nested.c 191.9 KB
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// SPDX-License-Identifier: GPL-2.0

#include <linux/frame.h>
#include <linux/percpu.h>

#include <asm/debugreg.h>
#include <asm/mmu_context.h>

#include "cpuid.h"
#include "hyperv.h"
#include "mmu.h"
#include "nested.h"
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#include "pmu.h"
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#include "trace.h"
#include "x86.h"

static bool __read_mostly enable_shadow_vmcs = 1;
module_param_named(enable_shadow_vmcs, enable_shadow_vmcs, bool, S_IRUGO);

static bool __read_mostly nested_early_check = 0;
module_param(nested_early_check, bool, S_IRUGO);

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#define CC(consistency_check)						\
({									\
	bool failed = (consistency_check);				\
	if (failed)							\
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		trace_kvm_nested_vmenter_failed(#consistency_check, 0);	\
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	failed;								\
})

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/*
 * Hyper-V requires all of these, so mark them as supported even though
 * they are just treated the same as all-context.
 */
#define VMX_VPID_EXTENT_SUPPORTED_MASK		\
	(VMX_VPID_EXTENT_INDIVIDUAL_ADDR_BIT |	\
	VMX_VPID_EXTENT_SINGLE_CONTEXT_BIT |	\
	VMX_VPID_EXTENT_GLOBAL_CONTEXT_BIT |	\
	VMX_VPID_EXTENT_SINGLE_NON_GLOBAL_BIT)

#define VMX_MISC_EMULATED_PREEMPTION_TIMER_RATE 5

enum {
	VMX_VMREAD_BITMAP,
	VMX_VMWRITE_BITMAP,
	VMX_BITMAP_NR
};
static unsigned long *vmx_bitmap[VMX_BITMAP_NR];

#define vmx_vmread_bitmap                    (vmx_bitmap[VMX_VMREAD_BITMAP])
#define vmx_vmwrite_bitmap                   (vmx_bitmap[VMX_VMWRITE_BITMAP])

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struct shadow_vmcs_field {
	u16	encoding;
	u16	offset;
};
static struct shadow_vmcs_field shadow_read_only_fields[] = {
#define SHADOW_FIELD_RO(x, y) { x, offsetof(struct vmcs12, y) },
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#include "vmcs_shadow_fields.h"
};
static int max_shadow_read_only_fields =
	ARRAY_SIZE(shadow_read_only_fields);

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static struct shadow_vmcs_field shadow_read_write_fields[] = {
#define SHADOW_FIELD_RW(x, y) { x, offsetof(struct vmcs12, y) },
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#include "vmcs_shadow_fields.h"
};
static int max_shadow_read_write_fields =
	ARRAY_SIZE(shadow_read_write_fields);

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static void init_vmcs_shadow_fields(void)
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{
	int i, j;

	memset(vmx_vmread_bitmap, 0xff, PAGE_SIZE);
	memset(vmx_vmwrite_bitmap, 0xff, PAGE_SIZE);

	for (i = j = 0; i < max_shadow_read_only_fields; i++) {
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		struct shadow_vmcs_field entry = shadow_read_only_fields[i];
		u16 field = entry.encoding;
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		if (vmcs_field_width(field) == VMCS_FIELD_WIDTH_U64 &&
		    (i + 1 == max_shadow_read_only_fields ||
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		     shadow_read_only_fields[i + 1].encoding != field + 1))
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			pr_err("Missing field from shadow_read_only_field %x\n",
			       field + 1);

		clear_bit(field, vmx_vmread_bitmap);
		if (field & 1)
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#ifdef CONFIG_X86_64
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			continue;
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#else
			entry.offset += sizeof(u32);
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#endif
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		shadow_read_only_fields[j++] = entry;
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	}
	max_shadow_read_only_fields = j;

	for (i = j = 0; i < max_shadow_read_write_fields; i++) {
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		struct shadow_vmcs_field entry = shadow_read_write_fields[i];
		u16 field = entry.encoding;
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		if (vmcs_field_width(field) == VMCS_FIELD_WIDTH_U64 &&
		    (i + 1 == max_shadow_read_write_fields ||
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		     shadow_read_write_fields[i + 1].encoding != field + 1))
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			pr_err("Missing field from shadow_read_write_field %x\n",
			       field + 1);

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		WARN_ONCE(field >= GUEST_ES_AR_BYTES &&
			  field <= GUEST_TR_AR_BYTES,
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			  "Update vmcs12_write_any() to drop reserved bits from AR_BYTES");
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		/*
		 * PML and the preemption timer can be emulated, but the
		 * processor cannot vmwrite to fields that don't exist
		 * on bare metal.
		 */
		switch (field) {
		case GUEST_PML_INDEX:
			if (!cpu_has_vmx_pml())
				continue;
			break;
		case VMX_PREEMPTION_TIMER_VALUE:
			if (!cpu_has_vmx_preemption_timer())
				continue;
			break;
		case GUEST_INTR_STATUS:
			if (!cpu_has_vmx_apicv())
				continue;
			break;
		default:
			break;
		}

		clear_bit(field, vmx_vmwrite_bitmap);
		clear_bit(field, vmx_vmread_bitmap);
		if (field & 1)
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#ifdef CONFIG_X86_64
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			continue;
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#else
			entry.offset += sizeof(u32);
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#endif
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		shadow_read_write_fields[j++] = entry;
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	}
	max_shadow_read_write_fields = j;
}

/*
 * The following 3 functions, nested_vmx_succeed()/failValid()/failInvalid(),
 * set the success or error code of an emulated VMX instruction (as specified
 * by Vol 2B, VMX Instruction Reference, "Conventions"), and skip the emulated
 * instruction.
 */
static int nested_vmx_succeed(struct kvm_vcpu *vcpu)
{
	vmx_set_rflags(vcpu, vmx_get_rflags(vcpu)
			& ~(X86_EFLAGS_CF | X86_EFLAGS_PF | X86_EFLAGS_AF |
			    X86_EFLAGS_ZF | X86_EFLAGS_SF | X86_EFLAGS_OF));
	return kvm_skip_emulated_instruction(vcpu);
}

static int nested_vmx_failInvalid(struct kvm_vcpu *vcpu)
{
	vmx_set_rflags(vcpu, (vmx_get_rflags(vcpu)
			& ~(X86_EFLAGS_PF | X86_EFLAGS_AF | X86_EFLAGS_ZF |
			    X86_EFLAGS_SF | X86_EFLAGS_OF))
			| X86_EFLAGS_CF);
	return kvm_skip_emulated_instruction(vcpu);
}

static int nested_vmx_failValid(struct kvm_vcpu *vcpu,
				u32 vm_instruction_error)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	/*
	 * failValid writes the error number to the current VMCS, which
	 * can't be done if there isn't a current VMCS.
	 */
	if (vmx->nested.current_vmptr == -1ull && !vmx->nested.hv_evmcs)
		return nested_vmx_failInvalid(vcpu);

	vmx_set_rflags(vcpu, (vmx_get_rflags(vcpu)
			& ~(X86_EFLAGS_CF | X86_EFLAGS_PF | X86_EFLAGS_AF |
			    X86_EFLAGS_SF | X86_EFLAGS_OF))
			| X86_EFLAGS_ZF);
	get_vmcs12(vcpu)->vm_instruction_error = vm_instruction_error;
	/*
	 * We don't need to force a shadow sync because
	 * VM_INSTRUCTION_ERROR is not shadowed
	 */
	return kvm_skip_emulated_instruction(vcpu);
}

static void nested_vmx_abort(struct kvm_vcpu *vcpu, u32 indicator)
{
	/* TODO: not to reset guest simply here. */
	kvm_make_request(KVM_REQ_TRIPLE_FAULT, vcpu);
	pr_debug_ratelimited("kvm: nested vmx abort, indicator %d\n", indicator);
}

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Marc Orr 已提交
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static inline bool vmx_control_verify(u32 control, u32 low, u32 high)
{
	return fixed_bits_valid(control, low, high);
}

static inline u64 vmx_control_msr(u32 low, u32 high)
{
	return low | ((u64)high << 32);
}

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static void vmx_disable_shadow_vmcs(struct vcpu_vmx *vmx)
{
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	secondary_exec_controls_clearbit(vmx, SECONDARY_EXEC_SHADOW_VMCS);
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	vmcs_write64(VMCS_LINK_POINTER, -1ull);
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	vmx->nested.need_vmcs12_to_shadow_sync = false;
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}

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

	if (!vmx->nested.hv_evmcs)
		return;

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	kvm_vcpu_unmap(vcpu, &vmx->nested.hv_evmcs_map, true);
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	vmx->nested.hv_evmcs_vmptr = 0;
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	vmx->nested.hv_evmcs = NULL;
}

/*
 * Free whatever needs to be freed from vmx->nested when L1 goes down, or
 * just stops using VMX.
 */
static void free_nested(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (!vmx->nested.vmxon && !vmx->nested.smm.vmxon)
		return;

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	kvm_clear_request(KVM_REQ_GET_VMCS12_PAGES, vcpu);

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	vmx->nested.vmxon = false;
	vmx->nested.smm.vmxon = false;
	free_vpid(vmx->nested.vpid02);
	vmx->nested.posted_intr_nv = -1;
	vmx->nested.current_vmptr = -1ull;
	if (enable_shadow_vmcs) {
		vmx_disable_shadow_vmcs(vmx);
		vmcs_clear(vmx->vmcs01.shadow_vmcs);
		free_vmcs(vmx->vmcs01.shadow_vmcs);
		vmx->vmcs01.shadow_vmcs = NULL;
	}
	kfree(vmx->nested.cached_vmcs12);
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	vmx->nested.cached_vmcs12 = NULL;
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	kfree(vmx->nested.cached_shadow_vmcs12);
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	vmx->nested.cached_shadow_vmcs12 = NULL;
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	/* Unpin physical memory we referred to in the vmcs02 */
	if (vmx->nested.apic_access_page) {
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		kvm_release_page_clean(vmx->nested.apic_access_page);
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		vmx->nested.apic_access_page = NULL;
	}
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	kvm_vcpu_unmap(vcpu, &vmx->nested.virtual_apic_map, true);
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	kvm_vcpu_unmap(vcpu, &vmx->nested.pi_desc_map, true);
	vmx->nested.pi_desc = NULL;
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	kvm_mmu_free_roots(vcpu, &vcpu->arch.guest_mmu, KVM_MMU_ROOTS_ALL);

	nested_release_evmcs(vcpu);

	free_loaded_vmcs(&vmx->nested.vmcs02);
}

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static void vmx_sync_vmcs_host_state(struct vcpu_vmx *vmx,
				     struct loaded_vmcs *prev)
{
	struct vmcs_host_state *dest, *src;

	if (unlikely(!vmx->guest_state_loaded))
		return;

	src = &prev->host_state;
	dest = &vmx->loaded_vmcs->host_state;

	vmx_set_host_fs_gs(dest, src->fs_sel, src->gs_sel, src->fs_base, src->gs_base);
	dest->ldt_sel = src->ldt_sel;
#ifdef CONFIG_X86_64
	dest->ds_sel = src->ds_sel;
	dest->es_sel = src->es_sel;
#endif
}

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static void vmx_switch_vmcs(struct kvm_vcpu *vcpu, struct loaded_vmcs *vmcs)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
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	struct loaded_vmcs *prev;
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	int cpu;

	if (vmx->loaded_vmcs == vmcs)
		return;

	cpu = get_cpu();
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	prev = vmx->loaded_vmcs;
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	vmx->loaded_vmcs = vmcs;
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	vmx_vcpu_load_vmcs(vcpu, cpu);
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	vmx_sync_vmcs_host_state(vmx, prev);
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	put_cpu();

	vmx_segment_cache_clear(vmx);
}

/*
 * Ensure that the current vmcs of the logical processor is the
 * vmcs01 of the vcpu before calling free_nested().
 */
void nested_vmx_free_vcpu(struct kvm_vcpu *vcpu)
{
	vcpu_load(vcpu);
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	vmx_leave_nested(vcpu);
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	vmx_switch_vmcs(vcpu, &to_vmx(vcpu)->vmcs01);
	free_nested(vcpu);
	vcpu_put(vcpu);
}

static void nested_ept_inject_page_fault(struct kvm_vcpu *vcpu,
		struct x86_exception *fault)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u32 exit_reason;
	unsigned long exit_qualification = vcpu->arch.exit_qualification;

	if (vmx->nested.pml_full) {
		exit_reason = EXIT_REASON_PML_FULL;
		vmx->nested.pml_full = false;
		exit_qualification &= INTR_INFO_UNBLOCK_NMI;
	} else if (fault->error_code & PFERR_RSVD_MASK)
		exit_reason = EXIT_REASON_EPT_MISCONFIG;
	else
		exit_reason = EXIT_REASON_EPT_VIOLATION;

	nested_vmx_vmexit(vcpu, exit_reason, 0, exit_qualification);
	vmcs12->guest_physical_address = fault->address;
}

static void nested_ept_init_mmu_context(struct kvm_vcpu *vcpu)
{
	WARN_ON(mmu_is_nested(vcpu));

	vcpu->arch.mmu = &vcpu->arch.guest_mmu;
	kvm_init_shadow_ept_mmu(vcpu,
			to_vmx(vcpu)->nested.msrs.ept_caps &
			VMX_EPT_EXECUTE_ONLY_BIT,
			nested_ept_ad_enabled(vcpu),
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			nested_ept_get_eptp(vcpu));
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	vcpu->arch.mmu->get_guest_pgd     = nested_ept_get_eptp;
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	vcpu->arch.mmu->inject_page_fault = nested_ept_inject_page_fault;
	vcpu->arch.mmu->get_pdptr         = kvm_pdptr_read;

	vcpu->arch.walk_mmu              = &vcpu->arch.nested_mmu;
}

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

static bool nested_vmx_is_page_fault_vmexit(struct vmcs12 *vmcs12,
					    u16 error_code)
{
	bool inequality, bit;

	bit = (vmcs12->exception_bitmap & (1u << PF_VECTOR)) != 0;
	inequality =
		(error_code & vmcs12->page_fault_error_code_mask) !=
		 vmcs12->page_fault_error_code_match;
	return inequality ^ bit;
}


/*
 * KVM wants to inject page-faults which it got to the guest. This function
 * checks whether in a nested guest, we need to inject them to L1 or L2.
 */
static int nested_vmx_check_exception(struct kvm_vcpu *vcpu, unsigned long *exit_qual)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	unsigned int nr = vcpu->arch.exception.nr;
	bool has_payload = vcpu->arch.exception.has_payload;
	unsigned long payload = vcpu->arch.exception.payload;

	if (nr == PF_VECTOR) {
		if (vcpu->arch.exception.nested_apf) {
			*exit_qual = vcpu->arch.apf.nested_apf_token;
			return 1;
		}
		if (nested_vmx_is_page_fault_vmexit(vmcs12,
						    vcpu->arch.exception.error_code)) {
			*exit_qual = has_payload ? payload : vcpu->arch.cr2;
			return 1;
		}
	} else if (vmcs12->exception_bitmap & (1u << nr)) {
		if (nr == DB_VECTOR) {
			if (!has_payload) {
				payload = vcpu->arch.dr6;
				payload &= ~(DR6_FIXED_1 | DR6_BT);
				payload ^= DR6_RTM;
			}
			*exit_qual = payload;
		} else
			*exit_qual = 0;
		return 1;
	}

	return 0;
}


static void vmx_inject_page_fault_nested(struct kvm_vcpu *vcpu,
		struct x86_exception *fault)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);

	WARN_ON(!is_guest_mode(vcpu));

	if (nested_vmx_is_page_fault_vmexit(vmcs12, fault->error_code) &&
		!to_vmx(vcpu)->nested.nested_run_pending) {
		vmcs12->vm_exit_intr_error_code = fault->error_code;
		nested_vmx_vmexit(vcpu, EXIT_REASON_EXCEPTION_NMI,
				  PF_VECTOR | INTR_TYPE_HARD_EXCEPTION |
				  INTR_INFO_DELIVER_CODE_MASK | INTR_INFO_VALID_MASK,
				  fault->address);
	} else {
		kvm_inject_page_fault(vcpu, fault);
	}
}

static bool page_address_valid(struct kvm_vcpu *vcpu, gpa_t gpa)
{
	return PAGE_ALIGNED(gpa) && !(gpa >> cpuid_maxphyaddr(vcpu));
}

static int nested_vmx_check_io_bitmap_controls(struct kvm_vcpu *vcpu,
					       struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has(vmcs12, CPU_BASED_USE_IO_BITMAPS))
		return 0;

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	if (CC(!page_address_valid(vcpu, vmcs12->io_bitmap_a)) ||
	    CC(!page_address_valid(vcpu, vmcs12->io_bitmap_b)))
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		return -EINVAL;

	return 0;
}

static int nested_vmx_check_msr_bitmap_controls(struct kvm_vcpu *vcpu,
						struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has(vmcs12, CPU_BASED_USE_MSR_BITMAPS))
		return 0;

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	if (CC(!page_address_valid(vcpu, vmcs12->msr_bitmap)))
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		return -EINVAL;

	return 0;
}

static int nested_vmx_check_tpr_shadow_controls(struct kvm_vcpu *vcpu,
						struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has(vmcs12, CPU_BASED_TPR_SHADOW))
		return 0;

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	if (CC(!page_address_valid(vcpu, vmcs12->virtual_apic_page_addr)))
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		return -EINVAL;

	return 0;
}

/*
 * Check if MSR is intercepted for L01 MSR bitmap.
 */
static bool msr_write_intercepted_l01(struct kvm_vcpu *vcpu, u32 msr)
{
	unsigned long *msr_bitmap;
	int f = sizeof(unsigned long);

	if (!cpu_has_vmx_msr_bitmap())
		return true;

	msr_bitmap = to_vmx(vcpu)->vmcs01.msr_bitmap;

	if (msr <= 0x1fff) {
		return !!test_bit(msr, msr_bitmap + 0x800 / f);
	} else if ((msr >= 0xc0000000) && (msr <= 0xc0001fff)) {
		msr &= 0x1fff;
		return !!test_bit(msr, msr_bitmap + 0xc00 / f);
	}

	return true;
}

/*
 * If a msr is allowed by L0, we should check whether it is allowed by L1.
 * The corresponding bit will be cleared unless both of L0 and L1 allow it.
 */
static void nested_vmx_disable_intercept_for_msr(unsigned long *msr_bitmap_l1,
					       unsigned long *msr_bitmap_nested,
					       u32 msr, int type)
{
	int f = sizeof(unsigned long);

	/*
	 * See Intel PRM Vol. 3, 20.6.9 (MSR-Bitmap Address). Early manuals
	 * have the write-low and read-high bitmap offsets the wrong way round.
	 * We can control MSRs 0x00000000-0x00001fff and 0xc0000000-0xc0001fff.
	 */
	if (msr <= 0x1fff) {
		if (type & MSR_TYPE_R &&
		   !test_bit(msr, msr_bitmap_l1 + 0x000 / f))
			/* read-low */
			__clear_bit(msr, msr_bitmap_nested + 0x000 / f);

		if (type & MSR_TYPE_W &&
		   !test_bit(msr, msr_bitmap_l1 + 0x800 / f))
			/* write-low */
			__clear_bit(msr, msr_bitmap_nested + 0x800 / f);

	} else if ((msr >= 0xc0000000) && (msr <= 0xc0001fff)) {
		msr &= 0x1fff;
		if (type & MSR_TYPE_R &&
		   !test_bit(msr, msr_bitmap_l1 + 0x400 / f))
			/* read-high */
			__clear_bit(msr, msr_bitmap_nested + 0x400 / f);

		if (type & MSR_TYPE_W &&
		   !test_bit(msr, msr_bitmap_l1 + 0xc00 / f))
			/* write-high */
			__clear_bit(msr, msr_bitmap_nested + 0xc00 / f);

	}
}

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static inline void enable_x2apic_msr_intercepts(unsigned long *msr_bitmap)
{
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	int msr;

	for (msr = 0x800; msr <= 0x8ff; msr += BITS_PER_LONG) {
		unsigned word = msr / BITS_PER_LONG;

		msr_bitmap[word] = ~0;
		msr_bitmap[word + (0x800 / sizeof(long))] = ~0;
	}
}

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/*
 * Merge L0's and L1's MSR bitmap, return false to indicate that
 * we do not use the hardware.
 */
static inline bool nested_vmx_prepare_msr_bitmap(struct kvm_vcpu *vcpu,
						 struct vmcs12 *vmcs12)
{
	int msr;
	unsigned long *msr_bitmap_l1;
	unsigned long *msr_bitmap_l0 = to_vmx(vcpu)->nested.vmcs02.msr_bitmap;
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	struct kvm_host_map *map = &to_vmx(vcpu)->nested.msr_bitmap_map;
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	/* Nothing to do if the MSR bitmap is not in use.  */
	if (!cpu_has_vmx_msr_bitmap() ||
	    !nested_cpu_has(vmcs12, CPU_BASED_USE_MSR_BITMAPS))
		return false;

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	if (kvm_vcpu_map(vcpu, gpa_to_gfn(vmcs12->msr_bitmap), map))
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		return false;

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	msr_bitmap_l1 = (unsigned long *)map->hva;
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	/*
	 * To keep the control flow simple, pay eight 8-byte writes (sixteen
	 * 4-byte writes on 32-bit systems) up front to enable intercepts for
	 * the x2APIC MSR range and selectively disable them below.
	 */
	enable_x2apic_msr_intercepts(msr_bitmap_l0);

	if (nested_cpu_has_virt_x2apic_mode(vmcs12)) {
		if (nested_cpu_has_apic_reg_virt(vmcs12)) {
			/*
			 * L0 need not intercept reads for MSRs between 0x800
			 * and 0x8ff, it just lets the processor take the value
			 * from the virtual-APIC page; take those 256 bits
			 * directly from the L1 bitmap.
			 */
			for (msr = 0x800; msr <= 0x8ff; msr += BITS_PER_LONG) {
				unsigned word = msr / BITS_PER_LONG;

				msr_bitmap_l0[word] = msr_bitmap_l1[word];
			}
		}
601 602 603

		nested_vmx_disable_intercept_for_msr(
			msr_bitmap_l1, msr_bitmap_l0,
604
			X2APIC_MSR(APIC_TASKPRI),
605
			MSR_TYPE_R | MSR_TYPE_W);
606 607 608 609 610 611 612 613 614 615 616

		if (nested_cpu_has_vid(vmcs12)) {
			nested_vmx_disable_intercept_for_msr(
				msr_bitmap_l1, msr_bitmap_l0,
				X2APIC_MSR(APIC_EOI),
				MSR_TYPE_W);
			nested_vmx_disable_intercept_for_msr(
				msr_bitmap_l1, msr_bitmap_l0,
				X2APIC_MSR(APIC_SELF_IPI),
				MSR_TYPE_W);
		}
617 618
	}

619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642
	/* KVM unconditionally exposes the FS/GS base MSRs to L1. */
	nested_vmx_disable_intercept_for_msr(msr_bitmap_l1, msr_bitmap_l0,
					     MSR_FS_BASE, MSR_TYPE_RW);

	nested_vmx_disable_intercept_for_msr(msr_bitmap_l1, msr_bitmap_l0,
					     MSR_GS_BASE, MSR_TYPE_RW);

	nested_vmx_disable_intercept_for_msr(msr_bitmap_l1, msr_bitmap_l0,
					     MSR_KERNEL_GS_BASE, MSR_TYPE_RW);

	/*
	 * Checking the L0->L1 bitmap is trying to verify two things:
	 *
	 * 1. L0 gave a permission to L1 to actually passthrough the MSR. This
	 *    ensures that we do not accidentally generate an L02 MSR bitmap
	 *    from the L12 MSR bitmap that is too permissive.
	 * 2. That L1 or L2s have actually used the MSR. This avoids
	 *    unnecessarily merging of the bitmap if the MSR is unused. This
	 *    works properly because we only update the L01 MSR bitmap lazily.
	 *    So even if L0 should pass L1 these MSRs, the L01 bitmap is only
	 *    updated to reflect this when L1 (or its L2s) actually write to
	 *    the MSR.
	 */
	if (!msr_write_intercepted_l01(vcpu, MSR_IA32_SPEC_CTRL))
643 644 645 646 647
		nested_vmx_disable_intercept_for_msr(
					msr_bitmap_l1, msr_bitmap_l0,
					MSR_IA32_SPEC_CTRL,
					MSR_TYPE_R | MSR_TYPE_W);

648
	if (!msr_write_intercepted_l01(vcpu, MSR_IA32_PRED_CMD))
649 650 651 652 653
		nested_vmx_disable_intercept_for_msr(
					msr_bitmap_l1, msr_bitmap_l0,
					MSR_IA32_PRED_CMD,
					MSR_TYPE_W);

654
	kvm_vcpu_unmap(vcpu, &to_vmx(vcpu)->nested.msr_bitmap_map, false);
655 656 657 658 659 660 661

	return true;
}

static void nested_cache_shadow_vmcs12(struct kvm_vcpu *vcpu,
				       struct vmcs12 *vmcs12)
{
662
	struct kvm_host_map map;
663 664 665 666 667 668 669 670
	struct vmcs12 *shadow;

	if (!nested_cpu_has_shadow_vmcs(vmcs12) ||
	    vmcs12->vmcs_link_pointer == -1ull)
		return;

	shadow = get_shadow_vmcs12(vcpu);

671 672
	if (kvm_vcpu_map(vcpu, gpa_to_gfn(vmcs12->vmcs_link_pointer), &map))
		return;
673

674 675
	memcpy(shadow, map.hva, VMCS12_SIZE);
	kvm_vcpu_unmap(vcpu, &map, false);
676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709
}

static void nested_flush_cached_shadow_vmcs12(struct kvm_vcpu *vcpu,
					      struct vmcs12 *vmcs12)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (!nested_cpu_has_shadow_vmcs(vmcs12) ||
	    vmcs12->vmcs_link_pointer == -1ull)
		return;

	kvm_write_guest(vmx->vcpu.kvm, vmcs12->vmcs_link_pointer,
			get_shadow_vmcs12(vcpu), VMCS12_SIZE);
}

/*
 * In nested virtualization, check if L1 has set
 * VM_EXIT_ACK_INTR_ON_EXIT
 */
static bool nested_exit_intr_ack_set(struct kvm_vcpu *vcpu)
{
	return get_vmcs12(vcpu)->vm_exit_controls &
		VM_EXIT_ACK_INTR_ON_EXIT;
}

static bool nested_exit_on_nmi(struct kvm_vcpu *vcpu)
{
	return nested_cpu_has_nmi_exiting(get_vmcs12(vcpu));
}

static int nested_vmx_check_apic_access_controls(struct kvm_vcpu *vcpu,
					  struct vmcs12 *vmcs12)
{
	if (nested_cpu_has2(vmcs12, SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES) &&
710
	    CC(!page_address_valid(vcpu, vmcs12->apic_access_addr)))
711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728
		return -EINVAL;
	else
		return 0;
}

static int nested_vmx_check_apicv_controls(struct kvm_vcpu *vcpu,
					   struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has_virt_x2apic_mode(vmcs12) &&
	    !nested_cpu_has_apic_reg_virt(vmcs12) &&
	    !nested_cpu_has_vid(vmcs12) &&
	    !nested_cpu_has_posted_intr(vmcs12))
		return 0;

	/*
	 * If virtualize x2apic mode is enabled,
	 * virtualize apic access must be disabled.
	 */
729 730
	if (CC(nested_cpu_has_virt_x2apic_mode(vmcs12) &&
	       nested_cpu_has2(vmcs12, SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES)))
731 732 733 734 735 736
		return -EINVAL;

	/*
	 * If virtual interrupt delivery is enabled,
	 * we must exit on external interrupts.
	 */
737
	if (CC(nested_cpu_has_vid(vmcs12) && !nested_exit_on_intr(vcpu)))
738 739 740 741 742 743 744 745 746 747
		return -EINVAL;

	/*
	 * bits 15:8 should be zero in posted_intr_nv,
	 * the descriptor address has been already checked
	 * in nested_get_vmcs12_pages.
	 *
	 * bits 5:0 of posted_intr_desc_addr should be zero.
	 */
	if (nested_cpu_has_posted_intr(vmcs12) &&
748 749 750 751 752
	   (CC(!nested_cpu_has_vid(vmcs12)) ||
	    CC(!nested_exit_intr_ack_set(vcpu)) ||
	    CC((vmcs12->posted_intr_nv & 0xff00)) ||
	    CC((vmcs12->posted_intr_desc_addr & 0x3f)) ||
	    CC((vmcs12->posted_intr_desc_addr >> cpuid_maxphyaddr(vcpu)))))
753 754 755
		return -EINVAL;

	/* tpr shadow is needed by all apicv features. */
756
	if (CC(!nested_cpu_has(vmcs12, CPU_BASED_TPR_SHADOW)))
757 758 759 760 761 762
		return -EINVAL;

	return 0;
}

static int nested_vmx_check_msr_switch(struct kvm_vcpu *vcpu,
763
				       u32 count, u64 addr)
764 765 766 767 768 769 770
{
	int maxphyaddr;

	if (count == 0)
		return 0;
	maxphyaddr = cpuid_maxphyaddr(vcpu);
	if (!IS_ALIGNED(addr, 16) || addr >> maxphyaddr ||
771
	    (addr + count * sizeof(struct vmx_msr_entry) - 1) >> maxphyaddr)
772
		return -EINVAL;
773

774 775 776
	return 0;
}

777 778
static int nested_vmx_check_exit_msr_switch_controls(struct kvm_vcpu *vcpu,
						     struct vmcs12 *vmcs12)
779
{
780 781 782 783 784 785
	if (CC(nested_vmx_check_msr_switch(vcpu,
					   vmcs12->vm_exit_msr_load_count,
					   vmcs12->vm_exit_msr_load_addr)) ||
	    CC(nested_vmx_check_msr_switch(vcpu,
					   vmcs12->vm_exit_msr_store_count,
					   vmcs12->vm_exit_msr_store_addr)))
786
		return -EINVAL;
787

788 789 790
	return 0;
}

791 792
static int nested_vmx_check_entry_msr_switch_controls(struct kvm_vcpu *vcpu,
                                                      struct vmcs12 *vmcs12)
793
{
794 795 796
	if (CC(nested_vmx_check_msr_switch(vcpu,
					   vmcs12->vm_entry_msr_load_count,
					   vmcs12->vm_entry_msr_load_addr)))
797 798 799 800 801
                return -EINVAL;

	return 0;
}

802 803 804 805 806 807
static int nested_vmx_check_pml_controls(struct kvm_vcpu *vcpu,
					 struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has_pml(vmcs12))
		return 0;

808 809
	if (CC(!nested_cpu_has_ept(vmcs12)) ||
	    CC(!page_address_valid(vcpu, vmcs12->pml_address)))
810 811 812 813 814 815 816 817
		return -EINVAL;

	return 0;
}

static int nested_vmx_check_unrestricted_guest_controls(struct kvm_vcpu *vcpu,
							struct vmcs12 *vmcs12)
{
818 819
	if (CC(nested_cpu_has2(vmcs12, SECONDARY_EXEC_UNRESTRICTED_GUEST) &&
	       !nested_cpu_has_ept(vmcs12)))
820 821 822 823 824 825 826
		return -EINVAL;
	return 0;
}

static int nested_vmx_check_mode_based_ept_exec_controls(struct kvm_vcpu *vcpu,
							 struct vmcs12 *vmcs12)
{
827 828
	if (CC(nested_cpu_has2(vmcs12, SECONDARY_EXEC_MODE_BASED_EPT_EXEC) &&
	       !nested_cpu_has_ept(vmcs12)))
829 830 831 832 833 834 835 836 837 838
		return -EINVAL;
	return 0;
}

static int nested_vmx_check_shadow_vmcs_controls(struct kvm_vcpu *vcpu,
						 struct vmcs12 *vmcs12)
{
	if (!nested_cpu_has_shadow_vmcs(vmcs12))
		return 0;

839 840
	if (CC(!page_address_valid(vcpu, vmcs12->vmread_bitmap)) ||
	    CC(!page_address_valid(vcpu, vmcs12->vmwrite_bitmap)))
841 842 843 844 845 846 847 848 849
		return -EINVAL;

	return 0;
}

static int nested_vmx_msr_check_common(struct kvm_vcpu *vcpu,
				       struct vmx_msr_entry *e)
{
	/* x2APIC MSR accesses are not allowed */
850
	if (CC(vcpu->arch.apic_base & X2APIC_ENABLE && e->index >> 8 == 0x8))
851
		return -EINVAL;
852 853
	if (CC(e->index == MSR_IA32_UCODE_WRITE) || /* SDM Table 35-2 */
	    CC(e->index == MSR_IA32_UCODE_REV))
854
		return -EINVAL;
855
	if (CC(e->reserved != 0))
856 857 858 859 860 861 862
		return -EINVAL;
	return 0;
}

static int nested_vmx_load_msr_check(struct kvm_vcpu *vcpu,
				     struct vmx_msr_entry *e)
{
863 864 865
	if (CC(e->index == MSR_FS_BASE) ||
	    CC(e->index == MSR_GS_BASE) ||
	    CC(e->index == MSR_IA32_SMM_MONITOR_CTL) || /* SMM is not supported */
866 867 868 869 870 871 872 873
	    nested_vmx_msr_check_common(vcpu, e))
		return -EINVAL;
	return 0;
}

static int nested_vmx_store_msr_check(struct kvm_vcpu *vcpu,
				      struct vmx_msr_entry *e)
{
874
	if (CC(e->index == MSR_IA32_SMBASE) || /* SMM is not supported */
875 876 877 878 879
	    nested_vmx_msr_check_common(vcpu, e))
		return -EINVAL;
	return 0;
}

M
Marc Orr 已提交
880 881 882 883 884 885 886 887 888
static u32 nested_vmx_max_atomic_switch_msrs(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u64 vmx_misc = vmx_control_msr(vmx->nested.msrs.misc_low,
				       vmx->nested.msrs.misc_high);

	return (vmx_misc_max_msr(vmx_misc) + 1) * VMX_MISC_MSR_LIST_MULTIPLIER;
}

889 890 891
/*
 * Load guest's/host's msr at nested entry/exit.
 * return 0 for success, entry index for failure.
M
Marc Orr 已提交
892 893 894 895 896
 *
 * One of the failure modes for MSR load/store is when a list exceeds the
 * virtual hardware's capacity. To maintain compatibility with hardware inasmuch
 * as possible, process all valid entries before failing rather than precheck
 * for a capacity violation.
897 898 899 900 901
 */
static u32 nested_vmx_load_msr(struct kvm_vcpu *vcpu, u64 gpa, u32 count)
{
	u32 i;
	struct vmx_msr_entry e;
M
Marc Orr 已提交
902
	u32 max_msr_list_size = nested_vmx_max_atomic_switch_msrs(vcpu);
903 904

	for (i = 0; i < count; i++) {
M
Marc Orr 已提交
905 906 907
		if (unlikely(i >= max_msr_list_size))
			goto fail;

908 909 910 911 912 913 914 915 916 917 918 919 920
		if (kvm_vcpu_read_guest(vcpu, gpa + i * sizeof(e),
					&e, sizeof(e))) {
			pr_debug_ratelimited(
				"%s cannot read MSR entry (%u, 0x%08llx)\n",
				__func__, i, gpa + i * sizeof(e));
			goto fail;
		}
		if (nested_vmx_load_msr_check(vcpu, &e)) {
			pr_debug_ratelimited(
				"%s check failed (%u, 0x%x, 0x%x)\n",
				__func__, i, e.index, e.reserved);
			goto fail;
		}
921
		if (kvm_set_msr(vcpu, e.index, e.value)) {
922 923 924 925 926 927 928 929 930 931 932
			pr_debug_ratelimited(
				"%s cannot write MSR (%u, 0x%x, 0x%llx)\n",
				__func__, i, e.index, e.value);
			goto fail;
		}
	}
	return 0;
fail:
	return i + 1;
}

933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963
static bool nested_vmx_get_vmexit_msr_value(struct kvm_vcpu *vcpu,
					    u32 msr_index,
					    u64 *data)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	/*
	 * If the L0 hypervisor stored a more accurate value for the TSC that
	 * does not include the time taken for emulation of the L2->L1
	 * VM-exit in L0, use the more accurate value.
	 */
	if (msr_index == MSR_IA32_TSC) {
		int index = vmx_find_msr_index(&vmx->msr_autostore.guest,
					       MSR_IA32_TSC);

		if (index >= 0) {
			u64 val = vmx->msr_autostore.guest.val[index].value;

			*data = kvm_read_l1_tsc(vcpu, val);
			return true;
		}
	}

	if (kvm_get_msr(vcpu, msr_index, data)) {
		pr_debug_ratelimited("%s cannot read MSR (0x%x)\n", __func__,
			msr_index);
		return false;
	}
	return true;
}

964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983
static bool read_and_check_msr_entry(struct kvm_vcpu *vcpu, u64 gpa, int i,
				     struct vmx_msr_entry *e)
{
	if (kvm_vcpu_read_guest(vcpu,
				gpa + i * sizeof(*e),
				e, 2 * sizeof(u32))) {
		pr_debug_ratelimited(
			"%s cannot read MSR entry (%u, 0x%08llx)\n",
			__func__, i, gpa + i * sizeof(*e));
		return false;
	}
	if (nested_vmx_store_msr_check(vcpu, e)) {
		pr_debug_ratelimited(
			"%s check failed (%u, 0x%x, 0x%x)\n",
			__func__, i, e->index, e->reserved);
		return false;
	}
	return true;
}

984 985
static int nested_vmx_store_msr(struct kvm_vcpu *vcpu, u64 gpa, u32 count)
{
986
	u64 data;
987 988
	u32 i;
	struct vmx_msr_entry e;
M
Marc Orr 已提交
989
	u32 max_msr_list_size = nested_vmx_max_atomic_switch_msrs(vcpu);
990 991

	for (i = 0; i < count; i++) {
M
Marc Orr 已提交
992 993 994
		if (unlikely(i >= max_msr_list_size))
			return -EINVAL;

995
		if (!read_and_check_msr_entry(vcpu, gpa, i, &e))
996
			return -EINVAL;
997

998
		if (!nested_vmx_get_vmexit_msr_value(vcpu, e.index, &data))
999
			return -EINVAL;
1000

1001 1002 1003
		if (kvm_vcpu_write_guest(vcpu,
					 gpa + i * sizeof(e) +
					     offsetof(struct vmx_msr_entry, value),
1004
					 &data, sizeof(data))) {
1005 1006
			pr_debug_ratelimited(
				"%s cannot write MSR (%u, 0x%x, 0x%llx)\n",
1007
				__func__, i, e.index, data);
1008 1009 1010 1011 1012 1013
			return -EINVAL;
		}
	}
	return 0;
}

1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067
static bool nested_msr_store_list_has_msr(struct kvm_vcpu *vcpu, u32 msr_index)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	u32 count = vmcs12->vm_exit_msr_store_count;
	u64 gpa = vmcs12->vm_exit_msr_store_addr;
	struct vmx_msr_entry e;
	u32 i;

	for (i = 0; i < count; i++) {
		if (!read_and_check_msr_entry(vcpu, gpa, i, &e))
			return false;

		if (e.index == msr_index)
			return true;
	}
	return false;
}

static void prepare_vmx_msr_autostore_list(struct kvm_vcpu *vcpu,
					   u32 msr_index)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmx_msrs *autostore = &vmx->msr_autostore.guest;
	bool in_vmcs12_store_list;
	int msr_autostore_index;
	bool in_autostore_list;
	int last;

	msr_autostore_index = vmx_find_msr_index(autostore, msr_index);
	in_autostore_list = msr_autostore_index >= 0;
	in_vmcs12_store_list = nested_msr_store_list_has_msr(vcpu, msr_index);

	if (in_vmcs12_store_list && !in_autostore_list) {
		if (autostore->nr == NR_LOADSTORE_MSRS) {
			/*
			 * Emulated VMEntry does not fail here.  Instead a less
			 * accurate value will be returned by
			 * nested_vmx_get_vmexit_msr_value() using kvm_get_msr()
			 * instead of reading the value from the vmcs02 VMExit
			 * MSR-store area.
			 */
			pr_warn_ratelimited(
				"Not enough msr entries in msr_autostore.  Can't add msr %x\n",
				msr_index);
			return;
		}
		last = autostore->nr++;
		autostore->val[last].index = msr_index;
	} else if (!in_vmcs12_store_list && in_autostore_list) {
		last = --autostore->nr;
		autostore->val[msr_autostore_index] = autostore->val[last];
	}
}

1068 1069 1070 1071 1072 1073 1074 1075 1076
static bool nested_cr3_valid(struct kvm_vcpu *vcpu, unsigned long val)
{
	unsigned long invalid_mask;

	invalid_mask = (~0ULL) << cpuid_maxphyaddr(vcpu);
	return (val & invalid_mask) == 0;
}

/*
1077 1078 1079 1080
 * Load guest's/host's cr3 at nested entry/exit.  @nested_ept is true if we are
 * emulating VM-Entry into a guest with EPT enabled.  On failure, the expected
 * Exit Qualification (for a VM-Entry consistency check VM-Exit) is assigned to
 * @entry_failure_code.
1081 1082 1083 1084 1085
 */
static int nested_vmx_load_cr3(struct kvm_vcpu *vcpu, unsigned long cr3, bool nested_ept,
			       u32 *entry_failure_code)
{
	if (cr3 != kvm_read_cr3(vcpu) || (!nested_ept && pdptrs_changed(vcpu))) {
1086
		if (CC(!nested_cr3_valid(vcpu, cr3))) {
1087
			*entry_failure_code = ENTRY_FAIL_DEFAULT;
1088
			return -EINVAL;
1089 1090 1091 1092 1093 1094
		}

		/*
		 * If PAE paging and EPT are both on, CR3 is not used by the CPU and
		 * must not be dereferenced.
		 */
1095
		if (is_pae_paging(vcpu) && !nested_ept) {
1096
			if (CC(!load_pdptrs(vcpu, vcpu->arch.walk_mmu, cr3))) {
1097
				*entry_failure_code = ENTRY_FAIL_PDPTE;
1098
				return -EINVAL;
1099 1100 1101 1102 1103 1104 1105 1106
			}
		}
	}

	if (!nested_ept)
		kvm_mmu_new_cr3(vcpu, cr3, false);

	vcpu->arch.cr3 = cr3;
1107
	kvm_register_mark_available(vcpu, VCPU_EXREG_CR3);
1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118

	kvm_init_mmu(vcpu, false);

	return 0;
}

/*
 * Returns if KVM is able to config CPU to tag TLB entries
 * populated by L2 differently than TLB entries populated
 * by L1.
 *
1119 1120 1121
 * If L0 uses EPT, L1 and L2 run with different EPTP because
 * guest_mode is part of kvm_mmu_page_role. Thus, TLB entries
 * are tagged with different EPTP.
1122 1123 1124 1125 1126 1127 1128 1129 1130
 *
 * If L1 uses VPID and we allocated a vpid02, TLB entries are tagged
 * with different VPID (L1 entries are tagged with vmx->vpid
 * while L2 entries are tagged with vmx->nested.vpid02).
 */
static bool nested_has_guest_tlb_tag(struct kvm_vcpu *vcpu)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);

1131
	return enable_ept ||
1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360
	       (nested_cpu_has_vpid(vmcs12) && to_vmx(vcpu)->nested.vpid02);
}

static u16 nested_get_vpid02(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	return vmx->nested.vpid02 ? vmx->nested.vpid02 : vmx->vpid;
}

static bool is_bitwise_subset(u64 superset, u64 subset, u64 mask)
{
	superset &= mask;
	subset &= mask;

	return (superset | subset) == superset;
}

static int vmx_restore_vmx_basic(struct vcpu_vmx *vmx, u64 data)
{
	const u64 feature_and_reserved =
		/* feature (except bit 48; see below) */
		BIT_ULL(49) | BIT_ULL(54) | BIT_ULL(55) |
		/* reserved */
		BIT_ULL(31) | GENMASK_ULL(47, 45) | GENMASK_ULL(63, 56);
	u64 vmx_basic = vmx->nested.msrs.basic;

	if (!is_bitwise_subset(vmx_basic, data, feature_and_reserved))
		return -EINVAL;

	/*
	 * KVM does not emulate a version of VMX that constrains physical
	 * addresses of VMX structures (e.g. VMCS) to 32-bits.
	 */
	if (data & BIT_ULL(48))
		return -EINVAL;

	if (vmx_basic_vmcs_revision_id(vmx_basic) !=
	    vmx_basic_vmcs_revision_id(data))
		return -EINVAL;

	if (vmx_basic_vmcs_size(vmx_basic) > vmx_basic_vmcs_size(data))
		return -EINVAL;

	vmx->nested.msrs.basic = data;
	return 0;
}

static int
vmx_restore_control_msr(struct vcpu_vmx *vmx, u32 msr_index, u64 data)
{
	u64 supported;
	u32 *lowp, *highp;

	switch (msr_index) {
	case MSR_IA32_VMX_TRUE_PINBASED_CTLS:
		lowp = &vmx->nested.msrs.pinbased_ctls_low;
		highp = &vmx->nested.msrs.pinbased_ctls_high;
		break;
	case MSR_IA32_VMX_TRUE_PROCBASED_CTLS:
		lowp = &vmx->nested.msrs.procbased_ctls_low;
		highp = &vmx->nested.msrs.procbased_ctls_high;
		break;
	case MSR_IA32_VMX_TRUE_EXIT_CTLS:
		lowp = &vmx->nested.msrs.exit_ctls_low;
		highp = &vmx->nested.msrs.exit_ctls_high;
		break;
	case MSR_IA32_VMX_TRUE_ENTRY_CTLS:
		lowp = &vmx->nested.msrs.entry_ctls_low;
		highp = &vmx->nested.msrs.entry_ctls_high;
		break;
	case MSR_IA32_VMX_PROCBASED_CTLS2:
		lowp = &vmx->nested.msrs.secondary_ctls_low;
		highp = &vmx->nested.msrs.secondary_ctls_high;
		break;
	default:
		BUG();
	}

	supported = vmx_control_msr(*lowp, *highp);

	/* Check must-be-1 bits are still 1. */
	if (!is_bitwise_subset(data, supported, GENMASK_ULL(31, 0)))
		return -EINVAL;

	/* Check must-be-0 bits are still 0. */
	if (!is_bitwise_subset(supported, data, GENMASK_ULL(63, 32)))
		return -EINVAL;

	*lowp = data;
	*highp = data >> 32;
	return 0;
}

static int vmx_restore_vmx_misc(struct vcpu_vmx *vmx, u64 data)
{
	const u64 feature_and_reserved_bits =
		/* feature */
		BIT_ULL(5) | GENMASK_ULL(8, 6) | BIT_ULL(14) | BIT_ULL(15) |
		BIT_ULL(28) | BIT_ULL(29) | BIT_ULL(30) |
		/* reserved */
		GENMASK_ULL(13, 9) | BIT_ULL(31);
	u64 vmx_misc;

	vmx_misc = vmx_control_msr(vmx->nested.msrs.misc_low,
				   vmx->nested.msrs.misc_high);

	if (!is_bitwise_subset(vmx_misc, data, feature_and_reserved_bits))
		return -EINVAL;

	if ((vmx->nested.msrs.pinbased_ctls_high &
	     PIN_BASED_VMX_PREEMPTION_TIMER) &&
	    vmx_misc_preemption_timer_rate(data) !=
	    vmx_misc_preemption_timer_rate(vmx_misc))
		return -EINVAL;

	if (vmx_misc_cr3_count(data) > vmx_misc_cr3_count(vmx_misc))
		return -EINVAL;

	if (vmx_misc_max_msr(data) > vmx_misc_max_msr(vmx_misc))
		return -EINVAL;

	if (vmx_misc_mseg_revid(data) != vmx_misc_mseg_revid(vmx_misc))
		return -EINVAL;

	vmx->nested.msrs.misc_low = data;
	vmx->nested.msrs.misc_high = data >> 32;

	return 0;
}

static int vmx_restore_vmx_ept_vpid_cap(struct vcpu_vmx *vmx, u64 data)
{
	u64 vmx_ept_vpid_cap;

	vmx_ept_vpid_cap = vmx_control_msr(vmx->nested.msrs.ept_caps,
					   vmx->nested.msrs.vpid_caps);

	/* Every bit is either reserved or a feature bit. */
	if (!is_bitwise_subset(vmx_ept_vpid_cap, data, -1ULL))
		return -EINVAL;

	vmx->nested.msrs.ept_caps = data;
	vmx->nested.msrs.vpid_caps = data >> 32;
	return 0;
}

static int vmx_restore_fixed0_msr(struct vcpu_vmx *vmx, u32 msr_index, u64 data)
{
	u64 *msr;

	switch (msr_index) {
	case MSR_IA32_VMX_CR0_FIXED0:
		msr = &vmx->nested.msrs.cr0_fixed0;
		break;
	case MSR_IA32_VMX_CR4_FIXED0:
		msr = &vmx->nested.msrs.cr4_fixed0;
		break;
	default:
		BUG();
	}

	/*
	 * 1 bits (which indicates bits which "must-be-1" during VMX operation)
	 * must be 1 in the restored value.
	 */
	if (!is_bitwise_subset(data, *msr, -1ULL))
		return -EINVAL;

	*msr = data;
	return 0;
}

/*
 * Called when userspace is restoring VMX MSRs.
 *
 * Returns 0 on success, non-0 otherwise.
 */
int vmx_set_vmx_msr(struct kvm_vcpu *vcpu, u32 msr_index, u64 data)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	/*
	 * Don't allow changes to the VMX capability MSRs while the vCPU
	 * is in VMX operation.
	 */
	if (vmx->nested.vmxon)
		return -EBUSY;

	switch (msr_index) {
	case MSR_IA32_VMX_BASIC:
		return vmx_restore_vmx_basic(vmx, data);
	case MSR_IA32_VMX_PINBASED_CTLS:
	case MSR_IA32_VMX_PROCBASED_CTLS:
	case MSR_IA32_VMX_EXIT_CTLS:
	case MSR_IA32_VMX_ENTRY_CTLS:
		/*
		 * The "non-true" VMX capability MSRs are generated from the
		 * "true" MSRs, so we do not support restoring them directly.
		 *
		 * If userspace wants to emulate VMX_BASIC[55]=0, userspace
		 * should restore the "true" MSRs with the must-be-1 bits
		 * set according to the SDM Vol 3. A.2 "RESERVED CONTROLS AND
		 * DEFAULT SETTINGS".
		 */
		return -EINVAL;
	case MSR_IA32_VMX_TRUE_PINBASED_CTLS:
	case MSR_IA32_VMX_TRUE_PROCBASED_CTLS:
	case MSR_IA32_VMX_TRUE_EXIT_CTLS:
	case MSR_IA32_VMX_TRUE_ENTRY_CTLS:
	case MSR_IA32_VMX_PROCBASED_CTLS2:
		return vmx_restore_control_msr(vmx, msr_index, data);
	case MSR_IA32_VMX_MISC:
		return vmx_restore_vmx_misc(vmx, data);
	case MSR_IA32_VMX_CR0_FIXED0:
	case MSR_IA32_VMX_CR4_FIXED0:
		return vmx_restore_fixed0_msr(vmx, msr_index, data);
	case MSR_IA32_VMX_CR0_FIXED1:
	case MSR_IA32_VMX_CR4_FIXED1:
		/*
		 * These MSRs are generated based on the vCPU's CPUID, so we
		 * do not support restoring them directly.
		 */
		return -EINVAL;
	case MSR_IA32_VMX_EPT_VPID_CAP:
		return vmx_restore_vmx_ept_vpid_cap(vmx, data);
	case MSR_IA32_VMX_VMCS_ENUM:
		vmx->nested.msrs.vmcs_enum = data;
		return 0;
1361 1362 1363 1364 1365
	case MSR_IA32_VMX_VMFUNC:
		if (data & ~vmx->nested.msrs.vmfunc_controls)
			return -EINVAL;
		vmx->nested.msrs.vmfunc_controls = data;
		return 0;
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	default:
		/*
		 * The rest of the VMX capability MSRs do not support restore.
		 */
		return -EINVAL;
	}
}

/* Returns 0 on success, non-0 otherwise. */
int vmx_get_vmx_msr(struct nested_vmx_msrs *msrs, u32 msr_index, u64 *pdata)
{
	switch (msr_index) {
	case MSR_IA32_VMX_BASIC:
		*pdata = msrs->basic;
		break;
	case MSR_IA32_VMX_TRUE_PINBASED_CTLS:
	case MSR_IA32_VMX_PINBASED_CTLS:
		*pdata = vmx_control_msr(
			msrs->pinbased_ctls_low,
			msrs->pinbased_ctls_high);
		if (msr_index == MSR_IA32_VMX_PINBASED_CTLS)
			*pdata |= PIN_BASED_ALWAYSON_WITHOUT_TRUE_MSR;
		break;
	case MSR_IA32_VMX_TRUE_PROCBASED_CTLS:
	case MSR_IA32_VMX_PROCBASED_CTLS:
		*pdata = vmx_control_msr(
			msrs->procbased_ctls_low,
			msrs->procbased_ctls_high);
		if (msr_index == MSR_IA32_VMX_PROCBASED_CTLS)
			*pdata |= CPU_BASED_ALWAYSON_WITHOUT_TRUE_MSR;
		break;
	case MSR_IA32_VMX_TRUE_EXIT_CTLS:
	case MSR_IA32_VMX_EXIT_CTLS:
		*pdata = vmx_control_msr(
			msrs->exit_ctls_low,
			msrs->exit_ctls_high);
		if (msr_index == MSR_IA32_VMX_EXIT_CTLS)
			*pdata |= VM_EXIT_ALWAYSON_WITHOUT_TRUE_MSR;
		break;
	case MSR_IA32_VMX_TRUE_ENTRY_CTLS:
	case MSR_IA32_VMX_ENTRY_CTLS:
		*pdata = vmx_control_msr(
			msrs->entry_ctls_low,
			msrs->entry_ctls_high);
		if (msr_index == MSR_IA32_VMX_ENTRY_CTLS)
			*pdata |= VM_ENTRY_ALWAYSON_WITHOUT_TRUE_MSR;
		break;
	case MSR_IA32_VMX_MISC:
		*pdata = vmx_control_msr(
			msrs->misc_low,
			msrs->misc_high);
		break;
	case MSR_IA32_VMX_CR0_FIXED0:
		*pdata = msrs->cr0_fixed0;
		break;
	case MSR_IA32_VMX_CR0_FIXED1:
		*pdata = msrs->cr0_fixed1;
		break;
	case MSR_IA32_VMX_CR4_FIXED0:
		*pdata = msrs->cr4_fixed0;
		break;
	case MSR_IA32_VMX_CR4_FIXED1:
		*pdata = msrs->cr4_fixed1;
		break;
	case MSR_IA32_VMX_VMCS_ENUM:
		*pdata = msrs->vmcs_enum;
		break;
	case MSR_IA32_VMX_PROCBASED_CTLS2:
		*pdata = vmx_control_msr(
			msrs->secondary_ctls_low,
			msrs->secondary_ctls_high);
		break;
	case MSR_IA32_VMX_EPT_VPID_CAP:
		*pdata = msrs->ept_caps |
			((u64)msrs->vpid_caps << 32);
		break;
	case MSR_IA32_VMX_VMFUNC:
		*pdata = msrs->vmfunc_controls;
		break;
	default:
		return 1;
	}

	return 0;
}

/*
1453 1454 1455 1456 1457 1458
 * Copy the writable VMCS shadow fields back to the VMCS12, in case they have
 * been modified by the L1 guest.  Note, "writable" in this context means
 * "writable by the guest", i.e. tagged SHADOW_FIELD_RW; the set of
 * fields tagged SHADOW_FIELD_RO may or may not align with the "read-only"
 * VM-exit information fields (which are actually writable if the vCPU is
 * configured to support "VMWRITE to any supported field in the VMCS").
1459 1460 1461 1462
 */
static void copy_shadow_to_vmcs12(struct vcpu_vmx *vmx)
{
	struct vmcs *shadow_vmcs = vmx->vmcs01.shadow_vmcs;
1463
	struct vmcs12 *vmcs12 = get_vmcs12(&vmx->vcpu);
1464 1465
	struct shadow_vmcs_field field;
	unsigned long val;
1466
	int i;
1467

1468 1469 1470
	if (WARN_ON(!shadow_vmcs))
		return;

1471 1472 1473 1474
	preempt_disable();

	vmcs_load(shadow_vmcs);

1475 1476
	for (i = 0; i < max_shadow_read_write_fields; i++) {
		field = shadow_read_write_fields[i];
1477 1478
		val = __vmcs_readl(field.encoding);
		vmcs12_write_any(vmcs12, field.encoding, field.offset, val);
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	}

	vmcs_clear(shadow_vmcs);
	vmcs_load(vmx->loaded_vmcs->vmcs);

	preempt_enable();
}

static void copy_vmcs12_to_shadow(struct vcpu_vmx *vmx)
{
1489
	const struct shadow_vmcs_field *fields[] = {
1490 1491 1492 1493 1494 1495 1496 1497
		shadow_read_write_fields,
		shadow_read_only_fields
	};
	const int max_fields[] = {
		max_shadow_read_write_fields,
		max_shadow_read_only_fields
	};
	struct vmcs *shadow_vmcs = vmx->vmcs01.shadow_vmcs;
1498 1499 1500 1501
	struct vmcs12 *vmcs12 = get_vmcs12(&vmx->vcpu);
	struct shadow_vmcs_field field;
	unsigned long val;
	int i, q;
1502

1503 1504 1505
	if (WARN_ON(!shadow_vmcs))
		return;

1506 1507 1508 1509 1510
	vmcs_load(shadow_vmcs);

	for (q = 0; q < ARRAY_SIZE(fields); q++) {
		for (i = 0; i < max_fields[q]; i++) {
			field = fields[q][i];
1511 1512 1513
			val = vmcs12_read_any(vmcs12, field.encoding,
					      field.offset);
			__vmcs_writel(field.encoding, val);
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		}
	}

	vmcs_clear(shadow_vmcs);
	vmcs_load(vmx->loaded_vmcs->vmcs);
}

static int copy_enlightened_to_vmcs12(struct vcpu_vmx *vmx)
{
	struct vmcs12 *vmcs12 = vmx->nested.cached_vmcs12;
	struct hv_enlightened_vmcs *evmcs = vmx->nested.hv_evmcs;

	/* HV_VMX_ENLIGHTENED_CLEAN_FIELD_NONE */
	vmcs12->tpr_threshold = evmcs->tpr_threshold;
	vmcs12->guest_rip = evmcs->guest_rip;

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_BASIC))) {
		vmcs12->guest_rsp = evmcs->guest_rsp;
		vmcs12->guest_rflags = evmcs->guest_rflags;
		vmcs12->guest_interruptibility_info =
			evmcs->guest_interruptibility_info;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_PROC))) {
		vmcs12->cpu_based_vm_exec_control =
			evmcs->cpu_based_vm_exec_control;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
1545
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_EXCPN))) {
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		vmcs12->exception_bitmap = evmcs->exception_bitmap;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_ENTRY))) {
		vmcs12->vm_entry_controls = evmcs->vm_entry_controls;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_EVENT))) {
		vmcs12->vm_entry_intr_info_field =
			evmcs->vm_entry_intr_info_field;
		vmcs12->vm_entry_exception_error_code =
			evmcs->vm_entry_exception_error_code;
		vmcs12->vm_entry_instruction_len =
			evmcs->vm_entry_instruction_len;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_HOST_GRP1))) {
		vmcs12->host_ia32_pat = evmcs->host_ia32_pat;
		vmcs12->host_ia32_efer = evmcs->host_ia32_efer;
		vmcs12->host_cr0 = evmcs->host_cr0;
		vmcs12->host_cr3 = evmcs->host_cr3;
		vmcs12->host_cr4 = evmcs->host_cr4;
		vmcs12->host_ia32_sysenter_esp = evmcs->host_ia32_sysenter_esp;
		vmcs12->host_ia32_sysenter_eip = evmcs->host_ia32_sysenter_eip;
		vmcs12->host_rip = evmcs->host_rip;
		vmcs12->host_ia32_sysenter_cs = evmcs->host_ia32_sysenter_cs;
		vmcs12->host_es_selector = evmcs->host_es_selector;
		vmcs12->host_cs_selector = evmcs->host_cs_selector;
		vmcs12->host_ss_selector = evmcs->host_ss_selector;
		vmcs12->host_ds_selector = evmcs->host_ds_selector;
		vmcs12->host_fs_selector = evmcs->host_fs_selector;
		vmcs12->host_gs_selector = evmcs->host_gs_selector;
		vmcs12->host_tr_selector = evmcs->host_tr_selector;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
1585
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_GRP1))) {
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		vmcs12->pin_based_vm_exec_control =
			evmcs->pin_based_vm_exec_control;
		vmcs12->vm_exit_controls = evmcs->vm_exit_controls;
		vmcs12->secondary_vm_exec_control =
			evmcs->secondary_vm_exec_control;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_IO_BITMAP))) {
		vmcs12->io_bitmap_a = evmcs->io_bitmap_a;
		vmcs12->io_bitmap_b = evmcs->io_bitmap_b;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_MSR_BITMAP))) {
		vmcs12->msr_bitmap = evmcs->msr_bitmap;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_GRP2))) {
		vmcs12->guest_es_base = evmcs->guest_es_base;
		vmcs12->guest_cs_base = evmcs->guest_cs_base;
		vmcs12->guest_ss_base = evmcs->guest_ss_base;
		vmcs12->guest_ds_base = evmcs->guest_ds_base;
		vmcs12->guest_fs_base = evmcs->guest_fs_base;
		vmcs12->guest_gs_base = evmcs->guest_gs_base;
		vmcs12->guest_ldtr_base = evmcs->guest_ldtr_base;
		vmcs12->guest_tr_base = evmcs->guest_tr_base;
		vmcs12->guest_gdtr_base = evmcs->guest_gdtr_base;
		vmcs12->guest_idtr_base = evmcs->guest_idtr_base;
		vmcs12->guest_es_limit = evmcs->guest_es_limit;
		vmcs12->guest_cs_limit = evmcs->guest_cs_limit;
		vmcs12->guest_ss_limit = evmcs->guest_ss_limit;
		vmcs12->guest_ds_limit = evmcs->guest_ds_limit;
		vmcs12->guest_fs_limit = evmcs->guest_fs_limit;
		vmcs12->guest_gs_limit = evmcs->guest_gs_limit;
		vmcs12->guest_ldtr_limit = evmcs->guest_ldtr_limit;
		vmcs12->guest_tr_limit = evmcs->guest_tr_limit;
		vmcs12->guest_gdtr_limit = evmcs->guest_gdtr_limit;
		vmcs12->guest_idtr_limit = evmcs->guest_idtr_limit;
		vmcs12->guest_es_ar_bytes = evmcs->guest_es_ar_bytes;
		vmcs12->guest_cs_ar_bytes = evmcs->guest_cs_ar_bytes;
		vmcs12->guest_ss_ar_bytes = evmcs->guest_ss_ar_bytes;
		vmcs12->guest_ds_ar_bytes = evmcs->guest_ds_ar_bytes;
		vmcs12->guest_fs_ar_bytes = evmcs->guest_fs_ar_bytes;
		vmcs12->guest_gs_ar_bytes = evmcs->guest_gs_ar_bytes;
		vmcs12->guest_ldtr_ar_bytes = evmcs->guest_ldtr_ar_bytes;
		vmcs12->guest_tr_ar_bytes = evmcs->guest_tr_ar_bytes;
		vmcs12->guest_es_selector = evmcs->guest_es_selector;
		vmcs12->guest_cs_selector = evmcs->guest_cs_selector;
		vmcs12->guest_ss_selector = evmcs->guest_ss_selector;
		vmcs12->guest_ds_selector = evmcs->guest_ds_selector;
		vmcs12->guest_fs_selector = evmcs->guest_fs_selector;
		vmcs12->guest_gs_selector = evmcs->guest_gs_selector;
		vmcs12->guest_ldtr_selector = evmcs->guest_ldtr_selector;
		vmcs12->guest_tr_selector = evmcs->guest_tr_selector;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_GRP2))) {
		vmcs12->tsc_offset = evmcs->tsc_offset;
		vmcs12->virtual_apic_page_addr = evmcs->virtual_apic_page_addr;
		vmcs12->xss_exit_bitmap = evmcs->xss_exit_bitmap;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CRDR))) {
		vmcs12->cr0_guest_host_mask = evmcs->cr0_guest_host_mask;
		vmcs12->cr4_guest_host_mask = evmcs->cr4_guest_host_mask;
		vmcs12->cr0_read_shadow = evmcs->cr0_read_shadow;
		vmcs12->cr4_read_shadow = evmcs->cr4_read_shadow;
		vmcs12->guest_cr0 = evmcs->guest_cr0;
		vmcs12->guest_cr3 = evmcs->guest_cr3;
		vmcs12->guest_cr4 = evmcs->guest_cr4;
		vmcs12->guest_dr7 = evmcs->guest_dr7;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_HOST_POINTER))) {
		vmcs12->host_fs_base = evmcs->host_fs_base;
		vmcs12->host_gs_base = evmcs->host_gs_base;
		vmcs12->host_tr_base = evmcs->host_tr_base;
		vmcs12->host_gdtr_base = evmcs->host_gdtr_base;
		vmcs12->host_idtr_base = evmcs->host_idtr_base;
		vmcs12->host_rsp = evmcs->host_rsp;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_CONTROL_XLAT))) {
		vmcs12->ept_pointer = evmcs->ept_pointer;
		vmcs12->virtual_processor_id = evmcs->virtual_processor_id;
	}

	if (unlikely(!(evmcs->hv_clean_fields &
		       HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_GRP1))) {
		vmcs12->vmcs_link_pointer = evmcs->vmcs_link_pointer;
		vmcs12->guest_ia32_debugctl = evmcs->guest_ia32_debugctl;
		vmcs12->guest_ia32_pat = evmcs->guest_ia32_pat;
		vmcs12->guest_ia32_efer = evmcs->guest_ia32_efer;
		vmcs12->guest_pdptr0 = evmcs->guest_pdptr0;
		vmcs12->guest_pdptr1 = evmcs->guest_pdptr1;
		vmcs12->guest_pdptr2 = evmcs->guest_pdptr2;
		vmcs12->guest_pdptr3 = evmcs->guest_pdptr3;
		vmcs12->guest_pending_dbg_exceptions =
			evmcs->guest_pending_dbg_exceptions;
		vmcs12->guest_sysenter_esp = evmcs->guest_sysenter_esp;
		vmcs12->guest_sysenter_eip = evmcs->guest_sysenter_eip;
		vmcs12->guest_bndcfgs = evmcs->guest_bndcfgs;
		vmcs12->guest_activity_state = evmcs->guest_activity_state;
		vmcs12->guest_sysenter_cs = evmcs->guest_sysenter_cs;
	}

	/*
	 * Not used?
	 * vmcs12->vm_exit_msr_store_addr = evmcs->vm_exit_msr_store_addr;
	 * vmcs12->vm_exit_msr_load_addr = evmcs->vm_exit_msr_load_addr;
	 * vmcs12->vm_entry_msr_load_addr = evmcs->vm_entry_msr_load_addr;
	 * vmcs12->cr3_target_value0 = evmcs->cr3_target_value0;
	 * vmcs12->cr3_target_value1 = evmcs->cr3_target_value1;
	 * vmcs12->cr3_target_value2 = evmcs->cr3_target_value2;
	 * vmcs12->cr3_target_value3 = evmcs->cr3_target_value3;
	 * vmcs12->page_fault_error_code_mask =
	 *		evmcs->page_fault_error_code_mask;
	 * vmcs12->page_fault_error_code_match =
	 *		evmcs->page_fault_error_code_match;
	 * vmcs12->cr3_target_count = evmcs->cr3_target_count;
	 * vmcs12->vm_exit_msr_store_count = evmcs->vm_exit_msr_store_count;
	 * vmcs12->vm_exit_msr_load_count = evmcs->vm_exit_msr_load_count;
	 * vmcs12->vm_entry_msr_load_count = evmcs->vm_entry_msr_load_count;
	 */

	/*
	 * Read only fields:
	 * vmcs12->guest_physical_address = evmcs->guest_physical_address;
	 * vmcs12->vm_instruction_error = evmcs->vm_instruction_error;
	 * vmcs12->vm_exit_reason = evmcs->vm_exit_reason;
	 * vmcs12->vm_exit_intr_info = evmcs->vm_exit_intr_info;
	 * vmcs12->vm_exit_intr_error_code = evmcs->vm_exit_intr_error_code;
	 * vmcs12->idt_vectoring_info_field = evmcs->idt_vectoring_info_field;
	 * vmcs12->idt_vectoring_error_code = evmcs->idt_vectoring_error_code;
	 * vmcs12->vm_exit_instruction_len = evmcs->vm_exit_instruction_len;
	 * vmcs12->vmx_instruction_info = evmcs->vmx_instruction_info;
	 * vmcs12->exit_qualification = evmcs->exit_qualification;
	 * vmcs12->guest_linear_address = evmcs->guest_linear_address;
	 *
	 * Not present in struct vmcs12:
	 * vmcs12->exit_io_instruction_ecx = evmcs->exit_io_instruction_ecx;
	 * vmcs12->exit_io_instruction_esi = evmcs->exit_io_instruction_esi;
	 * vmcs12->exit_io_instruction_edi = evmcs->exit_io_instruction_edi;
	 * vmcs12->exit_io_instruction_eip = evmcs->exit_io_instruction_eip;
	 */

	return 0;
}

static int copy_vmcs12_to_enlightened(struct vcpu_vmx *vmx)
{
	struct vmcs12 *vmcs12 = vmx->nested.cached_vmcs12;
	struct hv_enlightened_vmcs *evmcs = vmx->nested.hv_evmcs;

	/*
	 * Should not be changed by KVM:
	 *
	 * evmcs->host_es_selector = vmcs12->host_es_selector;
	 * evmcs->host_cs_selector = vmcs12->host_cs_selector;
	 * evmcs->host_ss_selector = vmcs12->host_ss_selector;
	 * evmcs->host_ds_selector = vmcs12->host_ds_selector;
	 * evmcs->host_fs_selector = vmcs12->host_fs_selector;
	 * evmcs->host_gs_selector = vmcs12->host_gs_selector;
	 * evmcs->host_tr_selector = vmcs12->host_tr_selector;
	 * evmcs->host_ia32_pat = vmcs12->host_ia32_pat;
	 * evmcs->host_ia32_efer = vmcs12->host_ia32_efer;
	 * evmcs->host_cr0 = vmcs12->host_cr0;
	 * evmcs->host_cr3 = vmcs12->host_cr3;
	 * evmcs->host_cr4 = vmcs12->host_cr4;
	 * evmcs->host_ia32_sysenter_esp = vmcs12->host_ia32_sysenter_esp;
	 * evmcs->host_ia32_sysenter_eip = vmcs12->host_ia32_sysenter_eip;
	 * evmcs->host_rip = vmcs12->host_rip;
	 * evmcs->host_ia32_sysenter_cs = vmcs12->host_ia32_sysenter_cs;
	 * evmcs->host_fs_base = vmcs12->host_fs_base;
	 * evmcs->host_gs_base = vmcs12->host_gs_base;
	 * evmcs->host_tr_base = vmcs12->host_tr_base;
	 * evmcs->host_gdtr_base = vmcs12->host_gdtr_base;
	 * evmcs->host_idtr_base = vmcs12->host_idtr_base;
	 * evmcs->host_rsp = vmcs12->host_rsp;
1771
	 * sync_vmcs02_to_vmcs12() doesn't read these:
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	 * evmcs->io_bitmap_a = vmcs12->io_bitmap_a;
	 * evmcs->io_bitmap_b = vmcs12->io_bitmap_b;
	 * evmcs->msr_bitmap = vmcs12->msr_bitmap;
	 * evmcs->ept_pointer = vmcs12->ept_pointer;
	 * evmcs->xss_exit_bitmap = vmcs12->xss_exit_bitmap;
	 * evmcs->vm_exit_msr_store_addr = vmcs12->vm_exit_msr_store_addr;
	 * evmcs->vm_exit_msr_load_addr = vmcs12->vm_exit_msr_load_addr;
	 * evmcs->vm_entry_msr_load_addr = vmcs12->vm_entry_msr_load_addr;
	 * evmcs->cr3_target_value0 = vmcs12->cr3_target_value0;
	 * evmcs->cr3_target_value1 = vmcs12->cr3_target_value1;
	 * evmcs->cr3_target_value2 = vmcs12->cr3_target_value2;
	 * evmcs->cr3_target_value3 = vmcs12->cr3_target_value3;
	 * evmcs->tpr_threshold = vmcs12->tpr_threshold;
	 * evmcs->virtual_processor_id = vmcs12->virtual_processor_id;
	 * evmcs->exception_bitmap = vmcs12->exception_bitmap;
	 * evmcs->vmcs_link_pointer = vmcs12->vmcs_link_pointer;
	 * evmcs->pin_based_vm_exec_control = vmcs12->pin_based_vm_exec_control;
	 * evmcs->vm_exit_controls = vmcs12->vm_exit_controls;
	 * evmcs->secondary_vm_exec_control = vmcs12->secondary_vm_exec_control;
	 * evmcs->page_fault_error_code_mask =
	 *		vmcs12->page_fault_error_code_mask;
	 * evmcs->page_fault_error_code_match =
	 *		vmcs12->page_fault_error_code_match;
	 * evmcs->cr3_target_count = vmcs12->cr3_target_count;
	 * evmcs->virtual_apic_page_addr = vmcs12->virtual_apic_page_addr;
	 * evmcs->tsc_offset = vmcs12->tsc_offset;
	 * evmcs->guest_ia32_debugctl = vmcs12->guest_ia32_debugctl;
	 * evmcs->cr0_guest_host_mask = vmcs12->cr0_guest_host_mask;
	 * evmcs->cr4_guest_host_mask = vmcs12->cr4_guest_host_mask;
	 * evmcs->cr0_read_shadow = vmcs12->cr0_read_shadow;
	 * evmcs->cr4_read_shadow = vmcs12->cr4_read_shadow;
	 * evmcs->vm_exit_msr_store_count = vmcs12->vm_exit_msr_store_count;
	 * evmcs->vm_exit_msr_load_count = vmcs12->vm_exit_msr_load_count;
	 * evmcs->vm_entry_msr_load_count = vmcs12->vm_entry_msr_load_count;
	 *
	 * Not present in struct vmcs12:
	 * evmcs->exit_io_instruction_ecx = vmcs12->exit_io_instruction_ecx;
	 * evmcs->exit_io_instruction_esi = vmcs12->exit_io_instruction_esi;
	 * evmcs->exit_io_instruction_edi = vmcs12->exit_io_instruction_edi;
	 * evmcs->exit_io_instruction_eip = vmcs12->exit_io_instruction_eip;
	 */

	evmcs->guest_es_selector = vmcs12->guest_es_selector;
	evmcs->guest_cs_selector = vmcs12->guest_cs_selector;
	evmcs->guest_ss_selector = vmcs12->guest_ss_selector;
	evmcs->guest_ds_selector = vmcs12->guest_ds_selector;
	evmcs->guest_fs_selector = vmcs12->guest_fs_selector;
	evmcs->guest_gs_selector = vmcs12->guest_gs_selector;
	evmcs->guest_ldtr_selector = vmcs12->guest_ldtr_selector;
	evmcs->guest_tr_selector = vmcs12->guest_tr_selector;

	evmcs->guest_es_limit = vmcs12->guest_es_limit;
	evmcs->guest_cs_limit = vmcs12->guest_cs_limit;
	evmcs->guest_ss_limit = vmcs12->guest_ss_limit;
	evmcs->guest_ds_limit = vmcs12->guest_ds_limit;
	evmcs->guest_fs_limit = vmcs12->guest_fs_limit;
	evmcs->guest_gs_limit = vmcs12->guest_gs_limit;
	evmcs->guest_ldtr_limit = vmcs12->guest_ldtr_limit;
	evmcs->guest_tr_limit = vmcs12->guest_tr_limit;
	evmcs->guest_gdtr_limit = vmcs12->guest_gdtr_limit;
	evmcs->guest_idtr_limit = vmcs12->guest_idtr_limit;

	evmcs->guest_es_ar_bytes = vmcs12->guest_es_ar_bytes;
	evmcs->guest_cs_ar_bytes = vmcs12->guest_cs_ar_bytes;
	evmcs->guest_ss_ar_bytes = vmcs12->guest_ss_ar_bytes;
	evmcs->guest_ds_ar_bytes = vmcs12->guest_ds_ar_bytes;
	evmcs->guest_fs_ar_bytes = vmcs12->guest_fs_ar_bytes;
	evmcs->guest_gs_ar_bytes = vmcs12->guest_gs_ar_bytes;
	evmcs->guest_ldtr_ar_bytes = vmcs12->guest_ldtr_ar_bytes;
	evmcs->guest_tr_ar_bytes = vmcs12->guest_tr_ar_bytes;

	evmcs->guest_es_base = vmcs12->guest_es_base;
	evmcs->guest_cs_base = vmcs12->guest_cs_base;
	evmcs->guest_ss_base = vmcs12->guest_ss_base;
	evmcs->guest_ds_base = vmcs12->guest_ds_base;
	evmcs->guest_fs_base = vmcs12->guest_fs_base;
	evmcs->guest_gs_base = vmcs12->guest_gs_base;
	evmcs->guest_ldtr_base = vmcs12->guest_ldtr_base;
	evmcs->guest_tr_base = vmcs12->guest_tr_base;
	evmcs->guest_gdtr_base = vmcs12->guest_gdtr_base;
	evmcs->guest_idtr_base = vmcs12->guest_idtr_base;

	evmcs->guest_ia32_pat = vmcs12->guest_ia32_pat;
	evmcs->guest_ia32_efer = vmcs12->guest_ia32_efer;

	evmcs->guest_pdptr0 = vmcs12->guest_pdptr0;
	evmcs->guest_pdptr1 = vmcs12->guest_pdptr1;
	evmcs->guest_pdptr2 = vmcs12->guest_pdptr2;
	evmcs->guest_pdptr3 = vmcs12->guest_pdptr3;

	evmcs->guest_pending_dbg_exceptions =
		vmcs12->guest_pending_dbg_exceptions;
	evmcs->guest_sysenter_esp = vmcs12->guest_sysenter_esp;
	evmcs->guest_sysenter_eip = vmcs12->guest_sysenter_eip;

	evmcs->guest_activity_state = vmcs12->guest_activity_state;
	evmcs->guest_sysenter_cs = vmcs12->guest_sysenter_cs;

	evmcs->guest_cr0 = vmcs12->guest_cr0;
	evmcs->guest_cr3 = vmcs12->guest_cr3;
	evmcs->guest_cr4 = vmcs12->guest_cr4;
	evmcs->guest_dr7 = vmcs12->guest_dr7;

	evmcs->guest_physical_address = vmcs12->guest_physical_address;

	evmcs->vm_instruction_error = vmcs12->vm_instruction_error;
	evmcs->vm_exit_reason = vmcs12->vm_exit_reason;
	evmcs->vm_exit_intr_info = vmcs12->vm_exit_intr_info;
	evmcs->vm_exit_intr_error_code = vmcs12->vm_exit_intr_error_code;
	evmcs->idt_vectoring_info_field = vmcs12->idt_vectoring_info_field;
	evmcs->idt_vectoring_error_code = vmcs12->idt_vectoring_error_code;
	evmcs->vm_exit_instruction_len = vmcs12->vm_exit_instruction_len;
	evmcs->vmx_instruction_info = vmcs12->vmx_instruction_info;

	evmcs->exit_qualification = vmcs12->exit_qualification;

	evmcs->guest_linear_address = vmcs12->guest_linear_address;
	evmcs->guest_rsp = vmcs12->guest_rsp;
	evmcs->guest_rflags = vmcs12->guest_rflags;

	evmcs->guest_interruptibility_info =
		vmcs12->guest_interruptibility_info;
	evmcs->cpu_based_vm_exec_control = vmcs12->cpu_based_vm_exec_control;
	evmcs->vm_entry_controls = vmcs12->vm_entry_controls;
	evmcs->vm_entry_intr_info_field = vmcs12->vm_entry_intr_info_field;
	evmcs->vm_entry_exception_error_code =
		vmcs12->vm_entry_exception_error_code;
	evmcs->vm_entry_instruction_len = vmcs12->vm_entry_instruction_len;

	evmcs->guest_rip = vmcs12->guest_rip;

	evmcs->guest_bndcfgs = vmcs12->guest_bndcfgs;

	return 0;
}

/*
 * This is an equivalent of the nested hypervisor executing the vmptrld
 * instruction.
 */
1912 1913
static enum nested_evmptrld_status nested_vmx_handle_enlightened_vmptrld(
	struct kvm_vcpu *vcpu, bool from_launch)
1914 1915
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
1916
	bool evmcs_gpa_changed = false;
1917
	u64 evmcs_gpa;
1918 1919

	if (likely(!vmx->nested.enlightened_vmcs_enabled))
1920
		return EVMPTRLD_DISABLED;
1921

1922
	if (!nested_enlightened_vmentry(vcpu, &evmcs_gpa))
1923
		return EVMPTRLD_DISABLED;
1924

1925 1926
	if (unlikely(!vmx->nested.hv_evmcs ||
		     evmcs_gpa != vmx->nested.hv_evmcs_vmptr)) {
1927 1928 1929 1930 1931
		if (!vmx->nested.hv_evmcs)
			vmx->nested.current_vmptr = -1ull;

		nested_release_evmcs(vcpu);

1932
		if (kvm_vcpu_map(vcpu, gpa_to_gfn(evmcs_gpa),
1933
				 &vmx->nested.hv_evmcs_map))
1934
			return EVMPTRLD_ERROR;
1935

1936
		vmx->nested.hv_evmcs = vmx->nested.hv_evmcs_map.hva;
1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962

		/*
		 * Currently, KVM only supports eVMCS version 1
		 * (== KVM_EVMCS_VERSION) and thus we expect guest to set this
		 * value to first u32 field of eVMCS which should specify eVMCS
		 * VersionNumber.
		 *
		 * Guest should be aware of supported eVMCS versions by host by
		 * examining CPUID.0x4000000A.EAX[0:15]. Host userspace VMM is
		 * expected to set this CPUID leaf according to the value
		 * returned in vmcs_version from nested_enable_evmcs().
		 *
		 * However, it turns out that Microsoft Hyper-V fails to comply
		 * to their own invented interface: When Hyper-V use eVMCS, it
		 * just sets first u32 field of eVMCS to revision_id specified
		 * in MSR_IA32_VMX_BASIC. Instead of used eVMCS version number
		 * which is one of the supported versions specified in
		 * CPUID.0x4000000A.EAX[0:15].
		 *
		 * To overcome Hyper-V bug, we accept here either a supported
		 * eVMCS version or VMCS12 revision_id as valid values for first
		 * u32 field of eVMCS.
		 */
		if ((vmx->nested.hv_evmcs->revision_id != KVM_EVMCS_VERSION) &&
		    (vmx->nested.hv_evmcs->revision_id != VMCS12_REVISION)) {
			nested_release_evmcs(vcpu);
1963
			return EVMPTRLD_VMFAIL;
1964 1965 1966
		}

		vmx->nested.dirty_vmcs12 = true;
1967
		vmx->nested.hv_evmcs_vmptr = evmcs_gpa;
1968

1969
		evmcs_gpa_changed = true;
1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982
		/*
		 * Unlike normal vmcs12, enlightened vmcs12 is not fully
		 * reloaded from guest's memory (read only fields, fields not
		 * present in struct hv_enlightened_vmcs, ...). Make sure there
		 * are no leftovers.
		 */
		if (from_launch) {
			struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
			memset(vmcs12, 0, sizeof(*vmcs12));
			vmcs12->hdr.revision_id = VMCS12_REVISION;
		}

	}
1983 1984

	/*
1985
	 * Clean fields data can't be used on VMLAUNCH and when we switch
1986 1987 1988 1989 1990 1991
	 * between different L2 guests as KVM keeps a single VMCS12 per L1.
	 */
	if (from_launch || evmcs_gpa_changed)
		vmx->nested.hv_evmcs->hv_clean_fields &=
			~HV_VMX_ENLIGHTENED_CLEAN_FIELD_ALL;

1992
	return EVMPTRLD_SUCCEEDED;
1993 1994
}

1995
void nested_sync_vmcs12_to_shadow(struct kvm_vcpu *vcpu)
1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (vmx->nested.hv_evmcs) {
		copy_vmcs12_to_enlightened(vmx);
		/* All fields are clean */
		vmx->nested.hv_evmcs->hv_clean_fields |=
			HV_VMX_ENLIGHTENED_CLEAN_FIELD_ALL;
	} else {
		copy_vmcs12_to_shadow(vmx);
	}

2008
	vmx->nested.need_vmcs12_to_shadow_sync = false;
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}

static enum hrtimer_restart vmx_preemption_timer_fn(struct hrtimer *timer)
{
	struct vcpu_vmx *vmx =
		container_of(timer, struct vcpu_vmx, nested.preemption_timer);

	vmx->nested.preemption_timer_expired = true;
	kvm_make_request(KVM_REQ_EVENT, &vmx->vcpu);
	kvm_vcpu_kick(&vmx->vcpu);

	return HRTIMER_NORESTART;
}

static void vmx_start_preemption_timer(struct kvm_vcpu *vcpu)
{
	u64 preemption_timeout = get_vmcs12(vcpu)->vmx_preemption_timer_value;
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	/*
	 * A timer value of zero is architecturally guaranteed to cause
	 * a VMExit prior to executing any instructions in the guest.
	 */
	if (preemption_timeout == 0) {
		vmx_preemption_timer_fn(&vmx->nested.preemption_timer);
		return;
	}

	if (vcpu->arch.virtual_tsc_khz == 0)
		return;

	preemption_timeout <<= VMX_MISC_EMULATED_PREEMPTION_TIMER_RATE;
	preemption_timeout *= 1000000;
	do_div(preemption_timeout, vcpu->arch.virtual_tsc_khz);
	hrtimer_start(&vmx->nested.preemption_timer,
		      ns_to_ktime(preemption_timeout), HRTIMER_MODE_REL);
}

static u64 nested_vmx_calc_efer(struct vcpu_vmx *vmx, struct vmcs12 *vmcs12)
{
	if (vmx->nested.nested_run_pending &&
	    (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_EFER))
		return vmcs12->guest_ia32_efer;
	else if (vmcs12->vm_entry_controls & VM_ENTRY_IA32E_MODE)
		return vmx->vcpu.arch.efer | (EFER_LMA | EFER_LME);
	else
		return vmx->vcpu.arch.efer & ~(EFER_LMA | EFER_LME);
}

static void prepare_vmcs02_constant_state(struct vcpu_vmx *vmx)
{
	/*
	 * If vmcs02 hasn't been initialized, set the constant vmcs02 state
	 * according to L0's settings (vmcs12 is irrelevant here).  Host
	 * fields that come from L0 and are not constant, e.g. HOST_CR3,
	 * will be set as needed prior to VMLAUNCH/VMRESUME.
	 */
	if (vmx->nested.vmcs02_initialized)
		return;
	vmx->nested.vmcs02_initialized = true;

	/*
	 * We don't care what the EPTP value is we just need to guarantee
	 * it's valid so we don't get a false positive when doing early
	 * consistency checks.
	 */
	if (enable_ept && nested_early_check)
		vmcs_write64(EPT_POINTER, construct_eptp(&vmx->vcpu, 0));

	/* All VMFUNCs are currently emulated through L0 vmexits.  */
	if (cpu_has_vmx_vmfunc())
		vmcs_write64(VM_FUNCTION_CONTROL, 0);

	if (cpu_has_vmx_posted_intr())
		vmcs_write16(POSTED_INTR_NV, POSTED_INTR_NESTED_VECTOR);

	if (cpu_has_vmx_msr_bitmap())
		vmcs_write64(MSR_BITMAP, __pa(vmx->nested.vmcs02.msr_bitmap));

2088 2089 2090 2091 2092 2093 2094 2095
	/*
	 * The PML address never changes, so it is constant in vmcs02.
	 * Conceptually we want to copy the PML index from vmcs01 here,
	 * and then back to vmcs01 on nested vmexit.  But since we flush
	 * the log and reset GUEST_PML_INDEX on each vmexit, the PML
	 * index is also effectively constant in vmcs02.
	 */
	if (enable_pml) {
2096
		vmcs_write64(PML_ADDRESS, page_to_phys(vmx->pml_pg));
2097 2098
		vmcs_write16(GUEST_PML_INDEX, PML_ENTITY_NUM - 1);
	}
2099

2100 2101
	if (cpu_has_vmx_encls_vmexit())
		vmcs_write64(ENCLS_EXITING_BITMAP, -1ull);
2102 2103 2104 2105 2106 2107

	/*
	 * Set the MSR load/store lists to match L0's settings.  Only the
	 * addresses are constant (for vmcs02), the counts can change based
	 * on L2's behavior, e.g. switching to/from long mode.
	 */
2108
	vmcs_write64(VM_EXIT_MSR_STORE_ADDR, __pa(vmx->msr_autostore.guest.val));
2109 2110 2111 2112 2113 2114
	vmcs_write64(VM_EXIT_MSR_LOAD_ADDR, __pa(vmx->msr_autoload.host.val));
	vmcs_write64(VM_ENTRY_MSR_LOAD_ADDR, __pa(vmx->msr_autoload.guest.val));

	vmx_set_constant_host_state(vmx);
}

2115
static void prepare_vmcs02_early_rare(struct vcpu_vmx *vmx,
2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135
				      struct vmcs12 *vmcs12)
{
	prepare_vmcs02_constant_state(vmx);

	vmcs_write64(VMCS_LINK_POINTER, -1ull);

	if (enable_vpid) {
		if (nested_cpu_has_vpid(vmcs12) && vmx->nested.vpid02)
			vmcs_write16(VIRTUAL_PROCESSOR_ID, vmx->nested.vpid02);
		else
			vmcs_write16(VIRTUAL_PROCESSOR_ID, vmx->vpid);
	}
}

static void prepare_vmcs02_early(struct vcpu_vmx *vmx, struct vmcs12 *vmcs12)
{
	u32 exec_control, vmcs12_exec_ctrl;
	u64 guest_efer = nested_vmx_calc_efer(vmx, vmcs12);

	if (vmx->nested.dirty_vmcs12 || vmx->nested.hv_evmcs)
2136
		prepare_vmcs02_early_rare(vmx, vmcs12);
2137 2138 2139 2140

	/*
	 * PIN CONTROLS
	 */
2141
	exec_control = vmx_pin_based_exec_ctrl(vmx);
2142 2143
	exec_control |= (vmcs12->pin_based_vm_exec_control &
			 ~PIN_BASED_VMX_PREEMPTION_TIMER);
2144 2145 2146 2147 2148 2149 2150 2151

	/* Posted interrupts setting is only taken from vmcs12.  */
	if (nested_cpu_has_posted_intr(vmcs12)) {
		vmx->nested.posted_intr_nv = vmcs12->posted_intr_nv;
		vmx->nested.pi_pending = false;
	} else {
		exec_control &= ~PIN_BASED_POSTED_INTR;
	}
2152
	pin_controls_set(vmx, exec_control);
2153 2154 2155 2156 2157

	/*
	 * EXEC CONTROLS
	 */
	exec_control = vmx_exec_control(vmx); /* L0's desires */
2158
	exec_control &= ~CPU_BASED_INTR_WINDOW_EXITING;
2159
	exec_control &= ~CPU_BASED_NMI_WINDOW_EXITING;
2160 2161 2162
	exec_control &= ~CPU_BASED_TPR_SHADOW;
	exec_control |= vmcs12->cpu_based_vm_exec_control;

2163
	vmx->nested.l1_tpr_threshold = -1;
2164
	if (exec_control & CPU_BASED_TPR_SHADOW)
2165 2166
		vmcs_write32(TPR_THRESHOLD, vmcs12->tpr_threshold);
#ifdef CONFIG_X86_64
2167
	else
2168 2169 2170 2171 2172 2173 2174 2175 2176
		exec_control |= CPU_BASED_CR8_LOAD_EXITING |
				CPU_BASED_CR8_STORE_EXITING;
#endif

	/*
	 * A vmexit (to either L1 hypervisor or L0 userspace) is always needed
	 * for I/O port accesses.
	 */
	exec_control |= CPU_BASED_UNCOND_IO_EXITING;
2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187
	exec_control &= ~CPU_BASED_USE_IO_BITMAPS;

	/*
	 * This bit will be computed in nested_get_vmcs12_pages, because
	 * we do not have access to L1's MSR bitmap yet.  For now, keep
	 * the same bit as before, hoping to avoid multiple VMWRITEs that
	 * only set/clear this bit.
	 */
	exec_control &= ~CPU_BASED_USE_MSR_BITMAPS;
	exec_control |= exec_controls_get(vmx) & CPU_BASED_USE_MSR_BITMAPS;

2188
	exec_controls_set(vmx, exec_control);
2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200

	/*
	 * SECONDARY EXEC CONTROLS
	 */
	if (cpu_has_secondary_exec_ctrls()) {
		exec_control = vmx->secondary_exec_control;

		/* Take the following fields only from vmcs12 */
		exec_control &= ~(SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES |
				  SECONDARY_EXEC_ENABLE_INVPCID |
				  SECONDARY_EXEC_RDTSCP |
				  SECONDARY_EXEC_XSAVES |
2201
				  SECONDARY_EXEC_ENABLE_USR_WAIT_PAUSE |
2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215
				  SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY |
				  SECONDARY_EXEC_APIC_REGISTER_VIRT |
				  SECONDARY_EXEC_ENABLE_VMFUNC);
		if (nested_cpu_has(vmcs12,
				   CPU_BASED_ACTIVATE_SECONDARY_CONTROLS)) {
			vmcs12_exec_ctrl = vmcs12->secondary_vm_exec_control &
				~SECONDARY_EXEC_ENABLE_PML;
			exec_control |= vmcs12_exec_ctrl;
		}

		/* VMCS shadowing for L2 is emulated for now */
		exec_control &= ~SECONDARY_EXEC_SHADOW_VMCS;

		/*
2216 2217
		 * Preset *DT exiting when emulating UMIP, so that vmx_set_cr4()
		 * will not have to rewrite the controls just for this bit.
2218
		 */
2219 2220 2221
		if (!boot_cpu_has(X86_FEATURE_UMIP) && vmx_umip_emulated() &&
		    (vmcs12->guest_cr4 & X86_CR4_UMIP))
			exec_control |= SECONDARY_EXEC_DESC;
2222 2223 2224 2225 2226

		if (exec_control & SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY)
			vmcs_write16(GUEST_INTR_STATUS,
				vmcs12->guest_intr_status);

2227
		secondary_exec_controls_set(vmx, exec_control);
2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245
	}

	/*
	 * ENTRY CONTROLS
	 *
	 * vmcs12's VM_{ENTRY,EXIT}_LOAD_IA32_EFER and VM_ENTRY_IA32E_MODE
	 * are emulated by vmx_set_efer() in prepare_vmcs02(), but speculate
	 * on the related bits (if supported by the CPU) in the hope that
	 * we can avoid VMWrites during vmx_set_efer().
	 */
	exec_control = (vmcs12->vm_entry_controls | vmx_vmentry_ctrl()) &
			~VM_ENTRY_IA32E_MODE & ~VM_ENTRY_LOAD_IA32_EFER;
	if (cpu_has_load_ia32_efer()) {
		if (guest_efer & EFER_LMA)
			exec_control |= VM_ENTRY_IA32E_MODE;
		if (guest_efer != host_efer)
			exec_control |= VM_ENTRY_LOAD_IA32_EFER;
	}
2246
	vm_entry_controls_set(vmx, exec_control);
2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257

	/*
	 * EXIT CONTROLS
	 *
	 * L2->L1 exit controls are emulated - the hardware exit is to L0 so
	 * we should use its exit controls. Note that VM_EXIT_LOAD_IA32_EFER
	 * bits may be modified by vmx_set_efer() in prepare_vmcs02().
	 */
	exec_control = vmx_vmexit_ctrl();
	if (cpu_has_load_ia32_efer() && guest_efer != host_efer)
		exec_control |= VM_EXIT_LOAD_IA32_EFER;
2258
	vm_exit_controls_set(vmx, exec_control);
2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278

	/*
	 * Interrupt/Exception Fields
	 */
	if (vmx->nested.nested_run_pending) {
		vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
			     vmcs12->vm_entry_intr_info_field);
		vmcs_write32(VM_ENTRY_EXCEPTION_ERROR_CODE,
			     vmcs12->vm_entry_exception_error_code);
		vmcs_write32(VM_ENTRY_INSTRUCTION_LEN,
			     vmcs12->vm_entry_instruction_len);
		vmcs_write32(GUEST_INTERRUPTIBILITY_INFO,
			     vmcs12->guest_interruptibility_info);
		vmx->loaded_vmcs->nmi_known_unmasked =
			!(vmcs12->guest_interruptibility_info & GUEST_INTR_STATE_NMI);
	} else {
		vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 0);
	}
}

2279
static void prepare_vmcs02_rare(struct vcpu_vmx *vmx, struct vmcs12 *vmcs12)
2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302
{
	struct hv_enlightened_vmcs *hv_evmcs = vmx->nested.hv_evmcs;

	if (!hv_evmcs || !(hv_evmcs->hv_clean_fields &
			   HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_GRP2)) {
		vmcs_write16(GUEST_ES_SELECTOR, vmcs12->guest_es_selector);
		vmcs_write16(GUEST_CS_SELECTOR, vmcs12->guest_cs_selector);
		vmcs_write16(GUEST_SS_SELECTOR, vmcs12->guest_ss_selector);
		vmcs_write16(GUEST_DS_SELECTOR, vmcs12->guest_ds_selector);
		vmcs_write16(GUEST_FS_SELECTOR, vmcs12->guest_fs_selector);
		vmcs_write16(GUEST_GS_SELECTOR, vmcs12->guest_gs_selector);
		vmcs_write16(GUEST_LDTR_SELECTOR, vmcs12->guest_ldtr_selector);
		vmcs_write16(GUEST_TR_SELECTOR, vmcs12->guest_tr_selector);
		vmcs_write32(GUEST_ES_LIMIT, vmcs12->guest_es_limit);
		vmcs_write32(GUEST_CS_LIMIT, vmcs12->guest_cs_limit);
		vmcs_write32(GUEST_SS_LIMIT, vmcs12->guest_ss_limit);
		vmcs_write32(GUEST_DS_LIMIT, vmcs12->guest_ds_limit);
		vmcs_write32(GUEST_FS_LIMIT, vmcs12->guest_fs_limit);
		vmcs_write32(GUEST_GS_LIMIT, vmcs12->guest_gs_limit);
		vmcs_write32(GUEST_LDTR_LIMIT, vmcs12->guest_ldtr_limit);
		vmcs_write32(GUEST_TR_LIMIT, vmcs12->guest_tr_limit);
		vmcs_write32(GUEST_GDTR_LIMIT, vmcs12->guest_gdtr_limit);
		vmcs_write32(GUEST_IDTR_LIMIT, vmcs12->guest_idtr_limit);
2303 2304
		vmcs_write32(GUEST_CS_AR_BYTES, vmcs12->guest_cs_ar_bytes);
		vmcs_write32(GUEST_SS_AR_BYTES, vmcs12->guest_ss_ar_bytes);
2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340
		vmcs_write32(GUEST_ES_AR_BYTES, vmcs12->guest_es_ar_bytes);
		vmcs_write32(GUEST_DS_AR_BYTES, vmcs12->guest_ds_ar_bytes);
		vmcs_write32(GUEST_FS_AR_BYTES, vmcs12->guest_fs_ar_bytes);
		vmcs_write32(GUEST_GS_AR_BYTES, vmcs12->guest_gs_ar_bytes);
		vmcs_write32(GUEST_LDTR_AR_BYTES, vmcs12->guest_ldtr_ar_bytes);
		vmcs_write32(GUEST_TR_AR_BYTES, vmcs12->guest_tr_ar_bytes);
		vmcs_writel(GUEST_ES_BASE, vmcs12->guest_es_base);
		vmcs_writel(GUEST_CS_BASE, vmcs12->guest_cs_base);
		vmcs_writel(GUEST_SS_BASE, vmcs12->guest_ss_base);
		vmcs_writel(GUEST_DS_BASE, vmcs12->guest_ds_base);
		vmcs_writel(GUEST_FS_BASE, vmcs12->guest_fs_base);
		vmcs_writel(GUEST_GS_BASE, vmcs12->guest_gs_base);
		vmcs_writel(GUEST_LDTR_BASE, vmcs12->guest_ldtr_base);
		vmcs_writel(GUEST_TR_BASE, vmcs12->guest_tr_base);
		vmcs_writel(GUEST_GDTR_BASE, vmcs12->guest_gdtr_base);
		vmcs_writel(GUEST_IDTR_BASE, vmcs12->guest_idtr_base);
	}

	if (!hv_evmcs || !(hv_evmcs->hv_clean_fields &
			   HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_GRP1)) {
		vmcs_write32(GUEST_SYSENTER_CS, vmcs12->guest_sysenter_cs);
		vmcs_writel(GUEST_PENDING_DBG_EXCEPTIONS,
			    vmcs12->guest_pending_dbg_exceptions);
		vmcs_writel(GUEST_SYSENTER_ESP, vmcs12->guest_sysenter_esp);
		vmcs_writel(GUEST_SYSENTER_EIP, vmcs12->guest_sysenter_eip);

		/*
		 * L1 may access the L2's PDPTR, so save them to construct
		 * vmcs12
		 */
		if (enable_ept) {
			vmcs_write64(GUEST_PDPTR0, vmcs12->guest_pdptr0);
			vmcs_write64(GUEST_PDPTR1, vmcs12->guest_pdptr1);
			vmcs_write64(GUEST_PDPTR2, vmcs12->guest_pdptr2);
			vmcs_write64(GUEST_PDPTR3, vmcs12->guest_pdptr3);
		}
2341 2342 2343 2344

		if (kvm_mpx_supported() && vmx->nested.nested_run_pending &&
		    (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_BNDCFGS))
			vmcs_write64(GUEST_BNDCFGS, vmcs12->guest_bndcfgs);
2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375
	}

	if (nested_cpu_has_xsaves(vmcs12))
		vmcs_write64(XSS_EXIT_BITMAP, vmcs12->xss_exit_bitmap);

	/*
	 * Whether page-faults are trapped is determined by a combination of
	 * 3 settings: PFEC_MASK, PFEC_MATCH and EXCEPTION_BITMAP.PF.
	 * If enable_ept, L0 doesn't care about page faults and we should
	 * set all of these to L1's desires. However, if !enable_ept, L0 does
	 * care about (at least some) page faults, and because it is not easy
	 * (if at all possible?) to merge L0 and L1's desires, we simply ask
	 * to exit on each and every L2 page fault. This is done by setting
	 * MASK=MATCH=0 and (see below) EB.PF=1.
	 * Note that below we don't need special code to set EB.PF beyond the
	 * "or"ing of the EB of vmcs01 and vmcs12, because when enable_ept,
	 * vmcs01's EB.PF is 0 so the "or" will take vmcs12's value, and when
	 * !enable_ept, EB.PF is 1, so the "or" will always be 1.
	 */
	vmcs_write32(PAGE_FAULT_ERROR_CODE_MASK,
		enable_ept ? vmcs12->page_fault_error_code_mask : 0);
	vmcs_write32(PAGE_FAULT_ERROR_CODE_MATCH,
		enable_ept ? vmcs12->page_fault_error_code_match : 0);

	if (cpu_has_vmx_apicv()) {
		vmcs_write64(EOI_EXIT_BITMAP0, vmcs12->eoi_exit_bitmap0);
		vmcs_write64(EOI_EXIT_BITMAP1, vmcs12->eoi_exit_bitmap1);
		vmcs_write64(EOI_EXIT_BITMAP2, vmcs12->eoi_exit_bitmap2);
		vmcs_write64(EOI_EXIT_BITMAP3, vmcs12->eoi_exit_bitmap3);
	}

2376 2377 2378 2379 2380 2381 2382
	/*
	 * Make sure the msr_autostore list is up to date before we set the
	 * count in the vmcs02.
	 */
	prepare_vmx_msr_autostore_list(&vmx->vcpu, MSR_IA32_TSC);

	vmcs_write32(VM_EXIT_MSR_STORE_COUNT, vmx->msr_autostore.guest.nr);
2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402 2403 2404
	vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, vmx->msr_autoload.host.nr);
	vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, vmx->msr_autoload.guest.nr);

	set_cr4_guest_host_mask(vmx);
}

/*
 * prepare_vmcs02 is called when the L1 guest hypervisor runs its nested
 * L2 guest. L1 has a vmcs for L2 (vmcs12), and this function "merges" it
 * with L0's requirements for its guest (a.k.a. vmcs01), so we can run the L2
 * guest in a way that will both be appropriate to L1's requests, and our
 * needs. In addition to modifying the active vmcs (which is vmcs02), this
 * function also has additional necessary side-effects, like setting various
 * vcpu->arch fields.
 * Returns 0 on success, 1 on failure. Invalid state exit qualification code
 * is assigned to entry_failure_code on failure.
 */
static int prepare_vmcs02(struct kvm_vcpu *vcpu, struct vmcs12 *vmcs12,
			  u32 *entry_failure_code)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct hv_enlightened_vmcs *hv_evmcs = vmx->nested.hv_evmcs;
2405
	bool load_guest_pdptrs_vmcs12 = false;
2406

2407
	if (vmx->nested.dirty_vmcs12 || hv_evmcs) {
2408
		prepare_vmcs02_rare(vmx, vmcs12);
2409 2410
		vmx->nested.dirty_vmcs12 = false;

2411 2412 2413
		load_guest_pdptrs_vmcs12 = !hv_evmcs ||
			!(hv_evmcs->hv_clean_fields &
			  HV_VMX_ENLIGHTENED_CLEAN_FIELD_GUEST_GRP1);
2414 2415 2416 2417 2418 2419 2420 2421 2422 2423
	}

	if (vmx->nested.nested_run_pending &&
	    (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_DEBUG_CONTROLS)) {
		kvm_set_dr(vcpu, 7, vmcs12->guest_dr7);
		vmcs_write64(GUEST_IA32_DEBUGCTL, vmcs12->guest_ia32_debugctl);
	} else {
		kvm_set_dr(vcpu, 7, vcpu->arch.dr7);
		vmcs_write64(GUEST_IA32_DEBUGCTL, vmx->nested.vmcs01_debugctl);
	}
2424 2425 2426
	if (kvm_mpx_supported() && (!vmx->nested.nested_run_pending ||
	    !(vmcs12->vm_entry_controls & VM_ENTRY_LOAD_BNDCFGS)))
		vmcs_write64(GUEST_BNDCFGS, vmx->nested.vmcs01_guest_bndcfgs);
2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456 2457 2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468
	vmx_set_rflags(vcpu, vmcs12->guest_rflags);

	/* EXCEPTION_BITMAP and CR0_GUEST_HOST_MASK should basically be the
	 * bitwise-or of what L1 wants to trap for L2, and what we want to
	 * trap. Note that CR0.TS also needs updating - we do this later.
	 */
	update_exception_bitmap(vcpu);
	vcpu->arch.cr0_guest_owned_bits &= ~vmcs12->cr0_guest_host_mask;
	vmcs_writel(CR0_GUEST_HOST_MASK, ~vcpu->arch.cr0_guest_owned_bits);

	if (vmx->nested.nested_run_pending &&
	    (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_PAT)) {
		vmcs_write64(GUEST_IA32_PAT, vmcs12->guest_ia32_pat);
		vcpu->arch.pat = vmcs12->guest_ia32_pat;
	} else if (vmcs_config.vmentry_ctrl & VM_ENTRY_LOAD_IA32_PAT) {
		vmcs_write64(GUEST_IA32_PAT, vmx->vcpu.arch.pat);
	}

	vmcs_write64(TSC_OFFSET, vcpu->arch.tsc_offset);

	if (kvm_has_tsc_control)
		decache_tsc_multiplier(vmx);

	if (enable_vpid) {
		/*
		 * There is no direct mapping between vpid02 and vpid12, the
		 * vpid02 is per-vCPU for L0 and reused while the value of
		 * vpid12 is changed w/ one invvpid during nested vmentry.
		 * The vpid12 is allocated by L1 for L2, so it will not
		 * influence global bitmap(for vpid01 and vpid02 allocation)
		 * even if spawn a lot of nested vCPUs.
		 */
		if (nested_cpu_has_vpid(vmcs12) && nested_has_guest_tlb_tag(vcpu)) {
			if (vmcs12->virtual_processor_id != vmx->nested.last_vpid) {
				vmx->nested.last_vpid = vmcs12->virtual_processor_id;
				__vmx_flush_tlb(vcpu, nested_get_vpid02(vcpu), false);
			}
		} else {
			/*
			 * If L1 use EPT, then L0 needs to execute INVEPT on
			 * EPTP02 instead of EPTP01. Therefore, delay TLB
			 * flush until vmcs02->eptp is fully updated by
2469
			 * KVM_REQ_LOAD_MMU_PGD. Note that this assumes
2470
			 * KVM_REQ_TLB_FLUSH is evaluated after
2471
			 * KVM_REQ_LOAD_MMU_PGD in vcpu_enter_guest().
2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504
			 */
			kvm_make_request(KVM_REQ_TLB_FLUSH, vcpu);
		}
	}

	if (nested_cpu_has_ept(vmcs12))
		nested_ept_init_mmu_context(vcpu);

	/*
	 * This sets GUEST_CR0 to vmcs12->guest_cr0, possibly modifying those
	 * bits which we consider mandatory enabled.
	 * The CR0_READ_SHADOW is what L2 should have expected to read given
	 * the specifications by L1; It's not enough to take
	 * vmcs12->cr0_read_shadow because on our cr0_guest_host_mask we we
	 * have more bits than L1 expected.
	 */
	vmx_set_cr0(vcpu, vmcs12->guest_cr0);
	vmcs_writel(CR0_READ_SHADOW, nested_read_cr0(vmcs12));

	vmx_set_cr4(vcpu, vmcs12->guest_cr4);
	vmcs_writel(CR4_READ_SHADOW, nested_read_cr4(vmcs12));

	vcpu->arch.efer = nested_vmx_calc_efer(vmx, vmcs12);
	/* Note: may modify VM_ENTRY/EXIT_CONTROLS and GUEST/HOST_IA32_EFER */
	vmx_set_efer(vcpu, vcpu->arch.efer);

	/*
	 * Guest state is invalid and unrestricted guest is disabled,
	 * which means L1 attempted VMEntry to L2 with invalid state.
	 * Fail the VMEntry.
	 */
	if (vmx->emulation_required) {
		*entry_failure_code = ENTRY_FAIL_DEFAULT;
2505
		return -EINVAL;
2506 2507 2508 2509 2510
	}

	/* Shadow page tables on either EPT or shadow page tables. */
	if (nested_vmx_load_cr3(vcpu, vmcs12->guest_cr3, nested_cpu_has_ept(vmcs12),
				entry_failure_code))
2511
		return -EINVAL;
2512

2513 2514 2515
	/*
	 * Immediately write vmcs02.GUEST_CR3.  It will be propagated to vmcs12
	 * on nested VM-Exit, which can occur without actually running L2 and
2516
	 * thus without hitting vmx_load_mmu_pgd(), e.g. if L1 is entering L2 with
2517 2518 2519 2520 2521 2522
	 * vmcs12.GUEST_ACTIVITYSTATE=HLT, in which case KVM will intercept the
	 * transition to HLT instead of running L2.
	 */
	if (enable_ept)
		vmcs_writel(GUEST_CR3, vmcs12->guest_cr3);

2523 2524 2525 2526 2527 2528 2529 2530 2531
	/* Late preparation of GUEST_PDPTRs now that EFER and CRs are set. */
	if (load_guest_pdptrs_vmcs12 && nested_cpu_has_ept(vmcs12) &&
	    is_pae_paging(vcpu)) {
		vmcs_write64(GUEST_PDPTR0, vmcs12->guest_pdptr0);
		vmcs_write64(GUEST_PDPTR1, vmcs12->guest_pdptr1);
		vmcs_write64(GUEST_PDPTR2, vmcs12->guest_pdptr2);
		vmcs_write64(GUEST_PDPTR3, vmcs12->guest_pdptr3);
	}

2532 2533 2534
	if (!enable_ept)
		vcpu->arch.walk_mmu->inject_page_fault = vmx_inject_page_fault_nested;

2535
	if ((vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL) &&
2536 2537
	    WARN_ON_ONCE(kvm_set_msr(vcpu, MSR_CORE_PERF_GLOBAL_CTRL,
				     vmcs12->guest_ia32_perf_global_ctrl)))
2538 2539
		return -EINVAL;

2540 2541
	kvm_rsp_write(vcpu, vmcs12->guest_rsp);
	kvm_rip_write(vcpu, vmcs12->guest_rip);
2542 2543 2544 2545 2546
	return 0;
}

static int nested_vmx_check_nmi_controls(struct vmcs12 *vmcs12)
{
2547 2548
	if (CC(!nested_cpu_has_nmi_exiting(vmcs12) &&
	       nested_cpu_has_virtual_nmis(vmcs12)))
2549 2550
		return -EINVAL;

2551
	if (CC(!nested_cpu_has_virtual_nmis(vmcs12) &&
2552
	       nested_cpu_has(vmcs12, CPU_BASED_NMI_WINDOW_EXITING)))
2553 2554 2555 2556 2557
		return -EINVAL;

	return 0;
}

2558
static bool nested_vmx_check_eptp(struct kvm_vcpu *vcpu, u64 new_eptp)
2559 2560 2561 2562 2563
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	int maxphyaddr = cpuid_maxphyaddr(vcpu);

	/* Check for memory type validity */
2564
	switch (new_eptp & VMX_EPTP_MT_MASK) {
2565
	case VMX_EPTP_MT_UC:
2566
		if (CC(!(vmx->nested.msrs.ept_caps & VMX_EPTP_UC_BIT)))
2567 2568 2569
			return false;
		break;
	case VMX_EPTP_MT_WB:
2570
		if (CC(!(vmx->nested.msrs.ept_caps & VMX_EPTP_WB_BIT)))
2571 2572 2573 2574 2575 2576
			return false;
		break;
	default:
		return false;
	}

2577
	/* Page-walk levels validity. */
2578
	switch (new_eptp & VMX_EPTP_PWL_MASK) {
2579 2580 2581 2582 2583 2584 2585 2586 2587
	case VMX_EPTP_PWL_5:
		if (CC(!(vmx->nested.msrs.ept_caps & VMX_EPT_PAGE_WALK_5_BIT)))
			return false;
		break;
	case VMX_EPTP_PWL_4:
		if (CC(!(vmx->nested.msrs.ept_caps & VMX_EPT_PAGE_WALK_4_BIT)))
			return false;
		break;
	default:
2588
		return false;
2589
	}
2590 2591

	/* Reserved bits should not be set */
2592
	if (CC(new_eptp >> maxphyaddr || ((new_eptp >> 7) & 0x1f)))
2593 2594 2595
		return false;

	/* AD, if set, should be supported */
2596
	if (new_eptp & VMX_EPTP_AD_ENABLE_BIT) {
2597
		if (CC(!(vmx->nested.msrs.ept_caps & VMX_EPT_AD_BIT)))
2598 2599 2600 2601 2602 2603
			return false;
	}

	return true;
}

2604 2605 2606 2607 2608
/*
 * Checks related to VM-Execution Control Fields
 */
static int nested_check_vm_execution_controls(struct kvm_vcpu *vcpu,
                                              struct vmcs12 *vmcs12)
2609 2610 2611
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

2612 2613 2614 2615 2616 2617
	if (CC(!vmx_control_verify(vmcs12->pin_based_vm_exec_control,
				   vmx->nested.msrs.pinbased_ctls_low,
				   vmx->nested.msrs.pinbased_ctls_high)) ||
	    CC(!vmx_control_verify(vmcs12->cpu_based_vm_exec_control,
				   vmx->nested.msrs.procbased_ctls_low,
				   vmx->nested.msrs.procbased_ctls_high)))
2618
		return -EINVAL;
2619

2620
	if (nested_cpu_has(vmcs12, CPU_BASED_ACTIVATE_SECONDARY_CONTROLS) &&
2621 2622 2623
	    CC(!vmx_control_verify(vmcs12->secondary_vm_exec_control,
				   vmx->nested.msrs.secondary_ctls_low,
				   vmx->nested.msrs.secondary_ctls_high)))
2624 2625
		return -EINVAL;

2626
	if (CC(vmcs12->cr3_target_count > nested_cpu_vmx_misc_cr3_count(vcpu)) ||
2627 2628 2629 2630 2631 2632 2633 2634 2635 2636
	    nested_vmx_check_io_bitmap_controls(vcpu, vmcs12) ||
	    nested_vmx_check_msr_bitmap_controls(vcpu, vmcs12) ||
	    nested_vmx_check_tpr_shadow_controls(vcpu, vmcs12) ||
	    nested_vmx_check_apic_access_controls(vcpu, vmcs12) ||
	    nested_vmx_check_apicv_controls(vcpu, vmcs12) ||
	    nested_vmx_check_nmi_controls(vmcs12) ||
	    nested_vmx_check_pml_controls(vcpu, vmcs12) ||
	    nested_vmx_check_unrestricted_guest_controls(vcpu, vmcs12) ||
	    nested_vmx_check_mode_based_ept_exec_controls(vcpu, vmcs12) ||
	    nested_vmx_check_shadow_vmcs_controls(vcpu, vmcs12) ||
2637
	    CC(nested_cpu_has_vpid(vmcs12) && !vmcs12->virtual_processor_id))
2638 2639
		return -EINVAL;

2640 2641 2642 2643
	if (!nested_cpu_has_preemption_timer(vmcs12) &&
	    nested_cpu_has_save_preemption_timer(vmcs12))
		return -EINVAL;

2644
	if (nested_cpu_has_ept(vmcs12) &&
2645
	    CC(!nested_vmx_check_eptp(vcpu, vmcs12->ept_pointer)))
2646
		return -EINVAL;
2647 2648

	if (nested_cpu_has_vmfunc(vmcs12)) {
2649 2650
		if (CC(vmcs12->vm_function_control &
		       ~vmx->nested.msrs.vmfunc_controls))
2651
			return -EINVAL;
2652 2653

		if (nested_cpu_has_eptp_switching(vmcs12)) {
2654 2655
			if (CC(!nested_cpu_has_ept(vmcs12)) ||
			    CC(!page_address_valid(vcpu, vmcs12->eptp_list_address)))
2656
				return -EINVAL;
2657 2658 2659
		}
	}

2660 2661 2662
	return 0;
}

2663 2664 2665 2666 2667 2668 2669 2670
/*
 * Checks related to VM-Exit Control Fields
 */
static int nested_check_vm_exit_controls(struct kvm_vcpu *vcpu,
                                         struct vmcs12 *vmcs12)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

2671 2672 2673 2674
	if (CC(!vmx_control_verify(vmcs12->vm_exit_controls,
				    vmx->nested.msrs.exit_ctls_low,
				    vmx->nested.msrs.exit_ctls_high)) ||
	    CC(nested_vmx_check_exit_msr_switch_controls(vcpu, vmcs12)))
2675 2676 2677 2678 2679
		return -EINVAL;

	return 0;
}

2680 2681 2682 2683 2684
/*
 * Checks related to VM-Entry Control Fields
 */
static int nested_check_vm_entry_controls(struct kvm_vcpu *vcpu,
					  struct vmcs12 *vmcs12)
2685 2686
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
2687

2688 2689 2690
	if (CC(!vmx_control_verify(vmcs12->vm_entry_controls,
				    vmx->nested.msrs.entry_ctls_low,
				    vmx->nested.msrs.entry_ctls_high)))
2691
		return -EINVAL;
2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709

	/*
	 * From the Intel SDM, volume 3:
	 * Fields relevant to VM-entry event injection must be set properly.
	 * These fields are the VM-entry interruption-information field, the
	 * VM-entry exception error code, and the VM-entry instruction length.
	 */
	if (vmcs12->vm_entry_intr_info_field & INTR_INFO_VALID_MASK) {
		u32 intr_info = vmcs12->vm_entry_intr_info_field;
		u8 vector = intr_info & INTR_INFO_VECTOR_MASK;
		u32 intr_type = intr_info & INTR_INFO_INTR_TYPE_MASK;
		bool has_error_code = intr_info & INTR_INFO_DELIVER_CODE_MASK;
		bool should_have_error_code;
		bool urg = nested_cpu_has2(vmcs12,
					   SECONDARY_EXEC_UNRESTRICTED_GUEST);
		bool prot_mode = !urg || vmcs12->guest_cr0 & X86_CR0_PE;

		/* VM-entry interruption-info field: interruption type */
2710 2711 2712
		if (CC(intr_type == INTR_TYPE_RESERVED) ||
		    CC(intr_type == INTR_TYPE_OTHER_EVENT &&
		       !nested_cpu_supports_monitor_trap_flag(vcpu)))
2713
			return -EINVAL;
2714 2715

		/* VM-entry interruption-info field: vector */
2716 2717 2718
		if (CC(intr_type == INTR_TYPE_NMI_INTR && vector != NMI_VECTOR) ||
		    CC(intr_type == INTR_TYPE_HARD_EXCEPTION && vector > 31) ||
		    CC(intr_type == INTR_TYPE_OTHER_EVENT && vector != 0))
2719
			return -EINVAL;
2720 2721 2722 2723 2724

		/* VM-entry interruption-info field: deliver error code */
		should_have_error_code =
			intr_type == INTR_TYPE_HARD_EXCEPTION && prot_mode &&
			x86_exception_has_error_code(vector);
2725
		if (CC(has_error_code != should_have_error_code))
2726
			return -EINVAL;
2727 2728

		/* VM-entry exception error code */
2729
		if (CC(has_error_code &&
2730
		       vmcs12->vm_entry_exception_error_code & GENMASK(31, 16)))
2731
			return -EINVAL;
2732 2733

		/* VM-entry interruption-info field: reserved bits */
2734
		if (CC(intr_info & INTR_INFO_RESVD_BITS_MASK))
2735
			return -EINVAL;
2736 2737 2738 2739 2740 2741

		/* VM-entry instruction length */
		switch (intr_type) {
		case INTR_TYPE_SOFT_EXCEPTION:
		case INTR_TYPE_SOFT_INTR:
		case INTR_TYPE_PRIV_SW_EXCEPTION:
2742 2743 2744
			if (CC(vmcs12->vm_entry_instruction_len > 15) ||
			    CC(vmcs12->vm_entry_instruction_len == 0 &&
			    CC(!nested_cpu_has_zero_length_injection(vcpu))))
2745
				return -EINVAL;
2746 2747 2748
		}
	}

2749 2750 2751 2752 2753 2754
	if (nested_vmx_check_entry_msr_switch_controls(vcpu, vmcs12))
		return -EINVAL;

	return 0;
}

2755 2756 2757 2758 2759 2760
static int nested_vmx_check_controls(struct kvm_vcpu *vcpu,
				     struct vmcs12 *vmcs12)
{
	if (nested_check_vm_execution_controls(vcpu, vmcs12) ||
	    nested_check_vm_exit_controls(vcpu, vmcs12) ||
	    nested_check_vm_entry_controls(vcpu, vmcs12))
2761
		return -EINVAL;
2762

2763 2764 2765
	if (to_vmx(vcpu)->nested.enlightened_vmcs_enabled)
		return nested_evmcs_check_controls(vmcs12);

2766 2767 2768
	return 0;
}

2769 2770
static int nested_vmx_check_host_state(struct kvm_vcpu *vcpu,
				       struct vmcs12 *vmcs12)
2771 2772 2773
{
	bool ia32e;

2774 2775 2776
	if (CC(!nested_host_cr0_valid(vcpu, vmcs12->host_cr0)) ||
	    CC(!nested_host_cr4_valid(vcpu, vmcs12->host_cr4)) ||
	    CC(!nested_cr3_valid(vcpu, vmcs12->host_cr3)))
2777
		return -EINVAL;
2778

2779 2780
	if (CC(is_noncanonical_address(vmcs12->host_ia32_sysenter_esp, vcpu)) ||
	    CC(is_noncanonical_address(vmcs12->host_ia32_sysenter_eip, vcpu)))
2781 2782
		return -EINVAL;

2783
	if ((vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_PAT) &&
2784
	    CC(!kvm_pat_valid(vmcs12->host_ia32_pat)))
2785 2786
		return -EINVAL;

2787 2788 2789 2790 2791
	if ((vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL) &&
	    CC(!kvm_valid_perf_global_ctrl(vcpu_to_pmu(vcpu),
					   vmcs12->host_ia32_perf_global_ctrl)))
		return -EINVAL;

2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806 2807 2808
#ifdef CONFIG_X86_64
	ia32e = !!(vcpu->arch.efer & EFER_LMA);
#else
	ia32e = false;
#endif

	if (ia32e) {
		if (CC(!(vmcs12->vm_exit_controls & VM_EXIT_HOST_ADDR_SPACE_SIZE)) ||
		    CC(!(vmcs12->host_cr4 & X86_CR4_PAE)))
			return -EINVAL;
	} else {
		if (CC(vmcs12->vm_exit_controls & VM_EXIT_HOST_ADDR_SPACE_SIZE) ||
		    CC(vmcs12->vm_entry_controls & VM_ENTRY_IA32E_MODE) ||
		    CC(vmcs12->host_cr4 & X86_CR4_PCIDE) ||
		    CC((vmcs12->host_rip) >> 32))
			return -EINVAL;
	}
2809

2810 2811 2812 2813 2814 2815 2816 2817 2818 2819
	if (CC(vmcs12->host_cs_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_ss_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_ds_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_es_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_fs_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_gs_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_tr_selector & (SEGMENT_RPL_MASK | SEGMENT_TI_MASK)) ||
	    CC(vmcs12->host_cs_selector == 0) ||
	    CC(vmcs12->host_tr_selector == 0) ||
	    CC(vmcs12->host_ss_selector == 0 && !ia32e))
2820 2821
		return -EINVAL;

2822 2823 2824 2825
	if (CC(is_noncanonical_address(vmcs12->host_fs_base, vcpu)) ||
	    CC(is_noncanonical_address(vmcs12->host_gs_base, vcpu)) ||
	    CC(is_noncanonical_address(vmcs12->host_gdtr_base, vcpu)) ||
	    CC(is_noncanonical_address(vmcs12->host_idtr_base, vcpu)) ||
2826 2827
	    CC(is_noncanonical_address(vmcs12->host_tr_base, vcpu)) ||
	    CC(is_noncanonical_address(vmcs12->host_rip, vcpu)))
2828
		return -EINVAL;
2829

2830 2831 2832 2833 2834 2835 2836
	/*
	 * If the load IA32_EFER VM-exit control is 1, bits reserved in the
	 * IA32_EFER MSR must be 0 in the field for that register. In addition,
	 * the values of the LMA and LME bits in the field must each be that of
	 * the host address-space size VM-exit control.
	 */
	if (vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_EFER) {
2837 2838 2839
		if (CC(!kvm_valid_efer(vcpu, vmcs12->host_ia32_efer)) ||
		    CC(ia32e != !!(vmcs12->host_ia32_efer & EFER_LMA)) ||
		    CC(ia32e != !!(vmcs12->host_ia32_efer & EFER_LME)))
2840
			return -EINVAL;
2841 2842
	}

2843 2844 2845 2846 2847 2848
	return 0;
}

static int nested_vmx_check_vmcs_link_ptr(struct kvm_vcpu *vcpu,
					  struct vmcs12 *vmcs12)
{
2849
	int r = 0;
2850
	struct vmcs12 *shadow;
2851
	struct kvm_host_map map;
2852 2853 2854 2855

	if (vmcs12->vmcs_link_pointer == -1ull)
		return 0;

2856
	if (CC(!page_address_valid(vcpu, vmcs12->vmcs_link_pointer)))
2857 2858
		return -EINVAL;

2859
	if (CC(kvm_vcpu_map(vcpu, gpa_to_gfn(vmcs12->vmcs_link_pointer), &map)))
2860 2861
		return -EINVAL;

2862 2863
	shadow = map.hva;

2864 2865
	if (CC(shadow->hdr.revision_id != VMCS12_REVISION) ||
	    CC(shadow->hdr.shadow_vmcs != nested_cpu_has_shadow_vmcs(vmcs12)))
2866
		r = -EINVAL;
2867 2868

	kvm_vcpu_unmap(vcpu, &map, false);
2869 2870 2871
	return r;
}

2872 2873 2874 2875 2876
/*
 * Checks related to Guest Non-register State
 */
static int nested_check_guest_non_reg_state(struct vmcs12 *vmcs12)
{
2877 2878
	if (CC(vmcs12->guest_activity_state != GUEST_ACTIVITY_ACTIVE &&
	       vmcs12->guest_activity_state != GUEST_ACTIVITY_HLT))
2879 2880 2881 2882 2883
		return -EINVAL;

	return 0;
}

2884 2885 2886
static int nested_vmx_check_guest_state(struct kvm_vcpu *vcpu,
					struct vmcs12 *vmcs12,
					u32 *exit_qual)
2887 2888 2889 2890 2891
{
	bool ia32e;

	*exit_qual = ENTRY_FAIL_DEFAULT;

2892 2893
	if (CC(!nested_guest_cr0_valid(vcpu, vmcs12->guest_cr0)) ||
	    CC(!nested_guest_cr4_valid(vcpu, vmcs12->guest_cr4)))
2894
		return -EINVAL;
2895

2896 2897 2898 2899
	if ((vmcs12->vm_entry_controls & VM_ENTRY_LOAD_DEBUG_CONTROLS) &&
	    CC(!kvm_dr7_valid(vmcs12->guest_dr7)))
		return -EINVAL;

2900
	if ((vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_PAT) &&
2901
	    CC(!kvm_pat_valid(vmcs12->guest_ia32_pat)))
2902
		return -EINVAL;
2903 2904 2905

	if (nested_vmx_check_vmcs_link_ptr(vcpu, vmcs12)) {
		*exit_qual = ENTRY_FAIL_VMCS_LINK_PTR;
2906
		return -EINVAL;
2907 2908
	}

2909 2910 2911 2912 2913
	if ((vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL) &&
	    CC(!kvm_valid_perf_global_ctrl(vcpu_to_pmu(vcpu),
					   vmcs12->guest_ia32_perf_global_ctrl)))
		return -EINVAL;

2914 2915 2916 2917 2918 2919 2920 2921 2922 2923 2924 2925
	/*
	 * If the load IA32_EFER VM-entry control is 1, the following checks
	 * are performed on the field for the IA32_EFER MSR:
	 * - Bits reserved in the IA32_EFER MSR must be 0.
	 * - Bit 10 (corresponding to IA32_EFER.LMA) must equal the value of
	 *   the IA-32e mode guest VM-exit control. It must also be identical
	 *   to bit 8 (LME) if bit 31 in the CR0 field (corresponding to
	 *   CR0.PG) is 1.
	 */
	if (to_vmx(vcpu)->nested.nested_run_pending &&
	    (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_IA32_EFER)) {
		ia32e = (vmcs12->vm_entry_controls & VM_ENTRY_IA32E_MODE) != 0;
2926 2927 2928 2929
		if (CC(!kvm_valid_efer(vcpu, vmcs12->guest_ia32_efer)) ||
		    CC(ia32e != !!(vmcs12->guest_ia32_efer & EFER_LMA)) ||
		    CC(((vmcs12->guest_cr0 & X86_CR0_PG) &&
		     ia32e != !!(vmcs12->guest_ia32_efer & EFER_LME))))
2930
			return -EINVAL;
2931 2932 2933
	}

	if ((vmcs12->vm_entry_controls & VM_ENTRY_LOAD_BNDCFGS) &&
2934 2935
	    (CC(is_noncanonical_address(vmcs12->guest_bndcfgs & PAGE_MASK, vcpu)) ||
	     CC((vmcs12->guest_bndcfgs & MSR_IA32_BNDCFGS_RSVD))))
2936
		return -EINVAL;
2937

2938
	if (nested_check_guest_non_reg_state(vmcs12))
2939
		return -EINVAL;
2940 2941 2942 2943

	return 0;
}

2944
static int nested_vmx_check_vmentry_hw(struct kvm_vcpu *vcpu)
2945 2946 2947
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	unsigned long cr3, cr4;
2948
	bool vm_fail;
2949 2950 2951 2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964

	if (!nested_early_check)
		return 0;

	if (vmx->msr_autoload.host.nr)
		vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, 0);
	if (vmx->msr_autoload.guest.nr)
		vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, 0);

	preempt_disable();

	vmx_prepare_switch_to_guest(vcpu);

	/*
	 * Induce a consistency check VMExit by clearing bit 1 in GUEST_RFLAGS,
	 * which is reserved to '1' by hardware.  GUEST_RFLAGS is guaranteed to
M
Miaohe Lin 已提交
2965
	 * be written (by prepare_vmcs02()) before the "real" VMEnter, i.e.
2966 2967 2968 2969 2970 2971 2972 2973 2974 2975 2976 2977 2978 2979 2980 2981 2982
	 * there is no need to preserve other bits or save/restore the field.
	 */
	vmcs_writel(GUEST_RFLAGS, 0);

	cr3 = __get_current_cr3_fast();
	if (unlikely(cr3 != vmx->loaded_vmcs->host_state.cr3)) {
		vmcs_writel(HOST_CR3, cr3);
		vmx->loaded_vmcs->host_state.cr3 = cr3;
	}

	cr4 = cr4_read_shadow();
	if (unlikely(cr4 != vmx->loaded_vmcs->host_state.cr4)) {
		vmcs_writel(HOST_CR4, cr4);
		vmx->loaded_vmcs->host_state.cr4 = cr4;
	}

	asm(
2983
		"sub $%c[wordsize], %%" _ASM_SP "\n\t" /* temporarily adjust RSP for CALL */
2984 2985
		"cmp %%" _ASM_SP ", %c[host_state_rsp](%[loaded_vmcs]) \n\t"
		"je 1f \n\t"
2986
		__ex("vmwrite %%" _ASM_SP ", %[HOST_RSP]") "\n\t"
2987 2988
		"mov %%" _ASM_SP ", %c[host_state_rsp](%[loaded_vmcs]) \n\t"
		"1: \n\t"
2989
		"add $%c[wordsize], %%" _ASM_SP "\n\t" /* un-adjust RSP */
2990 2991

		/* Check if vmlaunch or vmresume is needed */
2992
		"cmpb $0, %c[launched](%[loaded_vmcs])\n\t"
2993

2994 2995 2996 2997
		/*
		 * VMLAUNCH and VMRESUME clear RFLAGS.{CF,ZF} on VM-Exit, set
		 * RFLAGS.CF on VM-Fail Invalid and set RFLAGS.ZF on VM-Fail
		 * Valid.  vmx_vmenter() directly "returns" RFLAGS, and so the
2998
		 * results of VM-Enter is captured via CC_{SET,OUT} to vm_fail.
2999
		 */
3000 3001
		"call vmx_vmenter\n\t"

3002 3003
		CC_SET(be)
	      : ASM_CALL_CONSTRAINT, CC_OUT(be) (vm_fail)
3004
	      :	[HOST_RSP]"r"((unsigned long)HOST_RSP),
3005 3006
		[loaded_vmcs]"r"(vmx->loaded_vmcs),
		[launched]"i"(offsetof(struct loaded_vmcs, launched)),
3007
		[host_state_rsp]"i"(offsetof(struct loaded_vmcs, host_state.rsp)),
3008
		[wordsize]"i"(sizeof(ulong))
3009
	      : "memory"
3010 3011 3012 3013 3014 3015 3016
	);

	if (vmx->msr_autoload.host.nr)
		vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, vmx->msr_autoload.host.nr);
	if (vmx->msr_autoload.guest.nr)
		vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, vmx->msr_autoload.guest.nr);

3017
	if (vm_fail) {
3018 3019
		u32 error = vmcs_read32(VM_INSTRUCTION_ERROR);

3020
		preempt_enable();
3021 3022 3023 3024

		trace_kvm_nested_vmenter_failed(
			"early hardware check VM-instruction error: ", error);
		WARN_ON_ONCE(error != VMXERR_ENTRY_INVALID_CONTROL_FIELD);
3025 3026 3027 3028 3029 3030 3031 3032 3033
		return 1;
	}

	/*
	 * VMExit clears RFLAGS.IF and DR7, even on a consistency check.
	 */
	local_irq_enable();
	if (hw_breakpoint_active())
		set_debugreg(__this_cpu_read(cpu_dr7), 7);
3034
	preempt_enable();
3035 3036 3037 3038 3039 3040 3041 3042 3043 3044 3045 3046 3047 3048

	/*
	 * A non-failing VMEntry means we somehow entered guest mode with
	 * an illegal RIP, and that's just the tip of the iceberg.  There
	 * is no telling what memory has been modified or what state has
	 * been exposed to unknown code.  Hitting this all but guarantees
	 * a (very critical) hardware issue.
	 */
	WARN_ON(!(vmcs_read32(VM_EXIT_REASON) &
		VMX_EXIT_REASONS_FAILED_VMENTRY));

	return 0;
}

3049
static bool nested_get_vmcs12_pages(struct kvm_vcpu *vcpu)
3050 3051 3052
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
3053
	struct kvm_host_map *map;
3054 3055 3056
	struct page *page;
	u64 hpa;

3057 3058 3059 3060 3061
	/*
	 * hv_evmcs may end up being not mapped after migration (when
	 * L2 was running), map it here to make sure vmcs12 changes are
	 * properly reflected.
	 */
3062 3063 3064 3065 3066 3067 3068 3069 3070 3071 3072 3073 3074 3075 3076
	if (vmx->nested.enlightened_vmcs_enabled && !vmx->nested.hv_evmcs) {
		enum nested_evmptrld_status evmptrld_status =
			nested_vmx_handle_enlightened_vmptrld(vcpu, false);

		if (evmptrld_status == EVMPTRLD_VMFAIL ||
		    evmptrld_status == EVMPTRLD_ERROR) {
			pr_debug_ratelimited("%s: enlightened vmptrld failed\n",
					     __func__);
			vcpu->run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
			vcpu->run->internal.suberror =
				KVM_INTERNAL_ERROR_EMULATION;
			vcpu->run->internal.ndata = 0;
			return false;
		}
	}
3077

3078 3079 3080 3081 3082 3083 3084 3085
	if (nested_cpu_has2(vmcs12, SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES)) {
		/*
		 * Translate L1 physical address to host physical
		 * address for vmcs02. Keep the page pinned, so this
		 * physical address remains valid. We keep a reference
		 * to it so we can release it later.
		 */
		if (vmx->nested.apic_access_page) { /* shouldn't happen */
3086
			kvm_release_page_clean(vmx->nested.apic_access_page);
3087 3088 3089 3090 3091 3092 3093 3094
			vmx->nested.apic_access_page = NULL;
		}
		page = kvm_vcpu_gpa_to_page(vcpu, vmcs12->apic_access_addr);
		if (!is_error_page(page)) {
			vmx->nested.apic_access_page = page;
			hpa = page_to_phys(vmx->nested.apic_access_page);
			vmcs_write64(APIC_ACCESS_ADDR, hpa);
		} else {
3095 3096 3097 3098 3099 3100 3101
			pr_debug_ratelimited("%s: no backing 'struct page' for APIC-access address in vmcs12\n",
					     __func__);
			vcpu->run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
			vcpu->run->internal.suberror =
				KVM_INTERNAL_ERROR_EMULATION;
			vcpu->run->internal.ndata = 0;
			return false;
3102 3103 3104 3105
		}
	}

	if (nested_cpu_has(vmcs12, CPU_BASED_TPR_SHADOW)) {
3106
		map = &vmx->nested.virtual_apic_map;
3107

3108 3109
		if (!kvm_vcpu_map(vcpu, gpa_to_gfn(vmcs12->virtual_apic_page_addr), map)) {
			vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, pfn_to_hpa(map->pfn));
3110 3111 3112 3113 3114 3115 3116 3117 3118 3119 3120
		} else if (nested_cpu_has(vmcs12, CPU_BASED_CR8_LOAD_EXITING) &&
		           nested_cpu_has(vmcs12, CPU_BASED_CR8_STORE_EXITING) &&
			   !nested_cpu_has2(vmcs12, SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES)) {
			/*
			 * The processor will never use the TPR shadow, simply
			 * clear the bit from the execution control.  Such a
			 * configuration is useless, but it happens in tests.
			 * For any other configuration, failing the vm entry is
			 * _not_ what the processor does but it's basically the
			 * only possibility we have.
			 */
3121
			exec_controls_clearbit(vmx, CPU_BASED_TPR_SHADOW);
3122
		} else {
3123 3124 3125 3126 3127
			/*
			 * Write an illegal value to VIRTUAL_APIC_PAGE_ADDR to
			 * force VM-Entry to fail.
			 */
			vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, -1ull);
3128 3129 3130 3131
		}
	}

	if (nested_cpu_has_posted_intr(vmcs12)) {
3132 3133 3134 3135 3136 3137 3138 3139
		map = &vmx->nested.pi_desc_map;

		if (!kvm_vcpu_map(vcpu, gpa_to_gfn(vmcs12->posted_intr_desc_addr), map)) {
			vmx->nested.pi_desc =
				(struct pi_desc *)(((void *)map->hva) +
				offset_in_page(vmcs12->posted_intr_desc_addr));
			vmcs_write64(POSTED_INTR_DESC_ADDR,
				     pfn_to_hpa(map->pfn) + offset_in_page(vmcs12->posted_intr_desc_addr));
3140 3141 3142
		}
	}
	if (nested_vmx_prepare_msr_bitmap(vcpu, vmcs12))
3143
		exec_controls_setbit(vmx, CPU_BASED_USE_MSR_BITMAPS);
3144
	else
3145
		exec_controls_clearbit(vmx, CPU_BASED_USE_MSR_BITMAPS);
3146
	return true;
3147 3148 3149 3150 3151 3152 3153 3154 3155 3156 3157 3158 3159 3160 3161 3162 3163 3164 3165 3166 3167 3168 3169 3170 3171 3172 3173 3174 3175 3176 3177 3178 3179 3180 3181 3182 3183 3184
}

/*
 * Intel's VMX Instruction Reference specifies a common set of prerequisites
 * for running VMX instructions (except VMXON, whose prerequisites are
 * slightly different). It also specifies what exception to inject otherwise.
 * Note that many of these exceptions have priority over VM exits, so they
 * don't have to be checked again here.
 */
static int nested_vmx_check_permission(struct kvm_vcpu *vcpu)
{
	if (!to_vmx(vcpu)->nested.vmxon) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 0;
	}

	if (vmx_get_cpl(vcpu)) {
		kvm_inject_gp(vcpu, 0);
		return 0;
	}

	return 1;
}

static u8 vmx_has_apicv_interrupt(struct kvm_vcpu *vcpu)
{
	u8 rvi = vmx_get_rvi();
	u8 vppr = kvm_lapic_get_reg(vcpu->arch.apic, APIC_PROCPRI);

	return ((rvi & 0xf0) > (vppr & 0xf0));
}

static void load_vmcs12_host_state(struct kvm_vcpu *vcpu,
				   struct vmcs12 *vmcs12);

/*
 * If from_vmentry is false, this is being called from state restore (either RSM
 * or KVM_SET_NESTED_STATE).  Otherwise it's called from vmlaunch/vmresume.
3185 3186
 *
 * Returns:
3187 3188 3189 3190
 *	NVMX_VMENTRY_SUCCESS: Entered VMX non-root mode
 *	NVMX_VMENTRY_VMFAIL:  Consistency check VMFail
 *	NVMX_VMENTRY_VMEXIT:  Consistency check VMExit
 *	NVMX_VMENTRY_KVM_INTERNAL_ERROR: KVM internal error
3191
 */
3192 3193
enum nvmx_vmentry_status nested_vmx_enter_non_root_mode(struct kvm_vcpu *vcpu,
							bool from_vmentry)
3194 3195 3196 3197 3198 3199 3200
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	bool evaluate_pending_interrupts;
	u32 exit_reason = EXIT_REASON_INVALID_STATE;
	u32 exit_qual;

3201
	evaluate_pending_interrupts = exec_controls_get(vmx) &
3202
		(CPU_BASED_INTR_WINDOW_EXITING | CPU_BASED_NMI_WINDOW_EXITING);
3203 3204 3205 3206 3207 3208 3209 3210 3211
	if (likely(!evaluate_pending_interrupts) && kvm_vcpu_apicv_active(vcpu))
		evaluate_pending_interrupts |= vmx_has_apicv_interrupt(vcpu);

	if (!(vmcs12->vm_entry_controls & VM_ENTRY_LOAD_DEBUG_CONTROLS))
		vmx->nested.vmcs01_debugctl = vmcs_read64(GUEST_IA32_DEBUGCTL);
	if (kvm_mpx_supported() &&
		!(vmcs12->vm_entry_controls & VM_ENTRY_LOAD_BNDCFGS))
		vmx->nested.vmcs01_guest_bndcfgs = vmcs_read64(GUEST_BNDCFGS);

3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225 3226 3227 3228 3229 3230
	/*
	 * Overwrite vmcs01.GUEST_CR3 with L1's CR3 if EPT is disabled *and*
	 * nested early checks are disabled.  In the event of a "late" VM-Fail,
	 * i.e. a VM-Fail detected by hardware but not KVM, KVM must unwind its
	 * software model to the pre-VMEntry host state.  When EPT is disabled,
	 * GUEST_CR3 holds KVM's shadow CR3, not L1's "real" CR3, which causes
	 * nested_vmx_restore_host_state() to corrupt vcpu->arch.cr3.  Stuffing
	 * vmcs01.GUEST_CR3 results in the unwind naturally setting arch.cr3 to
	 * the correct value.  Smashing vmcs01.GUEST_CR3 is safe because nested
	 * VM-Exits, and the unwind, reset KVM's MMU, i.e. vmcs01.GUEST_CR3 is
	 * guaranteed to be overwritten with a shadow CR3 prior to re-entering
	 * L1.  Don't stuff vmcs01.GUEST_CR3 when using nested early checks as
	 * KVM modifies vcpu->arch.cr3 if and only if the early hardware checks
	 * pass, and early VM-Fails do not reset KVM's MMU, i.e. the VM-Fail
	 * path would need to manually save/restore vmcs01.GUEST_CR3.
	 */
	if (!enable_ept && !nested_early_check)
		vmcs_writel(GUEST_CR3, vcpu->arch.cr3);

3231 3232 3233 3234 3235
	vmx_switch_vmcs(vcpu, &vmx->nested.vmcs02);

	prepare_vmcs02_early(vmx, vmcs12);

	if (from_vmentry) {
3236 3237
		if (unlikely(!nested_get_vmcs12_pages(vcpu)))
			return NVMX_VMENTRY_KVM_INTERNAL_ERROR;
3238 3239 3240

		if (nested_vmx_check_vmentry_hw(vcpu)) {
			vmx_switch_vmcs(vcpu, &vmx->vmcs01);
3241
			return NVMX_VMENTRY_VMFAIL;
3242 3243
		}

3244
		if (nested_vmx_check_guest_state(vcpu, vmcs12, &exit_qual))
3245 3246 3247 3248
			goto vmentry_fail_vmexit;
	}

	enter_guest_mode(vcpu);
3249
	if (vmcs12->cpu_based_vm_exec_control & CPU_BASED_USE_TSC_OFFSETTING)
3250 3251 3252 3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263 3264 3265 3266 3267 3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279 3280 3281 3282 3283 3284 3285 3286 3287 3288 3289
		vcpu->arch.tsc_offset += vmcs12->tsc_offset;

	if (prepare_vmcs02(vcpu, vmcs12, &exit_qual))
		goto vmentry_fail_vmexit_guest_mode;

	if (from_vmentry) {
		exit_reason = EXIT_REASON_MSR_LOAD_FAIL;
		exit_qual = nested_vmx_load_msr(vcpu,
						vmcs12->vm_entry_msr_load_addr,
						vmcs12->vm_entry_msr_load_count);
		if (exit_qual)
			goto vmentry_fail_vmexit_guest_mode;
	} else {
		/*
		 * The MMU is not initialized to point at the right entities yet and
		 * "get pages" would need to read data from the guest (i.e. we will
		 * need to perform gpa to hpa translation). Request a call
		 * to nested_get_vmcs12_pages before the next VM-entry.  The MSRs
		 * have already been set at vmentry time and should not be reset.
		 */
		kvm_make_request(KVM_REQ_GET_VMCS12_PAGES, vcpu);
	}

	/*
	 * If L1 had a pending IRQ/NMI until it executed
	 * VMLAUNCH/VMRESUME which wasn't delivered because it was
	 * disallowed (e.g. interrupts disabled), L0 needs to
	 * evaluate if this pending event should cause an exit from L2
	 * to L1 or delivered directly to L2 (e.g. In case L1 don't
	 * intercept EXTERNAL_INTERRUPT).
	 *
	 * Usually this would be handled by the processor noticing an
	 * IRQ/NMI window request, or checking RVI during evaluation of
	 * pending virtual interrupts.  However, this setting was done
	 * on VMCS01 and now VMCS02 is active instead. Thus, we force L0
	 * to perform pending event evaluation by requesting a KVM_REQ_EVENT.
	 */
	if (unlikely(evaluate_pending_interrupts))
		kvm_make_request(KVM_REQ_EVENT, vcpu);

3290 3291 3292 3293 3294 3295 3296 3297 3298
	/*
	 * Do not start the preemption timer hrtimer until after we know
	 * we are successful, so that only nested_vmx_vmexit needs to cancel
	 * the timer.
	 */
	vmx->nested.preemption_timer_expired = false;
	if (nested_cpu_has_preemption_timer(vmcs12))
		vmx_start_preemption_timer(vcpu);

3299 3300 3301 3302 3303 3304
	/*
	 * Note no nested_vmx_succeed or nested_vmx_fail here. At this point
	 * we are no longer running L1, and VMLAUNCH/VMRESUME has not yet
	 * returned as far as L1 is concerned. It will only return (and set
	 * the success flag) when L2 exits (see nested_vmx_vmexit()).
	 */
3305
	return NVMX_VMENTRY_SUCCESS;
3306 3307 3308 3309 3310 3311 3312

	/*
	 * A failed consistency check that leads to a VMExit during L1's
	 * VMEnter to L2 is a variation of a normal VMexit, as explained in
	 * 26.7 "VM-entry failures during or after loading guest state".
	 */
vmentry_fail_vmexit_guest_mode:
3313
	if (vmcs12->cpu_based_vm_exec_control & CPU_BASED_USE_TSC_OFFSETTING)
3314 3315 3316 3317 3318 3319 3320
		vcpu->arch.tsc_offset -= vmcs12->tsc_offset;
	leave_guest_mode(vcpu);

vmentry_fail_vmexit:
	vmx_switch_vmcs(vcpu, &vmx->vmcs01);

	if (!from_vmentry)
3321
		return NVMX_VMENTRY_VMEXIT;
3322 3323 3324 3325 3326

	load_vmcs12_host_state(vcpu, vmcs12);
	vmcs12->vm_exit_reason = exit_reason | VMX_EXIT_REASONS_FAILED_VMENTRY;
	vmcs12->exit_qualification = exit_qual;
	if (enable_shadow_vmcs || vmx->nested.hv_evmcs)
3327
		vmx->nested.need_vmcs12_to_shadow_sync = true;
3328
	return NVMX_VMENTRY_VMEXIT;
3329 3330 3331 3332 3333 3334 3335 3336 3337
}

/*
 * nested_vmx_run() handles a nested entry, i.e., a VMLAUNCH or VMRESUME on L1
 * for running an L2 nested guest.
 */
static int nested_vmx_run(struct kvm_vcpu *vcpu, bool launch)
{
	struct vmcs12 *vmcs12;
3338
	enum nvmx_vmentry_status status;
3339 3340
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u32 interrupt_shadow = vmx_get_interrupt_shadow(vcpu);
3341
	enum nested_evmptrld_status evmptrld_status;
3342 3343 3344 3345

	if (!nested_vmx_check_permission(vcpu))
		return 1;

3346 3347 3348
	evmptrld_status = nested_vmx_handle_enlightened_vmptrld(vcpu, launch);
	if (evmptrld_status == EVMPTRLD_ERROR) {
		kvm_queue_exception(vcpu, UD_VECTOR);
3349
		return 1;
3350 3351 3352
	} else if (evmptrld_status == EVMPTRLD_VMFAIL) {
		return nested_vmx_failInvalid(vcpu);
	}
3353 3354 3355 3356 3357 3358 3359 3360 3361 3362 3363 3364 3365 3366 3367 3368 3369 3370 3371 3372 3373 3374 3375 3376 3377 3378 3379 3380 3381 3382 3383 3384 3385 3386 3387 3388 3389 3390 3391 3392 3393 3394

	if (!vmx->nested.hv_evmcs && vmx->nested.current_vmptr == -1ull)
		return nested_vmx_failInvalid(vcpu);

	vmcs12 = get_vmcs12(vcpu);

	/*
	 * Can't VMLAUNCH or VMRESUME a shadow VMCS. Despite the fact
	 * that there *is* a valid VMCS pointer, RFLAGS.CF is set
	 * rather than RFLAGS.ZF, and no error number is stored to the
	 * VM-instruction error field.
	 */
	if (vmcs12->hdr.shadow_vmcs)
		return nested_vmx_failInvalid(vcpu);

	if (vmx->nested.hv_evmcs) {
		copy_enlightened_to_vmcs12(vmx);
		/* Enlightened VMCS doesn't have launch state */
		vmcs12->launch_state = !launch;
	} else if (enable_shadow_vmcs) {
		copy_shadow_to_vmcs12(vmx);
	}

	/*
	 * The nested entry process starts with enforcing various prerequisites
	 * on vmcs12 as required by the Intel SDM, and act appropriately when
	 * they fail: As the SDM explains, some conditions should cause the
	 * instruction to fail, while others will cause the instruction to seem
	 * to succeed, but return an EXIT_REASON_INVALID_STATE.
	 * To speed up the normal (success) code path, we should avoid checking
	 * for misconfigurations which will anyway be caught by the processor
	 * when using the merged vmcs02.
	 */
	if (interrupt_shadow & KVM_X86_SHADOW_INT_MOV_SS)
		return nested_vmx_failValid(vcpu,
			VMXERR_ENTRY_EVENTS_BLOCKED_BY_MOV_SS);

	if (vmcs12->launch_state == launch)
		return nested_vmx_failValid(vcpu,
			launch ? VMXERR_VMLAUNCH_NONCLEAR_VMCS
			       : VMXERR_VMRESUME_NONLAUNCHED_VMCS);

3395 3396
	if (nested_vmx_check_controls(vcpu, vmcs12))
		return nested_vmx_failValid(vcpu, VMXERR_ENTRY_INVALID_CONTROL_FIELD);
3397

3398 3399
	if (nested_vmx_check_host_state(vcpu, vmcs12))
		return nested_vmx_failValid(vcpu, VMXERR_ENTRY_INVALID_HOST_STATE_FIELD);
3400 3401 3402 3403 3404 3405

	/*
	 * We're finally done with prerequisite checking, and can start with
	 * the nested entry.
	 */
	vmx->nested.nested_run_pending = 1;
3406 3407 3408
	status = nested_vmx_enter_non_root_mode(vcpu, true);
	if (unlikely(status != NVMX_VMENTRY_SUCCESS))
		goto vmentry_failed;
3409 3410 3411 3412 3413 3414 3415 3416 3417 3418 3419 3420 3421 3422 3423 3424 3425

	/* Hide L1D cache contents from the nested guest.  */
	vmx->vcpu.arch.l1tf_flush_l1d = true;

	/*
	 * Must happen outside of nested_vmx_enter_non_root_mode() as it will
	 * also be used as part of restoring nVMX state for
	 * snapshot restore (migration).
	 *
	 * In this flow, it is assumed that vmcs12 cache was
	 * trasferred as part of captured nVMX state and should
	 * therefore not be read from guest memory (which may not
	 * exist on destination host yet).
	 */
	nested_cache_shadow_vmcs12(vcpu, vmcs12);

	/*
3426 3427 3428
	 * If we're entering a halted L2 vcpu and the L2 vcpu won't be
	 * awakened by event injection or by an NMI-window VM-exit or
	 * by an interrupt-window VM-exit, halt the vcpu.
3429 3430
	 */
	if ((vmcs12->guest_activity_state == GUEST_ACTIVITY_HLT) &&
3431
	    !(vmcs12->vm_entry_intr_info_field & INTR_INFO_VALID_MASK) &&
3432
	    !(vmcs12->cpu_based_vm_exec_control & CPU_BASED_NMI_WINDOW_EXITING) &&
3433
	    !((vmcs12->cpu_based_vm_exec_control & CPU_BASED_INTR_WINDOW_EXITING) &&
3434
	      (vmcs12->guest_rflags & X86_EFLAGS_IF))) {
3435 3436 3437 3438
		vmx->nested.nested_run_pending = 0;
		return kvm_vcpu_halt(vcpu);
	}
	return 1;
3439 3440 3441 3442 3443 3444 3445 3446 3447

vmentry_failed:
	vmx->nested.nested_run_pending = 0;
	if (status == NVMX_VMENTRY_KVM_INTERNAL_ERROR)
		return 0;
	if (status == NVMX_VMENTRY_VMEXIT)
		return 1;
	WARN_ON_ONCE(status != NVMX_VMENTRY_VMFAIL);
	return nested_vmx_failValid(vcpu, VMXERR_ENTRY_INVALID_CONTROL_FIELD);
3448 3449 3450 3451
}

/*
 * On a nested exit from L2 to L1, vmcs12.guest_cr0 might not be up-to-date
3452
 * because L2 may have changed some cr0 bits directly (CR0_GUEST_HOST_MASK).
3453 3454 3455 3456 3457 3458 3459 3460 3461 3462 3463 3464 3465 3466 3467 3468 3469 3470 3471 3472 3473 3474 3475 3476 3477 3478 3479 3480 3481 3482 3483 3484 3485 3486 3487 3488 3489 3490 3491 3492 3493 3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504 3505 3506 3507 3508 3509 3510 3511 3512 3513 3514 3515 3516 3517 3518 3519 3520 3521 3522 3523 3524 3525 3526 3527 3528 3529
 * This function returns the new value we should put in vmcs12.guest_cr0.
 * It's not enough to just return the vmcs02 GUEST_CR0. Rather,
 *  1. Bits that neither L0 nor L1 trapped, were set directly by L2 and are now
 *     available in vmcs02 GUEST_CR0. (Note: It's enough to check that L0
 *     didn't trap the bit, because if L1 did, so would L0).
 *  2. Bits that L1 asked to trap (and therefore L0 also did) could not have
 *     been modified by L2, and L1 knows it. So just leave the old value of
 *     the bit from vmcs12.guest_cr0. Note that the bit from vmcs02 GUEST_CR0
 *     isn't relevant, because if L0 traps this bit it can set it to anything.
 *  3. Bits that L1 didn't trap, but L0 did. L1 believes the guest could have
 *     changed these bits, and therefore they need to be updated, but L0
 *     didn't necessarily allow them to be changed in GUEST_CR0 - and rather
 *     put them in vmcs02 CR0_READ_SHADOW. So take these bits from there.
 */
static inline unsigned long
vmcs12_guest_cr0(struct kvm_vcpu *vcpu, struct vmcs12 *vmcs12)
{
	return
	/*1*/	(vmcs_readl(GUEST_CR0) & vcpu->arch.cr0_guest_owned_bits) |
	/*2*/	(vmcs12->guest_cr0 & vmcs12->cr0_guest_host_mask) |
	/*3*/	(vmcs_readl(CR0_READ_SHADOW) & ~(vmcs12->cr0_guest_host_mask |
			vcpu->arch.cr0_guest_owned_bits));
}

static inline unsigned long
vmcs12_guest_cr4(struct kvm_vcpu *vcpu, struct vmcs12 *vmcs12)
{
	return
	/*1*/	(vmcs_readl(GUEST_CR4) & vcpu->arch.cr4_guest_owned_bits) |
	/*2*/	(vmcs12->guest_cr4 & vmcs12->cr4_guest_host_mask) |
	/*3*/	(vmcs_readl(CR4_READ_SHADOW) & ~(vmcs12->cr4_guest_host_mask |
			vcpu->arch.cr4_guest_owned_bits));
}

static void vmcs12_save_pending_event(struct kvm_vcpu *vcpu,
				      struct vmcs12 *vmcs12)
{
	u32 idt_vectoring;
	unsigned int nr;

	if (vcpu->arch.exception.injected) {
		nr = vcpu->arch.exception.nr;
		idt_vectoring = nr | VECTORING_INFO_VALID_MASK;

		if (kvm_exception_is_soft(nr)) {
			vmcs12->vm_exit_instruction_len =
				vcpu->arch.event_exit_inst_len;
			idt_vectoring |= INTR_TYPE_SOFT_EXCEPTION;
		} else
			idt_vectoring |= INTR_TYPE_HARD_EXCEPTION;

		if (vcpu->arch.exception.has_error_code) {
			idt_vectoring |= VECTORING_INFO_DELIVER_CODE_MASK;
			vmcs12->idt_vectoring_error_code =
				vcpu->arch.exception.error_code;
		}

		vmcs12->idt_vectoring_info_field = idt_vectoring;
	} else if (vcpu->arch.nmi_injected) {
		vmcs12->idt_vectoring_info_field =
			INTR_TYPE_NMI_INTR | INTR_INFO_VALID_MASK | NMI_VECTOR;
	} else if (vcpu->arch.interrupt.injected) {
		nr = vcpu->arch.interrupt.nr;
		idt_vectoring = nr | VECTORING_INFO_VALID_MASK;

		if (vcpu->arch.interrupt.soft) {
			idt_vectoring |= INTR_TYPE_SOFT_INTR;
			vmcs12->vm_entry_instruction_len =
				vcpu->arch.event_exit_inst_len;
		} else
			idt_vectoring |= INTR_TYPE_EXT_INTR;

		vmcs12->idt_vectoring_info_field = idt_vectoring;
	}
}


3530
void nested_mark_vmcs12_pages_dirty(struct kvm_vcpu *vcpu)
3531 3532 3533 3534 3535 3536 3537 3538 3539 3540 3541 3542 3543 3544 3545 3546 3547 3548 3549 3550 3551 3552 3553 3554 3555 3556 3557 3558 3559 3560 3561 3562 3563 3564 3565 3566
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	gfn_t gfn;

	/*
	 * Don't need to mark the APIC access page dirty; it is never
	 * written to by the CPU during APIC virtualization.
	 */

	if (nested_cpu_has(vmcs12, CPU_BASED_TPR_SHADOW)) {
		gfn = vmcs12->virtual_apic_page_addr >> PAGE_SHIFT;
		kvm_vcpu_mark_page_dirty(vcpu, gfn);
	}

	if (nested_cpu_has_posted_intr(vmcs12)) {
		gfn = vmcs12->posted_intr_desc_addr >> PAGE_SHIFT;
		kvm_vcpu_mark_page_dirty(vcpu, gfn);
	}
}

static void vmx_complete_nested_posted_interrupt(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	int max_irr;
	void *vapic_page;
	u16 status;

	if (!vmx->nested.pi_desc || !vmx->nested.pi_pending)
		return;

	vmx->nested.pi_pending = false;
	if (!pi_test_and_clear_on(vmx->nested.pi_desc))
		return;

	max_irr = find_last_bit((unsigned long *)vmx->nested.pi_desc->pir, 256);
	if (max_irr != 256) {
3567 3568 3569 3570
		vapic_page = vmx->nested.virtual_apic_map.hva;
		if (!vapic_page)
			return;

3571 3572 3573 3574 3575 3576 3577 3578 3579 3580 3581 3582 3583 3584 3585 3586 3587 3588 3589 3590 3591 3592 3593 3594 3595 3596 3597 3598 3599 3600 3601 3602 3603 3604 3605 3606 3607
		__kvm_apic_update_irr(vmx->nested.pi_desc->pir,
			vapic_page, &max_irr);
		status = vmcs_read16(GUEST_INTR_STATUS);
		if ((u8)max_irr > ((u8)status & 0xff)) {
			status &= ~0xff;
			status |= (u8)max_irr;
			vmcs_write16(GUEST_INTR_STATUS, status);
		}
	}

	nested_mark_vmcs12_pages_dirty(vcpu);
}

static void nested_vmx_inject_exception_vmexit(struct kvm_vcpu *vcpu,
					       unsigned long exit_qual)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	unsigned int nr = vcpu->arch.exception.nr;
	u32 intr_info = nr | INTR_INFO_VALID_MASK;

	if (vcpu->arch.exception.has_error_code) {
		vmcs12->vm_exit_intr_error_code = vcpu->arch.exception.error_code;
		intr_info |= INTR_INFO_DELIVER_CODE_MASK;
	}

	if (kvm_exception_is_soft(nr))
		intr_info |= INTR_TYPE_SOFT_EXCEPTION;
	else
		intr_info |= INTR_TYPE_HARD_EXCEPTION;

	if (!(vmcs12->idt_vectoring_info_field & VECTORING_INFO_VALID_MASK) &&
	    vmx_get_nmi_mask(vcpu))
		intr_info |= INTR_INFO_UNBLOCK_NMI;

	nested_vmx_vmexit(vcpu, EXIT_REASON_EXCEPTION_NMI, intr_info, exit_qual);
}

3608 3609 3610 3611 3612 3613 3614 3615 3616 3617 3618 3619 3620 3621 3622 3623 3624 3625 3626 3627 3628 3629 3630 3631 3632 3633 3634
/*
 * Returns true if a debug trap is pending delivery.
 *
 * In KVM, debug traps bear an exception payload. As such, the class of a #DB
 * exception may be inferred from the presence of an exception payload.
 */
static inline bool vmx_pending_dbg_trap(struct kvm_vcpu *vcpu)
{
	return vcpu->arch.exception.pending &&
			vcpu->arch.exception.nr == DB_VECTOR &&
			vcpu->arch.exception.payload;
}

/*
 * Certain VM-exits set the 'pending debug exceptions' field to indicate a
 * recognized #DB (data or single-step) that has yet to be delivered. Since KVM
 * represents these debug traps with a payload that is said to be compatible
 * with the 'pending debug exceptions' field, write the payload to the VMCS
 * field if a VM-exit is delivered before the debug trap.
 */
static void nested_vmx_update_pending_dbg(struct kvm_vcpu *vcpu)
{
	if (vmx_pending_dbg_trap(vcpu))
		vmcs_writel(GUEST_PENDING_DBG_EXCEPTIONS,
			    vcpu->arch.exception.payload);
}

3635
static int vmx_check_nested_events(struct kvm_vcpu *vcpu)
3636 3637 3638 3639 3640
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	unsigned long exit_qual;
	bool block_nested_events =
	    vmx->nested.nested_run_pending || kvm_event_needs_reinjection(vcpu);
3641
	bool mtf_pending = vmx->nested.mtf_pending;
3642 3643
	struct kvm_lapic *apic = vcpu->arch.apic;

3644 3645 3646 3647
	/*
	 * Clear the MTF state. If a higher priority VM-exit is delivered first,
	 * this state is discarded.
	 */
3648 3649
	if (!block_nested_events)
		vmx->nested.mtf_pending = false;
3650

3651 3652 3653 3654
	if (lapic_in_kernel(vcpu) &&
		test_bit(KVM_APIC_INIT, &apic->pending_events)) {
		if (block_nested_events)
			return -EBUSY;
3655
		nested_vmx_update_pending_dbg(vcpu);
3656
		clear_bit(KVM_APIC_INIT, &apic->pending_events);
3657 3658 3659
		nested_vmx_vmexit(vcpu, EXIT_REASON_INIT_SIGNAL, 0, 0);
		return 0;
	}
3660

3661 3662 3663 3664 3665 3666 3667 3668 3669 3670 3671 3672 3673 3674 3675 3676 3677 3678 3679 3680
	/*
	 * Process any exceptions that are not debug traps before MTF.
	 */
	if (vcpu->arch.exception.pending &&
	    !vmx_pending_dbg_trap(vcpu) &&
	    nested_vmx_check_exception(vcpu, &exit_qual)) {
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_inject_exception_vmexit(vcpu, exit_qual);
		return 0;
	}

	if (mtf_pending) {
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_update_pending_dbg(vcpu);
		nested_vmx_vmexit(vcpu, EXIT_REASON_MONITOR_TRAP_FLAG, 0, 0);
		return 0;
	}

3681
	if (vcpu->arch.exception.pending &&
3682
	    nested_vmx_check_exception(vcpu, &exit_qual)) {
3683 3684 3685 3686 3687 3688 3689 3690 3691 3692 3693 3694 3695 3696 3697 3698 3699 3700 3701 3702 3703 3704 3705 3706 3707 3708 3709 3710 3711
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_inject_exception_vmexit(vcpu, exit_qual);
		return 0;
	}

	if (nested_cpu_has_preemption_timer(get_vmcs12(vcpu)) &&
	    vmx->nested.preemption_timer_expired) {
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_vmexit(vcpu, EXIT_REASON_PREEMPTION_TIMER, 0, 0);
		return 0;
	}

	if (vcpu->arch.nmi_pending && nested_exit_on_nmi(vcpu)) {
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_vmexit(vcpu, EXIT_REASON_EXCEPTION_NMI,
				  NMI_VECTOR | INTR_TYPE_NMI_INTR |
				  INTR_INFO_VALID_MASK, 0);
		/*
		 * The NMI-triggered VM exit counts as injection:
		 * clear this one and block further NMIs.
		 */
		vcpu->arch.nmi_pending = 0;
		vmx_set_nmi_mask(vcpu, true);
		return 0;
	}

3712
	if (kvm_cpu_has_interrupt(vcpu) && nested_exit_on_intr(vcpu)) {
3713 3714 3715 3716 3717 3718 3719 3720 3721 3722 3723 3724 3725 3726 3727 3728 3729 3730 3731 3732 3733 3734 3735 3736
		if (block_nested_events)
			return -EBUSY;
		nested_vmx_vmexit(vcpu, EXIT_REASON_EXTERNAL_INTERRUPT, 0, 0);
		return 0;
	}

	vmx_complete_nested_posted_interrupt(vcpu);
	return 0;
}

static u32 vmx_get_preemption_timer_value(struct kvm_vcpu *vcpu)
{
	ktime_t remaining =
		hrtimer_get_remaining(&to_vmx(vcpu)->nested.preemption_timer);
	u64 value;

	if (ktime_to_ns(remaining) <= 0)
		return 0;

	value = ktime_to_ns(remaining) * vcpu->arch.virtual_tsc_khz;
	do_div(value, 1000000);
	return value >> VMX_MISC_EMULATED_PREEMPTION_TIMER_RATE;
}

3737
static bool is_vmcs12_ext_field(unsigned long field)
3738
{
3739 3740 3741 3742 3743 3744 3745 3746 3747 3748 3749 3750 3751 3752 3753 3754 3755 3756 3757 3758 3759 3760 3761 3762 3763 3764 3765 3766 3767 3768 3769 3770 3771 3772 3773 3774 3775 3776 3777 3778 3779
	switch (field) {
	case GUEST_ES_SELECTOR:
	case GUEST_CS_SELECTOR:
	case GUEST_SS_SELECTOR:
	case GUEST_DS_SELECTOR:
	case GUEST_FS_SELECTOR:
	case GUEST_GS_SELECTOR:
	case GUEST_LDTR_SELECTOR:
	case GUEST_TR_SELECTOR:
	case GUEST_ES_LIMIT:
	case GUEST_CS_LIMIT:
	case GUEST_SS_LIMIT:
	case GUEST_DS_LIMIT:
	case GUEST_FS_LIMIT:
	case GUEST_GS_LIMIT:
	case GUEST_LDTR_LIMIT:
	case GUEST_TR_LIMIT:
	case GUEST_GDTR_LIMIT:
	case GUEST_IDTR_LIMIT:
	case GUEST_ES_AR_BYTES:
	case GUEST_DS_AR_BYTES:
	case GUEST_FS_AR_BYTES:
	case GUEST_GS_AR_BYTES:
	case GUEST_LDTR_AR_BYTES:
	case GUEST_TR_AR_BYTES:
	case GUEST_ES_BASE:
	case GUEST_CS_BASE:
	case GUEST_SS_BASE:
	case GUEST_DS_BASE:
	case GUEST_FS_BASE:
	case GUEST_GS_BASE:
	case GUEST_LDTR_BASE:
	case GUEST_TR_BASE:
	case GUEST_GDTR_BASE:
	case GUEST_IDTR_BASE:
	case GUEST_PENDING_DBG_EXCEPTIONS:
	case GUEST_BNDCFGS:
		return true;
	default:
		break;
	}
3780

3781 3782 3783 3784 3785 3786 3787
	return false;
}

static void sync_vmcs02_to_vmcs12_rare(struct kvm_vcpu *vcpu,
				       struct vmcs12 *vmcs12)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
3788 3789 3790 3791 3792 3793 3794 3795 3796 3797 3798 3799 3800 3801 3802 3803 3804 3805 3806 3807 3808 3809 3810 3811 3812 3813 3814 3815 3816 3817 3818 3819 3820 3821 3822

	vmcs12->guest_es_selector = vmcs_read16(GUEST_ES_SELECTOR);
	vmcs12->guest_cs_selector = vmcs_read16(GUEST_CS_SELECTOR);
	vmcs12->guest_ss_selector = vmcs_read16(GUEST_SS_SELECTOR);
	vmcs12->guest_ds_selector = vmcs_read16(GUEST_DS_SELECTOR);
	vmcs12->guest_fs_selector = vmcs_read16(GUEST_FS_SELECTOR);
	vmcs12->guest_gs_selector = vmcs_read16(GUEST_GS_SELECTOR);
	vmcs12->guest_ldtr_selector = vmcs_read16(GUEST_LDTR_SELECTOR);
	vmcs12->guest_tr_selector = vmcs_read16(GUEST_TR_SELECTOR);
	vmcs12->guest_es_limit = vmcs_read32(GUEST_ES_LIMIT);
	vmcs12->guest_cs_limit = vmcs_read32(GUEST_CS_LIMIT);
	vmcs12->guest_ss_limit = vmcs_read32(GUEST_SS_LIMIT);
	vmcs12->guest_ds_limit = vmcs_read32(GUEST_DS_LIMIT);
	vmcs12->guest_fs_limit = vmcs_read32(GUEST_FS_LIMIT);
	vmcs12->guest_gs_limit = vmcs_read32(GUEST_GS_LIMIT);
	vmcs12->guest_ldtr_limit = vmcs_read32(GUEST_LDTR_LIMIT);
	vmcs12->guest_tr_limit = vmcs_read32(GUEST_TR_LIMIT);
	vmcs12->guest_gdtr_limit = vmcs_read32(GUEST_GDTR_LIMIT);
	vmcs12->guest_idtr_limit = vmcs_read32(GUEST_IDTR_LIMIT);
	vmcs12->guest_es_ar_bytes = vmcs_read32(GUEST_ES_AR_BYTES);
	vmcs12->guest_ds_ar_bytes = vmcs_read32(GUEST_DS_AR_BYTES);
	vmcs12->guest_fs_ar_bytes = vmcs_read32(GUEST_FS_AR_BYTES);
	vmcs12->guest_gs_ar_bytes = vmcs_read32(GUEST_GS_AR_BYTES);
	vmcs12->guest_ldtr_ar_bytes = vmcs_read32(GUEST_LDTR_AR_BYTES);
	vmcs12->guest_tr_ar_bytes = vmcs_read32(GUEST_TR_AR_BYTES);
	vmcs12->guest_es_base = vmcs_readl(GUEST_ES_BASE);
	vmcs12->guest_cs_base = vmcs_readl(GUEST_CS_BASE);
	vmcs12->guest_ss_base = vmcs_readl(GUEST_SS_BASE);
	vmcs12->guest_ds_base = vmcs_readl(GUEST_DS_BASE);
	vmcs12->guest_fs_base = vmcs_readl(GUEST_FS_BASE);
	vmcs12->guest_gs_base = vmcs_readl(GUEST_GS_BASE);
	vmcs12->guest_ldtr_base = vmcs_readl(GUEST_LDTR_BASE);
	vmcs12->guest_tr_base = vmcs_readl(GUEST_TR_BASE);
	vmcs12->guest_gdtr_base = vmcs_readl(GUEST_GDTR_BASE);
	vmcs12->guest_idtr_base = vmcs_readl(GUEST_IDTR_BASE);
3823 3824 3825 3826 3827 3828 3829 3830 3831 3832 3833 3834 3835 3836 3837 3838 3839 3840 3841 3842 3843 3844 3845 3846 3847 3848 3849 3850 3851 3852 3853 3854 3855 3856 3857 3858 3859 3860 3861 3862 3863 3864 3865 3866 3867 3868 3869 3870 3871 3872 3873 3874 3875 3876 3877
	vmcs12->guest_pending_dbg_exceptions =
		vmcs_readl(GUEST_PENDING_DBG_EXCEPTIONS);
	if (kvm_mpx_supported())
		vmcs12->guest_bndcfgs = vmcs_read64(GUEST_BNDCFGS);

	vmx->nested.need_sync_vmcs02_to_vmcs12_rare = false;
}

static void copy_vmcs02_to_vmcs12_rare(struct kvm_vcpu *vcpu,
				       struct vmcs12 *vmcs12)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	int cpu;

	if (!vmx->nested.need_sync_vmcs02_to_vmcs12_rare)
		return;


	WARN_ON_ONCE(vmx->loaded_vmcs != &vmx->vmcs01);

	cpu = get_cpu();
	vmx->loaded_vmcs = &vmx->nested.vmcs02;
	vmx_vcpu_load(&vmx->vcpu, cpu);

	sync_vmcs02_to_vmcs12_rare(vcpu, vmcs12);

	vmx->loaded_vmcs = &vmx->vmcs01;
	vmx_vcpu_load(&vmx->vcpu, cpu);
	put_cpu();
}

/*
 * Update the guest state fields of vmcs12 to reflect changes that
 * occurred while L2 was running. (The "IA-32e mode guest" bit of the
 * VM-entry controls is also updated, since this is really a guest
 * state bit.)
 */
static void sync_vmcs02_to_vmcs12(struct kvm_vcpu *vcpu, struct vmcs12 *vmcs12)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (vmx->nested.hv_evmcs)
		sync_vmcs02_to_vmcs12_rare(vcpu, vmcs12);

	vmx->nested.need_sync_vmcs02_to_vmcs12_rare = !vmx->nested.hv_evmcs;

	vmcs12->guest_cr0 = vmcs12_guest_cr0(vcpu, vmcs12);
	vmcs12->guest_cr4 = vmcs12_guest_cr4(vcpu, vmcs12);

	vmcs12->guest_rsp = kvm_rsp_read(vcpu);
	vmcs12->guest_rip = kvm_rip_read(vcpu);
	vmcs12->guest_rflags = vmcs_readl(GUEST_RFLAGS);

	vmcs12->guest_cs_ar_bytes = vmcs_read32(GUEST_CS_AR_BYTES);
	vmcs12->guest_ss_ar_bytes = vmcs_read32(GUEST_SS_AR_BYTES);
3878

3879 3880 3881
	vmcs12->guest_sysenter_cs = vmcs_read32(GUEST_SYSENTER_CS);
	vmcs12->guest_sysenter_esp = vmcs_readl(GUEST_SYSENTER_ESP);
	vmcs12->guest_sysenter_eip = vmcs_readl(GUEST_SYSENTER_EIP);
3882 3883 3884

	vmcs12->guest_interruptibility_info =
		vmcs_read32(GUEST_INTERRUPTIBILITY_INFO);
3885

3886 3887 3888 3889 3890
	if (vcpu->arch.mp_state == KVM_MP_STATE_HALTED)
		vmcs12->guest_activity_state = GUEST_ACTIVITY_HLT;
	else
		vmcs12->guest_activity_state = GUEST_ACTIVITY_ACTIVE;

3891 3892
	if (nested_cpu_has_preemption_timer(vmcs12) &&
	    vmcs12->vm_exit_controls & VM_EXIT_SAVE_VMX_PREEMPTION_TIMER)
3893 3894 3895 3896 3897 3898 3899 3900 3901 3902 3903 3904 3905
			vmcs12->vmx_preemption_timer_value =
				vmx_get_preemption_timer_value(vcpu);

	/*
	 * In some cases (usually, nested EPT), L2 is allowed to change its
	 * own CR3 without exiting. If it has changed it, we must keep it.
	 * Of course, if L0 is using shadow page tables, GUEST_CR3 was defined
	 * by L0, not L1 or L2, so we mustn't unconditionally copy it to vmcs12.
	 *
	 * Additionally, restore L2's PDPTR to vmcs12.
	 */
	if (enable_ept) {
		vmcs12->guest_cr3 = vmcs_readl(GUEST_CR3);
3906 3907 3908 3909 3910 3911
		if (nested_cpu_has_ept(vmcs12) && is_pae_paging(vcpu)) {
			vmcs12->guest_pdptr0 = vmcs_read64(GUEST_PDPTR0);
			vmcs12->guest_pdptr1 = vmcs_read64(GUEST_PDPTR1);
			vmcs12->guest_pdptr2 = vmcs_read64(GUEST_PDPTR2);
			vmcs12->guest_pdptr3 = vmcs_read64(GUEST_PDPTR3);
		}
3912 3913 3914 3915 3916 3917 3918 3919 3920 3921 3922
	}

	vmcs12->guest_linear_address = vmcs_readl(GUEST_LINEAR_ADDRESS);

	if (nested_cpu_has_vid(vmcs12))
		vmcs12->guest_intr_status = vmcs_read16(GUEST_INTR_STATUS);

	vmcs12->vm_entry_controls =
		(vmcs12->vm_entry_controls & ~VM_ENTRY_IA32E_MODE) |
		(vm_entry_controls_get(to_vmx(vcpu)) & VM_ENTRY_IA32E_MODE);

3923
	if (vmcs12->vm_exit_controls & VM_EXIT_SAVE_DEBUG_CONTROLS)
3924 3925 3926 3927 3928 3929 3930 3931 3932 3933 3934 3935 3936 3937 3938 3939 3940 3941 3942 3943 3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965
		kvm_get_dr(vcpu, 7, (unsigned long *)&vmcs12->guest_dr7);

	if (vmcs12->vm_exit_controls & VM_EXIT_SAVE_IA32_EFER)
		vmcs12->guest_ia32_efer = vcpu->arch.efer;
}

/*
 * prepare_vmcs12 is part of what we need to do when the nested L2 guest exits
 * and we want to prepare to run its L1 parent. L1 keeps a vmcs for L2 (vmcs12),
 * and this function updates it to reflect the changes to the guest state while
 * L2 was running (and perhaps made some exits which were handled directly by L0
 * without going back to L1), and to reflect the exit reason.
 * Note that we do not have to copy here all VMCS fields, just those that
 * could have changed by the L2 guest or the exit - i.e., the guest-state and
 * exit-information fields only. Other fields are modified by L1 with VMWRITE,
 * which already writes to vmcs12 directly.
 */
static void prepare_vmcs12(struct kvm_vcpu *vcpu, struct vmcs12 *vmcs12,
			   u32 exit_reason, u32 exit_intr_info,
			   unsigned long exit_qualification)
{
	/* update exit information fields: */
	vmcs12->vm_exit_reason = exit_reason;
	vmcs12->exit_qualification = exit_qualification;
	vmcs12->vm_exit_intr_info = exit_intr_info;

	vmcs12->idt_vectoring_info_field = 0;
	vmcs12->vm_exit_instruction_len = vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
	vmcs12->vmx_instruction_info = vmcs_read32(VMX_INSTRUCTION_INFO);

	if (!(vmcs12->vm_exit_reason & VMX_EXIT_REASONS_FAILED_VMENTRY)) {
		vmcs12->launch_state = 1;

		/* vm_entry_intr_info_field is cleared on exit. Emulate this
		 * instead of reading the real value. */
		vmcs12->vm_entry_intr_info_field &= ~INTR_INFO_VALID_MASK;

		/*
		 * Transfer the event that L0 or L1 may wanted to inject into
		 * L2 to IDT_VECTORING_INFO_FIELD.
		 */
		vmcs12_save_pending_event(vcpu, vmcs12);
3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977

		/*
		 * According to spec, there's no need to store the guest's
		 * MSRs if the exit is due to a VM-entry failure that occurs
		 * during or after loading the guest state. Since this exit
		 * does not fall in that category, we need to save the MSRs.
		 */
		if (nested_vmx_store_msr(vcpu,
					 vmcs12->vm_exit_msr_store_addr,
					 vmcs12->vm_exit_msr_store_count))
			nested_vmx_abort(vcpu,
					 VMX_ABORT_SAVE_GUEST_MSR_FAIL);
3978 3979 3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006 4007 4008 4009 4010 4011
	}

	/*
	 * Drop what we picked up for L2 via vmx_complete_interrupts. It is
	 * preserved above and would only end up incorrectly in L1.
	 */
	vcpu->arch.nmi_injected = false;
	kvm_clear_exception_queue(vcpu);
	kvm_clear_interrupt_queue(vcpu);
}

/*
 * A part of what we need to when the nested L2 guest exits and we want to
 * run its L1 parent, is to reset L1's guest state to the host state specified
 * in vmcs12.
 * This function is to be called not only on normal nested exit, but also on
 * a nested entry failure, as explained in Intel's spec, 3B.23.7 ("VM-Entry
 * Failures During or After Loading Guest State").
 * This function should be called when the active VMCS is L1's (vmcs01).
 */
static void load_vmcs12_host_state(struct kvm_vcpu *vcpu,
				   struct vmcs12 *vmcs12)
{
	struct kvm_segment seg;
	u32 entry_failure_code;

	if (vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_EFER)
		vcpu->arch.efer = vmcs12->host_ia32_efer;
	else if (vmcs12->vm_exit_controls & VM_EXIT_HOST_ADDR_SPACE_SIZE)
		vcpu->arch.efer |= (EFER_LMA | EFER_LME);
	else
		vcpu->arch.efer &= ~(EFER_LMA | EFER_LME);
	vmx_set_efer(vcpu, vcpu->arch.efer);

4012 4013
	kvm_rsp_write(vcpu, vmcs12->host_rsp);
	kvm_rip_write(vcpu, vmcs12->host_rip);
4014 4015 4016 4017 4018 4019 4020 4021 4022 4023 4024 4025 4026 4027 4028 4029 4030 4031 4032 4033 4034 4035 4036 4037 4038 4039 4040 4041 4042 4043 4044 4045 4046 4047 4048 4049 4050 4051 4052 4053 4054
	vmx_set_rflags(vcpu, X86_EFLAGS_FIXED);
	vmx_set_interrupt_shadow(vcpu, 0);

	/*
	 * Note that calling vmx_set_cr0 is important, even if cr0 hasn't
	 * actually changed, because vmx_set_cr0 refers to efer set above.
	 *
	 * CR0_GUEST_HOST_MASK is already set in the original vmcs01
	 * (KVM doesn't change it);
	 */
	vcpu->arch.cr0_guest_owned_bits = X86_CR0_TS;
	vmx_set_cr0(vcpu, vmcs12->host_cr0);

	/* Same as above - no reason to call set_cr4_guest_host_mask().  */
	vcpu->arch.cr4_guest_owned_bits = ~vmcs_readl(CR4_GUEST_HOST_MASK);
	vmx_set_cr4(vcpu, vmcs12->host_cr4);

	nested_ept_uninit_mmu_context(vcpu);

	/*
	 * Only PDPTE load can fail as the value of cr3 was checked on entry and
	 * couldn't have changed.
	 */
	if (nested_vmx_load_cr3(vcpu, vmcs12->host_cr3, false, &entry_failure_code))
		nested_vmx_abort(vcpu, VMX_ABORT_LOAD_HOST_PDPTE_FAIL);

	if (!enable_ept)
		vcpu->arch.walk_mmu->inject_page_fault = kvm_inject_page_fault;

	/*
	 * If vmcs01 doesn't use VPID, CPU flushes TLB on every
	 * VMEntry/VMExit. Thus, no need to flush TLB.
	 *
	 * If vmcs12 doesn't use VPID, L1 expects TLB to be
	 * flushed on every VMEntry/VMExit.
	 *
	 * Otherwise, we can preserve TLB entries as long as we are
	 * able to tag L1 TLB entries differently than L2 TLB entries.
	 *
	 * If vmcs12 uses EPT, we need to execute this flush on EPTP01
	 * and therefore we request the TLB flush to happen only after VMCS EPTP
4055
	 * has been set by KVM_REQ_LOAD_MMU_PGD.
4056 4057 4058 4059 4060 4061 4062 4063 4064 4065 4066 4067 4068 4069 4070 4071 4072 4073 4074 4075 4076 4077 4078
	 */
	if (enable_vpid &&
	    (!nested_cpu_has_vpid(vmcs12) || !nested_has_guest_tlb_tag(vcpu))) {
		kvm_make_request(KVM_REQ_TLB_FLUSH, vcpu);
	}

	vmcs_write32(GUEST_SYSENTER_CS, vmcs12->host_ia32_sysenter_cs);
	vmcs_writel(GUEST_SYSENTER_ESP, vmcs12->host_ia32_sysenter_esp);
	vmcs_writel(GUEST_SYSENTER_EIP, vmcs12->host_ia32_sysenter_eip);
	vmcs_writel(GUEST_IDTR_BASE, vmcs12->host_idtr_base);
	vmcs_writel(GUEST_GDTR_BASE, vmcs12->host_gdtr_base);
	vmcs_write32(GUEST_IDTR_LIMIT, 0xFFFF);
	vmcs_write32(GUEST_GDTR_LIMIT, 0xFFFF);

	/* If not VM_EXIT_CLEAR_BNDCFGS, the L2 value propagates to L1.  */
	if (vmcs12->vm_exit_controls & VM_EXIT_CLEAR_BNDCFGS)
		vmcs_write64(GUEST_BNDCFGS, 0);

	if (vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_PAT) {
		vmcs_write64(GUEST_IA32_PAT, vmcs12->host_ia32_pat);
		vcpu->arch.pat = vmcs12->host_ia32_pat;
	}
	if (vmcs12->vm_exit_controls & VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL)
4079 4080
		WARN_ON_ONCE(kvm_set_msr(vcpu, MSR_CORE_PERF_GLOBAL_CTRL,
					 vmcs12->host_ia32_perf_global_ctrl));
4081 4082 4083 4084 4085 4086 4087 4088 4089 4090 4091 4092 4093 4094 4095 4096 4097 4098 4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114 4115 4116 4117 4118 4119 4120 4121 4122 4123 4124 4125 4126 4127 4128 4129 4130 4131 4132 4133 4134 4135 4136 4137 4138 4139 4140 4141 4142 4143 4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172 4173 4174 4175 4176 4177 4178 4179 4180 4181 4182 4183 4184 4185 4186 4187 4188 4189 4190 4191 4192 4193 4194 4195 4196 4197

	/* Set L1 segment info according to Intel SDM
	    27.5.2 Loading Host Segment and Descriptor-Table Registers */
	seg = (struct kvm_segment) {
		.base = 0,
		.limit = 0xFFFFFFFF,
		.selector = vmcs12->host_cs_selector,
		.type = 11,
		.present = 1,
		.s = 1,
		.g = 1
	};
	if (vmcs12->vm_exit_controls & VM_EXIT_HOST_ADDR_SPACE_SIZE)
		seg.l = 1;
	else
		seg.db = 1;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_CS);
	seg = (struct kvm_segment) {
		.base = 0,
		.limit = 0xFFFFFFFF,
		.type = 3,
		.present = 1,
		.s = 1,
		.db = 1,
		.g = 1
	};
	seg.selector = vmcs12->host_ds_selector;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_DS);
	seg.selector = vmcs12->host_es_selector;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_ES);
	seg.selector = vmcs12->host_ss_selector;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_SS);
	seg.selector = vmcs12->host_fs_selector;
	seg.base = vmcs12->host_fs_base;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_FS);
	seg.selector = vmcs12->host_gs_selector;
	seg.base = vmcs12->host_gs_base;
	vmx_set_segment(vcpu, &seg, VCPU_SREG_GS);
	seg = (struct kvm_segment) {
		.base = vmcs12->host_tr_base,
		.limit = 0x67,
		.selector = vmcs12->host_tr_selector,
		.type = 11,
		.present = 1
	};
	vmx_set_segment(vcpu, &seg, VCPU_SREG_TR);

	kvm_set_dr(vcpu, 7, 0x400);
	vmcs_write64(GUEST_IA32_DEBUGCTL, 0);

	if (cpu_has_vmx_msr_bitmap())
		vmx_update_msr_bitmap(vcpu);

	if (nested_vmx_load_msr(vcpu, vmcs12->vm_exit_msr_load_addr,
				vmcs12->vm_exit_msr_load_count))
		nested_vmx_abort(vcpu, VMX_ABORT_LOAD_HOST_MSR_FAIL);
}

static inline u64 nested_vmx_get_vmcs01_guest_efer(struct vcpu_vmx *vmx)
{
	struct shared_msr_entry *efer_msr;
	unsigned int i;

	if (vm_entry_controls_get(vmx) & VM_ENTRY_LOAD_IA32_EFER)
		return vmcs_read64(GUEST_IA32_EFER);

	if (cpu_has_load_ia32_efer())
		return host_efer;

	for (i = 0; i < vmx->msr_autoload.guest.nr; ++i) {
		if (vmx->msr_autoload.guest.val[i].index == MSR_EFER)
			return vmx->msr_autoload.guest.val[i].value;
	}

	efer_msr = find_msr_entry(vmx, MSR_EFER);
	if (efer_msr)
		return efer_msr->data;

	return host_efer;
}

static void nested_vmx_restore_host_state(struct kvm_vcpu *vcpu)
{
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmx_msr_entry g, h;
	gpa_t gpa;
	u32 i, j;

	vcpu->arch.pat = vmcs_read64(GUEST_IA32_PAT);

	if (vmcs12->vm_entry_controls & VM_ENTRY_LOAD_DEBUG_CONTROLS) {
		/*
		 * L1's host DR7 is lost if KVM_GUESTDBG_USE_HW_BP is set
		 * as vmcs01.GUEST_DR7 contains a userspace defined value
		 * and vcpu->arch.dr7 is not squirreled away before the
		 * nested VMENTER (not worth adding a variable in nested_vmx).
		 */
		if (vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP)
			kvm_set_dr(vcpu, 7, DR7_FIXED_1);
		else
			WARN_ON(kvm_set_dr(vcpu, 7, vmcs_readl(GUEST_DR7)));
	}

	/*
	 * Note that calling vmx_set_{efer,cr0,cr4} is important as they
	 * handle a variety of side effects to KVM's software model.
	 */
	vmx_set_efer(vcpu, nested_vmx_get_vmcs01_guest_efer(vmx));

	vcpu->arch.cr0_guest_owned_bits = X86_CR0_TS;
	vmx_set_cr0(vcpu, vmcs_readl(CR0_READ_SHADOW));

	vcpu->arch.cr4_guest_owned_bits = ~vmcs_readl(CR4_GUEST_HOST_MASK);
	vmx_set_cr4(vcpu, vmcs_readl(CR4_READ_SHADOW));

	nested_ept_uninit_mmu_context(vcpu);
4198
	vcpu->arch.cr3 = vmcs_readl(GUEST_CR3);
4199
	kvm_register_mark_available(vcpu, VCPU_EXREG_CR3);
4200 4201 4202 4203 4204 4205 4206

	/*
	 * Use ept_save_pdptrs(vcpu) to load the MMU's cached PDPTRs
	 * from vmcs01 (if necessary).  The PDPTRs are not loaded on
	 * VMFail, like everything else we just need to ensure our
	 * software model is up-to-date.
	 */
4207 4208
	if (enable_ept)
		ept_save_pdptrs(vcpu);
4209 4210 4211 4212 4213 4214 4215 4216 4217 4218 4219 4220 4221 4222 4223 4224 4225 4226 4227 4228 4229 4230 4231 4232 4233 4234 4235 4236 4237 4238 4239 4240 4241 4242 4243 4244 4245 4246 4247 4248 4249 4250 4251 4252 4253 4254

	kvm_mmu_reset_context(vcpu);

	if (cpu_has_vmx_msr_bitmap())
		vmx_update_msr_bitmap(vcpu);

	/*
	 * This nasty bit of open coding is a compromise between blindly
	 * loading L1's MSRs using the exit load lists (incorrect emulation
	 * of VMFail), leaving the nested VM's MSRs in the software model
	 * (incorrect behavior) and snapshotting the modified MSRs (too
	 * expensive since the lists are unbound by hardware).  For each
	 * MSR that was (prematurely) loaded from the nested VMEntry load
	 * list, reload it from the exit load list if it exists and differs
	 * from the guest value.  The intent is to stuff host state as
	 * silently as possible, not to fully process the exit load list.
	 */
	for (i = 0; i < vmcs12->vm_entry_msr_load_count; i++) {
		gpa = vmcs12->vm_entry_msr_load_addr + (i * sizeof(g));
		if (kvm_vcpu_read_guest(vcpu, gpa, &g, sizeof(g))) {
			pr_debug_ratelimited(
				"%s read MSR index failed (%u, 0x%08llx)\n",
				__func__, i, gpa);
			goto vmabort;
		}

		for (j = 0; j < vmcs12->vm_exit_msr_load_count; j++) {
			gpa = vmcs12->vm_exit_msr_load_addr + (j * sizeof(h));
			if (kvm_vcpu_read_guest(vcpu, gpa, &h, sizeof(h))) {
				pr_debug_ratelimited(
					"%s read MSR failed (%u, 0x%08llx)\n",
					__func__, j, gpa);
				goto vmabort;
			}
			if (h.index != g.index)
				continue;
			if (h.value == g.value)
				break;

			if (nested_vmx_load_msr_check(vcpu, &h)) {
				pr_debug_ratelimited(
					"%s check failed (%u, 0x%x, 0x%x)\n",
					__func__, j, h.index, h.reserved);
				goto vmabort;
			}

4255
			if (kvm_set_msr(vcpu, h.index, h.value)) {
4256 4257 4258 4259 4260 4261 4262 4263 4264 4265 4266 4267 4268 4269 4270 4271 4272 4273 4274 4275 4276 4277 4278 4279 4280 4281 4282 4283 4284 4285
				pr_debug_ratelimited(
					"%s WRMSR failed (%u, 0x%x, 0x%llx)\n",
					__func__, j, h.index, h.value);
				goto vmabort;
			}
		}
	}

	return;

vmabort:
	nested_vmx_abort(vcpu, VMX_ABORT_LOAD_HOST_MSR_FAIL);
}

/*
 * Emulate an exit from nested guest (L2) to L1, i.e., prepare to run L1
 * and modify vmcs12 to make it see what it would expect to see there if
 * L2 was its real guest. Must only be called when in L2 (is_guest_mode())
 */
void nested_vmx_vmexit(struct kvm_vcpu *vcpu, u32 exit_reason,
		       u32 exit_intr_info, unsigned long exit_qualification)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);

	/* trying to cancel vmlaunch/vmresume is a bug */
	WARN_ON_ONCE(vmx->nested.nested_run_pending);

	leave_guest_mode(vcpu);

4286 4287 4288
	if (nested_cpu_has_preemption_timer(vmcs12))
		hrtimer_cancel(&to_vmx(vcpu)->nested.preemption_timer);

4289
	if (vmcs12->cpu_based_vm_exec_control & CPU_BASED_USE_TSC_OFFSETTING)
4290 4291 4292
		vcpu->arch.tsc_offset -= vmcs12->tsc_offset;

	if (likely(!vmx->fail)) {
4293
		sync_vmcs02_to_vmcs12(vcpu, vmcs12);
4294 4295

		if (exit_reason != -1)
4296 4297 4298 4299
			prepare_vmcs12(vcpu, vmcs12, exit_reason, exit_intr_info,
				       exit_qualification);

		/*
4300
		 * Must happen outside of sync_vmcs02_to_vmcs12() as it will
4301 4302 4303 4304 4305 4306 4307 4308 4309 4310 4311 4312 4313 4314 4315 4316 4317 4318 4319 4320 4321 4322 4323 4324 4325 4326
		 * also be used to capture vmcs12 cache as part of
		 * capturing nVMX state for snapshot (migration).
		 *
		 * Otherwise, this flush will dirty guest memory at a
		 * point it is already assumed by user-space to be
		 * immutable.
		 */
		nested_flush_cached_shadow_vmcs12(vcpu, vmcs12);
	} else {
		/*
		 * The only expected VM-instruction error is "VM entry with
		 * invalid control field(s)." Anything else indicates a
		 * problem with L0.  And we should never get here with a
		 * VMFail of any type if early consistency checks are enabled.
		 */
		WARN_ON_ONCE(vmcs_read32(VM_INSTRUCTION_ERROR) !=
			     VMXERR_ENTRY_INVALID_CONTROL_FIELD);
		WARN_ON_ONCE(nested_early_check);
	}

	vmx_switch_vmcs(vcpu, &vmx->vmcs01);

	/* Update any VMCS fields that might have changed while L2 ran */
	vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, vmx->msr_autoload.host.nr);
	vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, vmx->msr_autoload.guest.nr);
	vmcs_write64(TSC_OFFSET, vcpu->arch.tsc_offset);
4327 4328
	if (vmx->nested.l1_tpr_threshold != -1)
		vmcs_write32(TPR_THRESHOLD, vmx->nested.l1_tpr_threshold);
4329 4330 4331 4332 4333 4334 4335 4336 4337 4338 4339

	if (kvm_has_tsc_control)
		decache_tsc_multiplier(vmx);

	if (vmx->nested.change_vmcs01_virtual_apic_mode) {
		vmx->nested.change_vmcs01_virtual_apic_mode = false;
		vmx_set_virtual_apic_mode(vcpu);
	}

	/* Unpin physical memory we referred to in vmcs02 */
	if (vmx->nested.apic_access_page) {
4340
		kvm_release_page_clean(vmx->nested.apic_access_page);
4341 4342
		vmx->nested.apic_access_page = NULL;
	}
4343
	kvm_vcpu_unmap(vcpu, &vmx->nested.virtual_apic_map, true);
4344 4345
	kvm_vcpu_unmap(vcpu, &vmx->nested.pi_desc_map, true);
	vmx->nested.pi_desc = NULL;
4346 4347 4348 4349 4350 4351 4352 4353

	/*
	 * We are now running in L2, mmu_notifier will force to reload the
	 * page's hpa for L2 vmcs. Need to reload it for L1 before entering L1.
	 */
	kvm_make_request(KVM_REQ_APIC_PAGE_RELOAD, vcpu);

	if ((exit_reason != -1) && (enable_shadow_vmcs || vmx->nested.hv_evmcs))
4354
		vmx->nested.need_vmcs12_to_shadow_sync = true;
4355 4356 4357 4358 4359

	/* in case we halted in L2 */
	vcpu->arch.mp_state = KVM_MP_STATE_RUNNABLE;

	if (likely(!vmx->fail)) {
4360 4361
		if (exit_reason == EXIT_REASON_EXTERNAL_INTERRUPT &&
		    nested_exit_intr_ack_set(vcpu)) {
4362 4363 4364 4365 4366 4367 4368 4369 4370 4371 4372 4373 4374 4375 4376 4377 4378 4379 4380 4381 4382 4383 4384 4385 4386 4387 4388 4389 4390 4391 4392 4393 4394 4395 4396 4397 4398 4399 4400 4401 4402 4403 4404
			int irq = kvm_cpu_get_interrupt(vcpu);
			WARN_ON(irq < 0);
			vmcs12->vm_exit_intr_info = irq |
				INTR_INFO_VALID_MASK | INTR_TYPE_EXT_INTR;
		}

		if (exit_reason != -1)
			trace_kvm_nested_vmexit_inject(vmcs12->vm_exit_reason,
						       vmcs12->exit_qualification,
						       vmcs12->idt_vectoring_info_field,
						       vmcs12->vm_exit_intr_info,
						       vmcs12->vm_exit_intr_error_code,
						       KVM_ISA_VMX);

		load_vmcs12_host_state(vcpu, vmcs12);

		return;
	}

	/*
	 * After an early L2 VM-entry failure, we're now back
	 * in L1 which thinks it just finished a VMLAUNCH or
	 * VMRESUME instruction, so we need to set the failure
	 * flag and the VM-instruction error field of the VMCS
	 * accordingly, and skip the emulated instruction.
	 */
	(void)nested_vmx_failValid(vcpu, VMXERR_ENTRY_INVALID_CONTROL_FIELD);

	/*
	 * Restore L1's host state to KVM's software model.  We're here
	 * because a consistency check was caught by hardware, which
	 * means some amount of guest state has been propagated to KVM's
	 * model and needs to be unwound to the host's state.
	 */
	nested_vmx_restore_host_state(vcpu);

	vmx->fail = 0;
}

/*
 * Decode the memory-address operand of a vmx instruction, as recorded on an
 * exit caused by such an instruction (run by a guest hypervisor).
 * On success, returns 0. When the operand is invalid, returns 1 and throws
M
Miaohe Lin 已提交
4405
 * #UD, #GP, or #SS.
4406 4407
 */
int get_vmx_mem_address(struct kvm_vcpu *vcpu, unsigned long exit_qualification,
4408
			u32 vmx_instruction_info, bool wr, int len, gva_t *ret)
4409 4410 4411 4412 4413 4414 4415 4416 4417 4418 4419 4420 4421 4422 4423 4424 4425 4426 4427 4428 4429 4430 4431 4432 4433 4434 4435 4436 4437 4438
{
	gva_t off;
	bool exn;
	struct kvm_segment s;

	/*
	 * According to Vol. 3B, "Information for VM Exits Due to Instruction
	 * Execution", on an exit, vmx_instruction_info holds most of the
	 * addressing components of the operand. Only the displacement part
	 * is put in exit_qualification (see 3B, "Basic VM-Exit Information").
	 * For how an actual address is calculated from all these components,
	 * refer to Vol. 1, "Operand Addressing".
	 */
	int  scaling = vmx_instruction_info & 3;
	int  addr_size = (vmx_instruction_info >> 7) & 7;
	bool is_reg = vmx_instruction_info & (1u << 10);
	int  seg_reg = (vmx_instruction_info >> 15) & 7;
	int  index_reg = (vmx_instruction_info >> 18) & 0xf;
	bool index_is_valid = !(vmx_instruction_info & (1u << 22));
	int  base_reg       = (vmx_instruction_info >> 23) & 0xf;
	bool base_is_valid  = !(vmx_instruction_info & (1u << 27));

	if (is_reg) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 1;
	}

	/* Addr = segment_base + offset */
	/* offset = base + [index * scale] + displacement */
	off = exit_qualification; /* holds the displacement */
4439 4440 4441 4442
	if (addr_size == 1)
		off = (gva_t)sign_extend64(off, 31);
	else if (addr_size == 0)
		off = (gva_t)sign_extend64(off, 15);
4443 4444 4445
	if (base_is_valid)
		off += kvm_register_read(vcpu, base_reg);
	if (index_is_valid)
4446
		off += kvm_register_read(vcpu, index_reg) << scaling;
4447 4448
	vmx_get_segment(vcpu, &s, seg_reg);

4449 4450 4451 4452 4453 4454
	/*
	 * The effective address, i.e. @off, of a memory operand is truncated
	 * based on the address size of the instruction.  Note that this is
	 * the *effective address*, i.e. the address prior to accounting for
	 * the segment's base.
	 */
4455
	if (addr_size == 1) /* 32 bit */
4456 4457 4458
		off &= 0xffffffff;
	else if (addr_size == 0) /* 16 bit */
		off &= 0xffff;
4459 4460 4461 4462

	/* Checks for #GP/#SS exceptions. */
	exn = false;
	if (is_long_mode(vcpu)) {
4463 4464 4465 4466 4467
		/*
		 * The virtual/linear address is never truncated in 64-bit
		 * mode, e.g. a 32-bit address size can yield a 64-bit virtual
		 * address when using FS/GS with a non-zero base.
		 */
4468 4469 4470 4471
		if (seg_reg == VCPU_SREG_FS || seg_reg == VCPU_SREG_GS)
			*ret = s.base + off;
		else
			*ret = off;
4472

4473 4474 4475 4476 4477
		/* Long mode: #GP(0)/#SS(0) if the memory address is in a
		 * non-canonical form. This is the only check on the memory
		 * destination for long mode!
		 */
		exn = is_noncanonical_address(*ret, vcpu);
4478
	} else {
4479 4480 4481 4482 4483 4484 4485
		/*
		 * When not in long mode, the virtual/linear address is
		 * unconditionally truncated to 32 bits regardless of the
		 * address size.
		 */
		*ret = (s.base + off) & 0xffffffff;

4486 4487 4488 4489 4490 4491 4492 4493 4494 4495 4496 4497 4498 4499 4500 4501 4502 4503 4504 4505 4506 4507 4508
		/* Protected mode: apply checks for segment validity in the
		 * following order:
		 * - segment type check (#GP(0) may be thrown)
		 * - usability check (#GP(0)/#SS(0))
		 * - limit check (#GP(0)/#SS(0))
		 */
		if (wr)
			/* #GP(0) if the destination operand is located in a
			 * read-only data segment or any code segment.
			 */
			exn = ((s.type & 0xa) == 0 || (s.type & 8));
		else
			/* #GP(0) if the source operand is located in an
			 * execute-only code segment
			 */
			exn = ((s.type & 0xa) == 8);
		if (exn) {
			kvm_queue_exception_e(vcpu, GP_VECTOR, 0);
			return 1;
		}
		/* Protected mode: #GP(0)/#SS(0) if the segment is unusable.
		 */
		exn = (s.unusable != 0);
4509 4510 4511 4512 4513 4514

		/*
		 * Protected mode: #GP(0)/#SS(0) if the memory operand is
		 * outside the segment limit.  All CPUs that support VMX ignore
		 * limit checks for flat segments, i.e. segments with base==0,
		 * limit==0xffffffff and of type expand-up data or code.
4515
		 */
4516 4517
		if (!(s.base == 0 && s.limit == 0xffffffff &&
		     ((s.type & 8) || !(s.type & 4))))
4518
			exn = exn || ((u64)off + len - 1 > s.limit);
4519 4520 4521 4522 4523 4524 4525 4526 4527 4528 4529 4530
	}
	if (exn) {
		kvm_queue_exception_e(vcpu,
				      seg_reg == VCPU_SREG_SS ?
						SS_VECTOR : GP_VECTOR,
				      0);
		return 1;
	}

	return 0;
}

4531 4532 4533 4534 4535 4536 4537 4538
void nested_vmx_pmu_entry_exit_ctls_update(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx;

	if (!nested_vmx_allowed(vcpu))
		return;

	vmx = to_vmx(vcpu);
4539
	if (kvm_x86_ops.pmu_ops->is_valid_msr(vcpu, MSR_CORE_PERF_GLOBAL_CTRL)) {
4540 4541 4542 4543 4544 4545 4546 4547 4548 4549 4550 4551
		vmx->nested.msrs.entry_ctls_high |=
				VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL;
		vmx->nested.msrs.exit_ctls_high |=
				VM_EXIT_LOAD_IA32_PERF_GLOBAL_CTRL;
	} else {
		vmx->nested.msrs.entry_ctls_high &=
				~VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL;
		vmx->nested.msrs.exit_ctls_high &=
				~VM_ENTRY_LOAD_IA32_PERF_GLOBAL_CTRL;
	}
}

4552 4553 4554 4555 4556 4557
static int nested_vmx_get_vmptr(struct kvm_vcpu *vcpu, gpa_t *vmpointer)
{
	gva_t gva;
	struct x86_exception e;

	if (get_vmx_mem_address(vcpu, vmcs_readl(EXIT_QUALIFICATION),
4558 4559
				vmcs_read32(VMX_INSTRUCTION_INFO), false,
				sizeof(*vmpointer), &gva))
4560 4561 4562 4563 4564 4565 4566 4567 4568 4569 4570 4571 4572 4573 4574 4575 4576 4577 4578 4579 4580 4581 4582 4583 4584 4585 4586 4587 4588 4589 4590 4591 4592 4593 4594 4595 4596 4597 4598 4599 4600 4601 4602 4603 4604
		return 1;

	if (kvm_read_guest_virt(vcpu, gva, vmpointer, sizeof(*vmpointer), &e)) {
		kvm_inject_page_fault(vcpu, &e);
		return 1;
	}

	return 0;
}

/*
 * Allocate a shadow VMCS and associate it with the currently loaded
 * VMCS, unless such a shadow VMCS already exists. The newly allocated
 * VMCS is also VMCLEARed, so that it is ready for use.
 */
static struct vmcs *alloc_shadow_vmcs(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct loaded_vmcs *loaded_vmcs = vmx->loaded_vmcs;

	/*
	 * We should allocate a shadow vmcs for vmcs01 only when L1
	 * executes VMXON and free it when L1 executes VMXOFF.
	 * As it is invalid to execute VMXON twice, we shouldn't reach
	 * here when vmcs01 already have an allocated shadow vmcs.
	 */
	WARN_ON(loaded_vmcs == &vmx->vmcs01 && loaded_vmcs->shadow_vmcs);

	if (!loaded_vmcs->shadow_vmcs) {
		loaded_vmcs->shadow_vmcs = alloc_vmcs(true);
		if (loaded_vmcs->shadow_vmcs)
			vmcs_clear(loaded_vmcs->shadow_vmcs);
	}
	return loaded_vmcs->shadow_vmcs;
}

static int enter_vmx_operation(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	int r;

	r = alloc_loaded_vmcs(&vmx->nested.vmcs02);
	if (r < 0)
		goto out_vmcs02;

4605
	vmx->nested.cached_vmcs12 = kzalloc(VMCS12_SIZE, GFP_KERNEL_ACCOUNT);
4606 4607 4608
	if (!vmx->nested.cached_vmcs12)
		goto out_cached_vmcs12;

4609
	vmx->nested.cached_shadow_vmcs12 = kzalloc(VMCS12_SIZE, GFP_KERNEL_ACCOUNT);
4610 4611 4612 4613 4614 4615 4616 4617 4618 4619 4620 4621 4622 4623
	if (!vmx->nested.cached_shadow_vmcs12)
		goto out_cached_shadow_vmcs12;

	if (enable_shadow_vmcs && !alloc_shadow_vmcs(vcpu))
		goto out_shadow_vmcs;

	hrtimer_init(&vmx->nested.preemption_timer, CLOCK_MONOTONIC,
		     HRTIMER_MODE_REL_PINNED);
	vmx->nested.preemption_timer.function = vmx_preemption_timer_fn;

	vmx->nested.vpid02 = allocate_vpid();

	vmx->nested.vmcs02_initialized = false;
	vmx->nested.vmxon = true;
4624

4625
	if (vmx_pt_mode_is_host_guest()) {
4626 4627 4628 4629
		vmx->pt_desc.guest.ctl = 0;
		pt_update_intercept_for_msr(vmx);
	}

4630 4631 4632 4633 4634 4635 4636 4637 4638 4639 4640 4641 4642 4643 4644 4645 4646 4647 4648 4649 4650 4651 4652 4653 4654 4655 4656
	return 0;

out_shadow_vmcs:
	kfree(vmx->nested.cached_shadow_vmcs12);

out_cached_shadow_vmcs12:
	kfree(vmx->nested.cached_vmcs12);

out_cached_vmcs12:
	free_loaded_vmcs(&vmx->nested.vmcs02);

out_vmcs02:
	return -ENOMEM;
}

/*
 * Emulate the VMXON instruction.
 * Currently, we just remember that VMX is active, and do not save or even
 * inspect the argument to VMXON (the so-called "VMXON pointer") because we
 * do not currently need to store anything in that guest-allocated memory
 * region. Consequently, VMCLEAR and VMPTRLD also do not verify that the their
 * argument is different from the VMXON pointer (which the spec says they do).
 */
static int handle_vmon(struct kvm_vcpu *vcpu)
{
	int ret;
	gpa_t vmptr;
4657
	uint32_t revision;
4658
	struct vcpu_vmx *vmx = to_vmx(vcpu);
4659 4660
	const u64 VMXON_NEEDED_FEATURES = FEAT_CTL_LOCKED
		| FEAT_CTL_VMX_ENABLED_OUTSIDE_SMX;
4661 4662 4663 4664 4665 4666 4667 4668 4669 4670 4671 4672 4673 4674 4675 4676 4677 4678 4679 4680 4681 4682 4683 4684 4685 4686 4687 4688 4689 4690 4691 4692 4693 4694 4695 4696 4697 4698 4699 4700 4701 4702

	/*
	 * The Intel VMX Instruction Reference lists a bunch of bits that are
	 * prerequisite to running VMXON, most notably cr4.VMXE must be set to
	 * 1 (see vmx_set_cr4() for when we allow the guest to set this).
	 * Otherwise, we should fail with #UD.  But most faulting conditions
	 * have already been checked by hardware, prior to the VM-exit for
	 * VMXON.  We do test guest cr4.VMXE because processor CR4 always has
	 * that bit set to 1 in non-root mode.
	 */
	if (!kvm_read_cr4_bits(vcpu, X86_CR4_VMXE)) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 1;
	}

	/* CPL=0 must be checked manually. */
	if (vmx_get_cpl(vcpu)) {
		kvm_inject_gp(vcpu, 0);
		return 1;
	}

	if (vmx->nested.vmxon)
		return nested_vmx_failValid(vcpu,
			VMXERR_VMXON_IN_VMX_ROOT_OPERATION);

	if ((vmx->msr_ia32_feature_control & VMXON_NEEDED_FEATURES)
			!= VMXON_NEEDED_FEATURES) {
		kvm_inject_gp(vcpu, 0);
		return 1;
	}

	if (nested_vmx_get_vmptr(vcpu, &vmptr))
		return 1;

	/*
	 * SDM 3: 24.11.5
	 * The first 4 bytes of VMXON region contain the supported
	 * VMCS revision identifier
	 *
	 * Note - IA32_VMX_BASIC[48] will never be 1 for the nested case;
	 * which replaces physical address width with 32
	 */
4703
	if (!page_address_valid(vcpu, vmptr))
4704 4705
		return nested_vmx_failInvalid(vcpu);

4706 4707
	if (kvm_read_guest(vcpu->kvm, vmptr, &revision, sizeof(revision)) ||
	    revision != VMCS12_REVISION)
4708 4709 4710 4711 4712 4713 4714 4715 4716 4717 4718 4719 4720 4721 4722 4723 4724
		return nested_vmx_failInvalid(vcpu);

	vmx->nested.vmxon_ptr = vmptr;
	ret = enter_vmx_operation(vcpu);
	if (ret)
		return ret;

	return nested_vmx_succeed(vcpu);
}

static inline void nested_release_vmcs12(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);

	if (vmx->nested.current_vmptr == -1ull)
		return;

4725 4726
	copy_vmcs02_to_vmcs12_rare(vcpu, get_vmcs12(vcpu));

4727 4728 4729 4730 4731 4732 4733 4734 4735 4736 4737 4738 4739 4740 4741 4742 4743 4744 4745 4746 4747 4748 4749
	if (enable_shadow_vmcs) {
		/* copy to memory all shadowed fields in case
		   they were modified */
		copy_shadow_to_vmcs12(vmx);
		vmx_disable_shadow_vmcs(vmx);
	}
	vmx->nested.posted_intr_nv = -1;

	/* Flush VMCS12 to guest memory */
	kvm_vcpu_write_guest_page(vcpu,
				  vmx->nested.current_vmptr >> PAGE_SHIFT,
				  vmx->nested.cached_vmcs12, 0, VMCS12_SIZE);

	kvm_mmu_free_roots(vcpu, &vcpu->arch.guest_mmu, KVM_MMU_ROOTS_ALL);

	vmx->nested.current_vmptr = -1ull;
}

/* Emulate the VMXOFF instruction */
static int handle_vmoff(struct kvm_vcpu *vcpu)
{
	if (!nested_vmx_check_permission(vcpu))
		return 1;
4750

4751
	free_nested(vcpu);
4752 4753 4754 4755

	/* Process a latched INIT during time CPU was in VMX operation */
	kvm_make_request(KVM_REQ_EVENT, vcpu);

4756 4757 4758 4759 4760 4761 4762 4763 4764
	return nested_vmx_succeed(vcpu);
}

/* Emulate the VMCLEAR instruction */
static int handle_vmclear(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u32 zero = 0;
	gpa_t vmptr;
4765
	u64 evmcs_gpa;
4766 4767 4768 4769 4770 4771 4772

	if (!nested_vmx_check_permission(vcpu))
		return 1;

	if (nested_vmx_get_vmptr(vcpu, &vmptr))
		return 1;

4773
	if (!page_address_valid(vcpu, vmptr))
4774 4775 4776 4777 4778 4779 4780
		return nested_vmx_failValid(vcpu,
			VMXERR_VMCLEAR_INVALID_ADDRESS);

	if (vmptr == vmx->nested.vmxon_ptr)
		return nested_vmx_failValid(vcpu,
			VMXERR_VMCLEAR_VMXON_POINTER);

4781 4782 4783 4784 4785 4786 4787 4788 4789 4790 4791 4792
	/*
	 * When Enlightened VMEntry is enabled on the calling CPU we treat
	 * memory area pointer by vmptr as Enlightened VMCS (as there's no good
	 * way to distinguish it from VMCS12) and we must not corrupt it by
	 * writing to the non-existent 'launch_state' field. The area doesn't
	 * have to be the currently active EVMCS on the calling CPU and there's
	 * nothing KVM has to do to transition it from 'active' to 'non-active'
	 * state. It is possible that the area will stay mapped as
	 * vmx->nested.hv_evmcs but this shouldn't be a problem.
	 */
	if (likely(!vmx->nested.enlightened_vmcs_enabled ||
		   !nested_enlightened_vmentry(vcpu, &evmcs_gpa))) {
4793 4794 4795 4796 4797 4798 4799 4800 4801 4802 4803 4804 4805 4806 4807 4808 4809 4810 4811 4812 4813 4814 4815 4816 4817 4818 4819
		if (vmptr == vmx->nested.current_vmptr)
			nested_release_vmcs12(vcpu);

		kvm_vcpu_write_guest(vcpu,
				     vmptr + offsetof(struct vmcs12,
						      launch_state),
				     &zero, sizeof(zero));
	}

	return nested_vmx_succeed(vcpu);
}

/* Emulate the VMLAUNCH instruction */
static int handle_vmlaunch(struct kvm_vcpu *vcpu)
{
	return nested_vmx_run(vcpu, true);
}

/* Emulate the VMRESUME instruction */
static int handle_vmresume(struct kvm_vcpu *vcpu)
{

	return nested_vmx_run(vcpu, false);
}

static int handle_vmread(struct kvm_vcpu *vcpu)
{
4820 4821
	struct vmcs12 *vmcs12 = is_guest_mode(vcpu) ? get_shadow_vmcs12(vcpu)
						    : get_vmcs12(vcpu);
4822
	unsigned long exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
4823 4824
	u32 instr_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
4825
	struct x86_exception e;
4826 4827 4828
	unsigned long field;
	u64 value;
	gva_t gva = 0;
4829
	short offset;
4830
	int len;
4831 4832 4833 4834

	if (!nested_vmx_check_permission(vcpu))
		return 1;

4835 4836 4837 4838 4839 4840 4841
	/*
	 * In VMX non-root operation, when the VMCS-link pointer is -1ull,
	 * any VMREAD sets the ALU flags for VMfailInvalid.
	 */
	if (vmx->nested.current_vmptr == -1ull ||
	    (is_guest_mode(vcpu) &&
	     get_vmcs12(vcpu)->vmcs_link_pointer == -1ull))
4842 4843 4844
		return nested_vmx_failInvalid(vcpu);

	/* Decode instruction info and find the field to read */
4845
	field = kvm_register_readl(vcpu, (((instr_info) >> 28) & 0xf));
4846 4847 4848

	offset = vmcs_field_to_offset(field);
	if (offset < 0)
4849 4850 4851
		return nested_vmx_failValid(vcpu,
			VMXERR_UNSUPPORTED_VMCS_COMPONENT);

4852 4853 4854
	if (!is_guest_mode(vcpu) && is_vmcs12_ext_field(field))
		copy_vmcs02_to_vmcs12_rare(vcpu, vmcs12);

4855 4856
	/* Read the field, zero-extended to a u64 value */
	value = vmcs12_read_any(vmcs12, field, offset);
4857

4858 4859 4860 4861 4862
	/*
	 * Now copy part of this value to register or memory, as requested.
	 * Note that the number of bits actually copied is 32 or 64 depending
	 * on the guest's mode (32 or 64 bit), not on the given field's length.
	 */
4863 4864
	if (instr_info & BIT(10)) {
		kvm_register_writel(vcpu, (((instr_info) >> 3) & 0xf), value);
4865
	} else {
4866
		len = is_64_bit_mode(vcpu) ? 8 : 4;
4867
		if (get_vmx_mem_address(vcpu, exit_qualification,
4868
					instr_info, true, len, &gva))
4869 4870
			return 1;
		/* _system ok, nested_vmx_check_permission has verified cpl=0 */
4871
		if (kvm_write_guest_virt_system(vcpu, gva, &value, len, &e)) {
4872
			kvm_inject_page_fault(vcpu, &e);
4873 4874
			return 1;
		}
4875 4876 4877 4878 4879
	}

	return nested_vmx_succeed(vcpu);
}

4880 4881 4882 4883 4884 4885 4886 4887 4888 4889 4890 4891 4892 4893 4894 4895 4896 4897 4898 4899 4900 4901 4902
static bool is_shadow_field_rw(unsigned long field)
{
	switch (field) {
#define SHADOW_FIELD_RW(x, y) case x:
#include "vmcs_shadow_fields.h"
		return true;
	default:
		break;
	}
	return false;
}

static bool is_shadow_field_ro(unsigned long field)
{
	switch (field) {
#define SHADOW_FIELD_RO(x, y) case x:
#include "vmcs_shadow_fields.h"
		return true;
	default:
		break;
	}
	return false;
}
4903 4904 4905

static int handle_vmwrite(struct kvm_vcpu *vcpu)
{
4906 4907 4908 4909 4910 4911
	struct vmcs12 *vmcs12 = is_guest_mode(vcpu) ? get_shadow_vmcs12(vcpu)
						    : get_vmcs12(vcpu);
	unsigned long exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
	u32 instr_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct x86_exception e;
4912
	unsigned long field;
4913
	short offset;
4914
	gva_t gva;
4915
	int len;
4916

4917 4918
	/*
	 * The value to write might be 32 or 64 bits, depending on L1's long
4919 4920
	 * mode, and eventually we need to write that into a field of several
	 * possible lengths. The code below first zero-extends the value to 64
4921
	 * bit (value), and then copies only the appropriate number of
4922 4923
	 * bits into the vmcs12 field.
	 */
4924
	u64 value = 0;
4925 4926 4927 4928

	if (!nested_vmx_check_permission(vcpu))
		return 1;

4929 4930 4931 4932 4933 4934 4935
	/*
	 * In VMX non-root operation, when the VMCS-link pointer is -1ull,
	 * any VMWRITE sets the ALU flags for VMfailInvalid.
	 */
	if (vmx->nested.current_vmptr == -1ull ||
	    (is_guest_mode(vcpu) &&
	     get_vmcs12(vcpu)->vmcs_link_pointer == -1ull))
4936 4937
		return nested_vmx_failInvalid(vcpu);

4938 4939
	if (instr_info & BIT(10))
		value = kvm_register_readl(vcpu, (((instr_info) >> 3) & 0xf));
4940
	else {
4941
		len = is_64_bit_mode(vcpu) ? 8 : 4;
4942
		if (get_vmx_mem_address(vcpu, exit_qualification,
4943
					instr_info, false, len, &gva))
4944
			return 1;
4945
		if (kvm_read_guest_virt(vcpu, gva, &value, len, &e)) {
4946 4947 4948 4949 4950
			kvm_inject_page_fault(vcpu, &e);
			return 1;
		}
	}

4951
	field = kvm_register_readl(vcpu, (((instr_info) >> 28) & 0xf));
4952 4953 4954 4955 4956

	offset = vmcs_field_to_offset(field);
	if (offset < 0)
		return nested_vmx_failValid(vcpu,
			VMXERR_UNSUPPORTED_VMCS_COMPONENT);
4957 4958 4959 4960 4961 4962 4963 4964 4965 4966

	/*
	 * If the vCPU supports "VMWRITE to any supported field in the
	 * VMCS," then the "read-only" fields are actually read/write.
	 */
	if (vmcs_field_readonly(field) &&
	    !nested_cpu_has_vmwrite_any_field(vcpu))
		return nested_vmx_failValid(vcpu,
			VMXERR_VMWRITE_READ_ONLY_VMCS_COMPONENT);

4967 4968 4969 4970 4971 4972
	/*
	 * Ensure vmcs12 is up-to-date before any VMWRITE that dirties
	 * vmcs12, else we may crush a field or consume a stale value.
	 */
	if (!is_guest_mode(vcpu) && !is_shadow_field_rw(field))
		copy_vmcs02_to_vmcs12_rare(vcpu, vmcs12);
4973 4974

	/*
4975 4976 4977 4978 4979 4980
	 * Some Intel CPUs intentionally drop the reserved bits of the AR byte
	 * fields on VMWRITE.  Emulate this behavior to ensure consistent KVM
	 * behavior regardless of the underlying hardware, e.g. if an AR_BYTE
	 * field is intercepted for VMWRITE but not VMREAD (in L1), then VMREAD
	 * from L1 will return a different value than VMREAD from L2 (L1 sees
	 * the stripped down value, L2 sees the full value as stored by KVM).
4981
	 */
4982
	if (field >= GUEST_ES_AR_BYTES && field <= GUEST_TR_AR_BYTES)
4983
		value &= 0x1f0ff;
4984

4985
	vmcs12_write_any(vmcs12, field, offset, value);
4986 4987

	/*
4988 4989 4990 4991
	 * Do not track vmcs12 dirty-state if in guest-mode as we actually
	 * dirty shadow vmcs12 instead of vmcs12.  Fields that can be updated
	 * by L1 without a vmexit are always updated in the vmcs02, i.e. don't
	 * "dirty" vmcs12, all others go down the prepare_vmcs02() slow path.
4992
	 */
4993 4994 4995 4996 4997 4998 4999 5000
	if (!is_guest_mode(vcpu) && !is_shadow_field_rw(field)) {
		/*
		 * L1 can read these fields without exiting, ensure the
		 * shadow VMCS is up-to-date.
		 */
		if (enable_shadow_vmcs && is_shadow_field_ro(field)) {
			preempt_disable();
			vmcs_load(vmx->vmcs01.shadow_vmcs);
5001

5002
			__vmcs_writel(field, value);
5003

5004 5005 5006
			vmcs_clear(vmx->vmcs01.shadow_vmcs);
			vmcs_load(vmx->loaded_vmcs->vmcs);
			preempt_enable();
5007
		}
5008
		vmx->nested.dirty_vmcs12 = true;
5009 5010 5011 5012 5013 5014 5015 5016 5017
	}

	return nested_vmx_succeed(vcpu);
}

static void set_current_vmptr(struct vcpu_vmx *vmx, gpa_t vmptr)
{
	vmx->nested.current_vmptr = vmptr;
	if (enable_shadow_vmcs) {
5018
		secondary_exec_controls_setbit(vmx, SECONDARY_EXEC_SHADOW_VMCS);
5019 5020
		vmcs_write64(VMCS_LINK_POINTER,
			     __pa(vmx->vmcs01.shadow_vmcs));
5021
		vmx->nested.need_vmcs12_to_shadow_sync = true;
5022 5023 5024 5025 5026 5027 5028 5029 5030 5031 5032 5033 5034 5035 5036 5037
	}
	vmx->nested.dirty_vmcs12 = true;
}

/* Emulate the VMPTRLD instruction */
static int handle_vmptrld(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	gpa_t vmptr;

	if (!nested_vmx_check_permission(vcpu))
		return 1;

	if (nested_vmx_get_vmptr(vcpu, &vmptr))
		return 1;

5038
	if (!page_address_valid(vcpu, vmptr))
5039 5040 5041 5042 5043 5044 5045 5046 5047 5048 5049 5050
		return nested_vmx_failValid(vcpu,
			VMXERR_VMPTRLD_INVALID_ADDRESS);

	if (vmptr == vmx->nested.vmxon_ptr)
		return nested_vmx_failValid(vcpu,
			VMXERR_VMPTRLD_VMXON_POINTER);

	/* Forbid normal VMPTRLD if Enlightened version was used */
	if (vmx->nested.hv_evmcs)
		return 1;

	if (vmx->nested.current_vmptr != vmptr) {
5051
		struct kvm_host_map map;
5052 5053
		struct vmcs12 *new_vmcs12;

5054
		if (kvm_vcpu_map(vcpu, gpa_to_gfn(vmptr), &map)) {
5055 5056 5057 5058 5059 5060
			/*
			 * Reads from an unbacked page return all 1s,
			 * which means that the 32 bits located at the
			 * given physical address won't match the required
			 * VMCS12_REVISION identifier.
			 */
5061
			return nested_vmx_failValid(vcpu,
5062 5063
				VMXERR_VMPTRLD_INCORRECT_VMCS_REVISION_ID);
		}
5064 5065 5066

		new_vmcs12 = map.hva;

5067 5068 5069
		if (new_vmcs12->hdr.revision_id != VMCS12_REVISION ||
		    (new_vmcs12->hdr.shadow_vmcs &&
		     !nested_cpu_has_vmx_shadow_vmcs(vcpu))) {
5070
			kvm_vcpu_unmap(vcpu, &map, false);
5071 5072 5073 5074 5075 5076 5077 5078 5079 5080 5081
			return nested_vmx_failValid(vcpu,
				VMXERR_VMPTRLD_INCORRECT_VMCS_REVISION_ID);
		}

		nested_release_vmcs12(vcpu);

		/*
		 * Load VMCS12 from guest memory since it is not already
		 * cached.
		 */
		memcpy(vmx->nested.cached_vmcs12, new_vmcs12, VMCS12_SIZE);
5082
		kvm_vcpu_unmap(vcpu, &map, false);
5083 5084 5085 5086 5087 5088 5089 5090 5091 5092 5093 5094 5095 5096 5097 5098 5099 5100 5101 5102 5103 5104

		set_current_vmptr(vmx, vmptr);
	}

	return nested_vmx_succeed(vcpu);
}

/* Emulate the VMPTRST instruction */
static int handle_vmptrst(struct kvm_vcpu *vcpu)
{
	unsigned long exit_qual = vmcs_readl(EXIT_QUALIFICATION);
	u32 instr_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	gpa_t current_vmptr = to_vmx(vcpu)->nested.current_vmptr;
	struct x86_exception e;
	gva_t gva;

	if (!nested_vmx_check_permission(vcpu))
		return 1;

	if (unlikely(to_vmx(vcpu)->nested.hv_evmcs))
		return 1;

5105 5106
	if (get_vmx_mem_address(vcpu, exit_qual, instr_info,
				true, sizeof(gpa_t), &gva))
5107 5108 5109 5110 5111 5112 5113 5114 5115 5116 5117 5118 5119 5120 5121 5122 5123 5124 5125 5126 5127 5128 5129 5130 5131 5132 5133 5134 5135 5136 5137 5138 5139 5140 5141 5142 5143 5144 5145 5146 5147 5148 5149 5150 5151
		return 1;
	/* *_system ok, nested_vmx_check_permission has verified cpl=0 */
	if (kvm_write_guest_virt_system(vcpu, gva, (void *)&current_vmptr,
					sizeof(gpa_t), &e)) {
		kvm_inject_page_fault(vcpu, &e);
		return 1;
	}
	return nested_vmx_succeed(vcpu);
}

/* Emulate the INVEPT instruction */
static int handle_invept(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u32 vmx_instruction_info, types;
	unsigned long type;
	gva_t gva;
	struct x86_exception e;
	struct {
		u64 eptp, gpa;
	} operand;

	if (!(vmx->nested.msrs.secondary_ctls_high &
	      SECONDARY_EXEC_ENABLE_EPT) ||
	    !(vmx->nested.msrs.ept_caps & VMX_EPT_INVEPT_BIT)) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 1;
	}

	if (!nested_vmx_check_permission(vcpu))
		return 1;

	vmx_instruction_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	type = kvm_register_readl(vcpu, (vmx_instruction_info >> 28) & 0xf);

	types = (vmx->nested.msrs.ept_caps >> VMX_EPT_EXTENT_SHIFT) & 6;

	if (type >= 32 || !(types & (1 << type)))
		return nested_vmx_failValid(vcpu,
				VMXERR_INVALID_OPERAND_TO_INVEPT_INVVPID);

	/* According to the Intel VMX instruction reference, the memory
	 * operand is read even if it isn't needed (e.g., for type==global)
	 */
	if (get_vmx_mem_address(vcpu, vmcs_readl(EXIT_QUALIFICATION),
5152
			vmx_instruction_info, false, sizeof(operand), &gva))
5153 5154 5155 5156 5157 5158 5159 5160
		return 1;
	if (kvm_read_guest_virt(vcpu, gva, &operand, sizeof(operand), &e)) {
		kvm_inject_page_fault(vcpu, &e);
		return 1;
	}

	switch (type) {
	case VMX_EPT_EXTENT_GLOBAL:
5161
	case VMX_EPT_EXTENT_CONTEXT:
5162
	/*
5163 5164
	 * TODO: Sync the necessary shadow EPT roots here, rather than
	 * at the next emulated VM-entry.
5165 5166 5167 5168 5169 5170 5171 5172 5173 5174 5175 5176 5177 5178 5179 5180 5181 5182 5183 5184 5185 5186 5187 5188 5189 5190 5191 5192 5193 5194 5195 5196 5197 5198 5199 5200 5201 5202 5203 5204 5205 5206 5207 5208 5209 5210 5211
	 */
		break;
	default:
		BUG_ON(1);
		break;
	}

	return nested_vmx_succeed(vcpu);
}

static int handle_invvpid(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	u32 vmx_instruction_info;
	unsigned long type, types;
	gva_t gva;
	struct x86_exception e;
	struct {
		u64 vpid;
		u64 gla;
	} operand;
	u16 vpid02;

	if (!(vmx->nested.msrs.secondary_ctls_high &
	      SECONDARY_EXEC_ENABLE_VPID) ||
			!(vmx->nested.msrs.vpid_caps & VMX_VPID_INVVPID_BIT)) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 1;
	}

	if (!nested_vmx_check_permission(vcpu))
		return 1;

	vmx_instruction_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	type = kvm_register_readl(vcpu, (vmx_instruction_info >> 28) & 0xf);

	types = (vmx->nested.msrs.vpid_caps &
			VMX_VPID_EXTENT_SUPPORTED_MASK) >> 8;

	if (type >= 32 || !(types & (1 << type)))
		return nested_vmx_failValid(vcpu,
			VMXERR_INVALID_OPERAND_TO_INVEPT_INVVPID);

	/* according to the intel vmx instruction reference, the memory
	 * operand is read even if it isn't needed (e.g., for type==global)
	 */
	if (get_vmx_mem_address(vcpu, vmcs_readl(EXIT_QUALIFICATION),
5212
			vmx_instruction_info, false, sizeof(operand), &gva))
5213 5214 5215 5216 5217 5218 5219 5220 5221 5222 5223 5224 5225 5226 5227 5228 5229 5230 5231 5232 5233 5234 5235 5236 5237 5238 5239 5240 5241 5242 5243 5244 5245 5246 5247 5248 5249 5250 5251 5252 5253 5254 5255
		return 1;
	if (kvm_read_guest_virt(vcpu, gva, &operand, sizeof(operand), &e)) {
		kvm_inject_page_fault(vcpu, &e);
		return 1;
	}
	if (operand.vpid >> 16)
		return nested_vmx_failValid(vcpu,
			VMXERR_INVALID_OPERAND_TO_INVEPT_INVVPID);

	vpid02 = nested_get_vpid02(vcpu);
	switch (type) {
	case VMX_VPID_EXTENT_INDIVIDUAL_ADDR:
		if (!operand.vpid ||
		    is_noncanonical_address(operand.gla, vcpu))
			return nested_vmx_failValid(vcpu,
				VMXERR_INVALID_OPERAND_TO_INVEPT_INVVPID);
		if (cpu_has_vmx_invvpid_individual_addr()) {
			__invvpid(VMX_VPID_EXTENT_INDIVIDUAL_ADDR,
				vpid02, operand.gla);
		} else
			__vmx_flush_tlb(vcpu, vpid02, false);
		break;
	case VMX_VPID_EXTENT_SINGLE_CONTEXT:
	case VMX_VPID_EXTENT_SINGLE_NON_GLOBAL:
		if (!operand.vpid)
			return nested_vmx_failValid(vcpu,
				VMXERR_INVALID_OPERAND_TO_INVEPT_INVVPID);
		__vmx_flush_tlb(vcpu, vpid02, false);
		break;
	case VMX_VPID_EXTENT_ALL_CONTEXT:
		__vmx_flush_tlb(vcpu, vpid02, false);
		break;
	default:
		WARN_ON_ONCE(1);
		return kvm_skip_emulated_instruction(vcpu);
	}

	return nested_vmx_succeed(vcpu);
}

static int nested_vmx_eptp_switching(struct kvm_vcpu *vcpu,
				     struct vmcs12 *vmcs12)
{
5256
	u32 index = kvm_rcx_read(vcpu);
5257
	u64 new_eptp;
5258 5259 5260 5261 5262 5263 5264 5265 5266 5267 5268 5269
	bool accessed_dirty;
	struct kvm_mmu *mmu = vcpu->arch.walk_mmu;

	if (!nested_cpu_has_eptp_switching(vmcs12) ||
	    !nested_cpu_has_ept(vmcs12))
		return 1;

	if (index >= VMFUNC_EPTP_ENTRIES)
		return 1;


	if (kvm_vcpu_read_guest_page(vcpu, vmcs12->eptp_list_address >> PAGE_SHIFT,
5270
				     &new_eptp, index * 8, 8))
5271 5272
		return 1;

5273
	accessed_dirty = !!(new_eptp & VMX_EPTP_AD_ENABLE_BIT);
5274 5275 5276 5277 5278

	/*
	 * If the (L2) guest does a vmfunc to the currently
	 * active ept pointer, we don't have to do anything else
	 */
5279 5280
	if (vmcs12->ept_pointer != new_eptp) {
		if (!nested_vmx_check_eptp(vcpu, new_eptp))
5281 5282 5283 5284 5285
			return 1;

		kvm_mmu_unload(vcpu);
		mmu->ept_ad = accessed_dirty;
		mmu->mmu_role.base.ad_disabled = !accessed_dirty;
5286
		vmcs12->ept_pointer = new_eptp;
5287 5288 5289 5290 5291 5292 5293 5294 5295 5296 5297 5298 5299 5300 5301
		/*
		 * TODO: Check what's the correct approach in case
		 * mmu reload fails. Currently, we just let the next
		 * reload potentially fail
		 */
		kvm_mmu_reload(vcpu);
	}

	return 0;
}

static int handle_vmfunc(struct kvm_vcpu *vcpu)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmcs12 *vmcs12;
5302
	u32 function = kvm_rax_read(vcpu);
5303 5304 5305 5306 5307 5308 5309 5310 5311 5312 5313 5314 5315 5316 5317 5318 5319 5320 5321 5322 5323 5324 5325 5326 5327 5328 5329 5330 5331 5332 5333 5334

	/*
	 * VMFUNC is only supported for nested guests, but we always enable the
	 * secondary control for simplicity; for non-nested mode, fake that we
	 * didn't by injecting #UD.
	 */
	if (!is_guest_mode(vcpu)) {
		kvm_queue_exception(vcpu, UD_VECTOR);
		return 1;
	}

	vmcs12 = get_vmcs12(vcpu);
	if ((vmcs12->vm_function_control & (1 << function)) == 0)
		goto fail;

	switch (function) {
	case 0:
		if (nested_vmx_eptp_switching(vcpu, vmcs12))
			goto fail;
		break;
	default:
		goto fail;
	}
	return kvm_skip_emulated_instruction(vcpu);

fail:
	nested_vmx_vmexit(vcpu, vmx->exit_reason,
			  vmcs_read32(VM_EXIT_INTR_INFO),
			  vmcs_readl(EXIT_QUALIFICATION));
	return 1;
}

5335 5336 5337 5338 5339 5340
/*
 * Return true if an IO instruction with the specified port and size should cause
 * a VM-exit into L1.
 */
bool nested_vmx_check_io_bitmaps(struct kvm_vcpu *vcpu, unsigned int port,
				 int size)
5341
{
5342
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);
5343 5344 5345 5346 5347 5348 5349 5350 5351 5352 5353 5354 5355 5356 5357 5358 5359 5360 5361 5362 5363 5364 5365 5366 5367 5368 5369 5370 5371
	gpa_t bitmap, last_bitmap;
	u8 b;

	last_bitmap = (gpa_t)-1;
	b = -1;

	while (size > 0) {
		if (port < 0x8000)
			bitmap = vmcs12->io_bitmap_a;
		else if (port < 0x10000)
			bitmap = vmcs12->io_bitmap_b;
		else
			return true;
		bitmap += (port & 0x7fff) / 8;

		if (last_bitmap != bitmap)
			if (kvm_vcpu_read_guest(vcpu, bitmap, &b, 1))
				return true;
		if (b & (1 << (port & 7)))
			return true;

		port++;
		size--;
		last_bitmap = bitmap;
	}

	return false;
}

5372 5373 5374 5375
static bool nested_vmx_exit_handled_io(struct kvm_vcpu *vcpu,
				       struct vmcs12 *vmcs12)
{
	unsigned long exit_qualification;
5376
	unsigned short port;
5377 5378 5379 5380 5381 5382 5383 5384 5385 5386 5387 5388 5389
	int size;

	if (!nested_cpu_has(vmcs12, CPU_BASED_USE_IO_BITMAPS))
		return nested_cpu_has(vmcs12, CPU_BASED_UNCOND_IO_EXITING);

	exit_qualification = vmcs_readl(EXIT_QUALIFICATION);

	port = exit_qualification >> 16;
	size = (exit_qualification & 7) + 1;

	return nested_vmx_check_io_bitmaps(vcpu, port, size);
}

5390
/*
5391
 * Return 1 if we should exit from L2 to L1 to handle an MSR access,
5392 5393 5394 5395 5396 5397 5398
 * rather than handle it ourselves in L0. I.e., check whether L1 expressed
 * disinterest in the current event (read or write a specific MSR) by using an
 * MSR bitmap. This may be the case even when L0 doesn't use MSR bitmaps.
 */
static bool nested_vmx_exit_handled_msr(struct kvm_vcpu *vcpu,
	struct vmcs12 *vmcs12, u32 exit_reason)
{
5399
	u32 msr_index = kvm_rcx_read(vcpu);
5400 5401 5402 5403 5404 5405 5406 5407 5408 5409 5410 5411 5412 5413 5414 5415 5416 5417 5418 5419 5420 5421 5422 5423 5424 5425 5426 5427 5428 5429 5430 5431 5432 5433 5434 5435 5436 5437 5438 5439 5440 5441 5442 5443 5444 5445 5446 5447 5448 5449 5450 5451 5452 5453 5454 5455 5456 5457 5458 5459 5460 5461 5462 5463 5464 5465 5466 5467 5468 5469 5470 5471 5472 5473 5474 5475 5476 5477 5478 5479 5480 5481 5482 5483 5484 5485 5486 5487 5488 5489 5490 5491 5492 5493 5494 5495 5496 5497 5498 5499 5500 5501 5502 5503 5504 5505 5506 5507 5508 5509 5510 5511 5512 5513 5514 5515 5516 5517 5518 5519 5520 5521 5522 5523 5524 5525 5526 5527 5528 5529 5530 5531 5532 5533 5534 5535 5536 5537 5538 5539 5540 5541 5542 5543 5544 5545 5546
	gpa_t bitmap;

	if (!nested_cpu_has(vmcs12, CPU_BASED_USE_MSR_BITMAPS))
		return true;

	/*
	 * The MSR_BITMAP page is divided into four 1024-byte bitmaps,
	 * for the four combinations of read/write and low/high MSR numbers.
	 * First we need to figure out which of the four to use:
	 */
	bitmap = vmcs12->msr_bitmap;
	if (exit_reason == EXIT_REASON_MSR_WRITE)
		bitmap += 2048;
	if (msr_index >= 0xc0000000) {
		msr_index -= 0xc0000000;
		bitmap += 1024;
	}

	/* Then read the msr_index'th bit from this bitmap: */
	if (msr_index < 1024*8) {
		unsigned char b;
		if (kvm_vcpu_read_guest(vcpu, bitmap + msr_index/8, &b, 1))
			return true;
		return 1 & (b >> (msr_index & 7));
	} else
		return true; /* let L1 handle the wrong parameter */
}

/*
 * Return 1 if we should exit from L2 to L1 to handle a CR access exit,
 * rather than handle it ourselves in L0. I.e., check if L1 wanted to
 * intercept (via guest_host_mask etc.) the current event.
 */
static bool nested_vmx_exit_handled_cr(struct kvm_vcpu *vcpu,
	struct vmcs12 *vmcs12)
{
	unsigned long exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
	int cr = exit_qualification & 15;
	int reg;
	unsigned long val;

	switch ((exit_qualification >> 4) & 3) {
	case 0: /* mov to cr */
		reg = (exit_qualification >> 8) & 15;
		val = kvm_register_readl(vcpu, reg);
		switch (cr) {
		case 0:
			if (vmcs12->cr0_guest_host_mask &
			    (val ^ vmcs12->cr0_read_shadow))
				return true;
			break;
		case 3:
			if ((vmcs12->cr3_target_count >= 1 &&
					vmcs12->cr3_target_value0 == val) ||
				(vmcs12->cr3_target_count >= 2 &&
					vmcs12->cr3_target_value1 == val) ||
				(vmcs12->cr3_target_count >= 3 &&
					vmcs12->cr3_target_value2 == val) ||
				(vmcs12->cr3_target_count >= 4 &&
					vmcs12->cr3_target_value3 == val))
				return false;
			if (nested_cpu_has(vmcs12, CPU_BASED_CR3_LOAD_EXITING))
				return true;
			break;
		case 4:
			if (vmcs12->cr4_guest_host_mask &
			    (vmcs12->cr4_read_shadow ^ val))
				return true;
			break;
		case 8:
			if (nested_cpu_has(vmcs12, CPU_BASED_CR8_LOAD_EXITING))
				return true;
			break;
		}
		break;
	case 2: /* clts */
		if ((vmcs12->cr0_guest_host_mask & X86_CR0_TS) &&
		    (vmcs12->cr0_read_shadow & X86_CR0_TS))
			return true;
		break;
	case 1: /* mov from cr */
		switch (cr) {
		case 3:
			if (vmcs12->cpu_based_vm_exec_control &
			    CPU_BASED_CR3_STORE_EXITING)
				return true;
			break;
		case 8:
			if (vmcs12->cpu_based_vm_exec_control &
			    CPU_BASED_CR8_STORE_EXITING)
				return true;
			break;
		}
		break;
	case 3: /* lmsw */
		/*
		 * lmsw can change bits 1..3 of cr0, and only set bit 0 of
		 * cr0. Other attempted changes are ignored, with no exit.
		 */
		val = (exit_qualification >> LMSW_SOURCE_DATA_SHIFT) & 0x0f;
		if (vmcs12->cr0_guest_host_mask & 0xe &
		    (val ^ vmcs12->cr0_read_shadow))
			return true;
		if ((vmcs12->cr0_guest_host_mask & 0x1) &&
		    !(vmcs12->cr0_read_shadow & 0x1) &&
		    (val & 0x1))
			return true;
		break;
	}
	return false;
}

static bool nested_vmx_exit_handled_vmcs_access(struct kvm_vcpu *vcpu,
	struct vmcs12 *vmcs12, gpa_t bitmap)
{
	u32 vmx_instruction_info;
	unsigned long field;
	u8 b;

	if (!nested_cpu_has_shadow_vmcs(vmcs12))
		return true;

	/* Decode instruction info and find the field to access */
	vmx_instruction_info = vmcs_read32(VMX_INSTRUCTION_INFO);
	field = kvm_register_read(vcpu, (((vmx_instruction_info) >> 28) & 0xf));

	/* Out-of-range fields always cause a VM exit from L2 to L1 */
	if (field >> 15)
		return true;

	if (kvm_vcpu_read_guest(vcpu, bitmap + field/8, &b, 1))
		return true;

	return 1 & (b >> (field & 7));
}

/*
 * Return 1 if we should exit from L2 to L1 to handle an exit, or 0 if we
 * should handle it ourselves in L0 (and then continue L2). Only call this
 * when in is_guest_mode (L2).
 */
bool nested_vmx_exit_reflected(struct kvm_vcpu *vcpu, u32 exit_reason)
{
	u32 intr_info = vmcs_read32(VM_EXIT_INTR_INFO);
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmcs12 *vmcs12 = get_vmcs12(vcpu);

5547
	WARN_ON_ONCE(vmx->nested.nested_run_pending);
5548 5549

	if (unlikely(vmx->fail)) {
5550 5551 5552
		trace_kvm_nested_vmenter_failed(
			"hardware VM-instruction error: ",
			vmcs_read32(VM_INSTRUCTION_ERROR));
5553 5554 5555 5556 5557 5558 5559 5560 5561 5562 5563 5564 5565 5566 5567 5568 5569 5570 5571 5572 5573 5574 5575 5576 5577 5578 5579 5580 5581
		return true;
	}

	trace_kvm_nested_vmexit(kvm_rip_read(vcpu), exit_reason,
				vmcs_readl(EXIT_QUALIFICATION),
				vmx->idt_vectoring_info,
				intr_info,
				vmcs_read32(VM_EXIT_INTR_ERROR_CODE),
				KVM_ISA_VMX);

	switch (exit_reason) {
	case EXIT_REASON_EXCEPTION_NMI:
		if (is_nmi(intr_info))
			return false;
		else if (is_page_fault(intr_info))
			return !vmx->vcpu.arch.apf.host_apf_reason && enable_ept;
		else if (is_debug(intr_info) &&
			 vcpu->guest_debug &
			 (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP))
			return false;
		else if (is_breakpoint(intr_info) &&
			 vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP)
			return false;
		return vmcs12->exception_bitmap &
				(1u << (intr_info & INTR_INFO_VECTOR_MASK));
	case EXIT_REASON_EXTERNAL_INTERRUPT:
		return false;
	case EXIT_REASON_TRIPLE_FAULT:
		return true;
5582 5583
	case EXIT_REASON_INTERRUPT_WINDOW:
		return nested_cpu_has(vmcs12, CPU_BASED_INTR_WINDOW_EXITING);
5584
	case EXIT_REASON_NMI_WINDOW:
5585
		return nested_cpu_has(vmcs12, CPU_BASED_NMI_WINDOW_EXITING);
5586 5587 5588 5589 5590 5591 5592 5593 5594 5595 5596 5597 5598 5599 5600 5601 5602 5603 5604 5605 5606 5607 5608 5609 5610 5611 5612 5613 5614 5615 5616 5617 5618 5619 5620 5621 5622 5623 5624 5625 5626 5627 5628 5629 5630 5631 5632 5633 5634 5635
	case EXIT_REASON_TASK_SWITCH:
		return true;
	case EXIT_REASON_CPUID:
		return true;
	case EXIT_REASON_HLT:
		return nested_cpu_has(vmcs12, CPU_BASED_HLT_EXITING);
	case EXIT_REASON_INVD:
		return true;
	case EXIT_REASON_INVLPG:
		return nested_cpu_has(vmcs12, CPU_BASED_INVLPG_EXITING);
	case EXIT_REASON_RDPMC:
		return nested_cpu_has(vmcs12, CPU_BASED_RDPMC_EXITING);
	case EXIT_REASON_RDRAND:
		return nested_cpu_has2(vmcs12, SECONDARY_EXEC_RDRAND_EXITING);
	case EXIT_REASON_RDSEED:
		return nested_cpu_has2(vmcs12, SECONDARY_EXEC_RDSEED_EXITING);
	case EXIT_REASON_RDTSC: case EXIT_REASON_RDTSCP:
		return nested_cpu_has(vmcs12, CPU_BASED_RDTSC_EXITING);
	case EXIT_REASON_VMREAD:
		return nested_vmx_exit_handled_vmcs_access(vcpu, vmcs12,
			vmcs12->vmread_bitmap);
	case EXIT_REASON_VMWRITE:
		return nested_vmx_exit_handled_vmcs_access(vcpu, vmcs12,
			vmcs12->vmwrite_bitmap);
	case EXIT_REASON_VMCALL: case EXIT_REASON_VMCLEAR:
	case EXIT_REASON_VMLAUNCH: case EXIT_REASON_VMPTRLD:
	case EXIT_REASON_VMPTRST: case EXIT_REASON_VMRESUME:
	case EXIT_REASON_VMOFF: case EXIT_REASON_VMON:
	case EXIT_REASON_INVEPT: case EXIT_REASON_INVVPID:
		/*
		 * VMX instructions trap unconditionally. This allows L1 to
		 * emulate them for its L2 guest, i.e., allows 3-level nesting!
		 */
		return true;
	case EXIT_REASON_CR_ACCESS:
		return nested_vmx_exit_handled_cr(vcpu, vmcs12);
	case EXIT_REASON_DR_ACCESS:
		return nested_cpu_has(vmcs12, CPU_BASED_MOV_DR_EXITING);
	case EXIT_REASON_IO_INSTRUCTION:
		return nested_vmx_exit_handled_io(vcpu, vmcs12);
	case EXIT_REASON_GDTR_IDTR: case EXIT_REASON_LDTR_TR:
		return nested_cpu_has2(vmcs12, SECONDARY_EXEC_DESC);
	case EXIT_REASON_MSR_READ:
	case EXIT_REASON_MSR_WRITE:
		return nested_vmx_exit_handled_msr(vcpu, vmcs12, exit_reason);
	case EXIT_REASON_INVALID_STATE:
		return true;
	case EXIT_REASON_MWAIT_INSTRUCTION:
		return nested_cpu_has(vmcs12, CPU_BASED_MWAIT_EXITING);
	case EXIT_REASON_MONITOR_TRAP_FLAG:
5636
		return nested_cpu_has_mtf(vmcs12);
5637 5638 5639 5640 5641 5642 5643 5644 5645 5646 5647 5648 5649 5650 5651 5652 5653 5654 5655 5656 5657 5658 5659 5660 5661 5662 5663 5664 5665 5666 5667 5668 5669 5670 5671 5672 5673 5674 5675 5676 5677 5678 5679 5680 5681 5682 5683 5684 5685 5686 5687 5688 5689 5690 5691 5692 5693 5694 5695 5696 5697 5698
	case EXIT_REASON_MONITOR_INSTRUCTION:
		return nested_cpu_has(vmcs12, CPU_BASED_MONITOR_EXITING);
	case EXIT_REASON_PAUSE_INSTRUCTION:
		return nested_cpu_has(vmcs12, CPU_BASED_PAUSE_EXITING) ||
			nested_cpu_has2(vmcs12,
				SECONDARY_EXEC_PAUSE_LOOP_EXITING);
	case EXIT_REASON_MCE_DURING_VMENTRY:
		return false;
	case EXIT_REASON_TPR_BELOW_THRESHOLD:
		return nested_cpu_has(vmcs12, CPU_BASED_TPR_SHADOW);
	case EXIT_REASON_APIC_ACCESS:
	case EXIT_REASON_APIC_WRITE:
	case EXIT_REASON_EOI_INDUCED:
		/*
		 * The controls for "virtualize APIC accesses," "APIC-
		 * register virtualization," and "virtual-interrupt
		 * delivery" only come from vmcs12.
		 */
		return true;
	case EXIT_REASON_EPT_VIOLATION:
		/*
		 * L0 always deals with the EPT violation. If nested EPT is
		 * used, and the nested mmu code discovers that the address is
		 * missing in the guest EPT table (EPT12), the EPT violation
		 * will be injected with nested_ept_inject_page_fault()
		 */
		return false;
	case EXIT_REASON_EPT_MISCONFIG:
		/*
		 * L2 never uses directly L1's EPT, but rather L0's own EPT
		 * table (shadow on EPT) or a merged EPT table that L0 built
		 * (EPT on EPT). So any problems with the structure of the
		 * table is L0's fault.
		 */
		return false;
	case EXIT_REASON_INVPCID:
		return
			nested_cpu_has2(vmcs12, SECONDARY_EXEC_ENABLE_INVPCID) &&
			nested_cpu_has(vmcs12, CPU_BASED_INVLPG_EXITING);
	case EXIT_REASON_WBINVD:
		return nested_cpu_has2(vmcs12, SECONDARY_EXEC_WBINVD_EXITING);
	case EXIT_REASON_XSETBV:
		return true;
	case EXIT_REASON_XSAVES: case EXIT_REASON_XRSTORS:
		/*
		 * This should never happen, since it is not possible to
		 * set XSS to a non-zero value---neither in L1 nor in L2.
		 * If if it were, XSS would have to be checked against
		 * the XSS exit bitmap in vmcs12.
		 */
		return nested_cpu_has2(vmcs12, SECONDARY_EXEC_XSAVES);
	case EXIT_REASON_PREEMPTION_TIMER:
		return false;
	case EXIT_REASON_PML_FULL:
		/* We emulate PML support to L1. */
		return false;
	case EXIT_REASON_VMFUNC:
		/* VM functions are emulated through L2->L0 vmexits. */
		return false;
	case EXIT_REASON_ENCLS:
		/* SGX is never exposed to L1 */
		return false;
5699 5700 5701 5702
	case EXIT_REASON_UMWAIT:
	case EXIT_REASON_TPAUSE:
		return nested_cpu_has2(vmcs12,
			SECONDARY_EXEC_ENABLE_USR_WAIT_PAUSE);
5703 5704 5705 5706 5707 5708 5709 5710 5711 5712 5713 5714 5715 5716
	default:
		return true;
	}
}


static int vmx_get_nested_state(struct kvm_vcpu *vcpu,
				struct kvm_nested_state __user *user_kvm_nested_state,
				u32 user_data_size)
{
	struct vcpu_vmx *vmx;
	struct vmcs12 *vmcs12;
	struct kvm_nested_state kvm_state = {
		.flags = 0,
5717
		.format = KVM_STATE_NESTED_FORMAT_VMX,
5718
		.size = sizeof(kvm_state),
5719 5720
		.hdr.vmx.vmxon_pa = -1ull,
		.hdr.vmx.vmcs12_pa = -1ull,
5721
	};
5722 5723
	struct kvm_vmx_nested_state_data __user *user_vmx_nested_state =
		&user_kvm_nested_state->data.vmx[0];
5724 5725

	if (!vcpu)
5726
		return kvm_state.size + sizeof(*user_vmx_nested_state);
5727 5728 5729 5730 5731 5732

	vmx = to_vmx(vcpu);
	vmcs12 = get_vmcs12(vcpu);

	if (nested_vmx_allowed(vcpu) &&
	    (vmx->nested.vmxon || vmx->nested.smm.vmxon)) {
5733 5734
		kvm_state.hdr.vmx.vmxon_pa = vmx->nested.vmxon_ptr;
		kvm_state.hdr.vmx.vmcs12_pa = vmx->nested.current_vmptr;
5735 5736

		if (vmx_has_valid_vmcs12(vcpu)) {
5737
			kvm_state.size += sizeof(user_vmx_nested_state->vmcs12);
5738

5739 5740 5741
			if (vmx->nested.hv_evmcs)
				kvm_state.flags |= KVM_STATE_NESTED_EVMCS;

5742 5743 5744
			if (is_guest_mode(vcpu) &&
			    nested_cpu_has_shadow_vmcs(vmcs12) &&
			    vmcs12->vmcs_link_pointer != -1ull)
5745
				kvm_state.size += sizeof(user_vmx_nested_state->shadow_vmcs12);
5746 5747 5748
		}

		if (vmx->nested.smm.vmxon)
5749
			kvm_state.hdr.vmx.smm.flags |= KVM_STATE_NESTED_SMM_VMXON;
5750 5751

		if (vmx->nested.smm.guest_mode)
5752
			kvm_state.hdr.vmx.smm.flags |= KVM_STATE_NESTED_SMM_GUEST_MODE;
5753 5754 5755 5756 5757 5758

		if (is_guest_mode(vcpu)) {
			kvm_state.flags |= KVM_STATE_NESTED_GUEST_MODE;

			if (vmx->nested.nested_run_pending)
				kvm_state.flags |= KVM_STATE_NESTED_RUN_PENDING;
5759 5760 5761

			if (vmx->nested.mtf_pending)
				kvm_state.flags |= KVM_STATE_NESTED_MTF_PENDING;
5762 5763 5764 5765 5766 5767 5768 5769 5770 5771 5772 5773 5774 5775 5776 5777
		}
	}

	if (user_data_size < kvm_state.size)
		goto out;

	if (copy_to_user(user_kvm_nested_state, &kvm_state, sizeof(kvm_state)))
		return -EFAULT;

	if (!vmx_has_valid_vmcs12(vcpu))
		goto out;

	/*
	 * When running L2, the authoritative vmcs12 state is in the
	 * vmcs02. When running L1, the authoritative vmcs12 state is
	 * in the shadow or enlightened vmcs linked to vmcs01, unless
5778
	 * need_vmcs12_to_shadow_sync is set, in which case, the authoritative
5779 5780 5781
	 * vmcs12 state is in the vmcs12 already.
	 */
	if (is_guest_mode(vcpu)) {
5782
		sync_vmcs02_to_vmcs12(vcpu, vmcs12);
5783
		sync_vmcs02_to_vmcs12_rare(vcpu, vmcs12);
5784
	} else if (!vmx->nested.need_vmcs12_to_shadow_sync) {
5785 5786 5787 5788 5789 5790
		if (vmx->nested.hv_evmcs)
			copy_enlightened_to_vmcs12(vmx);
		else if (enable_shadow_vmcs)
			copy_shadow_to_vmcs12(vmx);
	}

5791 5792 5793
	BUILD_BUG_ON(sizeof(user_vmx_nested_state->vmcs12) < VMCS12_SIZE);
	BUILD_BUG_ON(sizeof(user_vmx_nested_state->shadow_vmcs12) < VMCS12_SIZE);

5794 5795 5796 5797
	/*
	 * Copy over the full allocated size of vmcs12 rather than just the size
	 * of the struct.
	 */
5798
	if (copy_to_user(user_vmx_nested_state->vmcs12, vmcs12, VMCS12_SIZE))
5799 5800 5801 5802
		return -EFAULT;

	if (nested_cpu_has_shadow_vmcs(vmcs12) &&
	    vmcs12->vmcs_link_pointer != -1ull) {
5803
		if (copy_to_user(user_vmx_nested_state->shadow_vmcs12,
5804
				 get_shadow_vmcs12(vcpu), VMCS12_SIZE))
5805 5806 5807 5808 5809 5810 5811 5812 5813 5814 5815 5816 5817 5818 5819 5820 5821 5822 5823 5824 5825 5826 5827 5828 5829 5830
			return -EFAULT;
	}

out:
	return kvm_state.size;
}

/*
 * Forcibly leave nested mode in order to be able to reset the VCPU later on.
 */
void vmx_leave_nested(struct kvm_vcpu *vcpu)
{
	if (is_guest_mode(vcpu)) {
		to_vmx(vcpu)->nested.nested_run_pending = 0;
		nested_vmx_vmexit(vcpu, -1, 0, 0);
	}
	free_nested(vcpu);
}

static int vmx_set_nested_state(struct kvm_vcpu *vcpu,
				struct kvm_nested_state __user *user_kvm_nested_state,
				struct kvm_nested_state *kvm_state)
{
	struct vcpu_vmx *vmx = to_vmx(vcpu);
	struct vmcs12 *vmcs12;
	u32 exit_qual;
5831 5832
	struct kvm_vmx_nested_state_data __user *user_vmx_nested_state =
		&user_kvm_nested_state->data.vmx[0];
5833 5834
	int ret;

5835
	if (kvm_state->format != KVM_STATE_NESTED_FORMAT_VMX)
5836 5837
		return -EINVAL;

5838 5839
	if (kvm_state->hdr.vmx.vmxon_pa == -1ull) {
		if (kvm_state->hdr.vmx.smm.flags)
5840 5841
			return -EINVAL;

5842
		if (kvm_state->hdr.vmx.vmcs12_pa != -1ull)
5843 5844
			return -EINVAL;

5845 5846 5847 5848 5849 5850 5851 5852 5853
		/*
		 * KVM_STATE_NESTED_EVMCS used to signal that KVM should
		 * enable eVMCS capability on vCPU. However, since then
		 * code was changed such that flag signals vmcs12 should
		 * be copied into eVMCS in guest memory.
		 *
		 * To preserve backwards compatability, allow user
		 * to set this flag even when there is no VMXON region.
		 */
5854 5855 5856 5857 5858
		if (kvm_state->flags & ~KVM_STATE_NESTED_EVMCS)
			return -EINVAL;
	} else {
		if (!nested_vmx_allowed(vcpu))
			return -EINVAL;
5859

5860 5861
		if (!page_address_valid(vcpu, kvm_state->hdr.vmx.vmxon_pa))
			return -EINVAL;
5862
	}
5863

5864
	if ((kvm_state->hdr.vmx.smm.flags & KVM_STATE_NESTED_SMM_GUEST_MODE) &&
5865 5866 5867
	    (kvm_state->flags & KVM_STATE_NESTED_GUEST_MODE))
		return -EINVAL;

5868
	if (kvm_state->hdr.vmx.smm.flags &
5869 5870 5871 5872 5873 5874 5875 5876
	    ~(KVM_STATE_NESTED_SMM_GUEST_MODE | KVM_STATE_NESTED_SMM_VMXON))
		return -EINVAL;

	/*
	 * SMM temporarily disables VMX, so we cannot be in guest mode,
	 * nor can VMLAUNCH/VMRESUME be pending.  Outside SMM, SMM flags
	 * must be zero.
	 */
5877 5878 5879 5880
	if (is_smm(vcpu) ?
		(kvm_state->flags &
		 (KVM_STATE_NESTED_GUEST_MODE | KVM_STATE_NESTED_RUN_PENDING))
		: kvm_state->hdr.vmx.smm.flags)
5881 5882
		return -EINVAL;

5883 5884
	if ((kvm_state->hdr.vmx.smm.flags & KVM_STATE_NESTED_SMM_GUEST_MODE) &&
	    !(kvm_state->hdr.vmx.smm.flags & KVM_STATE_NESTED_SMM_VMXON))
5885 5886
		return -EINVAL;

5887 5888
	if ((kvm_state->flags & KVM_STATE_NESTED_EVMCS) &&
		(!nested_vmx_allowed(vcpu) || !vmx->nested.enlightened_vmcs_enabled))
5889
			return -EINVAL;
5890

5891
	vmx_leave_nested(vcpu);
5892 5893 5894

	if (kvm_state->hdr.vmx.vmxon_pa == -1ull)
		return 0;
5895

5896
	vmx->nested.vmxon_ptr = kvm_state->hdr.vmx.vmxon_pa;
5897 5898 5899 5900 5901
	ret = enter_vmx_operation(vcpu);
	if (ret)
		return ret;

	/* Empty 'VMXON' state is permitted */
5902
	if (kvm_state->size < sizeof(*kvm_state) + sizeof(*vmcs12))
5903 5904
		return 0;

5905 5906 5907
	if (kvm_state->hdr.vmx.vmcs12_pa != -1ull) {
		if (kvm_state->hdr.vmx.vmcs12_pa == kvm_state->hdr.vmx.vmxon_pa ||
		    !page_address_valid(vcpu, kvm_state->hdr.vmx.vmcs12_pa))
5908 5909
			return -EINVAL;

5910
		set_current_vmptr(vmx, kvm_state->hdr.vmx.vmcs12_pa);
5911 5912
	} else if (kvm_state->flags & KVM_STATE_NESTED_EVMCS) {
		/*
5913 5914 5915 5916
		 * nested_vmx_handle_enlightened_vmptrld() cannot be called
		 * directly from here as HV_X64_MSR_VP_ASSIST_PAGE may not be
		 * restored yet. EVMCS will be mapped from
		 * nested_get_vmcs12_pages().
5917
		 */
5918
		kvm_make_request(KVM_REQ_GET_VMCS12_PAGES, vcpu);
5919 5920 5921 5922
	} else {
		return -EINVAL;
	}

5923
	if (kvm_state->hdr.vmx.smm.flags & KVM_STATE_NESTED_SMM_VMXON) {
5924 5925 5926
		vmx->nested.smm.vmxon = true;
		vmx->nested.vmxon = false;

5927
		if (kvm_state->hdr.vmx.smm.flags & KVM_STATE_NESTED_SMM_GUEST_MODE)
5928 5929 5930 5931
			vmx->nested.smm.guest_mode = true;
	}

	vmcs12 = get_vmcs12(vcpu);
5932
	if (copy_from_user(vmcs12, user_vmx_nested_state->vmcs12, sizeof(*vmcs12)))
5933 5934 5935 5936 5937 5938 5939 5940
		return -EFAULT;

	if (vmcs12->hdr.revision_id != VMCS12_REVISION)
		return -EINVAL;

	if (!(kvm_state->flags & KVM_STATE_NESTED_GUEST_MODE))
		return 0;

5941 5942 5943
	vmx->nested.nested_run_pending =
		!!(kvm_state->flags & KVM_STATE_NESTED_RUN_PENDING);

5944 5945 5946
	vmx->nested.mtf_pending =
		!!(kvm_state->flags & KVM_STATE_NESTED_MTF_PENDING);

5947
	ret = -EINVAL;
5948 5949 5950 5951
	if (nested_cpu_has_shadow_vmcs(vmcs12) &&
	    vmcs12->vmcs_link_pointer != -1ull) {
		struct vmcs12 *shadow_vmcs12 = get_shadow_vmcs12(vcpu);

5952 5953 5954
		if (kvm_state->size <
		    sizeof(*kvm_state) +
		    sizeof(user_vmx_nested_state->vmcs12) + sizeof(*shadow_vmcs12))
5955
			goto error_guest_mode;
5956 5957

		if (copy_from_user(shadow_vmcs12,
5958 5959
				   user_vmx_nested_state->shadow_vmcs12,
				   sizeof(*shadow_vmcs12))) {
5960 5961 5962
			ret = -EFAULT;
			goto error_guest_mode;
		}
5963 5964 5965

		if (shadow_vmcs12->hdr.revision_id != VMCS12_REVISION ||
		    !shadow_vmcs12->hdr.shadow_vmcs)
5966
			goto error_guest_mode;
5967 5968
	}

5969 5970 5971
	if (nested_vmx_check_controls(vcpu, vmcs12) ||
	    nested_vmx_check_host_state(vcpu, vmcs12) ||
	    nested_vmx_check_guest_state(vcpu, vmcs12, &exit_qual))
5972
		goto error_guest_mode;
5973 5974 5975

	vmx->nested.dirty_vmcs12 = true;
	ret = nested_vmx_enter_non_root_mode(vcpu, false);
5976 5977
	if (ret)
		goto error_guest_mode;
5978 5979

	return 0;
5980 5981 5982 5983

error_guest_mode:
	vmx->nested.nested_run_pending = 0;
	return ret;
5984 5985
}

5986
void nested_vmx_set_vmcs_shadowing_bitmap(void)
5987 5988 5989
{
	if (enable_shadow_vmcs) {
		vmcs_write64(VMREAD_BITMAP, __pa(vmx_vmread_bitmap));
5990
		vmcs_write64(VMWRITE_BITMAP, __pa(vmx_vmwrite_bitmap));
5991 5992 5993 5994 5995 5996 5997 5998 5999 6000 6001 6002 6003
	}
}

/*
 * nested_vmx_setup_ctls_msrs() sets up variables containing the values to be
 * returned for the various VMX controls MSRs when nested VMX is enabled.
 * The same values should also be used to verify that vmcs12 control fields are
 * valid during nested entry from L1 to L2.
 * Each of these control msrs has a low and high 32-bit half: A low bit is on
 * if the corresponding bit in the (32-bit) control field *must* be on, and a
 * bit in the high half is on if the corresponding bit in the control field
 * may be on. See also vmx_control_verify().
 */
6004
void nested_vmx_setup_ctls_msrs(struct nested_vmx_msrs *msrs, u32 ept_caps)
6005 6006 6007 6008 6009 6010 6011 6012 6013 6014 6015 6016 6017 6018 6019 6020 6021 6022 6023 6024 6025 6026 6027 6028 6029 6030
{
	/*
	 * Note that as a general rule, the high half of the MSRs (bits in
	 * the control fields which may be 1) should be initialized by the
	 * intersection of the underlying hardware's MSR (i.e., features which
	 * can be supported) and the list of features we want to expose -
	 * because they are known to be properly supported in our code.
	 * Also, usually, the low half of the MSRs (bits which must be 1) can
	 * be set to 0, meaning that L1 may turn off any of these bits. The
	 * reason is that if one of these bits is necessary, it will appear
	 * in vmcs01 and prepare_vmcs02, when it bitwise-or's the control
	 * fields of vmcs01 and vmcs02, will turn these bits off - and
	 * nested_vmx_exit_reflected() will not pass related exits to L1.
	 * These rules have exceptions below.
	 */

	/* pin-based controls */
	rdmsr(MSR_IA32_VMX_PINBASED_CTLS,
		msrs->pinbased_ctls_low,
		msrs->pinbased_ctls_high);
	msrs->pinbased_ctls_low |=
		PIN_BASED_ALWAYSON_WITHOUT_TRUE_MSR;
	msrs->pinbased_ctls_high &=
		PIN_BASED_EXT_INTR_MASK |
		PIN_BASED_NMI_EXITING |
		PIN_BASED_VIRTUAL_NMIS |
6031
		(enable_apicv ? PIN_BASED_POSTED_INTR : 0);
6032 6033 6034 6035 6036 6037 6038 6039 6040 6041 6042 6043 6044 6045 6046 6047 6048 6049 6050 6051 6052 6053 6054 6055 6056 6057 6058 6059 6060 6061 6062 6063 6064 6065 6066 6067 6068 6069 6070 6071 6072 6073 6074 6075 6076 6077 6078 6079
	msrs->pinbased_ctls_high |=
		PIN_BASED_ALWAYSON_WITHOUT_TRUE_MSR |
		PIN_BASED_VMX_PREEMPTION_TIMER;

	/* exit controls */
	rdmsr(MSR_IA32_VMX_EXIT_CTLS,
		msrs->exit_ctls_low,
		msrs->exit_ctls_high);
	msrs->exit_ctls_low =
		VM_EXIT_ALWAYSON_WITHOUT_TRUE_MSR;

	msrs->exit_ctls_high &=
#ifdef CONFIG_X86_64
		VM_EXIT_HOST_ADDR_SPACE_SIZE |
#endif
		VM_EXIT_LOAD_IA32_PAT | VM_EXIT_SAVE_IA32_PAT;
	msrs->exit_ctls_high |=
		VM_EXIT_ALWAYSON_WITHOUT_TRUE_MSR |
		VM_EXIT_LOAD_IA32_EFER | VM_EXIT_SAVE_IA32_EFER |
		VM_EXIT_SAVE_VMX_PREEMPTION_TIMER | VM_EXIT_ACK_INTR_ON_EXIT;

	/* We support free control of debug control saving. */
	msrs->exit_ctls_low &= ~VM_EXIT_SAVE_DEBUG_CONTROLS;

	/* entry controls */
	rdmsr(MSR_IA32_VMX_ENTRY_CTLS,
		msrs->entry_ctls_low,
		msrs->entry_ctls_high);
	msrs->entry_ctls_low =
		VM_ENTRY_ALWAYSON_WITHOUT_TRUE_MSR;
	msrs->entry_ctls_high &=
#ifdef CONFIG_X86_64
		VM_ENTRY_IA32E_MODE |
#endif
		VM_ENTRY_LOAD_IA32_PAT;
	msrs->entry_ctls_high |=
		(VM_ENTRY_ALWAYSON_WITHOUT_TRUE_MSR | VM_ENTRY_LOAD_IA32_EFER);

	/* We support free control of debug control loading. */
	msrs->entry_ctls_low &= ~VM_ENTRY_LOAD_DEBUG_CONTROLS;

	/* cpu-based controls */
	rdmsr(MSR_IA32_VMX_PROCBASED_CTLS,
		msrs->procbased_ctls_low,
		msrs->procbased_ctls_high);
	msrs->procbased_ctls_low =
		CPU_BASED_ALWAYSON_WITHOUT_TRUE_MSR;
	msrs->procbased_ctls_high &=
6080
		CPU_BASED_INTR_WINDOW_EXITING |
6081
		CPU_BASED_NMI_WINDOW_EXITING | CPU_BASED_USE_TSC_OFFSETTING |
6082 6083 6084 6085 6086 6087 6088 6089 6090 6091 6092 6093 6094 6095 6096 6097 6098 6099 6100 6101 6102 6103 6104 6105 6106 6107 6108 6109 6110
		CPU_BASED_HLT_EXITING | CPU_BASED_INVLPG_EXITING |
		CPU_BASED_MWAIT_EXITING | CPU_BASED_CR3_LOAD_EXITING |
		CPU_BASED_CR3_STORE_EXITING |
#ifdef CONFIG_X86_64
		CPU_BASED_CR8_LOAD_EXITING | CPU_BASED_CR8_STORE_EXITING |
#endif
		CPU_BASED_MOV_DR_EXITING | CPU_BASED_UNCOND_IO_EXITING |
		CPU_BASED_USE_IO_BITMAPS | CPU_BASED_MONITOR_TRAP_FLAG |
		CPU_BASED_MONITOR_EXITING | CPU_BASED_RDPMC_EXITING |
		CPU_BASED_RDTSC_EXITING | CPU_BASED_PAUSE_EXITING |
		CPU_BASED_TPR_SHADOW | CPU_BASED_ACTIVATE_SECONDARY_CONTROLS;
	/*
	 * We can allow some features even when not supported by the
	 * hardware. For example, L1 can specify an MSR bitmap - and we
	 * can use it to avoid exits to L1 - even when L0 runs L2
	 * without MSR bitmaps.
	 */
	msrs->procbased_ctls_high |=
		CPU_BASED_ALWAYSON_WITHOUT_TRUE_MSR |
		CPU_BASED_USE_MSR_BITMAPS;

	/* We support free control of CR3 access interception. */
	msrs->procbased_ctls_low &=
		~(CPU_BASED_CR3_LOAD_EXITING | CPU_BASED_CR3_STORE_EXITING);

	/*
	 * secondary cpu-based controls.  Do not include those that
	 * depend on CPUID bits, they are added later by vmx_cpuid_update.
	 */
6111 6112 6113 6114 6115
	if (msrs->procbased_ctls_high & CPU_BASED_ACTIVATE_SECONDARY_CONTROLS)
		rdmsr(MSR_IA32_VMX_PROCBASED_CTLS2,
		      msrs->secondary_ctls_low,
		      msrs->secondary_ctls_high);

6116 6117 6118
	msrs->secondary_ctls_low = 0;
	msrs->secondary_ctls_high &=
		SECONDARY_EXEC_DESC |
6119
		SECONDARY_EXEC_RDTSCP |
6120
		SECONDARY_EXEC_VIRTUALIZE_X2APIC_MODE |
6121
		SECONDARY_EXEC_WBINVD_EXITING |
6122 6123
		SECONDARY_EXEC_APIC_REGISTER_VIRT |
		SECONDARY_EXEC_VIRTUAL_INTR_DELIVERY |
6124 6125 6126 6127
		SECONDARY_EXEC_RDRAND_EXITING |
		SECONDARY_EXEC_ENABLE_INVPCID |
		SECONDARY_EXEC_RDSEED_EXITING |
		SECONDARY_EXEC_XSAVES;
6128 6129 6130 6131 6132 6133 6134 6135 6136 6137 6138 6139

	/*
	 * We can emulate "VMCS shadowing," even if the hardware
	 * doesn't support it.
	 */
	msrs->secondary_ctls_high |=
		SECONDARY_EXEC_SHADOW_VMCS;

	if (enable_ept) {
		/* nested EPT: emulate EPT also to L1 */
		msrs->secondary_ctls_high |=
			SECONDARY_EXEC_ENABLE_EPT;
6140 6141 6142 6143
		msrs->ept_caps =
			VMX_EPT_PAGE_WALK_4_BIT |
			VMX_EPT_PAGE_WALK_5_BIT |
			VMX_EPTP_WB_BIT |
6144 6145 6146
			VMX_EPT_INVEPT_BIT |
			VMX_EPT_EXECUTE_ONLY_BIT;

6147 6148 6149 6150 6151 6152 6153 6154 6155 6156 6157 6158 6159 6160 6161 6162 6163 6164 6165 6166 6167 6168 6169 6170 6171 6172 6173 6174 6175 6176 6177 6178 6179 6180 6181 6182 6183 6184 6185 6186 6187 6188 6189 6190 6191 6192 6193 6194 6195 6196 6197 6198 6199 6200 6201 6202 6203 6204 6205 6206 6207 6208 6209 6210 6211 6212 6213 6214 6215 6216 6217 6218 6219 6220 6221 6222 6223 6224 6225 6226 6227 6228 6229 6230 6231 6232 6233 6234 6235 6236 6237 6238 6239 6240 6241 6242 6243 6244
		msrs->ept_caps &= ept_caps;
		msrs->ept_caps |= VMX_EPT_EXTENT_GLOBAL_BIT |
			VMX_EPT_EXTENT_CONTEXT_BIT | VMX_EPT_2MB_PAGE_BIT |
			VMX_EPT_1GB_PAGE_BIT;
		if (enable_ept_ad_bits) {
			msrs->secondary_ctls_high |=
				SECONDARY_EXEC_ENABLE_PML;
			msrs->ept_caps |= VMX_EPT_AD_BIT;
		}
	}

	if (cpu_has_vmx_vmfunc()) {
		msrs->secondary_ctls_high |=
			SECONDARY_EXEC_ENABLE_VMFUNC;
		/*
		 * Advertise EPTP switching unconditionally
		 * since we emulate it
		 */
		if (enable_ept)
			msrs->vmfunc_controls =
				VMX_VMFUNC_EPTP_SWITCHING;
	}

	/*
	 * Old versions of KVM use the single-context version without
	 * checking for support, so declare that it is supported even
	 * though it is treated as global context.  The alternative is
	 * not failing the single-context invvpid, and it is worse.
	 */
	if (enable_vpid) {
		msrs->secondary_ctls_high |=
			SECONDARY_EXEC_ENABLE_VPID;
		msrs->vpid_caps = VMX_VPID_INVVPID_BIT |
			VMX_VPID_EXTENT_SUPPORTED_MASK;
	}

	if (enable_unrestricted_guest)
		msrs->secondary_ctls_high |=
			SECONDARY_EXEC_UNRESTRICTED_GUEST;

	if (flexpriority_enabled)
		msrs->secondary_ctls_high |=
			SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES;

	/* miscellaneous data */
	rdmsr(MSR_IA32_VMX_MISC,
		msrs->misc_low,
		msrs->misc_high);
	msrs->misc_low &= VMX_MISC_SAVE_EFER_LMA;
	msrs->misc_low |=
		MSR_IA32_VMX_MISC_VMWRITE_SHADOW_RO_FIELDS |
		VMX_MISC_EMULATED_PREEMPTION_TIMER_RATE |
		VMX_MISC_ACTIVITY_HLT;
	msrs->misc_high = 0;

	/*
	 * This MSR reports some information about VMX support. We
	 * should return information about the VMX we emulate for the
	 * guest, and the VMCS structure we give it - not about the
	 * VMX support of the underlying hardware.
	 */
	msrs->basic =
		VMCS12_REVISION |
		VMX_BASIC_TRUE_CTLS |
		((u64)VMCS12_SIZE << VMX_BASIC_VMCS_SIZE_SHIFT) |
		(VMX_BASIC_MEM_TYPE_WB << VMX_BASIC_MEM_TYPE_SHIFT);

	if (cpu_has_vmx_basic_inout())
		msrs->basic |= VMX_BASIC_INOUT;

	/*
	 * These MSRs specify bits which the guest must keep fixed on
	 * while L1 is in VMXON mode (in L1's root mode, or running an L2).
	 * We picked the standard core2 setting.
	 */
#define VMXON_CR0_ALWAYSON     (X86_CR0_PE | X86_CR0_PG | X86_CR0_NE)
#define VMXON_CR4_ALWAYSON     X86_CR4_VMXE
	msrs->cr0_fixed0 = VMXON_CR0_ALWAYSON;
	msrs->cr4_fixed0 = VMXON_CR4_ALWAYSON;

	/* These MSRs specify bits which the guest must keep fixed off. */
	rdmsrl(MSR_IA32_VMX_CR0_FIXED1, msrs->cr0_fixed1);
	rdmsrl(MSR_IA32_VMX_CR4_FIXED1, msrs->cr4_fixed1);

	/* highest index: VMX_PREEMPTION_TIMER_VALUE */
	msrs->vmcs_enum = VMCS12_MAX_FIELD_INDEX << 1;
}

void nested_vmx_hardware_unsetup(void)
{
	int i;

	if (enable_shadow_vmcs) {
		for (i = 0; i < VMX_BITMAP_NR; i++)
			free_page((unsigned long)vmx_bitmap[i]);
	}
}

6245 6246
__init int nested_vmx_hardware_setup(struct kvm_x86_ops *ops,
				     int (*exit_handlers[])(struct kvm_vcpu *))
6247 6248 6249 6250 6251 6252 6253
{
	int i;

	if (!cpu_has_vmx_shadow_vmcs())
		enable_shadow_vmcs = 0;
	if (enable_shadow_vmcs) {
		for (i = 0; i < VMX_BITMAP_NR; i++) {
6254 6255 6256 6257
			/*
			 * The vmx_bitmap is not tied to a VM and so should
			 * not be charged to a memcg.
			 */
6258 6259 6260 6261 6262 6263 6264 6265 6266 6267 6268
			vmx_bitmap[i] = (unsigned long *)
				__get_free_page(GFP_KERNEL);
			if (!vmx_bitmap[i]) {
				nested_vmx_hardware_unsetup();
				return -ENOMEM;
			}
		}

		init_vmcs_shadow_fields();
	}

6269 6270 6271 6272 6273 6274 6275 6276 6277 6278 6279 6280
	exit_handlers[EXIT_REASON_VMCLEAR]	= handle_vmclear;
	exit_handlers[EXIT_REASON_VMLAUNCH]	= handle_vmlaunch;
	exit_handlers[EXIT_REASON_VMPTRLD]	= handle_vmptrld;
	exit_handlers[EXIT_REASON_VMPTRST]	= handle_vmptrst;
	exit_handlers[EXIT_REASON_VMREAD]	= handle_vmread;
	exit_handlers[EXIT_REASON_VMRESUME]	= handle_vmresume;
	exit_handlers[EXIT_REASON_VMWRITE]	= handle_vmwrite;
	exit_handlers[EXIT_REASON_VMOFF]	= handle_vmoff;
	exit_handlers[EXIT_REASON_VMON]		= handle_vmon;
	exit_handlers[EXIT_REASON_INVEPT]	= handle_invept;
	exit_handlers[EXIT_REASON_INVVPID]	= handle_invvpid;
	exit_handlers[EXIT_REASON_VMFUNC]	= handle_vmfunc;
6281

6282 6283 6284 6285 6286 6287
	ops->check_nested_events = vmx_check_nested_events;
	ops->get_nested_state = vmx_get_nested_state;
	ops->set_nested_state = vmx_set_nested_state;
	ops->get_vmcs12_pages = nested_get_vmcs12_pages;
	ops->nested_enable_evmcs = nested_enable_evmcs;
	ops->nested_get_evmcs_version = nested_get_evmcs_version;
6288 6289 6290

	return 0;
}