svm.c 108 KB
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/*
 * Kernel-based Virtual Machine driver for Linux
 *
 * AMD SVM support
 *
 * Copyright (C) 2006 Qumranet, Inc.
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 * Copyright 2010 Red Hat, Inc. and/or its affiliates.
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 *
 * Authors:
 *   Yaniv Kamay  <yaniv@qumranet.com>
 *   Avi Kivity   <avi@qumranet.com>
 *
 * This work is licensed under the terms of the GNU GPL, version 2.  See
 * the COPYING file in the top-level directory.
 *
 */
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#include <linux/kvm_host.h>

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#include "irq.h"
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#include "mmu.h"
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#include "kvm_cache_regs.h"
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#include "x86.h"
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#include <linux/module.h>
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#include <linux/kernel.h>
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#include <linux/vmalloc.h>
#include <linux/highmem.h>
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#include <linux/sched.h>
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#include <linux/ftrace_event.h>
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#include <linux/slab.h>
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#include <asm/tlbflush.h>
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#include <asm/desc.h>
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#include <asm/kvm_para.h>
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#include <asm/virtext.h>
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#include "trace.h"
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#define __ex(x) __kvm_handle_fault_on_reboot(x)

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MODULE_AUTHOR("Qumranet");
MODULE_LICENSE("GPL");

#define IOPM_ALLOC_ORDER 2
#define MSRPM_ALLOC_ORDER 1

#define SEG_TYPE_LDT 2
#define SEG_TYPE_BUSY_TSS16 3

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#define SVM_FEATURE_NPT            (1 <<  0)
#define SVM_FEATURE_LBRV           (1 <<  1)
#define SVM_FEATURE_SVML           (1 <<  2)
#define SVM_FEATURE_NRIP           (1 <<  3)
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#define SVM_FEATURE_TSC_RATE       (1 <<  4)
#define SVM_FEATURE_VMCB_CLEAN     (1 <<  5)
#define SVM_FEATURE_FLUSH_ASID     (1 <<  6)
#define SVM_FEATURE_DECODE_ASSIST  (1 <<  7)
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#define SVM_FEATURE_PAUSE_FILTER   (1 << 10)
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#define NESTED_EXIT_HOST	0	/* Exit handled on host level */
#define NESTED_EXIT_DONE	1	/* Exit caused nested vmexit  */
#define NESTED_EXIT_CONTINUE	2	/* Further checks needed      */

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#define DEBUGCTL_RESERVED_BITS (~(0x3fULL))

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#define TSC_RATIO_RSVD          0xffffff0000000000ULL
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#define TSC_RATIO_MIN		0x0000000000000001ULL
#define TSC_RATIO_MAX		0x000000ffffffffffULL
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static bool erratum_383_found __read_mostly;

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static const u32 host_save_user_msrs[] = {
#ifdef CONFIG_X86_64
	MSR_STAR, MSR_LSTAR, MSR_CSTAR, MSR_SYSCALL_MASK, MSR_KERNEL_GS_BASE,
	MSR_FS_BASE,
#endif
	MSR_IA32_SYSENTER_CS, MSR_IA32_SYSENTER_ESP, MSR_IA32_SYSENTER_EIP,
};

#define NR_HOST_SAVE_USER_MSRS ARRAY_SIZE(host_save_user_msrs)

struct kvm_vcpu;

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struct nested_state {
	struct vmcb *hsave;
	u64 hsave_msr;
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	u64 vm_cr_msr;
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	u64 vmcb;

	/* These are the merged vectors */
	u32 *msrpm;

	/* gpa pointers to the real vectors */
	u64 vmcb_msrpm;
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	u64 vmcb_iopm;
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	/* A VMEXIT is required but not yet emulated */
	bool exit_required;

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	/* cache for intercepts of the guest */
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	u32 intercept_cr;
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	u32 intercept_dr;
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	u32 intercept_exceptions;
	u64 intercept;

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	/* Nested Paging related state */
	u64 nested_cr3;
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};

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#define MSRPM_OFFSETS	16
static u32 msrpm_offsets[MSRPM_OFFSETS] __read_mostly;

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struct vcpu_svm {
	struct kvm_vcpu vcpu;
	struct vmcb *vmcb;
	unsigned long vmcb_pa;
	struct svm_cpu_data *svm_data;
	uint64_t asid_generation;
	uint64_t sysenter_esp;
	uint64_t sysenter_eip;

	u64 next_rip;

	u64 host_user_msrs[NR_HOST_SAVE_USER_MSRS];
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	struct {
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		u16 fs;
		u16 gs;
		u16 ldt;
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		u64 gs_base;
	} host;
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	u32 *msrpm;

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	ulong nmi_iret_rip;

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	struct nested_state nested;
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	bool nmi_singlestep;
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	unsigned int3_injected;
	unsigned long int3_rip;
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	u32 apf_reason;
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	u64  tsc_ratio;
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};

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static DEFINE_PER_CPU(u64, current_tsc_ratio);
#define TSC_RATIO_DEFAULT	0x0100000000ULL

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#define MSR_INVALID			0xffffffffU

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static struct svm_direct_access_msrs {
	u32 index;   /* Index of the MSR */
	bool always; /* True if intercept is always on */
} direct_access_msrs[] = {
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	{ .index = MSR_STAR,				.always = true  },
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	{ .index = MSR_IA32_SYSENTER_CS,		.always = true  },
#ifdef CONFIG_X86_64
	{ .index = MSR_GS_BASE,				.always = true  },
	{ .index = MSR_FS_BASE,				.always = true  },
	{ .index = MSR_KERNEL_GS_BASE,			.always = true  },
	{ .index = MSR_LSTAR,				.always = true  },
	{ .index = MSR_CSTAR,				.always = true  },
	{ .index = MSR_SYSCALL_MASK,			.always = true  },
#endif
	{ .index = MSR_IA32_LASTBRANCHFROMIP,		.always = false },
	{ .index = MSR_IA32_LASTBRANCHTOIP,		.always = false },
	{ .index = MSR_IA32_LASTINTFROMIP,		.always = false },
	{ .index = MSR_IA32_LASTINTTOIP,		.always = false },
	{ .index = MSR_INVALID,				.always = false },
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};

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/* enable NPT for AMD64 and X86 with PAE */
#if defined(CONFIG_X86_64) || defined(CONFIG_X86_PAE)
static bool npt_enabled = true;
#else
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static bool npt_enabled;
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#endif
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static int npt = 1;

module_param(npt, int, S_IRUGO);
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static int nested = 1;
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module_param(nested, int, S_IRUGO);

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static void svm_flush_tlb(struct kvm_vcpu *vcpu);
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static void svm_complete_interrupts(struct vcpu_svm *svm);
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static int nested_svm_exit_handled(struct vcpu_svm *svm);
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static int nested_svm_intercept(struct vcpu_svm *svm);
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static int nested_svm_vmexit(struct vcpu_svm *svm);
static int nested_svm_check_exception(struct vcpu_svm *svm, unsigned nr,
				      bool has_error_code, u32 error_code);
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static u64 __scale_tsc(u64 ratio, u64 tsc);
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enum {
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	VMCB_INTERCEPTS, /* Intercept vectors, TSC offset,
			    pause filter count */
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	VMCB_PERM_MAP,   /* IOPM Base and MSRPM Base */
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	VMCB_ASID,	 /* ASID */
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	VMCB_INTR,	 /* int_ctl, int_vector */
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	VMCB_NPT,        /* npt_en, nCR3, gPAT */
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	VMCB_CR,	 /* CR0, CR3, CR4, EFER */
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	VMCB_DR,         /* DR6, DR7 */
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	VMCB_DT,         /* GDT, IDT */
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	VMCB_SEG,        /* CS, DS, SS, ES, CPL */
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	VMCB_CR2,        /* CR2 only */
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	VMCB_LBR,        /* DBGCTL, BR_FROM, BR_TO, LAST_EX_FROM, LAST_EX_TO */
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	VMCB_DIRTY_MAX,
};

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/* TPR and CR2 are always written before VMRUN */
#define VMCB_ALWAYS_DIRTY_MASK	((1U << VMCB_INTR) | (1U << VMCB_CR2))
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static inline void mark_all_dirty(struct vmcb *vmcb)
{
	vmcb->control.clean = 0;
}

static inline void mark_all_clean(struct vmcb *vmcb)
{
	vmcb->control.clean = ((1 << VMCB_DIRTY_MAX) - 1)
			       & ~VMCB_ALWAYS_DIRTY_MASK;
}

static inline void mark_dirty(struct vmcb *vmcb, int bit)
{
	vmcb->control.clean &= ~(1 << bit);
}

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static inline struct vcpu_svm *to_svm(struct kvm_vcpu *vcpu)
{
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	return container_of(vcpu, struct vcpu_svm, vcpu);
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}

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static void recalc_intercepts(struct vcpu_svm *svm)
{
	struct vmcb_control_area *c, *h;
	struct nested_state *g;

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	mark_dirty(svm->vmcb, VMCB_INTERCEPTS);

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	if (!is_guest_mode(&svm->vcpu))
		return;

	c = &svm->vmcb->control;
	h = &svm->nested.hsave->control;
	g = &svm->nested;

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	c->intercept_cr = h->intercept_cr | g->intercept_cr;
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	c->intercept_dr = h->intercept_dr | g->intercept_dr;
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	c->intercept_exceptions = h->intercept_exceptions | g->intercept_exceptions;
	c->intercept = h->intercept | g->intercept;
}

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static inline struct vmcb *get_host_vmcb(struct vcpu_svm *svm)
{
	if (is_guest_mode(&svm->vcpu))
		return svm->nested.hsave;
	else
		return svm->vmcb;
}

static inline void set_cr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_cr |= (1U << bit);

	recalc_intercepts(svm);
}

static inline void clr_cr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_cr &= ~(1U << bit);

	recalc_intercepts(svm);
}

static inline bool is_cr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	return vmcb->control.intercept_cr & (1U << bit);
}

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static inline void set_dr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_dr |= (1U << bit);

	recalc_intercepts(svm);
}

static inline void clr_dr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_dr &= ~(1U << bit);

	recalc_intercepts(svm);
}

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static inline void set_exception_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_exceptions |= (1U << bit);

	recalc_intercepts(svm);
}

static inline void clr_exception_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept_exceptions &= ~(1U << bit);

	recalc_intercepts(svm);
}

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static inline void set_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept |= (1ULL << bit);

	recalc_intercepts(svm);
}

static inline void clr_intercept(struct vcpu_svm *svm, int bit)
{
	struct vmcb *vmcb = get_host_vmcb(svm);

	vmcb->control.intercept &= ~(1ULL << bit);

	recalc_intercepts(svm);
}

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static inline void enable_gif(struct vcpu_svm *svm)
{
	svm->vcpu.arch.hflags |= HF_GIF_MASK;
}

static inline void disable_gif(struct vcpu_svm *svm)
{
	svm->vcpu.arch.hflags &= ~HF_GIF_MASK;
}

static inline bool gif_set(struct vcpu_svm *svm)
{
	return !!(svm->vcpu.arch.hflags & HF_GIF_MASK);
}

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static unsigned long iopm_base;
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struct kvm_ldttss_desc {
	u16 limit0;
	u16 base0;
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	unsigned base1:8, type:5, dpl:2, p:1;
	unsigned limit1:4, zero0:3, g:1, base2:8;
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	u32 base3;
	u32 zero1;
} __attribute__((packed));

struct svm_cpu_data {
	int cpu;

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	u64 asid_generation;
	u32 max_asid;
	u32 next_asid;
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	struct kvm_ldttss_desc *tss_desc;

	struct page *save_area;
};

static DEFINE_PER_CPU(struct svm_cpu_data *, svm_data);

struct svm_init_data {
	int cpu;
	int r;
};

static u32 msrpm_ranges[] = {0, 0xc0000000, 0xc0010000};

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#define NUM_MSR_MAPS ARRAY_SIZE(msrpm_ranges)
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#define MSRS_RANGE_SIZE 2048
#define MSRS_IN_RANGE (MSRS_RANGE_SIZE * 8 / 2)

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static u32 svm_msrpm_offset(u32 msr)
{
	u32 offset;
	int i;

	for (i = 0; i < NUM_MSR_MAPS; i++) {
		if (msr < msrpm_ranges[i] ||
		    msr >= msrpm_ranges[i] + MSRS_IN_RANGE)
			continue;

		offset  = (msr - msrpm_ranges[i]) / 4; /* 4 msrs per u8 */
		offset += (i * MSRS_RANGE_SIZE);       /* add range offset */

		/* Now we have the u8 offset - but need the u32 offset */
		return offset / 4;
	}

	/* MSR not in any range */
	return MSR_INVALID;
}

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#define MAX_INST_SIZE 15

static inline void clgi(void)
{
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	asm volatile (__ex(SVM_CLGI));
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}

static inline void stgi(void)
{
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	asm volatile (__ex(SVM_STGI));
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}

static inline void invlpga(unsigned long addr, u32 asid)
{
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	asm volatile (__ex(SVM_INVLPGA) : : "a"(addr), "c"(asid));
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}

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static int get_npt_level(void)
{
#ifdef CONFIG_X86_64
	return PT64_ROOT_LEVEL;
#else
	return PT32E_ROOT_LEVEL;
#endif
}

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static void svm_set_efer(struct kvm_vcpu *vcpu, u64 efer)
{
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	vcpu->arch.efer = efer;
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	if (!npt_enabled && !(efer & EFER_LMA))
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		efer &= ~EFER_LME;
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	to_svm(vcpu)->vmcb->save.efer = efer | EFER_SVME;
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	mark_dirty(to_svm(vcpu)->vmcb, VMCB_CR);
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}

static int is_external_interrupt(u32 info)
{
	info &= SVM_EVTINJ_TYPE_MASK | SVM_EVTINJ_VALID;
	return info == (SVM_EVTINJ_VALID | SVM_EVTINJ_TYPE_INTR);
}

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static u32 svm_get_interrupt_shadow(struct kvm_vcpu *vcpu, int mask)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u32 ret = 0;

	if (svm->vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK)
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		ret |= KVM_X86_SHADOW_INT_STI | KVM_X86_SHADOW_INT_MOV_SS;
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	return ret & mask;
}

static void svm_set_interrupt_shadow(struct kvm_vcpu *vcpu, int mask)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	if (mask == 0)
		svm->vmcb->control.int_state &= ~SVM_INTERRUPT_SHADOW_MASK;
	else
		svm->vmcb->control.int_state |= SVM_INTERRUPT_SHADOW_MASK;

}

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static void skip_emulated_instruction(struct kvm_vcpu *vcpu)
{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	if (svm->vmcb->control.next_rip != 0)
		svm->next_rip = svm->vmcb->control.next_rip;

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	if (!svm->next_rip) {
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		if (emulate_instruction(vcpu, EMULTYPE_SKIP) !=
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				EMULATE_DONE)
			printk(KERN_DEBUG "%s: NOP\n", __func__);
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		return;
	}
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	if (svm->next_rip - kvm_rip_read(vcpu) > MAX_INST_SIZE)
		printk(KERN_ERR "%s: ip 0x%lx next 0x%llx\n",
		       __func__, kvm_rip_read(vcpu), svm->next_rip);
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	kvm_rip_write(vcpu, svm->next_rip);
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	svm_set_interrupt_shadow(vcpu, 0);
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}

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static void svm_queue_exception(struct kvm_vcpu *vcpu, unsigned nr,
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				bool has_error_code, u32 error_code,
				bool reinject)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

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	/*
	 * If we are within a nested VM we'd better #VMEXIT and let the guest
	 * handle the exception
	 */
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	if (!reinject &&
	    nested_svm_check_exception(svm, nr, has_error_code, error_code))
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		return;

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	if (nr == BP_VECTOR && !static_cpu_has(X86_FEATURE_NRIPS)) {
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		unsigned long rip, old_rip = kvm_rip_read(&svm->vcpu);

		/*
		 * For guest debugging where we have to reinject #BP if some
		 * INT3 is guest-owned:
		 * Emulate nRIP by moving RIP forward. Will fail if injection
		 * raises a fault that is not intercepted. Still better than
		 * failing in all cases.
		 */
		skip_emulated_instruction(&svm->vcpu);
		rip = kvm_rip_read(&svm->vcpu);
		svm->int3_rip = rip + svm->vmcb->save.cs.base;
		svm->int3_injected = rip - old_rip;
	}

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	svm->vmcb->control.event_inj = nr
		| SVM_EVTINJ_VALID
		| (has_error_code ? SVM_EVTINJ_VALID_ERR : 0)
		| SVM_EVTINJ_TYPE_EXEPT;
	svm->vmcb->control.event_inj_err = error_code;
}

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static void svm_init_erratum_383(void)
{
	u32 low, high;
	int err;
	u64 val;

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	if (!cpu_has_amd_erratum(amd_erratum_383))
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		return;

	/* Use _safe variants to not break nested virtualization */
	val = native_read_msr_safe(MSR_AMD64_DC_CFG, &err);
	if (err)
		return;

	val |= (1ULL << 47);

	low  = lower_32_bits(val);
	high = upper_32_bits(val);

	native_write_msr_safe(MSR_AMD64_DC_CFG, low, high);

	erratum_383_found = true;
}

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static int has_svm(void)
{
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	const char *msg;
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	if (!cpu_has_svm(&msg)) {
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		printk(KERN_INFO "has_svm: %s\n", msg);
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		return 0;
	}

	return 1;
}

static void svm_hardware_disable(void *garbage)
{
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	/* Make sure we clean up behind us */
	if (static_cpu_has(X86_FEATURE_TSCRATEMSR))
		wrmsrl(MSR_AMD64_TSC_RATIO, TSC_RATIO_DEFAULT);

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	cpu_svm_disable();
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}

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static int svm_hardware_enable(void *garbage)
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{

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	struct svm_cpu_data *sd;
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	uint64_t efer;
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	struct desc_ptr gdt_descr;
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	struct desc_struct *gdt;
	int me = raw_smp_processor_id();

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	rdmsrl(MSR_EFER, efer);
	if (efer & EFER_SVME)
		return -EBUSY;

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	if (!has_svm()) {
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		printk(KERN_ERR "svm_hardware_enable: err EOPNOTSUPP on %d\n",
		       me);
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		return -EINVAL;
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	}
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	sd = per_cpu(svm_data, me);
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	if (!sd) {
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		printk(KERN_ERR "svm_hardware_enable: svm_data is NULL on %d\n",
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		       me);
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		return -EINVAL;
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	}

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	sd->asid_generation = 1;
	sd->max_asid = cpuid_ebx(SVM_CPUID_FUNC) - 1;
	sd->next_asid = sd->max_asid + 1;
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	native_store_gdt(&gdt_descr);
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	gdt = (struct desc_struct *)gdt_descr.address;
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	sd->tss_desc = (struct kvm_ldttss_desc *)(gdt + GDT_ENTRY_TSS);
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	wrmsrl(MSR_EFER, efer | EFER_SVME);
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	wrmsrl(MSR_VM_HSAVE_PA, page_to_pfn(sd->save_area) << PAGE_SHIFT);
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	if (static_cpu_has(X86_FEATURE_TSCRATEMSR)) {
		wrmsrl(MSR_AMD64_TSC_RATIO, TSC_RATIO_DEFAULT);
		__get_cpu_var(current_tsc_ratio) = TSC_RATIO_DEFAULT;
	}

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	svm_init_erratum_383();

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	return 0;
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}

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static void svm_cpu_uninit(int cpu)
{
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	struct svm_cpu_data *sd = per_cpu(svm_data, raw_smp_processor_id());
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	if (!sd)
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		return;

	per_cpu(svm_data, raw_smp_processor_id()) = NULL;
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	__free_page(sd->save_area);
	kfree(sd);
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}

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static int svm_cpu_init(int cpu)
{
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	struct svm_cpu_data *sd;
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	int r;

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	sd = kzalloc(sizeof(struct svm_cpu_data), GFP_KERNEL);
	if (!sd)
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		return -ENOMEM;
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	sd->cpu = cpu;
	sd->save_area = alloc_page(GFP_KERNEL);
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	r = -ENOMEM;
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	if (!sd->save_area)
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		goto err_1;

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	per_cpu(svm_data, cpu) = sd;
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	return 0;

err_1:
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	kfree(sd);
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	return r;

}

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static bool valid_msr_intercept(u32 index)
{
	int i;

	for (i = 0; direct_access_msrs[i].index != MSR_INVALID; i++)
		if (direct_access_msrs[i].index == index)
			return true;

	return false;
}

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static void set_msr_interception(u32 *msrpm, unsigned msr,
				 int read, int write)
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{
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	u8 bit_read, bit_write;
	unsigned long tmp;
	u32 offset;
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	/*
	 * If this warning triggers extend the direct_access_msrs list at the
	 * beginning of the file
	 */
	WARN_ON(!valid_msr_intercept(msr));

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	offset    = svm_msrpm_offset(msr);
	bit_read  = 2 * (msr & 0x0f);
	bit_write = 2 * (msr & 0x0f) + 1;
	tmp       = msrpm[offset];

	BUG_ON(offset == MSR_INVALID);

	read  ? clear_bit(bit_read,  &tmp) : set_bit(bit_read,  &tmp);
	write ? clear_bit(bit_write, &tmp) : set_bit(bit_write, &tmp);

	msrpm[offset] = tmp;
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}

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static void svm_vcpu_init_msrpm(u32 *msrpm)
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{
	int i;

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	memset(msrpm, 0xff, PAGE_SIZE * (1 << MSRPM_ALLOC_ORDER));

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	for (i = 0; direct_access_msrs[i].index != MSR_INVALID; i++) {
		if (!direct_access_msrs[i].always)
			continue;

		set_msr_interception(msrpm, direct_access_msrs[i].index, 1, 1);
	}
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}

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static void add_msr_offset(u32 offset)
{
	int i;

	for (i = 0; i < MSRPM_OFFSETS; ++i) {

		/* Offset already in list? */
		if (msrpm_offsets[i] == offset)
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			return;
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		/* Slot used by another offset? */
		if (msrpm_offsets[i] != MSR_INVALID)
			continue;

		/* Add offset to list */
		msrpm_offsets[i] = offset;

		return;
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	}
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	/*
	 * If this BUG triggers the msrpm_offsets table has an overflow. Just
	 * increase MSRPM_OFFSETS in this case.
	 */
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	BUG();
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}

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static void init_msrpm_offsets(void)
743
{
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	int i;
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	memset(msrpm_offsets, 0xff, sizeof(msrpm_offsets));

	for (i = 0; direct_access_msrs[i].index != MSR_INVALID; i++) {
		u32 offset;

		offset = svm_msrpm_offset(direct_access_msrs[i].index);
		BUG_ON(offset == MSR_INVALID);

		add_msr_offset(offset);
	}
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}

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static void svm_enable_lbrv(struct vcpu_svm *svm)
{
	u32 *msrpm = svm->msrpm;

	svm->vmcb->control.lbr_ctl = 1;
	set_msr_interception(msrpm, MSR_IA32_LASTBRANCHFROMIP, 1, 1);
	set_msr_interception(msrpm, MSR_IA32_LASTBRANCHTOIP, 1, 1);
	set_msr_interception(msrpm, MSR_IA32_LASTINTFROMIP, 1, 1);
	set_msr_interception(msrpm, MSR_IA32_LASTINTTOIP, 1, 1);
}

static void svm_disable_lbrv(struct vcpu_svm *svm)
{
	u32 *msrpm = svm->msrpm;

	svm->vmcb->control.lbr_ctl = 0;
	set_msr_interception(msrpm, MSR_IA32_LASTBRANCHFROMIP, 0, 0);
	set_msr_interception(msrpm, MSR_IA32_LASTBRANCHTOIP, 0, 0);
	set_msr_interception(msrpm, MSR_IA32_LASTINTFROMIP, 0, 0);
	set_msr_interception(msrpm, MSR_IA32_LASTINTTOIP, 0, 0);
}

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static __init int svm_hardware_setup(void)
{
	int cpu;
	struct page *iopm_pages;
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	void *iopm_va;
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	int r;

	iopm_pages = alloc_pages(GFP_KERNEL, IOPM_ALLOC_ORDER);

	if (!iopm_pages)
		return -ENOMEM;
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	iopm_va = page_address(iopm_pages);
	memset(iopm_va, 0xff, PAGE_SIZE * (1 << IOPM_ALLOC_ORDER));
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	iopm_base = page_to_pfn(iopm_pages) << PAGE_SHIFT;

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	init_msrpm_offsets();

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	if (boot_cpu_has(X86_FEATURE_NX))
		kvm_enable_efer_bits(EFER_NX);

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	if (boot_cpu_has(X86_FEATURE_FXSR_OPT))
		kvm_enable_efer_bits(EFER_FFXSR);

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	if (boot_cpu_has(X86_FEATURE_TSCRATEMSR)) {
		u64 max;

		kvm_has_tsc_control = true;

		/*
		 * Make sure the user can only configure tsc_khz values that
		 * fit into a signed integer.
		 * A min value is not calculated needed because it will always
		 * be 1 on all machines and a value of 0 is used to disable
		 * tsc-scaling for the vcpu.
		 */
		max = min(0x7fffffffULL, __scale_tsc(tsc_khz, TSC_RATIO_MAX));

		kvm_max_guest_tsc_khz = max;
	}

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	if (nested) {
		printk(KERN_INFO "kvm: Nested Virtualization enabled\n");
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		kvm_enable_efer_bits(EFER_SVME | EFER_LMSLE);
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	}

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	for_each_possible_cpu(cpu) {
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		r = svm_cpu_init(cpu);
		if (r)
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			goto err;
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	}
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	if (!boot_cpu_has(X86_FEATURE_NPT))
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		npt_enabled = false;

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	if (npt_enabled && !npt) {
		printk(KERN_INFO "kvm: Nested Paging disabled\n");
		npt_enabled = false;
	}

840
	if (npt_enabled) {
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		printk(KERN_INFO "kvm: Nested Paging enabled\n");
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		kvm_enable_tdp();
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	} else
		kvm_disable_tdp();
845

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	return 0;

848
err:
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	__free_pages(iopm_pages, IOPM_ALLOC_ORDER);
	iopm_base = 0;
	return r;
}

static __exit void svm_hardware_unsetup(void)
{
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	int cpu;

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	for_each_possible_cpu(cpu)
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		svm_cpu_uninit(cpu);

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	__free_pages(pfn_to_page(iopm_base >> PAGE_SHIFT), IOPM_ALLOC_ORDER);
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	iopm_base = 0;
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}

static void init_seg(struct vmcb_seg *seg)
{
	seg->selector = 0;
	seg->attrib = SVM_SELECTOR_P_MASK | SVM_SELECTOR_S_MASK |
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		      SVM_SELECTOR_WRITE_MASK; /* Read/Write Data Segment */
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	seg->limit = 0xffff;
	seg->base = 0;
}

static void init_sys_seg(struct vmcb_seg *seg, uint32_t type)
{
	seg->selector = 0;
	seg->attrib = SVM_SELECTOR_P_MASK | type;
	seg->limit = 0xffff;
	seg->base = 0;
}

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static u64 __scale_tsc(u64 ratio, u64 tsc)
{
	u64 mult, frac, _tsc;

	mult  = ratio >> 32;
	frac  = ratio & ((1ULL << 32) - 1);

	_tsc  = tsc;
	_tsc *= mult;
	_tsc += (tsc >> 32) * frac;
	_tsc += ((tsc & ((1ULL << 32) - 1)) * frac) >> 32;

	return _tsc;
}

static u64 svm_scale_tsc(struct kvm_vcpu *vcpu, u64 tsc)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u64 _tsc = tsc;

	if (svm->tsc_ratio != TSC_RATIO_DEFAULT)
		_tsc = __scale_tsc(svm->tsc_ratio, tsc);

	return _tsc;
}

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static void svm_set_tsc_khz(struct kvm_vcpu *vcpu, u32 user_tsc_khz)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u64 ratio;
	u64 khz;

	/* TSC scaling supported? */
	if (!boot_cpu_has(X86_FEATURE_TSCRATEMSR))
		return;

	/* TSC-Scaling disabled or guest TSC same frequency as host TSC? */
	if (user_tsc_khz == 0) {
		vcpu->arch.virtual_tsc_khz = 0;
		svm->tsc_ratio = TSC_RATIO_DEFAULT;
		return;
	}

	khz = user_tsc_khz;

	/* TSC scaling required  - calculate ratio */
	ratio = khz << 32;
	do_div(ratio, tsc_khz);

	if (ratio == 0 || ratio & TSC_RATIO_RSVD) {
		WARN_ONCE(1, "Invalid TSC ratio - virtual-tsc-khz=%u\n",
				user_tsc_khz);
		return;
	}
	vcpu->arch.virtual_tsc_khz = user_tsc_khz;
	svm->tsc_ratio             = ratio;
}

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static void svm_write_tsc_offset(struct kvm_vcpu *vcpu, u64 offset)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u64 g_tsc_offset = 0;

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	if (is_guest_mode(vcpu)) {
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		g_tsc_offset = svm->vmcb->control.tsc_offset -
			       svm->nested.hsave->control.tsc_offset;
		svm->nested.hsave->control.tsc_offset = offset;
	}

	svm->vmcb->control.tsc_offset = offset + g_tsc_offset;
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	mark_dirty(svm->vmcb, VMCB_INTERCEPTS);
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}

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static void svm_adjust_tsc_offset(struct kvm_vcpu *vcpu, s64 adjustment)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->control.tsc_offset += adjustment;
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	if (is_guest_mode(vcpu))
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		svm->nested.hsave->control.tsc_offset += adjustment;
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	mark_dirty(svm->vmcb, VMCB_INTERCEPTS);
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}

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static u64 svm_compute_tsc_offset(struct kvm_vcpu *vcpu, u64 target_tsc)
{
	u64 tsc;

	tsc = svm_scale_tsc(vcpu, native_read_tsc());

	return target_tsc - tsc;
}

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static void init_vmcb(struct vcpu_svm *svm)
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{
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	struct vmcb_control_area *control = &svm->vmcb->control;
	struct vmcb_save_area *save = &svm->vmcb->save;
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	svm->vcpu.fpu_active = 1;
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	svm->vcpu.arch.hflags = 0;
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	set_cr_intercept(svm, INTERCEPT_CR0_READ);
	set_cr_intercept(svm, INTERCEPT_CR3_READ);
	set_cr_intercept(svm, INTERCEPT_CR4_READ);
	set_cr_intercept(svm, INTERCEPT_CR0_WRITE);
	set_cr_intercept(svm, INTERCEPT_CR3_WRITE);
	set_cr_intercept(svm, INTERCEPT_CR4_WRITE);
	set_cr_intercept(svm, INTERCEPT_CR8_WRITE);
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	set_dr_intercept(svm, INTERCEPT_DR0_READ);
	set_dr_intercept(svm, INTERCEPT_DR1_READ);
	set_dr_intercept(svm, INTERCEPT_DR2_READ);
	set_dr_intercept(svm, INTERCEPT_DR3_READ);
	set_dr_intercept(svm, INTERCEPT_DR4_READ);
	set_dr_intercept(svm, INTERCEPT_DR5_READ);
	set_dr_intercept(svm, INTERCEPT_DR6_READ);
	set_dr_intercept(svm, INTERCEPT_DR7_READ);

	set_dr_intercept(svm, INTERCEPT_DR0_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR1_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR2_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR3_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR4_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR5_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR6_WRITE);
	set_dr_intercept(svm, INTERCEPT_DR7_WRITE);
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	set_exception_intercept(svm, PF_VECTOR);
	set_exception_intercept(svm, UD_VECTOR);
	set_exception_intercept(svm, MC_VECTOR);
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	set_intercept(svm, INTERCEPT_INTR);
	set_intercept(svm, INTERCEPT_NMI);
	set_intercept(svm, INTERCEPT_SMI);
	set_intercept(svm, INTERCEPT_SELECTIVE_CR0);
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	set_intercept(svm, INTERCEPT_RDPMC);
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	set_intercept(svm, INTERCEPT_CPUID);
	set_intercept(svm, INTERCEPT_INVD);
	set_intercept(svm, INTERCEPT_HLT);
	set_intercept(svm, INTERCEPT_INVLPG);
	set_intercept(svm, INTERCEPT_INVLPGA);
	set_intercept(svm, INTERCEPT_IOIO_PROT);
	set_intercept(svm, INTERCEPT_MSR_PROT);
	set_intercept(svm, INTERCEPT_TASK_SWITCH);
	set_intercept(svm, INTERCEPT_SHUTDOWN);
	set_intercept(svm, INTERCEPT_VMRUN);
	set_intercept(svm, INTERCEPT_VMMCALL);
	set_intercept(svm, INTERCEPT_VMLOAD);
	set_intercept(svm, INTERCEPT_VMSAVE);
	set_intercept(svm, INTERCEPT_STGI);
	set_intercept(svm, INTERCEPT_CLGI);
	set_intercept(svm, INTERCEPT_SKINIT);
	set_intercept(svm, INTERCEPT_WBINVD);
	set_intercept(svm, INTERCEPT_MONITOR);
	set_intercept(svm, INTERCEPT_MWAIT);
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	set_intercept(svm, INTERCEPT_XSETBV);
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	control->iopm_base_pa = iopm_base;
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	control->msrpm_base_pa = __pa(svm->msrpm);
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	control->int_ctl = V_INTR_MASKING_MASK;

	init_seg(&save->es);
	init_seg(&save->ss);
	init_seg(&save->ds);
	init_seg(&save->fs);
	init_seg(&save->gs);

	save->cs.selector = 0xf000;
	/* Executable/Readable Code Segment */
	save->cs.attrib = SVM_SELECTOR_READ_MASK | SVM_SELECTOR_P_MASK |
		SVM_SELECTOR_S_MASK | SVM_SELECTOR_CODE_MASK;
	save->cs.limit = 0xffff;
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	/*
	 * cs.base should really be 0xffff0000, but vmx can't handle that, so
	 * be consistent with it.
	 *
	 * Replace when we have real mode working for vmx.
	 */
	save->cs.base = 0xf0000;
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	save->gdtr.limit = 0xffff;
	save->idtr.limit = 0xffff;

	init_sys_seg(&save->ldtr, SEG_TYPE_LDT);
	init_sys_seg(&save->tr, SEG_TYPE_BUSY_TSS16);

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	svm_set_efer(&svm->vcpu, 0);
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	save->dr6 = 0xffff0ff0;
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	save->dr7 = 0x400;
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	kvm_set_rflags(&svm->vcpu, 2);
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	save->rip = 0x0000fff0;
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	svm->vcpu.arch.regs[VCPU_REGS_RIP] = save->rip;
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	/*
	 * This is the guest-visible cr0 value.
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	 * svm_set_cr0() sets PG and WP and clears NW and CD on save->cr0.
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	 */
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	svm->vcpu.arch.cr0 = 0;
	(void)kvm_set_cr0(&svm->vcpu, X86_CR0_NW | X86_CR0_CD | X86_CR0_ET);
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	save->cr4 = X86_CR4_PAE;
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	/* rdx = ?? */
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	if (npt_enabled) {
		/* Setup VMCB for Nested Paging */
		control->nested_ctl = 1;
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		clr_intercept(svm, INTERCEPT_INVLPG);
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		clr_exception_intercept(svm, PF_VECTOR);
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		clr_cr_intercept(svm, INTERCEPT_CR3_READ);
		clr_cr_intercept(svm, INTERCEPT_CR3_WRITE);
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		save->g_pat = 0x0007040600070406ULL;
		save->cr3 = 0;
		save->cr4 = 0;
	}
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	svm->asid_generation = 0;
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	svm->nested.vmcb = 0;
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	svm->vcpu.arch.hflags = 0;

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	if (boot_cpu_has(X86_FEATURE_PAUSEFILTER)) {
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		control->pause_filter_count = 3000;
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		set_intercept(svm, INTERCEPT_PAUSE);
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	}

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	mark_all_dirty(svm->vmcb);

1108
	enable_gif(svm);
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}

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static int svm_vcpu_reset(struct kvm_vcpu *vcpu)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

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	init_vmcb(svm);
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1117
	if (!kvm_vcpu_is_bsp(vcpu)) {
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		kvm_rip_write(vcpu, 0);
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		svm->vmcb->save.cs.base = svm->vcpu.arch.sipi_vector << 12;
		svm->vmcb->save.cs.selector = svm->vcpu.arch.sipi_vector << 8;
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	}
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	vcpu->arch.regs_avail = ~0;
	vcpu->arch.regs_dirty = ~0;
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	return 0;
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}

1128
static struct kvm_vcpu *svm_create_vcpu(struct kvm *kvm, unsigned int id)
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{
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	struct vcpu_svm *svm;
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	struct page *page;
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	struct page *msrpm_pages;
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	struct page *hsave_page;
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	struct page *nested_msrpm_pages;
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	int err;
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1137
	svm = kmem_cache_zalloc(kvm_vcpu_cache, GFP_KERNEL);
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	if (!svm) {
		err = -ENOMEM;
		goto out;
	}

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	svm->tsc_ratio = TSC_RATIO_DEFAULT;

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	err = kvm_vcpu_init(&svm->vcpu, kvm, id);
	if (err)
		goto free_svm;

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	err = -ENOMEM;
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	page = alloc_page(GFP_KERNEL);
1151
	if (!page)
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		goto uninit;
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	msrpm_pages = alloc_pages(GFP_KERNEL, MSRPM_ALLOC_ORDER);
	if (!msrpm_pages)
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		goto free_page1;
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	nested_msrpm_pages = alloc_pages(GFP_KERNEL, MSRPM_ALLOC_ORDER);
	if (!nested_msrpm_pages)
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		goto free_page2;
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	hsave_page = alloc_page(GFP_KERNEL);
	if (!hsave_page)
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		goto free_page3;

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	svm->nested.hsave = page_address(hsave_page);
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	svm->msrpm = page_address(msrpm_pages);
	svm_vcpu_init_msrpm(svm->msrpm);

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	svm->nested.msrpm = page_address(nested_msrpm_pages);
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	svm_vcpu_init_msrpm(svm->nested.msrpm);
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	svm->vmcb = page_address(page);
	clear_page(svm->vmcb);
	svm->vmcb_pa = page_to_pfn(page) << PAGE_SHIFT;
	svm->asid_generation = 0;
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	init_vmcb(svm);
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	kvm_write_tsc(&svm->vcpu, 0);
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	err = fx_init(&svm->vcpu);
	if (err)
		goto free_page4;

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	svm->vcpu.arch.apic_base = 0xfee00000 | MSR_IA32_APICBASE_ENABLE;
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	if (kvm_vcpu_is_bsp(&svm->vcpu))
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		svm->vcpu.arch.apic_base |= MSR_IA32_APICBASE_BSP;
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1189
	return &svm->vcpu;
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free_page4:
	__free_page(hsave_page);
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free_page3:
	__free_pages(nested_msrpm_pages, MSRPM_ALLOC_ORDER);
free_page2:
	__free_pages(msrpm_pages, MSRPM_ALLOC_ORDER);
free_page1:
	__free_page(page);
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uninit:
	kvm_vcpu_uninit(&svm->vcpu);
free_svm:
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	kmem_cache_free(kvm_vcpu_cache, svm);
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out:
	return ERR_PTR(err);
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}

static void svm_free_vcpu(struct kvm_vcpu *vcpu)
{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	__free_page(pfn_to_page(svm->vmcb_pa >> PAGE_SHIFT));
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	__free_pages(virt_to_page(svm->msrpm), MSRPM_ALLOC_ORDER);
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	__free_page(virt_to_page(svm->nested.hsave));
	__free_pages(virt_to_page(svm->nested.msrpm), MSRPM_ALLOC_ORDER);
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	kvm_vcpu_uninit(vcpu);
1216
	kmem_cache_free(kvm_vcpu_cache, svm);
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}

1219
static void svm_vcpu_load(struct kvm_vcpu *vcpu, int cpu)
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{
1221
	struct vcpu_svm *svm = to_svm(vcpu);
1222
	int i;
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	if (unlikely(cpu != vcpu->cpu)) {
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		svm->asid_generation = 0;
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		mark_all_dirty(svm->vmcb);
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	}
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#ifdef CONFIG_X86_64
	rdmsrl(MSR_GS_BASE, to_svm(vcpu)->host.gs_base);
#endif
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	savesegment(fs, svm->host.fs);
	savesegment(gs, svm->host.gs);
	svm->host.ldt = kvm_read_ldt();

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	for (i = 0; i < NR_HOST_SAVE_USER_MSRS; i++)
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		rdmsrl(host_save_user_msrs[i], svm->host_user_msrs[i]);
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	if (static_cpu_has(X86_FEATURE_TSCRATEMSR) &&
	    svm->tsc_ratio != __get_cpu_var(current_tsc_ratio)) {
		__get_cpu_var(current_tsc_ratio) = svm->tsc_ratio;
		wrmsrl(MSR_AMD64_TSC_RATIO, svm->tsc_ratio);
	}
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}

static void svm_vcpu_put(struct kvm_vcpu *vcpu)
{
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	struct vcpu_svm *svm = to_svm(vcpu);
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	int i;

1251
	++vcpu->stat.host_state_reload;
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	kvm_load_ldt(svm->host.ldt);
#ifdef CONFIG_X86_64
	loadsegment(fs, svm->host.fs);
	wrmsrl(MSR_KERNEL_GS_BASE, current->thread.gs);
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	load_gs_index(svm->host.gs);
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#else
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#ifdef CONFIG_X86_32_LAZY_GS
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	loadsegment(gs, svm->host.gs);
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#endif
1261
#endif
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	for (i = 0; i < NR_HOST_SAVE_USER_MSRS; i++)
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		wrmsrl(host_save_user_msrs[i], svm->host_user_msrs[i]);
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}

static unsigned long svm_get_rflags(struct kvm_vcpu *vcpu)
{
1268
	return to_svm(vcpu)->vmcb->save.rflags;
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}

static void svm_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags)
{
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	to_svm(vcpu)->vmcb->save.rflags = rflags;
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}

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static void svm_cache_reg(struct kvm_vcpu *vcpu, enum kvm_reg reg)
{
	switch (reg) {
	case VCPU_EXREG_PDPTR:
		BUG_ON(!npt_enabled);
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		load_pdptrs(vcpu, vcpu->arch.walk_mmu, kvm_read_cr3(vcpu));
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		break;
	default:
		BUG();
	}
}

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static void svm_set_vintr(struct vcpu_svm *svm)
{
1290
	set_intercept(svm, INTERCEPT_VINTR);
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}

static void svm_clear_vintr(struct vcpu_svm *svm)
{
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	clr_intercept(svm, INTERCEPT_VINTR);
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}

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static struct vmcb_seg *svm_seg(struct kvm_vcpu *vcpu, int seg)
{
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	struct vmcb_save_area *save = &to_svm(vcpu)->vmcb->save;
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	switch (seg) {
	case VCPU_SREG_CS: return &save->cs;
	case VCPU_SREG_DS: return &save->ds;
	case VCPU_SREG_ES: return &save->es;
	case VCPU_SREG_FS: return &save->fs;
	case VCPU_SREG_GS: return &save->gs;
	case VCPU_SREG_SS: return &save->ss;
	case VCPU_SREG_TR: return &save->tr;
	case VCPU_SREG_LDTR: return &save->ldtr;
	}
	BUG();
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	return NULL;
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}

static u64 svm_get_segment_base(struct kvm_vcpu *vcpu, int seg)
{
	struct vmcb_seg *s = svm_seg(vcpu, seg);

	return s->base;
}

static void svm_get_segment(struct kvm_vcpu *vcpu,
			    struct kvm_segment *var, int seg)
{
	struct vmcb_seg *s = svm_seg(vcpu, seg);

	var->base = s->base;
	var->limit = s->limit;
	var->selector = s->selector;
	var->type = s->attrib & SVM_SELECTOR_TYPE_MASK;
	var->s = (s->attrib >> SVM_SELECTOR_S_SHIFT) & 1;
	var->dpl = (s->attrib >> SVM_SELECTOR_DPL_SHIFT) & 3;
	var->present = (s->attrib >> SVM_SELECTOR_P_SHIFT) & 1;
	var->avl = (s->attrib >> SVM_SELECTOR_AVL_SHIFT) & 1;
	var->l = (s->attrib >> SVM_SELECTOR_L_SHIFT) & 1;
	var->db = (s->attrib >> SVM_SELECTOR_DB_SHIFT) & 1;
	var->g = (s->attrib >> SVM_SELECTOR_G_SHIFT) & 1;
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	/*
	 * AMD's VMCB does not have an explicit unusable field, so emulate it
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	 * for cross vendor migration purposes by "not present"
	 */
	var->unusable = !var->present || (var->type == 0);

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	switch (seg) {
	case VCPU_SREG_CS:
		/*
		 * SVM always stores 0 for the 'G' bit in the CS selector in
		 * the VMCB on a VMEXIT. This hurts cross-vendor migration:
		 * Intel's VMENTRY has a check on the 'G' bit.
		 */
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		var->g = s->limit > 0xfffff;
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		break;
	case VCPU_SREG_TR:
		/*
		 * Work around a bug where the busy flag in the tr selector
		 * isn't exposed
		 */
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		var->type |= 0x2;
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		break;
	case VCPU_SREG_DS:
	case VCPU_SREG_ES:
	case VCPU_SREG_FS:
	case VCPU_SREG_GS:
		/*
		 * The accessed bit must always be set in the segment
		 * descriptor cache, although it can be cleared in the
		 * descriptor, the cached bit always remains at 1. Since
		 * Intel has a check on this, set it here to support
		 * cross-vendor migration.
		 */
		if (!var->unusable)
			var->type |= 0x1;
		break;
1376
	case VCPU_SREG_SS:
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		/*
		 * On AMD CPUs sometimes the DB bit in the segment
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		 * descriptor is left as 1, although the whole segment has
		 * been made unusable. Clear it here to pass an Intel VMX
		 * entry check when cross vendor migrating.
		 */
		if (var->unusable)
			var->db = 0;
		break;
1386
	}
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}

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static int svm_get_cpl(struct kvm_vcpu *vcpu)
{
	struct vmcb_save_area *save = &to_svm(vcpu)->vmcb->save;

	return save->cpl;
}

1396
static void svm_get_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt)
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{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	dt->size = svm->vmcb->save.idtr.limit;
	dt->address = svm->vmcb->save.idtr.base;
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}

1404
static void svm_set_idt(struct kvm_vcpu *vcpu, struct desc_ptr *dt)
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{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	svm->vmcb->save.idtr.limit = dt->size;
	svm->vmcb->save.idtr.base = dt->address ;
1410
	mark_dirty(svm->vmcb, VMCB_DT);
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}

1413
static void svm_get_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt)
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1414
{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	dt->size = svm->vmcb->save.gdtr.limit;
	dt->address = svm->vmcb->save.gdtr.base;
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}

1421
static void svm_set_gdt(struct kvm_vcpu *vcpu, struct desc_ptr *dt)
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1422
{
1423 1424
	struct vcpu_svm *svm = to_svm(vcpu);

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	svm->vmcb->save.gdtr.limit = dt->size;
	svm->vmcb->save.gdtr.base = dt->address ;
1427
	mark_dirty(svm->vmcb, VMCB_DT);
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}

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static void svm_decache_cr0_guest_bits(struct kvm_vcpu *vcpu)
{
}

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static void svm_decache_cr3(struct kvm_vcpu *vcpu)
{
}

1438
static void svm_decache_cr4_guest_bits(struct kvm_vcpu *vcpu)
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{
}

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static void update_cr0_intercept(struct vcpu_svm *svm)
{
	ulong gcr0 = svm->vcpu.arch.cr0;
	u64 *hcr0 = &svm->vmcb->save.cr0;

	if (!svm->vcpu.fpu_active)
		*hcr0 |= SVM_CR0_SELECTIVE_MASK;
	else
		*hcr0 = (*hcr0 & ~SVM_CR0_SELECTIVE_MASK)
			| (gcr0 & SVM_CR0_SELECTIVE_MASK);

1453
	mark_dirty(svm->vmcb, VMCB_CR);
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	if (gcr0 == *hcr0 && svm->vcpu.fpu_active) {
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		clr_cr_intercept(svm, INTERCEPT_CR0_READ);
		clr_cr_intercept(svm, INTERCEPT_CR0_WRITE);
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	} else {
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		set_cr_intercept(svm, INTERCEPT_CR0_READ);
		set_cr_intercept(svm, INTERCEPT_CR0_WRITE);
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	}
}

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static void svm_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0)
{
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	struct vcpu_svm *svm = to_svm(vcpu);

1468
#ifdef CONFIG_X86_64
1469
	if (vcpu->arch.efer & EFER_LME) {
1470
		if (!is_paging(vcpu) && (cr0 & X86_CR0_PG)) {
1471
			vcpu->arch.efer |= EFER_LMA;
1472
			svm->vmcb->save.efer |= EFER_LMA | EFER_LME;
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		}

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		if (is_paging(vcpu) && !(cr0 & X86_CR0_PG)) {
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			vcpu->arch.efer &= ~EFER_LMA;
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			svm->vmcb->save.efer &= ~(EFER_LMA | EFER_LME);
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		}
	}
#endif
1481
	vcpu->arch.cr0 = cr0;
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	if (!npt_enabled)
		cr0 |= X86_CR0_PG | X86_CR0_WP;
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	if (!vcpu->fpu_active)
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		cr0 |= X86_CR0_TS;
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	/*
	 * re-enable caching here because the QEMU bios
	 * does not do it - this results in some delay at
	 * reboot
	 */
	cr0 &= ~(X86_CR0_CD | X86_CR0_NW);
1494
	svm->vmcb->save.cr0 = cr0;
1495
	mark_dirty(svm->vmcb, VMCB_CR);
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	update_cr0_intercept(svm);
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}

1499
static int svm_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4)
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{
1501
	unsigned long host_cr4_mce = read_cr4() & X86_CR4_MCE;
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	unsigned long old_cr4 = to_svm(vcpu)->vmcb->save.cr4;

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	if (cr4 & X86_CR4_VMXE)
		return 1;

1507
	if (npt_enabled && ((old_cr4 ^ cr4) & X86_CR4_PGE))
1508
		svm_flush_tlb(vcpu);
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	vcpu->arch.cr4 = cr4;
	if (!npt_enabled)
		cr4 |= X86_CR4_PAE;
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	cr4 |= host_cr4_mce;
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	to_svm(vcpu)->vmcb->save.cr4 = cr4;
1515
	mark_dirty(to_svm(vcpu)->vmcb, VMCB_CR);
1516
	return 0;
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}

static void svm_set_segment(struct kvm_vcpu *vcpu,
			    struct kvm_segment *var, int seg)
{
1522
	struct vcpu_svm *svm = to_svm(vcpu);
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	struct vmcb_seg *s = svm_seg(vcpu, seg);

	s->base = var->base;
	s->limit = var->limit;
	s->selector = var->selector;
	if (var->unusable)
		s->attrib = 0;
	else {
		s->attrib = (var->type & SVM_SELECTOR_TYPE_MASK);
		s->attrib |= (var->s & 1) << SVM_SELECTOR_S_SHIFT;
		s->attrib |= (var->dpl & 3) << SVM_SELECTOR_DPL_SHIFT;
		s->attrib |= (var->present & 1) << SVM_SELECTOR_P_SHIFT;
		s->attrib |= (var->avl & 1) << SVM_SELECTOR_AVL_SHIFT;
		s->attrib |= (var->l & 1) << SVM_SELECTOR_L_SHIFT;
		s->attrib |= (var->db & 1) << SVM_SELECTOR_DB_SHIFT;
		s->attrib |= (var->g & 1) << SVM_SELECTOR_G_SHIFT;
	}
	if (seg == VCPU_SREG_CS)
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		svm->vmcb->save.cpl
			= (svm->vmcb->save.cs.attrib
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			   >> SVM_SELECTOR_DPL_SHIFT) & 3;

1545
	mark_dirty(svm->vmcb, VMCB_SEG);
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}

1548
static void update_db_intercept(struct kvm_vcpu *vcpu)
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{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	clr_exception_intercept(svm, DB_VECTOR);
	clr_exception_intercept(svm, BP_VECTOR);
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	if (svm->nmi_singlestep)
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		set_exception_intercept(svm, DB_VECTOR);
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	if (vcpu->guest_debug & KVM_GUESTDBG_ENABLE) {
		if (vcpu->guest_debug &
		    (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP))
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			set_exception_intercept(svm, DB_VECTOR);
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		if (vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP)
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			set_exception_intercept(svm, BP_VECTOR);
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	} else
		vcpu->guest_debug = 0;
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}

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static void svm_guest_debug(struct kvm_vcpu *vcpu, struct kvm_guest_debug *dbg)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

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	if (vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP)
		svm->vmcb->save.dr7 = dbg->arch.debugreg[7];
	else
		svm->vmcb->save.dr7 = vcpu->arch.dr7;

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	mark_dirty(svm->vmcb, VMCB_DR);

1579
	update_db_intercept(vcpu);
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}

1582
static void new_asid(struct vcpu_svm *svm, struct svm_cpu_data *sd)
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{
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	if (sd->next_asid > sd->max_asid) {
		++sd->asid_generation;
		sd->next_asid = 1;
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		svm->vmcb->control.tlb_ctl = TLB_CONTROL_FLUSH_ALL_ASID;
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	}

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	svm->asid_generation = sd->asid_generation;
	svm->vmcb->control.asid = sd->next_asid++;
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	mark_dirty(svm->vmcb, VMCB_ASID);
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}

1596
static void svm_set_dr7(struct kvm_vcpu *vcpu, unsigned long value)
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{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	svm->vmcb->save.dr7 = value;
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	mark_dirty(svm->vmcb, VMCB_DR);
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}

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static int pf_interception(struct vcpu_svm *svm)
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{
1606
	u64 fault_address = svm->vmcb->control.exit_info_2;
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	u32 error_code;
1608
	int r = 1;
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	switch (svm->apf_reason) {
	default:
		error_code = svm->vmcb->control.exit_info_1;
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		trace_kvm_page_fault(fault_address, error_code);
		if (!npt_enabled && kvm_event_needs_reinjection(&svm->vcpu))
			kvm_mmu_unprotect_page_virt(&svm->vcpu, fault_address);
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		r = kvm_mmu_page_fault(&svm->vcpu, fault_address, error_code,
			svm->vmcb->control.insn_bytes,
			svm->vmcb->control.insn_len);
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		break;
	case KVM_PV_REASON_PAGE_NOT_PRESENT:
		svm->apf_reason = 0;
		local_irq_disable();
		kvm_async_pf_task_wait(fault_address);
		local_irq_enable();
		break;
	case KVM_PV_REASON_PAGE_READY:
		svm->apf_reason = 0;
		local_irq_disable();
		kvm_async_pf_task_wake(fault_address);
		local_irq_enable();
		break;
	}
	return r;
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}

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1637
static int db_interception(struct vcpu_svm *svm)
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{
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	struct kvm_run *kvm_run = svm->vcpu.run;

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1641
	if (!(svm->vcpu.guest_debug &
1642
	      (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP)) &&
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		!svm->nmi_singlestep) {
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		kvm_queue_exception(&svm->vcpu, DB_VECTOR);
		return 1;
	}
1647

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	if (svm->nmi_singlestep) {
		svm->nmi_singlestep = false;
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		if (!(svm->vcpu.guest_debug & KVM_GUESTDBG_SINGLESTEP))
			svm->vmcb->save.rflags &=
				~(X86_EFLAGS_TF | X86_EFLAGS_RF);
		update_db_intercept(&svm->vcpu);
	}

	if (svm->vcpu.guest_debug &
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	    (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP)) {
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		kvm_run->exit_reason = KVM_EXIT_DEBUG;
		kvm_run->debug.arch.pc =
			svm->vmcb->save.cs.base + svm->vmcb->save.rip;
		kvm_run->debug.arch.exception = DB_VECTOR;
		return 0;
	}

	return 1;
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}

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static int bp_interception(struct vcpu_svm *svm)
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{
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	struct kvm_run *kvm_run = svm->vcpu.run;

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	kvm_run->exit_reason = KVM_EXIT_DEBUG;
	kvm_run->debug.arch.pc = svm->vmcb->save.cs.base + svm->vmcb->save.rip;
	kvm_run->debug.arch.exception = BP_VECTOR;
	return 0;
}

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1678
static int ud_interception(struct vcpu_svm *svm)
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{
	int er;

1682
	er = emulate_instruction(&svm->vcpu, EMULTYPE_TRAP_UD);
1683
	if (er != EMULATE_DONE)
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		kvm_queue_exception(&svm->vcpu, UD_VECTOR);
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	return 1;
}

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static void svm_fpu_activate(struct kvm_vcpu *vcpu)
1689
{
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	struct vcpu_svm *svm = to_svm(vcpu);
1691

1692
	clr_exception_intercept(svm, NM_VECTOR);
1693

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	svm->vcpu.fpu_active = 1;
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	update_cr0_intercept(svm);
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}
1697

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static int nm_interception(struct vcpu_svm *svm)
{
	svm_fpu_activate(&svm->vcpu);
1701
	return 1;
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}

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static bool is_erratum_383(void)
{
	int err, i;
	u64 value;

	if (!erratum_383_found)
		return false;

	value = native_read_msr_safe(MSR_IA32_MC0_STATUS, &err);
	if (err)
		return false;

	/* Bit 62 may or may not be set for this mce */
	value &= ~(1ULL << 62);

	if (value != 0xb600000000010015ULL)
		return false;

	/* Clear MCi_STATUS registers */
	for (i = 0; i < 6; ++i)
		native_write_msr_safe(MSR_IA32_MCx_STATUS(i), 0, 0);

	value = native_read_msr_safe(MSR_IA32_MCG_STATUS, &err);
	if (!err) {
		u32 low, high;

		value &= ~(1ULL << 2);
		low    = lower_32_bits(value);
		high   = upper_32_bits(value);

		native_write_msr_safe(MSR_IA32_MCG_STATUS, low, high);
	}

	/* Flush tlb to evict multi-match entries */
	__flush_tlb_all();

	return true;
}

1743
static void svm_handle_mce(struct vcpu_svm *svm)
1744
{
1745 1746 1747 1748 1749 1750 1751
	if (is_erratum_383()) {
		/*
		 * Erratum 383 triggered. Guest state is corrupt so kill the
		 * guest.
		 */
		pr_err("KVM: Guest triggered AMD Erratum 383\n");

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		kvm_make_request(KVM_REQ_TRIPLE_FAULT, &svm->vcpu);
1753 1754 1755 1756

		return;
	}

1757 1758 1759 1760 1761 1762 1763 1764
	/*
	 * On an #MC intercept the MCE handler is not called automatically in
	 * the host. So do it by hand here.
	 */
	asm volatile (
		"int $0x12\n");
	/* not sure if we ever come back to this point */

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	return;
}

static int mc_interception(struct vcpu_svm *svm)
{
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	return 1;
}

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static int shutdown_interception(struct vcpu_svm *svm)
1774
{
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	struct kvm_run *kvm_run = svm->vcpu.run;

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	/*
	 * VMCB is undefined after a SHUTDOWN intercept
	 * so reinitialize it.
	 */
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	clear_page(svm->vmcb);
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	init_vmcb(svm);
1783 1784 1785 1786 1787

	kvm_run->exit_reason = KVM_EXIT_SHUTDOWN;
	return 0;
}

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static int io_interception(struct vcpu_svm *svm)
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{
1790
	struct kvm_vcpu *vcpu = &svm->vcpu;
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	u32 io_info = svm->vmcb->control.exit_info_1; /* address size bug? */
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	int size, in, string;
1793
	unsigned port;
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	++svm->vcpu.stat.io_exits;
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	string = (io_info & SVM_IOIO_STR_MASK) != 0;
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	in = (io_info & SVM_IOIO_TYPE_MASK) != 0;
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	if (string || in)
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		return emulate_instruction(vcpu, 0) == EMULATE_DONE;
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	port = io_info >> 16;
	size = (io_info & SVM_IOIO_SIZE_MASK) >> SVM_IOIO_SIZE_SHIFT;
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	svm->next_rip = svm->vmcb->control.exit_info_2;
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	skip_emulated_instruction(&svm->vcpu);
1805 1806

	return kvm_fast_pio_out(vcpu, size, port);
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}

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1809
static int nmi_interception(struct vcpu_svm *svm)
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{
	return 1;
}

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static int intr_interception(struct vcpu_svm *svm)
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{
	++svm->vcpu.stat.irq_exits;
	return 1;
}

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static int nop_on_interception(struct vcpu_svm *svm)
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{
	return 1;
}

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static int halt_interception(struct vcpu_svm *svm)
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{
1827
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 1;
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	skip_emulated_instruction(&svm->vcpu);
	return kvm_emulate_halt(&svm->vcpu);
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}

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1832
static int vmmcall_interception(struct vcpu_svm *svm)
1833
{
1834
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
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	skip_emulated_instruction(&svm->vcpu);
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	kvm_emulate_hypercall(&svm->vcpu);
	return 1;
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}

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static unsigned long nested_svm_get_tdp_cr3(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	return svm->nested.nested_cr3;
}

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static u64 nested_svm_get_tdp_pdptr(struct kvm_vcpu *vcpu, int index)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u64 cr3 = svm->nested.nested_cr3;
	u64 pdpte;
	int ret;

	ret = kvm_read_guest_page(vcpu->kvm, gpa_to_gfn(cr3), &pdpte,
				  offset_in_page(cr3) + index * 8, 8);
	if (ret)
		return 0;
	return pdpte;
}

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static void nested_svm_set_tdp_cr3(struct kvm_vcpu *vcpu,
				   unsigned long root)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->control.nested_cr3 = root;
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	mark_dirty(svm->vmcb, VMCB_NPT);
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	svm_flush_tlb(vcpu);
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}

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static void nested_svm_inject_npf_exit(struct kvm_vcpu *vcpu,
				       struct x86_exception *fault)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->control.exit_code = SVM_EXIT_NPF;
	svm->vmcb->control.exit_code_hi = 0;
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	svm->vmcb->control.exit_info_1 = fault->error_code;
	svm->vmcb->control.exit_info_2 = fault->address;
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	nested_svm_vmexit(svm);
}

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

	r = kvm_init_shadow_mmu(vcpu, &vcpu->arch.mmu);

	vcpu->arch.mmu.set_cr3           = nested_svm_set_tdp_cr3;
	vcpu->arch.mmu.get_cr3           = nested_svm_get_tdp_cr3;
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	vcpu->arch.mmu.get_pdptr         = nested_svm_get_tdp_pdptr;
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	vcpu->arch.mmu.inject_page_fault = nested_svm_inject_npf_exit;
	vcpu->arch.mmu.shadow_root_level = get_npt_level();
	vcpu->arch.walk_mmu              = &vcpu->arch.nested_mmu;

	return r;
}

static void nested_svm_uninit_mmu_context(struct kvm_vcpu *vcpu)
{
	vcpu->arch.walk_mmu = &vcpu->arch.mmu;
}

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static int nested_svm_check_permissions(struct vcpu_svm *svm)
{
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	if (!(svm->vcpu.arch.efer & EFER_SVME)
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	    || !is_paging(&svm->vcpu)) {
		kvm_queue_exception(&svm->vcpu, UD_VECTOR);
		return 1;
	}

	if (svm->vmcb->save.cpl) {
		kvm_inject_gp(&svm->vcpu, 0);
		return 1;
	}

       return 0;
}

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static int nested_svm_check_exception(struct vcpu_svm *svm, unsigned nr,
				      bool has_error_code, u32 error_code)
{
1924 1925
	int vmexit;

1926
	if (!is_guest_mode(&svm->vcpu))
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		return 0;
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	svm->vmcb->control.exit_code = SVM_EXIT_EXCP_BASE + nr;
	svm->vmcb->control.exit_code_hi = 0;
	svm->vmcb->control.exit_info_1 = error_code;
	svm->vmcb->control.exit_info_2 = svm->vcpu.arch.cr2;

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	vmexit = nested_svm_intercept(svm);
	if (vmexit == NESTED_EXIT_DONE)
		svm->nested.exit_required = true;

	return vmexit;
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}

1941 1942
/* This function returns true if it is save to enable the irq window */
static inline bool nested_svm_intr(struct vcpu_svm *svm)
1943
{
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	if (!is_guest_mode(&svm->vcpu))
1945
		return true;
1946

1947
	if (!(svm->vcpu.arch.hflags & HF_VINTR_MASK))
1948
		return true;
1949

1950
	if (!(svm->vcpu.arch.hflags & HF_HIF_MASK))
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		return false;
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1953 1954 1955 1956 1957 1958 1959 1960
	/*
	 * if vmexit was already requested (by intercepted exception
	 * for instance) do not overwrite it with "external interrupt"
	 * vmexit.
	 */
	if (svm->nested.exit_required)
		return false;

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	svm->vmcb->control.exit_code   = SVM_EXIT_INTR;
	svm->vmcb->control.exit_info_1 = 0;
	svm->vmcb->control.exit_info_2 = 0;
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1965 1966 1967 1968 1969 1970 1971 1972
	if (svm->nested.intercept & 1ULL) {
		/*
		 * The #vmexit can't be emulated here directly because this
		 * code path runs with irqs and preemtion disabled. A
		 * #vmexit emulation might sleep. Only signal request for
		 * the #vmexit here.
		 */
		svm->nested.exit_required = true;
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		trace_kvm_nested_intr_vmexit(svm->vmcb->save.rip);
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		return false;
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	}

1977
	return true;
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}

1980 1981 1982
/* This function returns true if it is save to enable the nmi window */
static inline bool nested_svm_nmi(struct vcpu_svm *svm)
{
1983
	if (!is_guest_mode(&svm->vcpu))
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		return true;

	if (!(svm->nested.intercept & (1ULL << INTERCEPT_NMI)))
		return true;

	svm->vmcb->control.exit_code = SVM_EXIT_NMI;
	svm->nested.exit_required = true;

	return false;
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}

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static void *nested_svm_map(struct vcpu_svm *svm, u64 gpa, struct page **_page)
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{
	struct page *page;

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	might_sleep();

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	page = gfn_to_page(svm->vcpu.kvm, gpa >> PAGE_SHIFT);
	if (is_error_page(page))
		goto error;

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	*_page = page;

	return kmap(page);
2008 2009 2010 2011 2012 2013 2014 2015

error:
	kvm_release_page_clean(page);
	kvm_inject_gp(&svm->vcpu, 0);

	return NULL;
}

2016
static void nested_svm_unmap(struct page *page)
2017
{
2018
	kunmap(page);
2019 2020 2021
	kvm_release_page_dirty(page);
}

2022 2023 2024 2025 2026
static int nested_svm_intercept_ioio(struct vcpu_svm *svm)
{
	unsigned port;
	u8 val, bit;
	u64 gpa;
2027

2028 2029
	if (!(svm->nested.intercept & (1ULL << INTERCEPT_IOIO_PROT)))
		return NESTED_EXIT_HOST;
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	port = svm->vmcb->control.exit_info_1 >> 16;
	gpa  = svm->nested.vmcb_iopm + (port / 8);
	bit  = port % 8;
	val  = 0;

	if (kvm_read_guest(svm->vcpu.kvm, gpa, &val, 1))
		val &= (1 << bit);

	return val ? NESTED_EXIT_DONE : NESTED_EXIT_HOST;
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}

2042
static int nested_svm_exit_handled_msr(struct vcpu_svm *svm)
2043
{
2044 2045
	u32 offset, msr, value;
	int write, mask;
2046

2047
	if (!(svm->nested.intercept & (1ULL << INTERCEPT_MSR_PROT)))
2048
		return NESTED_EXIT_HOST;
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2050 2051 2052 2053
	msr    = svm->vcpu.arch.regs[VCPU_REGS_RCX];
	offset = svm_msrpm_offset(msr);
	write  = svm->vmcb->control.exit_info_1 & 1;
	mask   = 1 << ((2 * (msr & 0xf)) + write);
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2055 2056
	if (offset == MSR_INVALID)
		return NESTED_EXIT_DONE;
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2058 2059
	/* Offset is in 32 bit units but need in 8 bit units */
	offset *= 4;
2060

2061 2062
	if (kvm_read_guest(svm->vcpu.kvm, svm->nested.vmcb_msrpm + offset, &value, 4))
		return NESTED_EXIT_DONE;
2063

2064
	return (value & mask) ? NESTED_EXIT_DONE : NESTED_EXIT_HOST;
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}

2067
static int nested_svm_exit_special(struct vcpu_svm *svm)
2068 2069
{
	u32 exit_code = svm->vmcb->control.exit_code;
2070

2071 2072 2073
	switch (exit_code) {
	case SVM_EXIT_INTR:
	case SVM_EXIT_NMI:
2074
	case SVM_EXIT_EXCP_BASE + MC_VECTOR:
2075 2076
		return NESTED_EXIT_HOST;
	case SVM_EXIT_NPF:
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		/* For now we are always handling NPFs when using them */
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		if (npt_enabled)
			return NESTED_EXIT_HOST;
		break;
	case SVM_EXIT_EXCP_BASE + PF_VECTOR:
2082 2083
		/* When we're shadowing, trap PFs, but not async PF */
		if (!npt_enabled && svm->apf_reason == 0)
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			return NESTED_EXIT_HOST;
		break;
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	case SVM_EXIT_EXCP_BASE + NM_VECTOR:
		nm_interception(svm);
		break;
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	default:
		break;
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	}

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	return NESTED_EXIT_CONTINUE;
}

/*
 * If this function returns true, this #vmexit was already handled
 */
2099
static int nested_svm_intercept(struct vcpu_svm *svm)
2100 2101 2102 2103
{
	u32 exit_code = svm->vmcb->control.exit_code;
	int vmexit = NESTED_EXIT_HOST;

2104
	switch (exit_code) {
2105
	case SVM_EXIT_MSR:
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		vmexit = nested_svm_exit_handled_msr(svm);
2107
		break;
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	case SVM_EXIT_IOIO:
		vmexit = nested_svm_intercept_ioio(svm);
		break;
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	case SVM_EXIT_READ_CR0 ... SVM_EXIT_WRITE_CR8: {
		u32 bit = 1U << (exit_code - SVM_EXIT_READ_CR0);
		if (svm->nested.intercept_cr & bit)
2114
			vmexit = NESTED_EXIT_DONE;
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		break;
	}
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	case SVM_EXIT_READ_DR0 ... SVM_EXIT_WRITE_DR7: {
		u32 bit = 1U << (exit_code - SVM_EXIT_READ_DR0);
		if (svm->nested.intercept_dr & bit)
2120
			vmexit = NESTED_EXIT_DONE;
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		break;
	}
	case SVM_EXIT_EXCP_BASE ... SVM_EXIT_EXCP_BASE + 0x1f: {
		u32 excp_bits = 1 << (exit_code - SVM_EXIT_EXCP_BASE);
2125
		if (svm->nested.intercept_exceptions & excp_bits)
2126
			vmexit = NESTED_EXIT_DONE;
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		/* async page fault always cause vmexit */
		else if ((exit_code == SVM_EXIT_EXCP_BASE + PF_VECTOR) &&
			 svm->apf_reason != 0)
			vmexit = NESTED_EXIT_DONE;
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		break;
	}
2133 2134 2135 2136
	case SVM_EXIT_ERR: {
		vmexit = NESTED_EXIT_DONE;
		break;
	}
2137 2138
	default: {
		u64 exit_bits = 1ULL << (exit_code - SVM_EXIT_INTR);
2139
		if (svm->nested.intercept & exit_bits)
2140
			vmexit = NESTED_EXIT_DONE;
2141 2142 2143
	}
	}

2144 2145 2146 2147 2148 2149 2150 2151 2152 2153
	return vmexit;
}

static int nested_svm_exit_handled(struct vcpu_svm *svm)
{
	int vmexit;

	vmexit = nested_svm_intercept(svm);

	if (vmexit == NESTED_EXIT_DONE)
2154 2155 2156
		nested_svm_vmexit(svm);

	return vmexit;
2157 2158
}

2159 2160 2161 2162 2163
static inline void copy_vmcb_control_area(struct vmcb *dst_vmcb, struct vmcb *from_vmcb)
{
	struct vmcb_control_area *dst  = &dst_vmcb->control;
	struct vmcb_control_area *from = &from_vmcb->control;

2164
	dst->intercept_cr         = from->intercept_cr;
2165
	dst->intercept_dr         = from->intercept_dr;
2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188
	dst->intercept_exceptions = from->intercept_exceptions;
	dst->intercept            = from->intercept;
	dst->iopm_base_pa         = from->iopm_base_pa;
	dst->msrpm_base_pa        = from->msrpm_base_pa;
	dst->tsc_offset           = from->tsc_offset;
	dst->asid                 = from->asid;
	dst->tlb_ctl              = from->tlb_ctl;
	dst->int_ctl              = from->int_ctl;
	dst->int_vector           = from->int_vector;
	dst->int_state            = from->int_state;
	dst->exit_code            = from->exit_code;
	dst->exit_code_hi         = from->exit_code_hi;
	dst->exit_info_1          = from->exit_info_1;
	dst->exit_info_2          = from->exit_info_2;
	dst->exit_int_info        = from->exit_int_info;
	dst->exit_int_info_err    = from->exit_int_info_err;
	dst->nested_ctl           = from->nested_ctl;
	dst->event_inj            = from->event_inj;
	dst->event_inj_err        = from->event_inj_err;
	dst->nested_cr3           = from->nested_cr3;
	dst->lbr_ctl              = from->lbr_ctl;
}

2189
static int nested_svm_vmexit(struct vcpu_svm *svm)
2190
{
2191
	struct vmcb *nested_vmcb;
2192
	struct vmcb *hsave = svm->nested.hsave;
2193
	struct vmcb *vmcb = svm->vmcb;
2194
	struct page *page;
2195

2196 2197 2198 2199
	trace_kvm_nested_vmexit_inject(vmcb->control.exit_code,
				       vmcb->control.exit_info_1,
				       vmcb->control.exit_info_2,
				       vmcb->control.exit_int_info,
2200 2201
				       vmcb->control.exit_int_info_err,
				       KVM_ISA_SVM);
2202

2203
	nested_vmcb = nested_svm_map(svm, svm->nested.vmcb, &page);
2204 2205 2206
	if (!nested_vmcb)
		return 1;

2207 2208
	/* Exit Guest-Mode */
	leave_guest_mode(&svm->vcpu);
2209 2210
	svm->nested.vmcb = 0;

2211
	/* Give the current vmcb to the guest */
2212 2213 2214 2215 2216 2217 2218 2219
	disable_gif(svm);

	nested_vmcb->save.es     = vmcb->save.es;
	nested_vmcb->save.cs     = vmcb->save.cs;
	nested_vmcb->save.ss     = vmcb->save.ss;
	nested_vmcb->save.ds     = vmcb->save.ds;
	nested_vmcb->save.gdtr   = vmcb->save.gdtr;
	nested_vmcb->save.idtr   = vmcb->save.idtr;
2220
	nested_vmcb->save.efer   = svm->vcpu.arch.efer;
2221
	nested_vmcb->save.cr0    = kvm_read_cr0(&svm->vcpu);
2222
	nested_vmcb->save.cr3    = kvm_read_cr3(&svm->vcpu);
2223
	nested_vmcb->save.cr2    = vmcb->save.cr2;
2224
	nested_vmcb->save.cr4    = svm->vcpu.arch.cr4;
2225
	nested_vmcb->save.rflags = kvm_get_rflags(&svm->vcpu);
2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241
	nested_vmcb->save.rip    = vmcb->save.rip;
	nested_vmcb->save.rsp    = vmcb->save.rsp;
	nested_vmcb->save.rax    = vmcb->save.rax;
	nested_vmcb->save.dr7    = vmcb->save.dr7;
	nested_vmcb->save.dr6    = vmcb->save.dr6;
	nested_vmcb->save.cpl    = vmcb->save.cpl;

	nested_vmcb->control.int_ctl           = vmcb->control.int_ctl;
	nested_vmcb->control.int_vector        = vmcb->control.int_vector;
	nested_vmcb->control.int_state         = vmcb->control.int_state;
	nested_vmcb->control.exit_code         = vmcb->control.exit_code;
	nested_vmcb->control.exit_code_hi      = vmcb->control.exit_code_hi;
	nested_vmcb->control.exit_info_1       = vmcb->control.exit_info_1;
	nested_vmcb->control.exit_info_2       = vmcb->control.exit_info_2;
	nested_vmcb->control.exit_int_info     = vmcb->control.exit_int_info;
	nested_vmcb->control.exit_int_info_err = vmcb->control.exit_int_info_err;
2242
	nested_vmcb->control.next_rip          = vmcb->control.next_rip;
2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258

	/*
	 * If we emulate a VMRUN/#VMEXIT in the same host #vmexit cycle we have
	 * to make sure that we do not lose injected events. So check event_inj
	 * here and copy it to exit_int_info if it is valid.
	 * Exit_int_info and event_inj can't be both valid because the case
	 * below only happens on a VMRUN instruction intercept which has
	 * no valid exit_int_info set.
	 */
	if (vmcb->control.event_inj & SVM_EVTINJ_VALID) {
		struct vmcb_control_area *nc = &nested_vmcb->control;

		nc->exit_int_info     = vmcb->control.event_inj;
		nc->exit_int_info_err = vmcb->control.event_inj_err;
	}

2259 2260 2261
	nested_vmcb->control.tlb_ctl           = 0;
	nested_vmcb->control.event_inj         = 0;
	nested_vmcb->control.event_inj_err     = 0;
2262 2263 2264 2265 2266 2267

	/* We always set V_INTR_MASKING and remember the old value in hflags */
	if (!(svm->vcpu.arch.hflags & HF_VINTR_MASK))
		nested_vmcb->control.int_ctl &= ~V_INTR_MASKING_MASK;

	/* Restore the original control entries */
2268
	copy_vmcb_control_area(vmcb, hsave);
2269

2270 2271
	kvm_clear_exception_queue(&svm->vcpu);
	kvm_clear_interrupt_queue(&svm->vcpu);
2272

2273 2274
	svm->nested.nested_cr3 = 0;

2275 2276 2277 2278 2279 2280 2281
	/* Restore selected save entries */
	svm->vmcb->save.es = hsave->save.es;
	svm->vmcb->save.cs = hsave->save.cs;
	svm->vmcb->save.ss = hsave->save.ss;
	svm->vmcb->save.ds = hsave->save.ds;
	svm->vmcb->save.gdtr = hsave->save.gdtr;
	svm->vmcb->save.idtr = hsave->save.idtr;
2282
	kvm_set_rflags(&svm->vcpu, hsave->save.rflags);
2283 2284 2285 2286 2287 2288 2289
	svm_set_efer(&svm->vcpu, hsave->save.efer);
	svm_set_cr0(&svm->vcpu, hsave->save.cr0 | X86_CR0_PE);
	svm_set_cr4(&svm->vcpu, hsave->save.cr4);
	if (npt_enabled) {
		svm->vmcb->save.cr3 = hsave->save.cr3;
		svm->vcpu.arch.cr3 = hsave->save.cr3;
	} else {
2290
		(void)kvm_set_cr3(&svm->vcpu, hsave->save.cr3);
2291 2292 2293 2294 2295 2296 2297 2298
	}
	kvm_register_write(&svm->vcpu, VCPU_REGS_RAX, hsave->save.rax);
	kvm_register_write(&svm->vcpu, VCPU_REGS_RSP, hsave->save.rsp);
	kvm_register_write(&svm->vcpu, VCPU_REGS_RIP, hsave->save.rip);
	svm->vmcb->save.dr7 = 0;
	svm->vmcb->save.cpl = 0;
	svm->vmcb->control.exit_int_info = 0;

2299 2300
	mark_all_dirty(svm->vmcb);

2301
	nested_svm_unmap(page);
2302

2303
	nested_svm_uninit_mmu_context(&svm->vcpu);
2304 2305 2306 2307 2308
	kvm_mmu_reset_context(&svm->vcpu);
	kvm_mmu_load(&svm->vcpu);

	return 0;
}
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2309

2310
static bool nested_svm_vmrun_msrpm(struct vcpu_svm *svm)
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2311
{
2312 2313 2314 2315 2316
	/*
	 * This function merges the msr permission bitmaps of kvm and the
	 * nested vmcb. It is omptimized in that it only merges the parts where
	 * the kvm msr permission bitmap may contain zero bits
	 */
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2317
	int i;
2318

2319 2320
	if (!(svm->nested.intercept & (1ULL << INTERCEPT_MSR_PROT)))
		return true;
2321

2322 2323 2324
	for (i = 0; i < MSRPM_OFFSETS; i++) {
		u32 value, p;
		u64 offset;
2325

2326 2327
		if (msrpm_offsets[i] == 0xffffffff)
			break;
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2328

2329 2330
		p      = msrpm_offsets[i];
		offset = svm->nested.vmcb_msrpm + (p * 4);
2331 2332 2333 2334 2335 2336

		if (kvm_read_guest(svm->vcpu.kvm, offset, &value, 4))
			return false;

		svm->nested.msrpm[p] = svm->msrpm[p] | value;
	}
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2337

2338
	svm->vmcb->control.msrpm_base_pa = __pa(svm->nested.msrpm);
2339 2340

	return true;
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2341 2342
}

2343 2344 2345 2346 2347
static bool nested_vmcb_checks(struct vmcb *vmcb)
{
	if ((vmcb->control.intercept & (1ULL << INTERCEPT_VMRUN)) == 0)
		return false;

2348 2349 2350
	if (vmcb->control.asid == 0)
		return false;

2351 2352 2353
	if (vmcb->control.nested_ctl && !npt_enabled)
		return false;

2354 2355 2356
	return true;
}

2357
static bool nested_svm_vmrun(struct vcpu_svm *svm)
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2358
{
2359
	struct vmcb *nested_vmcb;
2360
	struct vmcb *hsave = svm->nested.hsave;
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2361
	struct vmcb *vmcb = svm->vmcb;
2362
	struct page *page;
2363
	u64 vmcb_gpa;
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2364

2365
	vmcb_gpa = svm->vmcb->save.rax;
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2366

2367
	nested_vmcb = nested_svm_map(svm, svm->vmcb->save.rax, &page);
2368 2369 2370
	if (!nested_vmcb)
		return false;

2371 2372 2373 2374 2375 2376 2377 2378 2379 2380 2381
	if (!nested_vmcb_checks(nested_vmcb)) {
		nested_vmcb->control.exit_code    = SVM_EXIT_ERR;
		nested_vmcb->control.exit_code_hi = 0;
		nested_vmcb->control.exit_info_1  = 0;
		nested_vmcb->control.exit_info_2  = 0;

		nested_svm_unmap(page);

		return false;
	}

2382
	trace_kvm_nested_vmrun(svm->vmcb->save.rip, vmcb_gpa,
2383 2384 2385 2386 2387
			       nested_vmcb->save.rip,
			       nested_vmcb->control.int_ctl,
			       nested_vmcb->control.event_inj,
			       nested_vmcb->control.nested_ctl);

2388 2389
	trace_kvm_nested_intercepts(nested_vmcb->control.intercept_cr & 0xffff,
				    nested_vmcb->control.intercept_cr >> 16,
2390 2391 2392
				    nested_vmcb->control.intercept_exceptions,
				    nested_vmcb->control.intercept);

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2393
	/* Clear internal status */
2394 2395
	kvm_clear_exception_queue(&svm->vcpu);
	kvm_clear_interrupt_queue(&svm->vcpu);
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2396

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2397 2398 2399 2400
	/*
	 * Save the old vmcb, so we don't need to pick what we save, but can
	 * restore everything when a VMEXIT occurs
	 */
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2401 2402 2403 2404 2405 2406
	hsave->save.es     = vmcb->save.es;
	hsave->save.cs     = vmcb->save.cs;
	hsave->save.ss     = vmcb->save.ss;
	hsave->save.ds     = vmcb->save.ds;
	hsave->save.gdtr   = vmcb->save.gdtr;
	hsave->save.idtr   = vmcb->save.idtr;
2407
	hsave->save.efer   = svm->vcpu.arch.efer;
2408
	hsave->save.cr0    = kvm_read_cr0(&svm->vcpu);
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2409
	hsave->save.cr4    = svm->vcpu.arch.cr4;
2410
	hsave->save.rflags = kvm_get_rflags(&svm->vcpu);
2411
	hsave->save.rip    = kvm_rip_read(&svm->vcpu);
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2412 2413 2414 2415 2416
	hsave->save.rsp    = vmcb->save.rsp;
	hsave->save.rax    = vmcb->save.rax;
	if (npt_enabled)
		hsave->save.cr3    = vmcb->save.cr3;
	else
2417
		hsave->save.cr3    = kvm_read_cr3(&svm->vcpu);
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2418

2419
	copy_vmcb_control_area(hsave, vmcb);
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2420

2421
	if (kvm_get_rflags(&svm->vcpu) & X86_EFLAGS_IF)
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2422 2423 2424 2425
		svm->vcpu.arch.hflags |= HF_HIF_MASK;
	else
		svm->vcpu.arch.hflags &= ~HF_HIF_MASK;

2426 2427 2428 2429 2430 2431
	if (nested_vmcb->control.nested_ctl) {
		kvm_mmu_unload(&svm->vcpu);
		svm->nested.nested_cr3 = nested_vmcb->control.nested_cr3;
		nested_svm_init_mmu_context(&svm->vcpu);
	}

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2432 2433 2434 2435 2436 2437 2438
	/* Load the nested guest state */
	svm->vmcb->save.es = nested_vmcb->save.es;
	svm->vmcb->save.cs = nested_vmcb->save.cs;
	svm->vmcb->save.ss = nested_vmcb->save.ss;
	svm->vmcb->save.ds = nested_vmcb->save.ds;
	svm->vmcb->save.gdtr = nested_vmcb->save.gdtr;
	svm->vmcb->save.idtr = nested_vmcb->save.idtr;
2439
	kvm_set_rflags(&svm->vcpu, nested_vmcb->save.rflags);
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2440 2441 2442 2443 2444 2445
	svm_set_efer(&svm->vcpu, nested_vmcb->save.efer);
	svm_set_cr0(&svm->vcpu, nested_vmcb->save.cr0);
	svm_set_cr4(&svm->vcpu, nested_vmcb->save.cr4);
	if (npt_enabled) {
		svm->vmcb->save.cr3 = nested_vmcb->save.cr3;
		svm->vcpu.arch.cr3 = nested_vmcb->save.cr3;
2446
	} else
2447
		(void)kvm_set_cr3(&svm->vcpu, nested_vmcb->save.cr3);
2448 2449 2450 2451

	/* Guest paging mode is active - reset mmu */
	kvm_mmu_reset_context(&svm->vcpu);

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2452
	svm->vmcb->save.cr2 = svm->vcpu.arch.cr2 = nested_vmcb->save.cr2;
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2453 2454 2455
	kvm_register_write(&svm->vcpu, VCPU_REGS_RAX, nested_vmcb->save.rax);
	kvm_register_write(&svm->vcpu, VCPU_REGS_RSP, nested_vmcb->save.rsp);
	kvm_register_write(&svm->vcpu, VCPU_REGS_RIP, nested_vmcb->save.rip);
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2456

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2457 2458 2459 2460 2461 2462 2463 2464
	/* In case we don't even reach vcpu_run, the fields are not updated */
	svm->vmcb->save.rax = nested_vmcb->save.rax;
	svm->vmcb->save.rsp = nested_vmcb->save.rsp;
	svm->vmcb->save.rip = nested_vmcb->save.rip;
	svm->vmcb->save.dr7 = nested_vmcb->save.dr7;
	svm->vmcb->save.dr6 = nested_vmcb->save.dr6;
	svm->vmcb->save.cpl = nested_vmcb->save.cpl;

2465
	svm->nested.vmcb_msrpm = nested_vmcb->control.msrpm_base_pa & ~0x0fffULL;
2466
	svm->nested.vmcb_iopm  = nested_vmcb->control.iopm_base_pa  & ~0x0fffULL;
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2467

2468
	/* cache intercepts */
2469
	svm->nested.intercept_cr         = nested_vmcb->control.intercept_cr;
2470
	svm->nested.intercept_dr         = nested_vmcb->control.intercept_dr;
2471 2472 2473
	svm->nested.intercept_exceptions = nested_vmcb->control.intercept_exceptions;
	svm->nested.intercept            = nested_vmcb->control.intercept;

2474
	svm_flush_tlb(&svm->vcpu);
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2475 2476 2477 2478 2479 2480
	svm->vmcb->control.int_ctl = nested_vmcb->control.int_ctl | V_INTR_MASKING_MASK;
	if (nested_vmcb->control.int_ctl & V_INTR_MASKING_MASK)
		svm->vcpu.arch.hflags |= HF_VINTR_MASK;
	else
		svm->vcpu.arch.hflags &= ~HF_VINTR_MASK;

2481 2482
	if (svm->vcpu.arch.hflags & HF_VINTR_MASK) {
		/* We only want the cr8 intercept bits of the guest */
2483 2484
		clr_cr_intercept(svm, INTERCEPT_CR8_READ);
		clr_cr_intercept(svm, INTERCEPT_CR8_WRITE);
2485 2486
	}

2487
	/* We don't want to see VMMCALLs from a nested guest */
2488
	clr_intercept(svm, INTERCEPT_VMMCALL);
2489

2490
	svm->vmcb->control.lbr_ctl = nested_vmcb->control.lbr_ctl;
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2491 2492 2493 2494 2495 2496
	svm->vmcb->control.int_vector = nested_vmcb->control.int_vector;
	svm->vmcb->control.int_state = nested_vmcb->control.int_state;
	svm->vmcb->control.tsc_offset += nested_vmcb->control.tsc_offset;
	svm->vmcb->control.event_inj = nested_vmcb->control.event_inj;
	svm->vmcb->control.event_inj_err = nested_vmcb->control.event_inj_err;

2497
	nested_svm_unmap(page);
2498

2499 2500 2501
	/* Enter Guest-Mode */
	enter_guest_mode(&svm->vcpu);

2502 2503 2504 2505 2506 2507
	/*
	 * Merge guest and host intercepts - must be called  with vcpu in
	 * guest-mode to take affect here
	 */
	recalc_intercepts(svm);

2508
	svm->nested.vmcb = vmcb_gpa;
2509

2510
	enable_gif(svm);
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2511

2512 2513
	mark_all_dirty(svm->vmcb);

2514
	return true;
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2515 2516
}

2517
static void nested_svm_vmloadsave(struct vmcb *from_vmcb, struct vmcb *to_vmcb)
2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532
{
	to_vmcb->save.fs = from_vmcb->save.fs;
	to_vmcb->save.gs = from_vmcb->save.gs;
	to_vmcb->save.tr = from_vmcb->save.tr;
	to_vmcb->save.ldtr = from_vmcb->save.ldtr;
	to_vmcb->save.kernel_gs_base = from_vmcb->save.kernel_gs_base;
	to_vmcb->save.star = from_vmcb->save.star;
	to_vmcb->save.lstar = from_vmcb->save.lstar;
	to_vmcb->save.cstar = from_vmcb->save.cstar;
	to_vmcb->save.sfmask = from_vmcb->save.sfmask;
	to_vmcb->save.sysenter_cs = from_vmcb->save.sysenter_cs;
	to_vmcb->save.sysenter_esp = from_vmcb->save.sysenter_esp;
	to_vmcb->save.sysenter_eip = from_vmcb->save.sysenter_eip;
}

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2533
static int vmload_interception(struct vcpu_svm *svm)
2534
{
2535
	struct vmcb *nested_vmcb;
2536
	struct page *page;
2537

2538 2539 2540
	if (nested_svm_check_permissions(svm))
		return 1;

2541
	nested_vmcb = nested_svm_map(svm, svm->vmcb->save.rax, &page);
2542 2543 2544
	if (!nested_vmcb)
		return 1;

2545 2546 2547
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
	skip_emulated_instruction(&svm->vcpu);

2548
	nested_svm_vmloadsave(nested_vmcb, svm->vmcb);
2549
	nested_svm_unmap(page);
2550 2551 2552 2553

	return 1;
}

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2554
static int vmsave_interception(struct vcpu_svm *svm)
2555
{
2556
	struct vmcb *nested_vmcb;
2557
	struct page *page;
2558

2559 2560 2561
	if (nested_svm_check_permissions(svm))
		return 1;

2562
	nested_vmcb = nested_svm_map(svm, svm->vmcb->save.rax, &page);
2563 2564 2565
	if (!nested_vmcb)
		return 1;

2566 2567 2568
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
	skip_emulated_instruction(&svm->vcpu);

2569
	nested_svm_vmloadsave(svm->vmcb, nested_vmcb);
2570
	nested_svm_unmap(page);
2571 2572 2573 2574

	return 1;
}

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2575
static int vmrun_interception(struct vcpu_svm *svm)
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2576 2577 2578 2579
{
	if (nested_svm_check_permissions(svm))
		return 1;

2580 2581
	/* Save rip after vmrun instruction */
	kvm_rip_write(&svm->vcpu, kvm_rip_read(&svm->vcpu) + 3);
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2582

2583
	if (!nested_svm_vmrun(svm))
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2584 2585
		return 1;

2586
	if (!nested_svm_vmrun_msrpm(svm))
2587 2588 2589 2590 2591 2592 2593 2594 2595 2596 2597 2598
		goto failed;

	return 1;

failed:

	svm->vmcb->control.exit_code    = SVM_EXIT_ERR;
	svm->vmcb->control.exit_code_hi = 0;
	svm->vmcb->control.exit_info_1  = 0;
	svm->vmcb->control.exit_info_2  = 0;

	nested_svm_vmexit(svm);
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2599 2600 2601 2602

	return 1;
}

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2603
static int stgi_interception(struct vcpu_svm *svm)
2604 2605 2606 2607 2608 2609
{
	if (nested_svm_check_permissions(svm))
		return 1;

	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
	skip_emulated_instruction(&svm->vcpu);
2610
	kvm_make_request(KVM_REQ_EVENT, &svm->vcpu);
2611

2612
	enable_gif(svm);
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	return 1;
}

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2617
static int clgi_interception(struct vcpu_svm *svm)
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{
	if (nested_svm_check_permissions(svm))
		return 1;

	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
	skip_emulated_instruction(&svm->vcpu);

2625
	disable_gif(svm);
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	/* After a CLGI no interrupts should come */
	svm_clear_vintr(svm);
	svm->vmcb->control.int_ctl &= ~V_IRQ_MASK;

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	mark_dirty(svm->vmcb, VMCB_INTR);

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	return 1;
}

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2636
static int invlpga_interception(struct vcpu_svm *svm)
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{
	struct kvm_vcpu *vcpu = &svm->vcpu;

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	trace_kvm_invlpga(svm->vmcb->save.rip, vcpu->arch.regs[VCPU_REGS_RCX],
			  vcpu->arch.regs[VCPU_REGS_RAX]);

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	/* Let's treat INVLPGA the same as INVLPG (can be optimized!) */
	kvm_mmu_invlpg(vcpu, vcpu->arch.regs[VCPU_REGS_RAX]);

	svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
	skip_emulated_instruction(&svm->vcpu);
	return 1;
}

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static int skinit_interception(struct vcpu_svm *svm)
{
	trace_kvm_skinit(svm->vmcb->save.rip, svm->vcpu.arch.regs[VCPU_REGS_RAX]);

	kvm_queue_exception(&svm->vcpu, UD_VECTOR);
	return 1;
}

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static int xsetbv_interception(struct vcpu_svm *svm)
{
	u64 new_bv = kvm_read_edx_eax(&svm->vcpu);
	u32 index = kvm_register_read(&svm->vcpu, VCPU_REGS_RCX);

	if (kvm_set_xcr(&svm->vcpu, index, new_bv) == 0) {
		svm->next_rip = kvm_rip_read(&svm->vcpu) + 3;
		skip_emulated_instruction(&svm->vcpu);
	}

	return 1;
}

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static int invalid_op_interception(struct vcpu_svm *svm)
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{
2674
	kvm_queue_exception(&svm->vcpu, UD_VECTOR);
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	return 1;
}

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2678
static int task_switch_interception(struct vcpu_svm *svm)
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{
2680
	u16 tss_selector;
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	int reason;
	int int_type = svm->vmcb->control.exit_int_info &
		SVM_EXITINTINFO_TYPE_MASK;
2684
	int int_vec = svm->vmcb->control.exit_int_info & SVM_EVTINJ_VEC_MASK;
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	uint32_t type =
		svm->vmcb->control.exit_int_info & SVM_EXITINTINFO_TYPE_MASK;
	uint32_t idt_v =
		svm->vmcb->control.exit_int_info & SVM_EXITINTINFO_VALID;
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	bool has_error_code = false;
	u32 error_code = 0;
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	tss_selector = (u16)svm->vmcb->control.exit_info_1;
2693

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	if (svm->vmcb->control.exit_info_2 &
	    (1ULL << SVM_EXITINFOSHIFT_TS_REASON_IRET))
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		reason = TASK_SWITCH_IRET;
	else if (svm->vmcb->control.exit_info_2 &
		 (1ULL << SVM_EXITINFOSHIFT_TS_REASON_JMP))
		reason = TASK_SWITCH_JMP;
2700
	else if (idt_v)
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		reason = TASK_SWITCH_GATE;
	else
		reason = TASK_SWITCH_CALL;

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	if (reason == TASK_SWITCH_GATE) {
		switch (type) {
		case SVM_EXITINTINFO_TYPE_NMI:
			svm->vcpu.arch.nmi_injected = false;
			break;
		case SVM_EXITINTINFO_TYPE_EXEPT:
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			if (svm->vmcb->control.exit_info_2 &
			    (1ULL << SVM_EXITINFOSHIFT_TS_HAS_ERROR_CODE)) {
				has_error_code = true;
				error_code =
					(u32)svm->vmcb->control.exit_info_2;
			}
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			kvm_clear_exception_queue(&svm->vcpu);
			break;
		case SVM_EXITINTINFO_TYPE_INTR:
			kvm_clear_interrupt_queue(&svm->vcpu);
			break;
		default:
			break;
		}
	}
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	if (reason != TASK_SWITCH_GATE ||
	    int_type == SVM_EXITINTINFO_TYPE_SOFT ||
	    (int_type == SVM_EXITINTINFO_TYPE_EXEPT &&
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	     (int_vec == OF_VECTOR || int_vec == BP_VECTOR)))
		skip_emulated_instruction(&svm->vcpu);
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	if (kvm_task_switch(&svm->vcpu, tss_selector, reason,
				has_error_code, error_code) == EMULATE_FAIL) {
		svm->vcpu.run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
		svm->vcpu.run->internal.suberror = KVM_INTERNAL_ERROR_EMULATION;
		svm->vcpu.run->internal.ndata = 0;
		return 0;
	}
	return 1;
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}

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2743
static int cpuid_interception(struct vcpu_svm *svm)
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2744
{
2745
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 2;
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2746
	kvm_emulate_cpuid(&svm->vcpu);
2747
	return 1;
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}

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2750
static int iret_interception(struct vcpu_svm *svm)
2751 2752
{
	++svm->vcpu.stat.nmi_window_exits;
2753
	clr_intercept(svm, INTERCEPT_IRET);
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	svm->vcpu.arch.hflags |= HF_IRET_MASK;
2755
	svm->nmi_iret_rip = kvm_rip_read(&svm->vcpu);
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	return 1;
}

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2759
static int invlpg_interception(struct vcpu_svm *svm)
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2760
{
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	if (!static_cpu_has(X86_FEATURE_DECODEASSISTS))
		return emulate_instruction(&svm->vcpu, 0) == EMULATE_DONE;

	kvm_mmu_invlpg(&svm->vcpu, svm->vmcb->control.exit_info_1);
	skip_emulated_instruction(&svm->vcpu);
	return 1;
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}

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static int emulate_on_interception(struct vcpu_svm *svm)
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{
2771
	return emulate_instruction(&svm->vcpu, 0) == EMULATE_DONE;
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}

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static int rdpmc_interception(struct vcpu_svm *svm)
{
	int err;

	if (!static_cpu_has(X86_FEATURE_NRIPS))
		return emulate_on_interception(svm);

	err = kvm_rdpmc(&svm->vcpu);
	kvm_complete_insn_gp(&svm->vcpu, err);

	return 1;
}

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bool check_selective_cr0_intercepted(struct vcpu_svm *svm, unsigned long val)
{
	unsigned long cr0 = svm->vcpu.arch.cr0;
	bool ret = false;
	u64 intercept;

	intercept = svm->nested.intercept;

	if (!is_guest_mode(&svm->vcpu) ||
	    (!(intercept & (1ULL << INTERCEPT_SELECTIVE_CR0))))
		return false;

	cr0 &= ~SVM_CR0_SELECTIVE_MASK;
	val &= ~SVM_CR0_SELECTIVE_MASK;

	if (cr0 ^ val) {
		svm->vmcb->control.exit_code = SVM_EXIT_CR0_SEL_WRITE;
		ret = (nested_svm_exit_handled(svm) == NESTED_EXIT_DONE);
	}

	return ret;
}

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#define CR_VALID (1ULL << 63)

static int cr_interception(struct vcpu_svm *svm)
{
	int reg, cr;
	unsigned long val;
	int err;

	if (!static_cpu_has(X86_FEATURE_DECODEASSISTS))
		return emulate_on_interception(svm);

	if (unlikely((svm->vmcb->control.exit_info_1 & CR_VALID) == 0))
		return emulate_on_interception(svm);

	reg = svm->vmcb->control.exit_info_1 & SVM_EXITINFO_REG_MASK;
	cr = svm->vmcb->control.exit_code - SVM_EXIT_READ_CR0;

	err = 0;
	if (cr >= 16) { /* mov to cr */
		cr -= 16;
		val = kvm_register_read(&svm->vcpu, reg);
		switch (cr) {
		case 0:
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			if (!check_selective_cr0_intercepted(svm, val))
				err = kvm_set_cr0(&svm->vcpu, val);
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			else
				return 1;

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			break;
		case 3:
			err = kvm_set_cr3(&svm->vcpu, val);
			break;
		case 4:
			err = kvm_set_cr4(&svm->vcpu, val);
			break;
		case 8:
			err = kvm_set_cr8(&svm->vcpu, val);
			break;
		default:
			WARN(1, "unhandled write to CR%d", cr);
			kvm_queue_exception(&svm->vcpu, UD_VECTOR);
			return 1;
		}
	} else { /* mov from cr */
		switch (cr) {
		case 0:
			val = kvm_read_cr0(&svm->vcpu);
			break;
		case 2:
			val = svm->vcpu.arch.cr2;
			break;
		case 3:
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			val = kvm_read_cr3(&svm->vcpu);
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			break;
		case 4:
			val = kvm_read_cr4(&svm->vcpu);
			break;
		case 8:
			val = kvm_get_cr8(&svm->vcpu);
			break;
		default:
			WARN(1, "unhandled read from CR%d", cr);
			kvm_queue_exception(&svm->vcpu, UD_VECTOR);
			return 1;
		}
		kvm_register_write(&svm->vcpu, reg, val);
	}
	kvm_complete_insn_gp(&svm->vcpu, err);

	return 1;
}

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static int dr_interception(struct vcpu_svm *svm)
{
	int reg, dr;
	unsigned long val;
	int err;

	if (!boot_cpu_has(X86_FEATURE_DECODEASSISTS))
		return emulate_on_interception(svm);

	reg = svm->vmcb->control.exit_info_1 & SVM_EXITINFO_REG_MASK;
	dr = svm->vmcb->control.exit_code - SVM_EXIT_READ_DR0;

	if (dr >= 16) { /* mov to DRn */
		val = kvm_register_read(&svm->vcpu, reg);
		kvm_set_dr(&svm->vcpu, dr - 16, val);
	} else {
		err = kvm_get_dr(&svm->vcpu, dr, &val);
		if (!err)
			kvm_register_write(&svm->vcpu, reg, val);
	}

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	skip_emulated_instruction(&svm->vcpu);

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	return 1;
}

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2908
static int cr8_write_interception(struct vcpu_svm *svm)
2909
{
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2910
	struct kvm_run *kvm_run = svm->vcpu.run;
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2911
	int r;
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2912

2913 2914
	u8 cr8_prev = kvm_get_cr8(&svm->vcpu);
	/* instruction emulation calls kvm_set_cr8() */
2915
	r = cr_interception(svm);
2916
	if (irqchip_in_kernel(svm->vcpu.kvm)) {
2917
		clr_cr_intercept(svm, INTERCEPT_CR8_WRITE);
2918
		return r;
2919
	}
2920
	if (cr8_prev <= kvm_get_cr8(&svm->vcpu))
2921
		return r;
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	kvm_run->exit_reason = KVM_EXIT_SET_TPR;
	return 0;
}

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u64 svm_read_l1_tsc(struct kvm_vcpu *vcpu)
{
	struct vmcb *vmcb = get_host_vmcb(to_svm(vcpu));
	return vmcb->control.tsc_offset +
		svm_scale_tsc(vcpu, native_read_tsc());
}

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static int svm_get_msr(struct kvm_vcpu *vcpu, unsigned ecx, u64 *data)
{
2935 2936
	struct vcpu_svm *svm = to_svm(vcpu);

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2937
	switch (ecx) {
2938
	case MSR_IA32_TSC: {
2939
		*data = svm->vmcb->control.tsc_offset +
2940 2941
			svm_scale_tsc(vcpu, native_read_tsc());

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		break;
	}
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2944
	case MSR_STAR:
2945
		*data = svm->vmcb->save.star;
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2946
		break;
2947
#ifdef CONFIG_X86_64
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2948
	case MSR_LSTAR:
2949
		*data = svm->vmcb->save.lstar;
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		break;
	case MSR_CSTAR:
2952
		*data = svm->vmcb->save.cstar;
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		break;
	case MSR_KERNEL_GS_BASE:
2955
		*data = svm->vmcb->save.kernel_gs_base;
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		break;
	case MSR_SYSCALL_MASK:
2958
		*data = svm->vmcb->save.sfmask;
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		break;
#endif
	case MSR_IA32_SYSENTER_CS:
2962
		*data = svm->vmcb->save.sysenter_cs;
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		break;
	case MSR_IA32_SYSENTER_EIP:
2965
		*data = svm->sysenter_eip;
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		break;
	case MSR_IA32_SYSENTER_ESP:
2968
		*data = svm->sysenter_esp;
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		break;
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	/*
	 * Nobody will change the following 5 values in the VMCB so we can
	 * safely return them on rdmsr. They will always be 0 until LBRV is
	 * implemented.
	 */
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	case MSR_IA32_DEBUGCTLMSR:
		*data = svm->vmcb->save.dbgctl;
		break;
	case MSR_IA32_LASTBRANCHFROMIP:
		*data = svm->vmcb->save.br_from;
		break;
	case MSR_IA32_LASTBRANCHTOIP:
		*data = svm->vmcb->save.br_to;
		break;
	case MSR_IA32_LASTINTFROMIP:
		*data = svm->vmcb->save.last_excp_from;
		break;
	case MSR_IA32_LASTINTTOIP:
		*data = svm->vmcb->save.last_excp_to;
		break;
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2990
	case MSR_VM_HSAVE_PA:
2991
		*data = svm->nested.hsave_msr;
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		break;
2993
	case MSR_VM_CR:
2994
		*data = svm->nested.vm_cr_msr;
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		break;
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	case MSR_IA32_UCODE_REV:
		*data = 0x01000065;
		break;
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	default:
3000
		return kvm_get_msr_common(vcpu, ecx, data);
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	}
	return 0;
}

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static int rdmsr_interception(struct vcpu_svm *svm)
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{
3007
	u32 ecx = svm->vcpu.arch.regs[VCPU_REGS_RCX];
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	u64 data;

3010 3011
	if (svm_get_msr(&svm->vcpu, ecx, &data)) {
		trace_kvm_msr_read_ex(ecx);
3012
		kvm_inject_gp(&svm->vcpu, 0);
3013
	} else {
3014
		trace_kvm_msr_read(ecx, data);
3015

3016
		svm->vcpu.arch.regs[VCPU_REGS_RAX] = data & 0xffffffff;
3017
		svm->vcpu.arch.regs[VCPU_REGS_RDX] = data >> 32;
3018
		svm->next_rip = kvm_rip_read(&svm->vcpu) + 2;
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		skip_emulated_instruction(&svm->vcpu);
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	}
	return 1;
}

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static int svm_set_vm_cr(struct kvm_vcpu *vcpu, u64 data)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	int svm_dis, chg_mask;

	if (data & ~SVM_VM_CR_VALID_MASK)
		return 1;

	chg_mask = SVM_VM_CR_VALID_MASK;

	if (svm->nested.vm_cr_msr & SVM_VM_CR_SVM_DIS_MASK)
		chg_mask &= ~(SVM_VM_CR_SVM_LOCK_MASK | SVM_VM_CR_SVM_DIS_MASK);

	svm->nested.vm_cr_msr &= ~chg_mask;
	svm->nested.vm_cr_msr |= (data & chg_mask);

	svm_dis = svm->nested.vm_cr_msr & SVM_VM_CR_SVM_DIS_MASK;

	/* check for svm_disable while efer.svme is set */
	if (svm_dis && (vcpu->arch.efer & EFER_SVME))
		return 1;

	return 0;
}

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static int svm_set_msr(struct kvm_vcpu *vcpu, unsigned ecx, u64 data)
{
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	struct vcpu_svm *svm = to_svm(vcpu);

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	switch (ecx) {
3054
	case MSR_IA32_TSC:
3055
		kvm_write_tsc(vcpu, data);
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		break;
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3057
	case MSR_STAR:
3058
		svm->vmcb->save.star = data;
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		break;
3060
#ifdef CONFIG_X86_64
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3061
	case MSR_LSTAR:
3062
		svm->vmcb->save.lstar = data;
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		break;
	case MSR_CSTAR:
3065
		svm->vmcb->save.cstar = data;
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		break;
	case MSR_KERNEL_GS_BASE:
3068
		svm->vmcb->save.kernel_gs_base = data;
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		break;
	case MSR_SYSCALL_MASK:
3071
		svm->vmcb->save.sfmask = data;
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		break;
#endif
	case MSR_IA32_SYSENTER_CS:
3075
		svm->vmcb->save.sysenter_cs = data;
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		break;
	case MSR_IA32_SYSENTER_EIP:
3078
		svm->sysenter_eip = data;
3079
		svm->vmcb->save.sysenter_eip = data;
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		break;
	case MSR_IA32_SYSENTER_ESP:
3082
		svm->sysenter_esp = data;
3083
		svm->vmcb->save.sysenter_esp = data;
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		break;
3085
	case MSR_IA32_DEBUGCTLMSR:
3086
		if (!boot_cpu_has(X86_FEATURE_LBRV)) {
3087
			pr_unimpl(vcpu, "%s: MSR_IA32_DEBUGCTL 0x%llx, nop\n",
3088
					__func__, data);
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			break;
		}
		if (data & DEBUGCTL_RESERVED_BITS)
			return 1;

		svm->vmcb->save.dbgctl = data;
3095
		mark_dirty(svm->vmcb, VMCB_LBR);
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		if (data & (1ULL<<0))
			svm_enable_lbrv(svm);
		else
			svm_disable_lbrv(svm);
3100
		break;
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	case MSR_VM_HSAVE_PA:
3102
		svm->nested.hsave_msr = data;
3103
		break;
3104
	case MSR_VM_CR:
3105
		return svm_set_vm_cr(vcpu, data);
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	case MSR_VM_IGNNE:
		pr_unimpl(vcpu, "unimplemented wrmsr: 0x%x data 0x%llx\n", ecx, data);
		break;
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	default:
3110
		return kvm_set_msr_common(vcpu, ecx, data);
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	}
	return 0;
}

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static int wrmsr_interception(struct vcpu_svm *svm)
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{
3117
	u32 ecx = svm->vcpu.arch.regs[VCPU_REGS_RCX];
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	u64 data = (svm->vcpu.arch.regs[VCPU_REGS_RAX] & -1u)
3119
		| ((u64)(svm->vcpu.arch.regs[VCPU_REGS_RDX] & -1u) << 32);
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3122
	svm->next_rip = kvm_rip_read(&svm->vcpu) + 2;
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	if (svm_set_msr(&svm->vcpu, ecx, data)) {
		trace_kvm_msr_write_ex(ecx, data);
3125
		kvm_inject_gp(&svm->vcpu, 0);
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	} else {
		trace_kvm_msr_write(ecx, data);
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		skip_emulated_instruction(&svm->vcpu);
3129
	}
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	return 1;
}

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static int msr_interception(struct vcpu_svm *svm)
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3134
{
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	if (svm->vmcb->control.exit_info_1)
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		return wrmsr_interception(svm);
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	else
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		return rdmsr_interception(svm);
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}

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3141
static int interrupt_window_interception(struct vcpu_svm *svm)
3142
{
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	struct kvm_run *kvm_run = svm->vcpu.run;

3145
	kvm_make_request(KVM_REQ_EVENT, &svm->vcpu);
3146
	svm_clear_vintr(svm);
3147
	svm->vmcb->control.int_ctl &= ~V_IRQ_MASK;
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	mark_dirty(svm->vmcb, VMCB_INTR);
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	/*
	 * If the user space waits to inject interrupts, exit as soon as
	 * possible
	 */
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	if (!irqchip_in_kernel(svm->vcpu.kvm) &&
	    kvm_run->request_interrupt_window &&
	    !kvm_cpu_has_interrupt(&svm->vcpu)) {
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		++svm->vcpu.stat.irq_window_exits;
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		kvm_run->exit_reason = KVM_EXIT_IRQ_WINDOW_OPEN;
		return 0;
	}

	return 1;
}

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static int pause_interception(struct vcpu_svm *svm)
{
	kvm_vcpu_on_spin(&(svm->vcpu));
	return 1;
}

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static int (*svm_exit_handlers[])(struct vcpu_svm *svm) = {
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	[SVM_EXIT_READ_CR0]			= cr_interception,
	[SVM_EXIT_READ_CR3]			= cr_interception,
	[SVM_EXIT_READ_CR4]			= cr_interception,
	[SVM_EXIT_READ_CR8]			= cr_interception,
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	[SVM_EXIT_CR0_SEL_WRITE]		= emulate_on_interception,
3176
	[SVM_EXIT_WRITE_CR0]			= cr_interception,
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	[SVM_EXIT_WRITE_CR3]			= cr_interception,
	[SVM_EXIT_WRITE_CR4]			= cr_interception,
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	[SVM_EXIT_WRITE_CR8]			= cr8_write_interception,
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	[SVM_EXIT_READ_DR0]			= dr_interception,
	[SVM_EXIT_READ_DR1]			= dr_interception,
	[SVM_EXIT_READ_DR2]			= dr_interception,
	[SVM_EXIT_READ_DR3]			= dr_interception,
	[SVM_EXIT_READ_DR4]			= dr_interception,
	[SVM_EXIT_READ_DR5]			= dr_interception,
	[SVM_EXIT_READ_DR6]			= dr_interception,
	[SVM_EXIT_READ_DR7]			= dr_interception,
	[SVM_EXIT_WRITE_DR0]			= dr_interception,
	[SVM_EXIT_WRITE_DR1]			= dr_interception,
	[SVM_EXIT_WRITE_DR2]			= dr_interception,
	[SVM_EXIT_WRITE_DR3]			= dr_interception,
	[SVM_EXIT_WRITE_DR4]			= dr_interception,
	[SVM_EXIT_WRITE_DR5]			= dr_interception,
	[SVM_EXIT_WRITE_DR6]			= dr_interception,
	[SVM_EXIT_WRITE_DR7]			= dr_interception,
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	[SVM_EXIT_EXCP_BASE + DB_VECTOR]	= db_interception,
	[SVM_EXIT_EXCP_BASE + BP_VECTOR]	= bp_interception,
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	[SVM_EXIT_EXCP_BASE + UD_VECTOR]	= ud_interception,
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	[SVM_EXIT_EXCP_BASE + PF_VECTOR]	= pf_interception,
	[SVM_EXIT_EXCP_BASE + NM_VECTOR]	= nm_interception,
	[SVM_EXIT_EXCP_BASE + MC_VECTOR]	= mc_interception,
	[SVM_EXIT_INTR]				= intr_interception,
3203
	[SVM_EXIT_NMI]				= nmi_interception,
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	[SVM_EXIT_SMI]				= nop_on_interception,
	[SVM_EXIT_INIT]				= nop_on_interception,
3206
	[SVM_EXIT_VINTR]			= interrupt_window_interception,
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	[SVM_EXIT_RDPMC]			= rdpmc_interception,
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	[SVM_EXIT_CPUID]			= cpuid_interception,
3209
	[SVM_EXIT_IRET]                         = iret_interception,
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	[SVM_EXIT_INVD]                         = emulate_on_interception,
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	[SVM_EXIT_PAUSE]			= pause_interception,
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	[SVM_EXIT_HLT]				= halt_interception,
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	[SVM_EXIT_INVLPG]			= invlpg_interception,
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	[SVM_EXIT_INVLPGA]			= invlpga_interception,
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	[SVM_EXIT_IOIO]				= io_interception,
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	[SVM_EXIT_MSR]				= msr_interception,
	[SVM_EXIT_TASK_SWITCH]			= task_switch_interception,
3218
	[SVM_EXIT_SHUTDOWN]			= shutdown_interception,
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	[SVM_EXIT_VMRUN]			= vmrun_interception,
3220
	[SVM_EXIT_VMMCALL]			= vmmcall_interception,
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	[SVM_EXIT_VMLOAD]			= vmload_interception,
	[SVM_EXIT_VMSAVE]			= vmsave_interception,
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	[SVM_EXIT_STGI]				= stgi_interception,
	[SVM_EXIT_CLGI]				= clgi_interception,
3225
	[SVM_EXIT_SKINIT]			= skinit_interception,
3226
	[SVM_EXIT_WBINVD]                       = emulate_on_interception,
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	[SVM_EXIT_MONITOR]			= invalid_op_interception,
	[SVM_EXIT_MWAIT]			= invalid_op_interception,
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	[SVM_EXIT_XSETBV]			= xsetbv_interception,
3230
	[SVM_EXIT_NPF]				= pf_interception,
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3231 3232
};

3233
static void dump_vmcb(struct kvm_vcpu *vcpu)
3234 3235 3236 3237 3238 3239
{
	struct vcpu_svm *svm = to_svm(vcpu);
	struct vmcb_control_area *control = &svm->vmcb->control;
	struct vmcb_save_area *save = &svm->vmcb->save;

	pr_err("VMCB Control Area:\n");
3240 3241 3242 3243 3244 3245 3246 3247 3248 3249 3250 3251 3252 3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263 3264 3265
	pr_err("%-20s%04x\n", "cr_read:", control->intercept_cr & 0xffff);
	pr_err("%-20s%04x\n", "cr_write:", control->intercept_cr >> 16);
	pr_err("%-20s%04x\n", "dr_read:", control->intercept_dr & 0xffff);
	pr_err("%-20s%04x\n", "dr_write:", control->intercept_dr >> 16);
	pr_err("%-20s%08x\n", "exceptions:", control->intercept_exceptions);
	pr_err("%-20s%016llx\n", "intercepts:", control->intercept);
	pr_err("%-20s%d\n", "pause filter count:", control->pause_filter_count);
	pr_err("%-20s%016llx\n", "iopm_base_pa:", control->iopm_base_pa);
	pr_err("%-20s%016llx\n", "msrpm_base_pa:", control->msrpm_base_pa);
	pr_err("%-20s%016llx\n", "tsc_offset:", control->tsc_offset);
	pr_err("%-20s%d\n", "asid:", control->asid);
	pr_err("%-20s%d\n", "tlb_ctl:", control->tlb_ctl);
	pr_err("%-20s%08x\n", "int_ctl:", control->int_ctl);
	pr_err("%-20s%08x\n", "int_vector:", control->int_vector);
	pr_err("%-20s%08x\n", "int_state:", control->int_state);
	pr_err("%-20s%08x\n", "exit_code:", control->exit_code);
	pr_err("%-20s%016llx\n", "exit_info1:", control->exit_info_1);
	pr_err("%-20s%016llx\n", "exit_info2:", control->exit_info_2);
	pr_err("%-20s%08x\n", "exit_int_info:", control->exit_int_info);
	pr_err("%-20s%08x\n", "exit_int_info_err:", control->exit_int_info_err);
	pr_err("%-20s%lld\n", "nested_ctl:", control->nested_ctl);
	pr_err("%-20s%016llx\n", "nested_cr3:", control->nested_cr3);
	pr_err("%-20s%08x\n", "event_inj:", control->event_inj);
	pr_err("%-20s%08x\n", "event_inj_err:", control->event_inj_err);
	pr_err("%-20s%lld\n", "lbr_ctl:", control->lbr_ctl);
	pr_err("%-20s%016llx\n", "next_rip:", control->next_rip);
3266
	pr_err("VMCB State Save Area:\n");
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	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "es:",
	       save->es.selector, save->es.attrib,
	       save->es.limit, save->es.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "cs:",
	       save->cs.selector, save->cs.attrib,
	       save->cs.limit, save->cs.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "ss:",
	       save->ss.selector, save->ss.attrib,
	       save->ss.limit, save->ss.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "ds:",
	       save->ds.selector, save->ds.attrib,
	       save->ds.limit, save->ds.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "fs:",
	       save->fs.selector, save->fs.attrib,
	       save->fs.limit, save->fs.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "gs:",
	       save->gs.selector, save->gs.attrib,
	       save->gs.limit, save->gs.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "gdtr:",
	       save->gdtr.selector, save->gdtr.attrib,
	       save->gdtr.limit, save->gdtr.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "ldtr:",
	       save->ldtr.selector, save->ldtr.attrib,
	       save->ldtr.limit, save->ldtr.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "idtr:",
	       save->idtr.selector, save->idtr.attrib,
	       save->idtr.limit, save->idtr.base);
	pr_err("%-5s s: %04x a: %04x l: %08x b: %016llx\n",
	       "tr:",
	       save->tr.selector, save->tr.attrib,
	       save->tr.limit, save->tr.base);
3307 3308
	pr_err("cpl:            %d                efer:         %016llx\n",
		save->cpl, save->efer);
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	pr_err("%-15s %016llx %-13s %016llx\n",
	       "cr0:", save->cr0, "cr2:", save->cr2);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "cr3:", save->cr3, "cr4:", save->cr4);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "dr6:", save->dr6, "dr7:", save->dr7);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "rip:", save->rip, "rflags:", save->rflags);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "rsp:", save->rsp, "rax:", save->rax);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "star:", save->star, "lstar:", save->lstar);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "cstar:", save->cstar, "sfmask:", save->sfmask);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "kernel_gs_base:", save->kernel_gs_base,
	       "sysenter_cs:", save->sysenter_cs);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "sysenter_esp:", save->sysenter_esp,
	       "sysenter_eip:", save->sysenter_eip);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "gpat:", save->g_pat, "dbgctl:", save->dbgctl);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "br_from:", save->br_from, "br_to:", save->br_to);
	pr_err("%-15s %016llx %-13s %016llx\n",
	       "excp_from:", save->last_excp_from,
	       "excp_to:", save->last_excp_to);
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}

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static void svm_get_exit_info(struct kvm_vcpu *vcpu, u64 *info1, u64 *info2)
{
	struct vmcb_control_area *control = &to_svm(vcpu)->vmcb->control;

	*info1 = control->exit_info_1;
	*info2 = control->exit_info_2;
}

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3346
static int handle_exit(struct kvm_vcpu *vcpu)
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{
3348
	struct vcpu_svm *svm = to_svm(vcpu);
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	struct kvm_run *kvm_run = vcpu->run;
3350
	u32 exit_code = svm->vmcb->control.exit_code;
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3351

3352
	if (!is_cr_intercept(svm, INTERCEPT_CR0_WRITE))
3353 3354 3355
		vcpu->arch.cr0 = svm->vmcb->save.cr0;
	if (npt_enabled)
		vcpu->arch.cr3 = svm->vmcb->save.cr3;
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	if (unlikely(svm->nested.exit_required)) {
		nested_svm_vmexit(svm);
		svm->nested.exit_required = false;

		return 1;
	}

3364
	if (is_guest_mode(vcpu)) {
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		int vmexit;

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		trace_kvm_nested_vmexit(svm->vmcb->save.rip, exit_code,
					svm->vmcb->control.exit_info_1,
					svm->vmcb->control.exit_info_2,
					svm->vmcb->control.exit_int_info,
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					svm->vmcb->control.exit_int_info_err,
					KVM_ISA_SVM);
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		vmexit = nested_svm_exit_special(svm);

		if (vmexit == NESTED_EXIT_CONTINUE)
			vmexit = nested_svm_exit_handled(svm);

		if (vmexit == NESTED_EXIT_DONE)
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			return 1;
	}

3383 3384
	svm_complete_interrupts(svm);

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	if (svm->vmcb->control.exit_code == SVM_EXIT_ERR) {
		kvm_run->exit_reason = KVM_EXIT_FAIL_ENTRY;
		kvm_run->fail_entry.hardware_entry_failure_reason
			= svm->vmcb->control.exit_code;
3389 3390
		pr_err("KVM: FAILED VMRUN WITH VMCB:\n");
		dump_vmcb(vcpu);
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		return 0;
	}

3394
	if (is_external_interrupt(svm->vmcb->control.exit_int_info) &&
3395
	    exit_code != SVM_EXIT_EXCP_BASE + PF_VECTOR &&
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	    exit_code != SVM_EXIT_NPF && exit_code != SVM_EXIT_TASK_SWITCH &&
	    exit_code != SVM_EXIT_INTR && exit_code != SVM_EXIT_NMI)
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		printk(KERN_ERR "%s: unexpected exit_ini_info 0x%x "
		       "exit_code 0x%x\n",
3400
		       __func__, svm->vmcb->control.exit_int_info,
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3401 3402
		       exit_code);

3403
	if (exit_code >= ARRAY_SIZE(svm_exit_handlers)
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3404
	    || !svm_exit_handlers[exit_code]) {
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		kvm_run->exit_reason = KVM_EXIT_UNKNOWN;
3406
		kvm_run->hw.hardware_exit_reason = exit_code;
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		return 0;
	}

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	return svm_exit_handlers[exit_code](svm);
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}

static void reload_tss(struct kvm_vcpu *vcpu)
{
	int cpu = raw_smp_processor_id();

3417 3418
	struct svm_cpu_data *sd = per_cpu(svm_data, cpu);
	sd->tss_desc->type = 9; /* available 32/64-bit TSS */
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	load_TR_desc();
}

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static void pre_svm_run(struct vcpu_svm *svm)
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{
	int cpu = raw_smp_processor_id();

3426
	struct svm_cpu_data *sd = per_cpu(svm_data, cpu);
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3427

3428
	/* FIXME: handle wraparound of asid_generation */
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	if (svm->asid_generation != sd->asid_generation)
		new_asid(svm, sd);
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}

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static void svm_inject_nmi(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->control.event_inj = SVM_EVTINJ_VALID | SVM_EVTINJ_TYPE_NMI;
	vcpu->arch.hflags |= HF_NMI_MASK;
3439
	set_intercept(svm, INTERCEPT_IRET);
3440 3441
	++vcpu->stat.nmi_injections;
}
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3442

3443
static inline void svm_inject_irq(struct vcpu_svm *svm, int irq)
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{
	struct vmcb_control_area *control;

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	control = &svm->vmcb->control;
3448
	control->int_vector = irq;
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	control->int_ctl &= ~V_INTR_PRIO_MASK;
	control->int_ctl |= V_IRQ_MASK |
		((/*control->int_vector >> 4*/ 0xf) << V_INTR_PRIO_SHIFT);
3452
	mark_dirty(svm->vmcb, VMCB_INTR);
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}

3455
static void svm_set_irq(struct kvm_vcpu *vcpu)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

3459
	BUG_ON(!(gif_set(svm)));
3460

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	trace_kvm_inj_virq(vcpu->arch.interrupt.nr);
	++vcpu->stat.irq_injections;

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	svm->vmcb->control.event_inj = vcpu->arch.interrupt.nr |
		SVM_EVTINJ_VALID | SVM_EVTINJ_TYPE_INTR;
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}

3468
static void update_cr8_intercept(struct kvm_vcpu *vcpu, int tpr, int irr)
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{
	struct vcpu_svm *svm = to_svm(vcpu);

3472
	if (is_guest_mode(vcpu) && (vcpu->arch.hflags & HF_VINTR_MASK))
3473 3474
		return;

3475
	if (irr == -1)
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		return;

3478
	if (tpr >= irr)
3479
		set_cr_intercept(svm, INTERCEPT_CR8_WRITE);
3480
}
3481

3482 3483 3484 3485
static int svm_nmi_allowed(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	struct vmcb *vmcb = svm->vmcb;
3486 3487 3488 3489 3490 3491
	int ret;
	ret = !(vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK) &&
	      !(svm->vcpu.arch.hflags & HF_NMI_MASK);
	ret = ret && gif_set(svm) && nested_svm_nmi(svm);

	return ret;
3492 3493
}

3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504 3505 3506
static bool svm_get_nmi_mask(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	return !!(svm->vcpu.arch.hflags & HF_NMI_MASK);
}

static void svm_set_nmi_mask(struct kvm_vcpu *vcpu, bool masked)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	if (masked) {
		svm->vcpu.arch.hflags |= HF_NMI_MASK;
3507
		set_intercept(svm, INTERCEPT_IRET);
3508 3509
	} else {
		svm->vcpu.arch.hflags &= ~HF_NMI_MASK;
3510
		clr_intercept(svm, INTERCEPT_IRET);
3511 3512 3513
	}
}

3514 3515 3516 3517
static int svm_interrupt_allowed(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	struct vmcb *vmcb = svm->vmcb;
3518 3519 3520 3521 3522 3523
	int ret;

	if (!gif_set(svm) ||
	     (vmcb->control.int_state & SVM_INTERRUPT_SHADOW_MASK))
		return 0;

3524
	ret = !!(kvm_get_rflags(vcpu) & X86_EFLAGS_IF);
3525

3526
	if (is_guest_mode(vcpu))
3527 3528 3529
		return ret && !(svm->vcpu.arch.hflags & HF_VINTR_MASK);

	return ret;
3530 3531
}

3532
static void enable_irq_window(struct kvm_vcpu *vcpu)
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Avi Kivity committed
3533
{
3534 3535
	struct vcpu_svm *svm = to_svm(vcpu);

Joerg Roedel's avatar
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3536 3537 3538 3539 3540 3541
	/*
	 * In case GIF=0 we can't rely on the CPU to tell us when GIF becomes
	 * 1, because that's a separate STGI/VMRUN intercept.  The next time we
	 * get that intercept, this function will be called again though and
	 * we'll get the vintr intercept.
	 */
3542
	if (gif_set(svm) && nested_svm_intr(svm)) {
3543 3544 3545
		svm_set_vintr(svm);
		svm_inject_irq(svm, 0x0);
	}
3546 3547
}

3548
static void enable_nmi_window(struct kvm_vcpu *vcpu)
3549
{
3550
	struct vcpu_svm *svm = to_svm(vcpu);
3551

3552 3553 3554 3555
	if ((svm->vcpu.arch.hflags & (HF_NMI_MASK | HF_IRET_MASK))
	    == HF_NMI_MASK)
		return; /* IRET will cause a vm exit */

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3556 3557 3558 3559
	/*
	 * Something prevents NMI from been injected. Single step over possible
	 * problem (IRET or exception injection or interrupt shadow)
	 */
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3560
	svm->nmi_singlestep = true;
3561 3562
	svm->vmcb->save.rflags |= (X86_EFLAGS_TF | X86_EFLAGS_RF);
	update_db_intercept(vcpu);
3563 3564
}

3565 3566 3567 3568 3569
static int svm_set_tss_addr(struct kvm *kvm, unsigned int addr)
{
	return 0;
}

3570 3571
static void svm_flush_tlb(struct kvm_vcpu *vcpu)
{
3572 3573 3574 3575 3576 3577
	struct vcpu_svm *svm = to_svm(vcpu);

	if (static_cpu_has(X86_FEATURE_FLUSHBYASID))
		svm->vmcb->control.tlb_ctl = TLB_CONTROL_FLUSH_ASID;
	else
		svm->asid_generation--;
3578 3579
}

3580 3581 3582 3583
static void svm_prepare_guest_switch(struct kvm_vcpu *vcpu)
{
}

3584 3585 3586 3587
static inline void sync_cr8_to_lapic(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);

3588
	if (is_guest_mode(vcpu) && (vcpu->arch.hflags & HF_VINTR_MASK))
3589 3590
		return;

3591
	if (!is_cr_intercept(svm, INTERCEPT_CR8_WRITE)) {
3592
		int cr8 = svm->vmcb->control.int_ctl & V_TPR_MASK;
3593
		kvm_set_cr8(vcpu, cr8);
3594 3595 3596
	}
}

3597 3598 3599 3600 3601
static inline void sync_lapic_to_cr8(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	u64 cr8;

3602
	if (is_guest_mode(vcpu) && (vcpu->arch.hflags & HF_VINTR_MASK))
3603 3604
		return;

3605 3606 3607 3608 3609
	cr8 = kvm_get_cr8(vcpu);
	svm->vmcb->control.int_ctl &= ~V_TPR_MASK;
	svm->vmcb->control.int_ctl |= cr8 & V_TPR_MASK;
}

3610 3611 3612 3613 3614
static void svm_complete_interrupts(struct vcpu_svm *svm)
{
	u8 vector;
	int type;
	u32 exitintinfo = svm->vmcb->control.exit_int_info;
3615 3616 3617
	unsigned int3_injected = svm->int3_injected;

	svm->int3_injected = 0;
3618

3619 3620 3621 3622 3623 3624
	/*
	 * If we've made progress since setting HF_IRET_MASK, we've
	 * executed an IRET and can allow NMI injection.
	 */
	if ((svm->vcpu.arch.hflags & HF_IRET_MASK)
	    && kvm_rip_read(&svm->vcpu) != svm->nmi_iret_rip) {
3625
		svm->vcpu.arch.hflags &= ~(HF_NMI_MASK | HF_IRET_MASK);
3626 3627
		kvm_make_request(KVM_REQ_EVENT, &svm->vcpu);
	}
3628

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	svm->vcpu.arch.nmi_injected = false;
	kvm_clear_exception_queue(&svm->vcpu);
	kvm_clear_interrupt_queue(&svm->vcpu);

	if (!(exitintinfo & SVM_EXITINTINFO_VALID))
		return;

3636 3637
	kvm_make_request(KVM_REQ_EVENT, &svm->vcpu);

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	vector = exitintinfo & SVM_EXITINTINFO_VEC_MASK;
	type = exitintinfo & SVM_EXITINTINFO_TYPE_MASK;

	switch (type) {
	case SVM_EXITINTINFO_TYPE_NMI:
		svm->vcpu.arch.nmi_injected = true;
		break;
	case SVM_EXITINTINFO_TYPE_EXEPT:
3646 3647 3648 3649 3650 3651 3652 3653 3654 3655 3656
		/*
		 * In case of software exceptions, do not reinject the vector,
		 * but re-execute the instruction instead. Rewind RIP first
		 * if we emulated INT3 before.
		 */
		if (kvm_exception_is_soft(vector)) {
			if (vector == BP_VECTOR && int3_injected &&
			    kvm_is_linear_rip(&svm->vcpu, svm->int3_rip))
				kvm_rip_write(&svm->vcpu,
					      kvm_rip_read(&svm->vcpu) -
					      int3_injected);
3657
			break;
3658
		}
3659 3660
		if (exitintinfo & SVM_EXITINTINFO_VALID_ERR) {
			u32 err = svm->vmcb->control.exit_int_info_err;
3661
			kvm_requeue_exception_e(&svm->vcpu, vector, err);
3662 3663

		} else
3664
			kvm_requeue_exception(&svm->vcpu, vector);
3665 3666
		break;
	case SVM_EXITINTINFO_TYPE_INTR:
3667
		kvm_queue_interrupt(&svm->vcpu, vector, false);
3668 3669 3670 3671 3672 3673
		break;
	default:
		break;
	}
}

3674 3675 3676 3677 3678 3679 3680 3681 3682 3683 3684
static void svm_cancel_injection(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);
	struct vmcb_control_area *control = &svm->vmcb->control;

	control->exit_int_info = control->event_inj;
	control->exit_int_info_err = control->event_inj_err;
	control->event_inj = 0;
	svm_complete_interrupts(svm);
}

3685 3686 3687 3688 3689 3690
#ifdef CONFIG_X86_64
#define R "r"
#else
#define R "e"
#endif

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3691
static void svm_vcpu_run(struct kvm_vcpu *vcpu)
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3692
{
3693
	struct vcpu_svm *svm = to_svm(vcpu);
3694

3695 3696 3697 3698
	svm->vmcb->save.rax = vcpu->arch.regs[VCPU_REGS_RAX];
	svm->vmcb->save.rsp = vcpu->arch.regs[VCPU_REGS_RSP];
	svm->vmcb->save.rip = vcpu->arch.regs[VCPU_REGS_RIP];

3699 3700 3701 3702 3703 3704 3705
	/*
	 * A vmexit emulation is required before the vcpu can be executed
	 * again.
	 */
	if (unlikely(svm->nested.exit_required))
		return;

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3706
	pre_svm_run(svm);
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3707

3708 3709
	sync_lapic_to_cr8(vcpu);

3710
	svm->vmcb->save.cr2 = vcpu->arch.cr2;
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3711

3712 3713 3714
	clgi();

	local_irq_enable();
3715

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3716
	asm volatile (
3717 3718 3719 3720 3721 3722 3723
		"push %%"R"bp; \n\t"
		"mov %c[rbx](%[svm]), %%"R"bx \n\t"
		"mov %c[rcx](%[svm]), %%"R"cx \n\t"
		"mov %c[rdx](%[svm]), %%"R"dx \n\t"
		"mov %c[rsi](%[svm]), %%"R"si \n\t"
		"mov %c[rdi](%[svm]), %%"R"di \n\t"
		"mov %c[rbp](%[svm]), %%"R"bp \n\t"
3724
#ifdef CONFIG_X86_64
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		"mov %c[r8](%[svm]),  %%r8  \n\t"
		"mov %c[r9](%[svm]),  %%r9  \n\t"
		"mov %c[r10](%[svm]), %%r10 \n\t"
		"mov %c[r11](%[svm]), %%r11 \n\t"
		"mov %c[r12](%[svm]), %%r12 \n\t"
		"mov %c[r13](%[svm]), %%r13 \n\t"
		"mov %c[r14](%[svm]), %%r14 \n\t"
		"mov %c[r15](%[svm]), %%r15 \n\t"
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3733 3734 3735
#endif

		/* Enter guest mode */
3736 3737
		"push %%"R"ax \n\t"
		"mov %c[vmcb](%[svm]), %%"R"ax \n\t"
3738 3739 3740
		__ex(SVM_VMLOAD) "\n\t"
		__ex(SVM_VMRUN) "\n\t"
		__ex(SVM_VMSAVE) "\n\t"
3741
		"pop %%"R"ax \n\t"
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3742 3743

		/* Save guest registers, load host registers */
3744 3745 3746 3747 3748 3749
		"mov %%"R"bx, %c[rbx](%[svm]) \n\t"
		"mov %%"R"cx, %c[rcx](%[svm]) \n\t"
		"mov %%"R"dx, %c[rdx](%[svm]) \n\t"
		"mov %%"R"si, %c[rsi](%[svm]) \n\t"
		"mov %%"R"di, %c[rdi](%[svm]) \n\t"
		"mov %%"R"bp, %c[rbp](%[svm]) \n\t"
3750
#ifdef CONFIG_X86_64
3751 3752 3753 3754 3755 3756 3757 3758
		"mov %%r8,  %c[r8](%[svm]) \n\t"
		"mov %%r9,  %c[r9](%[svm]) \n\t"
		"mov %%r10, %c[r10](%[svm]) \n\t"
		"mov %%r11, %c[r11](%[svm]) \n\t"
		"mov %%r12, %c[r12](%[svm]) \n\t"
		"mov %%r13, %c[r13](%[svm]) \n\t"
		"mov %%r14, %c[r14](%[svm]) \n\t"
		"mov %%r15, %c[r15](%[svm]) \n\t"
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3759
#endif
3760
		"pop %%"R"bp"
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3761
		:
3762
		: [svm]"a"(svm),
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3763
		  [vmcb]"i"(offsetof(struct vcpu_svm, vmcb_pa)),
3764 3765 3766 3767 3768 3769
		  [rbx]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RBX])),
		  [rcx]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RCX])),
		  [rdx]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RDX])),
		  [rsi]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RSI])),
		  [rdi]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RDI])),
		  [rbp]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_RBP]))
3770
#ifdef CONFIG_X86_64
3771 3772 3773 3774 3775 3776 3777 3778
		  , [r8]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R8])),
		  [r9]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R9])),
		  [r10]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R10])),
		  [r11]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R11])),
		  [r12]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R12])),
		  [r13]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R13])),
		  [r14]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R14])),
		  [r15]"i"(offsetof(struct vcpu_svm, vcpu.arch.regs[VCPU_REGS_R15]))
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3779
#endif
3780
		: "cc", "memory"
3781
		, R"bx", R"cx", R"dx", R"si", R"di"
3782 3783 3784 3785
#ifdef CONFIG_X86_64
		, "r8", "r9", "r10", "r11" , "r12", "r13", "r14", "r15"
#endif
		);
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3786

3787 3788 3789
#ifdef CONFIG_X86_64
	wrmsrl(MSR_GS_BASE, svm->host.gs_base);
#else
3790
	loadsegment(fs, svm->host.fs);
3791 3792 3793
#ifndef CONFIG_X86_32_LAZY_GS
	loadsegment(gs, svm->host.gs);
#endif
3794
#endif
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3795 3796 3797

	reload_tss(vcpu);

3798 3799
	local_irq_disable();

3800 3801 3802 3803 3804
	vcpu->arch.cr2 = svm->vmcb->save.cr2;
	vcpu->arch.regs[VCPU_REGS_RAX] = svm->vmcb->save.rax;
	vcpu->arch.regs[VCPU_REGS_RSP] = svm->vmcb->save.rsp;
	vcpu->arch.regs[VCPU_REGS_RIP] = svm->vmcb->save.rip;

3805 3806
	trace_kvm_exit(svm->vmcb->control.exit_code, vcpu, KVM_ISA_SVM);

3807 3808 3809 3810 3811 3812 3813 3814 3815 3816
	if (unlikely(svm->vmcb->control.exit_code == SVM_EXIT_NMI))
		kvm_before_handle_nmi(&svm->vcpu);

	stgi();

	/* Any pending NMI will happen here */

	if (unlikely(svm->vmcb->control.exit_code == SVM_EXIT_NMI))
		kvm_after_handle_nmi(&svm->vcpu);

3817 3818
	sync_cr8_to_lapic(vcpu);

3819
	svm->next_rip = 0;
3820

3821 3822
	svm->vmcb->control.tlb_ctl = TLB_CONTROL_DO_NOTHING;

3823 3824 3825 3826
	/* if exit due to PF check for async PF */
	if (svm->vmcb->control.exit_code == SVM_EXIT_EXCP_BASE + PF_VECTOR)
		svm->apf_reason = kvm_read_and_reset_pf_reason();

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3827 3828 3829 3830
	if (npt_enabled) {
		vcpu->arch.regs_avail &= ~(1 << VCPU_EXREG_PDPTR);
		vcpu->arch.regs_dirty &= ~(1 << VCPU_EXREG_PDPTR);
	}
3831 3832 3833 3834 3835 3836 3837 3838

	/*
	 * We need to handle MC intercepts here before the vcpu has a chance to
	 * change the physical cpu
	 */
	if (unlikely(svm->vmcb->control.exit_code ==
		     SVM_EXIT_EXCP_BASE + MC_VECTOR))
		svm_handle_mce(svm);
3839 3840

	mark_all_clean(svm->vmcb);
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3841 3842
}

3843 3844
#undef R

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3845 3846
static void svm_set_cr3(struct kvm_vcpu *vcpu, unsigned long root)
{
3847 3848 3849
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->save.cr3 = root;
3850
	mark_dirty(svm->vmcb, VMCB_CR);
3851
	svm_flush_tlb(vcpu);
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3852 3853
}

3854 3855 3856 3857 3858
static void set_tdp_cr3(struct kvm_vcpu *vcpu, unsigned long root)
{
	struct vcpu_svm *svm = to_svm(vcpu);

	svm->vmcb->control.nested_cr3 = root;
3859
	mark_dirty(svm->vmcb, VMCB_NPT);
3860 3861

	/* Also sync guest cr3 here in case we live migrate */
3862
	svm->vmcb->save.cr3 = kvm_read_cr3(vcpu);
3863
	mark_dirty(svm->vmcb, VMCB_CR);
3864

3865
	svm_flush_tlb(vcpu);
3866 3867
}

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3868 3869
static int is_disabled(void)
{
3870 3871 3872 3873 3874 3875
	u64 vm_cr;

	rdmsrl(MSR_VM_CR, vm_cr);
	if (vm_cr & (1 << SVM_VM_CR_SVM_DISABLE))
		return 1;

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3876 3877 3878
	return 0;
}

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3879 3880 3881 3882 3883 3884 3885 3886 3887 3888 3889
static void
svm_patch_hypercall(struct kvm_vcpu *vcpu, unsigned char *hypercall)
{
	/*
	 * Patch in the VMMCALL instruction:
	 */
	hypercall[0] = 0x0f;
	hypercall[1] = 0x01;
	hypercall[2] = 0xd9;
}

3890 3891 3892 3893 3894
static void svm_check_processor_compat(void *rtn)
{
	*(int *)rtn = 0;
}

3895 3896 3897 3898 3899
static bool svm_cpu_has_accelerated_tpr(void)
{
	return false;
}

3900
static u64 svm_get_mt_mask(struct kvm_vcpu *vcpu, gfn_t gfn, bool is_mmio)
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3901 3902 3903 3904
{
	return 0;
}

3905 3906 3907 3908
static void svm_cpuid_update(struct kvm_vcpu *vcpu)
{
}

3909 3910
static void svm_set_supported_cpuid(u32 func, struct kvm_cpuid_entry2 *entry)
{
3911
	switch (func) {
3912 3913 3914 3915
	case 0x80000001:
		if (nested)
			entry->ecx |= (1 << 2); /* Set SVM bit */
		break;
3916 3917 3918 3919 3920
	case 0x8000000A:
		entry->eax = 1; /* SVM revision 1 */
		entry->ebx = 8; /* Lets support 8 ASIDs in case we add proper
				   ASID emulation to nested SVM */
		entry->ecx = 0; /* Reserved */
3921 3922 3923 3924
		entry->edx = 0; /* Per default do not support any
				   additional features */

		/* Support next_rip if host supports it */
3925
		if (boot_cpu_has(X86_FEATURE_NRIPS))
3926
			entry->edx |= SVM_FEATURE_NRIP;
3927

3928 3929 3930 3931
		/* Support NPT for the guest if enabled */
		if (npt_enabled)
			entry->edx |= SVM_FEATURE_NPT;

3932 3933
		break;
	}
3934 3935
}

3936
static int svm_get_lpage_level(void)
3937
{
3938
	return PT_PDPE_LEVEL;
3939 3940
}

3941 3942 3943 3944 3945
static bool svm_rdtscp_supported(void)
{
	return false;
}

3946 3947 3948 3949 3950
static bool svm_has_wbinvd_exit(void)
{
	return true;
}

3951 3952 3953 3954
static void svm_fpu_deactivate(struct kvm_vcpu *vcpu)
{
	struct vcpu_svm *svm = to_svm(vcpu);

3955
	set_exception_intercept(svm, NM_VECTOR);
3956
	update_cr0_intercept(svm);
3957 3958
}

3959
#define PRE_EX(exit)  { .exit_code = (exit), \
3960
			.stage = X86_ICPT_PRE_EXCEPT, }
3961
#define POST_EX(exit) { .exit_code = (exit), \
3962
			.stage = X86_ICPT_POST_EXCEPT, }
3963
#define POST_MEM(exit) { .exit_code = (exit), \
3964
			.stage = X86_ICPT_POST_MEMACCESS, }
3965 3966 3967 3968 3969 3970 3971 3972 3973 3974

static struct __x86_intercept {
	u32 exit_code;
	enum x86_intercept_stage stage;
} x86_intercept_map[] = {
	[x86_intercept_cr_read]		= POST_EX(SVM_EXIT_READ_CR0),
	[x86_intercept_cr_write]	= POST_EX(SVM_EXIT_WRITE_CR0),
	[x86_intercept_clts]		= POST_EX(SVM_EXIT_WRITE_CR0),
	[x86_intercept_lmsw]		= POST_EX(SVM_EXIT_WRITE_CR0),
	[x86_intercept_smsw]		= POST_EX(SVM_EXIT_READ_CR0),
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	[x86_intercept_dr_read]		= POST_EX(SVM_EXIT_READ_DR0),
	[x86_intercept_dr_write]	= POST_EX(SVM_EXIT_WRITE_DR0),
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	[x86_intercept_sldt]		= POST_EX(SVM_EXIT_LDTR_READ),
	[x86_intercept_str]		= POST_EX(SVM_EXIT_TR_READ),
	[x86_intercept_lldt]		= POST_EX(SVM_EXIT_LDTR_WRITE),
	[x86_intercept_ltr]		= POST_EX(SVM_EXIT_TR_WRITE),
	[x86_intercept_sgdt]		= POST_EX(SVM_EXIT_GDTR_READ),
	[x86_intercept_sidt]		= POST_EX(SVM_EXIT_IDTR_READ),
	[x86_intercept_lgdt]		= POST_EX(SVM_EXIT_GDTR_WRITE),
	[x86_intercept_lidt]		= POST_EX(SVM_EXIT_IDTR_WRITE),
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	[x86_intercept_vmrun]		= POST_EX(SVM_EXIT_VMRUN),
	[x86_intercept_vmmcall]		= POST_EX(SVM_EXIT_VMMCALL),
	[x86_intercept_vmload]		= POST_EX(SVM_EXIT_VMLOAD),
	[x86_intercept_vmsave]		= POST_EX(SVM_EXIT_VMSAVE),
	[x86_intercept_stgi]		= POST_EX(SVM_EXIT_STGI),
	[x86_intercept_clgi]		= POST_EX(SVM_EXIT_CLGI),
	[x86_intercept_skinit]		= POST_EX(SVM_EXIT_SKINIT),
	[x86_intercept_invlpga]		= POST_EX(SVM_EXIT_INVLPGA),
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	[x86_intercept_rdtscp]		= POST_EX(SVM_EXIT_RDTSCP),
	[x86_intercept_monitor]		= POST_MEM(SVM_EXIT_MONITOR),
	[x86_intercept_mwait]		= POST_EX(SVM_EXIT_MWAIT),
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	[x86_intercept_invlpg]		= POST_EX(SVM_EXIT_INVLPG),
	[x86_intercept_invd]		= POST_EX(SVM_EXIT_INVD),
	[x86_intercept_wbinvd]		= POST_EX(SVM_EXIT_WBINVD),
	[x86_intercept_wrmsr]		= POST_EX(SVM_EXIT_MSR),
	[x86_intercept_rdtsc]		= POST_EX(SVM_EXIT_RDTSC),
	[x86_intercept_rdmsr]		= POST_EX(SVM_EXIT_MSR),
	[x86_intercept_rdpmc]		= POST_EX(SVM_EXIT_RDPMC),
	[x86_intercept_cpuid]		= PRE_EX(SVM_EXIT_CPUID),
	[x86_intercept_rsm]		= PRE_EX(SVM_EXIT_RSM),
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	[x86_intercept_pause]		= PRE_EX(SVM_EXIT_PAUSE),
	[x86_intercept_pushf]		= PRE_EX(SVM_EXIT_PUSHF),
	[x86_intercept_popf]		= PRE_EX(SVM_EXIT_POPF),
	[x86_intercept_intn]		= PRE_EX(SVM_EXIT_SWINT),
	[x86_intercept_iret]		= PRE_EX(SVM_EXIT_IRET),
	[x86_intercept_icebp]		= PRE_EX(SVM_EXIT_ICEBP),
	[x86_intercept_hlt]		= POST_EX(SVM_EXIT_HLT),
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	[x86_intercept_in]		= POST_EX(SVM_EXIT_IOIO),
	[x86_intercept_ins]		= POST_EX(SVM_EXIT_IOIO),
	[x86_intercept_out]		= POST_EX(SVM_EXIT_IOIO),
	[x86_intercept_outs]		= POST_EX(SVM_EXIT_IOIO),
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};

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#undef PRE_EX
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#undef POST_EX
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#undef POST_MEM
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static int svm_check_intercept(struct kvm_vcpu *vcpu,
			       struct x86_instruction_info *info,
			       enum x86_intercept_stage stage)
{
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	struct vcpu_svm *svm = to_svm(vcpu);
	int vmexit, ret = X86EMUL_CONTINUE;
	struct __x86_intercept icpt_info;
	struct vmcb *vmcb = svm->vmcb;

	if (info->intercept >= ARRAY_SIZE(x86_intercept_map))
		goto out;

	icpt_info = x86_intercept_map[info->intercept];

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	if (stage != icpt_info.stage)
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		goto out;

	switch (icpt_info.exit_code) {
	case SVM_EXIT_READ_CR0:
		if (info->intercept == x86_intercept_cr_read)
			icpt_info.exit_code += info->modrm_reg;
		break;
	case SVM_EXIT_WRITE_CR0: {
		unsigned long cr0, val;
		u64 intercept;

		if (info->intercept == x86_intercept_cr_write)
			icpt_info.exit_code += info->modrm_reg;

		if (icpt_info.exit_code != SVM_EXIT_WRITE_CR0)
			break;

		intercept = svm->nested.intercept;

		if (!(intercept & (1ULL << INTERCEPT_SELECTIVE_CR0)))
			break;

		cr0 = vcpu->arch.cr0 & ~SVM_CR0_SELECTIVE_MASK;
		val = info->src_val  & ~SVM_CR0_SELECTIVE_MASK;

		if (info->intercept == x86_intercept_lmsw) {
			cr0 &= 0xfUL;
			val &= 0xfUL;
			/* lmsw can't clear PE - catch this here */
			if (cr0 & X86_CR0_PE)
				val |= X86_CR0_PE;
		}

		if (cr0 ^ val)
			icpt_info.exit_code = SVM_EXIT_CR0_SEL_WRITE;

		break;
	}
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	case SVM_EXIT_READ_DR0:
	case SVM_EXIT_WRITE_DR0:
		icpt_info.exit_code += info->modrm_reg;
		break;
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	case SVM_EXIT_MSR:
		if (info->intercept == x86_intercept_wrmsr)
			vmcb->control.exit_info_1 = 1;
		else
			vmcb->control.exit_info_1 = 0;
		break;
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	case SVM_EXIT_PAUSE:
		/*
		 * We get this for NOP only, but pause
		 * is rep not, check this here
		 */
		if (info->rep_prefix != REPE_PREFIX)
			goto out;
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	case SVM_EXIT_IOIO: {
		u64 exit_info;
		u32 bytes;

		exit_info = (vcpu->arch.regs[VCPU_REGS_RDX] & 0xffff) << 16;

		if (info->intercept == x86_intercept_in ||
		    info->intercept == x86_intercept_ins) {
			exit_info |= SVM_IOIO_TYPE_MASK;
			bytes = info->src_bytes;
		} else {
			bytes = info->dst_bytes;
		}

		if (info->intercept == x86_intercept_outs ||
		    info->intercept == x86_intercept_ins)
			exit_info |= SVM_IOIO_STR_MASK;

		if (info->rep_prefix)
			exit_info |= SVM_IOIO_REP_MASK;

		bytes = min(bytes, 4u);

		exit_info |= bytes << SVM_IOIO_SIZE_SHIFT;

		exit_info |= (u32)info->ad_bytes << (SVM_IOIO_ASIZE_SHIFT - 1);

		vmcb->control.exit_info_1 = exit_info;
		vmcb->control.exit_info_2 = info->next_rip;

		break;
	}
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	default:
		break;
	}

	vmcb->control.next_rip  = info->next_rip;
	vmcb->control.exit_code = icpt_info.exit_code;
	vmexit = nested_svm_exit_handled(svm);

	ret = (vmexit == NESTED_EXIT_DONE) ? X86EMUL_INTERCEPTED
					   : X86EMUL_CONTINUE;

out:
	return ret;
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}

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static struct kvm_x86_ops svm_x86_ops = {
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	.cpu_has_kvm_support = has_svm,
	.disabled_by_bios = is_disabled,
	.hardware_setup = svm_hardware_setup,
	.hardware_unsetup = svm_hardware_unsetup,
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	.check_processor_compatibility = svm_check_processor_compat,
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	.hardware_enable = svm_hardware_enable,
	.hardware_disable = svm_hardware_disable,
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	.cpu_has_accelerated_tpr = svm_cpu_has_accelerated_tpr,
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	.vcpu_create = svm_create_vcpu,
	.vcpu_free = svm_free_vcpu,
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	.vcpu_reset = svm_vcpu_reset,
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	.prepare_guest_switch = svm_prepare_guest_switch,
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	.vcpu_load = svm_vcpu_load,
	.vcpu_put = svm_vcpu_put,

	.set_guest_debug = svm_guest_debug,
	.get_msr = svm_get_msr,
	.set_msr = svm_set_msr,
	.get_segment_base = svm_get_segment_base,
	.get_segment = svm_get_segment,
	.set_segment = svm_set_segment,
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	.get_cpl = svm_get_cpl,
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	.get_cs_db_l_bits = kvm_get_cs_db_l_bits,
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	.decache_cr0_guest_bits = svm_decache_cr0_guest_bits,
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	.decache_cr3 = svm_decache_cr3,
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	.decache_cr4_guest_bits = svm_decache_cr4_guest_bits,
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	.set_cr0 = svm_set_cr0,
	.set_cr3 = svm_set_cr3,
	.set_cr4 = svm_set_cr4,
	.set_efer = svm_set_efer,
	.get_idt = svm_get_idt,
	.set_idt = svm_set_idt,
	.get_gdt = svm_get_gdt,
	.set_gdt = svm_set_gdt,
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	.set_dr7 = svm_set_dr7,
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	.cache_reg = svm_cache_reg,
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	.get_rflags = svm_get_rflags,
	.set_rflags = svm_set_rflags,
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	.fpu_activate = svm_fpu_activate,
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	.fpu_deactivate = svm_fpu_deactivate,
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	.tlb_flush = svm_flush_tlb,

	.run = svm_vcpu_run,
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	.handle_exit = handle_exit,
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	.skip_emulated_instruction = skip_emulated_instruction,
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	.set_interrupt_shadow = svm_set_interrupt_shadow,
	.get_interrupt_shadow = svm_get_interrupt_shadow,
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	.patch_hypercall = svm_patch_hypercall,
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	.set_irq = svm_set_irq,
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	.set_nmi = svm_inject_nmi,
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	.queue_exception = svm_queue_exception,
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	.cancel_injection = svm_cancel_injection,
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	.interrupt_allowed = svm_interrupt_allowed,
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	.nmi_allowed = svm_nmi_allowed,
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	.get_nmi_mask = svm_get_nmi_mask,
	.set_nmi_mask = svm_set_nmi_mask,
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	.enable_nmi_window = enable_nmi_window,
	.enable_irq_window = enable_irq_window,
	.update_cr8_intercept = update_cr8_intercept,
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	.set_tss_addr = svm_set_tss_addr,
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	.get_tdp_level = get_npt_level,
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	.get_mt_mask = svm_get_mt_mask,
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	.get_exit_info = svm_get_exit_info,

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	.get_lpage_level = svm_get_lpage_level,
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	.cpuid_update = svm_cpuid_update,
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	.rdtscp_supported = svm_rdtscp_supported,
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	.set_supported_cpuid = svm_set_supported_cpuid,
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	.has_wbinvd_exit = svm_has_wbinvd_exit,
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	.set_tsc_khz = svm_set_tsc_khz,
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	.write_tsc_offset = svm_write_tsc_offset,
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	.adjust_tsc_offset = svm_adjust_tsc_offset,
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	.compute_tsc_offset = svm_compute_tsc_offset,
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	.read_l1_tsc = svm_read_l1_tsc,
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	.set_tdp_cr3 = set_tdp_cr3,
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	.check_intercept = svm_check_intercept,
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};

static int __init svm_init(void)
{
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	return kvm_init(&svm_x86_ops, sizeof(struct vcpu_svm),
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			__alignof__(struct vcpu_svm), THIS_MODULE);
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}

static void __exit svm_exit(void)
{
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	kvm_exit();
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}

module_init(svm_init)
module_exit(svm_exit)