paging_tmpl.h 22.2 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 affiliates.
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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.
 *
 */

/*
 * 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
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	#define PT_LVL_ADDR_MASK(lvl) PT64_LVL_ADDR_MASK(lvl)
	#define PT_LVL_OFFSET_MASK(lvl) PT64_LVL_OFFSET_MASK(lvl)
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	#define PT_INDEX(addr, level) PT64_INDEX(addr, level)
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	#define PT_LEVEL_BITS PT64_LEVEL_BITS
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	#ifdef CONFIG_X86_64
	#define PT_MAX_FULL_LEVELS 4
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	#define CMPXCHG cmpxchg
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	#else
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	#define CMPXCHG cmpxchg64
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	#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
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	#define PT_LVL_ADDR_MASK(lvl) PT32_LVL_ADDR_MASK(lvl)
	#define PT_LVL_OFFSET_MASK(lvl) PT32_LVL_OFFSET_MASK(lvl)
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	#define PT_INDEX(addr, level) PT32_INDEX(addr, level)
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	#define PT_LEVEL_BITS PT32_LEVEL_BITS
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	#define PT_MAX_FULL_LEVELS 2
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	#define CMPXCHG cmpxchg
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#else
	#error Invalid PTTYPE value
#endif

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#define gpte_to_gfn_lvl FNAME(gpte_to_gfn_lvl)
#define gpte_to_gfn(pte) gpte_to_gfn_lvl((pte), PT_PAGE_TABLE_LEVEL)
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/*
 * 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 ptes[PT_MAX_FULL_LEVELS];
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	pt_element_t prefetch_ptes[PTE_PREFETCH_NUM];
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	gpa_t pte_gpa[PT_MAX_FULL_LEVELS];
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	unsigned pt_access;
	unsigned pte_access;
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	gfn_t gfn;
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	struct x86_exception fault;
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};

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static gfn_t gpte_to_gfn_lvl(pt_element_t gpte, int lvl)
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{
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	return (gpte & PT_LVL_ADDR_MASK(lvl)) >> PAGE_SHIFT;
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}

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static int FNAME(cmpxchg_gpte)(struct kvm_vcpu *vcpu, struct kvm_mmu *mmu,
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			 gfn_t table_gfn, unsigned index,
			 pt_element_t orig_pte, pt_element_t new_pte)
{
	pt_element_t ret;
	pt_element_t *table;
	struct page *page;
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	gpa_t gpa;
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	gpa = mmu->translate_gpa(vcpu, table_gfn << PAGE_SHIFT,
				 PFERR_USER_MASK|PFERR_WRITE_MASK);
	if (gpa == UNMAPPED_GVA)
		return -EFAULT;

	page = gfn_to_page(vcpu->kvm, gpa_to_gfn(gpa));
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	table = kmap_atomic(page, KM_USER0);
	ret = CMPXCHG(&table[index], orig_pte, new_pte);
	kunmap_atomic(table, KM_USER0);

	kvm_release_page_dirty(page);

	return (ret != orig_pte);
}

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static unsigned FNAME(gpte_access)(struct kvm_vcpu *vcpu, pt_element_t gpte)
{
	unsigned access;

	access = (gpte & (PT_WRITABLE_MASK | PT_USER_MASK)) | ACC_EXEC_MASK;
#if PTTYPE == 64
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	if (vcpu->arch.mmu.nx)
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		access &= ~(gpte >> PT64_NX_SHIFT);
#endif
	return access;
}

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static int FNAME(read_gpte)(pt_element_t *pte, pt_element_t __user *ptep_user)
{
#if defined(CONFIG_X86_32) && (PTTYPE == 64)
	u32 *p = (u32 *)pte;
	u32 __user *p_user = (u32 __user *)ptep_user;

	if (unlikely(get_user(*p, p_user)))
		return -EFAULT;
	return get_user(*(p + 1), p_user + 1);
#else
	return get_user(*pte, ptep_user);
#endif
}

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/*
 * Fetch a guest pte for a guest virtual address
 */
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static int FNAME(walk_addr_generic)(struct guest_walker *walker,
				    struct kvm_vcpu *vcpu, struct kvm_mmu *mmu,
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				    gva_t addr, u32 access)
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{
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	pt_element_t pte;
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	pt_element_t __user *ptep_user;
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	gfn_t table_gfn;
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	unsigned index, pt_access, uninitialized_var(pte_access);
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	gpa_t pte_gpa;
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	bool eperm, present, rsvd_fault;
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	int offset, write_fault, user_fault, fetch_fault;

	write_fault = access & PFERR_WRITE_MASK;
	user_fault = access & PFERR_USER_MASK;
	fetch_fault = access & PFERR_FETCH_MASK;
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	trace_kvm_mmu_pagetable_walk(addr, write_fault, user_fault,
				     fetch_fault);
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walk:
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	present = true;
	eperm = rsvd_fault = false;
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	walker->level = mmu->root_level;
	pte           = mmu->get_cr3(vcpu);

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#if PTTYPE == 64
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	if (walker->level == PT32E_ROOT_LEVEL) {
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		pte = kvm_pdptr_read_mmu(vcpu, mmu, (addr >> 30) & 3);
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		trace_kvm_mmu_paging_element(pte, walker->level);
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		if (!is_present_gpte(pte)) {
			present = false;
			goto error;
		}
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		--walker->level;
	}
#endif
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	ASSERT((!is_long_mode(vcpu) && is_pae(vcpu)) ||
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	       (mmu->get_cr3(vcpu) & CR3_NONPAE_RESERVED_BITS) == 0);
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	pt_access = ACC_ALL;
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	for (;;) {
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		gfn_t real_gfn;
		unsigned long host_addr;

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		index = PT_INDEX(addr, walker->level);
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		table_gfn = gpte_to_gfn(pte);
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		offset    = index * sizeof(pt_element_t);
		pte_gpa   = gfn_to_gpa(table_gfn) + offset;
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		walker->table_gfn[walker->level - 1] = table_gfn;
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		walker->pte_gpa[walker->level - 1] = pte_gpa;
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		real_gfn = mmu->translate_gpa(vcpu, gfn_to_gpa(table_gfn),
					      PFERR_USER_MASK|PFERR_WRITE_MASK);
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		if (unlikely(real_gfn == UNMAPPED_GVA)) {
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			present = false;
			break;
		}
		real_gfn = gpa_to_gfn(real_gfn);

		host_addr = gfn_to_hva(vcpu->kvm, real_gfn);
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		if (unlikely(kvm_is_error_hva(host_addr))) {
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			present = false;
			break;
		}

		ptep_user = (pt_element_t __user *)((void *)host_addr + offset);
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		if (unlikely(FNAME(read_gpte)(&pte, ptep_user))) {
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			present = false;
			break;
		}
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		trace_kvm_mmu_paging_element(pte, walker->level);
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		if (unlikely(!is_present_gpte(pte))) {
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			present = false;
			break;
		}
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		if (unlikely(is_rsvd_bits_set(&vcpu->arch.mmu, pte,
					      walker->level))) {
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			rsvd_fault = true;
			break;
		}
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		if (unlikely(write_fault && !is_writable_pte(pte)
			     && (user_fault || is_write_protection(vcpu))))
			eperm = true;
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		if (unlikely(user_fault && !(pte & PT_USER_MASK)))
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			eperm = true;
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#if PTTYPE == 64
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		if (unlikely(fetch_fault && (pte & PT64_NX_MASK)))
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			eperm = true;
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#endif

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		if (!eperm && !rsvd_fault
		    && unlikely(!(pte & PT_ACCESSED_MASK))) {
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			int ret;
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			trace_kvm_mmu_set_accessed_bit(table_gfn, index,
						       sizeof(pte));
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			ret = FNAME(cmpxchg_gpte)(vcpu, mmu, table_gfn,
					index, pte, pte|PT_ACCESSED_MASK);
			if (ret < 0) {
				present = false;
				break;
			} else if (ret)
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				goto walk;
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			mark_page_dirty(vcpu->kvm, table_gfn);
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			pte |= PT_ACCESSED_MASK;
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		}
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		pte_access = pt_access & FNAME(gpte_access)(vcpu, pte);
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		walker->ptes[walker->level - 1] = pte;

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		if ((walker->level == PT_PAGE_TABLE_LEVEL) ||
		    ((walker->level == PT_DIRECTORY_LEVEL) &&
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				is_large_pte(pte) &&
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				(PTTYPE == 64 || is_pse(vcpu))) ||
		    ((walker->level == PT_PDPE_LEVEL) &&
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				is_large_pte(pte) &&
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				mmu->root_level == PT64_ROOT_LEVEL)) {
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			int lvl = walker->level;
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			gpa_t real_gpa;
			gfn_t gfn;
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			u32 ac;
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			gfn = gpte_to_gfn_lvl(pte, lvl);
			gfn += (addr & PT_LVL_OFFSET_MASK(lvl)) >> PAGE_SHIFT;
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			if (PTTYPE == 32 &&
			    walker->level == PT_DIRECTORY_LEVEL &&
			    is_cpuid_PSE36())
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				gfn += pse36_gfn_delta(pte);

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			ac = write_fault | fetch_fault | user_fault;
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			real_gpa = mmu->translate_gpa(vcpu, gfn_to_gpa(gfn),
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						      ac);
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			if (real_gpa == UNMAPPED_GVA)
				return 0;

			walker->gfn = real_gpa >> PAGE_SHIFT;
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			break;
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		}
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		pt_access = pte_access;
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		--walker->level;
	}
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	if (unlikely(!present || eperm || rsvd_fault))
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		goto error;

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	if (write_fault && unlikely(!is_dirty_gpte(pte))) {
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		int ret;
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		trace_kvm_mmu_set_dirty_bit(table_gfn, index, sizeof(pte));
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		ret = FNAME(cmpxchg_gpte)(vcpu, mmu, table_gfn, index, pte,
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			    pte|PT_DIRTY_MASK);
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		if (ret < 0) {
			present = false;
			goto error;
		} else if (ret)
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			goto walk;
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		mark_page_dirty(vcpu->kvm, table_gfn);
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		pte |= PT_DIRTY_MASK;
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		walker->ptes[walker->level - 1] = pte;
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	}

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	walker->pt_access = pt_access;
	walker->pte_access = pte_access;
	pgprintk("%s: pte %llx pte_access %x pt_access %x\n",
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		 __func__, (u64)pte, pte_access, pt_access);
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	return 1;

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error:
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	walker->fault.vector = PF_VECTOR;
	walker->fault.error_code_valid = true;
	walker->fault.error_code = 0;
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	if (present)
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		walker->fault.error_code |= PFERR_PRESENT_MASK;
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	walker->fault.error_code |= write_fault | user_fault;
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	if (fetch_fault && mmu->nx)
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		walker->fault.error_code |= PFERR_FETCH_MASK;
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	if (rsvd_fault)
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		walker->fault.error_code |= PFERR_RSVD_MASK;
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	walker->fault.address = addr;
	walker->fault.nested_page_fault = mmu != vcpu->arch.walk_mmu;
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	trace_kvm_mmu_walker_error(walker->fault.error_code);
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	return 0;
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}

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static int FNAME(walk_addr)(struct guest_walker *walker,
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			    struct kvm_vcpu *vcpu, gva_t addr, u32 access)
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{
	return FNAME(walk_addr_generic)(walker, vcpu, &vcpu->arch.mmu, addr,
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					access);
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}

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static int FNAME(walk_addr_nested)(struct guest_walker *walker,
				   struct kvm_vcpu *vcpu, gva_t addr,
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				   u32 access)
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{
	return FNAME(walk_addr_generic)(walker, vcpu, &vcpu->arch.nested_mmu,
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					addr, access);
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}

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static bool FNAME(prefetch_invalid_gpte)(struct kvm_vcpu *vcpu,
				    struct kvm_mmu_page *sp, u64 *spte,
				    pt_element_t gpte)
{
	u64 nonpresent = shadow_trap_nonpresent_pte;

	if (is_rsvd_bits_set(&vcpu->arch.mmu, gpte, PT_PAGE_TABLE_LEVEL))
		goto no_present;

	if (!is_present_gpte(gpte)) {
		if (!sp->unsync)
			nonpresent = shadow_notrap_nonpresent_pte;
		goto no_present;
	}

	if (!(gpte & PT_ACCESSED_MASK))
		goto no_present;

	return false;

no_present:
	drop_spte(vcpu->kvm, spte, nonpresent);
	return true;
}

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static void FNAME(update_pte)(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp,
377
			      u64 *spte, const void *pte)
378 379
{
	pt_element_t gpte;
380
	unsigned pte_access;
381
	pfn_t pfn;
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	gpte = *(const pt_element_t *)pte;
384
	if (FNAME(prefetch_invalid_gpte)(vcpu, sp, spte, gpte))
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		return;
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387
	pgprintk("%s: gpte %llx spte %p\n", __func__, (u64)gpte, spte);
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	pte_access = sp->role.access & FNAME(gpte_access)(vcpu, gpte);
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	pfn = gfn_to_pfn_atomic(vcpu->kvm, gpte_to_gfn(gpte));
	if (is_error_pfn(pfn)) {
		kvm_release_pfn_clean(pfn);
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		return;
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	}

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	/*
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	 * we call mmu_set_spte() with host_writable = true because that
397 398
	 * vcpu->arch.update_pte.pfn was fetched from get_user_pages(write = 1).
	 */
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	mmu_set_spte(vcpu, spte, sp->role.access, pte_access, 0, 0,
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		     is_dirty_gpte(gpte), NULL, PT_PAGE_TABLE_LEVEL,
401
		     gpte_to_gfn(gpte), pfn, true, true);
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}

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static bool FNAME(gpte_changed)(struct kvm_vcpu *vcpu,
				struct guest_walker *gw, int level)
{
	pt_element_t curr_pte;
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	gpa_t base_gpa, pte_gpa = gw->pte_gpa[level - 1];
	u64 mask;
	int r, index;

	if (level == PT_PAGE_TABLE_LEVEL) {
		mask = PTE_PREFETCH_NUM * sizeof(pt_element_t) - 1;
		base_gpa = pte_gpa & ~mask;
		index = (pte_gpa - base_gpa) / sizeof(pt_element_t);

		r = kvm_read_guest_atomic(vcpu->kvm, base_gpa,
				gw->prefetch_ptes, sizeof(gw->prefetch_ptes));
		curr_pte = gw->prefetch_ptes[index];
	} else
		r = kvm_read_guest_atomic(vcpu->kvm, pte_gpa,
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				  &curr_pte, sizeof(curr_pte));
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	return r || curr_pte != gw->ptes[level - 1];
}

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static void FNAME(pte_prefetch)(struct kvm_vcpu *vcpu, struct guest_walker *gw,
				u64 *sptep)
429 430
{
	struct kvm_mmu_page *sp;
431
	pt_element_t *gptep = gw->prefetch_ptes;
432
	u64 *spte;
433
	int i;
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	sp = page_header(__pa(sptep));

	if (sp->role.level > PT_PAGE_TABLE_LEVEL)
		return;

	if (sp->role.direct)
		return __direct_pte_prefetch(vcpu, sp, sptep);

	i = (sptep - sp->spt) & ~(PTE_PREFETCH_NUM - 1);
	spte = sp->spt + i;

	for (i = 0; i < PTE_PREFETCH_NUM; i++, spte++) {
		pt_element_t gpte;
		unsigned pte_access;
		gfn_t gfn;
		pfn_t pfn;
		bool dirty;

		if (spte == sptep)
			continue;

		if (*spte != shadow_trap_nonpresent_pte)
			continue;

		gpte = gptep[i];

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		if (FNAME(prefetch_invalid_gpte)(vcpu, sp, spte, gpte))
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			continue;

		pte_access = sp->role.access & FNAME(gpte_access)(vcpu, gpte);
		gfn = gpte_to_gfn(gpte);
		dirty = is_dirty_gpte(gpte);
		pfn = pte_prefetch_gfn_to_pfn(vcpu, gfn,
				      (pte_access & ACC_WRITE_MASK) && dirty);
		if (is_error_pfn(pfn)) {
			kvm_release_pfn_clean(pfn);
			break;
		}

		mmu_set_spte(vcpu, spte, sp->role.access, pte_access, 0, 0,
			     dirty, NULL, PT_PAGE_TABLE_LEVEL, gfn,
			     pfn, true, true);
	}
}

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/*
 * Fetch a shadow pte for a specific level in the paging hierarchy.
 */
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static u64 *FNAME(fetch)(struct kvm_vcpu *vcpu, gva_t addr,
			 struct guest_walker *gw,
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			 int user_fault, int write_fault, int hlevel,
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			 int *ptwrite, pfn_t pfn, bool map_writable,
			 bool prefault)
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{
489
	unsigned access = gw->pt_access;
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	struct kvm_mmu_page *sp = NULL;
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	bool dirty = is_dirty_gpte(gw->ptes[gw->level - 1]);
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	int top_level;
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	unsigned direct_access;
494
	struct kvm_shadow_walk_iterator it;
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496
	if (!is_present_gpte(gw->ptes[gw->level - 1]))
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		return NULL;
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	direct_access = gw->pt_access & gw->pte_access;
	if (!dirty)
		direct_access &= ~ACC_WRITE_MASK;

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	top_level = vcpu->arch.mmu.root_level;
	if (top_level == PT32E_ROOT_LEVEL)
		top_level = PT32_ROOT_LEVEL;
	/*
	 * Verify that the top-level gpte is still there.  Since the page
	 * is a root page, it is either write protected (and cannot be
	 * changed from now on) or it is invalid (in which case, we don't
	 * really care if it changes underneath us after this point).
	 */
	if (FNAME(gpte_changed)(vcpu, gw, top_level))
		goto out_gpte_changed;

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	for (shadow_walk_init(&it, vcpu, addr);
	     shadow_walk_okay(&it) && it.level > gw->level;
	     shadow_walk_next(&it)) {
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		gfn_t table_gfn;

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		drop_large_spte(vcpu, it.sptep);
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		sp = NULL;
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		if (!is_shadow_present_pte(*it.sptep)) {
			table_gfn = gw->table_gfn[it.level - 2];
			sp = kvm_mmu_get_page(vcpu, table_gfn, addr, it.level-1,
					      false, access, it.sptep);
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		}
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		/*
		 * Verify that the gpte in the page we've just write
		 * protected is still there.
		 */
533
		if (FNAME(gpte_changed)(vcpu, gw, it.level - 1))
534
			goto out_gpte_changed;
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536
		if (sp)
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			link_shadow_page(it.sptep, sp);
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	}
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540
	for (;
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	     shadow_walk_okay(&it) && it.level > hlevel;
	     shadow_walk_next(&it)) {
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		gfn_t direct_gfn;

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		validate_direct_spte(vcpu, it.sptep, direct_access);
546

547
		drop_large_spte(vcpu, it.sptep);
548

549
		if (is_shadow_present_pte(*it.sptep))
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			continue;

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		direct_gfn = gw->gfn & ~(KVM_PAGES_PER_HPAGE(it.level) - 1);
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		sp = kvm_mmu_get_page(vcpu, direct_gfn, addr, it.level-1,
				      true, direct_access, it.sptep);
		link_shadow_page(it.sptep, sp);
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	}

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	mmu_set_spte(vcpu, it.sptep, access, gw->pte_access & access,
		     user_fault, write_fault, dirty, ptwrite, it.level,
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		     gw->gfn, pfn, prefault, map_writable);
562
	FNAME(pte_prefetch)(vcpu, gw, it.sptep);
563

564
	return it.sptep;
565 566

out_gpte_changed:
567
	if (sp)
568
		kvm_mmu_put_page(sp, it.sptep);
569 570
	kvm_release_pfn_clean(pfn);
	return NULL;
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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
 *
584 585
 *  Returns: 1 if we need to emulate the instruction, 0 otherwise, or
 *           a negative value on error.
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 */
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static int FNAME(page_fault)(struct kvm_vcpu *vcpu, gva_t addr, u32 error_code,
588
			     bool prefault)
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{
	int write_fault = error_code & PFERR_WRITE_MASK;
	int user_fault = error_code & PFERR_USER_MASK;
	struct guest_walker walker;
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	u64 *sptep;
594
	int write_pt = 0;
595
	int r;
596
	pfn_t pfn;
597
	int level = PT_PAGE_TABLE_LEVEL;
598
	int force_pt_level;
599
	unsigned long mmu_seq;
600
	bool map_writable;
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602
	pgprintk("%s: addr %lx err %x\n", __func__, addr, error_code);
603

604 605 606
	r = mmu_topup_memory_caches(vcpu);
	if (r)
		return r;
607

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	/*
609
	 * Look up the guest pte for the faulting address.
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	 */
611
	r = FNAME(walk_addr)(&walker, vcpu, addr, error_code);
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	/*
	 * The page is not mapped by the guest.  Let the guest handle it.
	 */
616
	if (!r) {
617
		pgprintk("%s: guest page fault\n", __func__);
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		if (!prefault) {
			inject_page_fault(vcpu, &walker.fault);
			/* reset fork detector */
			vcpu->arch.last_pt_write_count = 0;
		}
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		return 0;
	}

626 627 628 629 630
	if (walker.level >= PT_DIRECTORY_LEVEL)
		force_pt_level = mapping_level_dirty_bitmap(vcpu, walker.gfn);
	else
		force_pt_level = 1;
	if (!force_pt_level) {
631 632
		level = min(walker.level, mapping_level(vcpu, walker.gfn));
		walker.gfn = walker.gfn & ~(KVM_PAGES_PER_HPAGE(level) - 1);
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	}
634

635
	mmu_seq = vcpu->kvm->mmu_notifier_seq;
636
	smp_rmb();
637

638
	if (try_async_pf(vcpu, prefault, walker.gfn, addr, &pfn, write_fault,
639
			 &map_writable))
640
		return 0;
641

642
	/* mmio */
643 644
	if (is_error_pfn(pfn))
		return kvm_handle_bad_page(vcpu->kvm, walker.gfn, pfn);
645

646
	spin_lock(&vcpu->kvm->mmu_lock);
647 648
	if (mmu_notifier_retry(vcpu, mmu_seq))
		goto out_unlock;
649

650
	trace_kvm_mmu_audit(vcpu, AUDIT_PRE_PAGE_FAULT);
651
	kvm_mmu_free_some_pages(vcpu);
652 653
	if (!force_pt_level)
		transparent_hugepage_adjust(vcpu, &walker.gfn, &pfn, &level);
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	sptep = FNAME(fetch)(vcpu, addr, &walker, user_fault, write_fault,
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			     level, &write_pt, pfn, map_writable, prefault);
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	(void)sptep;
657
	pgprintk("%s: shadow pte %p %llx ptwrite %d\n", __func__,
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		 sptep, *sptep, write_pt);
659

660
	if (!write_pt)
661
		vcpu->arch.last_pt_write_count = 0; /* reset fork detector */
662

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	++vcpu->stat.pf_fixed;
664
	trace_kvm_mmu_audit(vcpu, AUDIT_POST_PAGE_FAULT);
665
	spin_unlock(&vcpu->kvm->mmu_lock);
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667
	return write_pt;
668 669 670 671 672

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

675
static void FNAME(invlpg)(struct kvm_vcpu *vcpu, gva_t gva)
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{
677
	struct kvm_shadow_walk_iterator iterator;
678
	struct kvm_mmu_page *sp;
679
	gpa_t pte_gpa = -1;
680 681
	int level;
	u64 *sptep;
682
	int need_flush = 0;
683 684

	spin_lock(&vcpu->kvm->mmu_lock);
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686 687 688
	for_each_shadow_entry(vcpu, gva, iterator) {
		level = iterator.level;
		sptep = iterator.sptep;
689

690
		sp = page_header(__pa(sptep));
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		if (is_last_spte(*sptep, level)) {
692
			int offset, shift;
693

694 695 696
			if (!sp->unsync)
				break;

697 698 699 700 701
			shift = PAGE_SHIFT -
				  (PT_LEVEL_BITS - PT64_LEVEL_BITS) * level;
			offset = sp->role.quadrant << shift;

			pte_gpa = (sp->gfn << PAGE_SHIFT) + offset;
702
			pte_gpa += (sptep - sp->spt) * sizeof(pt_element_t);
703 704 705 706

			if (is_shadow_present_pte(*sptep)) {
				if (is_large_pte(*sptep))
					--vcpu->kvm->stat.lpages;
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				drop_spte(vcpu->kvm, sptep,
					  shadow_trap_nonpresent_pte);
709
				need_flush = 1;
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			} else
				__set_spte(sptep, shadow_trap_nonpresent_pte);
712
			break;
713
		}
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715
		if (!is_shadow_present_pte(*sptep) || !sp->unsync_children)
716 717
			break;
	}
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719 720
	if (need_flush)
		kvm_flush_remote_tlbs(vcpu->kvm);
721 722 723

	atomic_inc(&vcpu->kvm->arch.invlpg_counter);

724
	spin_unlock(&vcpu->kvm->mmu_lock);
725 726 727 728 729 730 731

	if (pte_gpa == -1)
		return;

	if (mmu_topup_memory_caches(vcpu))
		return;
	kvm_mmu_pte_write(vcpu, pte_gpa, NULL, sizeof(pt_element_t), 0);
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}

734
static gpa_t FNAME(gva_to_gpa)(struct kvm_vcpu *vcpu, gva_t vaddr, u32 access,
735
			       struct x86_exception *exception)
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{
	struct guest_walker walker;
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738 739
	gpa_t gpa = UNMAPPED_GVA;
	int r;
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741
	r = FNAME(walk_addr)(&walker, vcpu, vaddr, access);
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742

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	if (r) {
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		gpa = gfn_to_gpa(walker.gfn);
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		gpa |= vaddr & ~PAGE_MASK;
746 747
	} else if (exception)
		*exception = walker.fault;
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	return gpa;
}

752
static gpa_t FNAME(gva_to_gpa_nested)(struct kvm_vcpu *vcpu, gva_t vaddr,
753 754
				      u32 access,
				      struct x86_exception *exception)
755 756 757 758 759
{
	struct guest_walker walker;
	gpa_t gpa = UNMAPPED_GVA;
	int r;

760
	r = FNAME(walk_addr_nested)(&walker, vcpu, vaddr, access);
761 762 763 764

	if (r) {
		gpa = gfn_to_gpa(walker.gfn);
		gpa |= vaddr & ~PAGE_MASK;
765 766
	} else if (exception)
		*exception = walker.fault;
767 768 769 770

	return gpa;
}

771 772 773
static void FNAME(prefetch_page)(struct kvm_vcpu *vcpu,
				 struct kvm_mmu_page *sp)
{
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	int i, j, offset, r;
	pt_element_t pt[256 / sizeof(pt_element_t)];
	gpa_t pte_gpa;
777

778
	if (sp->role.direct
779
	    || (PTTYPE == 32 && sp->role.level > PT_PAGE_TABLE_LEVEL)) {
780 781 782 783
		nonpaging_prefetch_page(vcpu, sp);
		return;
	}

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784 785
	pte_gpa = gfn_to_gpa(sp->gfn);
	if (PTTYPE == 32) {
786
		offset = sp->role.quadrant << PT64_LEVEL_BITS;
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787 788
		pte_gpa += offset * sizeof(pt_element_t);
	}
789

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	for (i = 0; i < PT64_ENT_PER_PAGE; i += ARRAY_SIZE(pt)) {
		r = kvm_read_guest_atomic(vcpu->kvm, pte_gpa, pt, sizeof pt);
		pte_gpa += ARRAY_SIZE(pt) * sizeof(pt_element_t);
		for (j = 0; j < ARRAY_SIZE(pt); ++j)
794
			if (r || is_present_gpte(pt[j]))
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795 796 797
				sp->spt[i+j] = shadow_trap_nonpresent_pte;
			else
				sp->spt[i+j] = shadow_notrap_nonpresent_pte;
798
	}
799 800
}

801 802 803 804
/*
 * Using the cached information from sp->gfns is safe because:
 * - The spte has a reference to the struct page, so the pfn for a given gfn
 *   can't change unless all sptes pointing to it are nuked first.
805 806 807 808 809 810 811 812
 *
 * Note:
 *   We should flush all tlbs if spte is dropped even though guest is
 *   responsible for it. Since if we don't, kvm_mmu_notifier_invalidate_page
 *   and kvm_mmu_notifier_invalidate_range_start detect the mapping page isn't
 *   used by guest then tlbs are not flushed, so guest is allowed to access the
 *   freed pages.
 *   And we increase kvm->tlbs_dirty to delay tlbs flush in this case.
813
 */
814
static int FNAME(sync_page)(struct kvm_vcpu *vcpu, struct kvm_mmu_page *sp)
815 816
{
	int i, offset, nr_present;
817
	bool host_writable;
818
	gpa_t first_pte_gpa;
819 820 821

	offset = nr_present = 0;

822 823 824
	/* direct kvm_mmu_page can not be unsync. */
	BUG_ON(sp->role.direct);

825 826 827
	if (PTTYPE == 32)
		offset = sp->role.quadrant << PT64_LEVEL_BITS;

828 829
	first_pte_gpa = gfn_to_gpa(sp->gfn) + offset * sizeof(pt_element_t);

830 831 832 833
	for (i = 0; i < PT64_ENT_PER_PAGE; i++) {
		unsigned pte_access;
		pt_element_t gpte;
		gpa_t pte_gpa;
834
		gfn_t gfn;
835 836 837 838

		if (!is_shadow_present_pte(sp->spt[i]))
			continue;

839
		pte_gpa = first_pte_gpa + i * sizeof(pt_element_t);
840 841 842 843 844

		if (kvm_read_guest_atomic(vcpu->kvm, pte_gpa, &gpte,
					  sizeof(pt_element_t)))
			return -EINVAL;

845
		gfn = gpte_to_gfn(gpte);
846 847

		if (FNAME(prefetch_invalid_gpte)(vcpu, sp, &sp->spt[i], gpte)) {
848
			vcpu->kvm->tlbs_dirty++;
849 850 851 852 853 854
			continue;
		}

		if (gfn != sp->gfns[i]) {
			drop_spte(vcpu->kvm, &sp->spt[i],
				      shadow_trap_nonpresent_pte);
855
			vcpu->kvm->tlbs_dirty++;
856 857 858 859 860
			continue;
		}

		nr_present++;
		pte_access = sp->role.access & FNAME(gpte_access)(vcpu, gpte);
861 862
		host_writable = sp->spt[i] & SPTE_HOST_WRITEABLE;

863
		set_spte(vcpu, &sp->spt[i], pte_access, 0, 0,
864
			 is_dirty_gpte(gpte), PT_PAGE_TABLE_LEVEL, gfn,
865
			 spte_to_pfn(sp->spt[i]), true, false,
866
			 host_writable);
867 868 869 870 871
	}

	return !nr_present;
}

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872 873 874 875 876
#undef pt_element_t
#undef guest_walker
#undef FNAME
#undef PT_BASE_ADDR_MASK
#undef PT_INDEX
877 878
#undef PT_LVL_ADDR_MASK
#undef PT_LVL_OFFSET_MASK
879
#undef PT_LEVEL_BITS
880
#undef PT_MAX_FULL_LEVELS
881
#undef gpte_to_gfn
882
#undef gpte_to_gfn_lvl
883
#undef CMPXCHG