kvm.c 36.0 KB
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/*
 * PowerPC implementation of KVM hooks
 *
 * Copyright IBM Corp. 2007
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 * Copyright (C) 2011 Freescale Semiconductor, Inc.
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 *
 * Authors:
 *  Jerone Young <jyoung5@us.ibm.com>
 *  Christian Ehrhardt <ehrhardt@linux.vnet.ibm.com>
 *  Hollis Blanchard <hollisb@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.
 *
 */

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

#include "qemu-common.h"
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#include "qemu/timer.h"
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#include "sysemu/sysemu.h"
#include "sysemu/kvm.h"
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#include "kvm_ppc.h"
#include "cpu.h"
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#include "sysemu/cpus.h"
#include "sysemu/device_tree.h"
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#include "hw/sysbus.h"
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#include "hw/spapr.h"
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#include "hw/sysbus.h"
#include "hw/spapr.h"
#include "hw/spapr_vio.h"

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//#define DEBUG_KVM

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

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#define PROC_DEVTREE_CPU      "/proc/device-tree/cpus/"

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const KVMCapabilityInfo kvm_arch_required_capabilities[] = {
    KVM_CAP_LAST_INFO
};

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static int cap_interrupt_unset = false;
static int cap_interrupt_level = false;
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static int cap_segstate;
static int cap_booke_sregs;
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static int cap_ppc_smt;
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static int cap_ppc_rma;
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static int cap_spapr_tce;
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static int cap_hior;
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/* XXX We have a race condition where we actually have a level triggered
 *     interrupt, but the infrastructure can't expose that yet, so the guest
 *     takes but ignores it, goes to sleep and never gets notified that there's
 *     still an interrupt pending.
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 *
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 *     As a quick workaround, let's just wake up again 20 ms after we injected
 *     an interrupt. That way we can assure that we're always reinjecting
 *     interrupts in case the guest swallowed them.
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 */
static QEMUTimer *idle_timer;

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static void kvm_kick_cpu(void *opaque)
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{
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    PowerPCCPU *cpu = opaque;

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    qemu_cpu_kick(CPU(cpu));
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}

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int kvm_arch_init(KVMState *s)
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{
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    cap_interrupt_unset = kvm_check_extension(s, KVM_CAP_PPC_UNSET_IRQ);
    cap_interrupt_level = kvm_check_extension(s, KVM_CAP_PPC_IRQ_LEVEL);
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    cap_segstate = kvm_check_extension(s, KVM_CAP_PPC_SEGSTATE);
    cap_booke_sregs = kvm_check_extension(s, KVM_CAP_PPC_BOOKE_SREGS);
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    cap_ppc_smt = kvm_check_extension(s, KVM_CAP_PPC_SMT);
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    cap_ppc_rma = kvm_check_extension(s, KVM_CAP_PPC_RMA);
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    cap_spapr_tce = kvm_check_extension(s, KVM_CAP_SPAPR_TCE);
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    cap_hior = kvm_check_extension(s, KVM_CAP_PPC_HIOR);
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    if (!cap_interrupt_level) {
        fprintf(stderr, "KVM: Couldn't find level irq capability. Expect the "
                        "VM to stall at times!\n");
    }

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    return 0;
}

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static int kvm_arch_sync_sregs(PowerPCCPU *cpu)
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{
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    CPUPPCState *cenv = &cpu->env;
    CPUState *cs = CPU(cpu);
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    struct kvm_sregs sregs;
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    int ret;

    if (cenv->excp_model == POWERPC_EXCP_BOOKE) {
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        /* What we're really trying to say is "if we're on BookE, we use
           the native PVR for now". This is the only sane way to check
           it though, so we potentially confuse users that they can run
           BookE guests on BookS. Let's hope nobody dares enough :) */
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        return 0;
    } else {
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        if (!cap_segstate) {
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            fprintf(stderr, "kvm error: missing PVR setting capability\n");
            return -ENOSYS;
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        }
    }

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    ret = kvm_vcpu_ioctl(cs, KVM_GET_SREGS, &sregs);
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    if (ret) {
        return ret;
    }
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    sregs.pvr = cenv->spr[SPR_PVR];
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    return kvm_vcpu_ioctl(cs, KVM_SET_SREGS, &sregs);
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}

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/* Set up a shared TLB array with KVM */
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static int kvm_booke206_tlb_init(PowerPCCPU *cpu)
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{
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    CPUPPCState *env = &cpu->env;
    CPUState *cs = CPU(cpu);
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    struct kvm_book3e_206_tlb_params params = {};
    struct kvm_config_tlb cfg = {};
    struct kvm_enable_cap encap = {};
    unsigned int entries = 0;
    int ret, i;

    if (!kvm_enabled() ||
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        !kvm_check_extension(cs->kvm_state, KVM_CAP_SW_TLB)) {
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        return 0;
    }

    assert(ARRAY_SIZE(params.tlb_sizes) == BOOKE206_MAX_TLBN);

    for (i = 0; i < BOOKE206_MAX_TLBN; i++) {
        params.tlb_sizes[i] = booke206_tlb_size(env, i);
        params.tlb_ways[i] = booke206_tlb_ways(env, i);
        entries += params.tlb_sizes[i];
    }

    assert(entries == env->nb_tlb);
    assert(sizeof(struct kvm_book3e_206_tlb_entry) == sizeof(ppcmas_tlb_t));

    env->tlb_dirty = true;

    cfg.array = (uintptr_t)env->tlb.tlbm;
    cfg.array_len = sizeof(ppcmas_tlb_t) * entries;
    cfg.params = (uintptr_t)&params;
    cfg.mmu_type = KVM_MMU_FSL_BOOKE_NOHV;

    encap.cap = KVM_CAP_SW_TLB;
    encap.args[0] = (uintptr_t)&cfg;

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    ret = kvm_vcpu_ioctl(cs, KVM_ENABLE_CAP, &encap);
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    if (ret < 0) {
        fprintf(stderr, "%s: couldn't enable KVM_CAP_SW_TLB: %s\n",
                __func__, strerror(-ret));
        return ret;
    }

    env->kvm_sw_tlb = true;
    return 0;
}

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#if defined(TARGET_PPC64)
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static void kvm_get_fallback_smmu_info(PowerPCCPU *cpu,
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                                       struct kvm_ppc_smmu_info *info)
{
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    CPUPPCState *env = &cpu->env;
    CPUState *cs = CPU(cpu);

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    memset(info, 0, sizeof(*info));

    /* We don't have the new KVM_PPC_GET_SMMU_INFO ioctl, so
     * need to "guess" what the supported page sizes are.
     *
     * For that to work we make a few assumptions:
     *
     * - If KVM_CAP_PPC_GET_PVINFO is supported we are running "PR"
     *   KVM which only supports 4K and 16M pages, but supports them
     *   regardless of the backing store characteritics. We also don't
     *   support 1T segments.
     *
     *   This is safe as if HV KVM ever supports that capability or PR
     *   KVM grows supports for more page/segment sizes, those versions
     *   will have implemented KVM_CAP_PPC_GET_SMMU_INFO and thus we
     *   will not hit this fallback
     *
     * - Else we are running HV KVM. This means we only support page
     *   sizes that fit in the backing store. Additionally we only
     *   advertize 64K pages if the processor is ARCH 2.06 and we assume
     *   P7 encodings for the SLB and hash table. Here too, we assume
     *   support for any newer processor will mean a kernel that
     *   implements KVM_CAP_PPC_GET_SMMU_INFO and thus doesn't hit
     *   this fallback.
     */
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    if (kvm_check_extension(cs->kvm_state, KVM_CAP_PPC_GET_PVINFO)) {
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        /* No flags */
        info->flags = 0;
        info->slb_size = 64;

        /* Standard 4k base page size segment */
        info->sps[0].page_shift = 12;
        info->sps[0].slb_enc = 0;
        info->sps[0].enc[0].page_shift = 12;
        info->sps[0].enc[0].pte_enc = 0;

        /* Standard 16M large page size segment */
        info->sps[1].page_shift = 24;
        info->sps[1].slb_enc = SLB_VSID_L;
        info->sps[1].enc[0].page_shift = 24;
        info->sps[1].enc[0].pte_enc = 0;
    } else {
        int i = 0;

        /* HV KVM has backing store size restrictions */
        info->flags = KVM_PPC_PAGE_SIZES_REAL;

        if (env->mmu_model & POWERPC_MMU_1TSEG) {
            info->flags |= KVM_PPC_1T_SEGMENTS;
        }

        if (env->mmu_model == POWERPC_MMU_2_06) {
            info->slb_size = 32;
        } else {
            info->slb_size = 64;
        }

        /* Standard 4k base page size segment */
        info->sps[i].page_shift = 12;
        info->sps[i].slb_enc = 0;
        info->sps[i].enc[0].page_shift = 12;
        info->sps[i].enc[0].pte_enc = 0;
        i++;

        /* 64K on MMU 2.06 */
        if (env->mmu_model == POWERPC_MMU_2_06) {
            info->sps[i].page_shift = 16;
            info->sps[i].slb_enc = 0x110;
            info->sps[i].enc[0].page_shift = 16;
            info->sps[i].enc[0].pte_enc = 1;
            i++;
        }

        /* Standard 16M large page size segment */
        info->sps[i].page_shift = 24;
        info->sps[i].slb_enc = SLB_VSID_L;
        info->sps[i].enc[0].page_shift = 24;
        info->sps[i].enc[0].pte_enc = 0;
    }
}

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static void kvm_get_smmu_info(PowerPCCPU *cpu, struct kvm_ppc_smmu_info *info)
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{
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    CPUState *cs = CPU(cpu);
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    int ret;

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    if (kvm_check_extension(cs->kvm_state, KVM_CAP_PPC_GET_SMMU_INFO)) {
        ret = kvm_vm_ioctl(cs->kvm_state, KVM_PPC_GET_SMMU_INFO, info);
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        if (ret == 0) {
            return;
        }
    }

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    kvm_get_fallback_smmu_info(cpu, info);
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}

static long getrampagesize(void)
{
    struct statfs fs;
    int ret;

    if (!mem_path) {
        /* guest RAM is backed by normal anonymous pages */
        return getpagesize();
    }

    do {
        ret = statfs(mem_path, &fs);
    } while (ret != 0 && errno == EINTR);

    if (ret != 0) {
        fprintf(stderr, "Couldn't statfs() memory path: %s\n",
                strerror(errno));
        exit(1);
    }

#define HUGETLBFS_MAGIC       0x958458f6

    if (fs.f_type != HUGETLBFS_MAGIC) {
        /* Explicit mempath, but it's ordinary pages */
        return getpagesize();
    }

    /* It's hugepage, return the huge page size */
    return fs.f_bsize;
}

static bool kvm_valid_page_size(uint32_t flags, long rampgsize, uint32_t shift)
{
    if (!(flags & KVM_PPC_PAGE_SIZES_REAL)) {
        return true;
    }

    return (1ul << shift) <= rampgsize;
}

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static void kvm_fixup_page_sizes(PowerPCCPU *cpu)
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{
    static struct kvm_ppc_smmu_info smmu_info;
    static bool has_smmu_info;
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    CPUPPCState *env = &cpu->env;
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    long rampagesize;
    int iq, ik, jq, jk;

    /* We only handle page sizes for 64-bit server guests for now */
    if (!(env->mmu_model & POWERPC_MMU_64)) {
        return;
    }

    /* Collect MMU info from kernel if not already */
    if (!has_smmu_info) {
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        kvm_get_smmu_info(cpu, &smmu_info);
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        has_smmu_info = true;
    }

    rampagesize = getrampagesize();

    /* Convert to QEMU form */
    memset(&env->sps, 0, sizeof(env->sps));

    for (ik = iq = 0; ik < KVM_PPC_PAGE_SIZES_MAX_SZ; ik++) {
        struct ppc_one_seg_page_size *qsps = &env->sps.sps[iq];
        struct kvm_ppc_one_seg_page_size *ksps = &smmu_info.sps[ik];

        if (!kvm_valid_page_size(smmu_info.flags, rampagesize,
                                 ksps->page_shift)) {
            continue;
        }
        qsps->page_shift = ksps->page_shift;
        qsps->slb_enc = ksps->slb_enc;
        for (jk = jq = 0; jk < KVM_PPC_PAGE_SIZES_MAX_SZ; jk++) {
            if (!kvm_valid_page_size(smmu_info.flags, rampagesize,
                                     ksps->enc[jk].page_shift)) {
                continue;
            }
            qsps->enc[jq].page_shift = ksps->enc[jk].page_shift;
            qsps->enc[jq].pte_enc = ksps->enc[jk].pte_enc;
            if (++jq >= PPC_PAGE_SIZES_MAX_SZ) {
                break;
            }
        }
        if (++iq >= PPC_PAGE_SIZES_MAX_SZ) {
            break;
        }
    }
    env->slb_nr = smmu_info.slb_size;
    if (smmu_info.flags & KVM_PPC_1T_SEGMENTS) {
        env->mmu_model |= POWERPC_MMU_1TSEG;
    } else {
        env->mmu_model &= ~POWERPC_MMU_1TSEG;
    }
}
#else /* defined (TARGET_PPC64) */

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static inline void kvm_fixup_page_sizes(PowerPCCPU *cpu)
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{
}

#endif /* !defined (TARGET_PPC64) */

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unsigned long kvm_arch_vcpu_id(CPUState *cpu)
{
    return cpu->cpu_index;
}

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int kvm_arch_init_vcpu(CPUState *cs)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    CPUPPCState *cenv = &cpu->env;
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    int ret;

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    /* Gather server mmu info from KVM and update the CPU state */
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    kvm_fixup_page_sizes(cpu);
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    /* Synchronize sregs with kvm */
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    ret = kvm_arch_sync_sregs(cpu);
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    if (ret) {
        return ret;
    }
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    idle_timer = qemu_new_timer_ns(vm_clock, kvm_kick_cpu, cpu);
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    /* Some targets support access to KVM's guest TLB. */
    switch (cenv->mmu_model) {
    case POWERPC_MMU_BOOKE206:
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        ret = kvm_booke206_tlb_init(cpu);
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        break;
    default:
        break;
    }

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    return ret;
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}

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void kvm_arch_reset_vcpu(CPUState *cpu)
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{
}

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static void kvm_sw_tlb_put(PowerPCCPU *cpu)
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{
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    CPUPPCState *env = &cpu->env;
    CPUState *cs = CPU(cpu);
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    struct kvm_dirty_tlb dirty_tlb;
    unsigned char *bitmap;
    int ret;

    if (!env->kvm_sw_tlb) {
        return;
    }

    bitmap = g_malloc((env->nb_tlb + 7) / 8);
    memset(bitmap, 0xFF, (env->nb_tlb + 7) / 8);

    dirty_tlb.bitmap = (uintptr_t)bitmap;
    dirty_tlb.num_dirty = env->nb_tlb;

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    ret = kvm_vcpu_ioctl(cs, KVM_DIRTY_TLB, &dirty_tlb);
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    if (ret) {
        fprintf(stderr, "%s: KVM_DIRTY_TLB: %s\n",
                __func__, strerror(-ret));
    }

    g_free(bitmap);
}

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int kvm_arch_put_registers(CPUState *cs, int level)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    CPUPPCState *env = &cpu->env;
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    struct kvm_regs regs;
    int ret;
    int i;

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    ret = kvm_vcpu_ioctl(cs, KVM_GET_REGS, &regs);
    if (ret < 0) {
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        return ret;
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    }
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    regs.ctr = env->ctr;
    regs.lr  = env->lr;
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    regs.xer = cpu_read_xer(env);
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    regs.msr = env->msr;
    regs.pc = env->nip;

    regs.srr0 = env->spr[SPR_SRR0];
    regs.srr1 = env->spr[SPR_SRR1];

    regs.sprg0 = env->spr[SPR_SPRG0];
    regs.sprg1 = env->spr[SPR_SPRG1];
    regs.sprg2 = env->spr[SPR_SPRG2];
    regs.sprg3 = env->spr[SPR_SPRG3];
    regs.sprg4 = env->spr[SPR_SPRG4];
    regs.sprg5 = env->spr[SPR_SPRG5];
    regs.sprg6 = env->spr[SPR_SPRG6];
    regs.sprg7 = env->spr[SPR_SPRG7];

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    regs.pid = env->spr[SPR_BOOKE_PID];

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    for (i = 0;i < 32; i++)
        regs.gpr[i] = env->gpr[i];

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    ret = kvm_vcpu_ioctl(cs, KVM_SET_REGS, &regs);
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    if (ret < 0)
        return ret;

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    if (env->tlb_dirty) {
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        kvm_sw_tlb_put(cpu);
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        env->tlb_dirty = false;
    }

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    if (cap_segstate && (level >= KVM_PUT_RESET_STATE)) {
        struct kvm_sregs sregs;

        sregs.pvr = env->spr[SPR_PVR];

        sregs.u.s.sdr1 = env->spr[SPR_SDR1];

        /* Sync SLB */
#ifdef TARGET_PPC64
        for (i = 0; i < 64; i++) {
            sregs.u.s.ppc64.slb[i].slbe = env->slb[i].esid;
            sregs.u.s.ppc64.slb[i].slbv = env->slb[i].vsid;
        }
#endif

        /* Sync SRs */
        for (i = 0; i < 16; i++) {
            sregs.u.s.ppc32.sr[i] = env->sr[i];
        }

        /* Sync BATs */
        for (i = 0; i < 8; i++) {
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            /* Beware. We have to swap upper and lower bits here */
            sregs.u.s.ppc32.dbat[i] = ((uint64_t)env->DBAT[0][i] << 32)
                | env->DBAT[1][i];
            sregs.u.s.ppc32.ibat[i] = ((uint64_t)env->IBAT[0][i] << 32)
                | env->IBAT[1][i];
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        }

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        ret = kvm_vcpu_ioctl(cs, KVM_SET_SREGS, &sregs);
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        if (ret) {
            return ret;
        }
    }

    if (cap_hior && (level >= KVM_PUT_RESET_STATE)) {
        uint64_t hior = env->spr[SPR_HIOR];
        struct kvm_one_reg reg = {
            .id = KVM_REG_PPC_HIOR,
            .addr = (uintptr_t) &hior,
        };

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        ret = kvm_vcpu_ioctl(cs, KVM_SET_ONE_REG, &reg);
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        if (ret) {
            return ret;
        }
    }

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    return ret;
}

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int kvm_arch_get_registers(CPUState *cs)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    CPUPPCState *env = &cpu->env;
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    struct kvm_regs regs;
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    struct kvm_sregs sregs;
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    uint32_t cr;
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    int i, ret;
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    ret = kvm_vcpu_ioctl(cs, KVM_GET_REGS, &regs);
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    if (ret < 0)
        return ret;

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    cr = regs.cr;
    for (i = 7; i >= 0; i--) {
        env->crf[i] = cr & 15;
        cr >>= 4;
    }
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    env->ctr = regs.ctr;
    env->lr = regs.lr;
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    cpu_write_xer(env, regs.xer);
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    env->msr = regs.msr;
    env->nip = regs.pc;

    env->spr[SPR_SRR0] = regs.srr0;
    env->spr[SPR_SRR1] = regs.srr1;

    env->spr[SPR_SPRG0] = regs.sprg0;
    env->spr[SPR_SPRG1] = regs.sprg1;
    env->spr[SPR_SPRG2] = regs.sprg2;
    env->spr[SPR_SPRG3] = regs.sprg3;
    env->spr[SPR_SPRG4] = regs.sprg4;
    env->spr[SPR_SPRG5] = regs.sprg5;
    env->spr[SPR_SPRG6] = regs.sprg6;
    env->spr[SPR_SPRG7] = regs.sprg7;

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    env->spr[SPR_BOOKE_PID] = regs.pid;

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    for (i = 0;i < 32; i++)
        env->gpr[i] = regs.gpr[i];

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    if (cap_booke_sregs) {
591
        ret = kvm_vcpu_ioctl(cs, KVM_GET_SREGS, &sregs);
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        if (ret < 0) {
            return ret;
        }

        if (sregs.u.e.features & KVM_SREGS_E_BASE) {
            env->spr[SPR_BOOKE_CSRR0] = sregs.u.e.csrr0;
            env->spr[SPR_BOOKE_CSRR1] = sregs.u.e.csrr1;
            env->spr[SPR_BOOKE_ESR] = sregs.u.e.esr;
            env->spr[SPR_BOOKE_DEAR] = sregs.u.e.dear;
            env->spr[SPR_BOOKE_MCSR] = sregs.u.e.mcsr;
            env->spr[SPR_BOOKE_TSR] = sregs.u.e.tsr;
            env->spr[SPR_BOOKE_TCR] = sregs.u.e.tcr;
            env->spr[SPR_DECR] = sregs.u.e.dec;
            env->spr[SPR_TBL] = sregs.u.e.tb & 0xffffffff;
            env->spr[SPR_TBU] = sregs.u.e.tb >> 32;
            env->spr[SPR_VRSAVE] = sregs.u.e.vrsave;
        }

        if (sregs.u.e.features & KVM_SREGS_E_ARCH206) {
            env->spr[SPR_BOOKE_PIR] = sregs.u.e.pir;
            env->spr[SPR_BOOKE_MCSRR0] = sregs.u.e.mcsrr0;
            env->spr[SPR_BOOKE_MCSRR1] = sregs.u.e.mcsrr1;
            env->spr[SPR_BOOKE_DECAR] = sregs.u.e.decar;
            env->spr[SPR_BOOKE_IVPR] = sregs.u.e.ivpr;
        }

        if (sregs.u.e.features & KVM_SREGS_E_64) {
            env->spr[SPR_BOOKE_EPCR] = sregs.u.e.epcr;
        }

        if (sregs.u.e.features & KVM_SREGS_E_SPRG8) {
            env->spr[SPR_BOOKE_SPRG8] = sregs.u.e.sprg8;
        }

        if (sregs.u.e.features & KVM_SREGS_E_IVOR) {
            env->spr[SPR_BOOKE_IVOR0] = sregs.u.e.ivor_low[0];
            env->spr[SPR_BOOKE_IVOR1] = sregs.u.e.ivor_low[1];
            env->spr[SPR_BOOKE_IVOR2] = sregs.u.e.ivor_low[2];
            env->spr[SPR_BOOKE_IVOR3] = sregs.u.e.ivor_low[3];
            env->spr[SPR_BOOKE_IVOR4] = sregs.u.e.ivor_low[4];
            env->spr[SPR_BOOKE_IVOR5] = sregs.u.e.ivor_low[5];
            env->spr[SPR_BOOKE_IVOR6] = sregs.u.e.ivor_low[6];
            env->spr[SPR_BOOKE_IVOR7] = sregs.u.e.ivor_low[7];
            env->spr[SPR_BOOKE_IVOR8] = sregs.u.e.ivor_low[8];
            env->spr[SPR_BOOKE_IVOR9] = sregs.u.e.ivor_low[9];
            env->spr[SPR_BOOKE_IVOR10] = sregs.u.e.ivor_low[10];
            env->spr[SPR_BOOKE_IVOR11] = sregs.u.e.ivor_low[11];
            env->spr[SPR_BOOKE_IVOR12] = sregs.u.e.ivor_low[12];
            env->spr[SPR_BOOKE_IVOR13] = sregs.u.e.ivor_low[13];
            env->spr[SPR_BOOKE_IVOR14] = sregs.u.e.ivor_low[14];
            env->spr[SPR_BOOKE_IVOR15] = sregs.u.e.ivor_low[15];

            if (sregs.u.e.features & KVM_SREGS_E_SPE) {
                env->spr[SPR_BOOKE_IVOR32] = sregs.u.e.ivor_high[0];
                env->spr[SPR_BOOKE_IVOR33] = sregs.u.e.ivor_high[1];
                env->spr[SPR_BOOKE_IVOR34] = sregs.u.e.ivor_high[2];
            }

            if (sregs.u.e.features & KVM_SREGS_E_PM) {
                env->spr[SPR_BOOKE_IVOR35] = sregs.u.e.ivor_high[3];
            }

            if (sregs.u.e.features & KVM_SREGS_E_PC) {
                env->spr[SPR_BOOKE_IVOR36] = sregs.u.e.ivor_high[4];
                env->spr[SPR_BOOKE_IVOR37] = sregs.u.e.ivor_high[5];
            }
        }

        if (sregs.u.e.features & KVM_SREGS_E_ARCH206_MMU) {
            env->spr[SPR_BOOKE_MAS0] = sregs.u.e.mas0;
            env->spr[SPR_BOOKE_MAS1] = sregs.u.e.mas1;
            env->spr[SPR_BOOKE_MAS2] = sregs.u.e.mas2;
            env->spr[SPR_BOOKE_MAS3] = sregs.u.e.mas7_3 & 0xffffffff;
            env->spr[SPR_BOOKE_MAS4] = sregs.u.e.mas4;
            env->spr[SPR_BOOKE_MAS6] = sregs.u.e.mas6;
            env->spr[SPR_BOOKE_MAS7] = sregs.u.e.mas7_3 >> 32;
            env->spr[SPR_MMUCFG] = sregs.u.e.mmucfg;
            env->spr[SPR_BOOKE_TLB0CFG] = sregs.u.e.tlbcfg[0];
            env->spr[SPR_BOOKE_TLB1CFG] = sregs.u.e.tlbcfg[1];
        }

        if (sregs.u.e.features & KVM_SREGS_EXP) {
            env->spr[SPR_BOOKE_EPR] = sregs.u.e.epr;
        }

        if (sregs.u.e.features & KVM_SREGS_E_PD) {
            env->spr[SPR_BOOKE_EPLC] = sregs.u.e.eplc;
            env->spr[SPR_BOOKE_EPSC] = sregs.u.e.epsc;
        }

        if (sregs.u.e.impl_id == KVM_SREGS_E_IMPL_FSL) {
            env->spr[SPR_E500_SVR] = sregs.u.e.impl.fsl.svr;
            env->spr[SPR_Exxx_MCAR] = sregs.u.e.impl.fsl.mcar;
            env->spr[SPR_HID0] = sregs.u.e.impl.fsl.hid0;

            if (sregs.u.e.impl.fsl.features & KVM_SREGS_E_FSL_PIDn) {
                env->spr[SPR_BOOKE_PID1] = sregs.u.e.impl.fsl.pid1;
                env->spr[SPR_BOOKE_PID2] = sregs.u.e.impl.fsl.pid2;
            }
        }
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    }
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    if (cap_segstate) {
695
        ret = kvm_vcpu_ioctl(cs, KVM_GET_SREGS, &sregs);
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        if (ret < 0) {
            return ret;
        }

700
        ppc_store_sdr1(env, sregs.u.s.sdr1);
701 702

        /* Sync SLB */
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#ifdef TARGET_PPC64
704 705 706 707
        for (i = 0; i < 64; i++) {
            ppc_store_slb(env, sregs.u.s.ppc64.slb[i].slbe,
                               sregs.u.s.ppc64.slb[i].slbv);
        }
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#endif
709 710 711 712 713 714 715 716 717 718 719 720 721

        /* Sync SRs */
        for (i = 0; i < 16; i++) {
            env->sr[i] = sregs.u.s.ppc32.sr[i];
        }

        /* Sync BATs */
        for (i = 0; i < 8; i++) {
            env->DBAT[0][i] = sregs.u.s.ppc32.dbat[i] & 0xffffffff;
            env->DBAT[1][i] = sregs.u.s.ppc32.dbat[i] >> 32;
            env->IBAT[0][i] = sregs.u.s.ppc32.ibat[i] & 0xffffffff;
            env->IBAT[1][i] = sregs.u.s.ppc32.ibat[i] >> 32;
        }
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    }
723

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    return 0;
}

727
int kvmppc_set_interrupt(PowerPCCPU *cpu, int irq, int level)
728 729 730 731 732 733 734 735 736 737 738
{
    unsigned virq = level ? KVM_INTERRUPT_SET_LEVEL : KVM_INTERRUPT_UNSET;

    if (irq != PPC_INTERRUPT_EXT) {
        return 0;
    }

    if (!kvm_enabled() || !cap_interrupt_unset || !cap_interrupt_level) {
        return 0;
    }

739
    kvm_vcpu_ioctl(CPU(cpu), KVM_INTERRUPT, &virq);
740 741 742 743

    return 0;
}

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#if defined(TARGET_PPCEMB)
#define PPC_INPUT_INT PPC40x_INPUT_INT
#elif defined(TARGET_PPC64)
#define PPC_INPUT_INT PPC970_INPUT_INT
#else
#define PPC_INPUT_INT PPC6xx_INPUT_INT
#endif

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void kvm_arch_pre_run(CPUState *cs, struct kvm_run *run)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    CPUPPCState *env = &cpu->env;
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    int r;
    unsigned irq;

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    /* PowerPC QEMU tracks the various core input pins (interrupt, critical
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     * interrupt, reset, etc) in PPC-specific env->irq_input_state. */
761 762
    if (!cap_interrupt_level &&
        run->ready_for_interrupt_injection &&
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        (env->interrupt_request & CPU_INTERRUPT_HARD) &&
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        (env->irq_input_state & (1<<PPC_INPUT_INT)))
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    {
        /* For now KVM disregards the 'irq' argument. However, in the
         * future KVM could cache it in-kernel to avoid a heavyweight exit
         * when reading the UIC.
         */
770
        irq = KVM_INTERRUPT_SET;
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        dprintf("injected interrupt %d\n", irq);
773
        r = kvm_vcpu_ioctl(cs, KVM_INTERRUPT, &irq);
774 775 776
        if (r < 0) {
            printf("cpu %d fail inject %x\n", cs->cpu_index, irq);
        }
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        /* Always wake up soon in case the interrupt was level based */
779
        qemu_mod_timer(idle_timer, qemu_get_clock_ns(vm_clock) +
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                       (get_ticks_per_sec() / 50));
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    }

    /* We don't know if there are more interrupts pending after this. However,
     * the guest will return to userspace in the course of handling this one
     * anyways, so we will get a chance to deliver the rest. */
}

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void kvm_arch_post_run(CPUState *cpu, struct kvm_run *run)
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{
}

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int kvm_arch_process_async_events(CPUState *cs)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    return cpu->env.halted;
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}

798
static int kvmppc_handle_halt(CPUPPCState *env)
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{
    if (!(env->interrupt_request & CPU_INTERRUPT_HARD) && (msr_ee)) {
        env->halted = 1;
        env->exception_index = EXCP_HLT;
    }

805
    return 0;
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}

/* map dcr access to existing qemu dcr emulation */
809
static int kvmppc_handle_dcr_read(CPUPPCState *env, uint32_t dcrn, uint32_t *data)
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{
    if (ppc_dcr_read(env->dcr_env, dcrn, data) < 0)
        fprintf(stderr, "Read to unhandled DCR (0x%x)\n", dcrn);

814
    return 0;
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}

817
static int kvmppc_handle_dcr_write(CPUPPCState *env, uint32_t dcrn, uint32_t data)
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{
    if (ppc_dcr_write(env->dcr_env, dcrn, data) < 0)
        fprintf(stderr, "Write to unhandled DCR (0x%x)\n", dcrn);

822
    return 0;
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}

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int kvm_arch_handle_exit(CPUState *cs, struct kvm_run *run)
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{
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    PowerPCCPU *cpu = POWERPC_CPU(cs);
    CPUPPCState *env = &cpu->env;
829
    int ret;
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    switch (run->exit_reason) {
    case KVM_EXIT_DCR:
        if (run->dcr.is_write) {
            dprintf("handle dcr write\n");
            ret = kvmppc_handle_dcr_write(env, run->dcr.dcrn, run->dcr.data);
        } else {
            dprintf("handle dcr read\n");
            ret = kvmppc_handle_dcr_read(env, run->dcr.dcrn, &run->dcr.data);
        }
        break;
    case KVM_EXIT_HLT:
        dprintf("handle halt\n");
        ret = kvmppc_handle_halt(env);
        break;
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#ifdef CONFIG_PSERIES
    case KVM_EXIT_PAPR_HCALL:
        dprintf("handle PAPR hypercall\n");
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        run->papr_hcall.ret = spapr_hypercall(cpu,
849
                                              run->papr_hcall.nr,
850
                                              run->papr_hcall.args);
851
        ret = 0;
852 853
        break;
#endif
854 855 856 857 858
    case KVM_EXIT_EPR:
        dprintf("handle epr\n");
        run->epr.epr = ldl_phys(env->mpic_iack);
        ret = 0;
        break;
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    default:
        fprintf(stderr, "KVM: unknown exit reason %d\n", run->exit_reason);
        ret = -1;
        break;
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    }

    return ret;
}

868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884
static int read_cpuinfo(const char *field, char *value, int len)
{
    FILE *f;
    int ret = -1;
    int field_len = strlen(field);
    char line[512];

    f = fopen("/proc/cpuinfo", "r");
    if (!f) {
        return -1;
    }

    do {
        if(!fgets(line, sizeof(line), f)) {
            break;
        }
        if (!strncmp(line, field, field_len)) {
885
            pstrcpy(value, len, line);
886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914
            ret = 0;
            break;
        }
    } while(*line);

    fclose(f);

    return ret;
}

uint32_t kvmppc_get_tbfreq(void)
{
    char line[512];
    char *ns;
    uint32_t retval = get_ticks_per_sec();

    if (read_cpuinfo("timebase", line, sizeof(line))) {
        return retval;
    }

    if (!(ns = strchr(line, ':'))) {
        return retval;
    }

    ns++;

    retval = atoi(ns);
    return retval;
}
915

916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948
/* Try to find a device tree node for a CPU with clock-frequency property */
static int kvmppc_find_cpu_dt(char *buf, int buf_len)
{
    struct dirent *dirp;
    DIR *dp;

    if ((dp = opendir(PROC_DEVTREE_CPU)) == NULL) {
        printf("Can't open directory " PROC_DEVTREE_CPU "\n");
        return -1;
    }

    buf[0] = '\0';
    while ((dirp = readdir(dp)) != NULL) {
        FILE *f;
        snprintf(buf, buf_len, "%s%s/clock-frequency", PROC_DEVTREE_CPU,
                 dirp->d_name);
        f = fopen(buf, "r");
        if (f) {
            snprintf(buf, buf_len, "%s%s", PROC_DEVTREE_CPU, dirp->d_name);
            fclose(f);
            break;
        }
        buf[0] = '\0';
    }
    closedir(dp);
    if (buf[0] == '\0') {
        printf("Unknown host!\n");
        return -1;
    }

    return 0;
}

949 950 951 952 953
/* Read a CPU node property from the host device tree that's a single
 * integer (32-bit or 64-bit).  Returns 0 if anything goes wrong
 * (can't find or open the property, or doesn't understand the
 * format) */
static uint64_t kvmppc_read_int_cpu_dt(const char *propname)
954
{
955 956 957 958 959
    char buf[PATH_MAX];
    union {
        uint32_t v32;
        uint64_t v64;
    } u;
960 961 962 963
    FILE *f;
    int len;

    if (kvmppc_find_cpu_dt(buf, sizeof(buf))) {
964
        return -1;
965 966
    }

967 968
    strncat(buf, "/", sizeof(buf) - strlen(buf));
    strncat(buf, propname, sizeof(buf) - strlen(buf));
969 970 971 972 973 974

    f = fopen(buf, "rb");
    if (!f) {
        return -1;
    }

975
    len = fread(&u, 1, sizeof(u), f);
976 977
    fclose(f);
    switch (len) {
978 979 980 981 982
    case 4:
        /* property is a 32-bit quantity */
        return be32_to_cpu(u.v32);
    case 8:
        return be64_to_cpu(u.v64);
983 984 985 986 987
    }

    return 0;
}

988 989 990 991 992
uint64_t kvmppc_get_clockfreq(void)
{
    return kvmppc_read_int_cpu_dt("clock-frequency");
}

993 994 995 996 997 998 999 1000 1001 1002
uint32_t kvmppc_get_vmx(void)
{
    return kvmppc_read_int_cpu_dt("ibm,vmx");
}

uint32_t kvmppc_get_dfp(void)
{
    return kvmppc_read_int_cpu_dt("ibm,dfp");
}

1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027
static int kvmppc_get_pvinfo(CPUPPCState *env, struct kvm_ppc_pvinfo *pvinfo)
 {
     PowerPCCPU *cpu = ppc_env_get_cpu(env);
     CPUState *cs = CPU(cpu);

    if (kvm_check_extension(cs->kvm_state, KVM_CAP_PPC_GET_PVINFO) &&
        !kvm_vm_ioctl(cs->kvm_state, KVM_PPC_GET_PVINFO, pvinfo)) {
        return 0;
    }

    return 1;
}

int kvmppc_get_hasidle(CPUPPCState *env)
{
    struct kvm_ppc_pvinfo pvinfo;

    if (!kvmppc_get_pvinfo(env, &pvinfo) &&
        (pvinfo.flags & KVM_PPC_PVINFO_FLAGS_EV_IDLE)) {
        return 1;
    }

    return 0;
}

1028
int kvmppc_get_hypercall(CPUPPCState *env, uint8_t *buf, int buf_len)
1029 1030 1031 1032
{
    uint32_t *hc = (uint32_t*)buf;
    struct kvm_ppc_pvinfo pvinfo;

1033
    if (!kvmppc_get_pvinfo(env, &pvinfo)) {
1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054
        memcpy(buf, pvinfo.hcall, buf_len);
        return 0;
    }

    /*
     * Fallback to always fail hypercalls:
     *
     *     li r3, -1
     *     nop
     *     nop
     *     nop
     */

    hc[0] = 0x3860ffff;
    hc[1] = 0x60000000;
    hc[2] = 0x60000000;
    hc[3] = 0x60000000;

    return 0;
}

1055
void kvmppc_set_papr(PowerPCCPU *cpu)
1056
{
1057 1058
    CPUPPCState *env = &cpu->env;
    CPUState *cs = CPU(cpu);
1059
    struct kvm_enable_cap cap = {};
1060 1061 1062
    int ret;

    cap.cap = KVM_CAP_PPC_PAPR;
1063
    ret = kvm_vcpu_ioctl(cs, KVM_ENABLE_CAP, &cap);
1064 1065

    if (ret) {
1066
        cpu_abort(env, "This KVM version does not support PAPR\n");
1067
    }
1068 1069
}

1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085
void kvmppc_set_mpic_proxy(PowerPCCPU *cpu, int mpic_proxy)
{
    CPUPPCState *env = &cpu->env;
    CPUState *cs = CPU(cpu);
    struct kvm_enable_cap cap = {};
    int ret;

    cap.cap = KVM_CAP_PPC_EPR;
    cap.args[0] = mpic_proxy;
    ret = kvm_vcpu_ioctl(cs, KVM_ENABLE_CAP, &cap);

    if (ret && mpic_proxy) {
        cpu_abort(env, "This KVM version does not support EPR\n");
    }
}

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int kvmppc_smt_threads(void)
{
    return cap_ppc_smt ? cap_ppc_smt : 1;
}

1091
#ifdef TARGET_PPC64
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off_t kvmppc_alloc_rma(const char *name, MemoryRegion *sysmem)
{
    void *rma;
    off_t size;
    int fd;
    struct kvm_allocate_rma ret;
    MemoryRegion *rma_region;

    /* If cap_ppc_rma == 0, contiguous RMA allocation is not supported
     * if cap_ppc_rma == 1, contiguous RMA allocation is supported, but
     *                      not necessary on this hardware
     * if cap_ppc_rma == 2, contiguous RMA allocation is needed on this hardware
     *
     * FIXME: We should allow the user to force contiguous RMA
     * allocation in the cap_ppc_rma==1 case.
     */
    if (cap_ppc_rma < 2) {
        return 0;
    }

    fd = kvm_vm_ioctl(kvm_state, KVM_ALLOCATE_RMA, &ret);
    if (fd < 0) {
        fprintf(stderr, "KVM: Error on KVM_ALLOCATE_RMA: %s\n",
                strerror(errno));
        return -1;
    }

    size = MIN(ret.rma_size, 256ul << 20);

    rma = mmap(NULL, size, PROT_READ|PROT_WRITE, MAP_SHARED, fd, 0);
    if (rma == MAP_FAILED) {
        fprintf(stderr, "KVM: Error mapping RMA: %s\n", strerror(errno));
        return -1;
    };

    rma_region = g_new(MemoryRegion, 1);
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    memory_region_init_ram_ptr(rma_region, name, size, rma);
    vmstate_register_ram_global(rma_region);
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    memory_region_add_subregion(sysmem, 0, rma_region);

    return size;
}

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uint64_t kvmppc_rma_size(uint64_t current_size, unsigned int hash_shift)
{
    if (cap_ppc_rma >= 2) {
        return current_size;
    }
    return MIN(current_size,
               getrampagesize() << (hash_shift - 7));
}
#endif

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void *kvmppc_create_spapr_tce(uint32_t liobn, uint32_t window_size, int *pfd)
{
    struct kvm_create_spapr_tce args = {
        .liobn = liobn,
        .window_size = window_size,
    };
    long len;
    int fd;
    void *table;

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    /* Must set fd to -1 so we don't try to munmap when called for
     * destroying the table, which the upper layers -will- do
     */
    *pfd = -1;
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    if (!cap_spapr_tce) {
        return NULL;
    }

    fd = kvm_vm_ioctl(kvm_state, KVM_CREATE_SPAPR_TCE, &args);
    if (fd < 0) {
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        fprintf(stderr, "KVM: Failed to create TCE table for liobn 0x%x\n",
                liobn);
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        return NULL;
    }

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    len = (window_size / SPAPR_TCE_PAGE_SIZE) * sizeof(sPAPRTCE);
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    /* FIXME: round this up to page size */

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    table = mmap(NULL, len, PROT_READ|PROT_WRITE, MAP_SHARED, fd, 0);
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    if (table == MAP_FAILED) {
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        fprintf(stderr, "KVM: Failed to map TCE table for liobn 0x%x\n",
                liobn);
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        close(fd);
        return NULL;
    }

    *pfd = fd;
    return table;
}

int kvmppc_remove_spapr_tce(void *table, int fd, uint32_t window_size)
{
    long len;

    if (fd < 0) {
        return -1;
    }

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    len = (window_size / SPAPR_TCE_PAGE_SIZE)*sizeof(sPAPRTCE);
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    if ((munmap(table, len) < 0) ||
        (close(fd) < 0)) {
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        fprintf(stderr, "KVM: Unexpected error removing TCE table: %s",
                strerror(errno));
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        /* Leak the table */
    }

    return 0;
}

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int kvmppc_reset_htab(int shift_hint)
{
    uint32_t shift = shift_hint;

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    if (!kvm_enabled()) {
        /* Full emulation, tell caller to allocate htab itself */
        return 0;
    }
    if (kvm_check_extension(kvm_state, KVM_CAP_PPC_ALLOC_HTAB)) {
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        int ret;
        ret = kvm_vm_ioctl(kvm_state, KVM_PPC_ALLOCATE_HTAB, &shift);
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        if (ret == -ENOTTY) {
            /* At least some versions of PR KVM advertise the
             * capability, but don't implement the ioctl().  Oops.
             * Return 0 so that we allocate the htab in qemu, as is
             * correct for PR. */
            return 0;
        } else if (ret < 0) {
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            return ret;
        }
        return shift;
    }

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    /* We have a kernel that predates the htab reset calls.  For PR
     * KVM, we need to allocate the htab ourselves, for an HV KVM of
     * this era, it has allocated a 16MB fixed size hash table
     * already.  Kernels of this era have the GET_PVINFO capability
     * only on PR, so we use this hack to determine the right
     * answer */
    if (kvm_check_extension(kvm_state, KVM_CAP_PPC_GET_PVINFO)) {
        /* PR - tell caller to allocate htab */
        return 0;
    } else {
        /* HV - assume 16MB kernel allocated htab */
        return 24;
    }
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}

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static inline uint32_t mfpvr(void)
{
    uint32_t pvr;

    asm ("mfpvr %0"
         : "=r"(pvr));
    return pvr;
}

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static void alter_insns(uint64_t *word, uint64_t flags, bool on)
{
    if (on) {
        *word |= flags;
    } else {
        *word &= ~flags;
    }
}

1260
static void kvmppc_host_cpu_initfn(Object *obj)
1261
{
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    PowerPCCPUClass *pcc = POWERPC_CPU_GET_CLASS(obj);

1264
    assert(kvm_enabled());
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    if (pcc->info->pvr != mfpvr()) {
        fprintf(stderr, "Your host CPU is unsupported.\n"
                "Please choose a supported model instead, see -cpu ?.\n");
        exit(1);
    }
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}

static void kvmppc_host_cpu_class_init(ObjectClass *oc, void *data)
{
    PowerPCCPUClass *pcc = POWERPC_CPU_CLASS(oc);
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    uint32_t host_pvr = mfpvr();
1277
    PowerPCCPUClass *pvr_pcc;
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    ppc_def_t *spec;
    uint32_t vmx = kvmppc_get_vmx();
    uint32_t dfp = kvmppc_get_dfp();
1281

1282
    spec = g_malloc0(sizeof(*spec));
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    pvr_pcc = ppc_cpu_class_by_pvr(host_pvr);
    if (pvr_pcc != NULL) {
        memcpy(spec, pvr_pcc->info, sizeof(*spec));
    }
    pcc->info = spec;
    /* Override the display name for -cpu ? and QMP */
    pcc->info->name = "host";
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    /* Now fix up the spec with information we can query from the host */

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    if (vmx != -1) {
        /* Only override when we know what the host supports */
        alter_insns(&spec->insns_flags, PPC_ALTIVEC, vmx > 0);
        alter_insns(&spec->insns_flags2, PPC2_VSX, vmx > 1);
    }
    if (dfp != -1) {
        /* Only override when we know what the host supports */
        alter_insns(&spec->insns_flags2, PPC2_DFP, dfp);
    }
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}

1305
int kvmppc_fixup_cpu(PowerPCCPU *cpu)
1306
{
1307
    CPUState *cs = CPU(cpu);
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    int smt;

    /* Adjust cpu index for SMT */
    smt = kvmppc_smt_threads();
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    cs->cpu_index = (cs->cpu_index / smp_threads) * smt
        + (cs->cpu_index % smp_threads);
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    return 0;
}


A
Andreas Färber 已提交
1319
bool kvm_arch_stop_on_emulation_error(CPUState *cpu)
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{
    return true;
}
1323

A
Andreas Färber 已提交
1324
int kvm_arch_on_sigbus_vcpu(CPUState *cpu, int code, void *addr)
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{
    return 1;
}

int kvm_arch_on_sigbus(int code, void *addr)
{
    return 1;
}
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static const TypeInfo kvm_host_cpu_type_info = {
    .name = TYPE_HOST_POWERPC_CPU,
    .parent = TYPE_POWERPC_CPU,
    .instance_init = kvmppc_host_cpu_initfn,
    .class_init = kvmppc_host_cpu_class_init,
};

static void kvm_ppc_register_types(void)
{
    type_register_static(&kvm_host_cpu_type_info);
}

type_init(kvm_ppc_register_types)