kvm.c 61.2 KB
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/*
 * QEMU S390x KVM implementation
 *
 * Copyright (c) 2009 Alexander Graf <agraf@suse.de>
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 * Copyright IBM Corp. 2012
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 *
 * This library is free software; you can redistribute it and/or
 * modify it under the terms of the GNU Lesser General Public
 * License as published by the Free Software Foundation; either
 * version 2 of the License, or (at your option) any later version.
 *
 * This library is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * Lesser General Public License for more details.
 *
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 * Contributions after 2012-10-29 are licensed under the terms of the
 * GNU GPL, version 2 or (at your option) any later version.
 *
 * You should have received a copy of the GNU (Lesser) General Public
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 * License along with this library; if not, see <http://www.gnu.org/licenses/>.
 */

#include <sys/types.h>
#include <sys/ioctl.h>
#include <sys/mman.h>

#include <linux/kvm.h>
#include <asm/ptrace.h>

#include "qemu-common.h"
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#include "qemu/error-report.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 "hw/hw.h"
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#include "cpu.h"
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#include "sysemu/device_tree.h"
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#include "qapi/qmp/qjson.h"
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#include "exec/gdbstub.h"
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#include "exec/address-spaces.h"
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#include "trace.h"
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#include "qapi-event.h"
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#include "hw/s390x/s390-pci-inst.h"
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#include "hw/s390x/s390-pci-bus.h"
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#include "hw/s390x/ipl.h"
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#include "hw/s390x/ebcdic.h"
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#include "exec/memattrs.h"
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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 kvm_vm_check_mem_attr(s, attr) \
    kvm_vm_check_attr(s, KVM_S390_VM_MEM_CTRL, attr)

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#define IPA0_DIAG                       0x8300
#define IPA0_SIGP                       0xae00
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#define IPA0_B2                         0xb200
#define IPA0_B9                         0xb900
#define IPA0_EB                         0xeb00
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#define IPA0_E3                         0xe300
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#define PRIV_B2_SCLP_CALL               0x20
#define PRIV_B2_CSCH                    0x30
#define PRIV_B2_HSCH                    0x31
#define PRIV_B2_MSCH                    0x32
#define PRIV_B2_SSCH                    0x33
#define PRIV_B2_STSCH                   0x34
#define PRIV_B2_TSCH                    0x35
#define PRIV_B2_TPI                     0x36
#define PRIV_B2_SAL                     0x37
#define PRIV_B2_RSCH                    0x38
#define PRIV_B2_STCRW                   0x39
#define PRIV_B2_STCPS                   0x3a
#define PRIV_B2_RCHP                    0x3b
#define PRIV_B2_SCHM                    0x3c
#define PRIV_B2_CHSC                    0x5f
#define PRIV_B2_SIGA                    0x74
#define PRIV_B2_XSCH                    0x76

#define PRIV_EB_SQBS                    0x8a
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#define PRIV_EB_PCISTB                  0xd0
#define PRIV_EB_SIC                     0xd1
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#define PRIV_B9_EQBS                    0x9c
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#define PRIV_B9_CLP                     0xa0
#define PRIV_B9_PCISTG                  0xd0
#define PRIV_B9_PCILG                   0xd2
#define PRIV_B9_RPCIT                   0xd3

#define PRIV_E3_MPCIFC                  0xd0
#define PRIV_E3_STPCIFC                 0xd4
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#define DIAG_TIMEREVENT                 0x288
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#define DIAG_IPL                        0x308
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#define DIAG_KVM_HYPERCALL              0x500
#define DIAG_KVM_BREAKPOINT             0x501

#define ICPT_INSTRUCTION                0x04
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#define ICPT_PROGRAM                    0x08
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#define ICPT_EXT_INT                    0x14
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#define ICPT_WAITPSW                    0x1c
#define ICPT_SOFT_INTERCEPT             0x24
#define ICPT_CPU_STOP                   0x28
#define ICPT_IO                         0x40

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#define NR_LOCAL_IRQS 32
/*
 * Needs to be big enough to contain max_cpus emergency signals
 * and in addition NR_LOCAL_IRQS interrupts
 */
#define VCPU_IRQ_BUF_SIZE (sizeof(struct kvm_s390_irq) * \
                           (max_cpus + NR_LOCAL_IRQS))

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static CPUWatchpoint hw_watchpoint;
/*
 * We don't use a list because this structure is also used to transmit the
 * hardware breakpoints to the kernel.
 */
static struct kvm_hw_breakpoint *hw_breakpoints;
static int nb_hw_breakpoints;

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const KVMCapabilityInfo kvm_arch_required_capabilities[] = {
    KVM_CAP_LAST_INFO
};

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static int cap_sync_regs;
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static int cap_async_pf;
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static int cap_mem_op;
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static int cap_s390_irq;
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static void *legacy_s390_alloc(size_t size, uint64_t *align);
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static int kvm_s390_query_mem_limit(KVMState *s, uint64_t *memory_limit)
{
    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_MEM_CTRL,
        .attr = KVM_S390_VM_MEM_LIMIT_SIZE,
        .addr = (uint64_t) memory_limit,
    };

    return kvm_vm_ioctl(s, KVM_GET_DEVICE_ATTR, &attr);
}

int kvm_s390_set_mem_limit(KVMState *s, uint64_t new_limit, uint64_t *hw_limit)
{
    int rc;

    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_MEM_CTRL,
        .attr = KVM_S390_VM_MEM_LIMIT_SIZE,
        .addr = (uint64_t) &new_limit,
    };

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    if (!kvm_vm_check_mem_attr(s, KVM_S390_VM_MEM_LIMIT_SIZE)) {
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        return 0;
    }

    rc = kvm_s390_query_mem_limit(s, hw_limit);
    if (rc) {
        return rc;
    } else if (*hw_limit < new_limit) {
        return -E2BIG;
    }

    return kvm_vm_ioctl(s, KVM_SET_DEVICE_ATTR, &attr);
}

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void kvm_s390_clear_cmma_callback(void *opaque)
{
    int rc;
    KVMState *s = opaque;
    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_MEM_CTRL,
        .attr = KVM_S390_VM_MEM_CLR_CMMA,
    };

    rc = kvm_vm_ioctl(s, KVM_SET_DEVICE_ATTR, &attr);
    trace_kvm_clear_cmma(rc);
}

static void kvm_s390_enable_cmma(KVMState *s)
{
    int rc;
    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_MEM_CTRL,
        .attr = KVM_S390_VM_MEM_ENABLE_CMMA,
    };

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    if (!kvm_vm_check_mem_attr(s, KVM_S390_VM_MEM_ENABLE_CMMA) ||
        !kvm_vm_check_mem_attr(s, KVM_S390_VM_MEM_CLR_CMMA)) {
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        return;
    }

    rc = kvm_vm_ioctl(s, KVM_SET_DEVICE_ATTR, &attr);
    if (!rc) {
        qemu_register_reset(kvm_s390_clear_cmma_callback, s);
    }
    trace_kvm_enable_cmma(rc);
}

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static void kvm_s390_set_attr(uint64_t attr)
{
    struct kvm_device_attr attribute = {
        .group = KVM_S390_VM_CRYPTO,
        .attr  = attr,
    };

    int ret = kvm_vm_ioctl(kvm_state, KVM_SET_DEVICE_ATTR, &attribute);

    if (ret) {
        error_report("Failed to set crypto device attribute %lu: %s",
                     attr, strerror(-ret));
    }
}

static void kvm_s390_init_aes_kw(void)
{
    uint64_t attr = KVM_S390_VM_CRYPTO_DISABLE_AES_KW;

    if (object_property_get_bool(OBJECT(qdev_get_machine()), "aes-key-wrap",
                                 NULL)) {
            attr = KVM_S390_VM_CRYPTO_ENABLE_AES_KW;
    }

    if (kvm_vm_check_attr(kvm_state, KVM_S390_VM_CRYPTO, attr)) {
            kvm_s390_set_attr(attr);
    }
}

static void kvm_s390_init_dea_kw(void)
{
    uint64_t attr = KVM_S390_VM_CRYPTO_DISABLE_DEA_KW;

    if (object_property_get_bool(OBJECT(qdev_get_machine()), "dea-key-wrap",
                                 NULL)) {
            attr = KVM_S390_VM_CRYPTO_ENABLE_DEA_KW;
    }

    if (kvm_vm_check_attr(kvm_state, KVM_S390_VM_CRYPTO, attr)) {
            kvm_s390_set_attr(attr);
    }
}

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void kvm_s390_crypto_reset(void)
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{
    kvm_s390_init_aes_kw();
    kvm_s390_init_dea_kw();
}

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int kvm_arch_init(MachineState *ms, KVMState *s)
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{
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    cap_sync_regs = kvm_check_extension(s, KVM_CAP_SYNC_REGS);
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    cap_async_pf = kvm_check_extension(s, KVM_CAP_ASYNC_PF);
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    cap_mem_op = kvm_check_extension(s, KVM_CAP_S390_MEM_OP);
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    cap_s390_irq = kvm_check_extension(s, KVM_CAP_S390_INJECT_IRQ);
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    kvm_s390_enable_cmma(s);
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    if (!kvm_check_extension(s, KVM_CAP_S390_GMAP)
        || !kvm_check_extension(s, KVM_CAP_S390_COW)) {
        phys_mem_set_alloc(legacy_s390_alloc);
    }
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    kvm_vm_enable_cap(s, KVM_CAP_S390_USER_SIGP, 0);
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    kvm_vm_enable_cap(s, KVM_CAP_S390_VECTOR_REGISTERS, 0);
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    kvm_vm_enable_cap(s, KVM_CAP_S390_USER_STSI, 0);
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    return 0;
}

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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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    S390CPU *cpu = S390_CPU(cs);
    kvm_s390_set_cpu_state(cpu, cpu->env.cpu_state);
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    cpu->irqstate = g_malloc0(VCPU_IRQ_BUF_SIZE);
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    return 0;
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}

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void kvm_s390_reset_vcpu(S390CPU *cpu)
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{
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    CPUState *cs = CPU(cpu);

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    /* The initial reset call is needed here to reset in-kernel
     * vcpu data that we can't access directly from QEMU
     * (i.e. with older kernels which don't support sync_regs/ONE_REG).
     * Before this ioctl cpu_synchronize_state() is called in common kvm
     * code (kvm-all) */
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    if (kvm_vcpu_ioctl(cs, KVM_S390_INITIAL_RESET, NULL)) {
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        error_report("Initial CPU reset failed on CPU %i", cs->cpu_index);
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    }
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}

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static int can_sync_regs(CPUState *cs, int regs)
{
    return cap_sync_regs && (cs->kvm_run->kvm_valid_regs & regs) == regs;
}

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int kvm_arch_put_registers(CPUState *cs, int level)
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{
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    S390CPU *cpu = S390_CPU(cs);
    CPUS390XState *env = &cpu->env;
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    struct kvm_sregs sregs;
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    struct kvm_regs regs;
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    struct kvm_fpu fpu = {};
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    int r;
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    int i;

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    /* always save the PSW  and the GPRS*/
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    cs->kvm_run->psw_addr = env->psw.addr;
    cs->kvm_run->psw_mask = env->psw.mask;
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    if (can_sync_regs(cs, KVM_SYNC_GPRS)) {
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        for (i = 0; i < 16; i++) {
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            cs->kvm_run->s.regs.gprs[i] = env->regs[i];
            cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_GPRS;
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        }
    } else {
        for (i = 0; i < 16; i++) {
            regs.gprs[i] = env->regs[i];
        }
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        r = kvm_vcpu_ioctl(cs, KVM_SET_REGS, &regs);
        if (r < 0) {
            return r;
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        }
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    }

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    if (can_sync_regs(cs, KVM_SYNC_VRS)) {
        for (i = 0; i < 32; i++) {
            cs->kvm_run->s.regs.vrs[i][0] = env->vregs[i][0].ll;
            cs->kvm_run->s.regs.vrs[i][1] = env->vregs[i][1].ll;
        }
        cs->kvm_run->s.regs.fpc = env->fpc;
        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_VRS;
    } else {
        /* Floating point */
        for (i = 0; i < 16; i++) {
            fpu.fprs[i] = get_freg(env, i)->ll;
        }
        fpu.fpc = env->fpc;
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        r = kvm_vcpu_ioctl(cs, KVM_SET_FPU, &fpu);
        if (r < 0) {
            return r;
        }
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    }

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    /* Do we need to save more than that? */
    if (level == KVM_PUT_RUNTIME_STATE) {
        return 0;
    }
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    if (can_sync_regs(cs, KVM_SYNC_ARCH0)) {
        cs->kvm_run->s.regs.cputm = env->cputm;
        cs->kvm_run->s.regs.ckc = env->ckc;
        cs->kvm_run->s.regs.todpr = env->todpr;
        cs->kvm_run->s.regs.gbea = env->gbea;
        cs->kvm_run->s.regs.pp = env->pp;
        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_ARCH0;
    } else {
        /*
         * These ONE_REGS are not protected by a capability. As they are only
         * necessary for migration we just trace a possible error, but don't
         * return with an error return code.
         */
        kvm_set_one_reg(cs, KVM_REG_S390_CPU_TIMER, &env->cputm);
        kvm_set_one_reg(cs, KVM_REG_S390_CLOCK_COMP, &env->ckc);
        kvm_set_one_reg(cs, KVM_REG_S390_TODPR, &env->todpr);
        kvm_set_one_reg(cs, KVM_REG_S390_GBEA, &env->gbea);
        kvm_set_one_reg(cs, KVM_REG_S390_PP, &env->pp);
    }

    /* pfault parameters */
    if (can_sync_regs(cs, KVM_SYNC_PFAULT)) {
        cs->kvm_run->s.regs.pft = env->pfault_token;
        cs->kvm_run->s.regs.pfs = env->pfault_select;
        cs->kvm_run->s.regs.pfc = env->pfault_compare;
        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_PFAULT;
    } else if (cap_async_pf) {
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        r = kvm_set_one_reg(cs, KVM_REG_S390_PFTOKEN, &env->pfault_token);
        if (r < 0) {
            return r;
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        }
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        r = kvm_set_one_reg(cs, KVM_REG_S390_PFCOMPARE, &env->pfault_compare);
        if (r < 0) {
            return r;
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        }
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        r = kvm_set_one_reg(cs, KVM_REG_S390_PFSELECT, &env->pfault_select);
        if (r < 0) {
            return r;
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        }
    }

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    /* access registers and control registers*/
    if (can_sync_regs(cs, KVM_SYNC_ACRS | KVM_SYNC_CRS)) {
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        for (i = 0; i < 16; i++) {
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            cs->kvm_run->s.regs.acrs[i] = env->aregs[i];
            cs->kvm_run->s.regs.crs[i] = env->cregs[i];
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        }
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        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_ACRS;
        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_CRS;
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    } else {
        for (i = 0; i < 16; i++) {
            sregs.acrs[i] = env->aregs[i];
            sregs.crs[i] = env->cregs[i];
        }
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        r = kvm_vcpu_ioctl(cs, KVM_SET_SREGS, &sregs);
        if (r < 0) {
            return r;
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        }
    }
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    /* Finally the prefix */
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    if (can_sync_regs(cs, KVM_SYNC_PREFIX)) {
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        cs->kvm_run->s.regs.prefix = env->psa;
        cs->kvm_run->kvm_dirty_regs |= KVM_SYNC_PREFIX;
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    } else {
        /* prefix is only supported via sync regs */
    }
    return 0;
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}

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int kvm_arch_get_registers(CPUState *cs)
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{
    S390CPU *cpu = S390_CPU(cs);
    CPUS390XState *env = &cpu->env;
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    struct kvm_sregs sregs;
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    struct kvm_regs regs;
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    struct kvm_fpu fpu;
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    int i, r;
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    /* get the PSW */
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    env->psw.addr = cs->kvm_run->psw_addr;
    env->psw.mask = cs->kvm_run->psw_mask;
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    /* the GPRS */
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    if (can_sync_regs(cs, KVM_SYNC_GPRS)) {
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        for (i = 0; i < 16; i++) {
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            env->regs[i] = cs->kvm_run->s.regs.gprs[i];
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        }
    } else {
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        r = kvm_vcpu_ioctl(cs, KVM_GET_REGS, &regs);
        if (r < 0) {
            return r;
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        }
         for (i = 0; i < 16; i++) {
            env->regs[i] = regs.gprs[i];
        }
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    }

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    /* The ACRS and CRS */
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    if (can_sync_regs(cs, KVM_SYNC_ACRS | KVM_SYNC_CRS)) {
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        for (i = 0; i < 16; i++) {
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            env->aregs[i] = cs->kvm_run->s.regs.acrs[i];
            env->cregs[i] = cs->kvm_run->s.regs.crs[i];
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        }
    } else {
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        r = kvm_vcpu_ioctl(cs, KVM_GET_SREGS, &sregs);
        if (r < 0) {
            return r;
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        }
         for (i = 0; i < 16; i++) {
            env->aregs[i] = sregs.acrs[i];
            env->cregs[i] = sregs.crs[i];
        }
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    }

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    /* Floating point and vector registers */
    if (can_sync_regs(cs, KVM_SYNC_VRS)) {
        for (i = 0; i < 32; i++) {
            env->vregs[i][0].ll = cs->kvm_run->s.regs.vrs[i][0];
            env->vregs[i][1].ll = cs->kvm_run->s.regs.vrs[i][1];
        }
        env->fpc = cs->kvm_run->s.regs.fpc;
    } else {
        r = kvm_vcpu_ioctl(cs, KVM_GET_FPU, &fpu);
        if (r < 0) {
            return r;
        }
        for (i = 0; i < 16; i++) {
            get_freg(env, i)->ll = fpu.fprs[i];
        }
        env->fpc = fpu.fpc;
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    }

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    /* The prefix */
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    if (can_sync_regs(cs, KVM_SYNC_PREFIX)) {
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        env->psa = cs->kvm_run->s.regs.prefix;
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    }
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    if (can_sync_regs(cs, KVM_SYNC_ARCH0)) {
        env->cputm = cs->kvm_run->s.regs.cputm;
        env->ckc = cs->kvm_run->s.regs.ckc;
        env->todpr = cs->kvm_run->s.regs.todpr;
        env->gbea = cs->kvm_run->s.regs.gbea;
        env->pp = cs->kvm_run->s.regs.pp;
    } else {
        /*
         * These ONE_REGS are not protected by a capability. As they are only
         * necessary for migration we just trace a possible error, but don't
         * return with an error return code.
         */
        kvm_get_one_reg(cs, KVM_REG_S390_CPU_TIMER, &env->cputm);
        kvm_get_one_reg(cs, KVM_REG_S390_CLOCK_COMP, &env->ckc);
        kvm_get_one_reg(cs, KVM_REG_S390_TODPR, &env->todpr);
        kvm_get_one_reg(cs, KVM_REG_S390_GBEA, &env->gbea);
        kvm_get_one_reg(cs, KVM_REG_S390_PP, &env->pp);
    }

    /* pfault parameters */
    if (can_sync_regs(cs, KVM_SYNC_PFAULT)) {
        env->pfault_token = cs->kvm_run->s.regs.pft;
        env->pfault_select = cs->kvm_run->s.regs.pfs;
        env->pfault_compare = cs->kvm_run->s.regs.pfc;
    } else if (cap_async_pf) {
528
        r = kvm_get_one_reg(cs, KVM_REG_S390_PFTOKEN, &env->pfault_token);
529 530 531
        if (r < 0) {
            return r;
        }
532
        r = kvm_get_one_reg(cs, KVM_REG_S390_PFCOMPARE, &env->pfault_compare);
533 534 535
        if (r < 0) {
            return r;
        }
536
        r = kvm_get_one_reg(cs, KVM_REG_S390_PFSELECT, &env->pfault_select);
537 538 539 540 541
        if (r < 0) {
            return r;
        }
    }

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    return 0;
}

545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583
int kvm_s390_get_clock(uint8_t *tod_high, uint64_t *tod_low)
{
    int r;
    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_TOD,
        .attr = KVM_S390_VM_TOD_LOW,
        .addr = (uint64_t)tod_low,
    };

    r = kvm_vm_ioctl(kvm_state, KVM_GET_DEVICE_ATTR, &attr);
    if (r) {
        return r;
    }

    attr.attr = KVM_S390_VM_TOD_HIGH;
    attr.addr = (uint64_t)tod_high;
    return kvm_vm_ioctl(kvm_state, KVM_GET_DEVICE_ATTR, &attr);
}

int kvm_s390_set_clock(uint8_t *tod_high, uint64_t *tod_low)
{
    int r;

    struct kvm_device_attr attr = {
        .group = KVM_S390_VM_TOD,
        .attr = KVM_S390_VM_TOD_LOW,
        .addr = (uint64_t)tod_low,
    };

    r = kvm_vm_ioctl(kvm_state, KVM_SET_DEVICE_ATTR, &attr);
    if (r) {
        return r;
    }

    attr.attr = KVM_S390_VM_TOD_HIGH;
    attr.addr = (uint64_t)tod_high;
    return kvm_vm_ioctl(kvm_state, KVM_SET_DEVICE_ATTR, &attr);
}

584 585 586
/**
 * kvm_s390_mem_op:
 * @addr:      the logical start address in guest memory
587
 * @ar:        the access register number
588
 * @hostbuf:   buffer in host memory. NULL = do only checks w/o copying
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 * @len:       length that should be transferred
590
 * @is_write:  true = write, false = read
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 * Returns:    0 on success, non-zero if an exception or error occurred
592 593 594 595
 *
 * Use KVM ioctl to read/write from/to guest memory. An access exception
 * is injected into the vCPU in case of translation errors.
 */
596 597
int kvm_s390_mem_op(S390CPU *cpu, vaddr addr, uint8_t ar, void *hostbuf,
                    int len, bool is_write)
598 599 600 601 602 603 604 605
{
    struct kvm_s390_mem_op mem_op = {
        .gaddr = addr,
        .flags = KVM_S390_MEMOP_F_INJECT_EXCEPTION,
        .size = len,
        .op = is_write ? KVM_S390_MEMOP_LOGICAL_WRITE
                       : KVM_S390_MEMOP_LOGICAL_READ,
        .buf = (uint64_t)hostbuf,
606
        .ar = ar,
607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623
    };
    int ret;

    if (!cap_mem_op) {
        return -ENOSYS;
    }
    if (!hostbuf) {
        mem_op.flags |= KVM_S390_MEMOP_F_CHECK_ONLY;
    }

    ret = kvm_vcpu_ioctl(CPU(cpu), KVM_S390_MEM_OP, &mem_op);
    if (ret < 0) {
        error_printf("KVM_S390_MEM_OP failed: %s\n", strerror(-ret));
    }
    return ret;
}

624 625 626 627 628 629 630 631 632 633
/*
 * Legacy layout for s390:
 * Older S390 KVM requires the topmost vma of the RAM to be
 * smaller than an system defined value, which is at least 256GB.
 * Larger systems have larger values. We put the guest between
 * the end of data segment (system break) and this value. We
 * use 32GB as a base to have enough room for the system break
 * to grow. We also have to use MAP parameters that avoid
 * read-only mapping of guest pages.
 */
634
static void *legacy_s390_alloc(size_t size, uint64_t *align)
635 636 637 638 639 640
{
    void *mem;

    mem = mmap((void *) 0x800000000ULL, size,
               PROT_EXEC|PROT_READ|PROT_WRITE,
               MAP_SHARED | MAP_ANONYMOUS | MAP_FIXED, -1, 0);
641
    return mem == MAP_FAILED ? NULL : mem;
642 643
}

644 645 646
/* DIAG 501 is used for sw breakpoints */
static const uint8_t diag_501[] = {0x83, 0x24, 0x05, 0x01};

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int kvm_arch_insert_sw_breakpoint(CPUState *cs, struct kvm_sw_breakpoint *bp)
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{

650 651 652 653
    if (cpu_memory_rw_debug(cs, bp->pc, (uint8_t *)&bp->saved_insn,
                            sizeof(diag_501), 0) ||
        cpu_memory_rw_debug(cs, bp->pc, (uint8_t *)diag_501,
                            sizeof(diag_501), 1)) {
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        return -EINVAL;
    }
    return 0;
}

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int kvm_arch_remove_sw_breakpoint(CPUState *cs, struct kvm_sw_breakpoint *bp)
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{
661
    uint8_t t[sizeof(diag_501)];
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663
    if (cpu_memory_rw_debug(cs, bp->pc, t, sizeof(diag_501), 0)) {
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        return -EINVAL;
665
    } else if (memcmp(t, diag_501, sizeof(diag_501))) {
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        return -EINVAL;
667 668
    } else if (cpu_memory_rw_debug(cs, bp->pc, (uint8_t *)&bp->saved_insn,
                                   sizeof(diag_501), 1)) {
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        return -EINVAL;
    }

    return 0;
}

675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721
static struct kvm_hw_breakpoint *find_hw_breakpoint(target_ulong addr,
                                                    int len, int type)
{
    int n;

    for (n = 0; n < nb_hw_breakpoints; n++) {
        if (hw_breakpoints[n].addr == addr && hw_breakpoints[n].type == type &&
            (hw_breakpoints[n].len == len || len == -1)) {
            return &hw_breakpoints[n];
        }
    }

    return NULL;
}

static int insert_hw_breakpoint(target_ulong addr, int len, int type)
{
    int size;

    if (find_hw_breakpoint(addr, len, type)) {
        return -EEXIST;
    }

    size = (nb_hw_breakpoints + 1) * sizeof(struct kvm_hw_breakpoint);

    if (!hw_breakpoints) {
        nb_hw_breakpoints = 0;
        hw_breakpoints = (struct kvm_hw_breakpoint *)g_try_malloc(size);
    } else {
        hw_breakpoints =
            (struct kvm_hw_breakpoint *)g_try_realloc(hw_breakpoints, size);
    }

    if (!hw_breakpoints) {
        nb_hw_breakpoints = 0;
        return -ENOMEM;
    }

    hw_breakpoints[nb_hw_breakpoints].addr = addr;
    hw_breakpoints[nb_hw_breakpoints].len = len;
    hw_breakpoints[nb_hw_breakpoints].type = type;

    nb_hw_breakpoints++;

    return 0;
}

722 723 724
int kvm_arch_insert_hw_breakpoint(target_ulong addr,
                                  target_ulong len, int type)
{
725 726 727 728 729 730 731 732 733 734 735 736 737 738
    switch (type) {
    case GDB_BREAKPOINT_HW:
        type = KVM_HW_BP;
        break;
    case GDB_WATCHPOINT_WRITE:
        if (len < 1) {
            return -EINVAL;
        }
        type = KVM_HW_WP_WRITE;
        break;
    default:
        return -ENOSYS;
    }
    return insert_hw_breakpoint(addr, len, type);
739 740 741 742 743
}

int kvm_arch_remove_hw_breakpoint(target_ulong addr,
                                  target_ulong len, int type)
{
744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768
    int size;
    struct kvm_hw_breakpoint *bp = find_hw_breakpoint(addr, len, type);

    if (bp == NULL) {
        return -ENOENT;
    }

    nb_hw_breakpoints--;
    if (nb_hw_breakpoints > 0) {
        /*
         * In order to trim the array, move the last element to the position to
         * be removed - if necessary.
         */
        if (bp != &hw_breakpoints[nb_hw_breakpoints]) {
            *bp = hw_breakpoints[nb_hw_breakpoints];
        }
        size = nb_hw_breakpoints * sizeof(struct kvm_hw_breakpoint);
        hw_breakpoints =
             (struct kvm_hw_breakpoint *)g_realloc(hw_breakpoints, size);
    } else {
        g_free(hw_breakpoints);
        hw_breakpoints = NULL;
    }

    return 0;
769 770 771 772
}

void kvm_arch_remove_all_hw_breakpoints(void)
{
773 774 775
    nb_hw_breakpoints = 0;
    g_free(hw_breakpoints);
    hw_breakpoints = NULL;
776 777 778 779
}

void kvm_arch_update_guest_debug(CPUState *cpu, struct kvm_guest_debug *dbg)
{
780 781 782 783 784 785 786 787 788 789 790 791 792 793 794
    int i;

    if (nb_hw_breakpoints > 0) {
        dbg->arch.nr_hw_bp = nb_hw_breakpoints;
        dbg->arch.hw_bp = hw_breakpoints;

        for (i = 0; i < nb_hw_breakpoints; ++i) {
            hw_breakpoints[i].phys_addr = s390_cpu_get_phys_addr_debug(cpu,
                                                       hw_breakpoints[i].addr);
        }
        dbg->control |= KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_HW_BP;
    } else {
        dbg->arch.nr_hw_bp = 0;
        dbg->arch.hw_bp = NULL;
    }
795 796
}

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

801
MemTxAttrs kvm_arch_post_run(CPUState *cs, struct kvm_run *run)
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{
803
    return MEMTXATTRS_UNSPECIFIED;
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}

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int kvm_arch_process_async_events(CPUState *cs)
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{
808
    return cs->halted;
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}

811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859
static int s390_kvm_irq_to_interrupt(struct kvm_s390_irq *irq,
                                     struct kvm_s390_interrupt *interrupt)
{
    int r = 0;

    interrupt->type = irq->type;
    switch (irq->type) {
    case KVM_S390_INT_VIRTIO:
        interrupt->parm = irq->u.ext.ext_params;
        /* fall through */
    case KVM_S390_INT_PFAULT_INIT:
    case KVM_S390_INT_PFAULT_DONE:
        interrupt->parm64 = irq->u.ext.ext_params2;
        break;
    case KVM_S390_PROGRAM_INT:
        interrupt->parm = irq->u.pgm.code;
        break;
    case KVM_S390_SIGP_SET_PREFIX:
        interrupt->parm = irq->u.prefix.address;
        break;
    case KVM_S390_INT_SERVICE:
        interrupt->parm = irq->u.ext.ext_params;
        break;
    case KVM_S390_MCHK:
        interrupt->parm = irq->u.mchk.cr14;
        interrupt->parm64 = irq->u.mchk.mcic;
        break;
    case KVM_S390_INT_EXTERNAL_CALL:
        interrupt->parm = irq->u.extcall.code;
        break;
    case KVM_S390_INT_EMERGENCY:
        interrupt->parm = irq->u.emerg.code;
        break;
    case KVM_S390_SIGP_STOP:
    case KVM_S390_RESTART:
        break; /* These types have no parameters */
    case KVM_S390_INT_IO_MIN...KVM_S390_INT_IO_MAX:
        interrupt->parm = irq->u.io.subchannel_id << 16;
        interrupt->parm |= irq->u.io.subchannel_nr;
        interrupt->parm64 = (uint64_t)irq->u.io.io_int_parm << 32;
        interrupt->parm64 |= irq->u.io.io_int_word;
        break;
    default:
        r = -EINVAL;
        break;
    }
    return r;
}

860
static void inject_vcpu_irq_legacy(CPUState *cs, struct kvm_s390_irq *irq)
861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877
{
    struct kvm_s390_interrupt kvmint = {};
    int r;

    r = s390_kvm_irq_to_interrupt(irq, &kvmint);
    if (r < 0) {
        fprintf(stderr, "%s called with bogus interrupt\n", __func__);
        exit(1);
    }

    r = kvm_vcpu_ioctl(cs, KVM_S390_INTERRUPT, &kvmint);
    if (r < 0) {
        fprintf(stderr, "KVM failed to inject interrupt\n");
        exit(1);
    }
}

878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894
void kvm_s390_vcpu_interrupt(S390CPU *cpu, struct kvm_s390_irq *irq)
{
    CPUState *cs = CPU(cpu);
    int r;

    if (cap_s390_irq) {
        r = kvm_vcpu_ioctl(cs, KVM_S390_IRQ, irq);
        if (!r) {
            return;
        }
        error_report("KVM failed to inject interrupt %llx", irq->type);
        exit(1);
    }

    inject_vcpu_irq_legacy(cs, irq);
}

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Cornelia Huck 已提交
895
static void __kvm_s390_floating_interrupt(struct kvm_s390_irq *irq)
896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912
{
    struct kvm_s390_interrupt kvmint = {};
    int r;

    r = s390_kvm_irq_to_interrupt(irq, &kvmint);
    if (r < 0) {
        fprintf(stderr, "%s called with bogus interrupt\n", __func__);
        exit(1);
    }

    r = kvm_vm_ioctl(kvm_state, KVM_S390_INTERRUPT, &kvmint);
    if (r < 0) {
        fprintf(stderr, "KVM failed to inject interrupt\n");
        exit(1);
    }
}

C
Cornelia Huck 已提交
913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929
void kvm_s390_floating_interrupt(struct kvm_s390_irq *irq)
{
    static bool use_flic = true;
    int r;

    if (use_flic) {
        r = kvm_s390_inject_flic(irq);
        if (r == -ENOSYS) {
            use_flic = false;
        }
        if (!r) {
            return;
        }
    }
    __kvm_s390_floating_interrupt(irq);
}

930
void kvm_s390_virtio_irq(int config_change, uint64_t token)
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Alexander Graf 已提交
931
{
932 933 934 935 936
    struct kvm_s390_irq irq = {
        .type = KVM_S390_INT_VIRTIO,
        .u.ext.ext_params = config_change,
        .u.ext.ext_params2 = token,
    };
A
Alexander Graf 已提交
937

938
    kvm_s390_floating_interrupt(&irq);
A
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939 940
}

941
void kvm_s390_service_interrupt(uint32_t parm)
A
Alexander Graf 已提交
942
{
943 944 945 946
    struct kvm_s390_irq irq = {
        .type = KVM_S390_INT_SERVICE,
        .u.ext.ext_params = parm,
    };
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Alexander Graf 已提交
947

948
    kvm_s390_floating_interrupt(&irq);
949 950
}

951
static void enter_pgmcheck(S390CPU *cpu, uint16_t code)
A
Alexander Graf 已提交
952
{
953 954 955 956 957 958
    struct kvm_s390_irq irq = {
        .type = KVM_S390_PROGRAM_INT,
        .u.pgm.code = code,
    };

    kvm_s390_vcpu_interrupt(cpu, &irq);
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959 960
}

961 962 963 964 965 966 967 968 969 970 971 972
void kvm_s390_access_exception(S390CPU *cpu, uint16_t code, uint64_t te_code)
{
    struct kvm_s390_irq irq = {
        .type = KVM_S390_PROGRAM_INT,
        .u.pgm.code = code,
        .u.pgm.trans_exc_code = te_code,
        .u.pgm.exc_access_id = te_code & 3,
    };

    kvm_s390_vcpu_interrupt(cpu, &irq);
}

973
static int kvm_sclp_service_call(S390CPU *cpu, struct kvm_run *run,
974
                                 uint16_t ipbh0)
A
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975
{
976
    CPUS390XState *env = &cpu->env;
977 978
    uint64_t sccb;
    uint32_t code;
A
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979 980
    int r = 0;

981
    cpu_synchronize_state(CPU(cpu));
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982 983 984
    sccb = env->regs[ipbh0 & 0xf];
    code = env->regs[(ipbh0 & 0xf0) >> 4];

985
    r = sclp_service_call(env, sccb, code);
986
    if (r < 0) {
987
        enter_pgmcheck(cpu, -r);
988 989
    } else {
        setcc(cpu, r);
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990
    }
A
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991

A
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992 993 994
    return 0;
}

995
static int handle_b2(S390CPU *cpu, struct kvm_run *run, uint8_t ipa1)
996 997
{
    CPUS390XState *env = &cpu->env;
998 999
    int rc = 0;
    uint16_t ipbh0 = (run->s390_sieic.ipb & 0xffff0000) >> 16;
1000

1001
    cpu_synchronize_state(CPU(cpu));
1002

1003
    switch (ipa1) {
1004
    case PRIV_B2_XSCH:
1005
        ioinst_handle_xsch(cpu, env->regs[1]);
1006
        break;
1007
    case PRIV_B2_CSCH:
1008
        ioinst_handle_csch(cpu, env->regs[1]);
1009
        break;
1010
    case PRIV_B2_HSCH:
1011
        ioinst_handle_hsch(cpu, env->regs[1]);
1012
        break;
1013
    case PRIV_B2_MSCH:
1014
        ioinst_handle_msch(cpu, env->regs[1], run->s390_sieic.ipb);
1015
        break;
1016
    case PRIV_B2_SSCH:
1017
        ioinst_handle_ssch(cpu, env->regs[1], run->s390_sieic.ipb);
1018
        break;
1019
    case PRIV_B2_STCRW:
1020
        ioinst_handle_stcrw(cpu, run->s390_sieic.ipb);
1021
        break;
1022
    case PRIV_B2_STSCH:
1023
        ioinst_handle_stsch(cpu, env->regs[1], run->s390_sieic.ipb);
1024
        break;
1025
    case PRIV_B2_TSCH:
1026 1027 1028
        /* We should only get tsch via KVM_EXIT_S390_TSCH. */
        fprintf(stderr, "Spurious tsch intercept\n");
        break;
1029
    case PRIV_B2_CHSC:
1030
        ioinst_handle_chsc(cpu, run->s390_sieic.ipb);
1031
        break;
1032
    case PRIV_B2_TPI:
1033 1034 1035
        /* This should have been handled by kvm already. */
        fprintf(stderr, "Spurious tpi intercept\n");
        break;
1036
    case PRIV_B2_SCHM:
1037 1038
        ioinst_handle_schm(cpu, env->regs[1], env->regs[2],
                           run->s390_sieic.ipb);
1039
        break;
1040
    case PRIV_B2_RSCH:
1041
        ioinst_handle_rsch(cpu, env->regs[1]);
1042
        break;
1043
    case PRIV_B2_RCHP:
1044
        ioinst_handle_rchp(cpu, env->regs[1]);
1045
        break;
1046
    case PRIV_B2_STCPS:
1047 1048
        /* We do not provide this instruction, it is suppressed. */
        break;
1049
    case PRIV_B2_SAL:
1050
        ioinst_handle_sal(cpu, env->regs[1]);
1051
        break;
1052
    case PRIV_B2_SIGA:
1053
        /* Not provided, set CC = 3 for subchannel not operational */
1054
        setcc(cpu, 3);
1055
        break;
1056 1057 1058
    case PRIV_B2_SCLP_CALL:
        rc = kvm_sclp_service_call(cpu, run, ipbh0);
        break;
1059
    default:
1060 1061 1062
        rc = -1;
        DPRINTF("KVM: unhandled PRIV: 0xb2%x\n", ipa1);
        break;
1063 1064
    }

1065
    return rc;
1066 1067
}

1068 1069
static uint64_t get_base_disp_rxy(S390CPU *cpu, struct kvm_run *run,
                                  uint8_t *ar)
1070 1071 1072 1073 1074 1075 1076 1077 1078 1079
{
    CPUS390XState *env = &cpu->env;
    uint32_t x2 = (run->s390_sieic.ipa & 0x000f);
    uint32_t base2 = run->s390_sieic.ipb >> 28;
    uint32_t disp2 = ((run->s390_sieic.ipb & 0x0fff0000) >> 16) +
                     ((run->s390_sieic.ipb & 0xff00) << 4);

    if (disp2 & 0x80000) {
        disp2 += 0xfff00000;
    }
1080 1081 1082
    if (ar) {
        *ar = base2;
    }
1083 1084 1085 1086 1087

    return (base2 ? env->regs[base2] : 0) +
           (x2 ? env->regs[x2] : 0) + (long)(int)disp2;
}

1088 1089
static uint64_t get_base_disp_rsy(S390CPU *cpu, struct kvm_run *run,
                                  uint8_t *ar)
1090 1091 1092 1093 1094 1095 1096 1097 1098
{
    CPUS390XState *env = &cpu->env;
    uint32_t base2 = run->s390_sieic.ipb >> 28;
    uint32_t disp2 = ((run->s390_sieic.ipb & 0x0fff0000) >> 16) +
                     ((run->s390_sieic.ipb & 0xff00) << 4);

    if (disp2 & 0x80000) {
        disp2 += 0xfff00000;
    }
1099 1100 1101
    if (ar) {
        *ar = base2;
    }
1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132

    return (base2 ? env->regs[base2] : 0) + (long)(int)disp2;
}

static int kvm_clp_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r2 = (run->s390_sieic.ipb & 0x000f0000) >> 16;

    return clp_service_call(cpu, r2);
}

static int kvm_pcilg_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipb & 0x00f00000) >> 20;
    uint8_t r2 = (run->s390_sieic.ipb & 0x000f0000) >> 16;

    return pcilg_service_call(cpu, r1, r2);
}

static int kvm_pcistg_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipb & 0x00f00000) >> 20;
    uint8_t r2 = (run->s390_sieic.ipb & 0x000f0000) >> 16;

    return pcistg_service_call(cpu, r1, r2);
}

static int kvm_stpcifc_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipa & 0x00f0) >> 4;
    uint64_t fiba;
1133
    uint8_t ar;
1134 1135

    cpu_synchronize_state(CPU(cpu));
1136
    fiba = get_base_disp_rxy(cpu, run, &ar);
1137

1138
    return stpcifc_service_call(cpu, r1, fiba, ar);
1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159
}

static int kvm_sic_service_call(S390CPU *cpu, struct kvm_run *run)
{
    /* NOOP */
    return 0;
}

static int kvm_rpcit_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipb & 0x00f00000) >> 20;
    uint8_t r2 = (run->s390_sieic.ipb & 0x000f0000) >> 16;

    return rpcit_service_call(cpu, r1, r2);
}

static int kvm_pcistb_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipa & 0x00f0) >> 4;
    uint8_t r3 = run->s390_sieic.ipa & 0x000f;
    uint64_t gaddr;
1160
    uint8_t ar;
1161 1162

    cpu_synchronize_state(CPU(cpu));
1163
    gaddr = get_base_disp_rsy(cpu, run, &ar);
1164

1165
    return pcistb_service_call(cpu, r1, r3, gaddr, ar);
1166 1167 1168 1169 1170 1171
}

static int kvm_mpcifc_service_call(S390CPU *cpu, struct kvm_run *run)
{
    uint8_t r1 = (run->s390_sieic.ipa & 0x00f0) >> 4;
    uint64_t fiba;
1172
    uint8_t ar;
1173 1174

    cpu_synchronize_state(CPU(cpu));
1175
    fiba = get_base_disp_rxy(cpu, run, &ar);
1176

1177
    return mpcifc_service_call(cpu, r1, fiba, ar);
1178 1179
}

1180
static int handle_b9(S390CPU *cpu, struct kvm_run *run, uint8_t ipa1)
A
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1181 1182 1183 1184
{
    int r = 0;

    switch (ipa1) {
1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196
    case PRIV_B9_CLP:
        r = kvm_clp_service_call(cpu, run);
        break;
    case PRIV_B9_PCISTG:
        r = kvm_pcistg_service_call(cpu, run);
        break;
    case PRIV_B9_PCILG:
        r = kvm_pcilg_service_call(cpu, run);
        break;
    case PRIV_B9_RPCIT:
        r = kvm_rpcit_service_call(cpu, run);
        break;
1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209
    case PRIV_B9_EQBS:
        /* just inject exception */
        r = -1;
        break;
    default:
        r = -1;
        DPRINTF("KVM: unhandled PRIV: 0xb9%x\n", ipa1);
        break;
    }

    return r;
}

1210
static int handle_eb(S390CPU *cpu, struct kvm_run *run, uint8_t ipbl)
1211 1212 1213
{
    int r = 0;

1214
    switch (ipbl) {
1215 1216 1217 1218 1219 1220
    case PRIV_EB_PCISTB:
        r = kvm_pcistb_service_call(cpu, run);
        break;
    case PRIV_EB_SIC:
        r = kvm_sic_service_call(cpu, run);
        break;
1221 1222 1223 1224 1225 1226
    case PRIV_EB_SQBS:
        /* just inject exception */
        r = -1;
        break;
    default:
        r = -1;
1227
        DPRINTF("KVM: unhandled PRIV: 0xeb%x\n", ipbl);
1228
        break;
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1229 1230 1231 1232 1233
    }

    return r;
}

1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253
static int handle_e3(S390CPU *cpu, struct kvm_run *run, uint8_t ipbl)
{
    int r = 0;

    switch (ipbl) {
    case PRIV_E3_MPCIFC:
        r = kvm_mpcifc_service_call(cpu, run);
        break;
    case PRIV_E3_STPCIFC:
        r = kvm_stpcifc_service_call(cpu, run);
        break;
    default:
        r = -1;
        DPRINTF("KVM: unhandled PRIV: 0xe3%x\n", ipbl);
        break;
    }

    return r;
}

1254
static int handle_hypercall(S390CPU *cpu, struct kvm_run *run)
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1255
{
1256
    CPUS390XState *env = &cpu->env;
1257
    int ret;
1258

1259
    cpu_synchronize_state(CPU(cpu));
1260 1261 1262 1263 1264
    ret = s390_virtio_hypercall(env);
    if (ret == -EINVAL) {
        enter_pgmcheck(cpu, PGM_SPECIFICATION);
        return 0;
    }
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1266
    return ret;
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}

1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282
static void kvm_handle_diag_288(S390CPU *cpu, struct kvm_run *run)
{
    uint64_t r1, r3;
    int rc;

    cpu_synchronize_state(CPU(cpu));
    r1 = (run->s390_sieic.ipa & 0x00f0) >> 4;
    r3 = run->s390_sieic.ipa & 0x000f;
    rc = handle_diag_288(&cpu->env, r1, r3);
    if (rc) {
        enter_pgmcheck(cpu, PGM_SPECIFICATION);
    }
}

1283 1284 1285 1286 1287
static void kvm_handle_diag_308(S390CPU *cpu, struct kvm_run *run)
{
    uint64_t r1, r3;

    cpu_synchronize_state(CPU(cpu));
1288
    r1 = (run->s390_sieic.ipa & 0x00f0) >> 4;
1289 1290 1291 1292
    r3 = run->s390_sieic.ipa & 0x000f;
    handle_diag_308(&cpu->env, r1, r3);
}

1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308
static int handle_sw_breakpoint(S390CPU *cpu, struct kvm_run *run)
{
    CPUS390XState *env = &cpu->env;
    unsigned long pc;

    cpu_synchronize_state(CPU(cpu));

    pc = env->psw.addr - 4;
    if (kvm_find_sw_breakpoint(CPU(cpu), pc)) {
        env->psw.addr = pc;
        return EXCP_DEBUG;
    }

    return -ENOENT;
}

C
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#define DIAG_KVM_CODE_MASK 0x000000000000ffff

static int handle_diag(S390CPU *cpu, struct kvm_run *run, uint32_t ipb)
A
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1312 1313
{
    int r = 0;
C
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1314 1315 1316 1317 1318 1319
    uint16_t func_code;

    /*
     * For any diagnose call we support, bits 48-63 of the resulting
     * address specify the function code; the remainder is ignored.
     */
1320
    func_code = decode_basedisp_rs(&cpu->env, ipb, NULL) & DIAG_KVM_CODE_MASK;
C
Cornelia Huck 已提交
1321
    switch (func_code) {
1322 1323 1324
    case DIAG_TIMEREVENT:
        kvm_handle_diag_288(cpu, run);
        break;
1325 1326 1327
    case DIAG_IPL:
        kvm_handle_diag_308(cpu, run);
        break;
1328 1329 1330 1331
    case DIAG_KVM_HYPERCALL:
        r = handle_hypercall(cpu, run);
        break;
    case DIAG_KVM_BREAKPOINT:
1332
        r = handle_sw_breakpoint(cpu, run);
1333 1334
        break;
    default:
C
Cornelia Huck 已提交
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        DPRINTF("KVM: unknown DIAG: 0x%x\n", func_code);
1336
        enter_pgmcheck(cpu, PGM_SPECIFICATION);
1337
        break;
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1338 1339 1340 1341 1342
    }

    return r;
}

1343 1344
typedef struct SigpInfo {
    S390CPU *cpu;
1345
    uint64_t param;
1346 1347 1348 1349
    int cc;
    uint64_t *status_reg;
} SigpInfo;

1350
static void set_sigp_status(SigpInfo *si, uint64_t status)
T
Thomas Huth 已提交
1351
{
1352 1353 1354 1355
    *si->status_reg &= 0xffffffff00000000ULL;
    *si->status_reg |= status;
    si->cc = SIGP_CC_STATUS_STORED;
}
1356

1357
static void sigp_start(void *arg)
T
Thomas Huth 已提交
1358
{
1359
    SigpInfo *si = arg;
1360

1361 1362 1363 1364 1365
    if (s390_cpu_get_state(si->cpu) != CPU_STATE_STOPPED) {
        si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
        return;
    }

1366 1367
    s390_cpu_set_state(CPU_STATE_OPERATING, si->cpu);
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
T
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1368 1369
}

1370
static void sigp_stop(void *arg)
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1371
{
1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392
    SigpInfo *si = arg;
    struct kvm_s390_irq irq = {
        .type = KVM_S390_SIGP_STOP,
    };

    if (s390_cpu_get_state(si->cpu) != CPU_STATE_OPERATING) {
        si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
        return;
    }

    /* disabled wait - sleeping in user space */
    if (CPU(si->cpu)->halted) {
        s390_cpu_set_state(CPU_STATE_STOPPED, si->cpu);
    } else {
        /* execute the stop function */
        si->cpu->env.sigp_order = SIGP_STOP;
        kvm_s390_vcpu_interrupt(si->cpu, &irq);
    }
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
}

1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414
#define ADTL_SAVE_AREA_SIZE 1024
static int kvm_s390_store_adtl_status(S390CPU *cpu, hwaddr addr)
{
    void *mem;
    hwaddr len = ADTL_SAVE_AREA_SIZE;

    mem = cpu_physical_memory_map(addr, &len, 1);
    if (!mem) {
        return -EFAULT;
    }
    if (len != ADTL_SAVE_AREA_SIZE) {
        cpu_physical_memory_unmap(mem, len, 1, 0);
        return -EFAULT;
    }

    memcpy(mem, &cpu->env.vregs, 512);

    cpu_physical_memory_unmap(mem, len, 1, len);

    return 0;
}

1415 1416 1417 1418 1419 1420 1421
#define KVM_S390_STORE_STATUS_DEF_ADDR offsetof(LowCore, floating_pt_save_area)
#define SAVE_AREA_SIZE 512
static int kvm_s390_store_status(S390CPU *cpu, hwaddr addr, bool store_arch)
{
    static const uint8_t ar_id = 1;
    uint64_t ckc = cpu->env.ckc >> 8;
    void *mem;
1422
    int i;
1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436
    hwaddr len = SAVE_AREA_SIZE;

    mem = cpu_physical_memory_map(addr, &len, 1);
    if (!mem) {
        return -EFAULT;
    }
    if (len != SAVE_AREA_SIZE) {
        cpu_physical_memory_unmap(mem, len, 1, 0);
        return -EFAULT;
    }

    if (store_arch) {
        cpu_physical_memory_write(offsetof(LowCore, ar_access_id), &ar_id, 1);
    }
1437 1438 1439
    for (i = 0; i < 16; ++i) {
        *((uint64 *)mem + i) = get_freg(&cpu->env, i)->ll;
    }
1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502
    memcpy(mem + 128, &cpu->env.regs, 128);
    memcpy(mem + 256, &cpu->env.psw, 16);
    memcpy(mem + 280, &cpu->env.psa, 4);
    memcpy(mem + 284, &cpu->env.fpc, 4);
    memcpy(mem + 292, &cpu->env.todpr, 4);
    memcpy(mem + 296, &cpu->env.cputm, 8);
    memcpy(mem + 304, &ckc, 8);
    memcpy(mem + 320, &cpu->env.aregs, 64);
    memcpy(mem + 384, &cpu->env.cregs, 128);

    cpu_physical_memory_unmap(mem, len, 1, len);

    return 0;
}

static void sigp_stop_and_store_status(void *arg)
{
    SigpInfo *si = arg;
    struct kvm_s390_irq irq = {
        .type = KVM_S390_SIGP_STOP,
    };

    /* disabled wait - sleeping in user space */
    if (s390_cpu_get_state(si->cpu) == CPU_STATE_OPERATING &&
        CPU(si->cpu)->halted) {
        s390_cpu_set_state(CPU_STATE_STOPPED, si->cpu);
    }

    switch (s390_cpu_get_state(si->cpu)) {
    case CPU_STATE_OPERATING:
        si->cpu->env.sigp_order = SIGP_STOP_STORE_STATUS;
        kvm_s390_vcpu_interrupt(si->cpu, &irq);
        /* store will be performed when handling the stop intercept */
        break;
    case CPU_STATE_STOPPED:
        /* already stopped, just store the status */
        cpu_synchronize_state(CPU(si->cpu));
        kvm_s390_store_status(si->cpu, KVM_S390_STORE_STATUS_DEF_ADDR, true);
        break;
    }
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
}

static void sigp_store_status_at_address(void *arg)
{
    SigpInfo *si = arg;
    uint32_t address = si->param & 0x7ffffe00u;

    /* cpu has to be stopped */
    if (s390_cpu_get_state(si->cpu) != CPU_STATE_STOPPED) {
        set_sigp_status(si, SIGP_STAT_INCORRECT_STATE);
        return;
    }

    cpu_synchronize_state(CPU(si->cpu));

    if (kvm_s390_store_status(si->cpu, address, false)) {
        set_sigp_status(si, SIGP_STAT_INVALID_PARAMETER);
        return;
    }
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
}

1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532
static void sigp_store_adtl_status(void *arg)
{
    SigpInfo *si = arg;

    if (!kvm_check_extension(kvm_state, KVM_CAP_S390_VECTOR_REGISTERS)) {
        set_sigp_status(si, SIGP_STAT_INVALID_ORDER);
        return;
    }

    /* cpu has to be stopped */
    if (s390_cpu_get_state(si->cpu) != CPU_STATE_STOPPED) {
        set_sigp_status(si, SIGP_STAT_INCORRECT_STATE);
        return;
    }

    /* parameter must be aligned to 1024-byte boundary */
    if (si->param & 0x3ff) {
        set_sigp_status(si, SIGP_STAT_INVALID_PARAMETER);
        return;
    }

    cpu_synchronize_state(CPU(si->cpu));

    if (kvm_s390_store_adtl_status(si->cpu, si->param)) {
        set_sigp_status(si, SIGP_STAT_INVALID_PARAMETER);
        return;
    }
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
}

1533
static void sigp_restart(void *arg)
A
Alexander Graf 已提交
1534
{
1535
    SigpInfo *si = arg;
1536 1537 1538 1539
    struct kvm_s390_irq irq = {
        .type = KVM_S390_RESTART,
    };

1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550
    switch (s390_cpu_get_state(si->cpu)) {
    case CPU_STATE_STOPPED:
        /* the restart irq has to be delivered prior to any other pending irq */
        cpu_synchronize_state(CPU(si->cpu));
        do_restart_interrupt(&si->cpu->env);
        s390_cpu_set_state(CPU_STATE_OPERATING, si->cpu);
        break;
    case CPU_STATE_OPERATING:
        kvm_s390_vcpu_interrupt(si->cpu, &irq);
        break;
    }
1551
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
1552 1553 1554 1555
}

int kvm_s390_cpu_restart(S390CPU *cpu)
{
1556 1557 1558 1559 1560
    SigpInfo si = {
        .cpu = cpu,
    };

    run_on_cpu(CPU(cpu), sigp_restart, &si);
1561
    DPRINTF("DONE: KVM cpu restart: %p\n", &cpu->env);
A
Alexander Graf 已提交
1562 1563 1564
    return 0;
}

1565
static void sigp_initial_cpu_reset(void *arg)
A
Alexander Graf 已提交
1566
{
1567 1568 1569
    SigpInfo *si = arg;
    CPUState *cs = CPU(si->cpu);
    S390CPUClass *scc = S390_CPU_GET_CLASS(si->cpu);
1570

1571 1572 1573 1574
    cpu_synchronize_state(cs);
    scc->initial_cpu_reset(cs);
    cpu_synchronize_post_reset(cs);
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
A
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1575 1576
}

1577 1578
static void sigp_cpu_reset(void *arg)
{
1579 1580 1581
    SigpInfo *si = arg;
    CPUState *cs = CPU(si->cpu);
    S390CPUClass *scc = S390_CPU_GET_CLASS(si->cpu);
1582

1583 1584 1585 1586
    cpu_synchronize_state(cs);
    scc->cpu_reset(cs);
    cpu_synchronize_post_reset(cs);
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
1587 1588
}

1589
static void sigp_set_prefix(void *arg)
A
Alexander Graf 已提交
1590
{
1591 1592
    SigpInfo *si = arg;
    uint32_t addr = si->param & 0x7fffe000u;
A
Alexander Graf 已提交
1593

1594
    cpu_synchronize_state(CPU(si->cpu));
A
Alexander Graf 已提交
1595

1596 1597 1598 1599 1600
    if (!address_space_access_valid(&address_space_memory, addr,
                                    sizeof(struct LowCore), false)) {
        set_sigp_status(si, SIGP_STAT_INVALID_PARAMETER);
        return;
    }
A
Alexander Graf 已提交
1601

1602 1603 1604 1605
    /* cpu has to be stopped */
    if (s390_cpu_get_state(si->cpu) != CPU_STATE_STOPPED) {
        set_sigp_status(si, SIGP_STAT_INCORRECT_STATE);
        return;
A
Alexander Graf 已提交
1606 1607
    }

1608 1609 1610 1611 1612
    si->cpu->env.psa = addr;
    cpu_synchronize_post_init(CPU(si->cpu));
    si->cc = SIGP_CC_ORDER_CODE_ACCEPTED;
}

1613
static int handle_sigp_single_dst(S390CPU *dst_cpu, uint8_t order,
1614
                                  uint64_t param, uint64_t *status_reg)
1615 1616 1617
{
    SigpInfo si = {
        .cpu = dst_cpu,
1618
        .param = param,
1619 1620 1621 1622 1623 1624 1625 1626
        .status_reg = status_reg,
    };

    /* cpu available? */
    if (dst_cpu == NULL) {
        return SIGP_CC_NOT_OPERATIONAL;
    }

1627 1628 1629 1630 1631 1632 1633
    /* only resets can break pending orders */
    if (dst_cpu->env.sigp_order != 0 &&
        order != SIGP_CPU_RESET &&
        order != SIGP_INITIAL_CPU_RESET) {
        return SIGP_CC_BUSY;
    }

1634
    switch (order) {
T
Thomas Huth 已提交
1635
    case SIGP_START:
1636 1637
        run_on_cpu(CPU(dst_cpu), sigp_start, &si);
        break;
1638 1639
    case SIGP_STOP:
        run_on_cpu(CPU(dst_cpu), sigp_stop, &si);
T
Thomas Huth 已提交
1640
        break;
1641
    case SIGP_RESTART:
1642
        run_on_cpu(CPU(dst_cpu), sigp_restart, &si);
1643
        break;
1644 1645 1646 1647 1648 1649
    case SIGP_STOP_STORE_STATUS:
        run_on_cpu(CPU(dst_cpu), sigp_stop_and_store_status, &si);
        break;
    case SIGP_STORE_STATUS_ADDR:
        run_on_cpu(CPU(dst_cpu), sigp_store_status_at_address, &si);
        break;
1650 1651 1652
    case SIGP_STORE_ADTL_STATUS:
        run_on_cpu(CPU(dst_cpu), sigp_store_adtl_status, &si);
        break;
1653 1654
    case SIGP_SET_PREFIX:
        run_on_cpu(CPU(dst_cpu), sigp_set_prefix, &si);
1655
        break;
1656
    case SIGP_INITIAL_CPU_RESET:
1657
        run_on_cpu(CPU(dst_cpu), sigp_initial_cpu_reset, &si);
1658
        break;
1659
    case SIGP_CPU_RESET:
1660
        run_on_cpu(CPU(dst_cpu), sigp_cpu_reset, &si);
1661
        break;
1662
    default:
1663
        DPRINTF("KVM: unknown SIGP: 0x%x\n", order);
1664
        set_sigp_status(&si, SIGP_STAT_INVALID_ORDER);
1665
    }
1666

1667
    return si.cc;
1668 1669
}

1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701
static int sigp_set_architecture(S390CPU *cpu, uint32_t param,
                                 uint64_t *status_reg)
{
    CPUState *cur_cs;
    S390CPU *cur_cpu;

    /* due to the BQL, we are the only active cpu */
    CPU_FOREACH(cur_cs) {
        cur_cpu = S390_CPU(cur_cs);
        if (cur_cpu->env.sigp_order != 0) {
            return SIGP_CC_BUSY;
        }
        cpu_synchronize_state(cur_cs);
        /* all but the current one have to be stopped */
        if (cur_cpu != cpu &&
            s390_cpu_get_state(cur_cpu) != CPU_STATE_STOPPED) {
            *status_reg &= 0xffffffff00000000ULL;
            *status_reg |= SIGP_STAT_INCORRECT_STATE;
            return SIGP_CC_STATUS_STORED;
        }
    }

    switch (param & 0xff) {
    case SIGP_MODE_ESA_S390:
        /* not supported */
        return SIGP_CC_NOT_OPERATIONAL;
    case SIGP_MODE_Z_ARCH_TRANS_ALL_PSW:
    case SIGP_MODE_Z_ARCH_TRANS_CUR_PSW:
        CPU_FOREACH(cur_cs) {
            cur_cpu = S390_CPU(cur_cs);
            cur_cpu->env.pfault_token = -1UL;
        }
1702
        break;
1703 1704 1705 1706
    default:
        *status_reg &= 0xffffffff00000000ULL;
        *status_reg |= SIGP_STAT_INVALID_PARAMETER;
        return SIGP_CC_STATUS_STORED;
A
Alexander Graf 已提交
1707 1708
    }

1709 1710 1711
    return SIGP_CC_ORDER_CODE_ACCEPTED;
}

1712 1713
#define SIGP_ORDER_MASK 0x000000ff

A
Andreas Färber 已提交
1714
static int handle_sigp(S390CPU *cpu, struct kvm_run *run, uint8_t ipa1)
A
Alexander Graf 已提交
1715
{
A
Andreas Färber 已提交
1716
    CPUS390XState *env = &cpu->env;
1717 1718 1719 1720 1721
    const uint8_t r1 = ipa1 >> 4;
    const uint8_t r3 = ipa1 & 0x0f;
    int ret;
    uint8_t order;
    uint64_t *status_reg;
1722
    uint64_t param;
1723
    S390CPU *dst_cpu = NULL;
A
Alexander Graf 已提交
1724

1725
    cpu_synchronize_state(CPU(cpu));
A
Alexander Graf 已提交
1726 1727

    /* get order code */
1728 1729
    order = decode_basedisp_rs(env, run->s390_sieic.ipb, NULL)
        & SIGP_ORDER_MASK;
1730
    status_reg = &env->regs[r1];
1731
    param = (r1 % 2) ? env->regs[r1] : env->regs[r1 + 1];
A
Alexander Graf 已提交
1732

1733
    switch (order) {
1734
    case SIGP_SET_ARCH:
1735
        ret = sigp_set_architecture(cpu, param, status_reg);
1736
        break;
1737
    default:
1738 1739
        /* all other sigp orders target a single vcpu */
        dst_cpu = s390_cpu_addr2state(env->regs[r3]);
1740
        ret = handle_sigp_single_dst(dst_cpu, order, param, status_reg);
A
Alexander Graf 已提交
1741 1742
    }

1743 1744 1745
    trace_kvm_sigp_finished(order, CPU(cpu)->cpu_index,
                            dst_cpu ? CPU(dst_cpu)->cpu_index : -1, ret);

1746 1747 1748 1749 1750 1751
    if (ret >= 0) {
        setcc(cpu, ret);
        return 0;
    }

    return ret;
A
Alexander Graf 已提交
1752 1753
}

1754
static int handle_instruction(S390CPU *cpu, struct kvm_run *run)
A
Alexander Graf 已提交
1755 1756 1757
{
    unsigned int ipa0 = (run->s390_sieic.ipa & 0xff00);
    uint8_t ipa1 = run->s390_sieic.ipa & 0x00ff;
1758
    int r = -1;
A
Alexander Graf 已提交
1759

1760 1761
    DPRINTF("handle_instruction 0x%x 0x%x\n",
            run->s390_sieic.ipa, run->s390_sieic.ipb);
A
Alexander Graf 已提交
1762
    switch (ipa0) {
1763
    case IPA0_B2:
1764 1765
        r = handle_b2(cpu, run, ipa1);
        break;
1766
    case IPA0_B9:
1767 1768
        r = handle_b9(cpu, run, ipa1);
        break;
1769
    case IPA0_EB:
1770
        r = handle_eb(cpu, run, run->s390_sieic.ipb & 0xff);
1771
        break;
1772 1773 1774
    case IPA0_E3:
        r = handle_e3(cpu, run, run->s390_sieic.ipb & 0xff);
        break;
1775
    case IPA0_DIAG:
C
Cornelia Huck 已提交
1776
        r = handle_diag(cpu, run, run->s390_sieic.ipb);
1777 1778 1779 1780
        break;
    case IPA0_SIGP:
        r = handle_sigp(cpu, run, ipa1);
        break;
A
Alexander Graf 已提交
1781 1782 1783
    }

    if (r < 0) {
1784
        r = 0;
1785
        enter_pgmcheck(cpu, 0x0001);
A
Alexander Graf 已提交
1786
    }
1787 1788

    return r;
A
Alexander Graf 已提交
1789 1790
}

A
Andreas Färber 已提交
1791
static bool is_special_wait_psw(CPUState *cs)
1792 1793
{
    /* signal quiesce */
A
Andreas Färber 已提交
1794
    return cs->kvm_run->psw_addr == 0xfffUL;
1795 1796
}

1797 1798 1799 1800 1801 1802 1803
static void unmanageable_intercept(S390CPU *cpu, const char *str, int pswoffset)
{
    CPUState *cs = CPU(cpu);

    error_report("Unmanageable %s! CPU%i new PSW: 0x%016lx:%016lx",
                 str, cs->cpu_index, ldq_phys(cs->as, cpu->env.psa + pswoffset),
                 ldq_phys(cs->as, cpu->env.psa + pswoffset + 8));
1804
    s390_cpu_halt(cpu);
1805
    qemu_system_guest_panicked();
1806 1807
}

1808
static int handle_intercept(S390CPU *cpu)
A
Alexander Graf 已提交
1809
{
A
Andreas Färber 已提交
1810 1811
    CPUState *cs = CPU(cpu);
    struct kvm_run *run = cs->kvm_run;
A
Alexander Graf 已提交
1812 1813 1814
    int icpt_code = run->s390_sieic.icptcode;
    int r = 0;

1815
    DPRINTF("intercept: 0x%x (at 0x%lx)\n", icpt_code,
A
Andreas Färber 已提交
1816
            (long)cs->kvm_run->psw_addr);
A
Alexander Graf 已提交
1817 1818
    switch (icpt_code) {
        case ICPT_INSTRUCTION:
1819
            r = handle_instruction(cpu, run);
A
Alexander Graf 已提交
1820
            break;
1821 1822 1823 1824 1825
        case ICPT_PROGRAM:
            unmanageable_intercept(cpu, "program interrupt",
                                   offsetof(LowCore, program_new_psw));
            r = EXCP_HALTED;
            break;
1826 1827 1828 1829 1830
        case ICPT_EXT_INT:
            unmanageable_intercept(cpu, "external interrupt",
                                   offsetof(LowCore, external_new_psw));
            r = EXCP_HALTED;
            break;
A
Alexander Graf 已提交
1831
        case ICPT_WAITPSW:
1832
            /* disabled wait, since enabled wait is handled in kernel */
1833 1834
            cpu_synchronize_state(cs);
            if (s390_cpu_halt(cpu) == 0) {
1835 1836 1837
                if (is_special_wait_psw(cs)) {
                    qemu_system_shutdown_request();
                } else {
1838
                    qemu_system_guest_panicked();
1839
                }
1840 1841 1842
            }
            r = EXCP_HALTED;
            break;
1843
        case ICPT_CPU_STOP:
1844
            if (s390_cpu_set_state(CPU_STATE_STOPPED, cpu) == 0) {
1845 1846
                qemu_system_shutdown_request();
            }
1847 1848 1849 1850 1851
            if (cpu->env.sigp_order == SIGP_STOP_STORE_STATUS) {
                kvm_s390_store_status(cpu, KVM_S390_STORE_STATUS_DEF_ADDR,
                                      true);
            }
            cpu->env.sigp_order = 0;
1852
            r = EXCP_HALTED;
A
Alexander Graf 已提交
1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870
            break;
        case ICPT_SOFT_INTERCEPT:
            fprintf(stderr, "KVM unimplemented icpt SOFT\n");
            exit(1);
            break;
        case ICPT_IO:
            fprintf(stderr, "KVM unimplemented icpt IO\n");
            exit(1);
            break;
        default:
            fprintf(stderr, "Unknown intercept code: %d\n", icpt_code);
            exit(1);
            break;
    }

    return r;
}

1871 1872 1873 1874 1875 1876
static int handle_tsch(S390CPU *cpu)
{
    CPUState *cs = CPU(cpu);
    struct kvm_run *run = cs->kvm_run;
    int ret;

1877
    cpu_synchronize_state(cs);
1878

1879 1880
    ret = ioinst_handle_tsch(cpu, cpu->env.regs[1], run->s390_tsch.ipb);
    if (ret < 0) {
1881 1882 1883 1884 1885
        /*
         * Failure.
         * If an I/O interrupt had been dequeued, we have to reinject it.
         */
        if (run->s390_tsch.dequeued) {
1886 1887 1888 1889
            kvm_s390_io_interrupt(run->s390_tsch.subchannel_id,
                                  run->s390_tsch.subchannel_nr,
                                  run->s390_tsch.io_int_parm,
                                  run->s390_tsch.io_int_word);
1890 1891 1892 1893 1894 1895
        }
        ret = 0;
    }
    return ret;
}

1896
static void insert_stsi_3_2_2(S390CPU *cpu, __u64 addr, uint8_t ar)
1897 1898 1899 1900
{
    struct sysib_322 sysib;
    int del;

1901
    if (s390_cpu_virt_mem_read(cpu, addr, ar, &sysib, sizeof(sysib))) {
1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940
        return;
    }
    /* Shift the stack of Extended Names to prepare for our own data */
    memmove(&sysib.ext_names[1], &sysib.ext_names[0],
            sizeof(sysib.ext_names[0]) * (sysib.count - 1));
    /* First virt level, that doesn't provide Ext Names delimits stack. It is
     * assumed it's not capable of managing Extended Names for lower levels.
     */
    for (del = 1; del < sysib.count; del++) {
        if (!sysib.vm[del].ext_name_encoding || !sysib.ext_names[del][0]) {
            break;
        }
    }
    if (del < sysib.count) {
        memset(sysib.ext_names[del], 0,
               sizeof(sysib.ext_names[0]) * (sysib.count - del));
    }
    /* Insert short machine name in EBCDIC, padded with blanks */
    if (qemu_name) {
        memset(sysib.vm[0].name, 0x40, sizeof(sysib.vm[0].name));
        ebcdic_put(sysib.vm[0].name, qemu_name, MIN(sizeof(sysib.vm[0].name),
                                                    strlen(qemu_name)));
    }
    sysib.vm[0].ext_name_encoding = 2; /* 2 = UTF-8 */
    memset(sysib.ext_names[0], 0, sizeof(sysib.ext_names[0]));
    /* If hypervisor specifies zero Extended Name in STSI322 SYSIB, it's
     * considered by s390 as not capable of providing any Extended Name.
     * Therefore if no name was specified on qemu invocation, we go with the
     * same "KVMguest" default, which KVM has filled into short name field.
     */
    if (qemu_name) {
        strncpy((char *)sysib.ext_names[0], qemu_name,
                sizeof(sysib.ext_names[0]));
    } else {
        strcpy((char *)sysib.ext_names[0], "KVMguest");
    }
    /* Insert UUID */
    memcpy(sysib.vm[0].uuid, qemu_uuid, sizeof(sysib.vm[0].uuid));

1941
    s390_cpu_virt_mem_write(cpu, addr, ar, &sysib, sizeof(sysib));
1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954
}

static int handle_stsi(S390CPU *cpu)
{
    CPUState *cs = CPU(cpu);
    struct kvm_run *run = cs->kvm_run;

    switch (run->s390_stsi.fc) {
    case 3:
        if (run->s390_stsi.sel1 != 2 || run->s390_stsi.sel2 != 2) {
            return 0;
        }
        /* Only sysib 3.2.2 needs post-handling for now. */
1955
        insert_stsi_3_2_2(cpu, run->s390_stsi.addr, run->s390_stsi.ar);
1956 1957 1958 1959 1960 1961
        return 0;
    default:
        return 0;
    }
}

1962 1963
static int kvm_arch_handle_debug_exit(S390CPU *cpu)
{
1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993
    CPUState *cs = CPU(cpu);
    struct kvm_run *run = cs->kvm_run;

    int ret = 0;
    struct kvm_debug_exit_arch *arch_info = &run->debug.arch;

    switch (arch_info->type) {
    case KVM_HW_WP_WRITE:
        if (find_hw_breakpoint(arch_info->addr, -1, arch_info->type)) {
            cs->watchpoint_hit = &hw_watchpoint;
            hw_watchpoint.vaddr = arch_info->addr;
            hw_watchpoint.flags = BP_MEM_WRITE;
            ret = EXCP_DEBUG;
        }
        break;
    case KVM_HW_BP:
        if (find_hw_breakpoint(arch_info->addr, -1, arch_info->type)) {
            ret = EXCP_DEBUG;
        }
        break;
    case KVM_SINGLESTEP:
        if (cs->singlestep_enabled) {
            ret = EXCP_DEBUG;
        }
        break;
    default:
        ret = -ENOSYS;
    }

    return ret;
1994 1995
}

A
Andreas Färber 已提交
1996
int kvm_arch_handle_exit(CPUState *cs, struct kvm_run *run)
A
Alexander Graf 已提交
1997
{
A
Andreas Färber 已提交
1998
    S390CPU *cpu = S390_CPU(cs);
A
Alexander Graf 已提交
1999 2000
    int ret = 0;

2001 2002
    qemu_mutex_lock_iothread();

A
Alexander Graf 已提交
2003 2004
    switch (run->exit_reason) {
        case KVM_EXIT_S390_SIEIC:
2005
            ret = handle_intercept(cpu);
A
Alexander Graf 已提交
2006 2007
            break;
        case KVM_EXIT_S390_RESET:
2008
            s390_reipl_request();
A
Alexander Graf 已提交
2009
            break;
2010 2011 2012
        case KVM_EXIT_S390_TSCH:
            ret = handle_tsch(cpu);
            break;
2013 2014 2015
        case KVM_EXIT_S390_STSI:
            ret = handle_stsi(cpu);
            break;
2016 2017 2018
        case KVM_EXIT_DEBUG:
            ret = kvm_arch_handle_debug_exit(cpu);
            break;
A
Alexander Graf 已提交
2019 2020 2021 2022
        default:
            fprintf(stderr, "Unknown KVM exit: %d\n", run->exit_reason);
            break;
    }
2023
    qemu_mutex_unlock_iothread();
A
Alexander Graf 已提交
2024

2025 2026 2027
    if (ret == 0) {
        ret = EXCP_INTERRUPT;
    }
A
Alexander Graf 已提交
2028 2029
    return ret;
}
2030

A
Andreas Färber 已提交
2031
bool kvm_arch_stop_on_emulation_error(CPUState *cpu)
2032 2033 2034
{
    return true;
}
2035

A
Andreas Färber 已提交
2036
int kvm_arch_on_sigbus_vcpu(CPUState *cpu, int code, void *addr)
2037 2038 2039 2040 2041 2042 2043 2044
{
    return 1;
}

int kvm_arch_on_sigbus(int code, void *addr)
{
    return 1;
}
2045

2046
void kvm_s390_io_interrupt(uint16_t subchannel_id,
2047 2048 2049
                           uint16_t subchannel_nr, uint32_t io_int_parm,
                           uint32_t io_int_word)
{
2050 2051 2052 2053 2054 2055
    struct kvm_s390_irq irq = {
        .u.io.subchannel_id = subchannel_id,
        .u.io.subchannel_nr = subchannel_nr,
        .u.io.io_int_parm = io_int_parm,
        .u.io.io_int_word = io_int_word,
    };
2056

2057
    if (io_int_word & IO_INT_WORD_AI) {
2058
        irq.type = KVM_S390_INT_IO(1, 0, 0, 0);
2059
    } else {
2060
        irq.type = ((subchannel_id & 0xff00) << 24) |
2061 2062
            ((subchannel_id & 0x00060) << 22) | (subchannel_nr << 16);
    }
2063
    kvm_s390_floating_interrupt(&irq);
2064 2065
}

C
Cornelia Huck 已提交
2066 2067 2068 2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083
static uint64_t build_channel_report_mcic(void)
{
    uint64_t mcic;

    /* subclass: indicate channel report pending */
    mcic = MCIC_SC_CP |
    /* subclass modifiers: none */
    /* storage errors: none */
    /* validity bits: no damage */
        MCIC_VB_WP | MCIC_VB_MS | MCIC_VB_PM | MCIC_VB_IA | MCIC_VB_FP |
        MCIC_VB_GR | MCIC_VB_CR | MCIC_VB_ST | MCIC_VB_AR | MCIC_VB_PR |
        MCIC_VB_FC | MCIC_VB_CT | MCIC_VB_CC;
    if (kvm_check_extension(kvm_state, KVM_CAP_S390_VECTOR_REGISTERS)) {
        mcic |= MCIC_VB_VR;
    }
    return mcic;
}

2084
void kvm_s390_crw_mchk(void)
2085
{
2086 2087 2088
    struct kvm_s390_irq irq = {
        .type = KVM_S390_MCHK,
        .u.mchk.cr14 = 1 << 28,
C
Cornelia Huck 已提交
2089
        .u.mchk.mcic = build_channel_report_mcic(),
2090 2091
    };
    kvm_s390_floating_interrupt(&irq);
2092 2093 2094 2095 2096 2097 2098
}

void kvm_s390_enable_css_support(S390CPU *cpu)
{
    int r;

    /* Activate host kernel channel subsystem support. */
C
Cornelia Huck 已提交
2099
    r = kvm_vcpu_enable_cap(CPU(cpu), KVM_CAP_S390_CSS_SUPPORT, 0);
2100 2101
    assert(r == 0);
}
2102 2103 2104

void kvm_arch_init_irq_routing(KVMState *s)
{
2105 2106 2107 2108 2109 2110 2111 2112 2113
    /*
     * Note that while irqchip capabilities generally imply that cpustates
     * are handled in-kernel, it is not true for s390 (yet); therefore, we
     * have to override the common code kvm_halt_in_kernel_allowed setting.
     */
    if (kvm_check_extension(s, KVM_CAP_IRQ_ROUTING)) {
        kvm_gsi_routing_allowed = true;
        kvm_halt_in_kernel_allowed = false;
    }
2114
}
C
Cornelia Huck 已提交
2115

2116 2117
int kvm_s390_assign_subch_ioeventfd(EventNotifier *notifier, uint32_t sch,
                                    int vq, bool assign)
C
Cornelia Huck 已提交
2118 2119 2120 2121
{
    struct kvm_ioeventfd kick = {
        .flags = KVM_IOEVENTFD_FLAG_VIRTIO_CCW_NOTIFY |
        KVM_IOEVENTFD_FLAG_DATAMATCH,
2122
        .fd = event_notifier_get_fd(notifier),
C
Cornelia Huck 已提交
2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134
        .datamatch = vq,
        .addr = sch,
        .len = 8,
    };
    if (!kvm_check_extension(kvm_state, KVM_CAP_IOEVENTFD)) {
        return -ENOSYS;
    }
    if (!assign) {
        kick.flags |= KVM_IOEVENTFD_FLAG_DEASSIGN;
    }
    return kvm_vm_ioctl(kvm_state, KVM_IOEVENTFD, &kick);
}
2135 2136 2137 2138 2139

int kvm_s390_get_memslot_count(KVMState *s)
{
    return kvm_check_extension(s, KVM_CAP_NR_MEMSLOTS);
}
2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177

int kvm_s390_set_cpu_state(S390CPU *cpu, uint8_t cpu_state)
{
    struct kvm_mp_state mp_state = {};
    int ret;

    /* the kvm part might not have been initialized yet */
    if (CPU(cpu)->kvm_state == NULL) {
        return 0;
    }

    switch (cpu_state) {
    case CPU_STATE_STOPPED:
        mp_state.mp_state = KVM_MP_STATE_STOPPED;
        break;
    case CPU_STATE_CHECK_STOP:
        mp_state.mp_state = KVM_MP_STATE_CHECK_STOP;
        break;
    case CPU_STATE_OPERATING:
        mp_state.mp_state = KVM_MP_STATE_OPERATING;
        break;
    case CPU_STATE_LOAD:
        mp_state.mp_state = KVM_MP_STATE_LOAD;
        break;
    default:
        error_report("Requested CPU state is not a valid S390 CPU state: %u",
                     cpu_state);
        exit(1);
    }

    ret = kvm_vcpu_ioctl(CPU(cpu), KVM_SET_MP_STATE, &mp_state);
    if (ret) {
        trace_kvm_failed_cpu_state_set(CPU(cpu)->cpu_index, cpu_state,
                                       strerror(-ret));
    }

    return ret;
}
2178

2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207
void kvm_s390_vcpu_interrupt_pre_save(S390CPU *cpu)
{
    struct kvm_s390_irq_state irq_state;
    CPUState *cs = CPU(cpu);
    int32_t bytes;

    if (!kvm_check_extension(kvm_state, KVM_CAP_S390_IRQ_STATE)) {
        return;
    }

    irq_state.buf = (uint64_t) cpu->irqstate;
    irq_state.len = VCPU_IRQ_BUF_SIZE;

    bytes = kvm_vcpu_ioctl(cs, KVM_S390_GET_IRQ_STATE, &irq_state);
    if (bytes < 0) {
        cpu->irqstate_saved_size = 0;
        error_report("Migration of interrupt state failed");
        return;
    }

    cpu->irqstate_saved_size = bytes;
}

int kvm_s390_vcpu_interrupt_post_load(S390CPU *cpu)
{
    CPUState *cs = CPU(cpu);
    struct kvm_s390_irq_state irq_state;
    int r;

2208 2209 2210 2211
    if (cpu->irqstate_saved_size == 0) {
        return 0;
    }

2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225
    if (!kvm_check_extension(kvm_state, KVM_CAP_S390_IRQ_STATE)) {
        return -ENOSYS;
    }

    irq_state.buf = (uint64_t) cpu->irqstate;
    irq_state.len = cpu->irqstate_saved_size;

    r = kvm_vcpu_ioctl(cs, KVM_S390_SET_IRQ_STATE, &irq_state);
    if (r) {
        error_report("Setting interrupt state failed %d", r);
    }
    return r;
}

2226
int kvm_arch_fixup_msi_route(struct kvm_irq_routing_entry *route,
2227
                             uint64_t address, uint32_t data, PCIDevice *dev)
2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249
{
    S390PCIBusDevice *pbdev;
    uint32_t fid = data >> ZPCI_MSI_VEC_BITS;
    uint32_t vec = data & ZPCI_MSI_VEC_MASK;

    pbdev = s390_pci_find_dev_by_fid(fid);
    if (!pbdev) {
        DPRINTF("add_msi_route no dev\n");
        return -ENODEV;
    }

    pbdev->routes.adapter.ind_offset = vec;

    route->type = KVM_IRQ_ROUTING_S390_ADAPTER;
    route->flags = 0;
    route->u.adapter.summary_addr = pbdev->routes.adapter.summary_addr;
    route->u.adapter.ind_addr = pbdev->routes.adapter.ind_addr;
    route->u.adapter.summary_offset = pbdev->routes.adapter.summary_offset;
    route->u.adapter.ind_offset = pbdev->routes.adapter.ind_offset;
    route->u.adapter.adapter_id = pbdev->routes.adapter.adapter_id;
    return 0;
}
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int kvm_arch_msi_data_to_gsi(uint32_t data)
{
    abort();
}