vmx.c 69.3 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.
 *
 * Copyright (C) 2006 Qumranet, Inc.
 *
 * Authors:
 *   Avi Kivity   <avi@qumranet.com>
 *   Yaniv Kamay  <yaniv@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 "irq.h"
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#include "vmx.h"
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#include "segment_descriptor.h"
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#include "mmu.h"
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#include <linux/kvm_host.h>
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#include <linux/module.h>
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#include <linux/kernel.h>
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#include <linux/mm.h>
#include <linux/highmem.h>
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#include <linux/sched.h>
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#include <linux/moduleparam.h>
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#include <asm/io.h>
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#include <asm/desc.h>
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MODULE_AUTHOR("Qumranet");
MODULE_LICENSE("GPL");

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static int bypass_guest_pf = 1;
module_param(bypass_guest_pf, bool, 0);

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static int enable_vpid = 1;
module_param(enable_vpid, bool, 0);

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struct vmcs {
	u32 revision_id;
	u32 abort;
	char data[0];
};

struct vcpu_vmx {
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	struct kvm_vcpu       vcpu;
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	int                   launched;
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	u8                    fail;
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	u32                   idt_vectoring_info;
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	struct kvm_msr_entry *guest_msrs;
	struct kvm_msr_entry *host_msrs;
	int                   nmsrs;
	int                   save_nmsrs;
	int                   msr_offset_efer;
#ifdef CONFIG_X86_64
	int                   msr_offset_kernel_gs_base;
#endif
	struct vmcs          *vmcs;
	struct {
		int           loaded;
		u16           fs_sel, gs_sel, ldt_sel;
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		int           gs_ldt_reload_needed;
		int           fs_reload_needed;
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		int           guest_efer_loaded;
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	} host_state;
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	struct {
		struct {
			bool pending;
			u8 vector;
			unsigned rip;
		} irq;
	} rmode;
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	int vpid;
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};

static inline struct vcpu_vmx *to_vmx(struct kvm_vcpu *vcpu)
{
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	return container_of(vcpu, struct vcpu_vmx, vcpu);
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}

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static int init_rmode_tss(struct kvm *kvm);

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static DEFINE_PER_CPU(struct vmcs *, vmxarea);
static DEFINE_PER_CPU(struct vmcs *, current_vmcs);

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static struct page *vmx_io_bitmap_a;
static struct page *vmx_io_bitmap_b;

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static DECLARE_BITMAP(vmx_vpid_bitmap, VMX_NR_VPIDS);
static DEFINE_SPINLOCK(vmx_vpid_lock);

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static struct vmcs_config {
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	int size;
	int order;
	u32 revision_id;
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	u32 pin_based_exec_ctrl;
	u32 cpu_based_exec_ctrl;
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	u32 cpu_based_2nd_exec_ctrl;
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	u32 vmexit_ctrl;
	u32 vmentry_ctrl;
} vmcs_config;
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#define VMX_SEGMENT_FIELD(seg)					\
	[VCPU_SREG_##seg] = {                                   \
		.selector = GUEST_##seg##_SELECTOR,		\
		.base = GUEST_##seg##_BASE,		   	\
		.limit = GUEST_##seg##_LIMIT,		   	\
		.ar_bytes = GUEST_##seg##_AR_BYTES,	   	\
	}

static struct kvm_vmx_segment_field {
	unsigned selector;
	unsigned base;
	unsigned limit;
	unsigned ar_bytes;
} kvm_vmx_segment_fields[] = {
	VMX_SEGMENT_FIELD(CS),
	VMX_SEGMENT_FIELD(DS),
	VMX_SEGMENT_FIELD(ES),
	VMX_SEGMENT_FIELD(FS),
	VMX_SEGMENT_FIELD(GS),
	VMX_SEGMENT_FIELD(SS),
	VMX_SEGMENT_FIELD(TR),
	VMX_SEGMENT_FIELD(LDTR),
};

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/*
 * Keep MSR_K6_STAR at the end, as setup_msrs() will try to optimize it
 * away by decrementing the array size.
 */
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static const u32 vmx_msr_index[] = {
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#ifdef CONFIG_X86_64
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	MSR_SYSCALL_MASK, MSR_LSTAR, MSR_CSTAR, MSR_KERNEL_GS_BASE,
#endif
	MSR_EFER, MSR_K6_STAR,
};
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#define NR_VMX_MSR ARRAY_SIZE(vmx_msr_index)
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static void load_msrs(struct kvm_msr_entry *e, int n)
{
	int i;

	for (i = 0; i < n; ++i)
		wrmsrl(e[i].index, e[i].data);
}

static void save_msrs(struct kvm_msr_entry *e, int n)
{
	int i;

	for (i = 0; i < n; ++i)
		rdmsrl(e[i].index, e[i].data);
}

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static inline int is_page_fault(u32 intr_info)
{
	return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
			     INTR_INFO_VALID_MASK)) ==
		(INTR_TYPE_EXCEPTION | PF_VECTOR | INTR_INFO_VALID_MASK);
}

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static inline int is_no_device(u32 intr_info)
{
	return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
			     INTR_INFO_VALID_MASK)) ==
		(INTR_TYPE_EXCEPTION | NM_VECTOR | INTR_INFO_VALID_MASK);
}

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static inline int is_invalid_opcode(u32 intr_info)
{
	return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
			     INTR_INFO_VALID_MASK)) ==
		(INTR_TYPE_EXCEPTION | UD_VECTOR | INTR_INFO_VALID_MASK);
}

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static inline int is_external_interrupt(u32 intr_info)
{
	return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VALID_MASK))
		== (INTR_TYPE_EXT_INTR | INTR_INFO_VALID_MASK);
}

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static inline int cpu_has_vmx_tpr_shadow(void)
{
	return (vmcs_config.cpu_based_exec_ctrl & CPU_BASED_TPR_SHADOW);
}

static inline int vm_need_tpr_shadow(struct kvm *kvm)
{
	return ((cpu_has_vmx_tpr_shadow()) && (irqchip_in_kernel(kvm)));
}

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static inline int cpu_has_secondary_exec_ctrls(void)
{
	return (vmcs_config.cpu_based_exec_ctrl &
		CPU_BASED_ACTIVATE_SECONDARY_CONTROLS);
}

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static inline bool cpu_has_vmx_virtualize_apic_accesses(void)
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{
	return (vmcs_config.cpu_based_2nd_exec_ctrl &
		SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES);
}

static inline int vm_need_virtualize_apic_accesses(struct kvm *kvm)
{
	return ((cpu_has_vmx_virtualize_apic_accesses()) &&
		(irqchip_in_kernel(kvm)));
}

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static inline int cpu_has_vmx_vpid(void)
{
	return (vmcs_config.cpu_based_2nd_exec_ctrl &
		SECONDARY_EXEC_ENABLE_VPID);
}

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static int __find_msr_index(struct vcpu_vmx *vmx, u32 msr)
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{
	int i;

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	for (i = 0; i < vmx->nmsrs; ++i)
		if (vmx->guest_msrs[i].index == msr)
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			return i;
	return -1;
}

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static inline void __invvpid(int ext, u16 vpid, gva_t gva)
{
    struct {
	u64 vpid : 16;
	u64 rsvd : 48;
	u64 gva;
    } operand = { vpid, 0, gva };

    asm volatile (ASM_VMX_INVVPID
		  /* CF==1 or ZF==1 --> rc = -1 */
		  "; ja 1f ; ud2 ; 1:"
		  : : "a"(&operand), "c"(ext) : "cc", "memory");
}

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static struct kvm_msr_entry *find_msr_entry(struct vcpu_vmx *vmx, u32 msr)
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{
	int i;

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	i = __find_msr_index(vmx, msr);
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	if (i >= 0)
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		return &vmx->guest_msrs[i];
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	return NULL;
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}

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static void vmcs_clear(struct vmcs *vmcs)
{
	u64 phys_addr = __pa(vmcs);
	u8 error;

	asm volatile (ASM_VMX_VMCLEAR_RAX "; setna %0"
		      : "=g"(error) : "a"(&phys_addr), "m"(phys_addr)
		      : "cc", "memory");
	if (error)
		printk(KERN_ERR "kvm: vmclear fail: %p/%llx\n",
		       vmcs, phys_addr);
}

static void __vcpu_clear(void *arg)
{
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	struct vcpu_vmx *vmx = arg;
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	int cpu = raw_smp_processor_id();
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	if (vmx->vcpu.cpu == cpu)
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		vmcs_clear(vmx->vmcs);
	if (per_cpu(current_vmcs, cpu) == vmx->vmcs)
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		per_cpu(current_vmcs, cpu) = NULL;
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	rdtscll(vmx->vcpu.arch.host_tsc);
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}

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static void vcpu_clear(struct vcpu_vmx *vmx)
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{
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	if (vmx->vcpu.cpu == -1)
		return;
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	smp_call_function_single(vmx->vcpu.cpu, __vcpu_clear, vmx, 0, 1);
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	vmx->launched = 0;
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}

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static inline void vpid_sync_vcpu_all(struct vcpu_vmx *vmx)
{
	if (vmx->vpid == 0)
		return;

	__invvpid(VMX_VPID_EXTENT_SINGLE_CONTEXT, vmx->vpid, 0);
}

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static unsigned long vmcs_readl(unsigned long field)
{
	unsigned long value;

	asm volatile (ASM_VMX_VMREAD_RDX_RAX
		      : "=a"(value) : "d"(field) : "cc");
	return value;
}

static u16 vmcs_read16(unsigned long field)
{
	return vmcs_readl(field);
}

static u32 vmcs_read32(unsigned long field)
{
	return vmcs_readl(field);
}

static u64 vmcs_read64(unsigned long field)
{
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#ifdef CONFIG_X86_64
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	return vmcs_readl(field);
#else
	return vmcs_readl(field) | ((u64)vmcs_readl(field+1) << 32);
#endif
}

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static noinline void vmwrite_error(unsigned long field, unsigned long value)
{
	printk(KERN_ERR "vmwrite error: reg %lx value %lx (err %d)\n",
	       field, value, vmcs_read32(VM_INSTRUCTION_ERROR));
	dump_stack();
}

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static void vmcs_writel(unsigned long field, unsigned long value)
{
	u8 error;

	asm volatile (ASM_VMX_VMWRITE_RAX_RDX "; setna %0"
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		       : "=q"(error) : "a"(value), "d"(field) : "cc");
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	if (unlikely(error))
		vmwrite_error(field, value);
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}

static void vmcs_write16(unsigned long field, u16 value)
{
	vmcs_writel(field, value);
}

static void vmcs_write32(unsigned long field, u32 value)
{
	vmcs_writel(field, value);
}

static void vmcs_write64(unsigned long field, u64 value)
{
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#ifdef CONFIG_X86_64
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	vmcs_writel(field, value);
#else
	vmcs_writel(field, value);
	asm volatile ("");
	vmcs_writel(field+1, value >> 32);
#endif
}

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static void vmcs_clear_bits(unsigned long field, u32 mask)
{
	vmcs_writel(field, vmcs_readl(field) & ~mask);
}

static void vmcs_set_bits(unsigned long field, u32 mask)
{
	vmcs_writel(field, vmcs_readl(field) | mask);
}

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static void update_exception_bitmap(struct kvm_vcpu *vcpu)
{
	u32 eb;

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	eb = (1u << PF_VECTOR) | (1u << UD_VECTOR);
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	if (!vcpu->fpu_active)
		eb |= 1u << NM_VECTOR;
	if (vcpu->guest_debug.enabled)
		eb |= 1u << 1;
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	if (vcpu->arch.rmode.active)
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		eb = ~0;
	vmcs_write32(EXCEPTION_BITMAP, eb);
}

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static void reload_tss(void)
{
	/*
	 * VT restores TR but not its size.  Useless.
	 */
	struct descriptor_table gdt;
	struct segment_descriptor *descs;

	get_gdt(&gdt);
	descs = (void *)gdt.base;
	descs[GDT_ENTRY_TSS].type = 9; /* available TSS */
	load_TR_desc();
}

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static void load_transition_efer(struct vcpu_vmx *vmx)
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{
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	int efer_offset = vmx->msr_offset_efer;
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	u64 host_efer = vmx->host_msrs[efer_offset].data;
	u64 guest_efer = vmx->guest_msrs[efer_offset].data;
	u64 ignore_bits;

	if (efer_offset < 0)
		return;
	/*
	 * NX is emulated; LMA and LME handled by hardware; SCE meaninless
	 * outside long mode
	 */
	ignore_bits = EFER_NX | EFER_SCE;
#ifdef CONFIG_X86_64
	ignore_bits |= EFER_LMA | EFER_LME;
	/* SCE is meaningful only in long mode on Intel */
	if (guest_efer & EFER_LMA)
		ignore_bits &= ~(u64)EFER_SCE;
#endif
	if ((guest_efer & ~ignore_bits) == (host_efer & ~ignore_bits))
		return;
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	vmx->host_state.guest_efer_loaded = 1;
	guest_efer &= ~ignore_bits;
	guest_efer |= host_efer & ignore_bits;
	wrmsrl(MSR_EFER, guest_efer);
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	vmx->vcpu.stat.efer_reload++;
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}

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static void reload_host_efer(struct vcpu_vmx *vmx)
{
	if (vmx->host_state.guest_efer_loaded) {
		vmx->host_state.guest_efer_loaded = 0;
		load_msrs(vmx->host_msrs + vmx->msr_offset_efer, 1);
	}
}

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static void vmx_save_host_state(struct kvm_vcpu *vcpu)
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{
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	struct vcpu_vmx *vmx = to_vmx(vcpu);

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	if (vmx->host_state.loaded)
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		return;

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	vmx->host_state.loaded = 1;
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	/*
	 * Set host fs and gs selectors.  Unfortunately, 22.2.3 does not
	 * allow segment selectors with cpl > 0 or ti == 1.
	 */
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	vmx->host_state.ldt_sel = read_ldt();
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	vmx->host_state.gs_ldt_reload_needed = vmx->host_state.ldt_sel;
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	vmx->host_state.fs_sel = read_fs();
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	if (!(vmx->host_state.fs_sel & 7)) {
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		vmcs_write16(HOST_FS_SELECTOR, vmx->host_state.fs_sel);
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		vmx->host_state.fs_reload_needed = 0;
	} else {
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		vmcs_write16(HOST_FS_SELECTOR, 0);
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		vmx->host_state.fs_reload_needed = 1;
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	}
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	vmx->host_state.gs_sel = read_gs();
	if (!(vmx->host_state.gs_sel & 7))
		vmcs_write16(HOST_GS_SELECTOR, vmx->host_state.gs_sel);
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	else {
		vmcs_write16(HOST_GS_SELECTOR, 0);
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		vmx->host_state.gs_ldt_reload_needed = 1;
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	}

#ifdef CONFIG_X86_64
	vmcs_writel(HOST_FS_BASE, read_msr(MSR_FS_BASE));
	vmcs_writel(HOST_GS_BASE, read_msr(MSR_GS_BASE));
#else
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	vmcs_writel(HOST_FS_BASE, segment_base(vmx->host_state.fs_sel));
	vmcs_writel(HOST_GS_BASE, segment_base(vmx->host_state.gs_sel));
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#endif
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#ifdef CONFIG_X86_64
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	if (is_long_mode(&vmx->vcpu))
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		save_msrs(vmx->host_msrs +
			  vmx->msr_offset_kernel_gs_base, 1);
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#endif
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	load_msrs(vmx->guest_msrs, vmx->save_nmsrs);
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	load_transition_efer(vmx);
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}

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static void vmx_load_host_state(struct vcpu_vmx *vmx)
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{
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	unsigned long flags;
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	if (!vmx->host_state.loaded)
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		return;

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	++vmx->vcpu.stat.host_state_reload;
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	vmx->host_state.loaded = 0;
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	if (vmx->host_state.fs_reload_needed)
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		load_fs(vmx->host_state.fs_sel);
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	if (vmx->host_state.gs_ldt_reload_needed) {
		load_ldt(vmx->host_state.ldt_sel);
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		/*
		 * If we have to reload gs, we must take care to
		 * preserve our gs base.
		 */
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		local_irq_save(flags);
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		load_gs(vmx->host_state.gs_sel);
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#ifdef CONFIG_X86_64
		wrmsrl(MSR_GS_BASE, vmcs_readl(HOST_GS_BASE));
#endif
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		local_irq_restore(flags);
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	}
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	reload_tss();
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	save_msrs(vmx->guest_msrs, vmx->save_nmsrs);
	load_msrs(vmx->host_msrs, vmx->save_nmsrs);
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	reload_host_efer(vmx);
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}

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/*
 * Switches to specified vcpu, until a matching vcpu_put(), but assumes
 * vcpu mutex is already taken.
 */
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static void vmx_vcpu_load(struct kvm_vcpu *vcpu, int cpu)
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{
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	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u64 phys_addr = __pa(vmx->vmcs);
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	u64 tsc_this, delta;
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	if (vcpu->cpu != cpu) {
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		vcpu_clear(vmx);
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		kvm_migrate_apic_timer(vcpu);
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		vpid_sync_vcpu_all(vmx);
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	}
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	if (per_cpu(current_vmcs, cpu) != vmx->vmcs) {
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		u8 error;

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		per_cpu(current_vmcs, cpu) = vmx->vmcs;
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		asm volatile (ASM_VMX_VMPTRLD_RAX "; setna %0"
			      : "=g"(error) : "a"(&phys_addr), "m"(phys_addr)
			      : "cc");
		if (error)
			printk(KERN_ERR "kvm: vmptrld %p/%llx fail\n",
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			       vmx->vmcs, phys_addr);
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	}

	if (vcpu->cpu != cpu) {
		struct descriptor_table dt;
		unsigned long sysenter_esp;

		vcpu->cpu = cpu;
		/*
		 * Linux uses per-cpu TSS and GDT, so set these when switching
		 * processors.
		 */
		vmcs_writel(HOST_TR_BASE, read_tr_base()); /* 22.2.4 */
		get_gdt(&dt);
		vmcs_writel(HOST_GDTR_BASE, dt.base);   /* 22.2.4 */

		rdmsrl(MSR_IA32_SYSENTER_ESP, sysenter_esp);
		vmcs_writel(HOST_IA32_SYSENTER_ESP, sysenter_esp); /* 22.2.3 */
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		/*
		 * Make sure the time stamp counter is monotonous.
		 */
		rdtscll(tsc_this);
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		delta = vcpu->arch.host_tsc - tsc_this;
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		vmcs_write64(TSC_OFFSET, vmcs_read64(TSC_OFFSET) + delta);
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	}
}

static void vmx_vcpu_put(struct kvm_vcpu *vcpu)
{
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	vmx_load_host_state(to_vmx(vcpu));
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}

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static void vmx_fpu_activate(struct kvm_vcpu *vcpu)
{
	if (vcpu->fpu_active)
		return;
	vcpu->fpu_active = 1;
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	vmcs_clear_bits(GUEST_CR0, X86_CR0_TS);
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	if (vcpu->arch.cr0 & X86_CR0_TS)
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		vmcs_set_bits(GUEST_CR0, X86_CR0_TS);
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	update_exception_bitmap(vcpu);
}

static void vmx_fpu_deactivate(struct kvm_vcpu *vcpu)
{
	if (!vcpu->fpu_active)
		return;
	vcpu->fpu_active = 0;
589
	vmcs_set_bits(GUEST_CR0, X86_CR0_TS);
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	update_exception_bitmap(vcpu);
}

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static void vmx_vcpu_decache(struct kvm_vcpu *vcpu)
{
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	vcpu_clear(to_vmx(vcpu));
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}

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static unsigned long vmx_get_rflags(struct kvm_vcpu *vcpu)
{
	return vmcs_readl(GUEST_RFLAGS);
}

static void vmx_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags)
{
605
	if (vcpu->arch.rmode.active)
606
		rflags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM;
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	vmcs_writel(GUEST_RFLAGS, rflags);
}

static void skip_emulated_instruction(struct kvm_vcpu *vcpu)
{
	unsigned long rip;
	u32 interruptibility;

	rip = vmcs_readl(GUEST_RIP);
	rip += vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
	vmcs_writel(GUEST_RIP, rip);

	/*
	 * We emulated an instruction, so temporary interrupt blocking
	 * should be removed, if set.
	 */
	interruptibility = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO);
	if (interruptibility & 3)
		vmcs_write32(GUEST_INTERRUPTIBILITY_INFO,
			     interruptibility & ~3);
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	vcpu->arch.interrupt_window_open = 1;
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}

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static void vmx_queue_exception(struct kvm_vcpu *vcpu, unsigned nr,
				bool has_error_code, u32 error_code)
{
	vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
		     nr | INTR_TYPE_EXCEPTION
		     | (has_error_code ? INTR_INFO_DELIEVER_CODE_MASK : 0)
		     | INTR_INFO_VALID_MASK);
	if (has_error_code)
		vmcs_write32(VM_ENTRY_EXCEPTION_ERROR_CODE, error_code);
}

static bool vmx_exception_injected(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	return !(vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK);
}

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/*
 * Swap MSR entry in host/guest MSR entry array.
 */
651
#ifdef CONFIG_X86_64
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static void move_msr_up(struct vcpu_vmx *vmx, int from, int to)
653
{
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	struct kvm_msr_entry tmp;

	tmp = vmx->guest_msrs[to];
	vmx->guest_msrs[to] = vmx->guest_msrs[from];
	vmx->guest_msrs[from] = tmp;
	tmp = vmx->host_msrs[to];
	vmx->host_msrs[to] = vmx->host_msrs[from];
	vmx->host_msrs[from] = tmp;
662
}
663
#endif
664

665 666 667 668 669
/*
 * Set up the vmcs to automatically save and restore system
 * msrs.  Don't touch the 64-bit msrs if the guest is in legacy
 * mode, as fiddling with msrs is very expensive.
 */
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static void setup_msrs(struct vcpu_vmx *vmx)
671
{
672
	int save_nmsrs;
673

674
	vmx_load_host_state(vmx);
675 676
	save_nmsrs = 0;
#ifdef CONFIG_X86_64
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	if (is_long_mode(&vmx->vcpu)) {
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		int index;

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		index = __find_msr_index(vmx, MSR_SYSCALL_MASK);
681
		if (index >= 0)
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			move_msr_up(vmx, index, save_nmsrs++);
		index = __find_msr_index(vmx, MSR_LSTAR);
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		if (index >= 0)
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			move_msr_up(vmx, index, save_nmsrs++);
		index = __find_msr_index(vmx, MSR_CSTAR);
687
		if (index >= 0)
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			move_msr_up(vmx, index, save_nmsrs++);
		index = __find_msr_index(vmx, MSR_KERNEL_GS_BASE);
690
		if (index >= 0)
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			move_msr_up(vmx, index, save_nmsrs++);
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		/*
		 * MSR_K6_STAR is only needed on long mode guests, and only
		 * if efer.sce is enabled.
		 */
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		index = __find_msr_index(vmx, MSR_K6_STAR);
697
		if ((index >= 0) && (vmx->vcpu.arch.shadow_efer & EFER_SCE))
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			move_msr_up(vmx, index, save_nmsrs++);
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	}
#endif
701
	vmx->save_nmsrs = save_nmsrs;
702

703
#ifdef CONFIG_X86_64
704
	vmx->msr_offset_kernel_gs_base =
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		__find_msr_index(vmx, MSR_KERNEL_GS_BASE);
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#endif
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	vmx->msr_offset_efer = __find_msr_index(vmx, MSR_EFER);
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}

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/*
 * reads and returns guest's timestamp counter "register"
 * guest_tsc = host_tsc + tsc_offset    -- 21.3
 */
static u64 guest_read_tsc(void)
{
	u64 host_tsc, tsc_offset;

	rdtscll(host_tsc);
	tsc_offset = vmcs_read64(TSC_OFFSET);
	return host_tsc + tsc_offset;
}

/*
 * writes 'guest_tsc' into guest's timestamp counter "register"
 * guest_tsc = host_tsc + tsc_offset ==> tsc_offset = guest_tsc - host_tsc
 */
static void guest_write_tsc(u64 guest_tsc)
{
	u64 host_tsc;

	rdtscll(host_tsc);
	vmcs_write64(TSC_OFFSET, guest_tsc - host_tsc);
}

/*
 * Reads an msr value (of 'msr_index') into 'pdata'.
 * Returns 0 on success, non-0 otherwise.
 * Assumes vcpu_load() was already called.
 */
static int vmx_get_msr(struct kvm_vcpu *vcpu, u32 msr_index, u64 *pdata)
{
	u64 data;
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	struct kvm_msr_entry *msr;
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	if (!pdata) {
		printk(KERN_ERR "BUG: get_msr called with NULL pdata\n");
		return -EINVAL;
	}

	switch (msr_index) {
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#ifdef CONFIG_X86_64
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	case MSR_FS_BASE:
		data = vmcs_readl(GUEST_FS_BASE);
		break;
	case MSR_GS_BASE:
		data = vmcs_readl(GUEST_GS_BASE);
		break;
	case MSR_EFER:
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		return kvm_get_msr_common(vcpu, msr_index, pdata);
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#endif
	case MSR_IA32_TIME_STAMP_COUNTER:
		data = guest_read_tsc();
		break;
	case MSR_IA32_SYSENTER_CS:
		data = vmcs_read32(GUEST_SYSENTER_CS);
		break;
	case MSR_IA32_SYSENTER_EIP:
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		data = vmcs_readl(GUEST_SYSENTER_EIP);
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		break;
	case MSR_IA32_SYSENTER_ESP:
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		data = vmcs_readl(GUEST_SYSENTER_ESP);
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		break;
	default:
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		msr = find_msr_entry(to_vmx(vcpu), msr_index);
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		if (msr) {
			data = msr->data;
			break;
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		}
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		return kvm_get_msr_common(vcpu, msr_index, pdata);
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	}

	*pdata = data;
	return 0;
}

/*
 * Writes msr value into into the appropriate "register".
 * Returns 0 on success, non-0 otherwise.
 * Assumes vcpu_load() was already called.
 */
static int vmx_set_msr(struct kvm_vcpu *vcpu, u32 msr_index, u64 data)
{
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	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct kvm_msr_entry *msr;
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	int ret = 0;

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	switch (msr_index) {
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#ifdef CONFIG_X86_64
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	case MSR_EFER:
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		ret = kvm_set_msr_common(vcpu, msr_index, data);
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		if (vmx->host_state.loaded) {
			reload_host_efer(vmx);
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			load_transition_efer(vmx);
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		}
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		break;
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	case MSR_FS_BASE:
		vmcs_writel(GUEST_FS_BASE, data);
		break;
	case MSR_GS_BASE:
		vmcs_writel(GUEST_GS_BASE, data);
		break;
#endif
	case MSR_IA32_SYSENTER_CS:
		vmcs_write32(GUEST_SYSENTER_CS, data);
		break;
	case MSR_IA32_SYSENTER_EIP:
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		vmcs_writel(GUEST_SYSENTER_EIP, data);
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		break;
	case MSR_IA32_SYSENTER_ESP:
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		vmcs_writel(GUEST_SYSENTER_ESP, data);
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		break;
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	case MSR_IA32_TIME_STAMP_COUNTER:
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		guest_write_tsc(data);
		break;
	default:
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		msr = find_msr_entry(vmx, msr_index);
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		if (msr) {
			msr->data = data;
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			if (vmx->host_state.loaded)
				load_msrs(vmx->guest_msrs, vmx->save_nmsrs);
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			break;
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		}
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		ret = kvm_set_msr_common(vcpu, msr_index, data);
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	}

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	return ret;
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}

/*
 * Sync the rsp and rip registers into the vcpu structure.  This allows
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 * registers to be accessed by indexing vcpu->arch.regs.
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 */
static void vcpu_load_rsp_rip(struct kvm_vcpu *vcpu)
{
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	vcpu->arch.regs[VCPU_REGS_RSP] = vmcs_readl(GUEST_RSP);
	vcpu->arch.rip = vmcs_readl(GUEST_RIP);
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}

/*
 * Syncs rsp and rip back into the vmcs.  Should be called after possible
 * modification.
 */
static void vcpu_put_rsp_rip(struct kvm_vcpu *vcpu)
{
855 856
	vmcs_writel(GUEST_RSP, vcpu->arch.regs[VCPU_REGS_RSP]);
	vmcs_writel(GUEST_RIP, vcpu->arch.rip);
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}

static int set_guest_debug(struct kvm_vcpu *vcpu, struct kvm_debug_guest *dbg)
{
	unsigned long dr7 = 0x400;
	int old_singlestep;

	old_singlestep = vcpu->guest_debug.singlestep;

	vcpu->guest_debug.enabled = dbg->enabled;
	if (vcpu->guest_debug.enabled) {
		int i;

		dr7 |= 0x200;  /* exact */
		for (i = 0; i < 4; ++i) {
			if (!dbg->breakpoints[i].enabled)
				continue;
			vcpu->guest_debug.bp[i] = dbg->breakpoints[i].address;
			dr7 |= 2 << (i*2);    /* global enable */
			dr7 |= 0 << (i*4+16); /* execution breakpoint */
		}

		vcpu->guest_debug.singlestep = dbg->singlestep;
880
	} else
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		vcpu->guest_debug.singlestep = 0;

	if (old_singlestep && !vcpu->guest_debug.singlestep) {
		unsigned long flags;

		flags = vmcs_readl(GUEST_RFLAGS);
		flags &= ~(X86_EFLAGS_TF | X86_EFLAGS_RF);
		vmcs_writel(GUEST_RFLAGS, flags);
	}

891
	update_exception_bitmap(vcpu);
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	vmcs_writel(GUEST_DR7, dr7);

	return 0;
}

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static int vmx_get_irq(struct kvm_vcpu *vcpu)
{
899
	struct vcpu_vmx *vmx = to_vmx(vcpu);
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	u32 idtv_info_field;

902
	idtv_info_field = vmx->idt_vectoring_info;
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	if (idtv_info_field & INTR_INFO_VALID_MASK) {
		if (is_external_interrupt(idtv_info_field))
			return idtv_info_field & VECTORING_INFO_VECTOR_MASK;
		else
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			printk(KERN_DEBUG "pending exception: not handled yet\n");
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	}
	return -1;
}

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static __init int cpu_has_kvm_support(void)
{
	unsigned long ecx = cpuid_ecx(1);
	return test_bit(5, &ecx); /* CPUID.1:ECX.VMX[bit 5] -> VT */
}

static __init int vmx_disabled_by_bios(void)
{
	u64 msr;

	rdmsrl(MSR_IA32_FEATURE_CONTROL, msr);
923 924 925 926
	return (msr & (MSR_IA32_FEATURE_CONTROL_LOCKED |
		       MSR_IA32_FEATURE_CONTROL_VMXON_ENABLED))
	    == MSR_IA32_FEATURE_CONTROL_LOCKED;
	/* locked but not enabled */
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}

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static void hardware_enable(void *garbage)
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{
	int cpu = raw_smp_processor_id();
	u64 phys_addr = __pa(per_cpu(vmxarea, cpu));
	u64 old;

	rdmsrl(MSR_IA32_FEATURE_CONTROL, old);
936 937 938 939
	if ((old & (MSR_IA32_FEATURE_CONTROL_LOCKED |
		    MSR_IA32_FEATURE_CONTROL_VMXON_ENABLED))
	    != (MSR_IA32_FEATURE_CONTROL_LOCKED |
		MSR_IA32_FEATURE_CONTROL_VMXON_ENABLED))
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		/* enable and lock */
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		wrmsrl(MSR_IA32_FEATURE_CONTROL, old |
		       MSR_IA32_FEATURE_CONTROL_LOCKED |
		       MSR_IA32_FEATURE_CONTROL_VMXON_ENABLED);
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	write_cr4(read_cr4() | X86_CR4_VMXE); /* FIXME: not cpu hotplug safe */
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	asm volatile (ASM_VMX_VMXON_RAX : : "a"(&phys_addr), "m"(phys_addr)
		      : "memory", "cc");
}

static void hardware_disable(void *garbage)
{
	asm volatile (ASM_VMX_VMXOFF : : : "cc");
}

954
static __init int adjust_vmx_controls(u32 ctl_min, u32 ctl_opt,
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				      u32 msr, u32 *result)
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{
	u32 vmx_msr_low, vmx_msr_high;
	u32 ctl = ctl_min | ctl_opt;

	rdmsr(msr, vmx_msr_low, vmx_msr_high);

	ctl &= vmx_msr_high; /* bit == 0 in high word ==> must be zero */
	ctl |= vmx_msr_low;  /* bit == 1 in low word  ==> must be one  */

	/* Ensure minimum (required) set of control bits are supported. */
	if (ctl_min & ~ctl)
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		return -EIO;
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	*result = ctl;
	return 0;
}

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static __init int setup_vmcs_config(struct vmcs_config *vmcs_conf)
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{
	u32 vmx_msr_low, vmx_msr_high;
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	u32 min, opt;
	u32 _pin_based_exec_control = 0;
	u32 _cpu_based_exec_control = 0;
979
	u32 _cpu_based_2nd_exec_control = 0;
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	u32 _vmexit_control = 0;
	u32 _vmentry_control = 0;

	min = PIN_BASED_EXT_INTR_MASK | PIN_BASED_NMI_EXITING;
	opt = 0;
	if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_PINBASED_CTLS,
				&_pin_based_exec_control) < 0)
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		return -EIO;
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	min = CPU_BASED_HLT_EXITING |
#ifdef CONFIG_X86_64
	      CPU_BASED_CR8_LOAD_EXITING |
	      CPU_BASED_CR8_STORE_EXITING |
#endif
	      CPU_BASED_USE_IO_BITMAPS |
	      CPU_BASED_MOV_DR_EXITING |
	      CPU_BASED_USE_TSC_OFFSETING;
997 998
	opt = CPU_BASED_TPR_SHADOW |
	      CPU_BASED_ACTIVATE_SECONDARY_CONTROLS;
999 1000
	if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_PROCBASED_CTLS,
				&_cpu_based_exec_control) < 0)
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		return -EIO;
1002 1003 1004 1005 1006
#ifdef CONFIG_X86_64
	if ((_cpu_based_exec_control & CPU_BASED_TPR_SHADOW))
		_cpu_based_exec_control &= ~CPU_BASED_CR8_LOAD_EXITING &
					   ~CPU_BASED_CR8_STORE_EXITING;
#endif
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	if (_cpu_based_exec_control & CPU_BASED_ACTIVATE_SECONDARY_CONTROLS) {
		min = 0;
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		opt = SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES |
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			SECONDARY_EXEC_WBINVD_EXITING |
			SECONDARY_EXEC_ENABLE_VPID;
1012 1013 1014 1015 1016 1017 1018 1019 1020
		if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_PROCBASED_CTLS2,
					&_cpu_based_2nd_exec_control) < 0)
			return -EIO;
	}
#ifndef CONFIG_X86_64
	if (!(_cpu_based_2nd_exec_control &
				SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES))
		_cpu_based_exec_control &= ~CPU_BASED_TPR_SHADOW;
#endif
1021 1022 1023 1024 1025 1026 1027 1028

	min = 0;
#ifdef CONFIG_X86_64
	min |= VM_EXIT_HOST_ADDR_SPACE_SIZE;
#endif
	opt = 0;
	if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_EXIT_CTLS,
				&_vmexit_control) < 0)
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		return -EIO;
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	min = opt = 0;
	if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_ENTRY_CTLS,
				&_vmentry_control) < 0)
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		return -EIO;
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	rdmsr(MSR_IA32_VMX_BASIC, vmx_msr_low, vmx_msr_high);
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	/* IA-32 SDM Vol 3B: VMCS size is never greater than 4kB. */
	if ((vmx_msr_high & 0x1fff) > PAGE_SIZE)
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		return -EIO;
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#ifdef CONFIG_X86_64
	/* IA-32 SDM Vol 3B: 64-bit CPUs always have VMX_BASIC_MSR[48]==0. */
	if (vmx_msr_high & (1u<<16))
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		return -EIO;
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#endif

	/* Require Write-Back (WB) memory type for VMCS accesses. */
	if (((vmx_msr_high >> 18) & 15) != 6)
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		return -EIO;
1051

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	vmcs_conf->size = vmx_msr_high & 0x1fff;
	vmcs_conf->order = get_order(vmcs_config.size);
	vmcs_conf->revision_id = vmx_msr_low;
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	vmcs_conf->pin_based_exec_ctrl = _pin_based_exec_control;
	vmcs_conf->cpu_based_exec_ctrl = _cpu_based_exec_control;
1058
	vmcs_conf->cpu_based_2nd_exec_ctrl = _cpu_based_2nd_exec_control;
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	vmcs_conf->vmexit_ctrl         = _vmexit_control;
	vmcs_conf->vmentry_ctrl        = _vmentry_control;
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	return 0;
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}
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static struct vmcs *alloc_vmcs_cpu(int cpu)
{
	int node = cpu_to_node(cpu);
	struct page *pages;
	struct vmcs *vmcs;

1071
	pages = alloc_pages_node(node, GFP_KERNEL, vmcs_config.order);
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	if (!pages)
		return NULL;
	vmcs = page_address(pages);
1075 1076
	memset(vmcs, 0, vmcs_config.size);
	vmcs->revision_id = vmcs_config.revision_id; /* vmcs revision id */
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	return vmcs;
}

static struct vmcs *alloc_vmcs(void)
{
1082
	return alloc_vmcs_cpu(raw_smp_processor_id());
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}

static void free_vmcs(struct vmcs *vmcs)
{
1087
	free_pages((unsigned long)vmcs, vmcs_config.order);
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}

1090
static void free_kvm_area(void)
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{
	int cpu;

	for_each_online_cpu(cpu)
		free_vmcs(per_cpu(vmxarea, cpu));
}

static __init int alloc_kvm_area(void)
{
	int cpu;

	for_each_online_cpu(cpu) {
		struct vmcs *vmcs;

		vmcs = alloc_vmcs_cpu(cpu);
		if (!vmcs) {
			free_kvm_area();
			return -ENOMEM;
		}

		per_cpu(vmxarea, cpu) = vmcs;
	}
	return 0;
}

static __init int hardware_setup(void)
{
Y
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	if (setup_vmcs_config(&vmcs_config) < 0)
		return -EIO;
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	return alloc_kvm_area();
}

static __exit void hardware_unsetup(void)
{
	free_kvm_area();
}

static void fix_pmode_dataseg(int seg, struct kvm_save_segment *save)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];

1132
	if (vmcs_readl(sf->base) == save->base && (save->base & AR_S_MASK)) {
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		vmcs_write16(sf->selector, save->selector);
		vmcs_writel(sf->base, save->base);
		vmcs_write32(sf->limit, save->limit);
		vmcs_write32(sf->ar_bytes, save->ar);
	} else {
		u32 dpl = (vmcs_read16(sf->selector) & SELECTOR_RPL_MASK)
			<< AR_DPL_SHIFT;
		vmcs_write32(sf->ar_bytes, 0x93 | dpl);
	}
}

static void enter_pmode(struct kvm_vcpu *vcpu)
{
	unsigned long flags;

1148
	vcpu->arch.rmode.active = 0;
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1150 1151 1152
	vmcs_writel(GUEST_TR_BASE, vcpu->arch.rmode.tr.base);
	vmcs_write32(GUEST_TR_LIMIT, vcpu->arch.rmode.tr.limit);
	vmcs_write32(GUEST_TR_AR_BYTES, vcpu->arch.rmode.tr.ar);
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	flags = vmcs_readl(GUEST_RFLAGS);
1155
	flags &= ~(X86_EFLAGS_IOPL | X86_EFLAGS_VM);
1156
	flags |= (vcpu->arch.rmode.save_iopl << IOPL_SHIFT);
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	vmcs_writel(GUEST_RFLAGS, flags);

1159 1160
	vmcs_writel(GUEST_CR4, (vmcs_readl(GUEST_CR4) & ~X86_CR4_VME) |
			(vmcs_readl(CR4_READ_SHADOW) & X86_CR4_VME));
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	update_exception_bitmap(vcpu);

1164 1165 1166 1167
	fix_pmode_dataseg(VCPU_SREG_ES, &vcpu->arch.rmode.es);
	fix_pmode_dataseg(VCPU_SREG_DS, &vcpu->arch.rmode.ds);
	fix_pmode_dataseg(VCPU_SREG_GS, &vcpu->arch.rmode.gs);
	fix_pmode_dataseg(VCPU_SREG_FS, &vcpu->arch.rmode.fs);
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	vmcs_write16(GUEST_SS_SELECTOR, 0);
	vmcs_write32(GUEST_SS_AR_BYTES, 0x93);

	vmcs_write16(GUEST_CS_SELECTOR,
		     vmcs_read16(GUEST_CS_SELECTOR) & ~SELECTOR_RPL_MASK);
	vmcs_write32(GUEST_CS_AR_BYTES, 0x9b);
}

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static gva_t rmode_tss_base(struct kvm *kvm)
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{
1179
	if (!kvm->arch.tss_addr) {
1180 1181 1182 1183
		gfn_t base_gfn = kvm->memslots[0].base_gfn +
				 kvm->memslots[0].npages - 3;
		return base_gfn << PAGE_SHIFT;
	}
1184
	return kvm->arch.tss_addr;
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}

static void fix_rmode_seg(int seg, struct kvm_save_segment *save)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];

	save->selector = vmcs_read16(sf->selector);
	save->base = vmcs_readl(sf->base);
	save->limit = vmcs_read32(sf->limit);
	save->ar = vmcs_read32(sf->ar_bytes);
1195 1196
	vmcs_write16(sf->selector, save->base >> 4);
	vmcs_write32(sf->base, save->base & 0xfffff);
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	vmcs_write32(sf->limit, 0xffff);
	vmcs_write32(sf->ar_bytes, 0xf3);
}

static void enter_rmode(struct kvm_vcpu *vcpu)
{
	unsigned long flags;

1205
	vcpu->arch.rmode.active = 1;
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1207
	vcpu->arch.rmode.tr.base = vmcs_readl(GUEST_TR_BASE);
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	vmcs_writel(GUEST_TR_BASE, rmode_tss_base(vcpu->kvm));

1210
	vcpu->arch.rmode.tr.limit = vmcs_read32(GUEST_TR_LIMIT);
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	vmcs_write32(GUEST_TR_LIMIT, RMODE_TSS_SIZE - 1);

1213
	vcpu->arch.rmode.tr.ar = vmcs_read32(GUEST_TR_AR_BYTES);
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	vmcs_write32(GUEST_TR_AR_BYTES, 0x008b);

	flags = vmcs_readl(GUEST_RFLAGS);
1217 1218
	vcpu->arch.rmode.save_iopl
		= (flags & X86_EFLAGS_IOPL) >> IOPL_SHIFT;
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1220
	flags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM;
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	vmcs_writel(GUEST_RFLAGS, flags);
1223
	vmcs_writel(GUEST_CR4, vmcs_readl(GUEST_CR4) | X86_CR4_VME);
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	update_exception_bitmap(vcpu);

	vmcs_write16(GUEST_SS_SELECTOR, vmcs_readl(GUEST_SS_BASE) >> 4);
	vmcs_write32(GUEST_SS_LIMIT, 0xffff);
	vmcs_write32(GUEST_SS_AR_BYTES, 0xf3);

	vmcs_write32(GUEST_CS_AR_BYTES, 0xf3);
1231
	vmcs_write32(GUEST_CS_LIMIT, 0xffff);
1232 1233
	if (vmcs_readl(GUEST_CS_BASE) == 0xffff0000)
		vmcs_writel(GUEST_CS_BASE, 0xf0000);
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	vmcs_write16(GUEST_CS_SELECTOR, vmcs_readl(GUEST_CS_BASE) >> 4);

1236 1237 1238 1239
	fix_rmode_seg(VCPU_SREG_ES, &vcpu->arch.rmode.es);
	fix_rmode_seg(VCPU_SREG_DS, &vcpu->arch.rmode.ds);
	fix_rmode_seg(VCPU_SREG_GS, &vcpu->arch.rmode.gs);
	fix_rmode_seg(VCPU_SREG_FS, &vcpu->arch.rmode.fs);
1240

1241
	kvm_mmu_reset_context(vcpu);
1242
	init_rmode_tss(vcpu->kvm);
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}

1245
#ifdef CONFIG_X86_64
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static void enter_lmode(struct kvm_vcpu *vcpu)
{
	u32 guest_tr_ar;

	guest_tr_ar = vmcs_read32(GUEST_TR_AR_BYTES);
	if ((guest_tr_ar & AR_TYPE_MASK) != AR_TYPE_BUSY_64_TSS) {
		printk(KERN_DEBUG "%s: tss fixup for long mode. \n",
		       __FUNCTION__);
		vmcs_write32(GUEST_TR_AR_BYTES,
			     (guest_tr_ar & ~AR_TYPE_MASK)
			     | AR_TYPE_BUSY_64_TSS);
	}

1260
	vcpu->arch.shadow_efer |= EFER_LMA;
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	find_msr_entry(to_vmx(vcpu), MSR_EFER)->data |= EFER_LMA | EFER_LME;
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	vmcs_write32(VM_ENTRY_CONTROLS,
		     vmcs_read32(VM_ENTRY_CONTROLS)
1265
		     | VM_ENTRY_IA32E_MODE);
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}

static void exit_lmode(struct kvm_vcpu *vcpu)
{
1270
	vcpu->arch.shadow_efer &= ~EFER_LMA;
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	vmcs_write32(VM_ENTRY_CONTROLS,
		     vmcs_read32(VM_ENTRY_CONTROLS)
1274
		     & ~VM_ENTRY_IA32E_MODE);
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}

#endif

1279 1280 1281 1282 1283
static void vmx_flush_tlb(struct kvm_vcpu *vcpu)
{
	vpid_sync_vcpu_all(to_vmx(vcpu));
}

1284
static void vmx_decache_cr4_guest_bits(struct kvm_vcpu *vcpu)
1285
{
1286 1287
	vcpu->arch.cr4 &= KVM_GUEST_CR4_MASK;
	vcpu->arch.cr4 |= vmcs_readl(GUEST_CR4) & ~KVM_GUEST_CR4_MASK;
1288 1289
}

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static void vmx_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0)
{
1292 1293
	vmx_fpu_deactivate(vcpu);

1294
	if (vcpu->arch.rmode.active && (cr0 & X86_CR0_PE))
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		enter_pmode(vcpu);

1297
	if (!vcpu->arch.rmode.active && !(cr0 & X86_CR0_PE))
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		enter_rmode(vcpu);

1300
#ifdef CONFIG_X86_64
1301
	if (vcpu->arch.shadow_efer & EFER_LME) {
1302
		if (!is_paging(vcpu) && (cr0 & X86_CR0_PG))
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			enter_lmode(vcpu);
1304
		if (is_paging(vcpu) && !(cr0 & X86_CR0_PG))
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			exit_lmode(vcpu);
	}
#endif

	vmcs_writel(CR0_READ_SHADOW, cr0);
	vmcs_writel(GUEST_CR0,
		    (cr0 & ~KVM_GUEST_CR0_MASK) | KVM_VM_CR0_ALWAYS_ON);
1312
	vcpu->arch.cr0 = cr0;
1313

1314
	if (!(cr0 & X86_CR0_TS) || !(cr0 & X86_CR0_PE))
1315
		vmx_fpu_activate(vcpu);
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}

static void vmx_set_cr3(struct kvm_vcpu *vcpu, unsigned long cr3)
{
1320
	vmx_flush_tlb(vcpu);
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	vmcs_writel(GUEST_CR3, cr3);
1322
	if (vcpu->arch.cr0 & X86_CR0_PE)
1323
		vmx_fpu_deactivate(vcpu);
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}

static void vmx_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4)
{
	vmcs_writel(CR4_READ_SHADOW, cr4);
1329
	vmcs_writel(GUEST_CR4, cr4 | (vcpu->arch.rmode.active ?
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		    KVM_RMODE_VM_CR4_ALWAYS_ON : KVM_PMODE_VM_CR4_ALWAYS_ON));
1331
	vcpu->arch.cr4 = cr4;
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}

1334
#ifdef CONFIG_X86_64
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static void vmx_set_efer(struct kvm_vcpu *vcpu, u64 efer)
{
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	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct kvm_msr_entry *msr = find_msr_entry(vmx, MSR_EFER);
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1341
	vcpu->arch.shadow_efer = efer;
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	if (efer & EFER_LMA) {
		vmcs_write32(VM_ENTRY_CONTROLS,
				     vmcs_read32(VM_ENTRY_CONTROLS) |
1345
				     VM_ENTRY_IA32E_MODE);
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		msr->data = efer;

	} else {
		vmcs_write32(VM_ENTRY_CONTROLS,
				     vmcs_read32(VM_ENTRY_CONTROLS) &
1351
				     ~VM_ENTRY_IA32E_MODE);
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		msr->data = efer & ~EFER_LME;
	}
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	setup_msrs(vmx);
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}

#endif

static u64 vmx_get_segment_base(struct kvm_vcpu *vcpu, int seg)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];

	return vmcs_readl(sf->base);
}

static void vmx_get_segment(struct kvm_vcpu *vcpu,
			    struct kvm_segment *var, int seg)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
	u32 ar;

	var->base = vmcs_readl(sf->base);
	var->limit = vmcs_read32(sf->limit);
	var->selector = vmcs_read16(sf->selector);
	ar = vmcs_read32(sf->ar_bytes);
	if (ar & AR_UNUSABLE_MASK)
		ar = 0;
	var->type = ar & 15;
	var->s = (ar >> 4) & 1;
	var->dpl = (ar >> 5) & 3;
	var->present = (ar >> 7) & 1;
	var->avl = (ar >> 12) & 1;
	var->l = (ar >> 13) & 1;
	var->db = (ar >> 14) & 1;
	var->g = (ar >> 15) & 1;
	var->unusable = (ar >> 16) & 1;
}

1390
static u32 vmx_segment_access_rights(struct kvm_segment *var)
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{
	u32 ar;

1394
	if (var->unusable)
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1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405
		ar = 1 << 16;
	else {
		ar = var->type & 15;
		ar |= (var->s & 1) << 4;
		ar |= (var->dpl & 3) << 5;
		ar |= (var->present & 1) << 7;
		ar |= (var->avl & 1) << 12;
		ar |= (var->l & 1) << 13;
		ar |= (var->db & 1) << 14;
		ar |= (var->g & 1) << 15;
	}
1406 1407
	if (ar == 0) /* a 0 value means unusable */
		ar = AR_UNUSABLE_MASK;
1408 1409 1410 1411 1412 1413 1414 1415 1416 1417

	return ar;
}

static void vmx_set_segment(struct kvm_vcpu *vcpu,
			    struct kvm_segment *var, int seg)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
	u32 ar;

1418 1419 1420 1421 1422
	if (vcpu->arch.rmode.active && seg == VCPU_SREG_TR) {
		vcpu->arch.rmode.tr.selector = var->selector;
		vcpu->arch.rmode.tr.base = var->base;
		vcpu->arch.rmode.tr.limit = var->limit;
		vcpu->arch.rmode.tr.ar = vmx_segment_access_rights(var);
1423 1424 1425 1426 1427
		return;
	}
	vmcs_writel(sf->base, var->base);
	vmcs_write32(sf->limit, var->limit);
	vmcs_write16(sf->selector, var->selector);
1428
	if (vcpu->arch.rmode.active && var->s) {
1429 1430 1431 1432 1433 1434 1435 1436
		/*
		 * Hack real-mode segments into vm86 compatibility.
		 */
		if (var->base == 0xffff0000 && var->selector == 0xf000)
			vmcs_writel(sf->base, 0xf0000);
		ar = 0xf3;
	} else
		ar = vmx_segment_access_rights(var);
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	vmcs_write32(sf->ar_bytes, ar);
}

static void vmx_get_cs_db_l_bits(struct kvm_vcpu *vcpu, int *db, int *l)
{
	u32 ar = vmcs_read32(GUEST_CS_AR_BYTES);

	*db = (ar >> 14) & 1;
	*l = (ar >> 13) & 1;
}

static void vmx_get_idt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
{
	dt->limit = vmcs_read32(GUEST_IDTR_LIMIT);
	dt->base = vmcs_readl(GUEST_IDTR_BASE);
}

static void vmx_set_idt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
{
	vmcs_write32(GUEST_IDTR_LIMIT, dt->limit);
	vmcs_writel(GUEST_IDTR_BASE, dt->base);
}

static void vmx_get_gdt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
{
	dt->limit = vmcs_read32(GUEST_GDTR_LIMIT);
	dt->base = vmcs_readl(GUEST_GDTR_BASE);
}

static void vmx_set_gdt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
{
	vmcs_write32(GUEST_GDTR_LIMIT, dt->limit);
	vmcs_writel(GUEST_GDTR_BASE, dt->base);
}

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static int init_rmode_tss(struct kvm *kvm)
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1473 1474
{
	gfn_t fn = rmode_tss_base(kvm) >> PAGE_SHIFT;
1475
	u16 data = 0;
1476
	int ret = 0;
1477
	int r;
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1478

1479
	down_read(&kvm->slots_lock);
1480 1481
	r = kvm_clear_guest_page(kvm, fn, 0, PAGE_SIZE);
	if (r < 0)
1482
		goto out;
1483 1484 1485
	data = TSS_BASE_SIZE + TSS_REDIRECTION_SIZE;
	r = kvm_write_guest_page(kvm, fn++, &data, 0x66, sizeof(u16));
	if (r < 0)
1486
		goto out;
1487 1488
	r = kvm_clear_guest_page(kvm, fn++, 0, PAGE_SIZE);
	if (r < 0)
1489
		goto out;
1490 1491
	r = kvm_clear_guest_page(kvm, fn, 0, PAGE_SIZE);
	if (r < 0)
1492
		goto out;
1493
	data = ~0;
1494 1495 1496
	r = kvm_write_guest_page(kvm, fn, &data,
				 RMODE_TSS_SIZE - 2 * PAGE_SIZE - 1,
				 sizeof(u8));
1497
	if (r < 0)
1498 1499 1500 1501
		goto out;

	ret = 1;
out:
1502
	up_read(&kvm->slots_lock);
1503
	return ret;
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}

static void seg_setup(int seg)
{
	struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];

	vmcs_write16(sf->selector, 0);
	vmcs_writel(sf->base, 0);
	vmcs_write32(sf->limit, 0xffff);
	vmcs_write32(sf->ar_bytes, 0x93);
}

1516 1517 1518 1519 1520
static int alloc_apic_access_page(struct kvm *kvm)
{
	struct kvm_userspace_memory_region kvm_userspace_mem;
	int r = 0;

1521
	down_write(&kvm->slots_lock);
1522
	if (kvm->arch.apic_access_page)
1523 1524 1525 1526 1527 1528 1529 1530
		goto out;
	kvm_userspace_mem.slot = APIC_ACCESS_PAGE_PRIVATE_MEMSLOT;
	kvm_userspace_mem.flags = 0;
	kvm_userspace_mem.guest_phys_addr = 0xfee00000ULL;
	kvm_userspace_mem.memory_size = PAGE_SIZE;
	r = __kvm_set_memory_region(kvm, &kvm_userspace_mem, 0);
	if (r)
		goto out;
1531 1532

	down_read(&current->mm->mmap_sem);
1533
	kvm->arch.apic_access_page = gfn_to_page(kvm, 0xfee00);
1534
	up_read(&current->mm->mmap_sem);
1535
out:
1536
	up_write(&kvm->slots_lock);
1537 1538 1539
	return r;
}

1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555
static void allocate_vpid(struct vcpu_vmx *vmx)
{
	int vpid;

	vmx->vpid = 0;
	if (!enable_vpid || !cpu_has_vmx_vpid())
		return;
	spin_lock(&vmx_vpid_lock);
	vpid = find_first_zero_bit(vmx_vpid_bitmap, VMX_NR_VPIDS);
	if (vpid < VMX_NR_VPIDS) {
		vmx->vpid = vpid;
		__set_bit(vpid, vmx_vpid_bitmap);
	}
	spin_unlock(&vmx_vpid_lock);
}

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/*
 * Sets up the vmcs for emulated real mode.
 */
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static int vmx_vcpu_setup(struct vcpu_vmx *vmx)
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{
	u32 host_sysenter_cs;
	u32 junk;
	unsigned long a;
	struct descriptor_table dt;
	int i;
1566
	unsigned long kvm_vmx_return;
1567
	u32 exec_control;
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1568 1569

	/* I/O */
1570 1571
	vmcs_write64(IO_BITMAP_A, page_to_phys(vmx_io_bitmap_a));
	vmcs_write64(IO_BITMAP_B, page_to_phys(vmx_io_bitmap_b));
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1572 1573 1574 1575

	vmcs_write64(VMCS_LINK_POINTER, -1ull); /* 22.3.1.5 */

	/* Control */
1576 1577
	vmcs_write32(PIN_BASED_VM_EXEC_CONTROL,
		vmcs_config.pin_based_exec_ctrl);
1578 1579 1580 1581 1582 1583 1584 1585 1586 1587

	exec_control = vmcs_config.cpu_based_exec_ctrl;
	if (!vm_need_tpr_shadow(vmx->vcpu.kvm)) {
		exec_control &= ~CPU_BASED_TPR_SHADOW;
#ifdef CONFIG_X86_64
		exec_control |= CPU_BASED_CR8_STORE_EXITING |
				CPU_BASED_CR8_LOAD_EXITING;
#endif
	}
	vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, exec_control);
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1589 1590 1591 1592 1593
	if (cpu_has_secondary_exec_ctrls()) {
		exec_control = vmcs_config.cpu_based_2nd_exec_ctrl;
		if (!vm_need_virtualize_apic_accesses(vmx->vcpu.kvm))
			exec_control &=
				~SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES;
1594 1595
		if (vmx->vpid == 0)
			exec_control &= ~SECONDARY_EXEC_ENABLE_VPID;
1596 1597
		vmcs_write32(SECONDARY_VM_EXEC_CONTROL, exec_control);
	}
1598

1599 1600
	vmcs_write32(PAGE_FAULT_ERROR_CODE_MASK, !!bypass_guest_pf);
	vmcs_write32(PAGE_FAULT_ERROR_CODE_MATCH, !!bypass_guest_pf);
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	vmcs_write32(CR3_TARGET_COUNT, 0);           /* 22.2.1 */

	vmcs_writel(HOST_CR0, read_cr0());  /* 22.2.3 */
	vmcs_writel(HOST_CR4, read_cr4());  /* 22.2.3, 22.2.5 */
	vmcs_writel(HOST_CR3, read_cr3());  /* 22.2.3  FIXME: shadow tables */

	vmcs_write16(HOST_CS_SELECTOR, __KERNEL_CS);  /* 22.2.4 */
	vmcs_write16(HOST_DS_SELECTOR, __KERNEL_DS);  /* 22.2.4 */
	vmcs_write16(HOST_ES_SELECTOR, __KERNEL_DS);  /* 22.2.4 */
	vmcs_write16(HOST_FS_SELECTOR, read_fs());    /* 22.2.4 */
	vmcs_write16(HOST_GS_SELECTOR, read_gs());    /* 22.2.4 */
	vmcs_write16(HOST_SS_SELECTOR, __KERNEL_DS);  /* 22.2.4 */
1613
#ifdef CONFIG_X86_64
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	rdmsrl(MSR_FS_BASE, a);
	vmcs_writel(HOST_FS_BASE, a); /* 22.2.4 */
	rdmsrl(MSR_GS_BASE, a);
	vmcs_writel(HOST_GS_BASE, a); /* 22.2.4 */
#else
	vmcs_writel(HOST_FS_BASE, 0); /* 22.2.4 */
	vmcs_writel(HOST_GS_BASE, 0); /* 22.2.4 */
#endif

	vmcs_write16(HOST_TR_SELECTOR, GDT_ENTRY_TSS*8);  /* 22.2.4 */

	get_idt(&dt);
	vmcs_writel(HOST_IDTR_BASE, dt.base);   /* 22.2.4 */

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	asm("mov $.Lkvm_vmx_return, %0" : "=r"(kvm_vmx_return));
1629
	vmcs_writel(HOST_RIP, kvm_vmx_return); /* 22.2.5 */
1630 1631 1632
	vmcs_write32(VM_EXIT_MSR_STORE_COUNT, 0);
	vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, 0);
	vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, 0);
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	rdmsr(MSR_IA32_SYSENTER_CS, host_sysenter_cs, junk);
	vmcs_write32(HOST_IA32_SYSENTER_CS, host_sysenter_cs);
	rdmsrl(MSR_IA32_SYSENTER_ESP, a);
	vmcs_writel(HOST_IA32_SYSENTER_ESP, a);   /* 22.2.3 */
	rdmsrl(MSR_IA32_SYSENTER_EIP, a);
	vmcs_writel(HOST_IA32_SYSENTER_EIP, a);   /* 22.2.3 */

	for (i = 0; i < NR_VMX_MSR; ++i) {
		u32 index = vmx_msr_index[i];
		u32 data_low, data_high;
		u64 data;
1645
		int j = vmx->nmsrs;
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		if (rdmsr_safe(index, &data_low, &data_high) < 0)
			continue;
1649 1650
		if (wrmsr_safe(index, data_low, data_high) < 0)
			continue;
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		data = data_low | ((u64)data_high << 32);
1652 1653 1654 1655 1656
		vmx->host_msrs[j].index = index;
		vmx->host_msrs[j].reserved = 0;
		vmx->host_msrs[j].data = data;
		vmx->guest_msrs[j] = vmx->host_msrs[j];
		++vmx->nmsrs;
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	}

1659
	vmcs_write32(VM_EXIT_CONTROLS, vmcs_config.vmexit_ctrl);
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	/* 22.2.1, 20.8.1 */
1662 1663
	vmcs_write32(VM_ENTRY_CONTROLS, vmcs_config.vmentry_ctrl);

1664 1665 1666
	vmcs_writel(CR0_GUEST_HOST_MASK, ~0UL);
	vmcs_writel(CR4_GUEST_HOST_MASK, KVM_GUEST_CR4_MASK);

1667

1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681
	return 0;
}

static int vmx_vcpu_reset(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u64 msr;
	int ret;

	if (!init_rmode_tss(vmx->vcpu.kvm)) {
		ret = -ENOMEM;
		goto out;
	}

1682
	vmx->vcpu.arch.rmode.active = 0;
1683

1684
	vmx->vcpu.arch.regs[VCPU_REGS_RDX] = get_rdx_init_val();
1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700
	set_cr8(&vmx->vcpu, 0);
	msr = 0xfee00000 | MSR_IA32_APICBASE_ENABLE;
	if (vmx->vcpu.vcpu_id == 0)
		msr |= MSR_IA32_APICBASE_BSP;
	kvm_set_apic_base(&vmx->vcpu, msr);

	fx_init(&vmx->vcpu);

	/*
	 * GUEST_CS_BASE should really be 0xffff0000, but VT vm86 mode
	 * insists on having GUEST_CS_BASE == GUEST_CS_SELECTOR << 4.  Sigh.
	 */
	if (vmx->vcpu.vcpu_id == 0) {
		vmcs_write16(GUEST_CS_SELECTOR, 0xf000);
		vmcs_writel(GUEST_CS_BASE, 0x000f0000);
	} else {
1701 1702
		vmcs_write16(GUEST_CS_SELECTOR, vmx->vcpu.arch.sipi_vector << 8);
		vmcs_writel(GUEST_CS_BASE, vmx->vcpu.arch.sipi_vector << 12);
1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753
	}
	vmcs_write32(GUEST_CS_LIMIT, 0xffff);
	vmcs_write32(GUEST_CS_AR_BYTES, 0x9b);

	seg_setup(VCPU_SREG_DS);
	seg_setup(VCPU_SREG_ES);
	seg_setup(VCPU_SREG_FS);
	seg_setup(VCPU_SREG_GS);
	seg_setup(VCPU_SREG_SS);

	vmcs_write16(GUEST_TR_SELECTOR, 0);
	vmcs_writel(GUEST_TR_BASE, 0);
	vmcs_write32(GUEST_TR_LIMIT, 0xffff);
	vmcs_write32(GUEST_TR_AR_BYTES, 0x008b);

	vmcs_write16(GUEST_LDTR_SELECTOR, 0);
	vmcs_writel(GUEST_LDTR_BASE, 0);
	vmcs_write32(GUEST_LDTR_LIMIT, 0xffff);
	vmcs_write32(GUEST_LDTR_AR_BYTES, 0x00082);

	vmcs_write32(GUEST_SYSENTER_CS, 0);
	vmcs_writel(GUEST_SYSENTER_ESP, 0);
	vmcs_writel(GUEST_SYSENTER_EIP, 0);

	vmcs_writel(GUEST_RFLAGS, 0x02);
	if (vmx->vcpu.vcpu_id == 0)
		vmcs_writel(GUEST_RIP, 0xfff0);
	else
		vmcs_writel(GUEST_RIP, 0);
	vmcs_writel(GUEST_RSP, 0);

	/* todo: dr0 = dr1 = dr2 = dr3 = 0; dr6 = 0xffff0ff0 */
	vmcs_writel(GUEST_DR7, 0x400);

	vmcs_writel(GUEST_GDTR_BASE, 0);
	vmcs_write32(GUEST_GDTR_LIMIT, 0xffff);

	vmcs_writel(GUEST_IDTR_BASE, 0);
	vmcs_write32(GUEST_IDTR_LIMIT, 0xffff);

	vmcs_write32(GUEST_ACTIVITY_STATE, 0);
	vmcs_write32(GUEST_INTERRUPTIBILITY_INFO, 0);
	vmcs_write32(GUEST_PENDING_DBG_EXCEPTIONS, 0);

	guest_write_tsc(0);

	/* Special registers */
	vmcs_write64(GUEST_IA32_DEBUGCTL, 0);

	setup_msrs(vmx);

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	vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 0);  /* 22.2.1 */

1756 1757 1758 1759
	if (cpu_has_vmx_tpr_shadow()) {
		vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, 0);
		if (vm_need_tpr_shadow(vmx->vcpu.kvm))
			vmcs_write64(VIRTUAL_APIC_PAGE_ADDR,
1760
				page_to_phys(vmx->vcpu.arch.apic->regs_page));
1761 1762 1763 1764 1765
		vmcs_write32(TPR_THRESHOLD, 0);
	}

	if (vm_need_virtualize_apic_accesses(vmx->vcpu.kvm))
		vmcs_write64(APIC_ACCESS_ADDR,
1766
			     page_to_phys(vmx->vcpu.kvm->arch.apic_access_page));
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1768 1769 1770
	if (vmx->vpid != 0)
		vmcs_write16(VIRTUAL_PROCESSOR_ID, vmx->vpid);

1771 1772
	vmx->vcpu.arch.cr0 = 0x60000010;
	vmx_set_cr0(&vmx->vcpu, vmx->vcpu.arch.cr0); /* enter rmode */
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	vmx_set_cr4(&vmx->vcpu, 0);
1774
#ifdef CONFIG_X86_64
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	vmx_set_efer(&vmx->vcpu, 0);
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#endif
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	vmx_fpu_activate(&vmx->vcpu);
	update_exception_bitmap(&vmx->vcpu);
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1780 1781
	vpid_sync_vcpu_all(vmx);

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	return 0;

out:
	return ret;
}

1788 1789
static void vmx_inject_irq(struct kvm_vcpu *vcpu, int irq)
{
1790 1791
	struct vcpu_vmx *vmx = to_vmx(vcpu);

1792
	if (vcpu->arch.rmode.active) {
1793 1794 1795
		vmx->rmode.irq.pending = true;
		vmx->rmode.irq.vector = irq;
		vmx->rmode.irq.rip = vmcs_readl(GUEST_RIP);
1796 1797 1798
		vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
			     irq | INTR_TYPE_SOFT_INTR | INTR_INFO_VALID_MASK);
		vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 1);
1799
		vmcs_writel(GUEST_RIP, vmx->rmode.irq.rip - 1);
1800 1801 1802 1803 1804 1805
		return;
	}
	vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
			irq | INTR_TYPE_EXT_INTR | INTR_INFO_VALID_MASK);
}

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static void kvm_do_inject_irq(struct kvm_vcpu *vcpu)
{
1808 1809
	int word_index = __ffs(vcpu->arch.irq_summary);
	int bit_index = __ffs(vcpu->arch.irq_pending[word_index]);
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	int irq = word_index * BITS_PER_LONG + bit_index;

1812 1813 1814
	clear_bit(bit_index, &vcpu->arch.irq_pending[word_index]);
	if (!vcpu->arch.irq_pending[word_index])
		clear_bit(word_index, &vcpu->arch.irq_summary);
1815
	vmx_inject_irq(vcpu, irq);
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1816 1817
}

1818 1819 1820

static void do_interrupt_requests(struct kvm_vcpu *vcpu,
				       struct kvm_run *kvm_run)
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{
1822 1823
	u32 cpu_based_vm_exec_control;

1824
	vcpu->arch.interrupt_window_open =
1825 1826 1827
		((vmcs_readl(GUEST_RFLAGS) & X86_EFLAGS_IF) &&
		 (vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & 3) == 0);

1828 1829
	if (vcpu->arch.interrupt_window_open &&
	    vcpu->arch.irq_summary &&
1830
	    !(vmcs_read32(VM_ENTRY_INTR_INFO_FIELD) & INTR_INFO_VALID_MASK))
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		/*
1832
		 * If interrupts enabled, and not blocked by sti or mov ss. Good.
A
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1833 1834
		 */
		kvm_do_inject_irq(vcpu);
1835 1836

	cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
1837 1838
	if (!vcpu->arch.interrupt_window_open &&
	    (vcpu->arch.irq_summary || kvm_run->request_interrupt_window))
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1839 1840 1841
		/*
		 * Interrupts blocked.  Wait for unblock.
		 */
1842 1843 1844 1845
		cpu_based_vm_exec_control |= CPU_BASED_VIRTUAL_INTR_PENDING;
	else
		cpu_based_vm_exec_control &= ~CPU_BASED_VIRTUAL_INTR_PENDING;
	vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
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1846 1847
}

1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860
static int vmx_set_tss_addr(struct kvm *kvm, unsigned int addr)
{
	int ret;
	struct kvm_userspace_memory_region tss_mem = {
		.slot = 8,
		.guest_phys_addr = addr,
		.memory_size = PAGE_SIZE * 3,
		.flags = 0,
	};

	ret = kvm_set_memory_region(kvm, &tss_mem, 0);
	if (ret)
		return ret;
1861
	kvm->arch.tss_addr = addr;
1862 1863 1864
	return 0;
}

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1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885
static void kvm_guest_debug_pre(struct kvm_vcpu *vcpu)
{
	struct kvm_guest_debug *dbg = &vcpu->guest_debug;

	set_debugreg(dbg->bp[0], 0);
	set_debugreg(dbg->bp[1], 1);
	set_debugreg(dbg->bp[2], 2);
	set_debugreg(dbg->bp[3], 3);

	if (dbg->singlestep) {
		unsigned long flags;

		flags = vmcs_readl(GUEST_RFLAGS);
		flags |= X86_EFLAGS_TF | X86_EFLAGS_RF;
		vmcs_writel(GUEST_RFLAGS, flags);
	}
}

static int handle_rmode_exception(struct kvm_vcpu *vcpu,
				  int vec, u32 err_code)
{
1886
	if (!vcpu->arch.rmode.active)
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1887 1888
		return 0;

1889 1890 1891 1892 1893
	/*
	 * Instruction with address size override prefix opcode 0x67
	 * Cause the #SS fault with 0 error code in VM86 mode.
	 */
	if (((vec == GP_VECTOR) || (vec == SS_VECTOR)) && err_code == 0)
1894
		if (emulate_instruction(vcpu, NULL, 0, 0, 0) == EMULATE_DONE)
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			return 1;
	return 0;
}

static int handle_exception(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
1901
	struct vcpu_vmx *vmx = to_vmx(vcpu);
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1902 1903 1904 1905 1906
	u32 intr_info, error_code;
	unsigned long cr2, rip;
	u32 vect_info;
	enum emulation_result er;

1907
	vect_info = vmx->idt_vectoring_info;
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1908 1909 1910
	intr_info = vmcs_read32(VM_EXIT_INTR_INFO);

	if ((vect_info & VECTORING_INFO_VALID_MASK) &&
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1911
						!is_page_fault(intr_info))
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1912 1913 1914
		printk(KERN_ERR "%s: unexpected, vectoring info 0x%x "
		       "intr info 0x%x\n", __FUNCTION__, vect_info, intr_info);

1915
	if (!irqchip_in_kernel(vcpu->kvm) && is_external_interrupt(vect_info)) {
A
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1916
		int irq = vect_info & VECTORING_INFO_VECTOR_MASK;
1917 1918
		set_bit(irq, vcpu->arch.irq_pending);
		set_bit(irq / BITS_PER_LONG, &vcpu->arch.irq_summary);
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1919 1920
	}

1921 1922
	if ((intr_info & INTR_INFO_INTR_TYPE_MASK) == 0x200) /* nmi */
		return 1;  /* already handled by vmx_vcpu_run() */
1923 1924

	if (is_no_device(intr_info)) {
1925
		vmx_fpu_activate(vcpu);
1926 1927 1928
		return 1;
	}

1929
	if (is_invalid_opcode(intr_info)) {
1930
		er = emulate_instruction(vcpu, kvm_run, 0, 0, EMULTYPE_TRAP_UD);
1931
		if (er != EMULATE_DONE)
1932
			kvm_queue_exception(vcpu, UD_VECTOR);
1933 1934 1935
		return 1;
	}

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1936 1937 1938 1939 1940 1941
	error_code = 0;
	rip = vmcs_readl(GUEST_RIP);
	if (intr_info & INTR_INFO_DELIEVER_CODE_MASK)
		error_code = vmcs_read32(VM_EXIT_INTR_ERROR_CODE);
	if (is_page_fault(intr_info)) {
		cr2 = vmcs_readl(EXIT_QUALIFICATION);
1942
		return kvm_mmu_page_fault(vcpu, cr2, error_code);
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1943 1944
	}

1945
	if (vcpu->arch.rmode.active &&
A
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1946
	    handle_rmode_exception(vcpu, intr_info & INTR_INFO_VECTOR_MASK,
1947
								error_code)) {
1948 1949
		if (vcpu->arch.halt_request) {
			vcpu->arch.halt_request = 0;
1950 1951
			return kvm_emulate_halt(vcpu);
		}
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1952
		return 1;
1953
	}
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1954

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1955 1956
	if ((intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK)) ==
	    (INTR_TYPE_EXCEPTION | 1)) {
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1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968
		kvm_run->exit_reason = KVM_EXIT_DEBUG;
		return 0;
	}
	kvm_run->exit_reason = KVM_EXIT_EXCEPTION;
	kvm_run->ex.exception = intr_info & INTR_INFO_VECTOR_MASK;
	kvm_run->ex.error_code = error_code;
	return 0;
}

static int handle_external_interrupt(struct kvm_vcpu *vcpu,
				     struct kvm_run *kvm_run)
{
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	++vcpu->stat.irq_exits;
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1970 1971 1972
	return 1;
}

1973 1974 1975 1976 1977
static int handle_triple_fault(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
	kvm_run->exit_reason = KVM_EXIT_SHUTDOWN;
	return 0;
}
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1978 1979 1980

static int handle_io(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
1981
	unsigned long exit_qualification;
1982 1983
	int size, down, in, string, rep;
	unsigned port;
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1984

A
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1985
	++vcpu->stat.io_exits;
1986
	exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
1987
	string = (exit_qualification & 16) != 0;
1988 1989

	if (string) {
1990 1991
		if (emulate_instruction(vcpu,
					kvm_run, 0, 0, 0) == EMULATE_DO_MMIO)
1992 1993 1994 1995 1996 1997
			return 0;
		return 1;
	}

	size = (exit_qualification & 7) + 1;
	in = (exit_qualification & 8) != 0;
1998 1999 2000
	down = (vmcs_readl(GUEST_RFLAGS) & X86_EFLAGS_DF) != 0;
	rep = (exit_qualification & 32) != 0;
	port = exit_qualification >> 16;
2001

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Laurent Vivier 已提交
2002
	return kvm_emulate_pio(vcpu, kvm_run, in, size, port);
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2003 2004
}

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2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015
static void
vmx_patch_hypercall(struct kvm_vcpu *vcpu, unsigned char *hypercall)
{
	/*
	 * Patch in the VMCALL instruction:
	 */
	hypercall[0] = 0x0f;
	hypercall[1] = 0x01;
	hypercall[2] = 0xc1;
}

A
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2016 2017
static int handle_cr(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2018
	unsigned long exit_qualification;
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	int cr;
	int reg;

2022
	exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
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	cr = exit_qualification & 15;
	reg = (exit_qualification >> 8) & 15;
	switch ((exit_qualification >> 4) & 3) {
	case 0: /* mov to cr */
		switch (cr) {
		case 0:
			vcpu_load_rsp_rip(vcpu);
2030
			set_cr0(vcpu, vcpu->arch.regs[reg]);
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			skip_emulated_instruction(vcpu);
			return 1;
		case 3:
			vcpu_load_rsp_rip(vcpu);
2035
			set_cr3(vcpu, vcpu->arch.regs[reg]);
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			skip_emulated_instruction(vcpu);
			return 1;
		case 4:
			vcpu_load_rsp_rip(vcpu);
2040
			set_cr4(vcpu, vcpu->arch.regs[reg]);
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			skip_emulated_instruction(vcpu);
			return 1;
		case 8:
			vcpu_load_rsp_rip(vcpu);
2045
			set_cr8(vcpu, vcpu->arch.regs[reg]);
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			skip_emulated_instruction(vcpu);
2047 2048
			if (irqchip_in_kernel(vcpu->kvm))
				return 1;
2049 2050
			kvm_run->exit_reason = KVM_EXIT_SET_TPR;
			return 0;
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		};
		break;
2053 2054
	case 2: /* clts */
		vcpu_load_rsp_rip(vcpu);
2055
		vmx_fpu_deactivate(vcpu);
2056 2057
		vcpu->arch.cr0 &= ~X86_CR0_TS;
		vmcs_writel(CR0_READ_SHADOW, vcpu->arch.cr0);
2058
		vmx_fpu_activate(vcpu);
2059 2060
		skip_emulated_instruction(vcpu);
		return 1;
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	case 1: /*mov from cr*/
		switch (cr) {
		case 3:
			vcpu_load_rsp_rip(vcpu);
2065
			vcpu->arch.regs[reg] = vcpu->arch.cr3;
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			vcpu_put_rsp_rip(vcpu);
			skip_emulated_instruction(vcpu);
			return 1;
		case 8:
			vcpu_load_rsp_rip(vcpu);
2071
			vcpu->arch.regs[reg] = get_cr8(vcpu);
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			vcpu_put_rsp_rip(vcpu);
			skip_emulated_instruction(vcpu);
			return 1;
		}
		break;
	case 3: /* lmsw */
		lmsw(vcpu, (exit_qualification >> LMSW_SOURCE_DATA_SHIFT) & 0x0f);

		skip_emulated_instruction(vcpu);
		return 1;
	default:
		break;
	}
	kvm_run->exit_reason = 0;
2086
	pr_unimpl(vcpu, "unhandled control register: op %d cr %d\n",
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	       (int)(exit_qualification >> 4) & 3, cr);
	return 0;
}

static int handle_dr(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2093
	unsigned long exit_qualification;
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	unsigned long val;
	int dr, reg;

	/*
	 * FIXME: this code assumes the host is debugging the guest.
	 *        need to deal with guest debugging itself too.
	 */
2101
	exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
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	dr = exit_qualification & 7;
	reg = (exit_qualification >> 8) & 15;
	vcpu_load_rsp_rip(vcpu);
	if (exit_qualification & 16) {
		/* mov from dr */
		switch (dr) {
		case 6:
			val = 0xffff0ff0;
			break;
		case 7:
			val = 0x400;
			break;
		default:
			val = 0;
		}
2117
		vcpu->arch.regs[reg] = val;
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	} else {
		/* mov to dr */
	}
	vcpu_put_rsp_rip(vcpu);
	skip_emulated_instruction(vcpu);
	return 1;
}

static int handle_cpuid(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2128 2129
	kvm_emulate_cpuid(vcpu);
	return 1;
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}

static int handle_rdmsr(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2134
	u32 ecx = vcpu->arch.regs[VCPU_REGS_RCX];
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	u64 data;

	if (vmx_get_msr(vcpu, ecx, &data)) {
2138
		kvm_inject_gp(vcpu, 0);
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		return 1;
	}

	/* FIXME: handling of bits 32:63 of rax, rdx */
2143 2144
	vcpu->arch.regs[VCPU_REGS_RAX] = data & -1u;
	vcpu->arch.regs[VCPU_REGS_RDX] = (data >> 32) & -1u;
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	skip_emulated_instruction(vcpu);
	return 1;
}

static int handle_wrmsr(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2151 2152 2153
	u32 ecx = vcpu->arch.regs[VCPU_REGS_RCX];
	u64 data = (vcpu->arch.regs[VCPU_REGS_RAX] & -1u)
		| ((u64)(vcpu->arch.regs[VCPU_REGS_RDX] & -1u) << 32);
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	if (vmx_set_msr(vcpu, ecx, data) != 0) {
2156
		kvm_inject_gp(vcpu, 0);
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		return 1;
	}

	skip_emulated_instruction(vcpu);
	return 1;
}

2164 2165 2166 2167 2168 2169
static int handle_tpr_below_threshold(struct kvm_vcpu *vcpu,
				      struct kvm_run *kvm_run)
{
	return 1;
}

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static int handle_interrupt_window(struct kvm_vcpu *vcpu,
				   struct kvm_run *kvm_run)
{
2173 2174 2175 2176 2177 2178
	u32 cpu_based_vm_exec_control;

	/* clear pending irq */
	cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
	cpu_based_vm_exec_control &= ~CPU_BASED_VIRTUAL_INTR_PENDING;
	vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
2179 2180 2181 2182 2183
	/*
	 * If the user space waits to inject interrupts, exit as soon as
	 * possible
	 */
	if (kvm_run->request_interrupt_window &&
2184
	    !vcpu->arch.irq_summary) {
2185
		kvm_run->exit_reason = KVM_EXIT_IRQ_WINDOW_OPEN;
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		++vcpu->stat.irq_window_exits;
2187 2188
		return 0;
	}
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	return 1;
}

static int handle_halt(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
	skip_emulated_instruction(vcpu);
2195
	return kvm_emulate_halt(vcpu);
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}

2198 2199
static int handle_vmcall(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
2200
	skip_emulated_instruction(vcpu);
2201 2202
	kvm_emulate_hypercall(vcpu);
	return 1;
2203 2204
}

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static int handle_wbinvd(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
	skip_emulated_instruction(vcpu);
	/* TODO: Add support for VT-d/pass-through device */
	return 1;
}

2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231
static int handle_apic_access(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
{
	u64 exit_qualification;
	enum emulation_result er;
	unsigned long offset;

	exit_qualification = vmcs_read64(EXIT_QUALIFICATION);
	offset = exit_qualification & 0xffful;

	er = emulate_instruction(vcpu, kvm_run, 0, 0, 0);

	if (er !=  EMULATE_DONE) {
		printk(KERN_ERR
		       "Fail to handle apic access vmexit! Offset is 0x%lx\n",
		       offset);
		return -ENOTSUPP;
	}
	return 1;
}

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/*
 * The exit handlers return 1 if the exit was handled fully and guest execution
 * may resume.  Otherwise they set the kvm_run parameter to indicate what needs
 * to be done to userspace and return 0.
 */
static int (*kvm_vmx_exit_handlers[])(struct kvm_vcpu *vcpu,
				      struct kvm_run *kvm_run) = {
	[EXIT_REASON_EXCEPTION_NMI]           = handle_exception,
	[EXIT_REASON_EXTERNAL_INTERRUPT]      = handle_external_interrupt,
2241
	[EXIT_REASON_TRIPLE_FAULT]            = handle_triple_fault,
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	[EXIT_REASON_IO_INSTRUCTION]          = handle_io,
	[EXIT_REASON_CR_ACCESS]               = handle_cr,
	[EXIT_REASON_DR_ACCESS]               = handle_dr,
	[EXIT_REASON_CPUID]                   = handle_cpuid,
	[EXIT_REASON_MSR_READ]                = handle_rdmsr,
	[EXIT_REASON_MSR_WRITE]               = handle_wrmsr,
	[EXIT_REASON_PENDING_INTERRUPT]       = handle_interrupt_window,
	[EXIT_REASON_HLT]                     = handle_halt,
2250
	[EXIT_REASON_VMCALL]                  = handle_vmcall,
2251 2252
	[EXIT_REASON_TPR_BELOW_THRESHOLD]     = handle_tpr_below_threshold,
	[EXIT_REASON_APIC_ACCESS]             = handle_apic_access,
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	[EXIT_REASON_WBINVD]                  = handle_wbinvd,
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};

static const int kvm_vmx_max_exit_handlers =
2257
	ARRAY_SIZE(kvm_vmx_exit_handlers);
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/*
 * The guest has exited.  See if we can fix it or if we need userspace
 * assistance.
 */
static int kvm_handle_exit(struct kvm_run *kvm_run, struct kvm_vcpu *vcpu)
{
	u32 exit_reason = vmcs_read32(VM_EXIT_REASON);
2266
	struct vcpu_vmx *vmx = to_vmx(vcpu);
2267
	u32 vectoring_info = vmx->idt_vectoring_info;
2268 2269 2270 2271 2272 2273 2274

	if (unlikely(vmx->fail)) {
		kvm_run->exit_reason = KVM_EXIT_FAIL_ENTRY;
		kvm_run->fail_entry.hardware_entry_failure_reason
			= vmcs_read32(VM_INSTRUCTION_ERROR);
		return 0;
	}
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	if ((vectoring_info & VECTORING_INFO_VALID_MASK) &&
				exit_reason != EXIT_REASON_EXCEPTION_NMI)
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		printk(KERN_WARNING "%s: unexpected, valid vectoring info and "
		       "exit reason is 0x%x\n", __FUNCTION__, exit_reason);
	if (exit_reason < kvm_vmx_max_exit_handlers
	    && kvm_vmx_exit_handlers[exit_reason])
		return kvm_vmx_exit_handlers[exit_reason](vcpu, kvm_run);
	else {
		kvm_run->exit_reason = KVM_EXIT_UNKNOWN;
		kvm_run->hw.hardware_exit_reason = exit_reason;
	}
	return 0;
}

2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306
static void update_tpr_threshold(struct kvm_vcpu *vcpu)
{
	int max_irr, tpr;

	if (!vm_need_tpr_shadow(vcpu->kvm))
		return;

	if (!kvm_lapic_enabled(vcpu) ||
	    ((max_irr = kvm_lapic_find_highest_irr(vcpu)) == -1)) {
		vmcs_write32(TPR_THRESHOLD, 0);
		return;
	}

	tpr = (kvm_lapic_get_cr8(vcpu) & 0x0f) << 4;
	vmcs_write32(TPR_THRESHOLD, (max_irr > tpr) ? tpr >> 4 : max_irr >> 4);
}

2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317
static void enable_irq_window(struct kvm_vcpu *vcpu)
{
	u32 cpu_based_vm_exec_control;

	cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
	cpu_based_vm_exec_control |= CPU_BASED_VIRTUAL_INTR_PENDING;
	vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
}

static void vmx_intr_assist(struct kvm_vcpu *vcpu)
{
2318
	struct vcpu_vmx *vmx = to_vmx(vcpu);
2319 2320
	u32 idtv_info_field, intr_info_field;
	int has_ext_irq, interrupt_window_open;
2321
	int vector;
2322

2323 2324
	update_tpr_threshold(vcpu);

2325 2326
	has_ext_irq = kvm_cpu_has_interrupt(vcpu);
	intr_info_field = vmcs_read32(VM_ENTRY_INTR_INFO_FIELD);
2327
	idtv_info_field = vmx->idt_vectoring_info;
2328 2329 2330
	if (intr_info_field & INTR_INFO_VALID_MASK) {
		if (idtv_info_field & INTR_INFO_VALID_MASK) {
			/* TODO: fault when IDT_Vectoring */
2331 2332
			if (printk_ratelimit())
				printk(KERN_ERR "Fault when IDT_Vectoring\n");
2333 2334 2335 2336 2337 2338
		}
		if (has_ext_irq)
			enable_irq_window(vcpu);
		return;
	}
	if (unlikely(idtv_info_field & INTR_INFO_VALID_MASK)) {
2339 2340
		if ((idtv_info_field & VECTORING_INFO_TYPE_MASK)
		    == INTR_TYPE_EXT_INTR
2341
		    && vcpu->arch.rmode.active) {
2342 2343 2344 2345 2346 2347 2348 2349
			u8 vect = idtv_info_field & VECTORING_INFO_VECTOR_MASK;

			vmx_inject_irq(vcpu, vect);
			if (unlikely(has_ext_irq))
				enable_irq_window(vcpu);
			return;
		}

2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365
		vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, idtv_info_field);
		vmcs_write32(VM_ENTRY_INSTRUCTION_LEN,
				vmcs_read32(VM_EXIT_INSTRUCTION_LEN));

		if (unlikely(idtv_info_field & INTR_INFO_DELIEVER_CODE_MASK))
			vmcs_write32(VM_ENTRY_EXCEPTION_ERROR_CODE,
				vmcs_read32(IDT_VECTORING_ERROR_CODE));
		if (unlikely(has_ext_irq))
			enable_irq_window(vcpu);
		return;
	}
	if (!has_ext_irq)
		return;
	interrupt_window_open =
		((vmcs_readl(GUEST_RFLAGS) & X86_EFLAGS_IF) &&
		 (vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & 3) == 0);
2366 2367 2368 2369 2370
	if (interrupt_window_open) {
		vector = kvm_cpu_get_interrupt(vcpu);
		vmx_inject_irq(vcpu, vector);
		kvm_timer_intr_post(vcpu, vector);
	} else
2371 2372 2373
		enable_irq_window(vcpu);
}

2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396
/*
 * Failure to inject an interrupt should give us the information
 * in IDT_VECTORING_INFO_FIELD.  However, if the failure occurs
 * when fetching the interrupt redirection bitmap in the real-mode
 * tss, this doesn't happen.  So we do it ourselves.
 */
static void fixup_rmode_irq(struct vcpu_vmx *vmx)
{
	vmx->rmode.irq.pending = 0;
	if (vmcs_readl(GUEST_RIP) + 1 != vmx->rmode.irq.rip)
		return;
	vmcs_writel(GUEST_RIP, vmx->rmode.irq.rip);
	if (vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK) {
		vmx->idt_vectoring_info &= ~VECTORING_INFO_TYPE_MASK;
		vmx->idt_vectoring_info |= INTR_TYPE_EXT_INTR;
		return;
	}
	vmx->idt_vectoring_info =
		VECTORING_INFO_VALID_MASK
		| INTR_TYPE_EXT_INTR
		| vmx->rmode.irq.vector;
}

2397
static void vmx_vcpu_run(struct kvm_vcpu *vcpu, struct kvm_run *kvm_run)
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{
2399
	struct vcpu_vmx *vmx = to_vmx(vcpu);
2400
	u32 intr_info;
2401 2402 2403 2404 2405 2406

	/*
	 * Loading guest fpu may have cleared host cr0.ts
	 */
	vmcs_writel(HOST_CR0, read_cr0());

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	asm(
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		/* Store host registers */
2409
#ifdef CONFIG_X86_64
2410
		"push %%rdx; push %%rbp;"
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		"push %%rcx \n\t"
#else
2413 2414
		"push %%edx; push %%ebp;"
		"push %%ecx \n\t"
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#endif
2416
		ASM_VMX_VMWRITE_RSP_RDX "\n\t"
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		/* Check if vmlaunch of vmresume is needed */
2418
		"cmpl $0, %c[launched](%0) \n\t"
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		/* Load guest registers.  Don't clobber flags. */
2420
#ifdef CONFIG_X86_64
2421
		"mov %c[cr2](%0), %%rax \n\t"
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		"mov %%rax, %%cr2 \n\t"
2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437
		"mov %c[rax](%0), %%rax \n\t"
		"mov %c[rbx](%0), %%rbx \n\t"
		"mov %c[rdx](%0), %%rdx \n\t"
		"mov %c[rsi](%0), %%rsi \n\t"
		"mov %c[rdi](%0), %%rdi \n\t"
		"mov %c[rbp](%0), %%rbp \n\t"
		"mov %c[r8](%0),  %%r8  \n\t"
		"mov %c[r9](%0),  %%r9  \n\t"
		"mov %c[r10](%0), %%r10 \n\t"
		"mov %c[r11](%0), %%r11 \n\t"
		"mov %c[r12](%0), %%r12 \n\t"
		"mov %c[r13](%0), %%r13 \n\t"
		"mov %c[r14](%0), %%r14 \n\t"
		"mov %c[r15](%0), %%r15 \n\t"
		"mov %c[rcx](%0), %%rcx \n\t" /* kills %0 (rcx) */
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#else
2439
		"mov %c[cr2](%0), %%eax \n\t"
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		"mov %%eax,   %%cr2 \n\t"
2441 2442 2443 2444 2445 2446 2447
		"mov %c[rax](%0), %%eax \n\t"
		"mov %c[rbx](%0), %%ebx \n\t"
		"mov %c[rdx](%0), %%edx \n\t"
		"mov %c[rsi](%0), %%esi \n\t"
		"mov %c[rdi](%0), %%edi \n\t"
		"mov %c[rbp](%0), %%ebp \n\t"
		"mov %c[rcx](%0), %%ecx \n\t" /* kills %0 (ecx) */
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#endif
		/* Enter guest mode */
2450
		"jne .Llaunched \n\t"
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2451
		ASM_VMX_VMLAUNCH "\n\t"
2452 2453 2454
		"jmp .Lkvm_vmx_return \n\t"
		".Llaunched: " ASM_VMX_VMRESUME "\n\t"
		".Lkvm_vmx_return: "
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		/* Save guest registers, load host registers, keep flags */
2456
#ifdef CONFIG_X86_64
2457 2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470 2471 2472
		"xchg %0,     (%%rsp) \n\t"
		"mov %%rax, %c[rax](%0) \n\t"
		"mov %%rbx, %c[rbx](%0) \n\t"
		"pushq (%%rsp); popq %c[rcx](%0) \n\t"
		"mov %%rdx, %c[rdx](%0) \n\t"
		"mov %%rsi, %c[rsi](%0) \n\t"
		"mov %%rdi, %c[rdi](%0) \n\t"
		"mov %%rbp, %c[rbp](%0) \n\t"
		"mov %%r8,  %c[r8](%0) \n\t"
		"mov %%r9,  %c[r9](%0) \n\t"
		"mov %%r10, %c[r10](%0) \n\t"
		"mov %%r11, %c[r11](%0) \n\t"
		"mov %%r12, %c[r12](%0) \n\t"
		"mov %%r13, %c[r13](%0) \n\t"
		"mov %%r14, %c[r14](%0) \n\t"
		"mov %%r15, %c[r15](%0) \n\t"
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		"mov %%cr2, %%rax   \n\t"
2474
		"mov %%rax, %c[cr2](%0) \n\t"
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2476
		"pop  %%rbp; pop  %%rbp; pop  %%rdx \n\t"
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#else
2478 2479 2480 2481 2482 2483 2484 2485
		"xchg %0, (%%esp) \n\t"
		"mov %%eax, %c[rax](%0) \n\t"
		"mov %%ebx, %c[rbx](%0) \n\t"
		"pushl (%%esp); popl %c[rcx](%0) \n\t"
		"mov %%edx, %c[rdx](%0) \n\t"
		"mov %%esi, %c[rsi](%0) \n\t"
		"mov %%edi, %c[rdi](%0) \n\t"
		"mov %%ebp, %c[rbp](%0) \n\t"
A
Avi Kivity 已提交
2486
		"mov %%cr2, %%eax  \n\t"
2487
		"mov %%eax, %c[cr2](%0) \n\t"
A
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2488

2489
		"pop %%ebp; pop %%ebp; pop %%edx \n\t"
A
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2490
#endif
2491 2492 2493 2494
		"setbe %c[fail](%0) \n\t"
	      : : "c"(vmx), "d"((unsigned long)HOST_RSP),
		[launched]"i"(offsetof(struct vcpu_vmx, launched)),
		[fail]"i"(offsetof(struct vcpu_vmx, fail)),
2495 2496 2497 2498 2499 2500 2501
		[rax]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RAX])),
		[rbx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RBX])),
		[rcx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RCX])),
		[rdx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RDX])),
		[rsi]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RSI])),
		[rdi]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RDI])),
		[rbp]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RBP])),
2502
#ifdef CONFIG_X86_64
2503 2504 2505 2506 2507 2508 2509 2510
		[r8]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R8])),
		[r9]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R9])),
		[r10]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R10])),
		[r11]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R11])),
		[r12]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R12])),
		[r13]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R13])),
		[r14]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R14])),
		[r15]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R15])),
A
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#endif
2512
		[cr2]"i"(offsetof(struct vcpu_vmx, vcpu.arch.cr2))
2513 2514 2515 2516
	      : "cc", "memory"
#ifdef CONFIG_X86_64
		, "rbx", "rdi", "rsi"
		, "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
2517 2518
#else
		, "ebx", "edi", "rsi"
2519 2520
#endif
	      );
A
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2521

2522
	vmx->idt_vectoring_info = vmcs_read32(IDT_VECTORING_INFO_FIELD);
2523 2524
	if (vmx->rmode.irq.pending)
		fixup_rmode_irq(vmx);
2525

2526
	vcpu->arch.interrupt_window_open =
M
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		(vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) & 3) == 0;
A
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2528

M
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2529
	asm("mov %0, %%ds; mov %0, %%es" : : "r"(__USER_DS));
2530
	vmx->launched = 1;
2531 2532 2533 2534 2535 2536

	intr_info = vmcs_read32(VM_EXIT_INTR_INFO);

	/* We need to handle NMIs before interrupts are enabled */
	if ((intr_info & INTR_INFO_INTR_TYPE_MASK) == 0x200) /* nmi */
		asm("int $2");
A
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2537 2538 2539 2540
}

static void vmx_free_vmcs(struct kvm_vcpu *vcpu)
{
2541 2542 2543
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (vmx->vmcs) {
R
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2544
		on_each_cpu(__vcpu_clear, vmx, 0, 1);
2545 2546
		free_vmcs(vmx->vmcs);
		vmx->vmcs = NULL;
A
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2547 2548 2549 2550 2551
	}
}

static void vmx_free_vcpu(struct kvm_vcpu *vcpu)
{
R
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2552 2553
	struct vcpu_vmx *vmx = to_vmx(vcpu);

2554 2555 2556 2557
	spin_lock(&vmx_vpid_lock);
	if (vmx->vpid != 0)
		__clear_bit(vmx->vpid, vmx_vpid_bitmap);
	spin_unlock(&vmx_vpid_lock);
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2558
	vmx_free_vmcs(vcpu);
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	kfree(vmx->host_msrs);
	kfree(vmx->guest_msrs);
	kvm_vcpu_uninit(vcpu);
2562
	kmem_cache_free(kvm_vcpu_cache, vmx);
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2563 2564
}

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static struct kvm_vcpu *vmx_create_vcpu(struct kvm *kvm, unsigned int id)
A
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2566
{
R
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	int err;
2568
	struct vcpu_vmx *vmx = kmem_cache_zalloc(kvm_vcpu_cache, GFP_KERNEL);
2569
	int cpu;
A
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2570

2571
	if (!vmx)
R
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2572 2573
		return ERR_PTR(-ENOMEM);

2574 2575
	allocate_vpid(vmx);

R
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2576 2577 2578
	err = kvm_vcpu_init(&vmx->vcpu, kvm, id);
	if (err)
		goto free_vcpu;
2579

2580
	vmx->guest_msrs = kmalloc(PAGE_SIZE, GFP_KERNEL);
R
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2581 2582 2583 2584
	if (!vmx->guest_msrs) {
		err = -ENOMEM;
		goto uninit_vcpu;
	}
2585

2586 2587
	vmx->host_msrs = kmalloc(PAGE_SIZE, GFP_KERNEL);
	if (!vmx->host_msrs)
R
Rusty Russell 已提交
2588
		goto free_guest_msrs;
2589

2590 2591
	vmx->vmcs = alloc_vmcs();
	if (!vmx->vmcs)
R
Rusty Russell 已提交
2592
		goto free_msrs;
2593 2594 2595

	vmcs_clear(vmx->vmcs);

2596 2597
	cpu = get_cpu();
	vmx_vcpu_load(&vmx->vcpu, cpu);
R
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2598
	err = vmx_vcpu_setup(vmx);
R
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2599
	vmx_vcpu_put(&vmx->vcpu);
2600
	put_cpu();
R
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2601 2602
	if (err)
		goto free_vmcs;
2603 2604 2605
	if (vm_need_virtualize_apic_accesses(kvm))
		if (alloc_apic_access_page(kvm) != 0)
			goto free_vmcs;
R
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2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617

	return &vmx->vcpu;

free_vmcs:
	free_vmcs(vmx->vmcs);
free_msrs:
	kfree(vmx->host_msrs);
free_guest_msrs:
	kfree(vmx->guest_msrs);
uninit_vcpu:
	kvm_vcpu_uninit(&vmx->vcpu);
free_vcpu:
2618
	kmem_cache_free(kvm_vcpu_cache, vmx);
R
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2619
	return ERR_PTR(err);
A
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2620 2621
}

Y
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2622 2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635
static void __init vmx_check_processor_compat(void *rtn)
{
	struct vmcs_config vmcs_conf;

	*(int *)rtn = 0;
	if (setup_vmcs_config(&vmcs_conf) < 0)
		*(int *)rtn = -EIO;
	if (memcmp(&vmcs_config, &vmcs_conf, sizeof(struct vmcs_config)) != 0) {
		printk(KERN_ERR "kvm: CPU %d feature inconsistency!\n",
				smp_processor_id());
		*(int *)rtn = -EIO;
	}
}

2636
static struct kvm_x86_ops vmx_x86_ops = {
A
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2637 2638 2639 2640
	.cpu_has_kvm_support = cpu_has_kvm_support,
	.disabled_by_bios = vmx_disabled_by_bios,
	.hardware_setup = hardware_setup,
	.hardware_unsetup = hardware_unsetup,
Y
Yang, Sheng 已提交
2641
	.check_processor_compatibility = vmx_check_processor_compat,
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2642 2643
	.hardware_enable = hardware_enable,
	.hardware_disable = hardware_disable,
2644
	.cpu_has_accelerated_tpr = cpu_has_vmx_virtualize_apic_accesses,
A
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2645 2646 2647

	.vcpu_create = vmx_create_vcpu,
	.vcpu_free = vmx_free_vcpu,
2648
	.vcpu_reset = vmx_vcpu_reset,
A
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2649

2650
	.prepare_guest_switch = vmx_save_host_state,
A
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2651 2652
	.vcpu_load = vmx_vcpu_load,
	.vcpu_put = vmx_vcpu_put,
A
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2653
	.vcpu_decache = vmx_vcpu_decache,
A
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2654 2655

	.set_guest_debug = set_guest_debug,
2656
	.guest_debug_pre = kvm_guest_debug_pre,
A
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2657 2658 2659 2660 2661 2662
	.get_msr = vmx_get_msr,
	.set_msr = vmx_set_msr,
	.get_segment_base = vmx_get_segment_base,
	.get_segment = vmx_get_segment,
	.set_segment = vmx_set_segment,
	.get_cs_db_l_bits = vmx_get_cs_db_l_bits,
2663
	.decache_cr4_guest_bits = vmx_decache_cr4_guest_bits,
A
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2664 2665 2666
	.set_cr0 = vmx_set_cr0,
	.set_cr3 = vmx_set_cr3,
	.set_cr4 = vmx_set_cr4,
2667
#ifdef CONFIG_X86_64
A
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2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681
	.set_efer = vmx_set_efer,
#endif
	.get_idt = vmx_get_idt,
	.set_idt = vmx_set_idt,
	.get_gdt = vmx_get_gdt,
	.set_gdt = vmx_set_gdt,
	.cache_regs = vcpu_load_rsp_rip,
	.decache_regs = vcpu_put_rsp_rip,
	.get_rflags = vmx_get_rflags,
	.set_rflags = vmx_set_rflags,

	.tlb_flush = vmx_flush_tlb,

	.run = vmx_vcpu_run,
2682
	.handle_exit = kvm_handle_exit,
A
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2683
	.skip_emulated_instruction = skip_emulated_instruction,
I
Ingo Molnar 已提交
2684
	.patch_hypercall = vmx_patch_hypercall,
E
Eddie Dong 已提交
2685 2686
	.get_irq = vmx_get_irq,
	.set_irq = vmx_inject_irq,
2687 2688
	.queue_exception = vmx_queue_exception,
	.exception_injected = vmx_exception_injected,
2689 2690
	.inject_pending_irq = vmx_intr_assist,
	.inject_pending_vectors = do_interrupt_requests,
2691 2692

	.set_tss_addr = vmx_set_tss_addr,
A
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2693 2694 2695 2696
};

static int __init vmx_init(void)
{
2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716
	void *iova;
	int r;

	vmx_io_bitmap_a = alloc_page(GFP_KERNEL | __GFP_HIGHMEM);
	if (!vmx_io_bitmap_a)
		return -ENOMEM;

	vmx_io_bitmap_b = alloc_page(GFP_KERNEL | __GFP_HIGHMEM);
	if (!vmx_io_bitmap_b) {
		r = -ENOMEM;
		goto out;
	}

	/*
	 * Allow direct access to the PC debug port (it is often used for I/O
	 * delays, but the vmexits simply slow things down).
	 */
	iova = kmap(vmx_io_bitmap_a);
	memset(iova, 0xff, PAGE_SIZE);
	clear_bit(0x80, iova);
2717
	kunmap(vmx_io_bitmap_a);
2718 2719 2720

	iova = kmap(vmx_io_bitmap_b);
	memset(iova, 0xff, PAGE_SIZE);
2721
	kunmap(vmx_io_bitmap_b);
2722

2723 2724
	set_bit(0, vmx_vpid_bitmap); /* 0 is reserved for host */

2725
	r = kvm_init(&vmx_x86_ops, sizeof(struct vcpu_vmx), THIS_MODULE);
2726 2727 2728
	if (r)
		goto out1;

2729 2730 2731
	if (bypass_guest_pf)
		kvm_mmu_set_nonpresent_ptes(~0xffeull, 0ull);

2732 2733 2734 2735 2736 2737 2738
	return 0;

out1:
	__free_page(vmx_io_bitmap_b);
out:
	__free_page(vmx_io_bitmap_a);
	return r;
A
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2739 2740 2741 2742
}

static void __exit vmx_exit(void)
{
2743 2744 2745
	__free_page(vmx_io_bitmap_b);
	__free_page(vmx_io_bitmap_a);

2746
	kvm_exit();
A
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2747 2748 2749 2750
}

module_init(vmx_init)
module_exit(vmx_exit)