kvm.c 52.9 KB
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/*
 * QEMU KVM support
 *
 * Copyright (C) 2006-2008 Qumranet Technologies
 * Copyright IBM, Corp. 2008
 *
 * Authors:
 *  Anthony Liguori   <aliguori@us.ibm.com>
 *
 * This work is licensed under the terms of the GNU GPL, version 2 or later.
 * See the COPYING file in the top-level directory.
 *
 */

#include <sys/types.h>
#include <sys/ioctl.h>
#include <sys/mman.h>
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#include <sys/utsname.h>
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#include <linux/kvm.h>

#include "qemu-common.h"
#include "sysemu.h"
#include "kvm.h"
#include "cpu.h"
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#include "gdbstub.h"
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#include "host-utils.h"
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#include "hw/pc.h"
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#include "hw/apic.h"
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#include "ioport.h"
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#include "kvm_x86.h"
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#ifdef CONFIG_KVM_PARA
#include <linux/kvm_para.h>
#endif
//
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//#define DEBUG_KVM

#ifdef DEBUG_KVM
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#define DPRINTF(fmt, ...) \
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    do { fprintf(stderr, fmt, ## __VA_ARGS__); } while (0)
#else
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#define DPRINTF(fmt, ...) \
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    do { } while (0)
#endif

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#define MSR_KVM_WALL_CLOCK  0x11
#define MSR_KVM_SYSTEM_TIME 0x12

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#ifndef BUS_MCEERR_AR
#define BUS_MCEERR_AR 4
#endif
#ifndef BUS_MCEERR_AO
#define BUS_MCEERR_AO 5
#endif

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const KVMCapabilityInfo kvm_arch_required_capabilities[] = {
    KVM_CAP_INFO(SET_TSS_ADDR),
    KVM_CAP_INFO(EXT_CPUID),
    KVM_CAP_INFO(MP_STATE),
    KVM_CAP_LAST_INFO
};
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static bool has_msr_star;
static bool has_msr_hsave_pa;
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#if defined(CONFIG_KVM_PARA) && defined(KVM_CAP_ASYNC_PF)
static bool has_msr_async_pf_en;
#endif
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static int lm_capable_kernel;
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static struct kvm_cpuid2 *try_get_cpuid(KVMState *s, int max)
{
    struct kvm_cpuid2 *cpuid;
    int r, size;

    size = sizeof(*cpuid) + max * sizeof(*cpuid->entries);
    cpuid = (struct kvm_cpuid2 *)qemu_mallocz(size);
    cpuid->nent = max;
    r = kvm_ioctl(s, KVM_GET_SUPPORTED_CPUID, cpuid);
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    if (r == 0 && cpuid->nent >= max) {
        r = -E2BIG;
    }
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    if (r < 0) {
        if (r == -E2BIG) {
            qemu_free(cpuid);
            return NULL;
        } else {
            fprintf(stderr, "KVM_GET_SUPPORTED_CPUID failed: %s\n",
                    strerror(-r));
            exit(1);
        }
    }
    return cpuid;
}

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uint32_t kvm_arch_get_supported_cpuid(CPUState *env, uint32_t function,
                                      uint32_t index, int reg)
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{
    struct kvm_cpuid2 *cpuid;
    int i, max;
    uint32_t ret = 0;
    uint32_t cpuid_1_edx;

    max = 1;
    while ((cpuid = try_get_cpuid(env->kvm_state, max)) == NULL) {
        max *= 2;
    }

    for (i = 0; i < cpuid->nent; ++i) {
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        if (cpuid->entries[i].function == function &&
            cpuid->entries[i].index == index) {
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            switch (reg) {
            case R_EAX:
                ret = cpuid->entries[i].eax;
                break;
            case R_EBX:
                ret = cpuid->entries[i].ebx;
                break;
            case R_ECX:
                ret = cpuid->entries[i].ecx;
                break;
            case R_EDX:
                ret = cpuid->entries[i].edx;
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                switch (function) {
                case 1:
                    /* KVM before 2.6.30 misreports the following features */
                    ret |= CPUID_MTRR | CPUID_PAT | CPUID_MCE | CPUID_MCA;
                    break;
                case 0x80000001:
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                    /* On Intel, kvm returns cpuid according to the Intel spec,
                     * so add missing bits according to the AMD spec:
                     */
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                    cpuid_1_edx = kvm_arch_get_supported_cpuid(env, 1, 0, R_EDX);
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                    ret |= cpuid_1_edx & 0x183f7ff;
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                    break;
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                }
                break;
            }
        }
    }

    qemu_free(cpuid);

    return ret;
}

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#ifdef CONFIG_KVM_PARA
struct kvm_para_features {
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    int cap;
    int feature;
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} para_features[] = {
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    { KVM_CAP_CLOCKSOURCE, KVM_FEATURE_CLOCKSOURCE },
    { KVM_CAP_NOP_IO_DELAY, KVM_FEATURE_NOP_IO_DELAY },
    { KVM_CAP_PV_MMU, KVM_FEATURE_MMU_OP },
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#ifdef KVM_CAP_ASYNC_PF
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    { KVM_CAP_ASYNC_PF, KVM_FEATURE_ASYNC_PF },
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#endif
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    { -1, -1 }
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};

static int get_para_features(CPUState *env)
{
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    int i, features = 0;
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    for (i = 0; i < ARRAY_SIZE(para_features) - 1; i++) {
        if (kvm_check_extension(env->kvm_state, para_features[i].cap)) {
            features |= (1 << para_features[i].feature);
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        }
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    }
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#ifdef KVM_CAP_ASYNC_PF
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    has_msr_async_pf_en = features & (1 << KVM_FEATURE_ASYNC_PF);
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#endif
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    return features;
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}
#endif

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#ifdef KVM_CAP_MCE
static int kvm_get_mce_cap_supported(KVMState *s, uint64_t *mce_cap,
                                     int *max_banks)
{
    int r;

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    r = kvm_check_extension(s, KVM_CAP_MCE);
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    if (r > 0) {
        *max_banks = r;
        return kvm_ioctl(s, KVM_X86_GET_MCE_CAP_SUPPORTED, mce_cap);
    }
    return -ENOSYS;
}

static int kvm_setup_mce(CPUState *env, uint64_t *mcg_cap)
{
    return kvm_vcpu_ioctl(env, KVM_X86_SETUP_MCE, mcg_cap);
}

static int kvm_set_mce(CPUState *env, struct kvm_x86_mce *m)
{
    return kvm_vcpu_ioctl(env, KVM_X86_SET_MCE, m);
}

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static int kvm_get_msr(CPUState *env, struct kvm_msr_entry *msrs, int n)
{
    struct kvm_msrs *kmsrs = qemu_malloc(sizeof *kmsrs + n * sizeof *msrs);
    int r;

    kmsrs->nmsrs = n;
    memcpy(kmsrs->entries, msrs, n * sizeof *msrs);
    r = kvm_vcpu_ioctl(env, KVM_GET_MSRS, kmsrs);
    memcpy(msrs, kmsrs->entries, n * sizeof *msrs);
    free(kmsrs);
    return r;
}

/* FIXME: kill this and kvm_get_msr, use env->mcg_status instead */
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static int kvm_mce_in_progress(CPUState *env)
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{
    struct kvm_msr_entry msr_mcg_status = {
        .index = MSR_MCG_STATUS,
    };
    int r;

    r = kvm_get_msr(env, &msr_mcg_status, 1);
    if (r == -1 || r == 0) {
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        fprintf(stderr, "Failed to get MCE status\n");
        return 0;
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    }
    return !!(msr_mcg_status.data & MCG_STATUS_MCIP);
}

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struct kvm_x86_mce_data
{
    CPUState *env;
    struct kvm_x86_mce *mce;
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    int abort_on_error;
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};

static void kvm_do_inject_x86_mce(void *_data)
{
    struct kvm_x86_mce_data *data = _data;
    int r;

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    /* If there is an MCE exception being processed, ignore this SRAO MCE */
    if ((data->env->mcg_cap & MCG_SER_P) &&
        !(data->mce->status & MCI_STATUS_AR)) {
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        if (kvm_mce_in_progress(data->env)) {
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            return;
        }
    }
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    r = kvm_set_mce(data->env, data->mce);
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    if (r < 0) {
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        perror("kvm_set_mce FAILED");
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        if (data->abort_on_error) {
            abort();
        }
    }
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}
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static void kvm_inject_x86_mce_on(CPUState *env, struct kvm_x86_mce *mce,
                                  int flag)
{
    struct kvm_x86_mce_data data = {
        .env = env,
        .mce = mce,
        .abort_on_error = (flag & ABORT_ON_ERROR),
    };

    if (!env->mcg_cap) {
        fprintf(stderr, "MCE support is not enabled!\n");
        return;
    }

    run_on_cpu(env, kvm_do_inject_x86_mce, &data);
}

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static void kvm_mce_broadcast_rest(CPUState *env);
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#endif

void kvm_inject_x86_mce(CPUState *cenv, int bank, uint64_t status,
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                        uint64_t mcg_status, uint64_t addr, uint64_t misc,
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                        int flag)
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{
#ifdef KVM_CAP_MCE
    struct kvm_x86_mce mce = {
        .bank = bank,
        .status = status,
        .mcg_status = mcg_status,
        .addr = addr,
        .misc = misc,
    };

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    if (flag & MCE_BROADCAST) {
        kvm_mce_broadcast_rest(cenv);
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    }

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    kvm_inject_x86_mce_on(cenv, &mce, flag);
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#else
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    if (flag & ABORT_ON_ERROR) {
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        abort();
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    }
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#endif
}

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static void cpu_update_state(void *opaque, int running, int reason)
{
    CPUState *env = opaque;

    if (running) {
        env->tsc_valid = false;
    }
}

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int kvm_arch_init_vcpu(CPUState *env)
{
    struct {
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        struct kvm_cpuid2 cpuid;
        struct kvm_cpuid_entry2 entries[100];
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    } __attribute__((packed)) cpuid_data;
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    uint32_t limit, i, j, cpuid_i;
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    uint32_t unused;
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    struct kvm_cpuid_entry2 *c;
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#ifdef CONFIG_KVM_PARA
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    uint32_t signature[3];
#endif
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    env->cpuid_features &= kvm_arch_get_supported_cpuid(env, 1, 0, R_EDX);
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    i = env->cpuid_ext_features & CPUID_EXT_HYPERVISOR;
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    env->cpuid_ext_features &= kvm_arch_get_supported_cpuid(env, 1, 0, R_ECX);
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    env->cpuid_ext_features |= i;

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    env->cpuid_ext2_features &= kvm_arch_get_supported_cpuid(env, 0x80000001,
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                                                             0, R_EDX);
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    env->cpuid_ext3_features &= kvm_arch_get_supported_cpuid(env, 0x80000001,
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                                                             0, R_ECX);
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    env->cpuid_svm_features  &= kvm_arch_get_supported_cpuid(env, 0x8000000A,
                                                             0, R_EDX);

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    cpuid_i = 0;

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#ifdef CONFIG_KVM_PARA
    /* Paravirtualization CPUIDs */
    memcpy(signature, "KVMKVMKVM\0\0\0", 12);
    c = &cpuid_data.entries[cpuid_i++];
    memset(c, 0, sizeof(*c));
    c->function = KVM_CPUID_SIGNATURE;
    c->eax = 0;
    c->ebx = signature[0];
    c->ecx = signature[1];
    c->edx = signature[2];

    c = &cpuid_data.entries[cpuid_i++];
    memset(c, 0, sizeof(*c));
    c->function = KVM_CPUID_FEATURES;
    c->eax = env->cpuid_kvm_features & get_para_features(env);
#endif

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    cpu_x86_cpuid(env, 0, 0, &limit, &unused, &unused, &unused);
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    for (i = 0; i <= limit; i++) {
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        c = &cpuid_data.entries[cpuid_i++];
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        switch (i) {
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        case 2: {
            /* Keep reading function 2 till all the input is received */
            int times;

            c->function = i;
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            c->flags = KVM_CPUID_FLAG_STATEFUL_FUNC |
                       KVM_CPUID_FLAG_STATE_READ_NEXT;
            cpu_x86_cpuid(env, i, 0, &c->eax, &c->ebx, &c->ecx, &c->edx);
            times = c->eax & 0xff;
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            for (j = 1; j < times; ++j) {
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                c = &cpuid_data.entries[cpuid_i++];
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                c->function = i;
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                c->flags = KVM_CPUID_FLAG_STATEFUL_FUNC;
                cpu_x86_cpuid(env, i, 0, &c->eax, &c->ebx, &c->ecx, &c->edx);
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            }
            break;
        }
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        case 4:
        case 0xb:
        case 0xd:
            for (j = 0; ; j++) {
                c->function = i;
                c->flags = KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
                c->index = j;
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                cpu_x86_cpuid(env, i, j, &c->eax, &c->ebx, &c->ecx, &c->edx);
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                if (i == 4 && c->eax == 0) {
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                    break;
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                }
                if (i == 0xb && !(c->ecx & 0xff00)) {
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                    break;
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                }
                if (i == 0xd && c->eax == 0) {
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                    break;
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                }
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                c = &cpuid_data.entries[cpuid_i++];
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            }
            break;
        default:
            c->function = i;
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            c->flags = 0;
            cpu_x86_cpuid(env, i, 0, &c->eax, &c->ebx, &c->ecx, &c->edx);
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            break;
        }
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    }
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    cpu_x86_cpuid(env, 0x80000000, 0, &limit, &unused, &unused, &unused);
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    for (i = 0x80000000; i <= limit; i++) {
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        c = &cpuid_data.entries[cpuid_i++];
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        c->function = i;
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        c->flags = 0;
        cpu_x86_cpuid(env, i, 0, &c->eax, &c->ebx, &c->ecx, &c->edx);
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    }

    cpuid_data.cpuid.nent = cpuid_i;

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#ifdef KVM_CAP_MCE
    if (((env->cpuid_version >> 8)&0xF) >= 6
        && (env->cpuid_features&(CPUID_MCE|CPUID_MCA)) == (CPUID_MCE|CPUID_MCA)
        && kvm_check_extension(env->kvm_state, KVM_CAP_MCE) > 0) {
        uint64_t mcg_cap;
        int banks;

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        if (kvm_get_mce_cap_supported(env->kvm_state, &mcg_cap, &banks)) {
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            perror("kvm_get_mce_cap_supported FAILED");
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        } else {
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            if (banks > MCE_BANKS_DEF)
                banks = MCE_BANKS_DEF;
            mcg_cap &= MCE_CAP_DEF;
            mcg_cap |= banks;
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            if (kvm_setup_mce(env, &mcg_cap)) {
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                perror("kvm_setup_mce FAILED");
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            } else {
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                env->mcg_cap = mcg_cap;
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            }
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        }
    }
#endif

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    qemu_add_vm_change_state_handler(cpu_update_state, env);

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    return kvm_vcpu_ioctl(env, KVM_SET_CPUID2, &cpuid_data);
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}

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void kvm_arch_reset_vcpu(CPUState *env)
{
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    env->exception_injected = -1;
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    env->interrupt_injected = -1;
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    env->xcr0 = 1;
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    if (kvm_irqchip_in_kernel()) {
        env->mp_state = cpu_is_bsp(env) ? KVM_MP_STATE_RUNNABLE :
                                          KVM_MP_STATE_UNINITIALIZED;
    } else {
        env->mp_state = KVM_MP_STATE_RUNNABLE;
    }
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}

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static int kvm_get_supported_msrs(KVMState *s)
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{
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    static int kvm_supported_msrs;
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    int ret = 0;
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    /* first time */
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    if (kvm_supported_msrs == 0) {
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        struct kvm_msr_list msr_list, *kvm_msr_list;

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        kvm_supported_msrs = -1;
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        /* Obtain MSR list from KVM.  These are the MSRs that we must
         * save/restore */
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        msr_list.nmsrs = 0;
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        ret = kvm_ioctl(s, KVM_GET_MSR_INDEX_LIST, &msr_list);
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        if (ret < 0 && ret != -E2BIG) {
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            return ret;
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        }
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        /* Old kernel modules had a bug and could write beyond the provided
           memory. Allocate at least a safe amount of 1K. */
        kvm_msr_list = qemu_mallocz(MAX(1024, sizeof(msr_list) +
                                              msr_list.nmsrs *
                                              sizeof(msr_list.indices[0])));
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        kvm_msr_list->nmsrs = msr_list.nmsrs;
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        ret = kvm_ioctl(s, KVM_GET_MSR_INDEX_LIST, kvm_msr_list);
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        if (ret >= 0) {
            int i;

            for (i = 0; i < kvm_msr_list->nmsrs; i++) {
                if (kvm_msr_list->indices[i] == MSR_STAR) {
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                    has_msr_star = true;
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                    continue;
                }
                if (kvm_msr_list->indices[i] == MSR_VM_HSAVE_PA) {
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                    has_msr_hsave_pa = true;
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                    continue;
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                }
            }
        }

        free(kvm_msr_list);
    }

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    return ret;
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}

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int kvm_arch_init(KVMState *s)
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{
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    uint64_t identity_base = 0xfffbc000;
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    int ret;
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    struct utsname utsname;
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    ret = kvm_get_supported_msrs(s);
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    if (ret < 0) {
        return ret;
    }
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    uname(&utsname);
    lm_capable_kernel = strcmp(utsname.machine, "x86_64") == 0;

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    /*
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     * On older Intel CPUs, KVM uses vm86 mode to emulate 16-bit code directly.
     * In order to use vm86 mode, an EPT identity map and a TSS  are needed.
     * Since these must be part of guest physical memory, we need to allocate
     * them, both by setting their start addresses in the kernel and by
     * creating a corresponding e820 entry. We need 4 pages before the BIOS.
     *
     * Older KVM versions may not support setting the identity map base. In
     * that case we need to stick with the default, i.e. a 256K maximum BIOS
     * size.
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     */
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#ifdef KVM_CAP_SET_IDENTITY_MAP_ADDR
    if (kvm_check_extension(s, KVM_CAP_SET_IDENTITY_MAP_ADDR)) {
        /* Allows up to 16M BIOSes. */
        identity_base = 0xfeffc000;

        ret = kvm_vm_ioctl(s, KVM_SET_IDENTITY_MAP_ADDR, &identity_base);
        if (ret < 0) {
            return ret;
        }
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    }
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#endif
    /* Set TSS base one page after EPT identity map. */
    ret = kvm_vm_ioctl(s, KVM_SET_TSS_ADDR, identity_base + 0x1000);
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    if (ret < 0) {
        return ret;
    }

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    /* Tell fw_cfg to notify the BIOS to reserve the range. */
    ret = e820_add_entry(identity_base, 0x4000, E820_RESERVED);
555
    if (ret < 0) {
556
        fprintf(stderr, "e820_add_entry() table is full\n");
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        return ret;
    }

560
    return 0;
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}
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static void set_v8086_seg(struct kvm_segment *lhs, const SegmentCache *rhs)
{
    lhs->selector = rhs->selector;
    lhs->base = rhs->base;
    lhs->limit = rhs->limit;
    lhs->type = 3;
    lhs->present = 1;
    lhs->dpl = 3;
    lhs->db = 0;
    lhs->s = 1;
    lhs->l = 0;
    lhs->g = 0;
    lhs->avl = 0;
    lhs->unusable = 0;
}

static void set_seg(struct kvm_segment *lhs, const SegmentCache *rhs)
{
    unsigned flags = rhs->flags;
    lhs->selector = rhs->selector;
    lhs->base = rhs->base;
    lhs->limit = rhs->limit;
    lhs->type = (flags >> DESC_TYPE_SHIFT) & 15;
    lhs->present = (flags & DESC_P_MASK) != 0;
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    lhs->dpl = (flags >> DESC_DPL_SHIFT) & 3;
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    lhs->db = (flags >> DESC_B_SHIFT) & 1;
    lhs->s = (flags & DESC_S_MASK) != 0;
    lhs->l = (flags >> DESC_L_SHIFT) & 1;
    lhs->g = (flags & DESC_G_MASK) != 0;
    lhs->avl = (flags & DESC_AVL_MASK) != 0;
    lhs->unusable = 0;
}

static void get_seg(SegmentCache *lhs, const struct kvm_segment *rhs)
{
    lhs->selector = rhs->selector;
    lhs->base = rhs->base;
    lhs->limit = rhs->limit;
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    lhs->flags = (rhs->type << DESC_TYPE_SHIFT) |
                 (rhs->present * DESC_P_MASK) |
                 (rhs->dpl << DESC_DPL_SHIFT) |
                 (rhs->db << DESC_B_SHIFT) |
                 (rhs->s * DESC_S_MASK) |
                 (rhs->l << DESC_L_SHIFT) |
                 (rhs->g * DESC_G_MASK) |
                 (rhs->avl * DESC_AVL_MASK);
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}

static void kvm_getput_reg(__u64 *kvm_reg, target_ulong *qemu_reg, int set)
{
613
    if (set) {
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        *kvm_reg = *qemu_reg;
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    } else {
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        *qemu_reg = *kvm_reg;
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    }
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}

static int kvm_getput_regs(CPUState *env, int set)
{
    struct kvm_regs regs;
    int ret = 0;

    if (!set) {
        ret = kvm_vcpu_ioctl(env, KVM_GET_REGS, &regs);
627
        if (ret < 0) {
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            return ret;
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        }
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    }

    kvm_getput_reg(&regs.rax, &env->regs[R_EAX], set);
    kvm_getput_reg(&regs.rbx, &env->regs[R_EBX], set);
    kvm_getput_reg(&regs.rcx, &env->regs[R_ECX], set);
    kvm_getput_reg(&regs.rdx, &env->regs[R_EDX], set);
    kvm_getput_reg(&regs.rsi, &env->regs[R_ESI], set);
    kvm_getput_reg(&regs.rdi, &env->regs[R_EDI], set);
    kvm_getput_reg(&regs.rsp, &env->regs[R_ESP], set);
    kvm_getput_reg(&regs.rbp, &env->regs[R_EBP], set);
#ifdef TARGET_X86_64
    kvm_getput_reg(&regs.r8, &env->regs[8], set);
    kvm_getput_reg(&regs.r9, &env->regs[9], set);
    kvm_getput_reg(&regs.r10, &env->regs[10], set);
    kvm_getput_reg(&regs.r11, &env->regs[11], set);
    kvm_getput_reg(&regs.r12, &env->regs[12], set);
    kvm_getput_reg(&regs.r13, &env->regs[13], set);
    kvm_getput_reg(&regs.r14, &env->regs[14], set);
    kvm_getput_reg(&regs.r15, &env->regs[15], set);
#endif

    kvm_getput_reg(&regs.rflags, &env->eflags, set);
    kvm_getput_reg(&regs.rip, &env->eip, set);

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    if (set) {
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        ret = kvm_vcpu_ioctl(env, KVM_SET_REGS, &regs);
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    }
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    return ret;
}

static int kvm_put_fpu(CPUState *env)
{
    struct kvm_fpu fpu;
    int i;

    memset(&fpu, 0, sizeof fpu);
    fpu.fsw = env->fpus & ~(7 << 11);
    fpu.fsw |= (env->fpstt & 7) << 11;
    fpu.fcw = env->fpuc;
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    for (i = 0; i < 8; ++i) {
        fpu.ftwx |= (!env->fptags[i]) << i;
    }
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    memcpy(fpu.fpr, env->fpregs, sizeof env->fpregs);
    memcpy(fpu.xmm, env->xmm_regs, sizeof env->xmm_regs);
    fpu.mxcsr = env->mxcsr;

    return kvm_vcpu_ioctl(env, KVM_SET_FPU, &fpu);
}

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#ifdef KVM_CAP_XSAVE
#define XSAVE_CWD_RIP     2
#define XSAVE_CWD_RDP     4
#define XSAVE_MXCSR       6
#define XSAVE_ST_SPACE    8
#define XSAVE_XMM_SPACE   40
#define XSAVE_XSTATE_BV   128
#define XSAVE_YMMH_SPACE  144
#endif

static int kvm_put_xsave(CPUState *env)
{
#ifdef KVM_CAP_XSAVE
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    int i, r;
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    struct kvm_xsave* xsave;
    uint16_t cwd, swd, twd, fop;

697
    if (!kvm_has_xsave()) {
698
        return kvm_put_fpu(env);
699
    }
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    xsave = qemu_memalign(4096, sizeof(struct kvm_xsave));
    memset(xsave, 0, sizeof(struct kvm_xsave));
    cwd = swd = twd = fop = 0;
    swd = env->fpus & ~(7 << 11);
    swd |= (env->fpstt & 7) << 11;
    cwd = env->fpuc;
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    for (i = 0; i < 8; ++i) {
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        twd |= (!env->fptags[i]) << i;
709
    }
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    xsave->region[0] = (uint32_t)(swd << 16) + cwd;
    xsave->region[1] = (uint32_t)(fop << 16) + twd;
    memcpy(&xsave->region[XSAVE_ST_SPACE], env->fpregs,
            sizeof env->fpregs);
    memcpy(&xsave->region[XSAVE_XMM_SPACE], env->xmm_regs,
            sizeof env->xmm_regs);
    xsave->region[XSAVE_MXCSR] = env->mxcsr;
    *(uint64_t *)&xsave->region[XSAVE_XSTATE_BV] = env->xstate_bv;
    memcpy(&xsave->region[XSAVE_YMMH_SPACE], env->ymmh_regs,
            sizeof env->ymmh_regs);
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    r = kvm_vcpu_ioctl(env, KVM_SET_XSAVE, xsave);
    qemu_free(xsave);
    return r;
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#else
    return kvm_put_fpu(env);
#endif
}

static int kvm_put_xcrs(CPUState *env)
{
#ifdef KVM_CAP_XCRS
    struct kvm_xcrs xcrs;

733
    if (!kvm_has_xcrs()) {
734
        return 0;
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    }
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    xcrs.nr_xcrs = 1;
    xcrs.flags = 0;
    xcrs.xcrs[0].xcr = 0;
    xcrs.xcrs[0].value = env->xcr0;
    return kvm_vcpu_ioctl(env, KVM_SET_XCRS, &xcrs);
#else
    return 0;
#endif
}

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static int kvm_put_sregs(CPUState *env)
{
    struct kvm_sregs sregs;

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    memset(sregs.interrupt_bitmap, 0, sizeof(sregs.interrupt_bitmap));
    if (env->interrupt_injected >= 0) {
        sregs.interrupt_bitmap[env->interrupt_injected / 64] |=
                (uint64_t)1 << (env->interrupt_injected % 64);
    }
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    if ((env->eflags & VM_MASK)) {
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        set_v8086_seg(&sregs.cs, &env->segs[R_CS]);
        set_v8086_seg(&sregs.ds, &env->segs[R_DS]);
        set_v8086_seg(&sregs.es, &env->segs[R_ES]);
        set_v8086_seg(&sregs.fs, &env->segs[R_FS]);
        set_v8086_seg(&sregs.gs, &env->segs[R_GS]);
        set_v8086_seg(&sregs.ss, &env->segs[R_SS]);
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    } else {
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        set_seg(&sregs.cs, &env->segs[R_CS]);
        set_seg(&sregs.ds, &env->segs[R_DS]);
        set_seg(&sregs.es, &env->segs[R_ES]);
        set_seg(&sregs.fs, &env->segs[R_FS]);
        set_seg(&sregs.gs, &env->segs[R_GS]);
        set_seg(&sregs.ss, &env->segs[R_SS]);
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    }

    set_seg(&sregs.tr, &env->tr);
    set_seg(&sregs.ldt, &env->ldt);

    sregs.idt.limit = env->idt.limit;
    sregs.idt.base = env->idt.base;
    sregs.gdt.limit = env->gdt.limit;
    sregs.gdt.base = env->gdt.base;

    sregs.cr0 = env->cr[0];
    sregs.cr2 = env->cr[2];
    sregs.cr3 = env->cr[3];
    sregs.cr4 = env->cr[4];

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    sregs.cr8 = cpu_get_apic_tpr(env->apic_state);
    sregs.apic_base = cpu_get_apic_base(env->apic_state);
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    sregs.efer = env->efer;

    return kvm_vcpu_ioctl(env, KVM_SET_SREGS, &sregs);
}

static void kvm_msr_entry_set(struct kvm_msr_entry *entry,
                              uint32_t index, uint64_t value)
{
    entry->index = index;
    entry->data = value;
}

801
static int kvm_put_msrs(CPUState *env, int level)
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{
    struct {
        struct kvm_msrs info;
        struct kvm_msr_entry entries[100];
    } msr_data;
    struct kvm_msr_entry *msrs = msr_data.entries;
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    int n = 0;
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    kvm_msr_entry_set(&msrs[n++], MSR_IA32_SYSENTER_CS, env->sysenter_cs);
    kvm_msr_entry_set(&msrs[n++], MSR_IA32_SYSENTER_ESP, env->sysenter_esp);
    kvm_msr_entry_set(&msrs[n++], MSR_IA32_SYSENTER_EIP, env->sysenter_eip);
813
    if (has_msr_star) {
814 815
        kvm_msr_entry_set(&msrs[n++], MSR_STAR, env->star);
    }
816
    if (has_msr_hsave_pa) {
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        kvm_msr_entry_set(&msrs[n++], MSR_VM_HSAVE_PA, env->vm_hsave);
818
    }
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#ifdef TARGET_X86_64
820 821 822 823 824 825
    if (lm_capable_kernel) {
        kvm_msr_entry_set(&msrs[n++], MSR_CSTAR, env->cstar);
        kvm_msr_entry_set(&msrs[n++], MSR_KERNELGSBASE, env->kernelgsbase);
        kvm_msr_entry_set(&msrs[n++], MSR_FMASK, env->fmask);
        kvm_msr_entry_set(&msrs[n++], MSR_LSTAR, env->lstar);
    }
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#endif
827
    if (level == KVM_PUT_FULL_STATE) {
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        /*
         * KVM is yet unable to synchronize TSC values of multiple VCPUs on
         * writeback. Until this is fixed, we only write the offset to SMP
         * guests after migration, desynchronizing the VCPUs, but avoiding
         * huge jump-backs that would occur without any writeback at all.
         */
        if (smp_cpus == 1 || env->tsc != 0) {
            kvm_msr_entry_set(&msrs[n++], MSR_IA32_TSC, env->tsc);
        }
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    }
    /*
     * The following paravirtual MSRs have side effects on the guest or are
     * too heavy for normal writeback. Limit them to reset or full state
     * updates.
     */
    if (level >= KVM_PUT_RESET_STATE) {
844 845 846
        kvm_msr_entry_set(&msrs[n++], MSR_KVM_SYSTEM_TIME,
                          env->system_time_msr);
        kvm_msr_entry_set(&msrs[n++], MSR_KVM_WALL_CLOCK, env->wall_clock_msr);
847
#if defined(CONFIG_KVM_PARA) && defined(KVM_CAP_ASYNC_PF)
848 849 850 851
        if (has_msr_async_pf_en) {
            kvm_msr_entry_set(&msrs[n++], MSR_KVM_ASYNC_PF_EN,
                              env->async_pf_en_msr);
        }
852
#endif
853
    }
854 855
#ifdef KVM_CAP_MCE
    if (env->mcg_cap) {
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856
        int i;
857 858

        if (level == KVM_PUT_RESET_STATE) {
859
            kvm_msr_entry_set(&msrs[n++], MSR_MCG_STATUS, env->mcg_status);
860
        } else if (level == KVM_PUT_FULL_STATE) {
861 862
            kvm_msr_entry_set(&msrs[n++], MSR_MCG_STATUS, env->mcg_status);
            kvm_msr_entry_set(&msrs[n++], MSR_MCG_CTL, env->mcg_ctl);
863
            for (i = 0; i < (env->mcg_cap & 0xff) * 4; i++) {
864
                kvm_msr_entry_set(&msrs[n++], MSR_MC0_CTL + i, env->mce_banks[i]);
865
            }
866 867 868
        }
    }
#endif
869

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    msr_data.info.nmsrs = n;

    return kvm_vcpu_ioctl(env, KVM_SET_MSRS, &msr_data);

}


static int kvm_get_fpu(CPUState *env)
{
    struct kvm_fpu fpu;
    int i, ret;

    ret = kvm_vcpu_ioctl(env, KVM_GET_FPU, &fpu);
883
    if (ret < 0) {
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        return ret;
885
    }
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    env->fpstt = (fpu.fsw >> 11) & 7;
    env->fpus = fpu.fsw;
    env->fpuc = fpu.fcw;
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    for (i = 0; i < 8; ++i) {
        env->fptags[i] = !((fpu.ftwx >> i) & 1);
    }
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    memcpy(env->fpregs, fpu.fpr, sizeof env->fpregs);
    memcpy(env->xmm_regs, fpu.xmm, sizeof env->xmm_regs);
    env->mxcsr = fpu.mxcsr;

    return 0;
}

900 901 902 903 904 905 906
static int kvm_get_xsave(CPUState *env)
{
#ifdef KVM_CAP_XSAVE
    struct kvm_xsave* xsave;
    int ret, i;
    uint16_t cwd, swd, twd, fop;

907
    if (!kvm_has_xsave()) {
908
        return kvm_get_fpu(env);
909
    }
910 911 912

    xsave = qemu_memalign(4096, sizeof(struct kvm_xsave));
    ret = kvm_vcpu_ioctl(env, KVM_GET_XSAVE, xsave);
913 914
    if (ret < 0) {
        qemu_free(xsave);
915
        return ret;
916
    }
917 918 919 920 921 922 923 924

    cwd = (uint16_t)xsave->region[0];
    swd = (uint16_t)(xsave->region[0] >> 16);
    twd = (uint16_t)xsave->region[1];
    fop = (uint16_t)(xsave->region[1] >> 16);
    env->fpstt = (swd >> 11) & 7;
    env->fpus = swd;
    env->fpuc = cwd;
925
    for (i = 0; i < 8; ++i) {
926
        env->fptags[i] = !((twd >> i) & 1);
927
    }
928 929 930 931 932 933 934 935
    env->mxcsr = xsave->region[XSAVE_MXCSR];
    memcpy(env->fpregs, &xsave->region[XSAVE_ST_SPACE],
            sizeof env->fpregs);
    memcpy(env->xmm_regs, &xsave->region[XSAVE_XMM_SPACE],
            sizeof env->xmm_regs);
    env->xstate_bv = *(uint64_t *)&xsave->region[XSAVE_XSTATE_BV];
    memcpy(env->ymmh_regs, &xsave->region[XSAVE_YMMH_SPACE],
            sizeof env->ymmh_regs);
936
    qemu_free(xsave);
937 938 939 940 941 942 943 944 945 946 947 948
    return 0;
#else
    return kvm_get_fpu(env);
#endif
}

static int kvm_get_xcrs(CPUState *env)
{
#ifdef KVM_CAP_XCRS
    int i, ret;
    struct kvm_xcrs xcrs;

949
    if (!kvm_has_xcrs()) {
950
        return 0;
951
    }
952 953

    ret = kvm_vcpu_ioctl(env, KVM_GET_XCRS, &xcrs);
954
    if (ret < 0) {
955
        return ret;
956
    }
957

958
    for (i = 0; i < xcrs.nr_xcrs; i++) {
959 960 961 962 963
        /* Only support xcr0 now */
        if (xcrs.xcrs[0].xcr == 0) {
            env->xcr0 = xcrs.xcrs[0].value;
            break;
        }
964
    }
965 966 967 968 969 970
    return 0;
#else
    return 0;
#endif
}

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static int kvm_get_sregs(CPUState *env)
{
    struct kvm_sregs sregs;
    uint32_t hflags;
975
    int bit, i, ret;
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    ret = kvm_vcpu_ioctl(env, KVM_GET_SREGS, &sregs);
978
    if (ret < 0) {
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        return ret;
980
    }
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    /* There can only be one pending IRQ set in the bitmap at a time, so try
       to find it and save its number instead (-1 for none). */
    env->interrupt_injected = -1;
    for (i = 0; i < ARRAY_SIZE(sregs.interrupt_bitmap); i++) {
        if (sregs.interrupt_bitmap[i]) {
            bit = ctz64(sregs.interrupt_bitmap[i]);
            env->interrupt_injected = i * 64 + bit;
            break;
        }
    }
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    get_seg(&env->segs[R_CS], &sregs.cs);
    get_seg(&env->segs[R_DS], &sregs.ds);
    get_seg(&env->segs[R_ES], &sregs.es);
    get_seg(&env->segs[R_FS], &sregs.fs);
    get_seg(&env->segs[R_GS], &sregs.gs);
    get_seg(&env->segs[R_SS], &sregs.ss);

    get_seg(&env->tr, &sregs.tr);
    get_seg(&env->ldt, &sregs.ldt);

    env->idt.limit = sregs.idt.limit;
    env->idt.base = sregs.idt.base;
    env->gdt.limit = sregs.gdt.limit;
    env->gdt.base = sregs.gdt.base;

    env->cr[0] = sregs.cr0;
    env->cr[2] = sregs.cr2;
    env->cr[3] = sregs.cr3;
    env->cr[4] = sregs.cr4;

1013
    cpu_set_apic_base(env->apic_state, sregs.apic_base);
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    env->efer = sregs.efer;
1016
    //cpu_set_apic_tpr(env->apic_state, sregs.cr8);
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1018 1019 1020 1021 1022
#define HFLAG_COPY_MASK \
    ~( HF_CPL_MASK | HF_PE_MASK | HF_MP_MASK | HF_EM_MASK | \
       HF_TS_MASK | HF_TF_MASK | HF_VM_MASK | HF_IOPL_MASK | \
       HF_OSFXSR_MASK | HF_LMA_MASK | HF_CS32_MASK | \
       HF_SS32_MASK | HF_CS64_MASK | HF_ADDSEG_MASK)
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    hflags = (env->segs[R_CS].flags >> DESC_DPL_SHIFT) & HF_CPL_MASK;
    hflags |= (env->cr[0] & CR0_PE_MASK) << (HF_PE_SHIFT - CR0_PE_SHIFT);
    hflags |= (env->cr[0] << (HF_MP_SHIFT - CR0_MP_SHIFT)) &
1027
                (HF_MP_MASK | HF_EM_MASK | HF_TS_MASK);
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    hflags |= (env->eflags & (HF_TF_MASK | HF_VM_MASK | HF_IOPL_MASK));
    hflags |= (env->cr[4] & CR4_OSFXSR_MASK) <<
1030
                (HF_OSFXSR_SHIFT - CR4_OSFXSR_SHIFT);
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    if (env->efer & MSR_EFER_LMA) {
        hflags |= HF_LMA_MASK;
    }

    if ((hflags & HF_LMA_MASK) && (env->segs[R_CS].flags & DESC_L_MASK)) {
        hflags |= HF_CS32_MASK | HF_SS32_MASK | HF_CS64_MASK;
    } else {
        hflags |= (env->segs[R_CS].flags & DESC_B_MASK) >>
1040
                    (DESC_B_SHIFT - HF_CS32_SHIFT);
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1041
        hflags |= (env->segs[R_SS].flags & DESC_B_MASK) >>
1042 1043 1044 1045 1046 1047 1048 1049
                    (DESC_B_SHIFT - HF_SS32_SHIFT);
        if (!(env->cr[0] & CR0_PE_MASK) || (env->eflags & VM_MASK) ||
            !(hflags & HF_CS32_MASK)) {
            hflags |= HF_ADDSEG_MASK;
        } else {
            hflags |= ((env->segs[R_DS].base | env->segs[R_ES].base |
                        env->segs[R_SS].base) != 0) << HF_ADDSEG_SHIFT;
        }
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1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068
    }
    env->hflags = (env->hflags & HFLAG_COPY_MASK) | hflags;

    return 0;
}

static int kvm_get_msrs(CPUState *env)
{
    struct {
        struct kvm_msrs info;
        struct kvm_msr_entry entries[100];
    } msr_data;
    struct kvm_msr_entry *msrs = msr_data.entries;
    int ret, i, n;

    n = 0;
    msrs[n++].index = MSR_IA32_SYSENTER_CS;
    msrs[n++].index = MSR_IA32_SYSENTER_ESP;
    msrs[n++].index = MSR_IA32_SYSENTER_EIP;
1069
    if (has_msr_star) {
1070 1071
        msrs[n++].index = MSR_STAR;
    }
1072
    if (has_msr_hsave_pa) {
M
Marcelo Tosatti 已提交
1073
        msrs[n++].index = MSR_VM_HSAVE_PA;
1074
    }
1075 1076 1077 1078 1079 1080

    if (!env->tsc_valid) {
        msrs[n++].index = MSR_IA32_TSC;
        env->tsc_valid = !vm_running;
    }

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#ifdef TARGET_X86_64
1082 1083 1084 1085 1086 1087
    if (lm_capable_kernel) {
        msrs[n++].index = MSR_CSTAR;
        msrs[n++].index = MSR_KERNELGSBASE;
        msrs[n++].index = MSR_FMASK;
        msrs[n++].index = MSR_LSTAR;
    }
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1088
#endif
1089 1090
    msrs[n++].index = MSR_KVM_SYSTEM_TIME;
    msrs[n++].index = MSR_KVM_WALL_CLOCK;
1091
#if defined(CONFIG_KVM_PARA) && defined(KVM_CAP_ASYNC_PF)
1092 1093 1094
    if (has_msr_async_pf_en) {
        msrs[n++].index = MSR_KVM_ASYNC_PF_EN;
    }
1095
#endif
1096

1097 1098 1099 1100
#ifdef KVM_CAP_MCE
    if (env->mcg_cap) {
        msrs[n++].index = MSR_MCG_STATUS;
        msrs[n++].index = MSR_MCG_CTL;
1101
        for (i = 0; i < (env->mcg_cap & 0xff) * 4; i++) {
1102
            msrs[n++].index = MSR_MC0_CTL + i;
1103
        }
1104 1105 1106
    }
#endif

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1107 1108
    msr_data.info.nmsrs = n;
    ret = kvm_vcpu_ioctl(env, KVM_GET_MSRS, &msr_data);
1109
    if (ret < 0) {
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1110
        return ret;
1111
    }
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1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143

    for (i = 0; i < ret; i++) {
        switch (msrs[i].index) {
        case MSR_IA32_SYSENTER_CS:
            env->sysenter_cs = msrs[i].data;
            break;
        case MSR_IA32_SYSENTER_ESP:
            env->sysenter_esp = msrs[i].data;
            break;
        case MSR_IA32_SYSENTER_EIP:
            env->sysenter_eip = msrs[i].data;
            break;
        case MSR_STAR:
            env->star = msrs[i].data;
            break;
#ifdef TARGET_X86_64
        case MSR_CSTAR:
            env->cstar = msrs[i].data;
            break;
        case MSR_KERNELGSBASE:
            env->kernelgsbase = msrs[i].data;
            break;
        case MSR_FMASK:
            env->fmask = msrs[i].data;
            break;
        case MSR_LSTAR:
            env->lstar = msrs[i].data;
            break;
#endif
        case MSR_IA32_TSC:
            env->tsc = msrs[i].data;
            break;
1144 1145 1146
        case MSR_VM_HSAVE_PA:
            env->vm_hsave = msrs[i].data;
            break;
1147 1148 1149 1150 1151 1152
        case MSR_KVM_SYSTEM_TIME:
            env->system_time_msr = msrs[i].data;
            break;
        case MSR_KVM_WALL_CLOCK:
            env->wall_clock_msr = msrs[i].data;
            break;
1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167
#ifdef KVM_CAP_MCE
        case MSR_MCG_STATUS:
            env->mcg_status = msrs[i].data;
            break;
        case MSR_MCG_CTL:
            env->mcg_ctl = msrs[i].data;
            break;
#endif
        default:
#ifdef KVM_CAP_MCE
            if (msrs[i].index >= MSR_MC0_CTL &&
                msrs[i].index < MSR_MC0_CTL + (env->mcg_cap & 0xff) * 4) {
                env->mce_banks[msrs[i].index - MSR_MC0_CTL] = msrs[i].data;
            }
#endif
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Hidetoshi Seto 已提交
1168
            break;
1169
#if defined(CONFIG_KVM_PARA) && defined(KVM_CAP_ASYNC_PF)
1170 1171 1172 1173
        case MSR_KVM_ASYNC_PF_EN:
            env->async_pf_en_msr = msrs[i].data;
            break;
#endif
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1174 1175 1176 1177 1178 1179
        }
    }

    return 0;
}

1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196
static int kvm_put_mp_state(CPUState *env)
{
    struct kvm_mp_state mp_state = { .mp_state = env->mp_state };

    return kvm_vcpu_ioctl(env, KVM_SET_MP_STATE, &mp_state);
}

static int kvm_get_mp_state(CPUState *env)
{
    struct kvm_mp_state mp_state;
    int ret;

    ret = kvm_vcpu_ioctl(env, KVM_GET_MP_STATE, &mp_state);
    if (ret < 0) {
        return ret;
    }
    env->mp_state = mp_state.mp_state;
1197 1198 1199
    if (kvm_irqchip_in_kernel()) {
        env->halted = (mp_state.mp_state == KVM_MP_STATE_HALTED);
    }
1200 1201 1202
    return 0;
}

1203
static int kvm_put_vcpu_events(CPUState *env, int level)
1204 1205 1206 1207 1208 1209 1210 1211
{
#ifdef KVM_CAP_VCPU_EVENTS
    struct kvm_vcpu_events events;

    if (!kvm_has_vcpu_events()) {
        return 0;
    }

1212 1213
    events.exception.injected = (env->exception_injected >= 0);
    events.exception.nr = env->exception_injected;
1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226
    events.exception.has_error_code = env->has_error_code;
    events.exception.error_code = env->error_code;

    events.interrupt.injected = (env->interrupt_injected >= 0);
    events.interrupt.nr = env->interrupt_injected;
    events.interrupt.soft = env->soft_interrupt;

    events.nmi.injected = env->nmi_injected;
    events.nmi.pending = env->nmi_pending;
    events.nmi.masked = !!(env->hflags2 & HF2_NMI_MASK);

    events.sipi_vector = env->sipi_vector;

1227 1228 1229 1230 1231
    events.flags = 0;
    if (level >= KVM_PUT_RESET_STATE) {
        events.flags |=
            KVM_VCPUEVENT_VALID_NMI_PENDING | KVM_VCPUEVENT_VALID_SIPI_VECTOR;
    }
1232

1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252
    return kvm_vcpu_ioctl(env, KVM_SET_VCPU_EVENTS, &events);
#else
    return 0;
#endif
}

static int kvm_get_vcpu_events(CPUState *env)
{
#ifdef KVM_CAP_VCPU_EVENTS
    struct kvm_vcpu_events events;
    int ret;

    if (!kvm_has_vcpu_events()) {
        return 0;
    }

    ret = kvm_vcpu_ioctl(env, KVM_GET_VCPU_EVENTS, &events);
    if (ret < 0) {
       return ret;
    }
1253
    env->exception_injected =
1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275
       events.exception.injected ? events.exception.nr : -1;
    env->has_error_code = events.exception.has_error_code;
    env->error_code = events.exception.error_code;

    env->interrupt_injected =
        events.interrupt.injected ? events.interrupt.nr : -1;
    env->soft_interrupt = events.interrupt.soft;

    env->nmi_injected = events.nmi.injected;
    env->nmi_pending = events.nmi.pending;
    if (events.nmi.masked) {
        env->hflags2 |= HF2_NMI_MASK;
    } else {
        env->hflags2 &= ~HF2_NMI_MASK;
    }

    env->sipi_vector = events.sipi_vector;
#endif

    return 0;
}

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
static int kvm_guest_debug_workarounds(CPUState *env)
{
    int ret = 0;
#ifdef KVM_CAP_SET_GUEST_DEBUG
    unsigned long reinject_trap = 0;

    if (!kvm_has_vcpu_events()) {
        if (env->exception_injected == 1) {
            reinject_trap = KVM_GUESTDBG_INJECT_DB;
        } else if (env->exception_injected == 3) {
            reinject_trap = KVM_GUESTDBG_INJECT_BP;
        }
        env->exception_injected = -1;
    }

    /*
     * Kernels before KVM_CAP_X86_ROBUST_SINGLESTEP overwrote flags.TF
     * injected via SET_GUEST_DEBUG while updating GP regs. Work around this
     * by updating the debug state once again if single-stepping is on.
     * Another reason to call kvm_update_guest_debug here is a pending debug
     * trap raise by the guest. On kernels without SET_VCPU_EVENTS we have to
     * reinject them via SET_GUEST_DEBUG.
     */
    if (reinject_trap ||
        (!kvm_has_robust_singlestep() && env->singlestep_enabled)) {
        ret = kvm_update_guest_debug(env, reinject_trap);
    }
#endif /* KVM_CAP_SET_GUEST_DEBUG */
    return ret;
}

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
static int kvm_put_debugregs(CPUState *env)
{
#ifdef KVM_CAP_DEBUGREGS
    struct kvm_debugregs dbgregs;
    int i;

    if (!kvm_has_debugregs()) {
        return 0;
    }

    for (i = 0; i < 4; i++) {
        dbgregs.db[i] = env->dr[i];
    }
    dbgregs.dr6 = env->dr[6];
    dbgregs.dr7 = env->dr[7];
    dbgregs.flags = 0;

    return kvm_vcpu_ioctl(env, KVM_SET_DEBUGREGS, &dbgregs);
#else
    return 0;
#endif
}

static int kvm_get_debugregs(CPUState *env)
{
#ifdef KVM_CAP_DEBUGREGS
    struct kvm_debugregs dbgregs;
    int i, ret;

    if (!kvm_has_debugregs()) {
        return 0;
    }

    ret = kvm_vcpu_ioctl(env, KVM_GET_DEBUGREGS, &dbgregs);
    if (ret < 0) {
1342
        return ret;
1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353
    }
    for (i = 0; i < 4; i++) {
        env->dr[i] = dbgregs.db[i];
    }
    env->dr[4] = env->dr[6] = dbgregs.dr6;
    env->dr[5] = env->dr[7] = dbgregs.dr7;
#endif

    return 0;
}

1354
int kvm_arch_put_registers(CPUState *env, int level)
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1355 1356 1357
{
    int ret;

1358 1359
    assert(cpu_is_stopped(env) || qemu_cpu_self(env));

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1360
    ret = kvm_getput_regs(env, 1);
1361
    if (ret < 0) {
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1362
        return ret;
1363
    }
1364
    ret = kvm_put_xsave(env);
1365
    if (ret < 0) {
1366
        return ret;
1367
    }
1368
    ret = kvm_put_xcrs(env);
1369
    if (ret < 0) {
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1370
        return ret;
1371
    }
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1372
    ret = kvm_put_sregs(env);
1373
    if (ret < 0) {
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1374
        return ret;
1375
    }
1376
    ret = kvm_put_msrs(env, level);
1377
    if (ret < 0) {
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1378
        return ret;
1379
    }
1380 1381
    if (level >= KVM_PUT_RESET_STATE) {
        ret = kvm_put_mp_state(env);
1382
        if (ret < 0) {
1383
            return ret;
1384
        }
1385 1386
    }
    ret = kvm_put_vcpu_events(env, level);
1387
    if (ret < 0) {
1388
        return ret;
1389
    }
1390
    ret = kvm_put_debugregs(env);
1391
    if (ret < 0) {
1392
        return ret;
1393
    }
1394 1395
    /* must be last */
    ret = kvm_guest_debug_workarounds(env);
1396
    if (ret < 0) {
1397
        return ret;
1398
    }
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1399 1400 1401 1402 1403 1404 1405
    return 0;
}

int kvm_arch_get_registers(CPUState *env)
{
    int ret;

1406 1407
    assert(cpu_is_stopped(env) || qemu_cpu_self(env));

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1408
    ret = kvm_getput_regs(env, 0);
1409
    if (ret < 0) {
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1410
        return ret;
1411
    }
1412
    ret = kvm_get_xsave(env);
1413
    if (ret < 0) {
1414
        return ret;
1415
    }
1416
    ret = kvm_get_xcrs(env);
1417
    if (ret < 0) {
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1418
        return ret;
1419
    }
A
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1420
    ret = kvm_get_sregs(env);
1421
    if (ret < 0) {
A
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1422
        return ret;
1423
    }
A
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1424
    ret = kvm_get_msrs(env);
1425
    if (ret < 0) {
A
aliguori 已提交
1426
        return ret;
1427
    }
1428
    ret = kvm_get_mp_state(env);
1429
    if (ret < 0) {
1430
        return ret;
1431
    }
1432
    ret = kvm_get_vcpu_events(env);
1433
    if (ret < 0) {
1434
        return ret;
1435
    }
1436
    ret = kvm_get_debugregs(env);
1437
    if (ret < 0) {
1438
        return ret;
1439
    }
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1440 1441 1442
    return 0;
}

1443
void kvm_arch_pre_run(CPUState *env, struct kvm_run *run)
A
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1444
{
1445 1446
    int ret;

1447 1448 1449 1450
    /* Inject NMI */
    if (env->interrupt_request & CPU_INTERRUPT_NMI) {
        env->interrupt_request &= ~CPU_INTERRUPT_NMI;
        DPRINTF("injected NMI\n");
1451 1452 1453 1454 1455
        ret = kvm_vcpu_ioctl(env, KVM_NMI);
        if (ret < 0) {
            fprintf(stderr, "KVM: injection failed, NMI lost (%s)\n",
                    strerror(-ret));
        }
1456 1457
    }

1458 1459 1460 1461
    if (!kvm_irqchip_in_kernel()) {
        /* Force the VCPU out of its inner loop to process the INIT request */
        if (env->interrupt_request & CPU_INTERRUPT_INIT) {
            env->exit_request = 1;
A
aliguori 已提交
1462 1463
        }

1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476
        /* Try to inject an interrupt if the guest can accept it */
        if (run->ready_for_interrupt_injection &&
            (env->interrupt_request & CPU_INTERRUPT_HARD) &&
            (env->eflags & IF_MASK)) {
            int irq;

            env->interrupt_request &= ~CPU_INTERRUPT_HARD;
            irq = cpu_get_pic_interrupt(env);
            if (irq >= 0) {
                struct kvm_interrupt intr;

                intr.irq = irq;
                DPRINTF("injected interrupt %d\n", irq);
1477 1478 1479 1480 1481 1482
                ret = kvm_vcpu_ioctl(env, KVM_INTERRUPT, &intr);
                if (ret < 0) {
                    fprintf(stderr,
                            "KVM: injection failed, interrupt lost (%s)\n",
                            strerror(-ret));
                }
1483 1484
            }
        }
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1485

1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498
        /* If we have an interrupt but the guest is not ready to receive an
         * interrupt, request an interrupt window exit.  This will
         * cause a return to userspace as soon as the guest is ready to
         * receive interrupts. */
        if ((env->interrupt_request & CPU_INTERRUPT_HARD)) {
            run->request_interrupt_window = 1;
        } else {
            run->request_interrupt_window = 0;
        }

        DPRINTF("setting tpr\n");
        run->cr8 = cpu_get_apic_tpr(env->apic_state);
    }
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1499 1500
}

1501
void kvm_arch_post_run(CPUState *env, struct kvm_run *run)
A
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1502
{
1503
    if (run->if_flag) {
A
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1504
        env->eflags |= IF_MASK;
1505
    } else {
A
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1506
        env->eflags &= ~IF_MASK;
1507
    }
1508 1509
    cpu_set_apic_tpr(env->apic_state, run->cr8);
    cpu_set_apic_base(env->apic_state, run->apic_base);
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1510 1511
}

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Marcelo Tosatti 已提交
1512 1513
int kvm_arch_process_irqchip_events(CPUState *env)
{
1514 1515 1516 1517
    if (kvm_irqchip_in_kernel()) {
        return 0;
    }

1518 1519 1520
    if (env->interrupt_request & (CPU_INTERRUPT_HARD | CPU_INTERRUPT_NMI)) {
        env->halted = 0;
    }
M
Marcelo Tosatti 已提交
1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532
    if (env->interrupt_request & CPU_INTERRUPT_INIT) {
        kvm_cpu_synchronize_state(env);
        do_cpu_init(env);
    }
    if (env->interrupt_request & CPU_INTERRUPT_SIPI) {
        kvm_cpu_synchronize_state(env);
        do_cpu_sipi(env);
    }

    return env->halted;
}

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1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544
static int kvm_handle_halt(CPUState *env)
{
    if (!((env->interrupt_request & CPU_INTERRUPT_HARD) &&
          (env->eflags & IF_MASK)) &&
        !(env->interrupt_request & CPU_INTERRUPT_NMI)) {
        env->halted = 1;
        return 0;
    }

    return 1;
}

1545 1546 1547 1548 1549 1550 1551 1552 1553 1554
static bool host_supports_vmx(void)
{
    uint32_t ecx, unused;

    host_cpuid(1, 0, &unused, &unused, &ecx, &unused);
    return ecx & CPUID_EXT_VMX;
}

#define VMX_INVALID_GUEST_STATE 0x80000021

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1555 1556
int kvm_arch_handle_exit(CPUState *env, struct kvm_run *run)
{
1557
    uint64_t code;
A
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1558 1559 1560 1561
    int ret = 0;

    switch (run->exit_reason) {
    case KVM_EXIT_HLT:
1562
        DPRINTF("handle_hlt\n");
A
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1563 1564
        ret = kvm_handle_halt(env);
        break;
J
Jan Kiszka 已提交
1565 1566 1567
    case KVM_EXIT_SET_TPR:
        ret = 1;
        break;
1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589
    case KVM_EXIT_FAIL_ENTRY:
        code = run->fail_entry.hardware_entry_failure_reason;
        fprintf(stderr, "KVM: entry failed, hardware error 0x%" PRIx64 "\n",
                code);
        if (host_supports_vmx() && code == VMX_INVALID_GUEST_STATE) {
            fprintf(stderr,
                    "\nIf you're runnning a guest on an Intel machine without "
                        "unrestricted mode\n"
                    "support, the failure can be most likely due to the guest "
                        "entering an invalid\n"
                    "state for Intel VT. For example, the guest maybe running "
                        "in big real mode\n"
                    "which is not supported on less recent Intel processors."
                        "\n\n");
        }
        ret = -1;
        break;
    case KVM_EXIT_EXCEPTION:
        fprintf(stderr, "KVM: exception %d exit (error code 0x%x)\n",
                run->ex.exception, run->ex.error_code);
        ret = -1;
        break;
J
Jan Kiszka 已提交
1590 1591 1592 1593
    default:
        fprintf(stderr, "KVM: unknown exit reason %d\n", run->exit_reason);
        ret = -1;
        break;
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1594 1595 1596 1597
    }

    return ret;
}
1598 1599 1600 1601

#ifdef KVM_CAP_SET_GUEST_DEBUG
int kvm_arch_insert_sw_breakpoint(CPUState *env, struct kvm_sw_breakpoint *bp)
{
1602
    static const uint8_t int3 = 0xcc;
1603

1604
    if (cpu_memory_rw_debug(env, bp->pc, (uint8_t *)&bp->saved_insn, 1, 0) ||
1605
        cpu_memory_rw_debug(env, bp->pc, (uint8_t *)&int3, 1, 1)) {
1606
        return -EINVAL;
1607
    }
1608 1609 1610 1611 1612 1613 1614 1615
    return 0;
}

int kvm_arch_remove_sw_breakpoint(CPUState *env, struct kvm_sw_breakpoint *bp)
{
    uint8_t int3;

    if (cpu_memory_rw_debug(env, bp->pc, &int3, 1, 0) || int3 != 0xcc ||
1616
        cpu_memory_rw_debug(env, bp->pc, (uint8_t *)&bp->saved_insn, 1, 1)) {
1617
        return -EINVAL;
1618
    }
1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633
    return 0;
}

static struct {
    target_ulong addr;
    int len;
    int type;
} hw_breakpoint[4];

static int nb_hw_breakpoint;

static int find_hw_breakpoint(target_ulong addr, int len, int type)
{
    int n;

1634
    for (n = 0; n < nb_hw_breakpoint; n++) {
1635
        if (hw_breakpoint[n].addr == addr && hw_breakpoint[n].type == type &&
1636
            (hw_breakpoint[n].len == len || len == -1)) {
1637
            return n;
1638 1639
        }
    }
1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657
    return -1;
}

int kvm_arch_insert_hw_breakpoint(target_ulong addr,
                                  target_ulong len, int type)
{
    switch (type) {
    case GDB_BREAKPOINT_HW:
        len = 1;
        break;
    case GDB_WATCHPOINT_WRITE:
    case GDB_WATCHPOINT_ACCESS:
        switch (len) {
        case 1:
            break;
        case 2:
        case 4:
        case 8:
1658
            if (addr & (len - 1)) {
1659
                return -EINVAL;
1660
            }
1661 1662 1663 1664 1665 1666 1667 1668 1669
            break;
        default:
            return -EINVAL;
        }
        break;
    default:
        return -ENOSYS;
    }

1670
    if (nb_hw_breakpoint == 4) {
1671
        return -ENOBUFS;
1672 1673
    }
    if (find_hw_breakpoint(addr, len, type) >= 0) {
1674
        return -EEXIST;
1675
    }
1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689
    hw_breakpoint[nb_hw_breakpoint].addr = addr;
    hw_breakpoint[nb_hw_breakpoint].len = len;
    hw_breakpoint[nb_hw_breakpoint].type = type;
    nb_hw_breakpoint++;

    return 0;
}

int kvm_arch_remove_hw_breakpoint(target_ulong addr,
                                  target_ulong len, int type)
{
    int n;

    n = find_hw_breakpoint(addr, (type == GDB_BREAKPOINT_HW) ? 1 : len, type);
1690
    if (n < 0) {
1691
        return -ENOENT;
1692
    }
1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712
    nb_hw_breakpoint--;
    hw_breakpoint[n] = hw_breakpoint[nb_hw_breakpoint];

    return 0;
}

void kvm_arch_remove_all_hw_breakpoints(void)
{
    nb_hw_breakpoint = 0;
}

static CPUWatchpoint hw_watchpoint;

int kvm_arch_debug(struct kvm_debug_exit_arch *arch_info)
{
    int handle = 0;
    int n;

    if (arch_info->exception == 1) {
        if (arch_info->dr6 & (1 << 14)) {
1713
            if (cpu_single_env->singlestep_enabled) {
1714
                handle = 1;
1715
            }
1716
        } else {
1717 1718
            for (n = 0; n < 4; n++) {
                if (arch_info->dr6 & (1 << n)) {
1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735
                    switch ((arch_info->dr7 >> (16 + n*4)) & 0x3) {
                    case 0x0:
                        handle = 1;
                        break;
                    case 0x1:
                        handle = 1;
                        cpu_single_env->watchpoint_hit = &hw_watchpoint;
                        hw_watchpoint.vaddr = hw_breakpoint[n].addr;
                        hw_watchpoint.flags = BP_MEM_WRITE;
                        break;
                    case 0x3:
                        handle = 1;
                        cpu_single_env->watchpoint_hit = &hw_watchpoint;
                        hw_watchpoint.vaddr = hw_breakpoint[n].addr;
                        hw_watchpoint.flags = BP_MEM_ACCESS;
                        break;
                    }
1736 1737
                }
            }
1738
        }
1739
    } else if (kvm_find_sw_breakpoint(cpu_single_env, arch_info->pc)) {
1740
        handle = 1;
1741
    }
1742 1743 1744 1745 1746 1747 1748
    if (!handle) {
        cpu_synchronize_state(cpu_single_env);
        assert(cpu_single_env->exception_injected == -1);

        cpu_single_env->exception_injected = arch_info->exception;
        cpu_single_env->has_error_code = 0;
    }
1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764

    return handle;
}

void kvm_arch_update_guest_debug(CPUState *env, struct kvm_guest_debug *dbg)
{
    const uint8_t type_code[] = {
        [GDB_BREAKPOINT_HW] = 0x0,
        [GDB_WATCHPOINT_WRITE] = 0x1,
        [GDB_WATCHPOINT_ACCESS] = 0x3
    };
    const uint8_t len_code[] = {
        [1] = 0x0, [2] = 0x1, [4] = 0x3, [8] = 0x2
    };
    int n;

1765
    if (kvm_sw_breakpoints_active(env)) {
1766
        dbg->control |= KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_SW_BP;
1767
    }
1768 1769 1770 1771 1772 1773 1774
    if (nb_hw_breakpoint > 0) {
        dbg->control |= KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_HW_BP;
        dbg->arch.debugreg[7] = 0x0600;
        for (n = 0; n < nb_hw_breakpoint; n++) {
            dbg->arch.debugreg[n] = hw_breakpoint[n].addr;
            dbg->arch.debugreg[7] |= (2 << (n * 2)) |
                (type_code[hw_breakpoint[n].type] << (16 + n*4)) |
1775
                ((uint32_t)len_code[hw_breakpoint[n].len] << (18 + n*4));
1776 1777 1778 1779
        }
    }
}
#endif /* KVM_CAP_SET_GUEST_DEBUG */
1780 1781 1782

bool kvm_arch_stop_on_emulation_error(CPUState *env)
{
1783 1784
    return !(env->cr[0] & CR0_PE_MASK) ||
           ((env->segs[R_CS].selector  & 3) != 3);
1785 1786
}

M
Marcelo Tosatti 已提交
1787 1788 1789 1790 1791 1792
static void hardware_memory_error(void)
{
    fprintf(stderr, "Hardware memory error!\n");
    exit(1);
}

1793 1794 1795
#ifdef KVM_CAP_MCE
static void kvm_mce_broadcast_rest(CPUState *env)
{
1796 1797 1798 1799 1800 1801 1802
    struct kvm_x86_mce mce = {
        .bank = 1,
        .status = MCI_STATUS_VAL | MCI_STATUS_UC,
        .mcg_status = MCG_STATUS_MCIP | MCG_STATUS_RIPV,
        .addr = 0,
        .misc = 0,
    };
1803 1804 1805
    CPUState *cenv;

    /* Broadcast MCA signal for processor version 06H_EH and above */
1806
    if (cpu_x86_support_mca_broadcast(env)) {
1807 1808 1809 1810
        for (cenv = first_cpu; cenv != NULL; cenv = cenv->next_cpu) {
            if (cenv == env) {
                continue;
            }
1811
            kvm_inject_x86_mce_on(cenv, &mce, ABORT_ON_ERROR);
1812 1813 1814
        }
    }
}
1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859

static void kvm_mce_inj_srar_dataload(CPUState *env, target_phys_addr_t paddr)
{
    struct kvm_x86_mce mce = {
        .bank = 9,
        .status = MCI_STATUS_VAL | MCI_STATUS_UC | MCI_STATUS_EN
                  | MCI_STATUS_MISCV | MCI_STATUS_ADDRV | MCI_STATUS_S
                  | MCI_STATUS_AR | 0x134,
        .mcg_status = MCG_STATUS_MCIP | MCG_STATUS_EIPV,
        .addr = paddr,
        .misc = (MCM_ADDR_PHYS << 6) | 0xc,
    };
    int r;

    r = kvm_set_mce(env, &mce);
    if (r < 0) {
        fprintf(stderr, "kvm_set_mce: %s\n", strerror(errno));
        abort();
    }
    kvm_mce_broadcast_rest(env);
}

static void kvm_mce_inj_srao_memscrub(CPUState *env, target_phys_addr_t paddr)
{
    struct kvm_x86_mce mce = {
        .bank = 9,
        .status = MCI_STATUS_VAL | MCI_STATUS_UC | MCI_STATUS_EN
                  | MCI_STATUS_MISCV | MCI_STATUS_ADDRV | MCI_STATUS_S
                  | 0xc0,
        .mcg_status = MCG_STATUS_MCIP | MCG_STATUS_RIPV,
        .addr = paddr,
        .misc = (MCM_ADDR_PHYS << 6) | 0xc,
    };
    int r;

    r = kvm_set_mce(env, &mce);
    if (r < 0) {
        fprintf(stderr, "kvm_set_mce: %s\n", strerror(errno));
        abort();
    }
    kvm_mce_broadcast_rest(env);
}

static void kvm_mce_inj_srao_memscrub2(CPUState *env, target_phys_addr_t paddr)
{
1860 1861 1862 1863 1864 1865 1866 1867 1868
    struct kvm_x86_mce mce = {
        .bank = 9,
        .status = MCI_STATUS_VAL | MCI_STATUS_UC | MCI_STATUS_EN
                  | MCI_STATUS_MISCV | MCI_STATUS_ADDRV | MCI_STATUS_S
                  | 0xc0,
        .mcg_status = MCG_STATUS_MCIP | MCG_STATUS_RIPV,
        .addr = paddr,
        .misc = (MCM_ADDR_PHYS << 6) | 0xc,
    };
1869

1870
    kvm_inject_x86_mce_on(env, &mce, ABORT_ON_ERROR);
1871 1872 1873
    kvm_mce_broadcast_rest(env);
}

1874 1875
#endif

1876
int kvm_arch_on_sigbus_vcpu(CPUState *env, int code, void *addr)
M
Marcelo Tosatti 已提交
1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897
{
#if defined(KVM_CAP_MCE)
    void *vaddr;
    ram_addr_t ram_addr;
    target_phys_addr_t paddr;

    if ((env->mcg_cap & MCG_SER_P) && addr
        && (code == BUS_MCEERR_AR
            || code == BUS_MCEERR_AO)) {
        vaddr = (void *)addr;
        if (qemu_ram_addr_from_host(vaddr, &ram_addr) ||
            !kvm_physical_memory_addr_from_ram(env->kvm_state, ram_addr, &paddr)) {
            fprintf(stderr, "Hardware memory error for memory used by "
                    "QEMU itself instead of guest system!\n");
            /* Hope we are lucky for AO MCE */
            if (code == BUS_MCEERR_AO) {
                return 0;
            } else {
                hardware_memory_error();
            }
        }
1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910

        if (code == BUS_MCEERR_AR) {
            /* Fake an Intel architectural Data Load SRAR UCR */
            kvm_mce_inj_srar_dataload(env, paddr);
        } else {
            /*
             * If there is an MCE excpetion being processed, ignore
             * this SRAO MCE
             */
            if (!kvm_mce_in_progress(env)) {
                /* Fake an Intel architectural Memory scrubbing UCR */
                kvm_mce_inj_srao_memscrub(env, paddr);
            }
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Marcelo Tosatti 已提交
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        }
    } else
#endif
    {
        if (code == BUS_MCEERR_AO) {
            return 0;
        } else if (code == BUS_MCEERR_AR) {
            hardware_memory_error();
        } else {
            return 1;
        }
    }
    return 0;
}

1926
int kvm_arch_on_sigbus(int code, void *addr)
M
Marcelo Tosatti 已提交
1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941
{
#if defined(KVM_CAP_MCE)
    if ((first_cpu->mcg_cap & MCG_SER_P) && addr && code == BUS_MCEERR_AO) {
        void *vaddr;
        ram_addr_t ram_addr;
        target_phys_addr_t paddr;

        /* Hope we are lucky for AO MCE */
        vaddr = addr;
        if (qemu_ram_addr_from_host(vaddr, &ram_addr) ||
            !kvm_physical_memory_addr_from_ram(first_cpu->kvm_state, ram_addr, &paddr)) {
            fprintf(stderr, "Hardware memory error for memory used by "
                    "QEMU itself instead of guest system!: %p\n", addr);
            return 0;
        }
1942
        kvm_mce_inj_srao_memscrub2(first_cpu, paddr);
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Marcelo Tosatti 已提交
1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955
    } else
#endif
    {
        if (code == BUS_MCEERR_AO) {
            return 0;
        } else if (code == BUS_MCEERR_AR) {
            hardware_memory_error();
        } else {
            return 1;
        }
    }
    return 0;
}