mmu.c 83.5 KB
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/*
 * Kernel-based Virtual Machine driver for Linux
 *
 * This module enables machines with Intel VT-x extensions to run virtual
 * machines without emulation or binary translation.
 *
 * MMU support
 *
 * Copyright (C) 2006 Qumranet, Inc.
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 * Copyright 2010 Red Hat, Inc. and/or its affilates.
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 *
 * Authors:
 *   Yaniv Kamay  <yaniv@qumranet.com>
 *   Avi Kivity   <avi@qumranet.com>
 *
 * This work is licensed under the terms of the GNU GPL, version 2.  See
 * the COPYING file in the top-level directory.
 *
 */
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#include "mmu.h"
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#include "x86.h"
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#include "kvm_cache_regs.h"
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#include <linux/kvm_host.h>
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#include <linux/types.h>
#include <linux/string.h>
#include <linux/mm.h>
#include <linux/highmem.h>
#include <linux/module.h>
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#include <linux/swap.h>
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#include <linux/hugetlb.h>
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#include <linux/compiler.h>
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#include <linux/srcu.h>
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#include <linux/slab.h>
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#include <linux/uaccess.h>
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#include <asm/page.h>
#include <asm/cmpxchg.h>
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#include <asm/io.h>
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#include <asm/vmx.h>
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/*
 * When setting this variable to true it enables Two-Dimensional-Paging
 * where the hardware walks 2 page tables:
 * 1. the guest-virtual to guest-physical
 * 2. while doing 1. it walks guest-physical to host-physical
 * If the hardware supports that we don't need to do shadow paging.
 */
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bool tdp_enabled = false;
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#undef MMU_DEBUG

#undef AUDIT

#ifdef AUDIT
static void kvm_mmu_audit(struct kvm_vcpu *vcpu, const char *msg);
#else
static void kvm_mmu_audit(struct kvm_vcpu *vcpu, const char *msg) {}
#endif

#ifdef MMU_DEBUG

#define pgprintk(x...) do { if (dbg) printk(x); } while (0)
#define rmap_printk(x...) do { if (dbg) printk(x); } while (0)

#else

#define pgprintk(x...) do { } while (0)
#define rmap_printk(x...) do { } while (0)

#endif

#if defined(MMU_DEBUG) || defined(AUDIT)
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static int dbg = 0;
module_param(dbg, bool, 0644);
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#endif
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static int oos_shadow = 1;
module_param(oos_shadow, bool, 0644);

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#ifndef MMU_DEBUG
#define ASSERT(x) do { } while (0)
#else
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#define ASSERT(x)							\
	if (!(x)) {							\
		printk(KERN_WARNING "assertion failed %s:%d: %s\n",	\
		       __FILE__, __LINE__, #x);				\
	}
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#endif
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#define PT_FIRST_AVAIL_BITS_SHIFT 9
#define PT64_SECOND_AVAIL_BITS_SHIFT 52

#define PT64_LEVEL_BITS 9

#define PT64_LEVEL_SHIFT(level) \
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		(PAGE_SHIFT + (level - 1) * PT64_LEVEL_BITS)
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#define PT64_LEVEL_MASK(level) \
		(((1ULL << PT64_LEVEL_BITS) - 1) << PT64_LEVEL_SHIFT(level))

#define PT64_INDEX(address, level)\
	(((address) >> PT64_LEVEL_SHIFT(level)) & ((1 << PT64_LEVEL_BITS) - 1))


#define PT32_LEVEL_BITS 10

#define PT32_LEVEL_SHIFT(level) \
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		(PAGE_SHIFT + (level - 1) * PT32_LEVEL_BITS)
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#define PT32_LEVEL_MASK(level) \
		(((1ULL << PT32_LEVEL_BITS) - 1) << PT32_LEVEL_SHIFT(level))
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#define PT32_LVL_OFFSET_MASK(level) \
	(PT32_BASE_ADDR_MASK & ((1ULL << (PAGE_SHIFT + (((level) - 1) \
						* PT32_LEVEL_BITS))) - 1))
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#define PT32_INDEX(address, level)\
	(((address) >> PT32_LEVEL_SHIFT(level)) & ((1 << PT32_LEVEL_BITS) - 1))


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#define PT64_BASE_ADDR_MASK (((1ULL << 52) - 1) & ~(u64)(PAGE_SIZE-1))
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#define PT64_DIR_BASE_ADDR_MASK \
	(PT64_BASE_ADDR_MASK & ~((1ULL << (PAGE_SHIFT + PT64_LEVEL_BITS)) - 1))
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#define PT64_LVL_ADDR_MASK(level) \
	(PT64_BASE_ADDR_MASK & ~((1ULL << (PAGE_SHIFT + (((level) - 1) \
						* PT64_LEVEL_BITS))) - 1))
#define PT64_LVL_OFFSET_MASK(level) \
	(PT64_BASE_ADDR_MASK & ((1ULL << (PAGE_SHIFT + (((level) - 1) \
						* PT64_LEVEL_BITS))) - 1))
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#define PT32_BASE_ADDR_MASK PAGE_MASK
#define PT32_DIR_BASE_ADDR_MASK \
	(PAGE_MASK & ~((1ULL << (PAGE_SHIFT + PT32_LEVEL_BITS)) - 1))
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#define PT32_LVL_ADDR_MASK(level) \
	(PAGE_MASK & ~((1ULL << (PAGE_SHIFT + (((level) - 1) \
					    * PT32_LEVEL_BITS))) - 1))
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#define PT64_PERM_MASK (PT_PRESENT_MASK | PT_WRITABLE_MASK | PT_USER_MASK \
			| PT64_NX_MASK)
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#define RMAP_EXT 4

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#define ACC_EXEC_MASK    1
#define ACC_WRITE_MASK   PT_WRITABLE_MASK
#define ACC_USER_MASK    PT_USER_MASK
#define ACC_ALL          (ACC_EXEC_MASK | ACC_WRITE_MASK | ACC_USER_MASK)

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#include <trace/events/kvm.h>

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#define CREATE_TRACE_POINTS
#include "mmutrace.h"

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#define SPTE_HOST_WRITEABLE (1ULL << PT_FIRST_AVAIL_BITS_SHIFT)

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#define SHADOW_PT_INDEX(addr, level) PT64_INDEX(addr, level)

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struct kvm_rmap_desc {
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	u64 *sptes[RMAP_EXT];
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	struct kvm_rmap_desc *more;
};

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struct kvm_shadow_walk_iterator {
	u64 addr;
	hpa_t shadow_addr;
	int level;
	u64 *sptep;
	unsigned index;
};

#define for_each_shadow_entry(_vcpu, _addr, _walker)    \
	for (shadow_walk_init(&(_walker), _vcpu, _addr);	\
	     shadow_walk_okay(&(_walker));			\
	     shadow_walk_next(&(_walker)))

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typedef void (*mmu_parent_walk_fn) (struct kvm_mmu_page *sp, u64 *spte);
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static struct kmem_cache *pte_chain_cache;
static struct kmem_cache *rmap_desc_cache;
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static struct kmem_cache *mmu_page_header_cache;
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static u64 __read_mostly shadow_trap_nonpresent_pte;
static u64 __read_mostly shadow_notrap_nonpresent_pte;
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static u64 __read_mostly shadow_base_present_pte;
static u64 __read_mostly shadow_nx_mask;
static u64 __read_mostly shadow_x_mask;	/* mutual exclusive with nx_mask */
static u64 __read_mostly shadow_user_mask;
static u64 __read_mostly shadow_accessed_mask;
static u64 __read_mostly shadow_dirty_mask;
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static inline u64 rsvd_bits(int s, int e)
{
	return ((1ULL << (e - s + 1)) - 1) << s;
}

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void kvm_mmu_set_nonpresent_ptes(u64 trap_pte, u64 notrap_pte)
{
	shadow_trap_nonpresent_pte = trap_pte;
	shadow_notrap_nonpresent_pte = notrap_pte;
}
EXPORT_SYMBOL_GPL(kvm_mmu_set_nonpresent_ptes);

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void kvm_mmu_set_base_ptes(u64 base_pte)
{
	shadow_base_present_pte = base_pte;
}
EXPORT_SYMBOL_GPL(kvm_mmu_set_base_ptes);

void kvm_mmu_set_mask_ptes(u64 user_mask, u64 accessed_mask,
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		u64 dirty_mask, u64 nx_mask, u64 x_mask)
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{
	shadow_user_mask = user_mask;
	shadow_accessed_mask = accessed_mask;
	shadow_dirty_mask = dirty_mask;
	shadow_nx_mask = nx_mask;
	shadow_x_mask = x_mask;
}
EXPORT_SYMBOL_GPL(kvm_mmu_set_mask_ptes);

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static bool is_write_protection(struct kvm_vcpu *vcpu)
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{
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	return kvm_read_cr0_bits(vcpu, X86_CR0_WP);
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}

static int is_cpuid_PSE36(void)
{
	return 1;
}

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static int is_nx(struct kvm_vcpu *vcpu)
{
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	return vcpu->arch.efer & EFER_NX;
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}

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static int is_shadow_present_pte(u64 pte)
{
	return pte != shadow_trap_nonpresent_pte
		&& pte != shadow_notrap_nonpresent_pte;
}

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static int is_large_pte(u64 pte)
{
	return pte & PT_PAGE_SIZE_MASK;
}

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static int is_writable_pte(unsigned long pte)
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{
	return pte & PT_WRITABLE_MASK;
}

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static int is_dirty_gpte(unsigned long pte)
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{
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	return pte & PT_DIRTY_MASK;
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}

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static int is_rmap_spte(u64 pte)
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{
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	return is_shadow_present_pte(pte);
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}

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static int is_last_spte(u64 pte, int level)
{
	if (level == PT_PAGE_TABLE_LEVEL)
		return 1;
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	if (is_large_pte(pte))
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		return 1;
	return 0;
}

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static pfn_t spte_to_pfn(u64 pte)
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{
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	return (pte & PT64_BASE_ADDR_MASK) >> PAGE_SHIFT;
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}

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static gfn_t pse36_gfn_delta(u32 gpte)
{
	int shift = 32 - PT32_DIR_PSE36_SHIFT - PAGE_SHIFT;

	return (gpte & PT32_DIR_PSE36_MASK) << shift;
}

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static void __set_spte(u64 *sptep, u64 spte)
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{
#ifdef CONFIG_X86_64
	set_64bit((unsigned long *)sptep, spte);
#else
	set_64bit((unsigned long long *)sptep, spte);
#endif
}

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static int mmu_topup_memory_cache(struct kvm_mmu_memory_cache *cache,
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				  struct kmem_cache *base_cache, int min)
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{
	void *obj;

	if (cache->nobjs >= min)
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		return 0;
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	while (cache->nobjs < ARRAY_SIZE(cache->objects)) {
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		obj = kmem_cache_zalloc(base_cache, GFP_KERNEL);
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		if (!obj)
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			return -ENOMEM;
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		cache->objects[cache->nobjs++] = obj;
	}
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	return 0;
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}

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static void mmu_free_memory_cache(struct kvm_mmu_memory_cache *mc,
				  struct kmem_cache *cache)
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{
	while (mc->nobjs)
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		kmem_cache_free(cache, mc->objects[--mc->nobjs]);
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}

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static int mmu_topup_memory_cache_page(struct kvm_mmu_memory_cache *cache,
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				       int min)
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{
	struct page *page;

	if (cache->nobjs >= min)
		return 0;
	while (cache->nobjs < ARRAY_SIZE(cache->objects)) {
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		page = alloc_page(GFP_KERNEL);
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		if (!page)
			return -ENOMEM;
		cache->objects[cache->nobjs++] = page_address(page);
	}
	return 0;
}

static void mmu_free_memory_cache_page(struct kvm_mmu_memory_cache *mc)
{
	while (mc->nobjs)
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		free_page((unsigned long)mc->objects[--mc->nobjs]);
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}

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static int mmu_topup_memory_caches(struct kvm_vcpu *vcpu)
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{
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	int r;

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	r = mmu_topup_memory_cache(&vcpu->arch.mmu_pte_chain_cache,
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				   pte_chain_cache, 4);
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	if (r)
		goto out;
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	r = mmu_topup_memory_cache(&vcpu->arch.mmu_rmap_desc_cache,
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				   rmap_desc_cache, 4);
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	if (r)
		goto out;
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	r = mmu_topup_memory_cache_page(&vcpu->arch.mmu_page_cache, 8);
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	if (r)
		goto out;
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	r = mmu_topup_memory_cache(&vcpu->arch.mmu_page_header_cache,
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				   mmu_page_header_cache, 4);
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out:
	return r;
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}

static void mmu_free_memory_caches(struct kvm_vcpu *vcpu)
{
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	mmu_free_memory_cache(&vcpu->arch.mmu_pte_chain_cache, pte_chain_cache);
	mmu_free_memory_cache(&vcpu->arch.mmu_rmap_desc_cache, rmap_desc_cache);
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	mmu_free_memory_cache_page(&vcpu->arch.mmu_page_cache);
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	mmu_free_memory_cache(&vcpu->arch.mmu_page_header_cache,
				mmu_page_header_cache);
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}

static void *mmu_memory_cache_alloc(struct kvm_mmu_memory_cache *mc,
				    size_t size)
{
	void *p;

	BUG_ON(!mc->nobjs);
	p = mc->objects[--mc->nobjs];
	return p;
}

static struct kvm_pte_chain *mmu_alloc_pte_chain(struct kvm_vcpu *vcpu)
{
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	return mmu_memory_cache_alloc(&vcpu->arch.mmu_pte_chain_cache,
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				      sizeof(struct kvm_pte_chain));
}

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static void mmu_free_pte_chain(struct kvm_pte_chain *pc)
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{
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	kmem_cache_free(pte_chain_cache, pc);
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}

static struct kvm_rmap_desc *mmu_alloc_rmap_desc(struct kvm_vcpu *vcpu)
{
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	return mmu_memory_cache_alloc(&vcpu->arch.mmu_rmap_desc_cache,
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				      sizeof(struct kvm_rmap_desc));
}

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static void mmu_free_rmap_desc(struct kvm_rmap_desc *rd)
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{
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	kmem_cache_free(rmap_desc_cache, rd);
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}

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static gfn_t kvm_mmu_page_get_gfn(struct kvm_mmu_page *sp, int index)
{
	if (!sp->role.direct)
		return sp->gfns[index];

	return sp->gfn + (index << ((sp->role.level - 1) * PT64_LEVEL_BITS));
}

static void kvm_mmu_page_set_gfn(struct kvm_mmu_page *sp, int index, gfn_t gfn)
{
	if (sp->role.direct)
		BUG_ON(gfn != kvm_mmu_page_get_gfn(sp, index));
	else
		sp->gfns[index] = gfn;
}

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/*
 * Return the pointer to the largepage write count for a given
 * gfn, handling slots that are not large page aligned.
 */
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static int *slot_largepage_idx(gfn_t gfn,
			       struct kvm_memory_slot *slot,
			       int level)
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{
	unsigned long idx;

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	idx = (gfn >> KVM_HPAGE_GFN_SHIFT(level)) -
	      (slot->base_gfn >> KVM_HPAGE_GFN_SHIFT(level));
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	return &slot->lpage_info[level - 2][idx].write_count;
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}

static void account_shadowed(struct kvm *kvm, gfn_t gfn)
{
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	struct kvm_memory_slot *slot;
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	int *write_count;
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	int i;
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	slot = gfn_to_memslot(kvm, gfn);
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	for (i = PT_DIRECTORY_LEVEL;
	     i < PT_PAGE_TABLE_LEVEL + KVM_NR_PAGE_SIZES; ++i) {
		write_count   = slot_largepage_idx(gfn, slot, i);
		*write_count += 1;
	}
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}

static void unaccount_shadowed(struct kvm *kvm, gfn_t gfn)
{
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	struct kvm_memory_slot *slot;
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	int *write_count;
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	int i;
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	slot = gfn_to_memslot(kvm, gfn);
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	for (i = PT_DIRECTORY_LEVEL;
	     i < PT_PAGE_TABLE_LEVEL + KVM_NR_PAGE_SIZES; ++i) {
		write_count   = slot_largepage_idx(gfn, slot, i);
		*write_count -= 1;
		WARN_ON(*write_count < 0);
	}
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}

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static int has_wrprotected_page(struct kvm *kvm,
				gfn_t gfn,
				int level)
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{
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	struct kvm_memory_slot *slot;
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	int *largepage_idx;

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	slot = gfn_to_memslot(kvm, gfn);
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	if (slot) {
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		largepage_idx = slot_largepage_idx(gfn, slot, level);
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		return *largepage_idx;
	}

	return 1;
}

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static int host_mapping_level(struct kvm *kvm, gfn_t gfn)
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{
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	unsigned long page_size;
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	int i, ret = 0;
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	page_size = kvm_host_page_size(kvm, gfn);
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	for (i = PT_PAGE_TABLE_LEVEL;
	     i < (PT_PAGE_TABLE_LEVEL + KVM_NR_PAGE_SIZES); ++i) {
		if (page_size >= KVM_HPAGE_SIZE(i))
			ret = i;
		else
			break;
	}

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	return ret;
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}

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static int mapping_level(struct kvm_vcpu *vcpu, gfn_t large_gfn)
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{
	struct kvm_memory_slot *slot;
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	int host_level, level, max_level;
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	slot = gfn_to_memslot(vcpu->kvm, large_gfn);
	if (slot && slot->dirty_bitmap)
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		return PT_PAGE_TABLE_LEVEL;
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	host_level = host_mapping_level(vcpu->kvm, large_gfn);

	if (host_level == PT_PAGE_TABLE_LEVEL)
		return host_level;

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	max_level = kvm_x86_ops->get_lpage_level() < host_level ?
		kvm_x86_ops->get_lpage_level() : host_level;

	for (level = PT_DIRECTORY_LEVEL; level <= max_level; ++level)
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		if (has_wrprotected_page(vcpu->kvm, large_gfn, level))
			break;

	return level - 1;
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}

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/*
 * Take gfn and return the reverse mapping to it.
 */

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static unsigned long *gfn_to_rmap(struct kvm *kvm, gfn_t gfn, int level)
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{
	struct kvm_memory_slot *slot;
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	unsigned long idx;
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	slot = gfn_to_memslot(kvm, gfn);
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	if (likely(level == PT_PAGE_TABLE_LEVEL))
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		return &slot->rmap[gfn - slot->base_gfn];

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	idx = (gfn >> KVM_HPAGE_GFN_SHIFT(level)) -
		(slot->base_gfn >> KVM_HPAGE_GFN_SHIFT(level));
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	return &slot->lpage_info[level - 2][idx].rmap_pde;
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}

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/*
 * Reverse mapping data structures:
 *
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 * If rmapp bit zero is zero, then rmapp point to the shadw page table entry
 * that points to page_address(page).
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 *
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 * If rmapp bit zero is one, (then rmap & ~1) points to a struct kvm_rmap_desc
 * containing more mappings.
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 *
 * Returns the number of rmap entries before the spte was added or zero if
 * the spte was not added.
 *
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 */
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static int rmap_add(struct kvm_vcpu *vcpu, u64 *spte, gfn_t gfn)
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{
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	struct kvm_mmu_page *sp;
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	struct kvm_rmap_desc *desc;
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	unsigned long *rmapp;
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	int i, count = 0;
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	if (!is_rmap_spte(*spte))
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		return count;
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	sp = page_header(__pa(spte));
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	kvm_mmu_page_set_gfn(sp, spte - sp->spt, gfn);
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	rmapp = gfn_to_rmap(vcpu->kvm, gfn, sp->role.level);
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	if (!*rmapp) {
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		rmap_printk("rmap_add: %p %llx 0->1\n", spte, *spte);
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		*rmapp = (unsigned long)spte;
	} else if (!(*rmapp & 1)) {
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		rmap_printk("rmap_add: %p %llx 1->many\n", spte, *spte);
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		desc = mmu_alloc_rmap_desc(vcpu);
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		desc->sptes[0] = (u64 *)*rmapp;
		desc->sptes[1] = spte;
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		*rmapp = (unsigned long)desc | 1;
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	} else {
		rmap_printk("rmap_add: %p %llx many->many\n", spte, *spte);
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		desc = (struct kvm_rmap_desc *)(*rmapp & ~1ul);
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		while (desc->sptes[RMAP_EXT-1] && desc->more) {
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			desc = desc->more;
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			count += RMAP_EXT;
		}
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		if (desc->sptes[RMAP_EXT-1]) {
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			desc->more = mmu_alloc_rmap_desc(vcpu);
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			desc = desc->more;
		}
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		for (i = 0; desc->sptes[i]; ++i)
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			;
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		desc->sptes[i] = spte;
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	}
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	return count;
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}

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static void rmap_desc_remove_entry(unsigned long *rmapp,
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				   struct kvm_rmap_desc *desc,
				   int i,
				   struct kvm_rmap_desc *prev_desc)
{
	int j;

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	for (j = RMAP_EXT - 1; !desc->sptes[j] && j > i; --j)
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		;
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	desc->sptes[i] = desc->sptes[j];
	desc->sptes[j] = NULL;
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	if (j != 0)
		return;
	if (!prev_desc && !desc->more)
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		*rmapp = (unsigned long)desc->sptes[0];
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	else
		if (prev_desc)
			prev_desc->more = desc->more;
		else
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			*rmapp = (unsigned long)desc->more | 1;
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	mmu_free_rmap_desc(desc);
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}

610
static void rmap_remove(struct kvm *kvm, u64 *spte)
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{
	struct kvm_rmap_desc *desc;
	struct kvm_rmap_desc *prev_desc;
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	struct kvm_mmu_page *sp;
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	pfn_t pfn;
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	gfn_t gfn;
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	unsigned long *rmapp;
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	int i;

620
	if (!is_rmap_spte(*spte))
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		return;
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	sp = page_header(__pa(spte));
623
	pfn = spte_to_pfn(*spte);
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	if (*spte & shadow_accessed_mask)
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		kvm_set_pfn_accessed(pfn);
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	if (is_writable_pte(*spte))
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		kvm_set_pfn_dirty(pfn);
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	gfn = kvm_mmu_page_get_gfn(sp, spte - sp->spt);
	rmapp = gfn_to_rmap(kvm, gfn, sp->role.level);
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	if (!*rmapp) {
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		printk(KERN_ERR "rmap_remove: %p %llx 0->BUG\n", spte, *spte);
		BUG();
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	} else if (!(*rmapp & 1)) {
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		rmap_printk("rmap_remove:  %p %llx 1->0\n", spte, *spte);
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		if ((u64 *)*rmapp != spte) {
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			printk(KERN_ERR "rmap_remove:  %p %llx 1->BUG\n",
			       spte, *spte);
			BUG();
		}
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		*rmapp = 0;
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	} else {
		rmap_printk("rmap_remove:  %p %llx many->many\n", spte, *spte);
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		desc = (struct kvm_rmap_desc *)(*rmapp & ~1ul);
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		prev_desc = NULL;
		while (desc) {
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			for (i = 0; i < RMAP_EXT && desc->sptes[i]; ++i)
				if (desc->sptes[i] == spte) {
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					rmap_desc_remove_entry(rmapp,
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							       desc, i,
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							       prev_desc);
					return;
				}
			prev_desc = desc;
			desc = desc->more;
		}
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		pr_err("rmap_remove: %p %llx many->many\n", spte, *spte);
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		BUG();
	}
}

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static u64 *rmap_next(struct kvm *kvm, unsigned long *rmapp, u64 *spte)
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{
	struct kvm_rmap_desc *desc;
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	u64 *prev_spte;
	int i;

	if (!*rmapp)
		return NULL;
	else if (!(*rmapp & 1)) {
		if (!spte)
			return (u64 *)*rmapp;
		return NULL;
	}
	desc = (struct kvm_rmap_desc *)(*rmapp & ~1ul);
	prev_spte = NULL;
	while (desc) {
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		for (i = 0; i < RMAP_EXT && desc->sptes[i]; ++i) {
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			if (prev_spte == spte)
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				return desc->sptes[i];
			prev_spte = desc->sptes[i];
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		}
		desc = desc->more;
	}
	return NULL;
}

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static int rmap_write_protect(struct kvm *kvm, u64 gfn)
688
{
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	unsigned long *rmapp;
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	u64 *spte;
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	int i, write_protected = 0;
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	rmapp = gfn_to_rmap(kvm, gfn, PT_PAGE_TABLE_LEVEL);
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	spte = rmap_next(kvm, rmapp, NULL);
	while (spte) {
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		BUG_ON(!spte);
		BUG_ON(!(*spte & PT_PRESENT_MASK));
		rmap_printk("rmap_write_protect: spte %p %llx\n", spte, *spte);
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		if (is_writable_pte(*spte)) {
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			__set_spte(spte, *spte & ~PT_WRITABLE_MASK);
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			write_protected = 1;
		}
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		spte = rmap_next(kvm, rmapp, spte);
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	}
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	if (write_protected) {
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		pfn_t pfn;
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		spte = rmap_next(kvm, rmapp, NULL);
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		pfn = spte_to_pfn(*spte);
		kvm_set_pfn_dirty(pfn);
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	}

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	/* check for huge page mappings */
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	for (i = PT_DIRECTORY_LEVEL;
	     i < PT_PAGE_TABLE_LEVEL + KVM_NR_PAGE_SIZES; ++i) {
		rmapp = gfn_to_rmap(kvm, gfn, i);
		spte = rmap_next(kvm, rmapp, NULL);
		while (spte) {
			BUG_ON(!spte);
			BUG_ON(!(*spte & PT_PRESENT_MASK));
			BUG_ON((*spte & (PT_PAGE_SIZE_MASK|PT_PRESENT_MASK)) != (PT_PAGE_SIZE_MASK|PT_PRESENT_MASK));
			pgprintk("rmap_write_protect(large): spte %p %llx %lld\n", spte, *spte, gfn);
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			if (is_writable_pte(*spte)) {
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				rmap_remove(kvm, spte);
				--kvm->stat.lpages;
				__set_spte(spte, shadow_trap_nonpresent_pte);
				spte = NULL;
				write_protected = 1;
			}
			spte = rmap_next(kvm, rmapp, spte);
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		}
	}

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	return write_protected;
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}

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static int kvm_unmap_rmapp(struct kvm *kvm, unsigned long *rmapp,
			   unsigned long data)
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{
	u64 *spte;
	int need_tlb_flush = 0;

	while ((spte = rmap_next(kvm, rmapp, NULL))) {
		BUG_ON(!(*spte & PT_PRESENT_MASK));
		rmap_printk("kvm_rmap_unmap_hva: spte %p %llx\n", spte, *spte);
		rmap_remove(kvm, spte);
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		__set_spte(spte, shadow_trap_nonpresent_pte);
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		need_tlb_flush = 1;
	}
	return need_tlb_flush;
}

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static int kvm_set_pte_rmapp(struct kvm *kvm, unsigned long *rmapp,
			     unsigned long data)
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{
	int need_flush = 0;
	u64 *spte, new_spte;
	pte_t *ptep = (pte_t *)data;
	pfn_t new_pfn;

	WARN_ON(pte_huge(*ptep));
	new_pfn = pte_pfn(*ptep);
	spte = rmap_next(kvm, rmapp, NULL);
	while (spte) {
		BUG_ON(!is_shadow_present_pte(*spte));
		rmap_printk("kvm_set_pte_rmapp: spte %p %llx\n", spte, *spte);
		need_flush = 1;
		if (pte_write(*ptep)) {
			rmap_remove(kvm, spte);
			__set_spte(spte, shadow_trap_nonpresent_pte);
			spte = rmap_next(kvm, rmapp, NULL);
		} else {
			new_spte = *spte &~ (PT64_BASE_ADDR_MASK);
			new_spte |= (u64)new_pfn << PAGE_SHIFT;

			new_spte &= ~PT_WRITABLE_MASK;
			new_spte &= ~SPTE_HOST_WRITEABLE;
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			if (is_writable_pte(*spte))
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				kvm_set_pfn_dirty(spte_to_pfn(*spte));
			__set_spte(spte, new_spte);
			spte = rmap_next(kvm, rmapp, spte);
		}
	}
	if (need_flush)
		kvm_flush_remote_tlbs(kvm);

	return 0;
}

791 792
static int kvm_handle_hva(struct kvm *kvm, unsigned long hva,
			  unsigned long data,
793
			  int (*handler)(struct kvm *kvm, unsigned long *rmapp,
794
					 unsigned long data))
795
{
796
	int i, j;
797
	int ret;
798
	int retval = 0;
799 800
	struct kvm_memslots *slots;

801
	slots = kvm_memslots(kvm);
802

803 804
	for (i = 0; i < slots->nmemslots; i++) {
		struct kvm_memory_slot *memslot = &slots->memslots[i];
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		unsigned long start = memslot->userspace_addr;
		unsigned long end;

		end = start + (memslot->npages << PAGE_SHIFT);
		if (hva >= start && hva < end) {
			gfn_t gfn_offset = (hva - start) >> PAGE_SHIFT;
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812
			ret = handler(kvm, &memslot->rmap[gfn_offset], data);
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			for (j = 0; j < KVM_NR_PAGE_SIZES - 1; ++j) {
				int idx = gfn_offset;
				idx /= KVM_PAGES_PER_HPAGE(PT_DIRECTORY_LEVEL + j);
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				ret |= handler(kvm,
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					&memslot->lpage_info[j][idx].rmap_pde,
					data);
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			}
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			trace_kvm_age_page(hva, memslot, ret);
			retval |= ret;
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		}
	}

	return retval;
}

int kvm_unmap_hva(struct kvm *kvm, unsigned long hva)
{
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	return kvm_handle_hva(kvm, hva, 0, kvm_unmap_rmapp);
}

void kvm_set_spte_hva(struct kvm *kvm, unsigned long hva, pte_t pte)
{
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	kvm_handle_hva(kvm, hva, (unsigned long)&pte, kvm_set_pte_rmapp);
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}

839 840
static int kvm_age_rmapp(struct kvm *kvm, unsigned long *rmapp,
			 unsigned long data)
841 842 843 844
{
	u64 *spte;
	int young = 0;

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	/*
	 * Emulate the accessed bit for EPT, by checking if this page has
	 * an EPT mapping, and clearing it if it does. On the next access,
	 * a new EPT mapping will be established.
	 * This has some overhead, but not as much as the cost of swapping
	 * out actively used pages or breaking up actively used hugepages.
	 */
852
	if (!shadow_accessed_mask)
853
		return kvm_unmap_rmapp(kvm, rmapp, data);
854

855 856 857 858 859 860 861 862 863 864 865 866 867 868 869
	spte = rmap_next(kvm, rmapp, NULL);
	while (spte) {
		int _young;
		u64 _spte = *spte;
		BUG_ON(!(_spte & PT_PRESENT_MASK));
		_young = _spte & PT_ACCESSED_MASK;
		if (_young) {
			young = 1;
			clear_bit(PT_ACCESSED_SHIFT, (unsigned long *)spte);
		}
		spte = rmap_next(kvm, rmapp, spte);
	}
	return young;
}

870 871
#define RMAP_RECYCLE_THRESHOLD 1000

872
static void rmap_recycle(struct kvm_vcpu *vcpu, u64 *spte, gfn_t gfn)
873 874
{
	unsigned long *rmapp;
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	struct kvm_mmu_page *sp;

	sp = page_header(__pa(spte));
878

879
	rmapp = gfn_to_rmap(vcpu->kvm, gfn, sp->role.level);
880

881
	kvm_unmap_rmapp(vcpu->kvm, rmapp, 0);
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	kvm_flush_remote_tlbs(vcpu->kvm);
}

885 886
int kvm_age_hva(struct kvm *kvm, unsigned long hva)
{
887
	return kvm_handle_hva(kvm, hva, 0, kvm_age_rmapp);
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}

890
#ifdef MMU_DEBUG
891
static int is_empty_shadow_page(u64 *spt)
892
{
893 894 895
	u64 *pos;
	u64 *end;

896
	for (pos = spt, end = pos + PAGE_SIZE / sizeof(u64); pos != end; pos++)
897
		if (is_shadow_present_pte(*pos)) {
898
			printk(KERN_ERR "%s: %p %llx\n", __func__,
899
			       pos, *pos);
900
			return 0;
901
		}
902 903
	return 1;
}
904
#endif
905

906
static void kvm_mmu_free_page(struct kvm *kvm, struct kvm_mmu_page *sp)
907
{
908
	ASSERT(is_empty_shadow_page(sp->spt));
909
	hlist_del(&sp->hash_link);
910 911
	list_del(&sp->link);
	__free_page(virt_to_page(sp->spt));
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	if (!sp->role.direct)
		__free_page(virt_to_page(sp->gfns));
914
	kmem_cache_free(mmu_page_header_cache, sp);
915
	++kvm->arch.n_free_mmu_pages;
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}

918 919
static unsigned kvm_page_table_hashfn(gfn_t gfn)
{
920
	return gfn & ((1 << KVM_MMU_HASH_SHIFT) - 1);
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}

923
static struct kvm_mmu_page *kvm_mmu_alloc_page(struct kvm_vcpu *vcpu,
924
					       u64 *parent_pte, int direct)
925
{
926
	struct kvm_mmu_page *sp;
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928 929
	sp = mmu_memory_cache_alloc(&vcpu->arch.mmu_page_header_cache, sizeof *sp);
	sp->spt = mmu_memory_cache_alloc(&vcpu->arch.mmu_page_cache, PAGE_SIZE);
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	if (!direct)
		sp->gfns = mmu_memory_cache_alloc(&vcpu->arch.mmu_page_cache,
						  PAGE_SIZE);
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	set_page_private(virt_to_page(sp->spt), (unsigned long)sp);
934
	list_add(&sp->link, &vcpu->kvm->arch.active_mmu_pages);
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	bitmap_zero(sp->slot_bitmap, KVM_MEMORY_SLOTS + KVM_PRIVATE_MEM_SLOTS);
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	sp->multimapped = 0;
	sp->parent_pte = parent_pte;
938
	--vcpu->kvm->arch.n_free_mmu_pages;
939
	return sp;
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}

942
static void mmu_page_add_parent_pte(struct kvm_vcpu *vcpu,
943
				    struct kvm_mmu_page *sp, u64 *parent_pte)
944 945 946 947 948 949 950
{
	struct kvm_pte_chain *pte_chain;
	struct hlist_node *node;
	int i;

	if (!parent_pte)
		return;
951 952
	if (!sp->multimapped) {
		u64 *old = sp->parent_pte;
953 954

		if (!old) {
955
			sp->parent_pte = parent_pte;
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			return;
		}
958
		sp->multimapped = 1;
959
		pte_chain = mmu_alloc_pte_chain(vcpu);
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		INIT_HLIST_HEAD(&sp->parent_ptes);
		hlist_add_head(&pte_chain->link, &sp->parent_ptes);
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		pte_chain->parent_ptes[0] = old;
	}
964
	hlist_for_each_entry(pte_chain, node, &sp->parent_ptes, link) {
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		if (pte_chain->parent_ptes[NR_PTE_CHAIN_ENTRIES-1])
			continue;
		for (i = 0; i < NR_PTE_CHAIN_ENTRIES; ++i)
			if (!pte_chain->parent_ptes[i]) {
				pte_chain->parent_ptes[i] = parent_pte;
				return;
			}
	}
973
	pte_chain = mmu_alloc_pte_chain(vcpu);
974
	BUG_ON(!pte_chain);
975
	hlist_add_head(&pte_chain->link, &sp->parent_ptes);
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	pte_chain->parent_ptes[0] = parent_pte;
}

979
static void mmu_page_remove_parent_pte(struct kvm_mmu_page *sp,
980 981 982 983 984 985
				       u64 *parent_pte)
{
	struct kvm_pte_chain *pte_chain;
	struct hlist_node *node;
	int i;

986 987 988
	if (!sp->multimapped) {
		BUG_ON(sp->parent_pte != parent_pte);
		sp->parent_pte = NULL;
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		return;
	}
991
	hlist_for_each_entry(pte_chain, node, &sp->parent_ptes, link)
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		for (i = 0; i < NR_PTE_CHAIN_ENTRIES; ++i) {
			if (!pte_chain->parent_ptes[i])
				break;
			if (pte_chain->parent_ptes[i] != parent_pte)
				continue;
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			while (i + 1 < NR_PTE_CHAIN_ENTRIES
				&& pte_chain->parent_ptes[i + 1]) {
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				pte_chain->parent_ptes[i]
					= pte_chain->parent_ptes[i + 1];
				++i;
			}
			pte_chain->parent_ptes[i] = NULL;
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			if (i == 0) {
				hlist_del(&pte_chain->link);
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				mmu_free_pte_chain(pte_chain);
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				if (hlist_empty(&sp->parent_ptes)) {
					sp->multimapped = 0;
					sp->parent_pte = NULL;
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				}
			}
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			return;
		}
	BUG();
}

1017
static void mmu_parent_walk(struct kvm_mmu_page *sp, mmu_parent_walk_fn fn)
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{
	struct kvm_pte_chain *pte_chain;
	struct hlist_node *node;
	struct kvm_mmu_page *parent_sp;
	int i;

	if (!sp->multimapped && sp->parent_pte) {
		parent_sp = page_header(__pa(sp->parent_pte));
1026
		fn(parent_sp, sp->parent_pte);
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		return;
	}
1029

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	hlist_for_each_entry(pte_chain, node, &sp->parent_ptes, link)
		for (i = 0; i < NR_PTE_CHAIN_ENTRIES; ++i) {
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			u64 *spte = pte_chain->parent_ptes[i];

			if (!spte)
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				break;
1036 1037
			parent_sp = page_header(__pa(spte));
			fn(parent_sp, spte);
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		}
}

1041 1042
static void mark_unsync(struct kvm_mmu_page *sp, u64 *spte);
static void kvm_mmu_mark_parents_unsync(struct kvm_mmu_page *sp)
1043
{
1044
	mmu_parent_walk(sp, mark_unsync);
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}

1047
static void mark_unsync(struct kvm_mmu_page *sp, u64 *spte)
1048
{
1049
	unsigned int index;
1050

1051 1052
	index = spte - sp->spt;
	if (__test_and_set_bit(index, sp->unsync_child_bitmap))
1053
		return;
1054
	if (sp->unsync_children++)
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		return;
1056
	kvm_mmu_mark_parents_unsync(sp);
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}

1059 1060 1061 1062 1063 1064 1065 1066 1067
static void nonpaging_prefetch_page(struct kvm_vcpu *vcpu,
				    struct kvm_mmu_page *sp)
{
	int i;

	for (i = 0; i < PT64_ENT_PER_PAGE; ++i)
		sp->spt[i] = shadow_trap_nonpresent_pte;
}

1068
static int nonpaging_sync_page(struct kvm_vcpu *vcpu,
1069
			       struct kvm_mmu_page *sp, bool clear_unsync)
1070 1071 1072 1073
{
	return 1;
}

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static void nonpaging_invlpg(struct kvm_vcpu *vcpu, gva_t gva)
{
}

1078 1079 1080 1081 1082 1083 1084 1085 1086 1087
#define KVM_PAGE_ARRAY_NR 16

struct kvm_mmu_pages {
	struct mmu_page_and_offset {
		struct kvm_mmu_page *sp;
		unsigned int idx;
	} page[KVM_PAGE_ARRAY_NR];
	unsigned int nr;
};

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#define for_each_unsync_children(bitmap, idx)		\
	for (idx = find_first_bit(bitmap, 512);		\
	     idx < 512;					\
	     idx = find_next_bit(bitmap, 512, idx+1))

1093 1094
static int mmu_pages_add(struct kvm_mmu_pages *pvec, struct kvm_mmu_page *sp,
			 int idx)
1095
{
1096
	int i;
1097

1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112
	if (sp->unsync)
		for (i=0; i < pvec->nr; i++)
			if (pvec->page[i].sp == sp)
				return 0;

	pvec->page[pvec->nr].sp = sp;
	pvec->page[pvec->nr].idx = idx;
	pvec->nr++;
	return (pvec->nr == KVM_PAGE_ARRAY_NR);
}

static int __mmu_unsync_walk(struct kvm_mmu_page *sp,
			   struct kvm_mmu_pages *pvec)
{
	int i, ret, nr_unsync_leaf = 0;
1113

1114
	for_each_unsync_children(sp->unsync_child_bitmap, i) {
1115
		struct kvm_mmu_page *child;
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		u64 ent = sp->spt[i];

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		if (!is_shadow_present_pte(ent) || is_large_pte(ent))
			goto clear_child_bitmap;

		child = page_header(ent & PT64_BASE_ADDR_MASK);

		if (child->unsync_children) {
			if (mmu_pages_add(pvec, child, i))
				return -ENOSPC;

			ret = __mmu_unsync_walk(child, pvec);
			if (!ret)
				goto clear_child_bitmap;
			else if (ret > 0)
				nr_unsync_leaf += ret;
			else
				return ret;
		} else if (child->unsync) {
			nr_unsync_leaf++;
			if (mmu_pages_add(pvec, child, i))
				return -ENOSPC;
		} else
			 goto clear_child_bitmap;

		continue;

clear_child_bitmap:
		__clear_bit(i, sp->unsync_child_bitmap);
		sp->unsync_children--;
		WARN_ON((int)sp->unsync_children < 0);
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	}


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	return nr_unsync_leaf;
}

static int mmu_unsync_walk(struct kvm_mmu_page *sp,
			   struct kvm_mmu_pages *pvec)
{
	if (!sp->unsync_children)
		return 0;

	mmu_pages_add(pvec, sp, 0);
	return __mmu_unsync_walk(sp, pvec);
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}

static void kvm_unlink_unsync_page(struct kvm *kvm, struct kvm_mmu_page *sp)
{
	WARN_ON(!sp->unsync);
1166
	trace_kvm_mmu_sync_page(sp);
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	sp->unsync = 0;
	--kvm->stat.mmu_unsync;
}

1171 1172 1173 1174
static int kvm_mmu_prepare_zap_page(struct kvm *kvm, struct kvm_mmu_page *sp,
				    struct list_head *invalid_list);
static void kvm_mmu_commit_zap_page(struct kvm *kvm,
				    struct list_head *invalid_list);
1175

1176 1177
#define for_each_gfn_sp(kvm, sp, gfn, pos)				\
  hlist_for_each_entry(sp, pos,						\
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   &(kvm)->arch.mmu_page_hash[kvm_page_table_hashfn(gfn)], hash_link)	\
	if ((sp)->gfn != (gfn)) {} else

1181 1182
#define for_each_gfn_indirect_valid_sp(kvm, sp, gfn, pos)		\
  hlist_for_each_entry(sp, pos,						\
1183 1184 1185 1186
   &(kvm)->arch.mmu_page_hash[kvm_page_table_hashfn(gfn)], hash_link)	\
		if ((sp)->gfn != (gfn) || (sp)->role.direct ||		\
			(sp)->role.invalid) {} else

1187
/* @sp->gfn should be write-protected at the call site */
1188
static int __kvm_sync_page(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp,
1189
			   struct list_head *invalid_list, bool clear_unsync)
1190
{
1191
	if (sp->role.cr4_pae != !!is_pae(vcpu)) {
1192
		kvm_mmu_prepare_zap_page(vcpu->kvm, sp, invalid_list);
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		return 1;
	}

1196
	if (clear_unsync)
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		kvm_unlink_unsync_page(vcpu->kvm, sp);

1199
	if (vcpu->arch.mmu.sync_page(vcpu, sp, clear_unsync)) {
1200
		kvm_mmu_prepare_zap_page(vcpu->kvm, sp, invalid_list);
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		return 1;
	}

	kvm_mmu_flush_tlb(vcpu);
	return 0;
}

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static int kvm_sync_page_transient(struct kvm_vcpu *vcpu,
				   struct kvm_mmu_page *sp)
{
1211
	LIST_HEAD(invalid_list);
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	int ret;

1214
	ret = __kvm_sync_page(vcpu, sp, &invalid_list, false);
1215
	if (ret)
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		kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);

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	return ret;
}

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static int kvm_sync_page(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp,
			 struct list_head *invalid_list)
1223
{
1224
	return __kvm_sync_page(vcpu, sp, invalid_list, true);
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}

1227 1228 1229 1230
/* @gfn should be write-protected at the call site */
static void kvm_sync_pages(struct kvm_vcpu *vcpu,  gfn_t gfn)
{
	struct kvm_mmu_page *s;
1231
	struct hlist_node *node;
1232
	LIST_HEAD(invalid_list);
1233 1234
	bool flush = false;

1235
	for_each_gfn_indirect_valid_sp(vcpu->kvm, s, gfn, node) {
1236
		if (!s->unsync)
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			continue;

		WARN_ON(s->role.level != PT_PAGE_TABLE_LEVEL);
		if ((s->role.cr4_pae != !!is_pae(vcpu)) ||
1241
			(vcpu->arch.mmu.sync_page(vcpu, s, true))) {
1242
			kvm_mmu_prepare_zap_page(vcpu->kvm, s, &invalid_list);
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			continue;
		}
		kvm_unlink_unsync_page(vcpu->kvm, s);
		flush = true;
	}

1249
	kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
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	if (flush)
		kvm_mmu_flush_tlb(vcpu);
}

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struct mmu_page_path {
	struct kvm_mmu_page *parent[PT64_ROOT_LEVEL-1];
	unsigned int idx[PT64_ROOT_LEVEL-1];
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};

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#define for_each_sp(pvec, sp, parents, i)			\
		for (i = mmu_pages_next(&pvec, &parents, -1),	\
			sp = pvec.page[i].sp;			\
			i < pvec.nr && ({ sp = pvec.page[i].sp; 1;});	\
			i = mmu_pages_next(&pvec, &parents, i))

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static int mmu_pages_next(struct kvm_mmu_pages *pvec,
			  struct mmu_page_path *parents,
			  int i)
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{
	int n;

	for (n = i+1; n < pvec->nr; n++) {
		struct kvm_mmu_page *sp = pvec->page[n].sp;

		if (sp->role.level == PT_PAGE_TABLE_LEVEL) {
			parents->idx[0] = pvec->page[n].idx;
			return n;
		}

		parents->parent[sp->role.level-2] = sp;
		parents->idx[sp->role.level-1] = pvec->page[n].idx;
	}

	return n;
}

1286
static void mmu_pages_clear_parents(struct mmu_page_path *parents)
1287
{
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	struct kvm_mmu_page *sp;
	unsigned int level = 0;

	do {
		unsigned int idx = parents->idx[level];
1293

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		sp = parents->parent[level];
		if (!sp)
			return;

		--sp->unsync_children;
		WARN_ON((int)sp->unsync_children < 0);
		__clear_bit(idx, sp->unsync_child_bitmap);
		level++;
	} while (level < PT64_ROOT_LEVEL-1 && !sp->unsync_children);
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}

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static void kvm_mmu_pages_init(struct kvm_mmu_page *parent,
			       struct mmu_page_path *parents,
			       struct kvm_mmu_pages *pvec)
1308
{
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	parents->parent[parent->role.level-1] = NULL;
	pvec->nr = 0;
}
1312

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static void mmu_sync_children(struct kvm_vcpu *vcpu,
			      struct kvm_mmu_page *parent)
{
	int i;
	struct kvm_mmu_page *sp;
	struct mmu_page_path parents;
	struct kvm_mmu_pages pages;
1320
	LIST_HEAD(invalid_list);
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	kvm_mmu_pages_init(parent, &parents, &pages);
	while (mmu_unsync_walk(parent, &pages)) {
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		int protected = 0;

		for_each_sp(pages, sp, parents, i)
			protected |= rmap_write_protect(vcpu->kvm, sp->gfn);

		if (protected)
			kvm_flush_remote_tlbs(vcpu->kvm);

1332
		for_each_sp(pages, sp, parents, i) {
1333
			kvm_sync_page(vcpu, sp, &invalid_list);
1334 1335
			mmu_pages_clear_parents(&parents);
		}
1336
		kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
1337
		cond_resched_lock(&vcpu->kvm->mmu_lock);
1338 1339
		kvm_mmu_pages_init(parent, &parents, &pages);
	}
1340 1341
}

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static struct kvm_mmu_page *kvm_mmu_get_page(struct kvm_vcpu *vcpu,
					     gfn_t gfn,
					     gva_t gaddr,
					     unsigned level,
1346
					     int direct,
1347
					     unsigned access,
1348
					     u64 *parent_pte)
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{
	union kvm_mmu_page_role role;
	unsigned quadrant;
1352
	struct kvm_mmu_page *sp;
1353
	struct hlist_node *node;
1354
	bool need_sync = false;
1355

1356
	role = vcpu->arch.mmu.base_role;
1357
	role.level = level;
1358
	role.direct = direct;
1359
	if (role.direct)
1360
		role.cr4_pae = 0;
1361
	role.access = access;
1362
	if (!tdp_enabled && vcpu->arch.mmu.root_level <= PT32_ROOT_LEVEL) {
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		quadrant = gaddr >> (PAGE_SHIFT + (PT64_PT_BITS * level));
		quadrant &= (1 << ((PT32_PT_BITS - PT64_PT_BITS) * level)) - 1;
		role.quadrant = quadrant;
	}
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	for_each_gfn_sp(vcpu->kvm, sp, gfn, node) {
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		if (!need_sync && sp->unsync)
			need_sync = true;
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		if (sp->role.word != role.word)
			continue;
1373

1374 1375
		if (sp->unsync && kvm_sync_page_transient(vcpu, sp))
			break;
1376

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		mmu_page_add_parent_pte(vcpu, sp, parent_pte);
		if (sp->unsync_children) {
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			kvm_make_request(KVM_REQ_MMU_SYNC, vcpu);
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			kvm_mmu_mark_parents_unsync(sp);
		} else if (sp->unsync)
			kvm_mmu_mark_parents_unsync(sp);
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		trace_kvm_mmu_get_page(sp, false);
		return sp;
	}
1387
	++vcpu->kvm->stat.mmu_cache_miss;
1388
	sp = kvm_mmu_alloc_page(vcpu, parent_pte, direct);
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	if (!sp)
		return sp;
	sp->gfn = gfn;
	sp->role = role;
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	hlist_add_head(&sp->hash_link,
		&vcpu->kvm->arch.mmu_page_hash[kvm_page_table_hashfn(gfn)]);
1395
	if (!direct) {
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		if (rmap_write_protect(vcpu->kvm, gfn))
			kvm_flush_remote_tlbs(vcpu->kvm);
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		if (level > PT_PAGE_TABLE_LEVEL && need_sync)
			kvm_sync_pages(vcpu, gfn);

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		account_shadowed(vcpu->kvm, gfn);
	}
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	if (shadow_trap_nonpresent_pte != shadow_notrap_nonpresent_pte)
		vcpu->arch.mmu.prefetch_page(vcpu, sp);
	else
		nonpaging_prefetch_page(vcpu, sp);
1407
	trace_kvm_mmu_get_page(sp, true);
1408
	return sp;
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}

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static void shadow_walk_init(struct kvm_shadow_walk_iterator *iterator,
			     struct kvm_vcpu *vcpu, u64 addr)
{
	iterator->addr = addr;
	iterator->shadow_addr = vcpu->arch.mmu.root_hpa;
	iterator->level = vcpu->arch.mmu.shadow_root_level;
	if (iterator->level == PT32E_ROOT_LEVEL) {
		iterator->shadow_addr
			= vcpu->arch.mmu.pae_root[(addr >> 30) & 3];
		iterator->shadow_addr &= PT64_BASE_ADDR_MASK;
		--iterator->level;
		if (!iterator->shadow_addr)
			iterator->level = 0;
	}
}

static bool shadow_walk_okay(struct kvm_shadow_walk_iterator *iterator)
{
	if (iterator->level < PT_PAGE_TABLE_LEVEL)
		return false;
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	if (iterator->level == PT_PAGE_TABLE_LEVEL)
		if (is_large_pte(*iterator->sptep))
			return false;

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	iterator->index = SHADOW_PT_INDEX(iterator->addr, iterator->level);
	iterator->sptep	= ((u64 *)__va(iterator->shadow_addr)) + iterator->index;
	return true;
}

static void shadow_walk_next(struct kvm_shadow_walk_iterator *iterator)
{
	iterator->shadow_addr = *iterator->sptep & PT64_BASE_ADDR_MASK;
	--iterator->level;
}

1447
static void kvm_mmu_page_unlink_children(struct kvm *kvm,
1448
					 struct kvm_mmu_page *sp)
1449
{
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	unsigned i;
	u64 *pt;
	u64 ent;

1454
	pt = sp->spt;
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	for (i = 0; i < PT64_ENT_PER_PAGE; ++i) {
		ent = pt[i];

1459
		if (is_shadow_present_pte(ent)) {
1460
			if (!is_last_spte(ent, sp->role.level)) {
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				ent &= PT64_BASE_ADDR_MASK;
				mmu_page_remove_parent_pte(page_header(ent),
							   &pt[i]);
			} else {
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				if (is_large_pte(ent))
					--kvm->stat.lpages;
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				rmap_remove(kvm, &pt[i]);
			}
		}
1470
		pt[i] = shadow_trap_nonpresent_pte;
1471
	}
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}

1474
static void kvm_mmu_put_page(struct kvm_mmu_page *sp, u64 *parent_pte)
1475
{
1476
	mmu_page_remove_parent_pte(sp, parent_pte);
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}

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static void kvm_mmu_reset_last_pte_updated(struct kvm *kvm)
{
	int i;
1482
	struct kvm_vcpu *vcpu;
1483

1484 1485
	kvm_for_each_vcpu(i, vcpu, kvm)
		vcpu->arch.last_pte_updated = NULL;
1486 1487
}

1488
static void kvm_mmu_unlink_parents(struct kvm *kvm, struct kvm_mmu_page *sp)
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{
	u64 *parent_pte;

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	while (sp->multimapped || sp->parent_pte) {
		if (!sp->multimapped)
			parent_pte = sp->parent_pte;
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		else {
			struct kvm_pte_chain *chain;

1498
			chain = container_of(sp->parent_ptes.first,
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					     struct kvm_pte_chain, link);
			parent_pte = chain->parent_ptes[0];
		}
1502
		BUG_ON(!parent_pte);
1503
		kvm_mmu_put_page(sp, parent_pte);
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1504
		__set_spte(parent_pte, shadow_trap_nonpresent_pte);
1505
	}
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}

1508
static int mmu_zap_unsync_children(struct kvm *kvm,
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				   struct kvm_mmu_page *parent,
				   struct list_head *invalid_list)
1511
{
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	int i, zapped = 0;
	struct mmu_page_path parents;
	struct kvm_mmu_pages pages;
1515

1516
	if (parent->role.level == PT_PAGE_TABLE_LEVEL)
1517
		return 0;
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	kvm_mmu_pages_init(parent, &parents, &pages);
	while (mmu_unsync_walk(parent, &pages)) {
		struct kvm_mmu_page *sp;

		for_each_sp(pages, sp, parents, i) {
1524
			kvm_mmu_prepare_zap_page(kvm, sp, invalid_list);
1525
			mmu_pages_clear_parents(&parents);
1526
			zapped++;
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		}
		kvm_mmu_pages_init(parent, &parents, &pages);
	}

	return zapped;
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}

1534 1535
static int kvm_mmu_prepare_zap_page(struct kvm *kvm, struct kvm_mmu_page *sp,
				    struct list_head *invalid_list)
1536
{
1537
	int ret;
1538

1539
	trace_kvm_mmu_prepare_zap_page(sp);
1540
	++kvm->stat.mmu_shadow_zapped;
1541
	ret = mmu_zap_unsync_children(kvm, sp, invalid_list);
1542
	kvm_mmu_page_unlink_children(kvm, sp);
1543
	kvm_mmu_unlink_parents(kvm, sp);
1544
	if (!sp->role.invalid && !sp->role.direct)
1545
		unaccount_shadowed(kvm, sp->gfn);
1546 1547
	if (sp->unsync)
		kvm_unlink_unsync_page(kvm, sp);
1548
	if (!sp->root_count) {
1549 1550
		/* Count self */
		ret++;
1551
		list_move(&sp->link, invalid_list);
1552
	} else {
1553
		list_move(&sp->link, &kvm->arch.active_mmu_pages);
1554 1555
		kvm_reload_remote_mmus(kvm);
	}
1556 1557

	sp->role.invalid = 1;
1558
	kvm_mmu_reset_last_pte_updated(kvm);
1559
	return ret;
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}

1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579
static void kvm_mmu_commit_zap_page(struct kvm *kvm,
				    struct list_head *invalid_list)
{
	struct kvm_mmu_page *sp;

	if (list_empty(invalid_list))
		return;

	kvm_flush_remote_tlbs(kvm);

	do {
		sp = list_first_entry(invalid_list, struct kvm_mmu_page, link);
		WARN_ON(!sp->role.invalid || sp->root_count);
		kvm_mmu_free_page(kvm, sp);
	} while (!list_empty(invalid_list));

}

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/*
 * Changing the number of mmu pages allocated to the vm
 * Note: if kvm_nr_mmu_pages is too small, you will get dead lock
 */
void kvm_mmu_change_mmu_pages(struct kvm *kvm, unsigned int kvm_nr_mmu_pages)
{
1586
	int used_pages;
1587
	LIST_HEAD(invalid_list);
1588 1589 1590 1591

	used_pages = kvm->arch.n_alloc_mmu_pages - kvm->arch.n_free_mmu_pages;
	used_pages = max(0, used_pages);

1592 1593 1594 1595 1596 1597
	/*
	 * If we set the number of mmu pages to be smaller be than the
	 * number of actived pages , we must to free some mmu pages before we
	 * change the value
	 */

1598
	if (used_pages > kvm_nr_mmu_pages) {
1599 1600
		while (used_pages > kvm_nr_mmu_pages &&
			!list_empty(&kvm->arch.active_mmu_pages)) {
1601 1602
			struct kvm_mmu_page *page;

1603
			page = container_of(kvm->arch.active_mmu_pages.prev,
1604
					    struct kvm_mmu_page, link);
1605 1606
			used_pages -= kvm_mmu_prepare_zap_page(kvm, page,
							       &invalid_list);
1607
		}
1608
		kvm_mmu_commit_zap_page(kvm, &invalid_list);
1609
		kvm_nr_mmu_pages = used_pages;
1610
		kvm->arch.n_free_mmu_pages = 0;
1611 1612
	}
	else
1613 1614
		kvm->arch.n_free_mmu_pages += kvm_nr_mmu_pages
					 - kvm->arch.n_alloc_mmu_pages;
1615

1616
	kvm->arch.n_alloc_mmu_pages = kvm_nr_mmu_pages;
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}

1619
static int kvm_mmu_unprotect_page(struct kvm *kvm, gfn_t gfn)
1620
{
1621
	struct kvm_mmu_page *sp;
1622
	struct hlist_node *node;
1623
	LIST_HEAD(invalid_list);
1624 1625
	int r;

1626
	pgprintk("%s: looking for gfn %lx\n", __func__, gfn);
1627
	r = 0;
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	for_each_gfn_indirect_valid_sp(kvm, sp, gfn, node) {
1630 1631 1632
		pgprintk("%s: gfn %lx role %x\n", __func__, gfn,
			 sp->role.word);
		r = 1;
1633
		kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list);
1634
	}
1635
	kvm_mmu_commit_zap_page(kvm, &invalid_list);
1636
	return r;
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}

1639
static void mmu_unshadow(struct kvm *kvm, gfn_t gfn)
1640
{
1641
	struct kvm_mmu_page *sp;
1642
	struct hlist_node *node;
1643
	LIST_HEAD(invalid_list);
1644

1645
	for_each_gfn_indirect_valid_sp(kvm, sp, gfn, node) {
1646 1647
		pgprintk("%s: zap %lx %x\n",
			 __func__, gfn, sp->role.word);
1648
		kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list);
1649
	}
1650
	kvm_mmu_commit_zap_page(kvm, &invalid_list);
1651 1652
}

1653
static void page_header_update_slot(struct kvm *kvm, void *pte, gfn_t gfn)
1654
{
1655
	int slot = memslot_id(kvm, gfn);
1656
	struct kvm_mmu_page *sp = page_header(__pa(pte));
1657

1658
	__set_bit(slot, sp->slot_bitmap);
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}

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static void mmu_convert_notrap(struct kvm_mmu_page *sp)
{
	int i;
	u64 *pt = sp->spt;

	if (shadow_trap_nonpresent_pte == shadow_notrap_nonpresent_pte)
		return;

	for (i = 0; i < PT64_ENT_PER_PAGE; ++i) {
		if (pt[i] == shadow_notrap_nonpresent_pte)
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1671
			__set_spte(&pt[i], shadow_trap_nonpresent_pte);
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	}
}

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/*
 * The function is based on mtrr_type_lookup() in
 * arch/x86/kernel/cpu/mtrr/generic.c
 */
static int get_mtrr_type(struct mtrr_state_type *mtrr_state,
			 u64 start, u64 end)
{
	int i;
	u64 base, mask;
	u8 prev_match, curr_match;
	int num_var_ranges = KVM_NR_VAR_MTRR;

	if (!mtrr_state->enabled)
		return 0xFF;

	/* Make end inclusive end, instead of exclusive */
	end--;

	/* Look in fixed ranges. Just return the type as per start */
	if (mtrr_state->have_fixed && (start < 0x100000)) {
		int idx;

		if (start < 0x80000) {
			idx = 0;
			idx += (start >> 16);
			return mtrr_state->fixed_ranges[idx];
		} else if (start < 0xC0000) {
			idx = 1 * 8;
			idx += ((start - 0x80000) >> 14);
			return mtrr_state->fixed_ranges[idx];
		} else if (start < 0x1000000) {
			idx = 3 * 8;
			idx += ((start - 0xC0000) >> 12);
			return mtrr_state->fixed_ranges[idx];
		}
	}

	/*
	 * Look in variable ranges
	 * Look of multiple ranges matching this address and pick type
	 * as per MTRR precedence
	 */
	if (!(mtrr_state->enabled & 2))
		return mtrr_state->def_type;

	prev_match = 0xFF;
	for (i = 0; i < num_var_ranges; ++i) {
		unsigned short start_state, end_state;

		if (!(mtrr_state->var_ranges[i].mask_lo & (1 << 11)))
			continue;

		base = (((u64)mtrr_state->var_ranges[i].base_hi) << 32) +
		       (mtrr_state->var_ranges[i].base_lo & PAGE_MASK);
		mask = (((u64)mtrr_state->var_ranges[i].mask_hi) << 32) +
		       (mtrr_state->var_ranges[i].mask_lo & PAGE_MASK);

		start_state = ((start & mask) == (base & mask));
		end_state = ((end & mask) == (base & mask));
		if (start_state != end_state)
			return 0xFE;

		if ((start & mask) != (base & mask))
			continue;

		curr_match = mtrr_state->var_ranges[i].base_lo & 0xff;
		if (prev_match == 0xFF) {
			prev_match = curr_match;
			continue;
		}

		if (prev_match == MTRR_TYPE_UNCACHABLE ||
		    curr_match == MTRR_TYPE_UNCACHABLE)
			return MTRR_TYPE_UNCACHABLE;

		if ((prev_match == MTRR_TYPE_WRBACK &&
		     curr_match == MTRR_TYPE_WRTHROUGH) ||
		    (prev_match == MTRR_TYPE_WRTHROUGH &&
		     curr_match == MTRR_TYPE_WRBACK)) {
			prev_match = MTRR_TYPE_WRTHROUGH;
			curr_match = MTRR_TYPE_WRTHROUGH;
		}

		if (prev_match != curr_match)
			return MTRR_TYPE_UNCACHABLE;
	}

	if (prev_match != 0xFF)
		return prev_match;

	return mtrr_state->def_type;
}

1768
u8 kvm_get_guest_memory_type(struct kvm_vcpu *vcpu, gfn_t gfn)
1769 1770 1771 1772 1773 1774 1775 1776 1777
{
	u8 mtrr;

	mtrr = get_mtrr_type(&vcpu->arch.mtrr_state, gfn << PAGE_SHIFT,
			     (gfn << PAGE_SHIFT) + PAGE_SIZE);
	if (mtrr == 0xfe || mtrr == 0xff)
		mtrr = MTRR_TYPE_WRBACK;
	return mtrr;
}
1778
EXPORT_SYMBOL_GPL(kvm_get_guest_memory_type);
1779

1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790
static void __kvm_unsync_page(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp)
{
	trace_kvm_mmu_unsync_page(sp);
	++vcpu->kvm->stat.mmu_unsync;
	sp->unsync = 1;

	kvm_mmu_mark_parents_unsync(sp);
	mmu_convert_notrap(sp);
}

static void kvm_unsync_pages(struct kvm_vcpu *vcpu,  gfn_t gfn)
1791 1792
{
	struct kvm_mmu_page *s;
1793
	struct hlist_node *node;
1794

1795
	for_each_gfn_indirect_valid_sp(vcpu->kvm, s, gfn, node) {
1796
		if (s->unsync)
1797
			continue;
1798 1799
		WARN_ON(s->role.level != PT_PAGE_TABLE_LEVEL);
		__kvm_unsync_page(vcpu, s);
1800 1801 1802 1803 1804 1805
	}
}

static int mmu_need_write_protect(struct kvm_vcpu *vcpu, gfn_t gfn,
				  bool can_unsync)
{
1806
	struct kvm_mmu_page *s;
1807
	struct hlist_node *node;
1808 1809
	bool need_unsync = false;

1810
	for_each_gfn_indirect_valid_sp(vcpu->kvm, s, gfn, node) {
1811 1812 1813
		if (!can_unsync)
			return 1;

1814
		if (s->role.level != PT_PAGE_TABLE_LEVEL)
1815
			return 1;
1816 1817

		if (!need_unsync && !s->unsync) {
1818
			if (!oos_shadow)
1819 1820 1821
				return 1;
			need_unsync = true;
		}
1822
	}
1823 1824
	if (need_unsync)
		kvm_unsync_pages(vcpu, gfn);
1825 1826 1827
	return 0;
}

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1828
static int set_spte(struct kvm_vcpu *vcpu, u64 *sptep,
1829
		    unsigned pte_access, int user_fault,
1830
		    int write_fault, int dirty, int level,
1831
		    gfn_t gfn, pfn_t pfn, bool speculative,
1832
		    bool can_unsync, bool reset_host_protection)
1833 1834
{
	u64 spte;
1835
	int ret = 0;
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1836

1837 1838 1839 1840 1841
	/*
	 * We don't set the accessed bit, since we sometimes want to see
	 * whether the guest actually used the pte (in order to detect
	 * demand paging).
	 */
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1842
	spte = shadow_base_present_pte | shadow_dirty_mask;
1843
	if (!speculative)
1844
		spte |= shadow_accessed_mask;
1845 1846
	if (!dirty)
		pte_access &= ~ACC_WRITE_MASK;
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1847 1848 1849 1850
	if (pte_access & ACC_EXEC_MASK)
		spte |= shadow_x_mask;
	else
		spte |= shadow_nx_mask;
1851
	if (pte_access & ACC_USER_MASK)
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1852
		spte |= shadow_user_mask;
1853
	if (level > PT_PAGE_TABLE_LEVEL)
1854
		spte |= PT_PAGE_SIZE_MASK;
1855 1856 1857
	if (tdp_enabled)
		spte |= kvm_x86_ops->get_mt_mask(vcpu, gfn,
			kvm_is_mmio_pfn(pfn));
1858

1859 1860 1861
	if (reset_host_protection)
		spte |= SPTE_HOST_WRITEABLE;

1862
	spte |= (u64)pfn << PAGE_SHIFT;
1863 1864

	if ((pte_access & ACC_WRITE_MASK)
1865 1866
	    || (!tdp_enabled && write_fault && !is_write_protection(vcpu)
		&& !user_fault)) {
1867

1868 1869
		if (level > PT_PAGE_TABLE_LEVEL &&
		    has_wrprotected_page(vcpu->kvm, gfn, level)) {
1870
			ret = 1;
1871
			rmap_remove(vcpu->kvm, sptep);
1872 1873 1874 1875
			spte = shadow_trap_nonpresent_pte;
			goto set_pte;
		}

1876 1877
		spte |= PT_WRITABLE_MASK;

1878 1879 1880
		if (!tdp_enabled && !(pte_access & ACC_WRITE_MASK))
			spte &= ~PT_USER_MASK;

1881 1882 1883 1884 1885 1886
		/*
		 * Optimization: for pte sync, if spte was writable the hash
		 * lookup is unnecessary (and expensive). Write protection
		 * is responsibility of mmu_get_page / kvm_sync_page.
		 * Same reasoning can be applied to dirty page accounting.
		 */
1887
		if (!can_unsync && is_writable_pte(*sptep))
1888 1889
			goto set_pte;

1890
		if (mmu_need_write_protect(vcpu, gfn, can_unsync)) {
1891
			pgprintk("%s: found shadow page for %lx, marking ro\n",
1892
				 __func__, gfn);
1893
			ret = 1;
1894
			pte_access &= ~ACC_WRITE_MASK;
1895
			if (is_writable_pte(spte))
1896 1897 1898 1899 1900 1901 1902
				spte &= ~PT_WRITABLE_MASK;
		}
	}

	if (pte_access & ACC_WRITE_MASK)
		mark_page_dirty(vcpu->kvm, gfn);

1903
set_pte:
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1904
	__set_spte(sptep, spte);
1905 1906 1907
	return ret;
}

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1908
static void mmu_set_spte(struct kvm_vcpu *vcpu, u64 *sptep,
1909 1910
			 unsigned pt_access, unsigned pte_access,
			 int user_fault, int write_fault, int dirty,
1911
			 int *ptwrite, int level, gfn_t gfn,
1912 1913
			 pfn_t pfn, bool speculative,
			 bool reset_host_protection)
1914 1915
{
	int was_rmapped = 0;
1916
	int was_writable = is_writable_pte(*sptep);
1917
	int rmap_count;
1918 1919 1920

	pgprintk("%s: spte %llx access %x write_fault %d"
		 " user_fault %d gfn %lx\n",
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1921
		 __func__, *sptep, pt_access,
1922 1923
		 write_fault, user_fault, gfn);

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1924
	if (is_rmap_spte(*sptep)) {
1925 1926 1927 1928
		/*
		 * If we overwrite a PTE page pointer with a 2MB PMD, unlink
		 * the parent of the now unreachable PTE.
		 */
1929 1930
		if (level > PT_PAGE_TABLE_LEVEL &&
		    !is_large_pte(*sptep)) {
1931
			struct kvm_mmu_page *child;
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1932
			u64 pte = *sptep;
1933 1934

			child = page_header(pte & PT64_BASE_ADDR_MASK);
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1935
			mmu_page_remove_parent_pte(child, sptep);
1936 1937
			__set_spte(sptep, shadow_trap_nonpresent_pte);
			kvm_flush_remote_tlbs(vcpu->kvm);
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1938
		} else if (pfn != spte_to_pfn(*sptep)) {
1939
			pgprintk("hfn old %lx new %lx\n",
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1940 1941
				 spte_to_pfn(*sptep), pfn);
			rmap_remove(vcpu->kvm, sptep);
1942 1943
			__set_spte(sptep, shadow_trap_nonpresent_pte);
			kvm_flush_remote_tlbs(vcpu->kvm);
1944 1945
		} else
			was_rmapped = 1;
1946
	}
1947

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1948
	if (set_spte(vcpu, sptep, pte_access, user_fault, write_fault,
1949 1950
		      dirty, level, gfn, pfn, speculative, true,
		      reset_host_protection)) {
1951 1952
		if (write_fault)
			*ptwrite = 1;
1953
		kvm_mmu_flush_tlb(vcpu);
1954
	}
1955

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1956
	pgprintk("%s: setting spte %llx\n", __func__, *sptep);
1957
	pgprintk("instantiating %s PTE (%s) at %ld (%llx) addr %p\n",
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1958
		 is_large_pte(*sptep)? "2MB" : "4kB",
1959 1960
		 *sptep & PT_PRESENT_MASK ?"RW":"R", gfn,
		 *sptep, sptep);
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1961
	if (!was_rmapped && is_large_pte(*sptep))
1962 1963
		++vcpu->kvm->stat.lpages;

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1964
	page_header_update_slot(vcpu->kvm, sptep, gfn);
1965
	if (!was_rmapped) {
1966
		rmap_count = rmap_add(vcpu, sptep, gfn);
1967
		kvm_release_pfn_clean(pfn);
1968
		if (rmap_count > RMAP_RECYCLE_THRESHOLD)
1969
			rmap_recycle(vcpu, sptep, gfn);
1970
	} else {
1971
		if (was_writable)
1972
			kvm_release_pfn_dirty(pfn);
1973
		else
1974
			kvm_release_pfn_clean(pfn);
1975
	}
1976
	if (speculative) {
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1977
		vcpu->arch.last_pte_updated = sptep;
1978 1979
		vcpu->arch.last_pte_gfn = gfn;
	}
1980 1981
}

1982 1983 1984 1985
static void nonpaging_new_cr3(struct kvm_vcpu *vcpu)
{
}

1986
static int __direct_map(struct kvm_vcpu *vcpu, gpa_t v, int write,
1987
			int level, gfn_t gfn, pfn_t pfn)
1988
{
1989
	struct kvm_shadow_walk_iterator iterator;
1990
	struct kvm_mmu_page *sp;
1991
	int pt_write = 0;
1992
	gfn_t pseudo_gfn;
1993

1994
	for_each_shadow_entry(vcpu, (u64)gfn << PAGE_SHIFT, iterator) {
1995
		if (iterator.level == level) {
1996 1997
			mmu_set_spte(vcpu, iterator.sptep, ACC_ALL, ACC_ALL,
				     0, write, 1, &pt_write,
1998
				     level, gfn, pfn, false, true);
1999 2000
			++vcpu->stat.pf_fixed;
			break;
2001 2002
		}

2003
		if (*iterator.sptep == shadow_trap_nonpresent_pte) {
2004 2005 2006 2007
			u64 base_addr = iterator.addr;

			base_addr &= PT64_LVL_ADDR_MASK(iterator.level);
			pseudo_gfn = base_addr >> PAGE_SHIFT;
2008 2009 2010 2011 2012 2013 2014 2015
			sp = kvm_mmu_get_page(vcpu, pseudo_gfn, iterator.addr,
					      iterator.level - 1,
					      1, ACC_ALL, iterator.sptep);
			if (!sp) {
				pgprintk("nonpaging_map: ENOMEM\n");
				kvm_release_pfn_clean(pfn);
				return -ENOMEM;
			}
2016

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2017 2018 2019 2020
			__set_spte(iterator.sptep,
				   __pa(sp->spt)
				   | PT_PRESENT_MASK | PT_WRITABLE_MASK
				   | shadow_user_mask | shadow_x_mask);
2021 2022 2023
		}
	}
	return pt_write;
2024 2025
}

2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046
static void kvm_send_hwpoison_signal(struct kvm *kvm, gfn_t gfn)
{
	char buf[1];
	void __user *hva;
	int r;

	/* Touch the page, so send SIGBUS */
	hva = (void __user *)gfn_to_hva(kvm, gfn);
	r = copy_from_user(buf, hva, 1);
}

static int kvm_handle_bad_page(struct kvm *kvm, gfn_t gfn, pfn_t pfn)
{
	kvm_release_pfn_clean(pfn);
	if (is_hwpoison_pfn(pfn)) {
		kvm_send_hwpoison_signal(kvm, gfn);
		return 0;
	}
	return 1;
}

2047 2048 2049
static int nonpaging_map(struct kvm_vcpu *vcpu, gva_t v, int write, gfn_t gfn)
{
	int r;
2050
	int level;
2051
	pfn_t pfn;
2052
	unsigned long mmu_seq;
2053

2054 2055 2056 2057 2058 2059 2060 2061 2062 2063
	level = mapping_level(vcpu, gfn);

	/*
	 * This path builds a PAE pagetable - so we can map 2mb pages at
	 * maximum. Therefore check if the level is larger than that.
	 */
	if (level > PT_DIRECTORY_LEVEL)
		level = PT_DIRECTORY_LEVEL;

	gfn &= ~(KVM_PAGES_PER_HPAGE(level) - 1);
2064

2065
	mmu_seq = vcpu->kvm->mmu_notifier_seq;
2066
	smp_rmb();
2067
	pfn = gfn_to_pfn(vcpu->kvm, gfn);
2068

2069
	/* mmio */
2070 2071
	if (is_error_pfn(pfn))
		return kvm_handle_bad_page(vcpu->kvm, gfn, pfn);
2072

2073
	spin_lock(&vcpu->kvm->mmu_lock);
2074 2075
	if (mmu_notifier_retry(vcpu, mmu_seq))
		goto out_unlock;
2076
	kvm_mmu_free_some_pages(vcpu);
2077
	r = __direct_map(vcpu, v, write, level, gfn, pfn);
2078 2079 2080
	spin_unlock(&vcpu->kvm->mmu_lock);


2081
	return r;
2082 2083 2084 2085 2086

out_unlock:
	spin_unlock(&vcpu->kvm->mmu_lock);
	kvm_release_pfn_clean(pfn);
	return 0;
2087 2088 2089
}


2090 2091 2092
static void mmu_free_roots(struct kvm_vcpu *vcpu)
{
	int i;
2093
	struct kvm_mmu_page *sp;
2094
	LIST_HEAD(invalid_list);
2095

2096
	if (!VALID_PAGE(vcpu->arch.mmu.root_hpa))
2097
		return;
2098
	spin_lock(&vcpu->kvm->mmu_lock);
2099 2100
	if (vcpu->arch.mmu.shadow_root_level == PT64_ROOT_LEVEL) {
		hpa_t root = vcpu->arch.mmu.root_hpa;
2101

2102 2103
		sp = page_header(root);
		--sp->root_count;
2104 2105 2106 2107
		if (!sp->root_count && sp->role.invalid) {
			kvm_mmu_prepare_zap_page(vcpu->kvm, sp, &invalid_list);
			kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
		}
2108
		vcpu->arch.mmu.root_hpa = INVALID_PAGE;
2109
		spin_unlock(&vcpu->kvm->mmu_lock);
2110 2111 2112
		return;
	}
	for (i = 0; i < 4; ++i) {
2113
		hpa_t root = vcpu->arch.mmu.pae_root[i];
2114

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2115 2116
		if (root) {
			root &= PT64_BASE_ADDR_MASK;
2117 2118
			sp = page_header(root);
			--sp->root_count;
2119
			if (!sp->root_count && sp->role.invalid)
2120 2121
				kvm_mmu_prepare_zap_page(vcpu->kvm, sp,
							 &invalid_list);
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2122
		}
2123
		vcpu->arch.mmu.pae_root[i] = INVALID_PAGE;
2124
	}
2125
	kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
2126
	spin_unlock(&vcpu->kvm->mmu_lock);
2127
	vcpu->arch.mmu.root_hpa = INVALID_PAGE;
2128 2129
}

2130 2131 2132 2133 2134
static int mmu_check_root(struct kvm_vcpu *vcpu, gfn_t root_gfn)
{
	int ret = 0;

	if (!kvm_is_visible_gfn(vcpu->kvm, root_gfn)) {
2135
		kvm_make_request(KVM_REQ_TRIPLE_FAULT, vcpu);
2136 2137 2138 2139 2140 2141 2142
		ret = 1;
	}

	return ret;
}

static int mmu_alloc_roots(struct kvm_vcpu *vcpu)
2143 2144
{
	int i;
2145
	gfn_t root_gfn;
2146
	struct kvm_mmu_page *sp;
2147
	int direct = 0;
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2148
	u64 pdptr;
2149

2150
	root_gfn = vcpu->arch.cr3 >> PAGE_SHIFT;
2151

2152 2153
	if (vcpu->arch.mmu.shadow_root_level == PT64_ROOT_LEVEL) {
		hpa_t root = vcpu->arch.mmu.root_hpa;
2154 2155

		ASSERT(!VALID_PAGE(root));
2156 2157
		if (mmu_check_root(vcpu, root_gfn))
			return 1;
2158 2159 2160 2161
		if (tdp_enabled) {
			direct = 1;
			root_gfn = 0;
		}
2162
		spin_lock(&vcpu->kvm->mmu_lock);
2163
		kvm_mmu_free_some_pages(vcpu);
2164
		sp = kvm_mmu_get_page(vcpu, root_gfn, 0,
2165
				      PT64_ROOT_LEVEL, direct,
2166
				      ACC_ALL, NULL);
2167 2168
		root = __pa(sp->spt);
		++sp->root_count;
2169
		spin_unlock(&vcpu->kvm->mmu_lock);
2170
		vcpu->arch.mmu.root_hpa = root;
2171
		return 0;
2172
	}
2173
	direct = !is_paging(vcpu);
2174
	for (i = 0; i < 4; ++i) {
2175
		hpa_t root = vcpu->arch.mmu.pae_root[i];
2176 2177

		ASSERT(!VALID_PAGE(root));
2178
		if (vcpu->arch.mmu.root_level == PT32E_ROOT_LEVEL) {
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2179
			pdptr = kvm_pdptr_read(vcpu, i);
2180
			if (!is_present_gpte(pdptr)) {
2181
				vcpu->arch.mmu.pae_root[i] = 0;
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2182 2183
				continue;
			}
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2184
			root_gfn = pdptr >> PAGE_SHIFT;
2185
		} else if (vcpu->arch.mmu.root_level == 0)
2186
			root_gfn = 0;
2187 2188
		if (mmu_check_root(vcpu, root_gfn))
			return 1;
2189 2190 2191 2192
		if (tdp_enabled) {
			direct = 1;
			root_gfn = i << 30;
		}
2193
		spin_lock(&vcpu->kvm->mmu_lock);
2194
		kvm_mmu_free_some_pages(vcpu);
2195
		sp = kvm_mmu_get_page(vcpu, root_gfn, i << 30,
2196
				      PT32_ROOT_LEVEL, direct,
2197
				      ACC_ALL, NULL);
2198 2199
		root = __pa(sp->spt);
		++sp->root_count;
2200 2201
		spin_unlock(&vcpu->kvm->mmu_lock);

2202
		vcpu->arch.mmu.pae_root[i] = root | PT_PRESENT_MASK;
2203
	}
2204
	vcpu->arch.mmu.root_hpa = __pa(vcpu->arch.mmu.pae_root);
2205
	return 0;
2206 2207
}

2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223
static void mmu_sync_roots(struct kvm_vcpu *vcpu)
{
	int i;
	struct kvm_mmu_page *sp;

	if (!VALID_PAGE(vcpu->arch.mmu.root_hpa))
		return;
	if (vcpu->arch.mmu.shadow_root_level == PT64_ROOT_LEVEL) {
		hpa_t root = vcpu->arch.mmu.root_hpa;
		sp = page_header(root);
		mmu_sync_children(vcpu, sp);
		return;
	}
	for (i = 0; i < 4; ++i) {
		hpa_t root = vcpu->arch.mmu.pae_root[i];

2224
		if (root && VALID_PAGE(root)) {
2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235
			root &= PT64_BASE_ADDR_MASK;
			sp = page_header(root);
			mmu_sync_children(vcpu, sp);
		}
	}
}

void kvm_mmu_sync_roots(struct kvm_vcpu *vcpu)
{
	spin_lock(&vcpu->kvm->mmu_lock);
	mmu_sync_roots(vcpu);
2236
	spin_unlock(&vcpu->kvm->mmu_lock);
2237 2238
}

2239 2240
static gpa_t nonpaging_gva_to_gpa(struct kvm_vcpu *vcpu, gva_t vaddr,
				  u32 access, u32 *error)
2241
{
2242 2243
	if (error)
		*error = 0;
2244 2245 2246 2247
	return vaddr;
}

static int nonpaging_page_fault(struct kvm_vcpu *vcpu, gva_t gva,
2248
				u32 error_code)
2249
{
2250
	gfn_t gfn;
2251
	int r;
2252

2253
	pgprintk("%s: gva %lx error %x\n", __func__, gva, error_code);
2254 2255 2256
	r = mmu_topup_memory_caches(vcpu);
	if (r)
		return r;
2257

2258
	ASSERT(vcpu);
2259
	ASSERT(VALID_PAGE(vcpu->arch.mmu.root_hpa));
2260

2261
	gfn = gva >> PAGE_SHIFT;
2262

2263 2264
	return nonpaging_map(vcpu, gva & PAGE_MASK,
			     error_code & PFERR_WRITE_MASK, gfn);
2265 2266
}

2267 2268 2269
static int tdp_page_fault(struct kvm_vcpu *vcpu, gva_t gpa,
				u32 error_code)
{
2270
	pfn_t pfn;
2271
	int r;
2272
	int level;
2273
	gfn_t gfn = gpa >> PAGE_SHIFT;
2274
	unsigned long mmu_seq;
2275 2276 2277 2278 2279 2280 2281 2282

	ASSERT(vcpu);
	ASSERT(VALID_PAGE(vcpu->arch.mmu.root_hpa));

	r = mmu_topup_memory_caches(vcpu);
	if (r)
		return r;

2283 2284 2285 2286
	level = mapping_level(vcpu, gfn);

	gfn &= ~(KVM_PAGES_PER_HPAGE(level) - 1);

2287
	mmu_seq = vcpu->kvm->mmu_notifier_seq;
2288
	smp_rmb();
2289
	pfn = gfn_to_pfn(vcpu->kvm, gfn);
2290 2291
	if (is_error_pfn(pfn))
		return kvm_handle_bad_page(vcpu->kvm, gfn, pfn);
2292
	spin_lock(&vcpu->kvm->mmu_lock);
2293 2294
	if (mmu_notifier_retry(vcpu, mmu_seq))
		goto out_unlock;
2295 2296
	kvm_mmu_free_some_pages(vcpu);
	r = __direct_map(vcpu, gpa, error_code & PFERR_WRITE_MASK,
2297
			 level, gfn, pfn);
2298 2299 2300
	spin_unlock(&vcpu->kvm->mmu_lock);

	return r;
2301 2302 2303 2304 2305

out_unlock:
	spin_unlock(&vcpu->kvm->mmu_lock);
	kvm_release_pfn_clean(pfn);
	return 0;
2306 2307
}

2308 2309
static void nonpaging_free(struct kvm_vcpu *vcpu)
{
2310
	mmu_free_roots(vcpu);
2311 2312 2313 2314
}

static int nonpaging_init_context(struct kvm_vcpu *vcpu)
{
2315
	struct kvm_mmu *context = &vcpu->arch.mmu;
2316 2317 2318 2319 2320

	context->new_cr3 = nonpaging_new_cr3;
	context->page_fault = nonpaging_page_fault;
	context->gva_to_gpa = nonpaging_gva_to_gpa;
	context->free = nonpaging_free;
2321
	context->prefetch_page = nonpaging_prefetch_page;
2322
	context->sync_page = nonpaging_sync_page;
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2323
	context->invlpg = nonpaging_invlpg;
2324
	context->root_level = 0;
2325
	context->shadow_root_level = PT32E_ROOT_LEVEL;
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2326
	context->root_hpa = INVALID_PAGE;
2327 2328 2329
	return 0;
}

2330
void kvm_mmu_flush_tlb(struct kvm_vcpu *vcpu)
2331
{
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2332
	++vcpu->stat.tlb_flush;
2333
	kvm_make_request(KVM_REQ_TLB_FLUSH, vcpu);
2334 2335 2336 2337
}

static void paging_new_cr3(struct kvm_vcpu *vcpu)
{
2338
	pgprintk("%s: cr3 %lx\n", __func__, vcpu->arch.cr3);
2339
	mmu_free_roots(vcpu);
2340 2341 2342 2343 2344 2345
}

static void inject_page_fault(struct kvm_vcpu *vcpu,
			      u64 addr,
			      u32 err_code)
{
2346
	kvm_inject_page_fault(vcpu, addr, err_code);
2347 2348 2349 2350 2351 2352 2353
}

static void paging_free(struct kvm_vcpu *vcpu)
{
	nonpaging_free(vcpu);
}

2354 2355 2356 2357 2358 2359 2360 2361
static bool is_rsvd_bits_set(struct kvm_vcpu *vcpu, u64 gpte, int level)
{
	int bit7;

	bit7 = (gpte >> 7) & 1;
	return (gpte & vcpu->arch.mmu.rsvd_bits_mask[bit7][level-1]) != 0;
}

2362 2363 2364 2365 2366 2367 2368 2369
#define PTTYPE 64
#include "paging_tmpl.h"
#undef PTTYPE

#define PTTYPE 32
#include "paging_tmpl.h"
#undef PTTYPE

2370 2371 2372 2373 2374 2375 2376 2377 2378 2379 2380 2381 2382
static void reset_rsvds_bits_mask(struct kvm_vcpu *vcpu, int level)
{
	struct kvm_mmu *context = &vcpu->arch.mmu;
	int maxphyaddr = cpuid_maxphyaddr(vcpu);
	u64 exb_bit_rsvd = 0;

	if (!is_nx(vcpu))
		exb_bit_rsvd = rsvd_bits(63, 63);
	switch (level) {
	case PT32_ROOT_LEVEL:
		/* no rsvd bits for 2 level 4K page table entries */
		context->rsvd_bits_mask[0][1] = 0;
		context->rsvd_bits_mask[0][0] = 0;
2383 2384 2385 2386 2387 2388 2389
		context->rsvd_bits_mask[1][0] = context->rsvd_bits_mask[0][0];

		if (!is_pse(vcpu)) {
			context->rsvd_bits_mask[1][1] = 0;
			break;
		}

2390 2391 2392 2393 2394 2395 2396 2397
		if (is_cpuid_PSE36())
			/* 36bits PSE 4MB page */
			context->rsvd_bits_mask[1][1] = rsvd_bits(17, 21);
		else
			/* 32 bits PSE 4MB page */
			context->rsvd_bits_mask[1][1] = rsvd_bits(13, 21);
		break;
	case PT32E_ROOT_LEVEL:
2398 2399 2400
		context->rsvd_bits_mask[0][2] =
			rsvd_bits(maxphyaddr, 63) |
			rsvd_bits(7, 8) | rsvd_bits(1, 2);	/* PDPTE */
2401
		context->rsvd_bits_mask[0][1] = exb_bit_rsvd |
2402
			rsvd_bits(maxphyaddr, 62);	/* PDE */
2403 2404 2405 2406 2407
		context->rsvd_bits_mask[0][0] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 62); 	/* PTE */
		context->rsvd_bits_mask[1][1] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 62) |
			rsvd_bits(13, 20);		/* large page */
2408
		context->rsvd_bits_mask[1][0] = context->rsvd_bits_mask[0][0];
2409 2410 2411 2412 2413 2414 2415
		break;
	case PT64_ROOT_LEVEL:
		context->rsvd_bits_mask[0][3] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 51) | rsvd_bits(7, 8);
		context->rsvd_bits_mask[0][2] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 51) | rsvd_bits(7, 8);
		context->rsvd_bits_mask[0][1] = exb_bit_rsvd |
2416
			rsvd_bits(maxphyaddr, 51);
2417 2418 2419
		context->rsvd_bits_mask[0][0] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 51);
		context->rsvd_bits_mask[1][3] = context->rsvd_bits_mask[0][3];
2420 2421 2422
		context->rsvd_bits_mask[1][2] = exb_bit_rsvd |
			rsvd_bits(maxphyaddr, 51) |
			rsvd_bits(13, 29);
2423
		context->rsvd_bits_mask[1][1] = exb_bit_rsvd |
2424 2425
			rsvd_bits(maxphyaddr, 51) |
			rsvd_bits(13, 20);		/* large page */
2426
		context->rsvd_bits_mask[1][0] = context->rsvd_bits_mask[0][0];
2427 2428 2429 2430
		break;
	}
}

2431
static int paging64_init_context_common(struct kvm_vcpu *vcpu, int level)
2432
{
2433
	struct kvm_mmu *context = &vcpu->arch.mmu;
2434 2435 2436 2437 2438

	ASSERT(is_pae(vcpu));
	context->new_cr3 = paging_new_cr3;
	context->page_fault = paging64_page_fault;
	context->gva_to_gpa = paging64_gva_to_gpa;
2439
	context->prefetch_page = paging64_prefetch_page;
2440
	context->sync_page = paging64_sync_page;
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2441
	context->invlpg = paging64_invlpg;
2442
	context->free = paging_free;
2443 2444
	context->root_level = level;
	context->shadow_root_level = level;
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2445
	context->root_hpa = INVALID_PAGE;
2446 2447 2448
	return 0;
}

2449 2450
static int paging64_init_context(struct kvm_vcpu *vcpu)
{
2451
	reset_rsvds_bits_mask(vcpu, PT64_ROOT_LEVEL);
2452 2453 2454
	return paging64_init_context_common(vcpu, PT64_ROOT_LEVEL);
}

2455 2456
static int paging32_init_context(struct kvm_vcpu *vcpu)
{
2457
	struct kvm_mmu *context = &vcpu->arch.mmu;
2458

2459
	reset_rsvds_bits_mask(vcpu, PT32_ROOT_LEVEL);
2460 2461 2462 2463
	context->new_cr3 = paging_new_cr3;
	context->page_fault = paging32_page_fault;
	context->gva_to_gpa = paging32_gva_to_gpa;
	context->free = paging_free;
2464
	context->prefetch_page = paging32_prefetch_page;
2465
	context->sync_page = paging32_sync_page;
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2466
	context->invlpg = paging32_invlpg;
2467 2468
	context->root_level = PT32_ROOT_LEVEL;
	context->shadow_root_level = PT32E_ROOT_LEVEL;
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2469
	context->root_hpa = INVALID_PAGE;
2470 2471 2472 2473 2474
	return 0;
}

static int paging32E_init_context(struct kvm_vcpu *vcpu)
{
2475
	reset_rsvds_bits_mask(vcpu, PT32E_ROOT_LEVEL);
2476
	return paging64_init_context_common(vcpu, PT32E_ROOT_LEVEL);
2477 2478
}

2479 2480 2481 2482 2483 2484 2485 2486
static int init_kvm_tdp_mmu(struct kvm_vcpu *vcpu)
{
	struct kvm_mmu *context = &vcpu->arch.mmu;

	context->new_cr3 = nonpaging_new_cr3;
	context->page_fault = tdp_page_fault;
	context->free = nonpaging_free;
	context->prefetch_page = nonpaging_prefetch_page;
2487
	context->sync_page = nonpaging_sync_page;
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2488
	context->invlpg = nonpaging_invlpg;
2489
	context->shadow_root_level = kvm_x86_ops->get_tdp_level();
2490 2491 2492 2493 2494 2495
	context->root_hpa = INVALID_PAGE;

	if (!is_paging(vcpu)) {
		context->gva_to_gpa = nonpaging_gva_to_gpa;
		context->root_level = 0;
	} else if (is_long_mode(vcpu)) {
2496
		reset_rsvds_bits_mask(vcpu, PT64_ROOT_LEVEL);
2497 2498 2499
		context->gva_to_gpa = paging64_gva_to_gpa;
		context->root_level = PT64_ROOT_LEVEL;
	} else if (is_pae(vcpu)) {
2500
		reset_rsvds_bits_mask(vcpu, PT32E_ROOT_LEVEL);
2501 2502 2503
		context->gva_to_gpa = paging64_gva_to_gpa;
		context->root_level = PT32E_ROOT_LEVEL;
	} else {
2504
		reset_rsvds_bits_mask(vcpu, PT32_ROOT_LEVEL);
2505 2506 2507 2508 2509 2510 2511 2512
		context->gva_to_gpa = paging32_gva_to_gpa;
		context->root_level = PT32_ROOT_LEVEL;
	}

	return 0;
}

static int init_kvm_softmmu(struct kvm_vcpu *vcpu)
2513
{
2514 2515
	int r;

2516
	ASSERT(vcpu);
2517
	ASSERT(!VALID_PAGE(vcpu->arch.mmu.root_hpa));
2518 2519

	if (!is_paging(vcpu))
2520
		r = nonpaging_init_context(vcpu);
2521
	else if (is_long_mode(vcpu))
2522
		r = paging64_init_context(vcpu);
2523
	else if (is_pae(vcpu))
2524
		r = paging32E_init_context(vcpu);
2525
	else
2526 2527
		r = paging32_init_context(vcpu);

2528
	vcpu->arch.mmu.base_role.cr4_pae = !!is_pae(vcpu);
2529
	vcpu->arch.mmu.base_role.cr0_wp = is_write_protection(vcpu);
2530 2531

	return r;
2532 2533
}

2534 2535
static int init_kvm_mmu(struct kvm_vcpu *vcpu)
{
2536 2537
	vcpu->arch.update_pte.pfn = bad_pfn;

2538 2539 2540 2541 2542 2543
	if (tdp_enabled)
		return init_kvm_tdp_mmu(vcpu);
	else
		return init_kvm_softmmu(vcpu);
}

2544 2545 2546
static void destroy_kvm_mmu(struct kvm_vcpu *vcpu)
{
	ASSERT(vcpu);
2547 2548
	if (VALID_PAGE(vcpu->arch.mmu.root_hpa))
		/* mmu.free() should set root_hpa = INVALID_PAGE */
2549
		vcpu->arch.mmu.free(vcpu);
2550 2551 2552
}

int kvm_mmu_reset_context(struct kvm_vcpu *vcpu)
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2553 2554 2555 2556
{
	destroy_kvm_mmu(vcpu);
	return init_kvm_mmu(vcpu);
}
2557
EXPORT_SYMBOL_GPL(kvm_mmu_reset_context);
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2558 2559

int kvm_mmu_load(struct kvm_vcpu *vcpu)
2560
{
2561 2562
	int r;

2563
	r = mmu_topup_memory_caches(vcpu);
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2564 2565
	if (r)
		goto out;
2566
	r = mmu_alloc_roots(vcpu);
2567
	spin_lock(&vcpu->kvm->mmu_lock);
2568
	mmu_sync_roots(vcpu);
2569
	spin_unlock(&vcpu->kvm->mmu_lock);
2570 2571
	if (r)
		goto out;
2572
	/* set_cr3() should ensure TLB has been flushed */
2573
	kvm_x86_ops->set_cr3(vcpu, vcpu->arch.mmu.root_hpa);
2574 2575
out:
	return r;
2576
}
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2577 2578 2579 2580 2581 2582
EXPORT_SYMBOL_GPL(kvm_mmu_load);

void kvm_mmu_unload(struct kvm_vcpu *vcpu)
{
	mmu_free_roots(vcpu);
}
2583

2584
static void mmu_pte_write_zap_pte(struct kvm_vcpu *vcpu,
2585
				  struct kvm_mmu_page *sp,
2586 2587 2588 2589 2590 2591
				  u64 *spte)
{
	u64 pte;
	struct kvm_mmu_page *child;

	pte = *spte;
2592
	if (is_shadow_present_pte(pte)) {
2593
		if (is_last_spte(pte, sp->role.level))
2594
			rmap_remove(vcpu->kvm, spte);
2595 2596
		else {
			child = page_header(pte & PT64_BASE_ADDR_MASK);
2597
			mmu_page_remove_parent_pte(child, spte);
2598 2599
		}
	}
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2600
	__set_spte(spte, shadow_trap_nonpresent_pte);
2601 2602
	if (is_large_pte(pte))
		--vcpu->kvm->stat.lpages;
2603 2604
}

2605
static void mmu_pte_write_new_pte(struct kvm_vcpu *vcpu,
2606
				  struct kvm_mmu_page *sp,
2607
				  u64 *spte,
2608
				  const void *new)
2609
{
2610
	if (sp->role.level != PT_PAGE_TABLE_LEVEL) {
2611 2612
		++vcpu->kvm->stat.mmu_pde_zapped;
		return;
2613
        }
2614

2615
	++vcpu->kvm->stat.mmu_pte_updated;
2616
	if (!sp->role.cr4_pae)
2617
		paging32_update_pte(vcpu, sp, spte, new);
2618
	else
2619
		paging64_update_pte(vcpu, sp, spte, new);
2620 2621
}

2622 2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634
static bool need_remote_flush(u64 old, u64 new)
{
	if (!is_shadow_present_pte(old))
		return false;
	if (!is_shadow_present_pte(new))
		return true;
	if ((old ^ new) & PT64_BASE_ADDR_MASK)
		return true;
	old ^= PT64_NX_MASK;
	new ^= PT64_NX_MASK;
	return (old & ~new & PT64_PERM_MASK) != 0;
}

2635 2636
static void mmu_pte_write_flush_tlb(struct kvm_vcpu *vcpu, bool zap_page,
				    bool remote_flush, bool local_flush)
2637
{
2638 2639 2640 2641
	if (zap_page)
		return;

	if (remote_flush)
2642
		kvm_flush_remote_tlbs(vcpu->kvm);
2643
	else if (local_flush)
2644 2645 2646
		kvm_mmu_flush_tlb(vcpu);
}

2647 2648
static bool last_updated_pte_accessed(struct kvm_vcpu *vcpu)
{
2649
	u64 *spte = vcpu->arch.last_pte_updated;
2650

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2651
	return !!(spte && (*spte & shadow_accessed_mask));
2652 2653
}

2654
static void mmu_guess_page_from_pte_write(struct kvm_vcpu *vcpu, gpa_t gpa,
2655
					  u64 gpte)
2656 2657
{
	gfn_t gfn;
2658
	pfn_t pfn;
2659

2660
	if (!is_present_gpte(gpte))
2661 2662
		return;
	gfn = (gpte & PT64_BASE_ADDR_MASK) >> PAGE_SHIFT;
2663

2664
	vcpu->arch.update_pte.mmu_seq = vcpu->kvm->mmu_notifier_seq;
2665
	smp_rmb();
2666
	pfn = gfn_to_pfn(vcpu->kvm, gfn);
2667

2668 2669
	if (is_error_pfn(pfn)) {
		kvm_release_pfn_clean(pfn);
2670 2671
		return;
	}
2672
	vcpu->arch.update_pte.gfn = gfn;
2673
	vcpu->arch.update_pte.pfn = pfn;
2674 2675
}

2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687
static void kvm_mmu_access_page(struct kvm_vcpu *vcpu, gfn_t gfn)
{
	u64 *spte = vcpu->arch.last_pte_updated;

	if (spte
	    && vcpu->arch.last_pte_gfn == gfn
	    && shadow_accessed_mask
	    && !(*spte & shadow_accessed_mask)
	    && is_shadow_present_pte(*spte))
		set_bit(PT_ACCESSED_SHIFT, (unsigned long *)spte);
}

2688
void kvm_mmu_pte_write(struct kvm_vcpu *vcpu, gpa_t gpa,
2689 2690
		       const u8 *new, int bytes,
		       bool guest_initiated)
2691
{
2692
	gfn_t gfn = gpa >> PAGE_SHIFT;
2693
	struct kvm_mmu_page *sp;
2694
	struct hlist_node *node;
2695
	LIST_HEAD(invalid_list);
2696
	u64 entry, gentry;
2697 2698
	u64 *spte;
	unsigned offset = offset_in_page(gpa);
2699
	unsigned pte_size;
2700
	unsigned page_offset;
2701
	unsigned misaligned;
2702
	unsigned quadrant;
2703
	int level;
2704
	int flooded = 0;
2705
	int npte;
2706
	int r;
2707
	int invlpg_counter;
2708 2709 2710
	bool remote_flush, local_flush, zap_page;

	zap_page = remote_flush = local_flush = false;
2711

2712
	pgprintk("%s: gpa %llx bytes %d\n", __func__, gpa, bytes);
2713

2714
	invlpg_counter = atomic_read(&vcpu->kvm->arch.invlpg_counter);
2715 2716 2717 2718 2719 2720 2721

	/*
	 * Assume that the pte write on a page table of the same type
	 * as the current vcpu paging mode.  This is nearly always true
	 * (might be false while changing modes).  Note it is verified later
	 * by update_pte().
	 */
2722
	if ((is_pae(vcpu) && bytes == 4) || !new) {
2723
		/* Handle a 32-bit guest writing two halves of a 64-bit gpte */
2724 2725 2726 2727 2728
		if (is_pae(vcpu)) {
			gpa &= ~(gpa_t)7;
			bytes = 8;
		}
		r = kvm_read_guest(vcpu->kvm, gpa, &gentry, min(bytes, 8));
2729 2730
		if (r)
			gentry = 0;
2731 2732 2733 2734 2735 2736 2737 2738 2739 2740 2741 2742 2743
		new = (const u8 *)&gentry;
	}

	switch (bytes) {
	case 4:
		gentry = *(const u32 *)new;
		break;
	case 8:
		gentry = *(const u64 *)new;
		break;
	default:
		gentry = 0;
		break;
2744 2745 2746
	}

	mmu_guess_page_from_pte_write(vcpu, gpa, gentry);
2747
	spin_lock(&vcpu->kvm->mmu_lock);
2748 2749
	if (atomic_read(&vcpu->kvm->arch.invlpg_counter) != invlpg_counter)
		gentry = 0;
2750
	kvm_mmu_access_page(vcpu, gfn);
2751
	kvm_mmu_free_some_pages(vcpu);
2752
	++vcpu->kvm->stat.mmu_pte_write;
2753
	kvm_mmu_audit(vcpu, "pre pte write");
2754 2755 2756 2757 2758 2759 2760 2761 2762 2763 2764
	if (guest_initiated) {
		if (gfn == vcpu->arch.last_pt_write_gfn
		    && !last_updated_pte_accessed(vcpu)) {
			++vcpu->arch.last_pt_write_count;
			if (vcpu->arch.last_pt_write_count >= 3)
				flooded = 1;
		} else {
			vcpu->arch.last_pt_write_gfn = gfn;
			vcpu->arch.last_pt_write_count = 1;
			vcpu->arch.last_pte_updated = NULL;
		}
2765
	}
2766

2767
	for_each_gfn_indirect_valid_sp(vcpu->kvm, sp, gfn, node) {
2768
		pte_size = sp->role.cr4_pae ? 8 : 4;
2769
		misaligned = (offset ^ (offset + bytes - 1)) & ~(pte_size - 1);
2770
		misaligned |= bytes < 4;
2771
		if (misaligned || flooded) {
2772 2773 2774 2775
			/*
			 * Misaligned accesses are too much trouble to fix
			 * up; also, they usually indicate a page is not used
			 * as a page table.
2776 2777 2778 2779 2780
			 *
			 * If we're seeing too many writes to a page,
			 * it may no longer be a page table, or we may be
			 * forking, in which case it is better to unmap the
			 * page.
2781 2782
			 */
			pgprintk("misaligned: gpa %llx bytes %d role %x\n",
2783
				 gpa, bytes, sp->role.word);
2784
			zap_page |= !!kvm_mmu_prepare_zap_page(vcpu->kvm, sp,
2785
						     &invalid_list);
2786
			++vcpu->kvm->stat.mmu_flooded;
2787 2788
			continue;
		}
2789
		page_offset = offset;
2790
		level = sp->role.level;
2791
		npte = 1;
2792
		if (!sp->role.cr4_pae) {
2793 2794 2795 2796 2797 2798 2799
			page_offset <<= 1;	/* 32->64 */
			/*
			 * A 32-bit pde maps 4MB while the shadow pdes map
			 * only 2MB.  So we need to double the offset again
			 * and zap two pdes instead of one.
			 */
			if (level == PT32_ROOT_LEVEL) {
2800
				page_offset &= ~7; /* kill rounding error */
2801 2802 2803
				page_offset <<= 1;
				npte = 2;
			}
2804
			quadrant = page_offset >> PAGE_SHIFT;
2805
			page_offset &= ~PAGE_MASK;
2806
			if (quadrant != sp->role.quadrant)
2807
				continue;
2808
		}
2809
		local_flush = true;
2810
		spte = &sp->spt[page_offset / sizeof(*spte)];
2811
		while (npte--) {
2812
			entry = *spte;
2813
			mmu_pte_write_zap_pte(vcpu, sp, spte);
2814 2815
			if (gentry)
				mmu_pte_write_new_pte(vcpu, sp, spte, &gentry);
2816 2817
			if (!remote_flush && need_remote_flush(entry, *spte))
				remote_flush = true;
2818
			++spte;
2819 2820
		}
	}
2821
	mmu_pte_write_flush_tlb(vcpu, zap_page, remote_flush, local_flush);
2822
	kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
2823
	kvm_mmu_audit(vcpu, "post pte write");
2824
	spin_unlock(&vcpu->kvm->mmu_lock);
2825 2826 2827
	if (!is_error_pfn(vcpu->arch.update_pte.pfn)) {
		kvm_release_pfn_clean(vcpu->arch.update_pte.pfn);
		vcpu->arch.update_pte.pfn = bad_pfn;
2828
	}
2829 2830
}

2831 2832
int kvm_mmu_unprotect_page_virt(struct kvm_vcpu *vcpu, gva_t gva)
{
2833 2834
	gpa_t gpa;
	int r;
2835

2836 2837 2838
	if (tdp_enabled)
		return 0;

2839
	gpa = kvm_mmu_gva_to_gpa_read(vcpu, gva, NULL);
2840

2841
	spin_lock(&vcpu->kvm->mmu_lock);
2842
	r = kvm_mmu_unprotect_page(vcpu->kvm, gpa >> PAGE_SHIFT);
2843
	spin_unlock(&vcpu->kvm->mmu_lock);
2844
	return r;
2845
}
2846
EXPORT_SYMBOL_GPL(kvm_mmu_unprotect_page_virt);
2847

2848
void __kvm_mmu_free_some_pages(struct kvm_vcpu *vcpu)
Avi Kivity's avatar
Avi Kivity committed
2849
{
2850
	int free_pages;
2851
	LIST_HEAD(invalid_list);
2852 2853 2854

	free_pages = vcpu->kvm->arch.n_free_mmu_pages;
	while (free_pages < KVM_REFILL_PAGES &&
2855
	       !list_empty(&vcpu->kvm->arch.active_mmu_pages)) {
2856
		struct kvm_mmu_page *sp;
Avi Kivity's avatar
Avi Kivity committed
2857

2858
		sp = container_of(vcpu->kvm->arch.active_mmu_pages.prev,
2859
				  struct kvm_mmu_page, link);
2860 2861
		free_pages += kvm_mmu_prepare_zap_page(vcpu->kvm, sp,
						       &invalid_list);
2862
		++vcpu->kvm->stat.mmu_recycled;
Avi Kivity's avatar
Avi Kivity committed
2863
	}
2864
	kvm_mmu_commit_zap_page(vcpu->kvm, &invalid_list);
Avi Kivity's avatar
Avi Kivity committed
2865 2866
}

2867 2868 2869 2870 2871
int kvm_mmu_page_fault(struct kvm_vcpu *vcpu, gva_t cr2, u32 error_code)
{
	int r;
	enum emulation_result er;

2872
	r = vcpu->arch.mmu.page_fault(vcpu, cr2, error_code);
2873 2874 2875 2876 2877 2878 2879 2880
	if (r < 0)
		goto out;

	if (!r) {
		r = 1;
		goto out;
	}

2881 2882 2883 2884
	r = mmu_topup_memory_caches(vcpu);
	if (r)
		goto out;

2885
	er = emulate_instruction(vcpu, cr2, error_code, 0);
2886 2887 2888 2889 2890 2891

	switch (er) {
	case EMULATE_DONE:
		return 1;
	case EMULATE_DO_MMIO:
		++vcpu->stat.mmio_exits;
2892
		/* fall through */
2893
	case EMULATE_FAIL:
2894
		return 0;
2895 2896 2897 2898 2899 2900 2901 2902
	default:
		BUG();
	}
out:
	return r;
}
EXPORT_SYMBOL_GPL(kvm_mmu_page_fault);

Marcelo Tosatti's avatar
Marcelo Tosatti committed
2903 2904 2905 2906 2907 2908 2909 2910
void kvm_mmu_invlpg(struct kvm_vcpu *vcpu, gva_t gva)
{
	vcpu->arch.mmu.invlpg(vcpu, gva);
	kvm_mmu_flush_tlb(vcpu);
	++vcpu->stat.invlpg;
}
EXPORT_SYMBOL_GPL(kvm_mmu_invlpg);

2911 2912 2913 2914 2915 2916
void kvm_enable_tdp(void)
{
	tdp_enabled = true;
}
EXPORT_SYMBOL_GPL(kvm_enable_tdp);

2917 2918 2919 2920 2921 2922
void kvm_disable_tdp(void)
{
	tdp_enabled = false;
}
EXPORT_SYMBOL_GPL(kvm_disable_tdp);

2923 2924
static void free_mmu_pages(struct kvm_vcpu *vcpu)
{
2925
	free_page((unsigned long)vcpu->arch.mmu.pae_root);
2926 2927 2928 2929
}

static int alloc_mmu_pages(struct kvm_vcpu *vcpu)
{
2930
	struct page *page;
2931 2932 2933 2934
	int i;

	ASSERT(vcpu);

2935 2936 2937 2938 2939 2940 2941
	/*
	 * When emulating 32-bit mode, cr3 is only 32 bits even on x86_64.
	 * Therefore we need to allocate shadow page tables in the first
	 * 4GB of memory, which happens to fit the DMA32 zone.
	 */
	page = alloc_page(GFP_KERNEL | __GFP_DMA32);
	if (!page)
2942 2943
		return -ENOMEM;

2944
	vcpu->arch.mmu.pae_root = page_address(page);
2945
	for (i = 0; i < 4; ++i)
2946
		vcpu->arch.mmu.pae_root[i] = INVALID_PAGE;
2947

2948 2949 2950
	return 0;
}

2951
int kvm_mmu_create(struct kvm_vcpu *vcpu)
2952 2953
{
	ASSERT(vcpu);
2954
	ASSERT(!VALID_PAGE(vcpu->arch.mmu.root_hpa));
2955

2956 2957
	return alloc_mmu_pages(vcpu);
}
2958

2959 2960 2961
int kvm_mmu_setup(struct kvm_vcpu *vcpu)
{
	ASSERT(vcpu);
2962
	ASSERT(!VALID_PAGE(vcpu->arch.mmu.root_hpa));
2963

2964
	return init_kvm_mmu(vcpu);
2965 2966 2967 2968 2969 2970 2971 2972
}

void kvm_mmu_destroy(struct kvm_vcpu *vcpu)
{
	ASSERT(vcpu);

	destroy_kvm_mmu(vcpu);
	free_mmu_pages(vcpu);
2973
	mmu_free_memory_caches(vcpu);
2974 2975
}

2976
void kvm_mmu_slot_remove_write_access(struct kvm *kvm, int slot)
2977
{
2978
	struct kvm_mmu_page *sp;
2979

2980
	list_for_each_entry(sp, &kvm->arch.active_mmu_pages, link) {
2981 2982 2983
		int i;
		u64 *pt;

2984
		if (!test_bit(slot, sp->slot_bitmap))
2985 2986
			continue;

2987
		pt = sp->spt;
2988 2989
		for (i = 0; i < PT64_ENT_PER_PAGE; ++i)
			/* avoid RMW */
2990
			if (is_writable_pte(pt[i]))
2991 2992
				pt[i] &= ~PT_WRITABLE_MASK;
	}
2993
	kvm_flush_remote_tlbs(kvm);
2994
}
2995

2996
void kvm_mmu_zap_all(struct kvm *kvm)
Dor Laor's avatar
Dor Laor committed
2997
{
2998
	struct kvm_mmu_page *sp, *node;
2999
	LIST_HEAD(invalid_list);
Dor Laor's avatar
Dor Laor committed
3000

3001
	spin_lock(&kvm->mmu_lock);
3002
restart:
3003
	list_for_each_entry_safe(sp, node, &kvm->arch.active_mmu_pages, link)
3004
		if (kvm_mmu_prepare_zap_page(kvm, sp, &invalid_list))
3005 3006
			goto restart;

3007
	kvm_mmu_commit_zap_page(kvm, &invalid_list);
3008
	spin_unlock(&kvm->mmu_lock);
Dor Laor's avatar
Dor Laor committed
3009 3010
}

3011 3012
static int kvm_mmu_remove_some_alloc_mmu_pages(struct kvm *kvm,
					       struct list_head *invalid_list)
3013 3014 3015 3016 3017
{
	struct kvm_mmu_page *page;

	page = container_of(kvm->arch.active_mmu_pages.prev,
			    struct kvm_mmu_page, link);
3018
	return kvm_mmu_prepare_zap_page(kvm, page, invalid_list);
3019 3020
}

3021
static int mmu_shrink(struct shrinker *shrink, int nr_to_scan, gfp_t gfp_mask)
3022 3023 3024 3025 3026 3027 3028 3029
{
	struct kvm *kvm;
	struct kvm *kvm_freed = NULL;
	int cache_count = 0;

	spin_lock(&kvm_lock);

	list_for_each_entry(kvm, &vm_list, vm_list) {
Gui Jianfeng's avatar
Gui Jianfeng committed
3030
		int npages, idx, freed_pages;
3031
		LIST_HEAD(invalid_list);
3032

3033
		idx = srcu_read_lock(&kvm->srcu);
3034 3035 3036 3037 3038
		spin_lock(&kvm->mmu_lock);
		npages = kvm->arch.n_alloc_mmu_pages -
			 kvm->arch.n_free_mmu_pages;
		cache_count += npages;
		if (!kvm_freed && nr_to_scan > 0 && npages > 0) {
3039 3040
			freed_pages = kvm_mmu_remove_some_alloc_mmu_pages(kvm,
							  &invalid_list);
Gui Jianfeng's avatar
Gui Jianfeng committed
3041
			cache_count -= freed_pages;
3042 3043 3044 3045
			kvm_freed = kvm;
		}
		nr_to_scan--;

3046
		kvm_mmu_commit_zap_page(kvm, &invalid_list);
3047
		spin_unlock(&kvm->mmu_lock);
3048
		srcu_read_unlock(&kvm->srcu, idx);
3049 3050 3051 3052 3053 3054 3055 3056 3057 3058 3059 3060 3061 3062
	}
	if (kvm_freed)
		list_move_tail(&kvm_freed->vm_list, &vm_list);

	spin_unlock(&kvm_lock);

	return cache_count;
}

static struct shrinker mmu_shrinker = {
	.shrink = mmu_shrink,
	.seeks = DEFAULT_SEEKS * 10,
};

3063
static void mmu_destroy_caches(void)
3064 3065 3066 3067 3068
{
	if (pte_chain_cache)
		kmem_cache_destroy(pte_chain_cache);
	if (rmap_desc_cache)
		kmem_cache_destroy(rmap_desc_cache);
3069 3070
	if (mmu_page_header_cache)
		kmem_cache_destroy(mmu_page_header_cache);
3071 3072
}

3073 3074 3075 3076 3077 3078
void kvm_mmu_module_exit(void)
{
	mmu_destroy_caches();
	unregister_shrinker(&mmu_shrinker);
}

3079 3080 3081 3082
int kvm_mmu_module_init(void)
{
	pte_chain_cache = kmem_cache_create("kvm_pte_chain",
					    sizeof(struct kvm_pte_chain),
3083
					    0, 0, NULL);
3084 3085 3086 3087
	if (!pte_chain_cache)
		goto nomem;
	rmap_desc_cache = kmem_cache_create("kvm_rmap_desc",
					    sizeof(struct kvm_rmap_desc),
3088
					    0, 0, NULL);
3089 3090 3091
	if (!rmap_desc_cache)
		goto nomem;

3092 3093
	mmu_page_header_cache = kmem_cache_create("kvm_mmu_page_header",
						  sizeof(struct kvm_mmu_page),
3094
						  0, 0, NULL);
3095 3096 3097
	if (!mmu_page_header_cache)
		goto nomem;

3098 3099
	register_shrinker(&mmu_shrinker);

3100 3101 3102
	return 0;

nomem:
3103
	mmu_destroy_caches();
3104 3105 3106
	return -ENOMEM;
}

3107 3108 3109 3110 3111 3112 3113 3114
/*
 * Caculate mmu pages needed for kvm.
 */
unsigned int kvm_mmu_calculate_mmu_pages(struct kvm *kvm)
{
	int i;
	unsigned int nr_mmu_pages;
	unsigned int  nr_pages = 0;
3115
	struct kvm_memslots *slots;
3116

3117 3118
	slots = kvm_memslots(kvm);

3119 3120
	for (i = 0; i < slots->nmemslots; i++)
		nr_pages += slots->memslots[i].npages;
3121 3122 3123 3124 3125 3126 3127 3128

	nr_mmu_pages = nr_pages * KVM_PERMILLE_MMU_PAGES / 1000;
	nr_mmu_pages = max(nr_mmu_pages,
			(unsigned int) KVM_MIN_ALLOC_MMU_PAGES);

	return nr_mmu_pages;
}

3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144 3145 3146 3147 3148 3149 3150 3151 3152 3153 3154 3155 3156 3157 3158 3159 3160 3161 3162 3163
static void *pv_mmu_peek_buffer(struct kvm_pv_mmu_op_buffer *buffer,
				unsigned len)
{
	if (len > buffer->len)
		return NULL;
	return buffer->ptr;
}

static void *pv_mmu_read_buffer(struct kvm_pv_mmu_op_buffer *buffer,
				unsigned len)
{
	void *ret;

	ret = pv_mmu_peek_buffer(buffer, len);
	if (!ret)
		return ret;
	buffer->ptr += len;
	buffer->len -= len;
	buffer->processed += len;
	return ret;
}

static int kvm_pv_mmu_write(struct kvm_vcpu *vcpu,
			     gpa_t addr, gpa_t value)
{
	int bytes = 8;
	int r;

	if (!is_long_mode(vcpu) && !is_pae(vcpu))
		bytes = 4;

	r = mmu_topup_memory_caches(vcpu);
	if (r)
		return r;

3164
	if (!emulator_write_phys(vcpu, addr, &value, bytes))
3165 3166 3167 3168 3169 3170 3171
		return -EFAULT;

	return 1;
}

static int kvm_pv_mmu_flush_tlb(struct kvm_vcpu *vcpu)
{
3172
	(void)kvm_set_cr3(vcpu, vcpu->arch.cr3);
3173 3174 3175 3176 3177 3178 3179 3180 3181 3182 3183 3184 3185 3186 3187 3188 3189 3190 3191 3192 3193 3194 3195 3196 3197 3198 3199 3200 3201 3202 3203 3204 3205 3206 3207 3208 3209 3210 3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225
	return 1;
}

static int kvm_pv_mmu_release_pt(struct kvm_vcpu *vcpu, gpa_t addr)
{
	spin_lock(&vcpu->kvm->mmu_lock);
	mmu_unshadow(vcpu->kvm, addr >> PAGE_SHIFT);
	spin_unlock(&vcpu->kvm->mmu_lock);
	return 1;
}

static int kvm_pv_mmu_op_one(struct kvm_vcpu *vcpu,
			     struct kvm_pv_mmu_op_buffer *buffer)
{
	struct kvm_mmu_op_header *header;

	header = pv_mmu_peek_buffer(buffer, sizeof *header);
	if (!header)
		return 0;
	switch (header->op) {
	case KVM_MMU_OP_WRITE_PTE: {
		struct kvm_mmu_op_write_pte *wpte;

		wpte = pv_mmu_read_buffer(buffer, sizeof *wpte);
		if (!wpte)
			return 0;
		return kvm_pv_mmu_write(vcpu, wpte->pte_phys,
					wpte->pte_val);
	}
	case KVM_MMU_OP_FLUSH_TLB: {
		struct kvm_mmu_op_flush_tlb *ftlb;

		ftlb = pv_mmu_read_buffer(buffer, sizeof *ftlb);
		if (!ftlb)
			return 0;
		return kvm_pv_mmu_flush_tlb(vcpu);
	}
	case KVM_MMU_OP_RELEASE_PT: {
		struct kvm_mmu_op_release_pt *rpt;

		rpt = pv_mmu_read_buffer(buffer, sizeof *rpt);
		if (!rpt)
			return 0;
		return kvm_pv_mmu_release_pt(vcpu, rpt->pt_phys);
	}
	default: return 0;
	}
}

int kvm_pv_mmu_op(struct kvm_vcpu *vcpu, unsigned long bytes,
		  gpa_t addr, unsigned long *ret)
{
	int r;
3226
	struct kvm_pv_mmu_op_buffer *buffer = &vcpu->arch.mmu_op_buffer;
3227

3228 3229 3230
	buffer->ptr = buffer->buf;
	buffer->len = min_t(unsigned long, bytes, sizeof buffer->buf);
	buffer->processed = 0;
3231

3232
	r = kvm_read_guest(vcpu->kvm, addr, buffer->buf, buffer->len);
3233 3234 3235
	if (r)
		goto out;

3236 3237
	while (buffer->len) {
		r = kvm_pv_mmu_op_one(vcpu, buffer);
3238 3239 3240 3241 3242 3243 3244 3245
		if (r < 0)
			goto out;
		if (r == 0)
			break;
	}

	r = 1;
out:
3246
	*ret = buffer->processed;
3247 3248 3249
	return r;
}

3250 3251 3252 3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263 3264 3265 3266 3267
int kvm_mmu_get_spte_hierarchy(struct kvm_vcpu *vcpu, u64 addr, u64 sptes[4])
{
	struct kvm_shadow_walk_iterator iterator;
	int nr_sptes = 0;

	spin_lock(&vcpu->kvm->mmu_lock);
	for_each_shadow_entry(vcpu, addr, iterator) {
		sptes[iterator.level-1] = *iterator.sptep;
		nr_sptes++;
		if (!is_shadow_present_pte(*iterator.sptep))
			break;
	}
	spin_unlock(&vcpu->kvm->mmu_lock);

	return nr_sptes;
}
EXPORT_SYMBOL_GPL(kvm_mmu_get_spte_hierarchy);

3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279
#ifdef AUDIT

static const char *audit_msg;

static gva_t canonicalize(gva_t gva)
{
#ifdef CONFIG_X86_64
	gva = (long long)(gva << 16) >> 16;
#endif
	return gva;
}

3280

3281
typedef void (*inspect_spte_fn) (struct kvm *kvm, u64 *sptep);
3282 3283 3284 3285 3286 3287 3288 3289 3290 3291

static void __mmu_spte_walk(struct kvm *kvm, struct kvm_mmu_page *sp,
			    inspect_spte_fn fn)
{
	int i;

	for (i = 0; i < PT64_ENT_PER_PAGE; ++i) {
		u64 ent = sp->spt[i];

		if (is_shadow_present_pte(ent)) {
3292
			if (!is_last_spte(ent, sp->role.level)) {
3293 3294 3295
				struct kvm_mmu_page *child;
				child = page_header(ent & PT64_BASE_ADDR_MASK);
				__mmu_spte_walk(kvm, child, fn);
3296
			} else
3297
				fn(kvm, &sp->spt[i]);
3298 3299 3300 3301 3302 3303 3304 3305 3306 3307 3308 3309 3310 3311 3312 3313 3314 3315 3316 3317 3318 3319 3320 3321 3322 3323 3324 3325 3326
		}
	}
}

static void mmu_spte_walk(struct kvm_vcpu *vcpu, inspect_spte_fn fn)
{
	int i;
	struct kvm_mmu_page *sp;

	if (!VALID_PAGE(vcpu->arch.mmu.root_hpa))
		return;
	if (vcpu->arch.mmu.shadow_root_level == PT64_ROOT_LEVEL) {
		hpa_t root = vcpu->arch.mmu.root_hpa;
		sp = page_header(root);
		__mmu_spte_walk(vcpu->kvm, sp, fn);
		return;
	}
	for (i = 0; i < 4; ++i) {
		hpa_t root = vcpu->arch.mmu.pae_root[i];

		if (root && VALID_PAGE(root)) {
			root &= PT64_BASE_ADDR_MASK;
			sp = page_header(root);
			__mmu_spte_walk(vcpu->kvm, sp, fn);
		}
	}
	return;
}

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static void audit_mappings_page(struct kvm_vcpu *vcpu, u64 page_pte,
				gva_t va, int level)
{
	u64 *pt = __va(page_pte & PT64_BASE_ADDR_MASK);
	int i;
	gva_t va_delta = 1ul << (PAGE_SHIFT + 9 * (level - 1));

	for (i = 0; i < PT64_ENT_PER_PAGE; ++i, va += va_delta) {
		u64 ent = pt[i];

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		if (ent == shadow_trap_nonpresent_pte)
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			continue;

		va = canonicalize(va);
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		if (is_shadow_present_pte(ent) && !is_last_spte(ent, level))
			audit_mappings_page(vcpu, ent, va, level - 1);
		else {
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			gpa_t gpa = kvm_mmu_gva_to_gpa_read(vcpu, va, NULL);
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			gfn_t gfn = gpa >> PAGE_SHIFT;
			pfn_t pfn = gfn_to_pfn(vcpu->kvm, gfn);
			hpa_t hpa = (hpa_t)pfn << PAGE_SHIFT;
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			if (is_error_pfn(pfn)) {
				kvm_release_pfn_clean(pfn);
				continue;
			}

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			if (is_shadow_present_pte(ent)
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			    && (ent & PT64_BASE_ADDR_MASK) != hpa)
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				printk(KERN_ERR "xx audit error: (%s) levels %d"
				       " gva %lx gpa %llx hpa %llx ent %llx %d\n",
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				       audit_msg, vcpu->arch.mmu.root_level,
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				       va, gpa, hpa, ent,
				       is_shadow_present_pte(ent));
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			else if (ent == shadow_notrap_nonpresent_pte
				 && !is_error_hpa(hpa))
				printk(KERN_ERR "audit: (%s) notrap shadow,"
				       " valid guest gva %lx\n", audit_msg, va);
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			kvm_release_pfn_clean(pfn);
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		}
	}
}

static void audit_mappings(struct kvm_vcpu *vcpu)
{
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	unsigned i;
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	if (vcpu->arch.mmu.root_level == 4)
		audit_mappings_page(vcpu, vcpu->arch.mmu.root_hpa, 0, 4);
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	else
		for (i = 0; i < 4; ++i)
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			if (vcpu->arch.mmu.pae_root[i] & PT_PRESENT_MASK)
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				audit_mappings_page(vcpu,
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						    vcpu->arch.mmu.pae_root[i],
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						    i << 30,
						    2);
}

static int count_rmaps(struct kvm_vcpu *vcpu)
{
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	struct kvm *kvm = vcpu->kvm;
	struct kvm_memslots *slots;
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	int nmaps = 0;
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	int i, j, k, idx;
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	idx = srcu_read_lock(&kvm->srcu);
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	slots = kvm_memslots(kvm);
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	for (i = 0; i < KVM_MEMORY_SLOTS; ++i) {
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		struct kvm_memory_slot *m = &slots->memslots[i];
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		struct kvm_rmap_desc *d;

		for (j = 0; j < m->npages; ++j) {
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			unsigned long *rmapp = &m->rmap[j];
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			if (!*rmapp)
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				continue;
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			if (!(*rmapp & 1)) {
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				++nmaps;
				continue;
			}
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			d = (struct kvm_rmap_desc *)(*rmapp & ~1ul);
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			while (d) {
				for (k = 0; k < RMAP_EXT; ++k)
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					if (d->sptes[k])
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						++nmaps;
					else
						break;
				d = d->more;
			}
		}
	}
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	srcu_read_unlock(&kvm->srcu, idx);
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	return nmaps;
}

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void inspect_spte_has_rmap(struct kvm *kvm, u64 *sptep)
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{
	unsigned long *rmapp;
	struct kvm_mmu_page *rev_sp;
	gfn_t gfn;

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	if (is_writable_pte(*sptep)) {
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		rev_sp = page_header(__pa(sptep));
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		gfn = kvm_mmu_page_get_gfn(rev_sp, sptep - rev_sp->spt);
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		if (!gfn_to_memslot(kvm, gfn)) {
			if (!printk_ratelimit())
				return;
			printk(KERN_ERR "%s: no memslot for gfn %ld\n",
					 audit_msg, gfn);
			printk(KERN_ERR "%s: index %ld of sp (gfn=%lx)\n",
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			       audit_msg, (long int)(sptep - rev_sp->spt),
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					rev_sp->gfn);
			dump_stack();
			return;
		}

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		rmapp = gfn_to_rmap(kvm, gfn, rev_sp->role.level);
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		if (!*rmapp) {
			if (!printk_ratelimit())
				return;
			printk(KERN_ERR "%s: no rmap for writable spte %llx\n",
					 audit_msg, *sptep);
			dump_stack();
		}
	}

}

void audit_writable_sptes_have_rmaps(struct kvm_vcpu *vcpu)
{
	mmu_spte_walk(vcpu, inspect_spte_has_rmap);
}

static void check_writable_mappings_rmap(struct kvm_vcpu *vcpu)
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{
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	struct kvm_mmu_page *sp;
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	int i;

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	list_for_each_entry(sp, &vcpu->kvm->arch.active_mmu_pages, link) {
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		u64 *pt = sp->spt;
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		if (sp->role.level != PT_PAGE_TABLE_LEVEL)
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			continue;

		for (i = 0; i < PT64_ENT_PER_PAGE; ++i) {
			u64 ent = pt[i];

			if (!(ent & PT_PRESENT_MASK))
				continue;
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			if (!is_writable_pte(ent))
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				continue;
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			inspect_spte_has_rmap(vcpu->kvm, &pt[i]);
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		}
	}
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	return;
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}

static void audit_rmap(struct kvm_vcpu *vcpu)
{
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	check_writable_mappings_rmap(vcpu);
	count_rmaps(vcpu);
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}

static void audit_write_protection(struct kvm_vcpu *vcpu)
{
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	struct kvm_mmu_page *sp;
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	struct kvm_memory_slot *slot;
	unsigned long *rmapp;
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	u64 *spte;
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	gfn_t gfn;
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	list_for_each_entry(sp, &vcpu->kvm->arch.active_mmu_pages, link) {
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		if (sp->role.direct)
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			continue;
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		if (sp->unsync)
			continue;
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		slot = gfn_to_memslot(vcpu->kvm, sp->gfn);
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		rmapp = &slot->rmap[gfn - slot->base_gfn];
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		spte = rmap_next(vcpu->kvm, rmapp, NULL);
		while (spte) {
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			if (is_writable_pte(*spte))
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				printk(KERN_ERR "%s: (%s) shadow page has "
				"writable mappings: gfn %lx role %x\n",
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			       __func__, audit_msg, sp->gfn,
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			       sp->role.word);
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			spte = rmap_next(vcpu->kvm, rmapp, spte);
		}
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	}
}

static void kvm_mmu_audit(struct kvm_vcpu *vcpu, const char *msg)
{
	int olddbg = dbg;

	dbg = 0;
	audit_msg = msg;
	audit_rmap(vcpu);
	audit_write_protection(vcpu);
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	if (strcmp("pre pte write", audit_msg) != 0)
		audit_mappings(vcpu);
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	audit_writable_sptes_have_rmaps(vcpu);
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	dbg = olddbg;
}

#endif