paging_tmpl.h 13.6 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.
 *
 * 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.
 *
 */

/*
 * We need the mmu code to access both 32-bit and 64-bit guest ptes,
 * so the code in this file is compiled twice, once per pte size.
 */

#if PTTYPE == 64
	#define pt_element_t u64
	#define guest_walker guest_walker64
	#define FNAME(name) paging##64_##name
	#define PT_BASE_ADDR_MASK PT64_BASE_ADDR_MASK
	#define PT_DIR_BASE_ADDR_MASK PT64_DIR_BASE_ADDR_MASK
	#define PT_INDEX(addr, level) PT64_INDEX(addr, level)
	#define SHADOW_PT_INDEX(addr, level) PT64_INDEX(addr, level)
	#define PT_LEVEL_MASK(level) PT64_LEVEL_MASK(level)
	#define PT_PTE_COPY_MASK PT64_PTE_COPY_MASK
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	#ifdef CONFIG_X86_64
	#define PT_MAX_FULL_LEVELS 4
	#else
	#define PT_MAX_FULL_LEVELS 2
	#endif
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#elif PTTYPE == 32
	#define pt_element_t u32
	#define guest_walker guest_walker32
	#define FNAME(name) paging##32_##name
	#define PT_BASE_ADDR_MASK PT32_BASE_ADDR_MASK
	#define PT_DIR_BASE_ADDR_MASK PT32_DIR_BASE_ADDR_MASK
	#define PT_INDEX(addr, level) PT32_INDEX(addr, level)
	#define SHADOW_PT_INDEX(addr, level) PT64_INDEX(addr, level)
	#define PT_LEVEL_MASK(level) PT32_LEVEL_MASK(level)
	#define PT_PTE_COPY_MASK PT32_PTE_COPY_MASK
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	#define PT_MAX_FULL_LEVELS 2
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#else
	#error Invalid PTTYPE value
#endif

/*
 * The guest_walker structure emulates the behavior of the hardware page
 * table walker.
 */
struct guest_walker {
	int level;
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	gfn_t table_gfn[PT_MAX_FULL_LEVELS];
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	pt_element_t *table;
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	pt_element_t *ptep;
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	pt_element_t inherited_ar;
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	gfn_t gfn;
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	u32 error_code;
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};

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/*
 * Fetch a guest pte for a guest virtual address
 */
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static int FNAME(walk_addr)(struct guest_walker *walker,
			    struct kvm_vcpu *vcpu, gva_t addr,
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			    int write_fault, int user_fault, int fetch_fault)
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{
	hpa_t hpa;
	struct kvm_memory_slot *slot;
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	pt_element_t *ptep;
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	pt_element_t root;
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	gfn_t table_gfn;
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	pgprintk("%s: addr %lx\n", __FUNCTION__, addr);
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	walker->level = vcpu->mmu.root_level;
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	walker->table = NULL;
	root = vcpu->cr3;
#if PTTYPE == 64
	if (!is_long_mode(vcpu)) {
		walker->ptep = &vcpu->pdptrs[(addr >> 30) & 3];
		root = *walker->ptep;
		if (!(root & PT_PRESENT_MASK))
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			goto not_present;
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		--walker->level;
	}
#endif
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	table_gfn = (root & PT64_BASE_ADDR_MASK) >> PAGE_SHIFT;
	walker->table_gfn[walker->level - 1] = table_gfn;
	pgprintk("%s: table_gfn[%d] %lx\n", __FUNCTION__,
		 walker->level - 1, table_gfn);
	slot = gfn_to_memslot(vcpu->kvm, table_gfn);
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	hpa = safe_gpa_to_hpa(vcpu, root & PT64_BASE_ADDR_MASK);
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	walker->table = kmap_atomic(pfn_to_page(hpa >> PAGE_SHIFT), KM_USER0);

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	ASSERT((!is_long_mode(vcpu) && is_pae(vcpu)) ||
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	       (vcpu->cr3 & ~(PAGE_MASK | CR3_FLAGS_MASK)) == 0);

	walker->inherited_ar = PT_USER_MASK | PT_WRITABLE_MASK;
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	for (;;) {
		int index = PT_INDEX(addr, walker->level);
		hpa_t paddr;

		ptep = &walker->table[index];
		ASSERT(((unsigned long)walker->table & PAGE_MASK) ==
		       ((unsigned long)ptep & PAGE_MASK));

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		if (!is_present_pte(*ptep))
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			goto not_present;

		if (write_fault && !is_writeble_pte(*ptep))
			if (user_fault || is_write_protection(vcpu))
				goto access_error;

		if (user_fault && !(*ptep & PT_USER_MASK))
			goto access_error;

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#if PTTYPE == 64
		if (fetch_fault && is_nx(vcpu) && (*ptep & PT64_NX_MASK))
			goto access_error;
#endif

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		if (!(*ptep & PT_ACCESSED_MASK)) {
			mark_page_dirty(vcpu->kvm, table_gfn);
			*ptep |= PT_ACCESSED_MASK;
		}
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		if (walker->level == PT_PAGE_TABLE_LEVEL) {
			walker->gfn = (*ptep & PT_BASE_ADDR_MASK)
				>> PAGE_SHIFT;
			break;
		}

		if (walker->level == PT_DIRECTORY_LEVEL
		    && (*ptep & PT_PAGE_SIZE_MASK)
		    && (PTTYPE == 64 || is_pse(vcpu))) {
			walker->gfn = (*ptep & PT_DIR_BASE_ADDR_MASK)
				>> PAGE_SHIFT;
			walker->gfn += PT_INDEX(addr, PT_PAGE_TABLE_LEVEL);
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			break;
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		}
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		walker->inherited_ar &= walker->table[index];
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		table_gfn = (*ptep & PT_BASE_ADDR_MASK) >> PAGE_SHIFT;
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		paddr = safe_gpa_to_hpa(vcpu, *ptep & PT_BASE_ADDR_MASK);
		kunmap_atomic(walker->table, KM_USER0);
		walker->table = kmap_atomic(pfn_to_page(paddr >> PAGE_SHIFT),
					    KM_USER0);
		--walker->level;
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		walker->table_gfn[walker->level - 1 ] = table_gfn;
		pgprintk("%s: table_gfn[%d] %lx\n", __FUNCTION__,
			 walker->level - 1, table_gfn);
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	}
	walker->ptep = ptep;
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	pgprintk("%s: pte %llx\n", __FUNCTION__, (u64)*ptep);
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	return 1;

not_present:
	walker->error_code = 0;
	goto err;

access_error:
	walker->error_code = PFERR_PRESENT_MASK;

err:
	if (write_fault)
		walker->error_code |= PFERR_WRITE_MASK;
	if (user_fault)
		walker->error_code |= PFERR_USER_MASK;
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	if (fetch_fault)
		walker->error_code |= PFERR_FETCH_MASK;
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	return 0;
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}

static void FNAME(release_walker)(struct guest_walker *walker)
{
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	if (walker->table)
		kunmap_atomic(walker->table, KM_USER0);
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}

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static void FNAME(mark_pagetable_dirty)(struct kvm *kvm,
					struct guest_walker *walker)
{
	mark_page_dirty(kvm, walker->table_gfn[walker->level - 1]);
}

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static void FNAME(set_pte_common)(struct kvm_vcpu *vcpu,
				  u64 *shadow_pte,
				  gpa_t gaddr,
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				  pt_element_t *gpte,
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				  u64 access_bits,
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				  int user_fault,
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				  int write_fault,
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				  int *ptwrite,
				  struct guest_walker *walker,
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				  gfn_t gfn)
{
	hpa_t paddr;
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	int dirty = *gpte & PT_DIRTY_MASK;
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	int was_rmapped = is_rmap_pte(*shadow_pte);

	pgprintk("%s: spte %llx gpte %llx access %llx write_fault %d"
		 " user_fault %d gfn %lx\n",
		 __FUNCTION__, *shadow_pte, (u64)*gpte, access_bits,
		 write_fault, user_fault, gfn);

	if (write_fault && !dirty) {
		*gpte |= PT_DIRTY_MASK;
		dirty = 1;
		FNAME(mark_pagetable_dirty)(vcpu->kvm, walker);
	}
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	*shadow_pte |= *gpte & PT_PTE_COPY_MASK;
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	*shadow_pte |= access_bits << PT_SHADOW_BITS_OFFSET;
	if (!dirty)
		access_bits &= ~PT_WRITABLE_MASK;

	paddr = gpa_to_hpa(vcpu, gaddr & PT64_BASE_ADDR_MASK);

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	*shadow_pte |= PT_PRESENT_MASK;
	if (access_bits & PT_USER_MASK)
		*shadow_pte |= PT_USER_MASK;
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	if (is_error_hpa(paddr)) {
		*shadow_pte |= gaddr;
		*shadow_pte |= PT_SHADOW_IO_MARK;
		*shadow_pte &= ~PT_PRESENT_MASK;
		return;
	}

	*shadow_pte |= paddr;

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	if (!write_fault && (*shadow_pte & PT_SHADOW_USER_MASK) &&
	    !(*shadow_pte & PT_USER_MASK)) {
		/*
		 * If supervisor write protect is disabled, we shadow kernel
		 * pages as user pages so we can trap the write access.
		 */
		*shadow_pte |= PT_USER_MASK;
		*shadow_pte &= ~PT_WRITABLE_MASK;
		access_bits &= ~PT_WRITABLE_MASK;
	}

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	if ((access_bits & PT_WRITABLE_MASK)
	    || (write_fault && !is_write_protection(vcpu) && !user_fault)) {
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		struct kvm_mmu_page *shadow;

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		*shadow_pte |= PT_WRITABLE_MASK;
		if (user_fault) {
			mmu_unshadow(vcpu, gfn);
			goto unshadowed;
		}

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		shadow = kvm_mmu_lookup_page(vcpu, gfn);
		if (shadow) {
			pgprintk("%s: found shadow page for %lx, marking ro\n",
				 __FUNCTION__, gfn);
			access_bits &= ~PT_WRITABLE_MASK;
			if (is_writeble_pte(*shadow_pte)) {
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				*shadow_pte &= ~PT_WRITABLE_MASK;
				kvm_arch_ops->tlb_flush(vcpu);
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			}
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			if (write_fault)
				*ptwrite = 1;
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		}
	}

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unshadowed:

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	if (access_bits & PT_WRITABLE_MASK)
		mark_page_dirty(vcpu->kvm, gaddr >> PAGE_SHIFT);

	page_header_update_slot(vcpu->kvm, shadow_pte, gaddr);
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	if (!was_rmapped)
		rmap_add(vcpu, shadow_pte);
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}

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static void FNAME(set_pte)(struct kvm_vcpu *vcpu, pt_element_t *gpte,
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			   u64 *shadow_pte, u64 access_bits,
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			   int user_fault, int write_fault, int *ptwrite,
			   struct guest_walker *walker, gfn_t gfn)
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{
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	access_bits &= *gpte;
	FNAME(set_pte_common)(vcpu, shadow_pte, *gpte & PT_BASE_ADDR_MASK,
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			      gpte, access_bits, user_fault, write_fault,
			      ptwrite, walker, gfn);
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}

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static void FNAME(update_pte)(struct kvm_vcpu *vcpu, struct kvm_mmu_page *page,
			      u64 *spte, const void *pte, int bytes)
{
	pt_element_t gpte;

	if (bytes < sizeof(pt_element_t))
		return;
	gpte = *(const pt_element_t *)pte;
	if (~gpte & (PT_PRESENT_MASK | PT_ACCESSED_MASK))
		return;
	pgprintk("%s: gpte %llx spte %p\n", __FUNCTION__, (u64)gpte, spte);
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	FNAME(set_pte)(vcpu, &gpte, spte, PT_USER_MASK | PT_WRITABLE_MASK, 0,
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		       0, NULL, NULL,
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		       (gpte & PT_BASE_ADDR_MASK) >> PAGE_SHIFT);
}

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static void FNAME(set_pde)(struct kvm_vcpu *vcpu, pt_element_t *gpde,
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			   u64 *shadow_pte, u64 access_bits,
			   int user_fault, int write_fault, int *ptwrite,
			   struct guest_walker *walker, gfn_t gfn)
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{
	gpa_t gaddr;

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	access_bits &= *gpde;
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	gaddr = (gpa_t)gfn << PAGE_SHIFT;
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	if (PTTYPE == 32 && is_cpuid_PSE36())
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		gaddr |= (*gpde & PT32_DIR_PSE36_MASK) <<
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			(32 - PT32_DIR_PSE36_SHIFT);
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	FNAME(set_pte_common)(vcpu, shadow_pte, gaddr,
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			      gpde, access_bits, user_fault, write_fault,
			      ptwrite, walker, gfn);
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}

/*
 * Fetch a shadow pte for a specific level in the paging hierarchy.
 */
static u64 *FNAME(fetch)(struct kvm_vcpu *vcpu, gva_t addr,
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			 struct guest_walker *walker,
			 int user_fault, int write_fault, int *ptwrite)
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{
	hpa_t shadow_addr;
	int level;
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	u64 *shadow_ent;
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	u64 *prev_shadow_ent = NULL;
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	pt_element_t *guest_ent = walker->ptep;

	if (!is_present_pte(*guest_ent))
		return NULL;
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	shadow_addr = vcpu->mmu.root_hpa;
	level = vcpu->mmu.shadow_root_level;
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	if (level == PT32E_ROOT_LEVEL) {
		shadow_addr = vcpu->mmu.pae_root[(addr >> 30) & 3];
		shadow_addr &= PT64_BASE_ADDR_MASK;
		--level;
	}
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	for (; ; level--) {
		u32 index = SHADOW_PT_INDEX(addr, level);
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		struct kvm_mmu_page *shadow_page;
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		u64 shadow_pte;
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		int metaphysical;
		gfn_t table_gfn;
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		unsigned hugepage_access = 0;
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		shadow_ent = ((u64 *)__va(shadow_addr)) + index;
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		if (is_present_pte(*shadow_ent) || is_io_pte(*shadow_ent)) {
			if (level == PT_PAGE_TABLE_LEVEL)
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				break;
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			shadow_addr = *shadow_ent & PT64_BASE_ADDR_MASK;
			prev_shadow_ent = shadow_ent;
			continue;
		}

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		if (level == PT_PAGE_TABLE_LEVEL)
			break;
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		if (level - 1 == PT_PAGE_TABLE_LEVEL
		    && walker->level == PT_DIRECTORY_LEVEL) {
			metaphysical = 1;
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			hugepage_access = *guest_ent;
			hugepage_access &= PT_USER_MASK | PT_WRITABLE_MASK;
			hugepage_access >>= PT_WRITABLE_SHIFT;
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			table_gfn = (*guest_ent & PT_BASE_ADDR_MASK)
				>> PAGE_SHIFT;
		} else {
			metaphysical = 0;
			table_gfn = walker->table_gfn[level - 2];
		}
		shadow_page = kvm_mmu_get_page(vcpu, table_gfn, addr, level-1,
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					       metaphysical, hugepage_access,
					       shadow_ent);
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		shadow_addr = __pa(shadow_page->spt);
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		shadow_pte = shadow_addr | PT_PRESENT_MASK | PT_ACCESSED_MASK
			| PT_WRITABLE_MASK | PT_USER_MASK;
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		*shadow_ent = shadow_pte;
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		prev_shadow_ent = shadow_ent;
	}
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	if (walker->level == PT_DIRECTORY_LEVEL) {
		if (prev_shadow_ent)
			*prev_shadow_ent |= PT_SHADOW_PS_MARK;
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		FNAME(set_pde)(vcpu, guest_ent, shadow_ent,
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			       walker->inherited_ar, user_fault, write_fault,
			       ptwrite, walker, walker->gfn);
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	} else {
		ASSERT(walker->level == PT_PAGE_TABLE_LEVEL);
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		FNAME(set_pte)(vcpu, guest_ent, shadow_ent,
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			       walker->inherited_ar, user_fault, write_fault,
			       ptwrite, walker, walker->gfn);
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	}
	return shadow_ent;
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}

/*
 * Page fault handler.  There are several causes for a page fault:
 *   - there is no shadow pte for the guest pte
 *   - write access through a shadow pte marked read only so that we can set
 *     the dirty bit
 *   - write access to a shadow pte marked read only so we can update the page
 *     dirty bitmap, when userspace requests it
 *   - mmio access; in this case we will never install a present shadow pte
 *   - normal guest page fault due to the guest pte marked not present, not
 *     writable, or not executable
 *
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 *  Returns: 1 if we need to emulate the instruction, 0 otherwise, or
 *           a negative value on error.
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 */
static int FNAME(page_fault)(struct kvm_vcpu *vcpu, gva_t addr,
			       u32 error_code)
{
	int write_fault = error_code & PFERR_WRITE_MASK;
	int user_fault = error_code & PFERR_USER_MASK;
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	int fetch_fault = error_code & PFERR_FETCH_MASK;
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	struct guest_walker walker;
	u64 *shadow_pte;
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	int write_pt = 0;
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	int r;
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	pgprintk("%s: addr %lx err %x\n", __FUNCTION__, addr, error_code);
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	kvm_mmu_audit(vcpu, "pre page fault");
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	r = mmu_topup_memory_caches(vcpu);
	if (r)
		return r;
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	/*
	 * Look up the shadow pte for the faulting address.
	 */
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	r = FNAME(walk_addr)(&walker, vcpu, addr, write_fault, user_fault,
			     fetch_fault);
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	/*
	 * The page is not mapped by the guest.  Let the guest handle it.
	 */
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	if (!r) {
		pgprintk("%s: guest page fault\n", __FUNCTION__);
		inject_page_fault(vcpu, addr, walker.error_code);
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		FNAME(release_walker)(&walker);
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		vcpu->last_pt_write_count = 0; /* reset fork detector */
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		return 0;
	}

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	shadow_pte = FNAME(fetch)(vcpu, addr, &walker, user_fault, write_fault,
				  &write_pt);
	pgprintk("%s: shadow pte %p %llx ptwrite %d\n", __FUNCTION__,
		 shadow_pte, *shadow_pte, write_pt);
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	FNAME(release_walker)(&walker);

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	if (!write_pt)
		vcpu->last_pt_write_count = 0; /* reset fork detector */

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	/*
	 * mmio: emulate if accessible, otherwise its a guest fault.
	 */
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	if (is_io_pte(*shadow_pte))
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		return 1;
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	++vcpu->stat.pf_fixed;
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	kvm_mmu_audit(vcpu, "post page fault (fixed)");
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	return write_pt;
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}

static gpa_t FNAME(gva_to_gpa)(struct kvm_vcpu *vcpu, gva_t vaddr)
{
	struct guest_walker walker;
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	gpa_t gpa = UNMAPPED_GVA;
	int r;
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	r = FNAME(walk_addr)(&walker, vcpu, vaddr, 0, 0, 0);
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	if (r) {
		gpa = (gpa_t)walker.gfn << PAGE_SHIFT;
		gpa |= vaddr & ~PAGE_MASK;
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	}

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	FNAME(release_walker)(&walker);
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	return gpa;
}

#undef pt_element_t
#undef guest_walker
#undef FNAME
#undef PT_BASE_ADDR_MASK
#undef PT_INDEX
#undef SHADOW_PT_INDEX
#undef PT_LEVEL_MASK
#undef PT_PTE_COPY_MASK
#undef PT_NON_PTE_COPY_MASK
#undef PT_DIR_BASE_ADDR_MASK
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#undef PT_MAX_FULL_LEVELS