mem_helper.c 34.8 KB
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/*
 *  S/390 memory access helper routines
 *
 *  Copyright (c) 2009 Ulrich Hecht
 *  Copyright (c) 2009 Alexander Graf
 *
 * 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.
 *
 * You should have received a copy of the GNU Lesser General Public
 * License along with this library; if not, see <http://www.gnu.org/licenses/>.
 */

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#include "qemu/osdep.h"
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#include "cpu.h"
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#include "exec/address-spaces.h"
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#include "exec/helper-proto.h"
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#include "exec/exec-all.h"
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#include "exec/cpu_ldst.h"
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#include "qemu/int128.h"
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#if !defined(CONFIG_USER_ONLY)
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#include "hw/s390x/storage-keys.h"
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#endif
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/*****************************************************************************/
/* Softmmu support */
#if !defined(CONFIG_USER_ONLY)

/* try to fill the TLB and return an exception if error. If retaddr is
   NULL, it means that the function was called in C code (i.e. not
   from generated code or from helper.c) */
/* XXX: fix it to restore all registers */
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void tlb_fill(CPUState *cs, target_ulong addr, MMUAccessType access_type,
              int mmu_idx, uintptr_t retaddr)
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{
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    int ret = s390_cpu_handle_mmu_fault(cs, addr, access_type, mmu_idx);
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    if (unlikely(ret != 0)) {
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        cpu_loop_exit_restore(cs, retaddr);
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    }
}

#endif

/* #define DEBUG_HELPER */
#ifdef DEBUG_HELPER
#define HELPER_LOG(x...) qemu_log(x)
#else
#define HELPER_LOG(x...)
#endif

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/* Reduce the length so that addr + len doesn't cross a page boundary.  */
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static inline uint32_t adj_len_to_page(uint32_t len, uint64_t addr)
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{
#ifndef CONFIG_USER_ONLY
    if ((addr & ~TARGET_PAGE_MASK) + len - 1 >= TARGET_PAGE_SIZE) {
        return -addr & ~TARGET_PAGE_MASK;
    }
#endif
    return len;
}

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static void fast_memset(CPUS390XState *env, uint64_t dest, uint8_t byte,
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                        uint32_t l, uintptr_t ra)
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{
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    int mmu_idx = cpu_mmu_index(env, false);
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    while (l > 0) {
        void *p = tlb_vaddr_to_host(env, dest, MMU_DATA_STORE, mmu_idx);
        if (p) {
            /* Access to the whole page in write mode granted.  */
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            uint32_t l_adj = adj_len_to_page(l, dest);
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            memset(p, byte, l_adj);
            dest += l_adj;
            l -= l_adj;
        } else {
            /* We failed to get access to the whole page. The next write
               access will likely fill the QEMU TLB for the next iteration.  */
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            cpu_stb_data_ra(env, dest, byte, ra);
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            dest++;
            l--;
        }
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    }
}

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static void fast_memmove(CPUS390XState *env, uint64_t dest, uint64_t src,
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                         uint32_t l, uintptr_t ra)
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{
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    int mmu_idx = cpu_mmu_index(env, false);
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    while (l > 0) {
        void *src_p = tlb_vaddr_to_host(env, src, MMU_DATA_LOAD, mmu_idx);
        void *dest_p = tlb_vaddr_to_host(env, dest, MMU_DATA_STORE, mmu_idx);
        if (src_p && dest_p) {
            /* Access to both whole pages granted.  */
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            uint32_t l_adj = adj_len_to_page(l, src);
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            l_adj = adj_len_to_page(l_adj, dest);
            memmove(dest_p, src_p, l_adj);
            src += l_adj;
            dest += l_adj;
            l -= l_adj;
        } else {
            /* We failed to get access to one or both whole pages. The next
               read or write access will likely fill the QEMU TLB for the
               next iteration.  */
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            cpu_stb_data_ra(env, dest, cpu_ldub_data_ra(env, src, ra), ra);
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            src++;
            dest++;
            l--;
        }
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    }
}

/* and on array */
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static uint32_t do_helper_nc(CPUS390XState *env, uint32_t l, uint64_t dest,
                             uint64_t src, uintptr_t ra)
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{
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    uint32_t i;
    uint8_t c = 0;
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    HELPER_LOG("%s l %d dest %" PRIx64 " src %" PRIx64 "\n",
               __func__, l, dest, src);
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    for (i = 0; i <= l; i++) {
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        uint8_t x = cpu_ldub_data_ra(env, src + i, ra);
        x &= cpu_ldub_data_ra(env, dest + i, ra);
        c |= x;
        cpu_stb_data_ra(env, dest + i, x, ra);
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    }
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    return c != 0;
}

uint32_t HELPER(nc)(CPUS390XState *env, uint32_t l, uint64_t dest,
                    uint64_t src)
{
    return do_helper_nc(env, l, dest, src, GETPC());
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}

/* xor on array */
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static uint32_t do_helper_xc(CPUS390XState *env, uint32_t l, uint64_t dest,
                             uint64_t src, uintptr_t ra)
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{
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    uint32_t i;
    uint8_t c = 0;
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    HELPER_LOG("%s l %d dest %" PRIx64 " src %" PRIx64 "\n",
               __func__, l, dest, src);

    /* xor with itself is the same as memset(0) */
    if (src == dest) {
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        fast_memset(env, dest, 0, l + 1, ra);
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        return 0;
    }

    for (i = 0; i <= l; i++) {
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        uint8_t x = cpu_ldub_data_ra(env, src + i, ra);
        x ^= cpu_ldub_data_ra(env, dest + i, ra);
        c |= x;
        cpu_stb_data_ra(env, dest + i, x, ra);
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    }
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    return c != 0;
}

uint32_t HELPER(xc)(CPUS390XState *env, uint32_t l, uint64_t dest,
                    uint64_t src)
{
    return do_helper_xc(env, l, dest, src, GETPC());
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}

/* or on array */
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static uint32_t do_helper_oc(CPUS390XState *env, uint32_t l, uint64_t dest,
                             uint64_t src, uintptr_t ra)
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{
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    uint32_t i;
    uint8_t c = 0;
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    HELPER_LOG("%s l %d dest %" PRIx64 " src %" PRIx64 "\n",
               __func__, l, dest, src);
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    for (i = 0; i <= l; i++) {
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        uint8_t x = cpu_ldub_data_ra(env, src + i, ra);
        x |= cpu_ldub_data_ra(env, dest + i, ra);
        c |= x;
        cpu_stb_data_ra(env, dest + i, x, ra);
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    }
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    return c != 0;
}

uint32_t HELPER(oc)(CPUS390XState *env, uint32_t l, uint64_t dest,
                    uint64_t src)
{
    return do_helper_oc(env, l, dest, src, GETPC());
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}

/* memmove */
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static void do_helper_mvc(CPUS390XState *env, uint32_t l, uint64_t dest,
                          uint64_t src, uintptr_t ra)
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{
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    uint32_t i;
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    HELPER_LOG("%s l %d dest %" PRIx64 " src %" PRIx64 "\n",
               __func__, l, dest, src);

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    /* mvc with source pointing to the byte after the destination is the
       same as memset with the first source byte */
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    if (dest == src + 1) {
        fast_memset(env, dest, cpu_ldub_data_ra(env, src, ra), l + 1, ra);
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        return;
    }
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    /* mvc and memmove do not behave the same when areas overlap! */
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    if (dest < src || src + l < dest) {
        fast_memmove(env, dest, src, l + 1, ra);
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        return;
    }

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    /* slow version with byte accesses which always work */
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    for (i = 0; i <= l; i++) {
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        cpu_stb_data_ra(env, dest + i, cpu_ldub_data_ra(env, src + i, ra), ra);
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    }
}

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void HELPER(mvc)(CPUS390XState *env, uint32_t l, uint64_t dest, uint64_t src)
{
    do_helper_mvc(env, l, dest, src, GETPC());
}

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/* compare unsigned byte arrays */
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static uint32_t do_helper_clc(CPUS390XState *env, uint32_t l, uint64_t s1,
                              uint64_t s2, uintptr_t ra)
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{
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    uint32_t i;
    uint32_t cc = 0;
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    HELPER_LOG("%s l %d s1 %" PRIx64 " s2 %" PRIx64 "\n",
               __func__, l, s1, s2);
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    for (i = 0; i <= l; i++) {
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        uint8_t x = cpu_ldub_data_ra(env, s1 + i, ra);
        uint8_t y = cpu_ldub_data_ra(env, s2 + i, ra);
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        HELPER_LOG("%02x (%c)/%02x (%c) ", x, x, y, y);
        if (x < y) {
            cc = 1;
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            break;
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        } else if (x > y) {
            cc = 2;
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            break;
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        }
    }
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    HELPER_LOG("\n");
    return cc;
}

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uint32_t HELPER(clc)(CPUS390XState *env, uint32_t l, uint64_t s1, uint64_t s2)
{
    return do_helper_clc(env, l, s1, s2, GETPC());
}

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/* compare logical under mask */
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uint32_t HELPER(clm)(CPUS390XState *env, uint32_t r1, uint32_t mask,
                     uint64_t addr)
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{
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    uintptr_t ra = GETPC();
    uint32_t cc = 0;
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    HELPER_LOG("%s: r1 0x%x mask 0x%x addr 0x%" PRIx64 "\n", __func__, r1,
               mask, addr);
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    while (mask) {
        if (mask & 8) {
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            uint8_t d = cpu_ldub_data_ra(env, addr, ra);
            uint8_t r = extract32(r1, 24, 8);
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            HELPER_LOG("mask 0x%x %02x/%02x (0x%" PRIx64 ") ", mask, r, d,
                       addr);
            if (r < d) {
                cc = 1;
                break;
            } else if (r > d) {
                cc = 2;
                break;
            }
            addr++;
        }
        mask = (mask << 1) & 0xf;
        r1 <<= 8;
    }
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    HELPER_LOG("\n");
    return cc;
}

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static inline uint64_t fix_address(CPUS390XState *env, uint64_t a)
{
    /* 31-Bit mode */
    if (!(env->psw.mask & PSW_MASK_64)) {
        a &= 0x7fffffff;
    }
    return a;
}

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static inline uint64_t get_address(CPUS390XState *env, int x2, int b2, int d2)
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{
    uint64_t r = d2;
    if (x2) {
        r += env->regs[x2];
    }
    if (b2) {
        r += env->regs[b2];
    }
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    return fix_address(env, r);
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}

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static inline uint64_t get_address_31fix(CPUS390XState *env, int reg)
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{
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    return fix_address(env, env->regs[reg]);
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}

/* search string (c is byte to search, r2 is string, r1 end of string) */
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uint64_t HELPER(srst)(CPUS390XState *env, uint64_t r0, uint64_t end,
                      uint64_t str)
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{
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    uintptr_t ra = GETPC();
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    uint32_t len;
    uint8_t v, c = r0;
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    str = fix_address(env, str);
    end = fix_address(env, end);
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    /* Assume for now that R2 is unmodified.  */
    env->retxl = str;

    /* Lest we fail to service interrupts in a timely manner, limit the
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       amount of work we're willing to do.  For now, let's cap at 8k.  */
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    for (len = 0; len < 0x2000; ++len) {
        if (str + len == end) {
            /* Character not found.  R1 & R2 are unmodified.  */
            env->cc_op = 2;
            return end;
        }
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        v = cpu_ldub_data_ra(env, str + len, ra);
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        if (v == c) {
            /* Character found.  Set R1 to the location; R2 is unmodified.  */
            env->cc_op = 1;
            return str + len;
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        }
    }

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    /* CPU-determined bytes processed.  Advance R2 to next byte to process.  */
    env->retxl = str + len;
    env->cc_op = 3;
    return end;
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}

/* unsigned string compare (c is string terminator) */
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uint64_t HELPER(clst)(CPUS390XState *env, uint64_t c, uint64_t s1, uint64_t s2)
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{
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    uintptr_t ra = GETPC();
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    uint32_t len;
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    c = c & 0xff;
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    s1 = fix_address(env, s1);
    s2 = fix_address(env, s2);

    /* Lest we fail to service interrupts in a timely manner, limit the
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       amount of work we're willing to do.  For now, let's cap at 8k.  */
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    for (len = 0; len < 0x2000; ++len) {
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        uint8_t v1 = cpu_ldub_data_ra(env, s1 + len, ra);
        uint8_t v2 = cpu_ldub_data_ra(env, s2 + len, ra);
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        if (v1 == v2) {
            if (v1 == c) {
                /* Equal.  CC=0, and don't advance the registers.  */
                env->cc_op = 0;
                env->retxl = s2;
                return s1;
            }
        } else {
            /* Unequal.  CC={1,2}, and advance the registers.  Note that
               the terminator need not be zero, but the string that contains
               the terminator is by definition "low".  */
            env->cc_op = (v1 == c ? 1 : v2 == c ? 2 : v1 < v2 ? 1 : 2);
            env->retxl = s2 + len;
            return s1 + len;
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        }
    }

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    /* CPU-determined bytes equal; advance the registers.  */
    env->cc_op = 3;
    env->retxl = s2 + len;
    return s1 + len;
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}

/* move page */
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uint32_t HELPER(mvpg)(CPUS390XState *env, uint64_t r0, uint64_t r1, uint64_t r2)
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{
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    /* ??? missing r0 handling, which includes access keys, but more
       importantly optional suppression of the exception!  */
    fast_memmove(env, r1, r2, TARGET_PAGE_SIZE, GETPC());
    return 0; /* data moved */
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}

/* string copy (c is string terminator) */
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uint64_t HELPER(mvst)(CPUS390XState *env, uint64_t c, uint64_t d, uint64_t s)
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{
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    uintptr_t ra = GETPC();
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    uint32_t len;
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    c = c & 0xff;
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    d = fix_address(env, d);
    s = fix_address(env, s);

    /* Lest we fail to service interrupts in a timely manner, limit the
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       amount of work we're willing to do.  For now, let's cap at 8k.  */
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    for (len = 0; len < 0x2000; ++len) {
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        uint8_t v = cpu_ldub_data_ra(env, s + len, ra);
        cpu_stb_data_ra(env, d + len, v, ra);
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        if (v == c) {
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            /* Complete.  Set CC=1 and advance R1.  */
            env->cc_op = 1;
            env->retxl = s;
            return d + len;
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        }
    }
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    /* Incomplete.  Set CC=3 and signal to advance R1 and R2.  */
    env->cc_op = 3;
    env->retxl = s + len;
    return d + len;
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}

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static uint32_t helper_icm(CPUS390XState *env, uint32_t r1, uint64_t address,
                           uint32_t mask)
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{
    int pos = 24; /* top of the lower half of r1 */
    uint64_t rmask = 0xff000000ULL;
    uint8_t val = 0;
    int ccd = 0;
    uint32_t cc = 0;

    while (mask) {
        if (mask & 8) {
            env->regs[r1] &= ~rmask;
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            val = cpu_ldub_data(env, address);
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            if ((val & 0x80) && !ccd) {
                cc = 1;
            }
            ccd = 1;
            if (val && cc == 0) {
                cc = 2;
            }
            env->regs[r1] |= (uint64_t)val << pos;
            address++;
        }
        mask = (mask << 1) & 0xf;
        pos -= 8;
        rmask >>= 8;
    }

    return cc;
}

/* load access registers r1 to r3 from memory at a2 */
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void HELPER(lam)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
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{
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    uintptr_t ra = GETPC();
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    int i;

    for (i = r1;; i = (i + 1) % 16) {
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        env->aregs[i] = cpu_ldl_data_ra(env, a2, ra);
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        a2 += 4;

        if (i == r3) {
            break;
        }
    }
}

/* store access registers r1 to r3 in memory at a2 */
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void HELPER(stam)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
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{
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    uintptr_t ra = GETPC();
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    int i;

    for (i = r1;; i = (i + 1) % 16) {
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        cpu_stl_data_ra(env, a2, env->aregs[i], ra);
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        a2 += 4;

        if (i == r3) {
            break;
        }
    }
}

/* move long */
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uint32_t HELPER(mvcl)(CPUS390XState *env, uint32_t r1, uint32_t r2)
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{
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    uintptr_t ra = GETPC();
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    uint64_t destlen = env->regs[r1 + 1] & 0xffffff;
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    uint64_t dest = get_address_31fix(env, r1);
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    uint64_t srclen = env->regs[r2 + 1] & 0xffffff;
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    uint64_t src = get_address_31fix(env, r2);
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    uint8_t pad = env->regs[r2 + 1] >> 24;
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    uint8_t v;
    uint32_t cc;

    if (destlen == srclen) {
        cc = 0;
    } else if (destlen < srclen) {
        cc = 1;
    } else {
        cc = 2;
    }

    if (srclen > destlen) {
        srclen = destlen;
    }

    for (; destlen && srclen; src++, dest++, destlen--, srclen--) {
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        v = cpu_ldub_data_ra(env, src, ra);
        cpu_stb_data_ra(env, dest, v, ra);
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    }

    for (; destlen; dest++, destlen--) {
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        cpu_stb_data_ra(env, dest, pad, ra);
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    }

    env->regs[r1 + 1] = destlen;
    /* can't use srclen here, we trunc'ed it */
    env->regs[r2 + 1] -= src - env->regs[r2];
    env->regs[r1] = dest;
    env->regs[r2] = src;

    return cc;
}

/* move long extended another memcopy insn with more bells and whistles */
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uint32_t HELPER(mvcle)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
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{
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    uintptr_t ra = GETPC();
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    uint64_t destlen = env->regs[r1 + 1];
    uint64_t dest = env->regs[r1];
    uint64_t srclen = env->regs[r3 + 1];
    uint64_t src = env->regs[r3];
    uint8_t pad = a2 & 0xff;
    uint8_t v;
    uint32_t cc;

    if (!(env->psw.mask & PSW_MASK_64)) {
        destlen = (uint32_t)destlen;
        srclen = (uint32_t)srclen;
        dest &= 0x7fffffff;
        src &= 0x7fffffff;
    }

    if (destlen == srclen) {
        cc = 0;
    } else if (destlen < srclen) {
        cc = 1;
    } else {
        cc = 2;
    }

    if (srclen > destlen) {
        srclen = destlen;
    }

    for (; destlen && srclen; src++, dest++, destlen--, srclen--) {
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        v = cpu_ldub_data_ra(env, src, ra);
        cpu_stb_data_ra(env, dest, v, ra);
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    }

    for (; destlen; dest++, destlen--) {
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        cpu_stb_data_ra(env, dest, pad, ra);
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    }

    env->regs[r1 + 1] = destlen;
    /* can't use srclen here, we trunc'ed it */
    /* FIXME: 31-bit mode! */
    env->regs[r3 + 1] -= src - env->regs[r3];
    env->regs[r1] = dest;
    env->regs[r3] = src;

    return cc;
}

/* compare logical long extended memcompare insn with padding */
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uint32_t HELPER(clcle)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
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{
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    uintptr_t ra = GETPC();
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    uint64_t destlen = env->regs[r1 + 1];
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    uint64_t dest = get_address_31fix(env, r1);
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    uint64_t srclen = env->regs[r3 + 1];
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    uint64_t src = get_address_31fix(env, r3);
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    uint8_t pad = a2 & 0xff;
    uint32_t cc = 0;

    if (!(destlen || srclen)) {
        return cc;
    }

    if (srclen > destlen) {
        srclen = destlen;
    }

    for (; destlen || srclen; src++, dest++, destlen--, srclen--) {
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        uint8_t v1 = srclen ? cpu_ldub_data_ra(env, src, ra) : pad;
        uint8_t v2 = destlen ? cpu_ldub_data_ra(env, dest, ra) : pad;
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        if (v1 != v2) {
            cc = (v1 < v2) ? 1 : 2;
            break;
        }
    }

    env->regs[r1 + 1] = destlen;
    /* can't use srclen here, we trunc'ed it */
    env->regs[r3 + 1] -= src - env->regs[r3];
    env->regs[r1] = dest;
    env->regs[r3] = src;

    return cc;
}

/* checksum */
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Richard Henderson 已提交
633 634
uint64_t HELPER(cksm)(CPUS390XState *env, uint64_t r1,
                      uint64_t src, uint64_t src_len)
635
{
636
    uintptr_t ra = GETPC();
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Richard Henderson 已提交
637 638
    uint64_t max_len, len;
    uint64_t cksm = (uint32_t)r1;
639

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640
    /* Lest we fail to service interrupts in a timely manner, limit the
641
       amount of work we're willing to do.  For now, let's cap at 8k.  */
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Richard Henderson 已提交
642
    max_len = (src_len > 0x2000 ? 0x2000 : src_len);
643

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Richard Henderson 已提交
644 645
    /* Process full words as available.  */
    for (len = 0; len + 4 <= max_len; len += 4, src += 4) {
646
        cksm += (uint32_t)cpu_ldl_data_ra(env, src, ra);
647 648
    }

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649
    switch (max_len - len) {
650
    case 1:
651
        cksm += cpu_ldub_data_ra(env, src, ra) << 24;
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652
        len += 1;
653 654
        break;
    case 2:
655
        cksm += cpu_lduw_data_ra(env, src, ra) << 16;
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Richard Henderson 已提交
656
        len += 2;
657 658
        break;
    case 3:
659 660
        cksm += cpu_lduw_data_ra(env, src, ra) << 16;
        cksm += cpu_ldub_data_ra(env, src + 2, ra) << 8;
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661
        len += 3;
662 663 664
        break;
    }

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Richard Henderson 已提交
665 666 667 668 669 670 671 672
    /* Fold the carry from the checksum.  Note that we can see carry-out
       during folding more than once (but probably not more than twice).  */
    while (cksm > 0xffffffffull) {
        cksm = (uint32_t)cksm + (cksm >> 32);
    }

    /* Indicate whether or not we've processed everything.  */
    env->cc_op = (len == src_len ? 0 : 3);
673

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    /* Return both cksm and processed length.  */
    env->retxl = cksm;
    return len;
677 678
}

679 680
void HELPER(unpk)(CPUS390XState *env, uint32_t len, uint64_t dest,
                  uint64_t src)
681
{
682
    uintptr_t ra = GETPC();
683 684 685 686 687 688 689 690 691
    int len_dest = len >> 4;
    int len_src = len & 0xf;
    uint8_t b;
    int second_nibble = 0;

    dest += len_dest;
    src += len_src;

    /* last byte is special, it only flips the nibbles */
692 693
    b = cpu_ldub_data_ra(env, src, ra);
    cpu_stb_data_ra(env, dest, (b << 4) | (b >> 4), ra);
694 695 696 697 698 699 700 701 702
    src--;
    len_src--;

    /* now pad every nibble with 0xf0 */

    while (len_dest > 0) {
        uint8_t cur_byte = 0;

        if (len_src > 0) {
703
            cur_byte = cpu_ldub_data_ra(env, src, ra);
704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721
        }

        len_dest--;
        dest--;

        /* only advance one nibble at a time */
        if (second_nibble) {
            cur_byte >>= 4;
            len_src--;
            src--;
        }
        second_nibble = !second_nibble;

        /* digit */
        cur_byte = (cur_byte & 0xf);
        /* zone bits */
        cur_byte |= 0xf0;

722
        cpu_stb_data_ra(env, dest, cur_byte, ra);
723 724 725
    }
}

726 727
static void do_helper_tr(CPUS390XState *env, uint32_t len, uint64_t array,
                         uint64_t trans, uintptr_t ra)
728
{
729
    uint32_t i;
730 731

    for (i = 0; i <= len; i++) {
732 733 734
        uint8_t byte = cpu_ldub_data_ra(env, array + i, ra);
        uint8_t new_byte = cpu_ldub_data_ra(env, trans + byte, ra);
        cpu_stb_data_ra(env, array + i, new_byte, ra);
735 736 737
    }
}

738 739 740 741 742 743
void HELPER(tr)(CPUS390XState *env, uint32_t len, uint64_t array,
                uint64_t trans)
{
    return do_helper_tr(env, len, array, trans, GETPC());
}

744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782
uint64_t HELPER(tre)(CPUS390XState *env, uint64_t array,
                     uint64_t len, uint64_t trans)
{
    uint8_t end = env->regs[0] & 0xff;
    uint64_t l = len;
    uint64_t i;

    if (!(env->psw.mask & PSW_MASK_64)) {
        array &= 0x7fffffff;
        l = (uint32_t)l;
    }

    /* Lest we fail to service interrupts in a timely manner, limit the
       amount of work we're willing to do.  For now, let's cap at 8k.  */
    if (l > 0x2000) {
        l = 0x2000;
        env->cc_op = 3;
    } else {
        env->cc_op = 0;
    }

    for (i = 0; i < l; i++) {
        uint8_t byte, new_byte;

        byte = cpu_ldub_data(env, array + i);

        if (byte == end) {
            env->cc_op = 1;
            break;
        }

        new_byte = cpu_ldub_data(env, trans + byte);
        cpu_stb_data(env, array + i, new_byte);
    }

    env->retxl = len - i;
    return array + i;
}

783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803
uint32_t HELPER(trt)(CPUS390XState *env, uint32_t len, uint64_t array,
                     uint64_t trans)
{
    uint32_t cc = 0;
    int i;

    for (i = 0; i <= len; i++) {
        uint8_t byte = cpu_ldub_data(env, array + i);
        uint8_t sbyte = cpu_ldub_data(env, trans + byte);

        if (sbyte != 0) {
            env->regs[1] = array + i;
            env->regs[2] = (env->regs[2] & ~0xff) | sbyte;
            cc = (i == len) ? 2 : 1;
            break;
        }
    }

    return cc;
}

804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842
void HELPER(cdsg)(CPUS390XState *env, uint64_t addr,
                  uint32_t r1, uint32_t r3)
{
    uintptr_t ra = GETPC();
    Int128 cmpv = int128_make128(env->regs[r1 + 1], env->regs[r1]);
    Int128 newv = int128_make128(env->regs[r3 + 1], env->regs[r3]);
    Int128 oldv;
    bool fail;

    if (parallel_cpus) {
#ifndef CONFIG_ATOMIC128
        cpu_loop_exit_atomic(ENV_GET_CPU(env), ra);
#else
        int mem_idx = cpu_mmu_index(env, false);
        TCGMemOpIdx oi = make_memop_idx(MO_TEQ | MO_ALIGN_16, mem_idx);
        oldv = helper_atomic_cmpxchgo_be_mmu(env, addr, cmpv, newv, oi, ra);
        fail = !int128_eq(oldv, cmpv);
#endif
    } else {
        uint64_t oldh, oldl;

        oldh = cpu_ldq_data_ra(env, addr + 0, ra);
        oldl = cpu_ldq_data_ra(env, addr + 8, ra);

        oldv = int128_make128(oldl, oldh);
        fail = !int128_eq(oldv, cmpv);
        if (fail) {
            newv = oldv;
        }

        cpu_stq_data_ra(env, addr + 0, int128_gethi(newv), ra);
        cpu_stq_data_ra(env, addr + 8, int128_getlo(newv), ra);
    }

    env->cc_op = fail;
    env->regs[r1] = int128_gethi(oldv);
    env->regs[r1 + 1] = int128_getlo(oldv);
}

843
#if !defined(CONFIG_USER_ONLY)
844
void HELPER(lctlg)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
845
{
846
    S390CPU *cpu = s390_env_get_cpu(env);
847
    bool PERchanged = false;
848 849
    int i;
    uint64_t src = a2;
850
    uint64_t val;
851 852

    for (i = r1;; i = (i + 1) % 16) {
853 854 855 856 857
        val = cpu_ldq_data(env, src);
        if (env->cregs[i] != val && i >= 9 && i <= 11) {
            PERchanged = true;
        }
        env->cregs[i] = val;
858 859 860 861 862 863 864 865 866
        HELPER_LOG("load ctl %d from 0x%" PRIx64 " == 0x%" PRIx64 "\n",
                   i, src, env->cregs[i]);
        src += sizeof(uint64_t);

        if (i == r3) {
            break;
        }
    }

867 868 869 870
    if (PERchanged && env->psw.mask & PSW_MASK_PER) {
        s390_cpu_recompute_watchpoints(CPU(cpu));
    }

871
    tlb_flush(CPU(cpu));
872 873
}

874
void HELPER(lctl)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
875
{
876
    S390CPU *cpu = s390_env_get_cpu(env);
877
    bool PERchanged = false;
878 879
    int i;
    uint64_t src = a2;
880
    uint32_t val;
881 882

    for (i = r1;; i = (i + 1) % 16) {
883 884 885 886 887
        val = cpu_ldl_data(env, src);
        if ((uint32_t)env->cregs[i] != val && i >= 9 && i <= 11) {
            PERchanged = true;
        }
        env->cregs[i] = (env->cregs[i] & 0xFFFFFFFF00000000ULL) | val;
888 889 890 891 892 893 894
        src += sizeof(uint32_t);

        if (i == r3) {
            break;
        }
    }

895 896 897 898
    if (PERchanged && env->psw.mask & PSW_MASK_PER) {
        s390_cpu_recompute_watchpoints(CPU(cpu));
    }

899
    tlb_flush(CPU(cpu));
900 901
}

902
void HELPER(stctg)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
903 904 905 906 907
{
    int i;
    uint64_t dest = a2;

    for (i = r1;; i = (i + 1) % 16) {
908
        cpu_stq_data(env, dest, env->cregs[i]);
909 910 911 912 913 914 915 916
        dest += sizeof(uint64_t);

        if (i == r3) {
            break;
        }
    }
}

917
void HELPER(stctl)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
918 919 920 921 922
{
    int i;
    uint64_t dest = a2;

    for (i = r1;; i = (i + 1) % 16) {
923
        cpu_stl_data(env, dest, env->cregs[i]);
924 925 926 927 928 929 930 931
        dest += sizeof(uint32_t);

        if (i == r3) {
            break;
        }
    }
}

932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958
uint32_t HELPER(testblock)(CPUS390XState *env, uint64_t real_addr)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));
    uint64_t abs_addr;
    int i;

    real_addr = fix_address(env, real_addr);
    abs_addr = mmu_real2abs(env, real_addr) & TARGET_PAGE_MASK;
    if (!address_space_access_valid(&address_space_memory, abs_addr,
                                    TARGET_PAGE_SIZE, true)) {
        program_interrupt(env, PGM_ADDRESSING, 4);
        return 1;
    }

    /* Check low-address protection */
    if ((env->cregs[0] & CR0_LOWPROT) && real_addr < 0x2000) {
        program_interrupt(env, PGM_PROTECTION, 4);
        return 1;
    }

    for (i = 0; i < TARGET_PAGE_SIZE; i += 8) {
        stq_phys(cs->as, abs_addr + i, 0);
    }

    return 0;
}

959 960 961 962 963 964 965 966
uint32_t HELPER(tprot)(uint64_t a1, uint64_t a2)
{
    /* XXX implement */

    return 0;
}

/* insert storage key extended */
967
uint64_t HELPER(iske)(CPUS390XState *env, uint64_t r2)
968
{
969 970
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
971
    uint64_t addr = get_address(env, 0, 0, r2);
972
    uint8_t key;
973 974 975 976 977

    if (addr > ram_size) {
        return 0;
    }

978 979 980 981 982 983 984 985 986
    if (unlikely(!ss)) {
        ss = s390_get_skeys_device();
        skeyclass = S390_SKEYS_GET_CLASS(ss);
    }

    if (skeyclass->get_skeys(ss, addr / TARGET_PAGE_SIZE, 1, &key)) {
        return 0;
    }
    return key;
987 988 989
}

/* set storage key extended */
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Richard Henderson 已提交
990
void HELPER(sske)(CPUS390XState *env, uint64_t r1, uint64_t r2)
991
{
992 993
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
994
    uint64_t addr = get_address(env, 0, 0, r2);
995
    uint8_t key;
996 997 998 999 1000

    if (addr > ram_size) {
        return;
    }

1001 1002 1003 1004 1005 1006 1007
    if (unlikely(!ss)) {
        ss = s390_get_skeys_device();
        skeyclass = S390_SKEYS_GET_CLASS(ss);
    }

    key = (uint8_t) r1;
    skeyclass->set_skeys(ss, addr / TARGET_PAGE_SIZE, 1, &key);
1008 1009 1010
}

/* reset reference bit extended */
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Richard Henderson 已提交
1011
uint32_t HELPER(rrbe)(CPUS390XState *env, uint64_t r2)
1012
{
1013 1014 1015
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
    uint8_t re, key;
1016 1017 1018 1019 1020

    if (r2 > ram_size) {
        return 0;
    }

1021 1022 1023 1024 1025 1026 1027 1028 1029
    if (unlikely(!ss)) {
        ss = s390_get_skeys_device();
        skeyclass = S390_SKEYS_GET_CLASS(ss);
    }

    if (skeyclass->get_skeys(ss, r2 / TARGET_PAGE_SIZE, 1, &key)) {
        return 0;
    }

1030
    re = key & (SK_R | SK_C);
1031 1032 1033 1034 1035
    key &= ~SK_R;

    if (skeyclass->set_skeys(ss, r2 / TARGET_PAGE_SIZE, 1, &key)) {
        return 0;
    }
1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049

    /*
     * cc
     *
     * 0  Reference bit zero; change bit zero
     * 1  Reference bit zero; change bit one
     * 2  Reference bit one; change bit zero
     * 3  Reference bit one; change bit one
     */

    return re >> 1;
}

/* compare and swap and purge */
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Richard Henderson 已提交
1050
uint32_t HELPER(csp)(CPUS390XState *env, uint32_t r1, uint64_t r2)
1051
{
1052
    S390CPU *cpu = s390_env_get_cpu(env);
1053 1054
    uint32_t cc;
    uint32_t o1 = env->regs[r1];
R
Richard Henderson 已提交
1055
    uint64_t a2 = r2 & ~3ULL;
1056
    uint32_t o2 = cpu_ldl_data(env, a2);
1057 1058

    if (o1 == o2) {
1059
        cpu_stl_data(env, a2, env->regs[(r1 + 1) & 15]);
R
Richard Henderson 已提交
1060
        if (r2 & 0x3) {
1061
            /* flush TLB / ALB */
1062
            tlb_flush(CPU(cpu));
1063 1064 1065 1066 1067 1068 1069 1070 1071 1072
        }
        cc = 0;
    } else {
        env->regs[r1] = (env->regs[r1] & 0xffffffff00000000ULL) | o2;
        cc = 1;
    }

    return cc;
}

1073
uint32_t HELPER(mvcs)(CPUS390XState *env, uint64_t l, uint64_t a1, uint64_t a2)
1074
{
1075
    int cc = 0, i;
1076

1077 1078 1079 1080
    HELPER_LOG("%s: %16" PRIx64 " %16" PRIx64 " %16" PRIx64 "\n",
               __func__, l, a1, a2);

    if (l > 256) {
1081 1082 1083 1084 1085 1086 1087
        /* max 256 */
        l = 256;
        cc = 3;
    }

    /* XXX replace w/ memcpy */
    for (i = 0; i < l; i++) {
1088
        cpu_stb_secondary(env, a1 + i, cpu_ldub_primary(env, a2 + i));
1089 1090 1091 1092 1093
    }

    return cc;
}

1094
uint32_t HELPER(mvcp)(CPUS390XState *env, uint64_t l, uint64_t a1, uint64_t a2)
1095
{
1096 1097
    int cc = 0, i;

1098 1099 1100
    HELPER_LOG("%s: %16" PRIx64 " %16" PRIx64 " %16" PRIx64 "\n",
               __func__, l, a1, a2);

1101 1102 1103 1104 1105
    if (l > 256) {
        /* max 256 */
        l = 256;
        cc = 3;
    }
1106

1107 1108 1109 1110
    /* XXX replace w/ memcpy */
    for (i = 0; i < l; i++) {
        cpu_stb_primary(env, a1 + i, cpu_ldub_secondary(env, a2 + i));
    }
1111

1112
    return cc;
1113 1114 1115
}

/* invalidate pte */
1116
void HELPER(ipte)(CPUS390XState *env, uint64_t pte_addr, uint64_t vaddr)
1117
{
1118
    CPUState *cs = CPU(s390_env_get_cpu(env));
1119 1120 1121 1122 1123 1124 1125 1126 1127
    uint64_t page = vaddr & TARGET_PAGE_MASK;
    uint64_t pte = 0;

    /* XXX broadcast to other CPUs */

    /* XXX Linux is nice enough to give us the exact pte address.
       According to spec we'd have to find it out ourselves */
    /* XXX Linux is fine with overwriting the pte, the spec requires
       us to only set the invalid bit */
1128
    stq_phys(cs->as, pte_addr, pte | _PAGE_INVALID);
1129 1130 1131

    /* XXX we exploit the fact that Linux passes the exact virtual
       address here - it's not obliged to! */
1132
    tlb_flush_page(cs, page);
1133 1134 1135

    /* XXX 31-bit hack */
    if (page & 0x80000000) {
1136
        tlb_flush_page(cs, page & ~0x80000000);
1137
    } else {
1138
        tlb_flush_page(cs, page | 0x80000000);
1139 1140 1141 1142
    }
}

/* flush local tlb */
1143
void HELPER(ptlb)(CPUS390XState *env)
1144
{
1145 1146
    S390CPU *cpu = s390_env_get_cpu(env);

1147
    tlb_flush(CPU(cpu));
1148 1149
}

1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164
/* load using real address */
uint64_t HELPER(lura)(CPUS390XState *env, uint64_t addr)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));

    return (uint32_t)ldl_phys(cs->as, get_address(env, 0, 0, addr));
}

uint64_t HELPER(lurag)(CPUS390XState *env, uint64_t addr)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));

    return ldq_phys(cs->as, get_address(env, 0, 0, addr));
}

1165
/* store using real address */
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Richard Henderson 已提交
1166
void HELPER(stura)(CPUS390XState *env, uint64_t addr, uint64_t v1)
1167
{
1168 1169
    CPUState *cs = CPU(s390_env_get_cpu(env));

R
Richard Henderson 已提交
1170
    stl_phys(cs->as, get_address(env, 0, 0, addr), (uint32_t)v1);
1171 1172 1173 1174 1175 1176 1177 1178

    if ((env->psw.mask & PSW_MASK_PER) &&
        (env->cregs[9] & PER_CR9_EVENT_STORE) &&
        (env->cregs[9] & PER_CR9_EVENT_STORE_REAL)) {
        /* PSW is saved just before calling the helper.  */
        env->per_address = env->psw.addr;
        env->per_perc_atmid = PER_CODE_EVENT_STORE_REAL | get_per_atmid(env);
    }
1179 1180
}

1181 1182 1183 1184 1185
void HELPER(sturg)(CPUS390XState *env, uint64_t addr, uint64_t v1)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));

    stq_phys(cs->as, get_address(env, 0, 0, addr), v1);
1186 1187 1188 1189 1190 1191 1192 1193

    if ((env->psw.mask & PSW_MASK_PER) &&
        (env->cregs[9] & PER_CR9_EVENT_STORE) &&
        (env->cregs[9] & PER_CR9_EVENT_STORE_REAL)) {
        /* PSW is saved just before calling the helper.  */
        env->per_address = env->psw.addr;
        env->per_perc_atmid = PER_CODE_EVENT_STORE_REAL | get_per_atmid(env);
    }
1194 1195
}

1196
/* load real address */
R
Richard Henderson 已提交
1197
uint64_t HELPER(lra)(CPUS390XState *env, uint64_t addr)
1198
{
1199
    CPUState *cs = CPU(s390_env_get_cpu(env));
1200
    uint32_t cc = 0;
1201
    int old_exc = cs->exception_index;
1202 1203 1204 1205 1206 1207 1208 1209 1210
    uint64_t asc = env->psw.mask & PSW_MASK_ASC;
    uint64_t ret;
    int flags;

    /* XXX incomplete - has more corner cases */
    if (!(env->psw.mask & PSW_MASK_64) && (addr >> 32)) {
        program_interrupt(env, PGM_SPECIAL_OP, 2);
    }

1211
    cs->exception_index = old_exc;
1212
    if (mmu_translate(env, addr, 0, asc, &ret, &flags, true)) {
1213 1214
        cc = 3;
    }
1215
    if (cs->exception_index == EXCP_PGM) {
1216 1217 1218 1219
        ret = env->int_pgm_code | 0x80000000;
    } else {
        ret |= addr & ~TARGET_PAGE_MASK;
    }
1220
    cs->exception_index = old_exc;
1221

R
Richard Henderson 已提交
1222 1223
    env->cc_op = cc;
    return ret;
1224 1225
}
#endif
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/* execute instruction
   this instruction executes an insn modified with the contents of r1
   it does not change the executed instruction in memory
   it does not change the program counter
   in other words: tricky...
   currently implemented by interpreting the cases it is most commonly used.
*/
uint32_t HELPER(ex)(CPUS390XState *env, uint32_t cc, uint64_t v1,
                    uint64_t addr, uint64_t ret)
{
    S390CPU *cpu = s390_env_get_cpu(env);
    uint16_t insn = cpu_lduw_code(env, addr);

    HELPER_LOG("%s: v1 0x%lx addr 0x%lx insn 0x%x\n", __func__, v1, addr,
               insn);
    if ((insn & 0xf0ff) == 0xd000) {
        uint32_t l, insn2, b1, b2, d1, d2;

        l = v1 & 0xff;
        insn2 = cpu_ldl_code(env, addr + 2);
        b1 = (insn2 >> 28) & 0xf;
        b2 = (insn2 >> 12) & 0xf;
        d1 = (insn2 >> 16) & 0xfff;
        d2 = insn2 & 0xfff;
        switch (insn & 0xf00) {
        case 0x200:
1253 1254
            do_helper_mvc(env, l, get_address(env, 0, b1, d1),
                          get_address(env, 0, b2, d2), 0);
1255 1256
            break;
        case 0x400:
1257 1258
            cc = do_helper_nc(env, l, get_address(env, 0, b1, d1),
                              get_address(env, 0, b2, d2), 0);
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            break;
        case 0x500:
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            cc = do_helper_clc(env, l, get_address(env, 0, b1, d1),
                               get_address(env, 0, b2, d2), 0);
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            break;
        case 0x600:
1265 1266
            cc = do_helper_oc(env, l, get_address(env, 0, b1, d1),
                              get_address(env, 0, b2, d2), 0);
1267 1268
            break;
        case 0x700:
1269 1270
            cc = do_helper_xc(env, l, get_address(env, 0, b1, d1),
                              get_address(env, 0, b2, d2), 0);
1271 1272
            break;
        case 0xc00:
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            do_helper_tr(env, l, get_address(env, 0, b1, d1),
                         get_address(env, 0, b2, d2), 0);
            return cc;
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        case 0xd00:
            cc = helper_trt(env, l, get_address(env, 0, b1, d1),
                            get_address(env, 0, b2, d2));
            break;
        default:
            goto abort;
        }
    } else if ((insn & 0xff00) == 0x0a00) {
        /* supervisor call */
        HELPER_LOG("%s: svc %ld via execute\n", __func__, (insn | v1) & 0xff);
        env->psw.addr = ret - 4;
        env->int_svc_code = (insn | v1) & 0xff;
        env->int_svc_ilen = 4;
        helper_exception(env, EXCP_SVC);
    } else if ((insn & 0xff00) == 0xbf00) {
        uint32_t insn2, r1, r3, b2, d2;

        insn2 = cpu_ldl_code(env, addr + 2);
        r1 = (insn2 >> 20) & 0xf;
        r3 = (insn2 >> 16) & 0xf;
        b2 = (insn2 >> 12) & 0xf;
        d2 = insn2 & 0xfff;
        cc = helper_icm(env, r1, get_address(env, 0, b2, d2), r3);
    } else {
    abort:
        cpu_abort(CPU(cpu),
                  "EXECUTE on instruction prefix 0x%x not implemented\n",
                  insn);
    }
    return cc;
}