)
		return;

2820
	i915_ppgtt_put(ppgtt);
2821

2822 2823
	ggtt->vm.vma_ops.bind_vma   = ggtt_bind_vma;
	ggtt->vm.vma_ops.unbind_vma = ggtt_unbind_vma;
2824 2825
}

2826
int i915_gem_init_ggtt(struct drm_i915_private *dev_priv)
2827
{
2828 2829 2830 2831 2832 2833 2834 2835 2836
	/* Let GEM Manage all of the aperture.
	 *
	 * However, leave one page at the end still bound to the scratch page.
	 * There are a number of places where the hardware apparently prefetches
	 * past the end of the object, and we've seen multiple hangs with the
	 * GPU head pointer stuck in a batchbuffer bound at the last page of the
	 * aperture.  One page should be enough to keep any prefetching inside
	 * of the aperture.
	 */
2837
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
2838
	unsigned long hole_start, hole_end;
2839
	struct drm_mm_node *entry;
2840
	int ret;
2841

2842 2843 2844
	ret = intel_vgt_balloon(dev_priv);
	if (ret)
		return ret;
2845

2846
	/* Reserve a mappable slot for our lockless error capture */
2847
	ret = drm_mm_insert_node_in_range(&ggtt->vm.mm, &ggtt->error_capture,
2848 2849 2850
					  PAGE_SIZE, 0, I915_COLOR_UNEVICTABLE,
					  0, ggtt->mappable_end,
					  DRM_MM_INSERT_LOW);
2851 2852 2853
	if (ret)
		return ret;

2854
	/* Clear any non-preallocated blocks */
2855
	drm_mm_for_each_hole(entry, &ggtt->vm.mm, hole_start, hole_end) {
2856 2857
		DRM_DEBUG_KMS("clearing unused GTT space: [%lx, %lx]\n",
			      hole_start, hole_end);
2858 2859
		ggtt->vm.clear_range(&ggtt->vm, hole_start,
				     hole_end - hole_start);
2860 2861 2862
	}

	/* And finally clear the reserved guard page */
2863
	ggtt->vm.clear_range(&ggtt->vm, ggtt->vm.total - PAGE_SIZE, PAGE_SIZE);
2864

2865
	if (USES_PPGTT(dev_priv) && !USES_FULL_PPGTT(dev_priv)) {
2866
		ret = i915_gem_init_aliasing_ppgtt(dev_priv);
2867
		if (ret)
2868
			goto err;
2869 2870
	}

2871
	return 0;
2872 2873 2874 2875

err:
	drm_mm_remove_node(&ggtt->error_capture);
	return ret;
2876 2877
}

2878 2879
/**
 * i915_ggtt_cleanup_hw - Clean up GGTT hardware initialization
2880
 * @dev_priv: i915 device
2881
 */
2882
void i915_ggtt_cleanup_hw(struct drm_i915_private *dev_priv)
2883
{
2884
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
2885
	struct i915_vma *vma, *vn;
2886
	struct pagevec *pvec;
2887

2888
	ggtt->vm.closed = true;
2889 2890

	mutex_lock(&dev_priv->drm.struct_mutex);
2891 2892
	GEM_BUG_ON(!list_empty(&ggtt->vm.active_list));
	list_for_each_entry_safe(vma, vn, &ggtt->vm.inactive_list, vm_link)
2893 2894
		WARN_ON(i915_vma_unbind(vma));
	mutex_unlock(&dev_priv->drm.struct_mutex);
2895

2896
	i915_gem_cleanup_stolen(&dev_priv->drm);
2897

2898 2899 2900
	mutex_lock(&dev_priv->drm.struct_mutex);
	i915_gem_fini_aliasing_ppgtt(dev_priv);

2901 2902 2903
	if (drm_mm_node_allocated(&ggtt->error_capture))
		drm_mm_remove_node(&ggtt->error_capture);

2904
	if (drm_mm_initialized(&ggtt->vm.mm)) {
2905
		intel_vgt_deballoon(dev_priv);
2906
		i915_address_space_fini(&ggtt->vm);
2907 2908
	}

2909
	ggtt->vm.cleanup(&ggtt->vm);
2910 2911 2912 2913 2914 2915 2916

	pvec = &dev_priv->mm.wc_stash;
	if (pvec->nr) {
		set_pages_array_wb(pvec->pages, pvec->nr);
		__pagevec_release(pvec);
	}

2917
	mutex_unlock(&dev_priv->drm.struct_mutex);
2918 2919

	arch_phys_wc_del(ggtt->mtrr);
2920
	io_mapping_fini(&ggtt->iomap);
2921
}
2922

2923
static unsigned int gen6_get_total_gtt_size(u16 snb_gmch_ctl)
2924 2925 2926 2927 2928 2929
{
	snb_gmch_ctl >>= SNB_GMCH_GGMS_SHIFT;
	snb_gmch_ctl &= SNB_GMCH_GGMS_MASK;
	return snb_gmch_ctl << 20;
}

2930
static unsigned int gen8_get_total_gtt_size(u16 bdw_gmch_ctl)
2931 2932 2933 2934 2935
{
	bdw_gmch_ctl >>= BDW_GMCH_GGMS_SHIFT;
	bdw_gmch_ctl &= BDW_GMCH_GGMS_MASK;
	if (bdw_gmch_ctl)
		bdw_gmch_ctl = 1 << bdw_gmch_ctl;
2936 2937 2938 2939 2940 2941 2942

#ifdef CONFIG_X86_32
	/* Limit 32b platforms to a 2GB GGTT: 4 << 20 / pte size * PAGE_SIZE */
	if (bdw_gmch_ctl > 4)
		bdw_gmch_ctl = 4;
#endif

2943 2944 2945
	return bdw_gmch_ctl << 20;
}

2946
static unsigned int chv_get_total_gtt_size(u16 gmch_ctrl)
2947 2948 2949 2950 2951 2952 2953 2954 2955 2956
{
	gmch_ctrl >>= SNB_GMCH_GGMS_SHIFT;
	gmch_ctrl &= SNB_GMCH_GGMS_MASK;

	if (gmch_ctrl)
		return 1 << (20 + gmch_ctrl);

	return 0;
}

2957
static int ggtt_probe_common(struct i915_ggtt *ggtt, u64 size)
B
Ben Widawsky 已提交
2958
{
2959
	struct drm_i915_private *dev_priv = ggtt->vm.i915;
2960
	struct pci_dev *pdev = dev_priv->drm.pdev;
2961
	phys_addr_t phys_addr;
2962
	int ret;
B
Ben Widawsky 已提交
2963 2964

	/* For Modern GENs the PTEs and register space are split in the BAR */
2965
	phys_addr = pci_resource_start(pdev, 0) + pci_resource_len(pdev, 0) / 2;
B
Ben Widawsky 已提交
2966

I
Imre Deak 已提交
2967
	/*
2968 2969 2970
	 * On BXT+/CNL+ writes larger than 64 bit to the GTT pagetable range
	 * will be dropped. For WC mappings in general we have 64 byte burst
	 * writes when the WC buffer is flushed, so we can't use it, but have to
I
Imre Deak 已提交
2971 2972 2973
	 * resort to an uncached mapping. The WC issue is easily caught by the
	 * readback check when writing GTT PTE entries.
	 */
2974
	if (IS_GEN9_LP(dev_priv) || INTEL_GEN(dev_priv) >= 10)
2975
		ggtt->gsm = ioremap_nocache(phys_addr, size);
I
Imre Deak 已提交
2976
	else
2977
		ggtt->gsm = ioremap_wc(phys_addr, size);
2978
	if (!ggtt->gsm) {
2979
		DRM_ERROR("Failed to map the ggtt page table\n");
B
Ben Widawsky 已提交
2980 2981 2982
		return -ENOMEM;
	}

2983
	ret = setup_scratch_page(&ggtt->vm, GFP_DMA32);
2984
	if (ret) {
B
Ben Widawsky 已提交
2985 2986
		DRM_ERROR("Scratch setup failed\n");
		/* iounmap will also get called at remove, but meh */
2987
		iounmap(ggtt->gsm);
2988
		return ret;
B
Ben Widawsky 已提交
2989 2990
	}

2991
	return 0;
B
Ben Widawsky 已提交
2992 2993
}

2994 2995
static struct intel_ppat_entry *
__alloc_ppat_entry(struct intel_ppat *ppat, unsigned int index, u8 value)
R
Rodrigo Vivi 已提交
2996
{
2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010 3011 3012 3013 3014 3015 3016 3017 3018 3019 3020 3021 3022 3023 3024 3025 3026 3027 3028 3029 3030 3031 3032 3033 3034 3035 3036 3037 3038 3039
	struct intel_ppat_entry *entry = &ppat->entries[index];

	GEM_BUG_ON(index >= ppat->max_entries);
	GEM_BUG_ON(test_bit(index, ppat->used));

	entry->ppat = ppat;
	entry->value = value;
	kref_init(&entry->ref);
	set_bit(index, ppat->used);
	set_bit(index, ppat->dirty);

	return entry;
}

static void __free_ppat_entry(struct intel_ppat_entry *entry)
{
	struct intel_ppat *ppat = entry->ppat;
	unsigned int index = entry - ppat->entries;

	GEM_BUG_ON(index >= ppat->max_entries);
	GEM_BUG_ON(!test_bit(index, ppat->used));

	entry->value = ppat->clear_value;
	clear_bit(index, ppat->used);
	set_bit(index, ppat->dirty);
}

/**
 * intel_ppat_get - get a usable PPAT entry
 * @i915: i915 device instance
 * @value: the PPAT value required by the caller
 *
 * The function tries to search if there is an existing PPAT entry which
 * matches with the required value. If perfectly matched, the existing PPAT
 * entry will be used. If only partially matched, it will try to check if
 * there is any available PPAT index. If yes, it will allocate a new PPAT
 * index for the required entry and update the HW. If not, the partially
 * matched entry will be used.
 */
const struct intel_ppat_entry *
intel_ppat_get(struct drm_i915_private *i915, u8 value)
{
	struct intel_ppat *ppat = &i915->ppat;
3040
	struct intel_ppat_entry *entry = NULL;
3041 3042 3043 3044 3045 3046 3047 3048 3049 3050 3051 3052 3053 3054 3055 3056 3057 3058 3059 3060 3061 3062
	unsigned int scanned, best_score;
	int i;

	GEM_BUG_ON(!ppat->max_entries);

	scanned = best_score = 0;
	for_each_set_bit(i, ppat->used, ppat->max_entries) {
		unsigned int score;

		score = ppat->match(ppat->entries[i].value, value);
		if (score > best_score) {
			entry = &ppat->entries[i];
			if (score == INTEL_PPAT_PERFECT_MATCH) {
				kref_get(&entry->ref);
				return entry;
			}
			best_score = score;
		}
		scanned++;
	}

	if (scanned == ppat->max_entries) {
3063
		if (!entry)
3064 3065 3066 3067 3068 3069 3070 3071 3072 3073 3074 3075 3076 3077 3078 3079 3080 3081 3082 3083 3084 3085 3086 3087 3088 3089 3090 3091 3092 3093 3094 3095 3096 3097 3098 3099 3100 3101 3102 3103 3104 3105 3106 3107 3108 3109 3110 3111 3112 3113 3114 3115 3116 3117 3118 3119 3120 3121 3122 3123 3124 3125 3126 3127 3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139
			return ERR_PTR(-ENOSPC);

		kref_get(&entry->ref);
		return entry;
	}

	i = find_first_zero_bit(ppat->used, ppat->max_entries);
	entry = __alloc_ppat_entry(ppat, i, value);
	ppat->update_hw(i915);
	return entry;
}

static void release_ppat(struct kref *kref)
{
	struct intel_ppat_entry *entry =
		container_of(kref, struct intel_ppat_entry, ref);
	struct drm_i915_private *i915 = entry->ppat->i915;

	__free_ppat_entry(entry);
	entry->ppat->update_hw(i915);
}

/**
 * intel_ppat_put - put back the PPAT entry got from intel_ppat_get()
 * @entry: an intel PPAT entry
 *
 * Put back the PPAT entry got from intel_ppat_get(). If the PPAT index of the
 * entry is dynamically allocated, its reference count will be decreased. Once
 * the reference count becomes into zero, the PPAT index becomes free again.
 */
void intel_ppat_put(const struct intel_ppat_entry *entry)
{
	struct intel_ppat *ppat = entry->ppat;
	unsigned int index = entry - ppat->entries;

	GEM_BUG_ON(!ppat->max_entries);

	kref_put(&ppat->entries[index].ref, release_ppat);
}

static void cnl_private_pat_update_hw(struct drm_i915_private *dev_priv)
{
	struct intel_ppat *ppat = &dev_priv->ppat;
	int i;

	for_each_set_bit(i, ppat->dirty, ppat->max_entries) {
		I915_WRITE(GEN10_PAT_INDEX(i), ppat->entries[i].value);
		clear_bit(i, ppat->dirty);
	}
}

static void bdw_private_pat_update_hw(struct drm_i915_private *dev_priv)
{
	struct intel_ppat *ppat = &dev_priv->ppat;
	u64 pat = 0;
	int i;

	for (i = 0; i < ppat->max_entries; i++)
		pat |= GEN8_PPAT(i, ppat->entries[i].value);

	bitmap_clear(ppat->dirty, 0, ppat->max_entries);

	I915_WRITE(GEN8_PRIVATE_PAT_LO, lower_32_bits(pat));
	I915_WRITE(GEN8_PRIVATE_PAT_HI, upper_32_bits(pat));
}

static unsigned int bdw_private_pat_match(u8 src, u8 dst)
{
	unsigned int score = 0;
	enum {
		AGE_MATCH = BIT(0),
		TC_MATCH = BIT(1),
		CA_MATCH = BIT(2),
	};

	/* Cache attribute has to be matched. */
3140
	if (GEN8_PPAT_GET_CA(src) != GEN8_PPAT_GET_CA(dst))
3141 3142 3143 3144 3145 3146 3147 3148 3149 3150 3151 3152 3153 3154 3155 3156 3157 3158 3159 3160 3161 3162 3163 3164 3165 3166 3167 3168 3169 3170 3171 3172 3173 3174 3175 3176 3177
		return 0;

	score |= CA_MATCH;

	if (GEN8_PPAT_GET_TC(src) == GEN8_PPAT_GET_TC(dst))
		score |= TC_MATCH;

	if (GEN8_PPAT_GET_AGE(src) == GEN8_PPAT_GET_AGE(dst))
		score |= AGE_MATCH;

	if (score == (AGE_MATCH | TC_MATCH | CA_MATCH))
		return INTEL_PPAT_PERFECT_MATCH;

	return score;
}

static unsigned int chv_private_pat_match(u8 src, u8 dst)
{
	return (CHV_PPAT_GET_SNOOP(src) == CHV_PPAT_GET_SNOOP(dst)) ?
		INTEL_PPAT_PERFECT_MATCH : 0;
}

static void cnl_setup_private_ppat(struct intel_ppat *ppat)
{
	ppat->max_entries = 8;
	ppat->update_hw = cnl_private_pat_update_hw;
	ppat->match = bdw_private_pat_match;
	ppat->clear_value = GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(3);

	__alloc_ppat_entry(ppat, 0, GEN8_PPAT_WB | GEN8_PPAT_LLC);
	__alloc_ppat_entry(ppat, 1, GEN8_PPAT_WC | GEN8_PPAT_LLCELLC);
	__alloc_ppat_entry(ppat, 2, GEN8_PPAT_WT | GEN8_PPAT_LLCELLC);
	__alloc_ppat_entry(ppat, 3, GEN8_PPAT_UC);
	__alloc_ppat_entry(ppat, 4, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(0));
	__alloc_ppat_entry(ppat, 5, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(1));
	__alloc_ppat_entry(ppat, 6, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(2));
	__alloc_ppat_entry(ppat, 7, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(3));
R
Rodrigo Vivi 已提交
3178 3179
}

B
Ben Widawsky 已提交
3180 3181 3182
/* The GGTT and PPGTT need a private PPAT setup in order to handle cacheability
 * bits. When using advanced contexts each context stores its own PAT, but
 * writing this data shouldn't be harmful even in those cases. */
3183
static void bdw_setup_private_ppat(struct intel_ppat *ppat)
B
Ben Widawsky 已提交
3184
{
3185 3186 3187 3188
	ppat->max_entries = 8;
	ppat->update_hw = bdw_private_pat_update_hw;
	ppat->match = bdw_private_pat_match;
	ppat->clear_value = GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(3);
B
Ben Widawsky 已提交
3189

3190
	if (!USES_PPGTT(ppat->i915)) {
3191 3192 3193 3194 3195 3196 3197 3198 3199 3200 3201 3202 3203
		/* Spec: "For GGTT, there is NO pat_sel[2:0] from the entry,
		 * so RTL will always use the value corresponding to
		 * pat_sel = 000".
		 * So let's disable cache for GGTT to avoid screen corruptions.
		 * MOCS still can be used though.
		 * - System agent ggtt writes (i.e. cpu gtt mmaps) already work
		 * before this patch, i.e. the same uncached + snooping access
		 * like on gen6/7 seems to be in effect.
		 * - So this just fixes blitter/render access. Again it looks
		 * like it's not just uncached access, but uncached + snooping.
		 * So we can still hold onto all our assumptions wrt cpu
		 * clflushing on LLC machines.
		 */
3204 3205 3206
		__alloc_ppat_entry(ppat, 0, GEN8_PPAT_UC);
		return;
	}
3207

3208 3209 3210 3211 3212 3213 3214 3215
	__alloc_ppat_entry(ppat, 0, GEN8_PPAT_WB | GEN8_PPAT_LLC);      /* for normal objects, no eLLC */
	__alloc_ppat_entry(ppat, 1, GEN8_PPAT_WC | GEN8_PPAT_LLCELLC);  /* for something pointing to ptes? */
	__alloc_ppat_entry(ppat, 2, GEN8_PPAT_WT | GEN8_PPAT_LLCELLC);  /* for scanout with eLLC */
	__alloc_ppat_entry(ppat, 3, GEN8_PPAT_UC);                      /* Uncached objects, mostly for scanout */
	__alloc_ppat_entry(ppat, 4, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(0));
	__alloc_ppat_entry(ppat, 5, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(1));
	__alloc_ppat_entry(ppat, 6, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(2));
	__alloc_ppat_entry(ppat, 7, GEN8_PPAT_WB | GEN8_PPAT_LLCELLC | GEN8_PPAT_AGE(3));
B
Ben Widawsky 已提交
3216 3217
}

3218
static void chv_setup_private_ppat(struct intel_ppat *ppat)
3219
{
3220 3221 3222 3223
	ppat->max_entries = 8;
	ppat->update_hw = bdw_private_pat_update_hw;
	ppat->match = chv_private_pat_match;
	ppat->clear_value = CHV_PPAT_SNOOP;
3224 3225 3226 3227 3228 3229 3230

	/*
	 * Map WB on BDW to snooped on CHV.
	 *
	 * Only the snoop bit has meaning for CHV, the rest is
	 * ignored.
	 *
3231 3232 3233 3234 3235 3236 3237 3238 3239 3240 3241
	 * The hardware will never snoop for certain types of accesses:
	 * - CPU GTT (GMADR->GGTT->no snoop->memory)
	 * - PPGTT page tables
	 * - some other special cycles
	 *
	 * As with BDW, we also need to consider the following for GT accesses:
	 * "For GGTT, there is NO pat_sel[2:0] from the entry,
	 * so RTL will always use the value corresponding to
	 * pat_sel = 000".
	 * Which means we must set the snoop bit in PAT entry 0
	 * in order to keep the global status page working.
3242 3243
	 */

3244 3245 3246 3247 3248 3249 3250 3251
	__alloc_ppat_entry(ppat, 0, CHV_PPAT_SNOOP);
	__alloc_ppat_entry(ppat, 1, 0);
	__alloc_ppat_entry(ppat, 2, 0);
	__alloc_ppat_entry(ppat, 3, 0);
	__alloc_ppat_entry(ppat, 4, CHV_PPAT_SNOOP);
	__alloc_ppat_entry(ppat, 5, CHV_PPAT_SNOOP);
	__alloc_ppat_entry(ppat, 6, CHV_PPAT_SNOOP);
	__alloc_ppat_entry(ppat, 7, CHV_PPAT_SNOOP);
3252 3253
}

3254 3255 3256 3257 3258
static void gen6_gmch_remove(struct i915_address_space *vm)
{
	struct i915_ggtt *ggtt = i915_vm_to_ggtt(vm);

	iounmap(ggtt->gsm);
3259
	cleanup_scratch_page(vm);
3260 3261
}

3262 3263
static void setup_private_pat(struct drm_i915_private *dev_priv)
{
3264 3265 3266 3267 3268
	struct intel_ppat *ppat = &dev_priv->ppat;
	int i;

	ppat->i915 = dev_priv;

3269
	if (INTEL_GEN(dev_priv) >= 10)
3270
		cnl_setup_private_ppat(ppat);
3271
	else if (IS_CHERRYVIEW(dev_priv) || IS_GEN9_LP(dev_priv))
3272
		chv_setup_private_ppat(ppat);
3273
	else
3274 3275 3276 3277 3278 3279 3280 3281 3282 3283 3284
		bdw_setup_private_ppat(ppat);

	GEM_BUG_ON(ppat->max_entries > INTEL_MAX_PPAT_ENTRIES);

	for_each_clear_bit(i, ppat->used, ppat->max_entries) {
		ppat->entries[i].value = ppat->clear_value;
		ppat->entries[i].ppat = ppat;
		set_bit(i, ppat->dirty);
	}

	ppat->update_hw(dev_priv);
3285 3286
}

3287
static int gen8_gmch_probe(struct i915_ggtt *ggtt)
B
Ben Widawsky 已提交
3288
{
3289
	struct drm_i915_private *dev_priv = ggtt->vm.i915;
3290
	struct pci_dev *pdev = dev_priv->drm.pdev;
3291
	unsigned int size;
B
Ben Widawsky 已提交
3292
	u16 snb_gmch_ctl;
3293
	int err;
B
Ben Widawsky 已提交
3294 3295

	/* TODO: We're not aware of mappable constraints on gen8 yet */
3296 3297 3298 3299
	ggtt->gmadr =
		(struct resource) DEFINE_RES_MEM(pci_resource_start(pdev, 2),
						 pci_resource_len(pdev, 2));
	ggtt->mappable_end = resource_size(&ggtt->gmadr);
B
Ben Widawsky 已提交
3300

3301 3302 3303 3304 3305
	err = pci_set_dma_mask(pdev, DMA_BIT_MASK(39));
	if (!err)
		err = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(39));
	if (err)
		DRM_ERROR("Can't set DMA mask/consistent mask (%d)\n", err);
B
Ben Widawsky 已提交
3306

3307
	pci_read_config_word(pdev, SNB_GMCH_CTRL, &snb_gmch_ctl);
3308
	if (IS_CHERRYVIEW(dev_priv))
3309
		size = chv_get_total_gtt_size(snb_gmch_ctl);
3310
	else
3311
		size = gen8_get_total_gtt_size(snb_gmch_ctl);
B
Ben Widawsky 已提交
3312

3313 3314 3315 3316
	ggtt->vm.total = (size / sizeof(gen8_pte_t)) << PAGE_SHIFT;
	ggtt->vm.cleanup = gen6_gmch_remove;
	ggtt->vm.insert_page = gen8_ggtt_insert_page;
	ggtt->vm.clear_range = nop_clear_range;
3317
	if (!USES_FULL_PPGTT(dev_priv) || intel_scanout_needs_vtd_wa(dev_priv))
3318
		ggtt->vm.clear_range = gen8_ggtt_clear_range;
3319

3320
	ggtt->vm.insert_entries = gen8_ggtt_insert_entries;
3321

3322 3323
	/* Serialize GTT updates with aperture access on BXT if VT-d is on. */
	if (intel_ggtt_update_needs_vtd_wa(dev_priv)) {
3324 3325 3326 3327
		ggtt->vm.insert_entries = bxt_vtd_ggtt_insert_entries__BKL;
		ggtt->vm.insert_page    = bxt_vtd_ggtt_insert_page__BKL;
		if (ggtt->vm.clear_range != nop_clear_range)
			ggtt->vm.clear_range = bxt_vtd_ggtt_clear_range__BKL;
3328 3329
	}

3330 3331
	ggtt->invalidate = gen6_ggtt_invalidate;

3332 3333 3334 3335 3336
	ggtt->vm.vma_ops.bind_vma    = ggtt_bind_vma;
	ggtt->vm.vma_ops.unbind_vma  = ggtt_unbind_vma;
	ggtt->vm.vma_ops.set_pages   = ggtt_set_pages;
	ggtt->vm.vma_ops.clear_pages = clear_pages;

3337 3338
	setup_private_pat(dev_priv);

3339
	return ggtt_probe_common(ggtt, size);
B
Ben Widawsky 已提交
3340 3341
}

3342
static int gen6_gmch_probe(struct i915_ggtt *ggtt)
3343
{
3344
	struct drm_i915_private *dev_priv = ggtt->vm.i915;
3345
	struct pci_dev *pdev = dev_priv->drm.pdev;
3346
	unsigned int size;
3347
	u16 snb_gmch_ctl;
3348
	int err;
3349

3350 3351 3352 3353
	ggtt->gmadr =
		(struct resource) DEFINE_RES_MEM(pci_resource_start(pdev, 2),
						 pci_resource_len(pdev, 2));
	ggtt->mappable_end = resource_size(&ggtt->gmadr);
3354

3355 3356
	/* 64/512MB is the current min/max we actually know of, but this is just
	 * a coarse sanity check.
3357
	 */
3358
	if (ggtt->mappable_end < (64<<20) || ggtt->mappable_end > (512<<20)) {
3359
		DRM_ERROR("Unknown GMADR size (%pa)\n", &ggtt->mappable_end);
3360
		return -ENXIO;
3361 3362
	}

3363 3364 3365 3366 3367
	err = pci_set_dma_mask(pdev, DMA_BIT_MASK(40));
	if (!err)
		err = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(40));
	if (err)
		DRM_ERROR("Can't set DMA mask/consistent mask (%d)\n", err);
3368
	pci_read_config_word(pdev, SNB_GMCH_CTRL, &snb_gmch_ctl);
3369

3370
	size = gen6_get_total_gtt_size(snb_gmch_ctl);
3371
	ggtt->vm.total = (size / sizeof(gen6_pte_t)) << PAGE_SHIFT;
3372

3373 3374 3375 3376
	ggtt->vm.clear_range = gen6_ggtt_clear_range;
	ggtt->vm.insert_page = gen6_ggtt_insert_page;
	ggtt->vm.insert_entries = gen6_ggtt_insert_entries;
	ggtt->vm.cleanup = gen6_gmch_remove;
3377

3378 3379
	ggtt->invalidate = gen6_ggtt_invalidate;

3380
	if (HAS_EDRAM(dev_priv))
3381
		ggtt->vm.pte_encode = iris_pte_encode;
3382
	else if (IS_HASWELL(dev_priv))
3383
		ggtt->vm.pte_encode = hsw_pte_encode;
3384
	else if (IS_VALLEYVIEW(dev_priv))
3385
		ggtt->vm.pte_encode = byt_pte_encode;
3386
	else if (INTEL_GEN(dev_priv) >= 7)
3387
		ggtt->vm.pte_encode = ivb_pte_encode;
3388
	else
3389
		ggtt->vm.pte_encode = snb_pte_encode;
3390

3391 3392 3393 3394 3395
	ggtt->vm.vma_ops.bind_vma    = ggtt_bind_vma;
	ggtt->vm.vma_ops.unbind_vma  = ggtt_unbind_vma;
	ggtt->vm.vma_ops.set_pages   = ggtt_set_pages;
	ggtt->vm.vma_ops.clear_pages = clear_pages;

3396
	return ggtt_probe_common(ggtt, size);
3397 3398
}

3399
static void i915_gmch_remove(struct i915_address_space *vm)
3400
{
3401
	intel_gmch_remove();
3402
}
3403

3404
static int i915_gmch_probe(struct i915_ggtt *ggtt)
3405
{
3406
	struct drm_i915_private *dev_priv = ggtt->vm.i915;
3407
	phys_addr_t gmadr_base;
3408 3409
	int ret;

3410
	ret = intel_gmch_probe(dev_priv->bridge_dev, dev_priv->drm.pdev, NULL);
3411 3412 3413 3414 3415
	if (!ret) {
		DRM_ERROR("failed to set up gmch\n");
		return -EIO;
	}

3416
	intel_gtt_get(&ggtt->vm.total, &gmadr_base, &ggtt->mappable_end);
3417

3418 3419 3420 3421
	ggtt->gmadr =
		(struct resource) DEFINE_RES_MEM(gmadr_base,
						 ggtt->mappable_end);

3422
	ggtt->do_idle_maps = needs_idle_maps(dev_priv);
3423 3424 3425 3426
	ggtt->vm.insert_page = i915_ggtt_insert_page;
	ggtt->vm.insert_entries = i915_ggtt_insert_entries;
	ggtt->vm.clear_range = i915_ggtt_clear_range;
	ggtt->vm.cleanup = i915_gmch_remove;
3427

3428 3429
	ggtt->invalidate = gmch_ggtt_invalidate;

3430 3431 3432 3433 3434
	ggtt->vm.vma_ops.bind_vma    = ggtt_bind_vma;
	ggtt->vm.vma_ops.unbind_vma  = ggtt_unbind_vma;
	ggtt->vm.vma_ops.set_pages   = ggtt_set_pages;
	ggtt->vm.vma_ops.clear_pages = clear_pages;

3435
	if (unlikely(ggtt->do_idle_maps))
3436 3437
		DRM_INFO("applying Ironlake quirks for intel_iommu\n");

3438 3439 3440
	return 0;
}

3441
/**
3442
 * i915_ggtt_probe_hw - Probe GGTT hardware location
3443
 * @dev_priv: i915 device
3444
 */
3445
int i915_ggtt_probe_hw(struct drm_i915_private *dev_priv)
3446
{
3447
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
3448 3449
	int ret;

3450 3451
	ggtt->vm.i915 = dev_priv;
	ggtt->vm.dma = &dev_priv->drm.pdev->dev;
3452

3453 3454 3455 3456 3457 3458
	if (INTEL_GEN(dev_priv) <= 5)
		ret = i915_gmch_probe(ggtt);
	else if (INTEL_GEN(dev_priv) < 8)
		ret = gen6_gmch_probe(ggtt);
	else
		ret = gen8_gmch_probe(ggtt);
3459
	if (ret)
3460 3461
		return ret;

3462 3463 3464 3465 3466
	/* Trim the GGTT to fit the GuC mappable upper range (when enabled).
	 * This is easier than doing range restriction on the fly, as we
	 * currently don't have any bits spare to pass in this upper
	 * restriction!
	 */
3467
	if (USES_GUC(dev_priv)) {
3468 3469 3470
		ggtt->vm.total = min_t(u64, ggtt->vm.total, GUC_GGTT_TOP);
		ggtt->mappable_end =
			min_t(u64, ggtt->mappable_end, ggtt->vm.total);
3471 3472
	}

3473
	if ((ggtt->vm.total - 1) >> 32) {
3474
		DRM_ERROR("We never expected a Global GTT with more than 32bits"
3475
			  " of address space! Found %lldM!\n",
3476 3477 3478 3479
			  ggtt->vm.total >> 20);
		ggtt->vm.total = 1ULL << 32;
		ggtt->mappable_end =
			min_t(u64, ggtt->mappable_end, ggtt->vm.total);
3480 3481
	}

3482
	if (ggtt->mappable_end > ggtt->vm.total) {
3483
		DRM_ERROR("mappable aperture extends past end of GGTT,"
3484
			  " aperture=%pa, total=%llx\n",
3485 3486
			  &ggtt->mappable_end, ggtt->vm.total);
		ggtt->mappable_end = ggtt->vm.total;
3487 3488
	}

3489
	/* GMADR is the PCI mmio aperture into the global GTT. */
3490
	DRM_DEBUG_DRIVER("GGTT size = %lluM\n", ggtt->vm.total >> 20);
3491
	DRM_DEBUG_DRIVER("GMADR size = %lluM\n", (u64)ggtt->mappable_end >> 20);
3492
	DRM_DEBUG_DRIVER("DSM size = %lluM\n",
3493
			 (u64)resource_size(&intel_graphics_stolen_res) >> 20);
3494
	if (intel_vtd_active())
3495
		DRM_INFO("VT-d active for gfx access\n");
3496 3497

	return 0;
3498 3499 3500 3501
}

/**
 * i915_ggtt_init_hw - Initialize GGTT hardware
3502
 * @dev_priv: i915 device
3503
 */
3504
int i915_ggtt_init_hw(struct drm_i915_private *dev_priv)
3505 3506 3507 3508
{
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
	int ret;

3509 3510
	INIT_LIST_HEAD(&dev_priv->vm_list);

3511 3512 3513 3514
	/* Note that we use page colouring to enforce a guard page at the
	 * end of the address space. This is required as the CS may prefetch
	 * beyond the end of the batch buffer, across the page boundary,
	 * and beyond the end of the GTT if we do not provide a guard.
3515
	 */
C
Chris Wilson 已提交
3516
	mutex_lock(&dev_priv->drm.struct_mutex);
3517
	i915_address_space_init(&ggtt->vm, dev_priv, "[global]");
3518
	if (!HAS_LLC(dev_priv) && !USES_PPGTT(dev_priv))
3519
		ggtt->vm.mm.color_adjust = i915_gtt_color_adjust;
C
Chris Wilson 已提交
3520
	mutex_unlock(&dev_priv->drm.struct_mutex);
3521

3522 3523
	if (!io_mapping_init_wc(&dev_priv->ggtt.iomap,
				dev_priv->ggtt.gmadr.start,
3524
				dev_priv->ggtt.mappable_end)) {
3525 3526 3527 3528
		ret = -EIO;
		goto out_gtt_cleanup;
	}

3529
	ggtt->mtrr = arch_phys_wc_add(ggtt->gmadr.start, ggtt->mappable_end);
3530

3531 3532 3533 3534
	/*
	 * Initialise stolen early so that we may reserve preallocated
	 * objects for the BIOS to KMS transition.
	 */
3535
	ret = i915_gem_init_stolen(dev_priv);
3536 3537 3538 3539
	if (ret)
		goto out_gtt_cleanup;

	return 0;
3540 3541

out_gtt_cleanup:
3542
	ggtt->vm.cleanup(&ggtt->vm);
3543
	return ret;
3544
}
3545

3546
int i915_ggtt_enable_hw(struct drm_i915_private *dev_priv)
3547
{
3548
	if (INTEL_GEN(dev_priv) < 6 && !intel_enable_gtt())
3549 3550 3551 3552 3553
		return -EIO;

	return 0;
}

3554 3555
void i915_ggtt_enable_guc(struct drm_i915_private *i915)
{
3556 3557
	GEM_BUG_ON(i915->ggtt.invalidate != gen6_ggtt_invalidate);

3558
	i915->ggtt.invalidate = guc_ggtt_invalidate;
3559 3560

	i915_ggtt_invalidate(i915);
3561 3562 3563 3564
}

void i915_ggtt_disable_guc(struct drm_i915_private *i915)
{
3565 3566 3567 3568
	/* We should only be called after i915_ggtt_enable_guc() */
	GEM_BUG_ON(i915->ggtt.invalidate != guc_ggtt_invalidate);

	i915->ggtt.invalidate = gen6_ggtt_invalidate;
3569 3570

	i915_ggtt_invalidate(i915);
3571 3572
}

3573
void i915_gem_restore_gtt_mappings(struct drm_i915_private *dev_priv)
3574
{
3575
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
3576
	struct i915_vma *vma, *vn;
3577

3578
	i915_check_and_clear_faults(dev_priv);
3579 3580

	/* First fill our portion of the GTT with scratch pages */
3581
	ggtt->vm.clear_range(&ggtt->vm, 0, ggtt->vm.total);
3582

3583
	ggtt->vm.closed = true; /* skip rewriting PTE on VMA unbind */
3584 3585

	/* clflush objects bound into the GGTT and rebind them. */
3586 3587
	GEM_BUG_ON(!list_empty(&ggtt->vm.active_list));
	list_for_each_entry_safe(vma, vn, &ggtt->vm.inactive_list, vm_link) {
3588
		struct drm_i915_gem_object *obj = vma->obj;
3589

3590 3591
		if (!(vma->flags & I915_VMA_GLOBAL_BIND))
			continue;
3592

3593 3594
		if (!i915_vma_unbind(vma))
			continue;
3595

3596 3597 3598 3599 3600
		WARN_ON(i915_vma_bind(vma,
				      obj ? obj->cache_level : 0,
				      PIN_UPDATE));
		if (obj)
			WARN_ON(i915_gem_object_set_to_gtt_domain(obj, false));
3601
	}
3602

3603
	ggtt->vm.closed = false;
3604

3605
	if (INTEL_GEN(dev_priv) >= 8) {
3606
		struct intel_ppat *ppat = &dev_priv->ppat;
3607

3608 3609
		bitmap_set(ppat->dirty, 0, ppat->max_entries);
		dev_priv->ppat.update_hw(dev_priv);
3610 3611 3612
		return;
	}

3613
	if (USES_PPGTT(dev_priv)) {
3614 3615
		struct i915_address_space *vm;

3616
		list_for_each_entry(vm, &dev_priv->vm_list, global_link) {
3617
			struct i915_hw_ppgtt *ppgtt;
3618

3619
			if (i915_is_ggtt(vm))
3620
				ppgtt = dev_priv->mm.aliasing_ppgtt;
3621 3622
			else
				ppgtt = i915_vm_to_ppgtt(vm);
3623 3624
			if (!ppgtt)
				continue;
3625

3626
			gen6_write_page_range(ppgtt, 0, ppgtt->vm.total);
3627 3628 3629
		}
	}

3630
	i915_ggtt_invalidate(dev_priv);
3631 3632
}

3633
static struct scatterlist *
3634
rotate_pages(const dma_addr_t *in, unsigned int offset,
3635
	     unsigned int width, unsigned int height,
3636
	     unsigned int stride,
3637
	     struct sg_table *st, struct scatterlist *sg)
3638 3639 3640 3641 3642
{
	unsigned int column, row;
	unsigned int src_idx;

	for (column = 0; column < width; column++) {
3643
		src_idx = stride * (height - 1) + column;
3644 3645 3646 3647 3648 3649 3650
		for (row = 0; row < height; row++) {
			st->nents++;
			/* We don't need the pages, but need to initialize
			 * the entries so the sg list can be happily traversed.
			 * The only thing we need are DMA addresses.
			 */
			sg_set_page(sg, NULL, PAGE_SIZE, 0);
3651
			sg_dma_address(sg) = in[offset + src_idx];
3652 3653
			sg_dma_len(sg) = PAGE_SIZE;
			sg = sg_next(sg);
3654
			src_idx -= stride;
3655 3656
		}
	}
3657 3658

	return sg;
3659 3660
}

3661 3662 3663
static noinline struct sg_table *
intel_rotate_pages(struct intel_rotation_info *rot_info,
		   struct drm_i915_gem_object *obj)
3664
{
3665
	const unsigned long n_pages = obj->base.size / PAGE_SIZE;
3666
	unsigned int size = intel_rotation_info_size(rot_info);
3667 3668
	struct sgt_iter sgt_iter;
	dma_addr_t dma_addr;
3669 3670 3671
	unsigned long i;
	dma_addr_t *page_addr_list;
	struct sg_table *st;
3672
	struct scatterlist *sg;
3673
	int ret = -ENOMEM;
3674 3675

	/* Allocate a temporary list of source pages for random access. */
M
Michal Hocko 已提交
3676
	page_addr_list = kvmalloc_array(n_pages,
3677
					sizeof(dma_addr_t),
3678
					GFP_KERNEL);
3679 3680 3681 3682 3683 3684 3685 3686
	if (!page_addr_list)
		return ERR_PTR(ret);

	/* Allocate target SG list. */
	st = kmalloc(sizeof(*st), GFP_KERNEL);
	if (!st)
		goto err_st_alloc;

3687
	ret = sg_alloc_table(st, size, GFP_KERNEL);
3688 3689 3690 3691 3692
	if (ret)
		goto err_sg_alloc;

	/* Populate source page list from the object. */
	i = 0;
C
Chris Wilson 已提交
3693
	for_each_sgt_dma(dma_addr, sgt_iter, obj->mm.pages)
3694
		page_addr_list[i++] = dma_addr;
3695

3696
	GEM_BUG_ON(i != n_pages);
3697 3698 3699
	st->nents = 0;
	sg = st->sgl;

3700 3701 3702 3703
	for (i = 0 ; i < ARRAY_SIZE(rot_info->plane); i++) {
		sg = rotate_pages(page_addr_list, rot_info->plane[i].offset,
				  rot_info->plane[i].width, rot_info->plane[i].height,
				  rot_info->plane[i].stride, st, sg);
3704 3705
	}

M
Michal Hocko 已提交
3706
	kvfree(page_addr_list);
3707 3708 3709 3710 3711 3712

	return st;

err_sg_alloc:
	kfree(st);
err_st_alloc:
M
Michal Hocko 已提交
3713
	kvfree(page_addr_list);
3714

3715 3716
	DRM_DEBUG_DRIVER("Failed to create rotated mapping for object size %zu! (%ux%u tiles, %u pages)\n",
			 obj->base.size, rot_info->plane[0].width, rot_info->plane[0].height, size);
3717

3718 3719
	return ERR_PTR(ret);
}
3720

3721
static noinline struct sg_table *
3722 3723 3724 3725
intel_partial_pages(const struct i915_ggtt_view *view,
		    struct drm_i915_gem_object *obj)
{
	struct sg_table *st;
3726
	struct scatterlist *sg, *iter;
3727
	unsigned int count = view->partial.size;
3728
	unsigned int offset;
3729 3730 3731 3732 3733 3734
	int ret = -ENOMEM;

	st = kmalloc(sizeof(*st), GFP_KERNEL);
	if (!st)
		goto err_st_alloc;

3735
	ret = sg_alloc_table(st, count, GFP_KERNEL);
3736 3737 3738
	if (ret)
		goto err_sg_alloc;

3739
	iter = i915_gem_object_get_sg(obj, view->partial.offset, &offset);
3740 3741
	GEM_BUG_ON(!iter);

3742 3743
	sg = st->sgl;
	st->nents = 0;
3744 3745
	do {
		unsigned int len;
3746

3747 3748 3749 3750 3751 3752
		len = min(iter->length - (offset << PAGE_SHIFT),
			  count << PAGE_SHIFT);
		sg_set_page(sg, NULL, len, 0);
		sg_dma_address(sg) =
			sg_dma_address(iter) + (offset << PAGE_SHIFT);
		sg_dma_len(sg) = len;
3753 3754

		st->nents++;
3755 3756 3757 3758 3759
		count -= len >> PAGE_SHIFT;
		if (count == 0) {
			sg_mark_end(sg);
			return st;
		}
3760

3761 3762 3763 3764
		sg = __sg_next(sg);
		iter = __sg_next(iter);
		offset = 0;
	} while (1);
3765 3766 3767 3768 3769 3770 3771

err_sg_alloc:
	kfree(st);
err_st_alloc:
	return ERR_PTR(ret);
}

3772
static int
3773
i915_get_ggtt_vma_pages(struct i915_vma *vma)
3774
{
3775
	int ret;
3776

3777 3778 3779 3780 3781 3782 3783
	/* The vma->pages are only valid within the lifespan of the borrowed
	 * obj->mm.pages. When the obj->mm.pages sg_table is regenerated, so
	 * must be the vma->pages. A simple rule is that vma->pages must only
	 * be accessed when the obj->mm.pages are pinned.
	 */
	GEM_BUG_ON(!i915_gem_object_has_pinned_pages(vma->obj));

3784
	switch (vma->ggtt_view.type) {
3785 3786 3787
	default:
		GEM_BUG_ON(vma->ggtt_view.type);
		/* fall through */
3788 3789
	case I915_GGTT_VIEW_NORMAL:
		vma->pages = vma->obj->mm.pages;
3790 3791
		return 0;

3792
	case I915_GGTT_VIEW_ROTATED:
3793
		vma->pages =
3794 3795 3796 3797
			intel_rotate_pages(&vma->ggtt_view.rotated, vma->obj);
		break;

	case I915_GGTT_VIEW_PARTIAL:
3798
		vma->pages = intel_partial_pages(&vma->ggtt_view, vma->obj);
3799 3800
		break;
	}
3801

3802 3803
	ret = 0;
	if (unlikely(IS_ERR(vma->pages))) {
3804 3805
		ret = PTR_ERR(vma->pages);
		vma->pages = NULL;
3806 3807
		DRM_ERROR("Failed to get pages for VMA view type %u (%d)!\n",
			  vma->ggtt_view.type, ret);
3808
	}
3809
	return ret;
3810 3811
}

3812 3813
/**
 * i915_gem_gtt_reserve - reserve a node in an address_space (GTT)
3814 3815 3816 3817 3818 3819 3820 3821 3822 3823
 * @vm: the &struct i915_address_space
 * @node: the &struct drm_mm_node (typically i915_vma.mode)
 * @size: how much space to allocate inside the GTT,
 *        must be #I915_GTT_PAGE_SIZE aligned
 * @offset: where to insert inside the GTT,
 *          must be #I915_GTT_MIN_ALIGNMENT aligned, and the node
 *          (@offset + @size) must fit within the address space
 * @color: color to apply to node, if this node is not from a VMA,
 *         color must be #I915_COLOR_UNEVICTABLE
 * @flags: control search and eviction behaviour
3824 3825 3826 3827 3828 3829 3830 3831 3832 3833 3834 3835 3836 3837 3838 3839 3840 3841 3842 3843 3844 3845 3846 3847
 *
 * i915_gem_gtt_reserve() tries to insert the @node at the exact @offset inside
 * the address space (using @size and @color). If the @node does not fit, it
 * tries to evict any overlapping nodes from the GTT, including any
 * neighbouring nodes if the colors do not match (to ensure guard pages between
 * differing domains). See i915_gem_evict_for_node() for the gory details
 * on the eviction algorithm. #PIN_NONBLOCK may used to prevent waiting on
 * evicting active overlapping objects, and any overlapping node that is pinned
 * or marked as unevictable will also result in failure.
 *
 * Returns: 0 on success, -ENOSPC if no suitable hole is found, -EINTR if
 * asked to wait for eviction and interrupted.
 */
int i915_gem_gtt_reserve(struct i915_address_space *vm,
			 struct drm_mm_node *node,
			 u64 size, u64 offset, unsigned long color,
			 unsigned int flags)
{
	int err;

	GEM_BUG_ON(!size);
	GEM_BUG_ON(!IS_ALIGNED(size, I915_GTT_PAGE_SIZE));
	GEM_BUG_ON(!IS_ALIGNED(offset, I915_GTT_MIN_ALIGNMENT));
	GEM_BUG_ON(range_overflows(offset, size, vm->total));
3848
	GEM_BUG_ON(vm == &vm->i915->mm.aliasing_ppgtt->vm);
3849
	GEM_BUG_ON(drm_mm_node_allocated(node));
3850 3851 3852 3853 3854 3855 3856 3857 3858

	node->size = size;
	node->start = offset;
	node->color = color;

	err = drm_mm_reserve_node(&vm->mm, node);
	if (err != -ENOSPC)
		return err;

3859 3860 3861
	if (flags & PIN_NOEVICT)
		return -ENOSPC;

3862 3863 3864 3865 3866 3867 3868
	err = i915_gem_evict_for_node(vm, node, flags);
	if (err == 0)
		err = drm_mm_reserve_node(&vm->mm, node);

	return err;
}

3869 3870 3871 3872 3873 3874 3875 3876 3877 3878 3879 3880 3881 3882 3883 3884 3885 3886 3887 3888 3889 3890 3891 3892 3893
static u64 random_offset(u64 start, u64 end, u64 len, u64 align)
{
	u64 range, addr;

	GEM_BUG_ON(range_overflows(start, len, end));
	GEM_BUG_ON(round_up(start, align) > round_down(end - len, align));

	range = round_down(end - len, align) - round_up(start, align);
	if (range) {
		if (sizeof(unsigned long) == sizeof(u64)) {
			addr = get_random_long();
		} else {
			addr = get_random_int();
			if (range > U32_MAX) {
				addr <<= 32;
				addr |= get_random_int();
			}
		}
		div64_u64_rem(addr, range, &addr);
		start += addr;
	}

	return round_up(start, align);
}

3894 3895
/**
 * i915_gem_gtt_insert - insert a node into an address_space (GTT)
3896 3897 3898 3899 3900 3901 3902 3903 3904
 * @vm: the &struct i915_address_space
 * @node: the &struct drm_mm_node (typically i915_vma.node)
 * @size: how much space to allocate inside the GTT,
 *        must be #I915_GTT_PAGE_SIZE aligned
 * @alignment: required alignment of starting offset, may be 0 but
 *             if specified, this must be a power-of-two and at least
 *             #I915_GTT_MIN_ALIGNMENT
 * @color: color to apply to node
 * @start: start of any range restriction inside GTT (0 for all),
3905
 *         must be #I915_GTT_PAGE_SIZE aligned
3906 3907 3908
 * @end: end of any range restriction inside GTT (U64_MAX for all),
 *       must be #I915_GTT_PAGE_SIZE aligned if not U64_MAX
 * @flags: control search and eviction behaviour
3909 3910 3911 3912 3913 3914
 *
 * i915_gem_gtt_insert() first searches for an available hole into which
 * is can insert the node. The hole address is aligned to @alignment and
 * its @size must then fit entirely within the [@start, @end] bounds. The
 * nodes on either side of the hole must match @color, or else a guard page
 * will be inserted between the two nodes (or the node evicted). If no
3915 3916
 * suitable hole is found, first a victim is randomly selected and tested
 * for eviction, otherwise then the LRU list of objects within the GTT
3917 3918 3919 3920 3921 3922 3923 3924 3925 3926 3927 3928 3929 3930 3931 3932
 * is scanned to find the first set of replacement nodes to create the hole.
 * Those old overlapping nodes are evicted from the GTT (and so must be
 * rebound before any future use). Any node that is currently pinned cannot
 * be evicted (see i915_vma_pin()). Similar if the node's VMA is currently
 * active and #PIN_NONBLOCK is specified, that node is also skipped when
 * searching for an eviction candidate. See i915_gem_evict_something() for
 * the gory details on the eviction algorithm.
 *
 * Returns: 0 on success, -ENOSPC if no suitable hole is found, -EINTR if
 * asked to wait for eviction and interrupted.
 */
int i915_gem_gtt_insert(struct i915_address_space *vm,
			struct drm_mm_node *node,
			u64 size, u64 alignment, unsigned long color,
			u64 start, u64 end, unsigned int flags)
{
3933
	enum drm_mm_insert_mode mode;
3934
	u64 offset;
3935 3936 3937 3938 3939 3940 3941 3942 3943 3944
	int err;

	lockdep_assert_held(&vm->i915->drm.struct_mutex);
	GEM_BUG_ON(!size);
	GEM_BUG_ON(!IS_ALIGNED(size, I915_GTT_PAGE_SIZE));
	GEM_BUG_ON(alignment && !is_power_of_2(alignment));
	GEM_BUG_ON(alignment && !IS_ALIGNED(alignment, I915_GTT_MIN_ALIGNMENT));
	GEM_BUG_ON(start >= end);
	GEM_BUG_ON(start > 0  && !IS_ALIGNED(start, I915_GTT_PAGE_SIZE));
	GEM_BUG_ON(end < U64_MAX && !IS_ALIGNED(end, I915_GTT_PAGE_SIZE));
3945
	GEM_BUG_ON(vm == &vm->i915->mm.aliasing_ppgtt->vm);
3946
	GEM_BUG_ON(drm_mm_node_allocated(node));
3947 3948 3949 3950 3951 3952 3953

	if (unlikely(range_overflows(start, size, end)))
		return -ENOSPC;

	if (unlikely(round_up(start, alignment) > round_down(end - size, alignment)))
		return -ENOSPC;

3954 3955 3956 3957 3958
	mode = DRM_MM_INSERT_BEST;
	if (flags & PIN_HIGH)
		mode = DRM_MM_INSERT_HIGH;
	if (flags & PIN_MAPPABLE)
		mode = DRM_MM_INSERT_LOW;
3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969

	/* We only allocate in PAGE_SIZE/GTT_PAGE_SIZE (4096) chunks,
	 * so we know that we always have a minimum alignment of 4096.
	 * The drm_mm range manager is optimised to return results
	 * with zero alignment, so where possible use the optimal
	 * path.
	 */
	BUILD_BUG_ON(I915_GTT_MIN_ALIGNMENT > I915_GTT_PAGE_SIZE);
	if (alignment <= I915_GTT_MIN_ALIGNMENT)
		alignment = 0;

3970 3971 3972
	err = drm_mm_insert_node_in_range(&vm->mm, node,
					  size, alignment, color,
					  start, end, mode);
3973 3974 3975
	if (err != -ENOSPC)
		return err;

3976 3977 3978
	if (flags & PIN_NOEVICT)
		return -ENOSPC;

3979 3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006 4007
	/* No free space, pick a slot at random.
	 *
	 * There is a pathological case here using a GTT shared between
	 * mmap and GPU (i.e. ggtt/aliasing_ppgtt but not full-ppgtt):
	 *
	 *    |<-- 256 MiB aperture -->||<-- 1792 MiB unmappable -->|
	 *         (64k objects)             (448k objects)
	 *
	 * Now imagine that the eviction LRU is ordered top-down (just because
	 * pathology meets real life), and that we need to evict an object to
	 * make room inside the aperture. The eviction scan then has to walk
	 * the 448k list before it finds one within range. And now imagine that
	 * it has to search for a new hole between every byte inside the memcpy,
	 * for several simultaneous clients.
	 *
	 * On a full-ppgtt system, if we have run out of available space, there
	 * will be lots and lots of objects in the eviction list! Again,
	 * searching that LRU list may be slow if we are also applying any
	 * range restrictions (e.g. restriction to low 4GiB) and so, for
	 * simplicity and similarilty between different GTT, try the single
	 * random replacement first.
	 */
	offset = random_offset(start, end,
			       size, alignment ?: I915_GTT_MIN_ALIGNMENT);
	err = i915_gem_gtt_reserve(vm, node, size, offset, color, flags);
	if (err != -ENOSPC)
		return err;

	/* Randomly selected placement is pinned, do a search */
4008 4009 4010 4011 4012
	err = i915_gem_evict_something(vm, size, alignment, color,
				       start, end, flags);
	if (err)
		return err;

4013 4014 4015
	return drm_mm_insert_node_in_range(&vm->mm, node,
					   size, alignment, color,
					   start, end, DRM_MM_INSERT_EVICT);
4016
}
4017 4018 4019

#if IS_ENABLED(CONFIG_DRM_I915_SELFTEST)
#include "selftests/mock_gtt.c"
4020
#include "selftests/i915_gem_gtt.c"
4021
#endif