mem_helper.c 54.8 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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Peter Maydell 已提交
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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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Paolo Bonzini 已提交
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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) {
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        return -(addr | TARGET_PAGE_MASK);
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    }
#endif
    return len;
}

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/* Trigger a SPECIFICATION exception if an address or a length is not
   naturally aligned.  */
static inline void check_alignment(CPUS390XState *env, uint64_t v,
                                   int wordsize, uintptr_t ra)
{
    if (v % wordsize) {
        CPUState *cs = CPU(s390_env_get_cpu(env));
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_SPECIFICATION, 6);
    }
}

/* Load a value from memory according to its size.  */
static inline uint64_t cpu_ldusize_data_ra(CPUS390XState *env, uint64_t addr,
                                           int wordsize, uintptr_t ra)
{
    switch (wordsize) {
    case 1:
        return cpu_ldub_data_ra(env, addr, ra);
    case 2:
        return cpu_lduw_data_ra(env, addr, ra);
    default:
        abort();
    }
}

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/* Store a to memory according to its size.  */
static inline void cpu_stsize_data_ra(CPUS390XState *env, uint64_t addr,
                                      uint64_t value, int wordsize,
                                      uintptr_t ra)
{
    switch (wordsize) {
    case 1:
        cpu_stb_data_ra(env, addr, value, ra);
        break;
    case 2:
        cpu_stw_data_ra(env, addr, value, ra);
        break;
    default:
        abort();
    }
}

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static inline uint64_t wrap_address(CPUS390XState *env, uint64_t a)
{
    if (!(env->psw.mask & PSW_MASK_64)) {
        if (!(env->psw.mask & PSW_MASK_32)) {
            /* 24-Bit mode */
            a &= 0x00ffffff;
        } else {
            /* 31-Bit mode */
            a &= 0x7fffffff;
        }
    }
    return a;
}

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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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#ifndef CONFIG_USER_ONLY
static void fast_memmove_idx(CPUS390XState *env, uint64_t dest, uint64_t src,
                             uint32_t len, int dest_idx, int src_idx,
                             uintptr_t ra)
{
    TCGMemOpIdx oi_dest = make_memop_idx(MO_UB, dest_idx);
    TCGMemOpIdx oi_src = make_memop_idx(MO_UB, src_idx);
    uint32_t len_adj;
    void *src_p;
    void *dest_p;
    uint8_t x;

    while (len > 0) {
        src = wrap_address(env, src);
        dest = wrap_address(env, dest);
        src_p = tlb_vaddr_to_host(env, src, MMU_DATA_LOAD, src_idx);
        dest_p = tlb_vaddr_to_host(env, dest, MMU_DATA_STORE, dest_idx);

        if (src_p && dest_p) {
            /* Access to both whole pages granted.  */
            len_adj = adj_len_to_page(adj_len_to_page(len, src), dest);
            memmove(dest_p, src_p, len_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.  */
            len_adj = 1;
            x = helper_ret_ldub_mmu(env, src, oi_src, ra);
            helper_ret_stb_mmu(env, dest, x, oi_dest, ra);
        }
        src += len_adj;
        dest += len_adj;
        len -= len_adj;
    }
}

static int mmu_idx_from_as(uint8_t as)
{
    switch (as) {
    case AS_PRIMARY:
        return MMU_PRIMARY_IDX;
    case AS_SECONDARY:
        return MMU_SECONDARY_IDX;
    case AS_HOME:
        return MMU_HOME_IDX;
    default:
        /* FIXME AS_ACCREG */
        g_assert_not_reached();
    }
}

static void fast_memmove_as(CPUS390XState *env, uint64_t dest, uint64_t src,
                            uint32_t len, uint8_t dest_as, uint8_t src_as,
                            uintptr_t ra)
{
    int src_idx = mmu_idx_from_as(src_as);
    int dest_idx = mmu_idx_from_as(dest_as);

    fast_memmove_idx(env, dest, src, len, dest_idx, src_idx, ra);
}
#endif

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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 uint32_t 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 and memmove do not behave the same when areas overlap! */
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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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    } else if (dest < src || src + l < dest) {
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        fast_memmove(env, dest, src, l + 1, ra);
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    } else {
        /* slow version with byte accesses which always work */
        for (i = 0; i <= l; i++) {
            uint8_t x = cpu_ldub_data_ra(env, src + i, ra);
            cpu_stb_data_ra(env, dest + i, x, ra);
        }
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    }

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    return env->cc_op;
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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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/* move inverse  */
void HELPER(mvcin)(CPUS390XState *env, uint32_t l, uint64_t dest, uint64_t src)
{
    uintptr_t ra = GETPC();
    int i;

    for (i = 0; i <= l; i++) {
        uint8_t v = cpu_ldub_data_ra(env, src - i, ra);
        cpu_stb_data_ra(env, dest + i, v, ra);
    }
}

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/* move numerics  */
void HELPER(mvn)(CPUS390XState *env, uint32_t l, uint64_t dest, uint64_t src)
{
    uintptr_t ra = GETPC();
    int i;

    for (i = 0; i <= l; i++) {
        uint8_t v = cpu_ldub_data_ra(env, dest + i, ra) & 0xf0;
        v |= cpu_ldub_data_ra(env, src + i, ra) & 0x0f;
        cpu_stb_data_ra(env, dest + i, v, ra);
    }
}

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/* move with offset  */
void HELPER(mvo)(CPUS390XState *env, uint32_t l, uint64_t dest, uint64_t src)
{
    uintptr_t ra = GETPC();
    int len_dest = l >> 4;
    int len_src = l & 0xf;
    uint8_t byte_dest, byte_src;
    int i;

    src += len_src;
    dest += len_dest;

    /* Handle rightmost byte */
    byte_src = cpu_ldub_data_ra(env, src, ra);
    byte_dest = cpu_ldub_data_ra(env, dest, ra);
    byte_dest = (byte_dest & 0x0f) | (byte_src << 4);
    cpu_stb_data_ra(env, dest, byte_dest, ra);

    /* Process remaining bytes from right to left */
    for (i = 1; i <= len_dest; i++) {
        byte_dest = byte_src >> 4;
        if (len_src - i >= 0) {
            byte_src = cpu_ldub_data_ra(env, src - i, ra);
        } else {
            byte_src = 0;
        }
        byte_dest |= byte_src << 4;
        cpu_stb_data_ra(env, dest - i, byte_dest, ra);
    }
}

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/* move zones  */
void HELPER(mvz)(CPUS390XState *env, uint32_t l, uint64_t dest, uint64_t src)
{
    uintptr_t ra = GETPC();
    int i;

    for (i = 0; i <= l; i++) {
        uint8_t b = cpu_ldub_data_ra(env, dest + i, ra) & 0x0f;
        b |= cpu_ldub_data_ra(env, src + i, ra) & 0xf0;
        cpu_stb_data_ra(env, dest + i, b, ra);
    }
}

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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 get_address(CPUS390XState *env, int reg)
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{
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    return wrap_address(env, env->regs[reg]);
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}

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static inline void set_address(CPUS390XState *env, int reg, uint64_t address)
{
    if (env->psw.mask & PSW_MASK_64) {
        /* 64-Bit mode */
        env->regs[reg] = address;
    } else {
        if (!(env->psw.mask & PSW_MASK_32)) {
            /* 24-Bit mode. According to the PoO it is implementation
            dependent if bits 32-39 remain unchanged or are set to
            zeros.  Choose the former so that the function can also be
            used for TRT.  */
            env->regs[reg] = deposit64(env->regs[reg], 0, 24, address);
        } else {
            /* 31-Bit mode. According to the PoO it is implementation
            dependent if bit 32 remains unchanged or is set to zero.
            Choose the latter so that the function can also be used for
            TRT.  */
            address &= 0x7fffffff;
            env->regs[reg] = deposit64(env->regs[reg], 0, 32, address);
        }
    }
}

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static inline uint64_t wrap_length(CPUS390XState *env, uint64_t length)
{
    if (!(env->psw.mask & PSW_MASK_64)) {
        /* 24-Bit and 31-Bit mode */
        length &= 0x7fffffff;
    }
    return length;
}

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

static inline void set_length(CPUS390XState *env, int reg, uint64_t length)
{
    if (env->psw.mask & PSW_MASK_64) {
        /* 64-Bit mode */
        env->regs[reg] = length;
    } else {
        /* 24-Bit and 31-Bit mode */
        env->regs[reg] = deposit64(env->regs[reg], 0, 32, length);
    }
}

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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 = wrap_address(env, str);
    end = wrap_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 = wrap_address(env, s1);
    s2 = wrap_address(env, s2);
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    /* 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 */
621 622 623
}

/* string copy (c is string terminator) */
624
uint64_t HELPER(mvst)(CPUS390XState *env, uint64_t c, uint64_t d, uint64_t s)
625
{
626
    uintptr_t ra = GETPC();
627
    uint32_t len;
628 629

    c = c & 0xff;
630 631
    d = wrap_address(env, d);
    s = wrap_address(env, s);
632 633

    /* Lest we fail to service interrupts in a timely manner, limit the
634
       amount of work we're willing to do.  For now, let's cap at 8k.  */
635
    for (len = 0; len < 0x2000; ++len) {
636 637
        uint8_t v = cpu_ldub_data_ra(env, s + len, ra);
        cpu_stb_data_ra(env, d + len, v, ra);
638
        if (v == c) {
639 640 641 642
            /* Complete.  Set CC=1 and advance R1.  */
            env->cc_op = 1;
            env->retxl = s;
            return d + len;
643 644
        }
    }
645 646 647 648 649

    /* Incomplete.  Set CC=3 and signal to advance R1 and R2.  */
    env->cc_op = 3;
    env->retxl = s + len;
    return d + len;
650 651 652
}

/* load access registers r1 to r3 from memory at a2 */
653
void HELPER(lam)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
654
{
655
    uintptr_t ra = GETPC();
656 657 658
    int i;

    for (i = r1;; i = (i + 1) % 16) {
659
        env->aregs[i] = cpu_ldl_data_ra(env, a2, ra);
660 661 662 663 664 665 666 667 668
        a2 += 4;

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

/* store access registers r1 to r3 in memory at a2 */
669
void HELPER(stam)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
670
{
671
    uintptr_t ra = GETPC();
672 673 674
    int i;

    for (i = r1;; i = (i + 1) % 16) {
675
        cpu_stl_data_ra(env, a2, env->aregs[i], ra);
676 677 678 679 680 681 682 683
        a2 += 4;

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

684 685 686 687
/* move long helper */
static inline uint32_t do_mvcl(CPUS390XState *env,
                               uint64_t *dest, uint64_t *destlen,
                               uint64_t *src, uint64_t *srclen,
688
                               uint16_t pad, int wordsize, uintptr_t ra)
689
{
690
    uint64_t len = MIN(*srclen, *destlen);
691 692
    uint32_t cc;

693
    if (*destlen == *srclen) {
694
        cc = 0;
695
    } else if (*destlen < *srclen) {
696 697 698 699 700
        cc = 1;
    } else {
        cc = 2;
    }

701 702 703 704 705 706
    /* Copy the src array */
    fast_memmove(env, *dest, *src, len, ra);
    *src += len;
    *srclen -= len;
    *dest += len;
    *destlen -= len;
707

708
    /* Pad the remaining area */
709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724
    if (wordsize == 1) {
        fast_memset(env, *dest, pad, *destlen, ra);
        *dest += *destlen;
        *destlen = 0;
    } else {
        /* If remaining length is odd, pad with odd byte first.  */
        if (*destlen & 1) {
            cpu_stb_data_ra(env, *dest, pad & 0xff, ra);
            *dest += 1;
            *destlen -= 1;
        }
        /* The remaining length is even, pad using words.  */
        for (; *destlen; *dest += 2, *destlen -= 2) {
            cpu_stw_data_ra(env, *dest, pad, ra);
        }
    }
725

726 727 728 729 730 731 732 733 734 735 736 737 738 739
    return cc;
}

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

740
    cc = do_mvcl(env, &dest, &destlen, &src, &srclen, pad, 1, ra);
741

742 743
    env->regs[r1 + 1] = deposit64(env->regs[r1 + 1], 0, 24, destlen);
    env->regs[r2 + 1] = deposit64(env->regs[r2 + 1], 0, 24, srclen);
744 745
    set_address(env, r1, dest);
    set_address(env, r2, src);
746 747 748 749

    return cc;
}

750
/* move long extended */
751 752
uint32_t HELPER(mvcle)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
753
{
754
    uintptr_t ra = GETPC();
755
    uint64_t destlen = get_length(env, r1 + 1);
756
    uint64_t dest = get_address(env, r1);
757
    uint64_t srclen = get_length(env, r3 + 1);
758
    uint64_t src = get_address(env, r3);
759
    uint8_t pad = a2;
760 761
    uint32_t cc;

762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784
    cc = do_mvcl(env, &dest, &destlen, &src, &srclen, pad, 1, ra);

    set_length(env, r1 + 1, destlen);
    set_length(env, r3 + 1, srclen);
    set_address(env, r1, dest);
    set_address(env, r3, src);

    return cc;
}

/* move long unicode */
uint32_t HELPER(mvclu)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
{
    uintptr_t ra = GETPC();
    uint64_t destlen = get_length(env, r1 + 1);
    uint64_t dest = get_address(env, r1);
    uint64_t srclen = get_length(env, r3 + 1);
    uint64_t src = get_address(env, r3);
    uint16_t pad = a2;
    uint32_t cc;

    cc = do_mvcl(env, &dest, &destlen, &src, &srclen, pad, 2, ra);
785

786 787
    set_length(env, r1 + 1, destlen);
    set_length(env, r3 + 1, srclen);
788 789
    set_address(env, r1, dest);
    set_address(env, r3, src);
790 791 792 793

    return cc;
}

794 795 796 797
/* compare logical long helper */
static inline uint32_t do_clcl(CPUS390XState *env,
                               uint64_t *src1, uint64_t *src1len,
                               uint64_t *src3, uint64_t *src3len,
798 799
                               uint16_t pad, uint64_t limit,
                               int wordsize, uintptr_t ra)
800 801
{
    uint64_t len = MAX(*src1len, *src3len);
802 803
    uint32_t cc = 0;

804 805
    check_alignment(env, *src1len | *src3len, wordsize, ra);

806
    if (!len) {
807 808 809
        return cc;
    }

810
    /* Lest we fail to service interrupts in a timely manner, limit the
811 812 813
       amount of work we're willing to do.  */
    if (len > limit) {
        len = limit;
814
        cc = 3;
815 816
    }

817 818 819
    for (; len; len -= wordsize) {
        uint16_t v1 = pad;
        uint16_t v3 = pad;
820

821
        if (*src1len) {
822
            v1 = cpu_ldusize_data_ra(env, *src1, wordsize, ra);
823
        }
824
        if (*src3len) {
825
            v3 = cpu_ldusize_data_ra(env, *src3, wordsize, ra);
826 827 828 829
        }

        if (v1 != v3) {
            cc = (v1 < v3) ? 1 : 2;
830 831
            break;
        }
832

833
        if (*src1len) {
834 835
            *src1 += wordsize;
            *src1len -= wordsize;
836
        }
837
        if (*src3len) {
838 839
            *src3 += wordsize;
            *src3len -= wordsize;
840
        }
841 842
    }

843 844 845 846 847 848 849 850 851 852 853 854 855 856 857
    return cc;
}


/* compare logical long */
uint32_t HELPER(clcl)(CPUS390XState *env, uint32_t r1, uint32_t r2)
{
    uintptr_t ra = GETPC();
    uint64_t src1len = extract64(env->regs[r1 + 1], 0, 24);
    uint64_t src1 = get_address(env, r1);
    uint64_t src3len = extract64(env->regs[r2 + 1], 0, 24);
    uint64_t src3 = get_address(env, r2);
    uint8_t pad = env->regs[r2 + 1] >> 24;
    uint32_t cc;

858
    cc = do_clcl(env, &src1, &src1len, &src3, &src3len, pad, -1, 1, ra);
859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879

    env->regs[r1 + 1] = deposit64(env->regs[r1 + 1], 0, 24, src1len);
    env->regs[r2 + 1] = deposit64(env->regs[r2 + 1], 0, 24, src3len);
    set_address(env, r1, src1);
    set_address(env, r2, src3);

    return cc;
}

/* compare logical long extended memcompare insn with padding */
uint32_t HELPER(clcle)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
{
    uintptr_t ra = GETPC();
    uint64_t src1len = get_length(env, r1 + 1);
    uint64_t src1 = get_address(env, r1);
    uint64_t src3len = get_length(env, r3 + 1);
    uint64_t src3 = get_address(env, r3);
    uint8_t pad = a2;
    uint32_t cc;

880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902
    cc = do_clcl(env, &src1, &src1len, &src3, &src3len, pad, 0x2000, 1, ra);

    set_length(env, r1 + 1, src1len);
    set_length(env, r3 + 1, src3len);
    set_address(env, r1, src1);
    set_address(env, r3, src3);

    return cc;
}

/* compare logical long unicode memcompare insn with padding */
uint32_t HELPER(clclu)(CPUS390XState *env, uint32_t r1, uint64_t a2,
                       uint32_t r3)
{
    uintptr_t ra = GETPC();
    uint64_t src1len = get_length(env, r1 + 1);
    uint64_t src1 = get_address(env, r1);
    uint64_t src3len = get_length(env, r3 + 1);
    uint64_t src3 = get_address(env, r3);
    uint16_t pad = a2;
    uint32_t cc = 0;

    cc = do_clcl(env, &src1, &src1len, &src3, &src3len, pad, 0x1000, 2, ra);
903

904 905 906 907
    set_length(env, r1 + 1, src1len);
    set_length(env, r3 + 1, src3len);
    set_address(env, r1, src1);
    set_address(env, r3, src3);
908 909 910 911 912

    return cc;
}

/* checksum */
R
Richard Henderson 已提交
913 914
uint64_t HELPER(cksm)(CPUS390XState *env, uint64_t r1,
                      uint64_t src, uint64_t src_len)
915
{
916
    uintptr_t ra = GETPC();
R
Richard Henderson 已提交
917 918
    uint64_t max_len, len;
    uint64_t cksm = (uint32_t)r1;
919

R
Richard Henderson 已提交
920
    /* Lest we fail to service interrupts in a timely manner, limit the
921
       amount of work we're willing to do.  For now, let's cap at 8k.  */
R
Richard Henderson 已提交
922
    max_len = (src_len > 0x2000 ? 0x2000 : src_len);
923

R
Richard Henderson 已提交
924 925
    /* Process full words as available.  */
    for (len = 0; len + 4 <= max_len; len += 4, src += 4) {
926
        cksm += (uint32_t)cpu_ldl_data_ra(env, src, ra);
927 928
    }

R
Richard Henderson 已提交
929
    switch (max_len - len) {
930
    case 1:
931
        cksm += cpu_ldub_data_ra(env, src, ra) << 24;
R
Richard Henderson 已提交
932
        len += 1;
933 934
        break;
    case 2:
935
        cksm += cpu_lduw_data_ra(env, src, ra) << 16;
R
Richard Henderson 已提交
936
        len += 2;
937 938
        break;
    case 3:
939 940
        cksm += cpu_lduw_data_ra(env, src, ra) << 16;
        cksm += cpu_ldub_data_ra(env, src + 2, ra) << 8;
R
Richard Henderson 已提交
941
        len += 3;
942 943 944
        break;
    }

R
Richard Henderson 已提交
945 946 947 948 949 950 951 952
    /* 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);
953

R
Richard Henderson 已提交
954 955 956
    /* Return both cksm and processed length.  */
    env->retxl = cksm;
    return len;
957 958
}

A
Aurelien Jarno 已提交
959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995
void HELPER(pack)(CPUS390XState *env, uint32_t len, uint64_t dest, uint64_t src)
{
    uintptr_t ra = GETPC();
    int len_dest = len >> 4;
    int len_src = len & 0xf;
    uint8_t b;

    dest += len_dest;
    src += len_src;

    /* last byte is special, it only flips the nibbles */
    b = cpu_ldub_data_ra(env, src, ra);
    cpu_stb_data_ra(env, dest, (b << 4) | (b >> 4), ra);
    src--;
    len_src--;

    /* now pack every value */
    while (len_dest >= 0) {
        b = 0;

        if (len_src > 0) {
            b = cpu_ldub_data_ra(env, src, ra) & 0x0f;
            src--;
            len_src--;
        }
        if (len_src > 0) {
            b |= cpu_ldub_data_ra(env, src, ra) << 4;
            src--;
            len_src--;
        }

        len_dest--;
        dest--;
        cpu_stb_data_ra(env, dest, b, ra);
    }
}

996 997
static inline void do_pkau(CPUS390XState *env, uint64_t dest, uint64_t src,
                           uint32_t srclen, int ssize, uintptr_t ra)
998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012
{
    int i;
    /* The destination operand is always 16 bytes long.  */
    const int destlen = 16;

    /* The operands are processed from right to left.  */
    src += srclen - 1;
    dest += destlen - 1;

    for (i = 0; i < destlen; i++) {
        uint8_t b = 0;

        /* Start with a positive sign */
        if (i == 0) {
            b = 0xc;
1013
        } else if (srclen > ssize) {
1014
            b = cpu_ldub_data_ra(env, src, ra) & 0x0f;
1015 1016
            src -= ssize;
            srclen -= ssize;
1017 1018
        }

1019
        if (srclen > ssize) {
1020
            b |= cpu_ldub_data_ra(env, src, ra) << 4;
1021 1022
            src -= ssize;
            srclen -= ssize;
1023 1024 1025 1026 1027 1028 1029
        }

        cpu_stb_data_ra(env, dest, b, ra);
        dest--;
    }
}

1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042

void HELPER(pka)(CPUS390XState *env, uint64_t dest, uint64_t src,
                 uint32_t srclen)
{
    do_pkau(env, dest, src, srclen, 1, GETPC());
}

void HELPER(pku)(CPUS390XState *env, uint64_t dest, uint64_t src,
                 uint32_t srclen)
{
    do_pkau(env, dest, src, srclen, 2, GETPC());
}

1043 1044
void HELPER(unpk)(CPUS390XState *env, uint32_t len, uint64_t dest,
                  uint64_t src)
1045
{
1046
    uintptr_t ra = GETPC();
1047 1048 1049 1050 1051 1052 1053 1054 1055
    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 */
1056 1057
    b = cpu_ldub_data_ra(env, src, ra);
    cpu_stb_data_ra(env, dest, (b << 4) | (b >> 4), ra);
1058 1059 1060 1061 1062 1063 1064 1065 1066
    src--;
    len_src--;

    /* now pad every nibble with 0xf0 */

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

        if (len_src > 0) {
1067
            cur_byte = cpu_ldub_data_ra(env, src, ra);
1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085
        }

        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;

1086
        cpu_stb_data_ra(env, dest, cur_byte, ra);
1087 1088 1089
    }
}

1090 1091 1092
static inline uint32_t do_unpkau(CPUS390XState *env, uint64_t dest,
                                 uint32_t destlen, int dsize, uint64_t src,
                                 uintptr_t ra)
1093 1094 1095 1096 1097 1098 1099 1100 1101
{
    int i;
    uint32_t cc;
    uint8_t b;
    /* The source operand is always 16 bytes long.  */
    const int srclen = 16;

    /* The operands are processed from right to left.  */
    src += srclen - 1;
1102
    dest += destlen - dsize;
1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123

    /* Check for the sign.  */
    b = cpu_ldub_data_ra(env, src, ra);
    src--;
    switch (b & 0xf) {
    case 0xa:
    case 0xc:
    case 0xe ... 0xf:
        cc = 0;  /* plus */
        break;
    case 0xb:
    case 0xd:
        cc = 1;  /* minus */
        break;
    default:
    case 0x0 ... 0x9:
        cc = 3;  /* invalid */
        break;
    }

    /* Now pad every nibble with 0x30, advancing one nibble at a time. */
1124 1125 1126
    for (i = 0; i < destlen; i += dsize) {
        if (i == (31 * dsize)) {
            /* If length is 32/64 bytes, the leftmost byte is 0. */
1127
            b = 0;
1128
        } else if (i % (2 * dsize)) {
1129 1130 1131 1132 1133
            b = cpu_ldub_data_ra(env, src, ra);
            src--;
        } else {
            b >>= 4;
        }
1134 1135
        cpu_stsize_data_ra(env, dest, 0x30 + (b & 0xf), dsize, ra);
        dest -= dsize;
1136 1137 1138 1139 1140
    }

    return cc;
}

1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152
uint32_t HELPER(unpka)(CPUS390XState *env, uint64_t dest, uint32_t destlen,
                       uint64_t src)
{
    return do_unpkau(env, dest, destlen, 1, src, GETPC());
}

uint32_t HELPER(unpku)(CPUS390XState *env, uint64_t dest, uint32_t destlen,
                       uint64_t src)
{
    return do_unpkau(env, dest, destlen, 2, src, GETPC());
}

1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175
uint32_t HELPER(tp)(CPUS390XState *env, uint64_t dest, uint32_t destlen)
{
    uintptr_t ra = GETPC();
    uint32_t cc = 0;
    int i;

    for (i = 0; i < destlen; i++) {
        uint8_t b = cpu_ldub_data_ra(env, dest + i, ra);
        /* digit */
        cc |= (b & 0xf0) > 0x90 ? 2 : 0;

        if (i == (destlen - 1)) {
            /* sign */
            cc |= (b & 0xf) < 0xa ? 1 : 0;
        } else {
            /* digit */
            cc |= (b & 0xf) > 0x9 ? 2 : 0;
        }
    }

    return cc;
}

1176 1177
static uint32_t do_helper_tr(CPUS390XState *env, uint32_t len, uint64_t array,
                             uint64_t trans, uintptr_t ra)
1178
{
1179
    uint32_t i;
1180 1181

    for (i = 0; i <= len; i++) {
1182 1183 1184
        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);
1185
    }
1186 1187

    return env->cc_op;
1188 1189
}

1190 1191 1192
void HELPER(tr)(CPUS390XState *env, uint32_t len, uint64_t array,
                uint64_t trans)
{
1193
    do_helper_tr(env, len, array, trans, GETPC());
1194 1195
}

1196 1197 1198
uint64_t HELPER(tre)(CPUS390XState *env, uint64_t array,
                     uint64_t len, uint64_t trans)
{
1199
    uintptr_t ra = GETPC();
1200 1201 1202
    uint8_t end = env->regs[0] & 0xff;
    uint64_t l = len;
    uint64_t i;
1203
    uint32_t cc = 0;
1204 1205 1206 1207 1208 1209 1210 1211 1212 1213

    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;
1214
        cc = 3;
1215 1216 1217 1218 1219
    }

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

1220
        byte = cpu_ldub_data_ra(env, array + i, ra);
1221 1222

        if (byte == end) {
1223
            cc = 1;
1224 1225 1226
            break;
        }

1227 1228
        new_byte = cpu_ldub_data_ra(env, trans + byte, ra);
        cpu_stb_data_ra(env, array + i, new_byte, ra);
1229 1230
    }

1231
    env->cc_op = cc;
1232 1233 1234 1235
    env->retxl = len - i;
    return array + i;
}

1236 1237
static uint32_t do_helper_trt(CPUS390XState *env, uint32_t len, uint64_t array,
                              uint64_t trans, uintptr_t ra)
1238
{
1239
    uint32_t i;
1240 1241

    for (i = 0; i <= len; i++) {
1242 1243
        uint8_t byte = cpu_ldub_data_ra(env, array + i, ra);
        uint8_t sbyte = cpu_ldub_data_ra(env, trans + byte, ra);
1244 1245

        if (sbyte != 0) {
1246
            set_address(env, 1, array + i);
1247 1248
            env->regs[2] = deposit64(env->regs[2], 0, 8, sbyte);
            return (i == len) ? 2 : 1;
1249 1250 1251
        }
    }

1252 1253 1254 1255 1256 1257 1258
    return 0;
}

uint32_t HELPER(trt)(CPUS390XState *env, uint32_t len, uint64_t array,
                     uint64_t trans)
{
    return do_helper_trt(env, len, array, trans, GETPC());
1259 1260
}

1261 1262 1263 1264 1265 1266 1267
/* Translate one/two to one/two */
uint32_t HELPER(trXX)(CPUS390XState *env, uint32_t r1, uint32_t r2,
                      uint32_t tst, uint32_t sizes)
{
    uintptr_t ra = GETPC();
    int dsize = (sizes & 1) ? 1 : 2;
    int ssize = (sizes & 2) ? 1 : 2;
1268
    uint64_t tbl = get_address(env, 1);
1269 1270 1271 1272 1273 1274
    uint64_t dst = get_address(env, r1);
    uint64_t len = get_length(env, r1 + 1);
    uint64_t src = get_address(env, r2);
    uint32_t cc = 3;
    int i;

1275 1276 1277 1278 1279 1280 1281 1282 1283
    /* The lower address bits of TBL are ignored.  For TROO, TROT, it's
       the low 3 bits (double-word aligned).  For TRTO, TRTT, it's either
       the low 12 bits (4K, without ETF2-ENH) or 3 bits (with ETF2-ENH).  */
    if (ssize == 2 && !s390_has_feat(S390_FEAT_ETF2_ENH)) {
        tbl &= -4096;
    } else {
        tbl &= -8;
    }

1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314
    check_alignment(env, len, ssize, ra);

    /* Lest we fail to service interrupts in a timely manner, */
    /* limit the amount of work we're willing to do.   */
    for (i = 0; i < 0x2000; i++) {
        uint16_t sval = cpu_ldusize_data_ra(env, src, ssize, ra);
        uint64_t tble = tbl + (sval * dsize);
        uint16_t dval = cpu_ldusize_data_ra(env, tble, dsize, ra);
        if (dval == tst) {
            cc = 1;
            break;
        }
        cpu_stsize_data_ra(env, dst, dval, dsize, ra);

        len -= ssize;
        src += ssize;
        dst += dsize;

        if (len == 0) {
            cc = 0;
            break;
        }
    }

    set_address(env, r1, dst);
    set_length(env, r1 + 1, len);
    set_address(env, r2, src);

    return cc;
}

1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335
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;

1336 1337
        check_alignment(env, addr, 16, ra);

1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
        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);
}

1356
#if !defined(CONFIG_USER_ONLY)
1357
void HELPER(lctlg)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
1358
{
1359
    uintptr_t ra = GETPC();
1360
    S390CPU *cpu = s390_env_get_cpu(env);
1361
    bool PERchanged = false;
1362
    uint64_t src = a2;
1363
    uint32_t i;
1364 1365

    for (i = r1;; i = (i + 1) % 16) {
1366
        uint64_t val = cpu_ldq_data_ra(env, src, ra);
1367 1368 1369 1370
        if (env->cregs[i] != val && i >= 9 && i <= 11) {
            PERchanged = true;
        }
        env->cregs[i] = val;
1371
        HELPER_LOG("load ctl %d from 0x%" PRIx64 " == 0x%" PRIx64 "\n",
1372
                   i, src, val);
1373 1374 1375 1376 1377 1378 1379
        src += sizeof(uint64_t);

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

1380 1381 1382 1383
    if (PERchanged && env->psw.mask & PSW_MASK_PER) {
        s390_cpu_recompute_watchpoints(CPU(cpu));
    }

1384
    tlb_flush(CPU(cpu));
1385 1386
}

1387
void HELPER(lctl)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
1388
{
1389
    uintptr_t ra = GETPC();
1390
    S390CPU *cpu = s390_env_get_cpu(env);
1391
    bool PERchanged = false;
1392
    uint64_t src = a2;
1393
    uint32_t i;
1394 1395

    for (i = r1;; i = (i + 1) % 16) {
1396
        uint32_t val = cpu_ldl_data_ra(env, src, ra);
1397 1398 1399
        if ((uint32_t)env->cregs[i] != val && i >= 9 && i <= 11) {
            PERchanged = true;
        }
1400 1401
        env->cregs[i] = deposit64(env->cregs[i], 0, 32, val);
        HELPER_LOG("load ctl %d from 0x%" PRIx64 " == 0x%x\n", i, src, val);
1402 1403 1404 1405 1406 1407 1408
        src += sizeof(uint32_t);

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

1409 1410 1411 1412
    if (PERchanged && env->psw.mask & PSW_MASK_PER) {
        s390_cpu_recompute_watchpoints(CPU(cpu));
    }

1413
    tlb_flush(CPU(cpu));
1414 1415
}

1416
void HELPER(stctg)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
1417
{
1418
    uintptr_t ra = GETPC();
1419
    uint64_t dest = a2;
1420
    uint32_t i;
1421 1422

    for (i = r1;; i = (i + 1) % 16) {
1423
        cpu_stq_data_ra(env, dest, env->cregs[i], ra);
1424 1425 1426 1427 1428 1429 1430 1431
        dest += sizeof(uint64_t);

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

1432
void HELPER(stctl)(CPUS390XState *env, uint32_t r1, uint64_t a2, uint32_t r3)
1433
{
1434
    uintptr_t ra = GETPC();
1435
    uint64_t dest = a2;
1436
    uint32_t i;
1437 1438

    for (i = r1;; i = (i + 1) % 16) {
1439
        cpu_stl_data_ra(env, dest, env->cregs[i], ra);
1440 1441 1442 1443 1444 1445 1446 1447
        dest += sizeof(uint32_t);

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

1448 1449
uint32_t HELPER(testblock)(CPUS390XState *env, uint64_t real_addr)
{
1450
    uintptr_t ra = GETPC();
1451 1452 1453 1454
    CPUState *cs = CPU(s390_env_get_cpu(env));
    uint64_t abs_addr;
    int i;

1455
    real_addr = wrap_address(env, real_addr);
1456 1457 1458
    abs_addr = mmu_real2abs(env, real_addr) & TARGET_PAGE_MASK;
    if (!address_space_access_valid(&address_space_memory, abs_addr,
                                    TARGET_PAGE_SIZE, true)) {
1459
        cpu_restore_state(cs, ra);
1460 1461 1462 1463 1464 1465
        program_interrupt(env, PGM_ADDRESSING, 4);
        return 1;
    }

    /* Check low-address protection */
    if ((env->cregs[0] & CR0_LOWPROT) && real_addr < 0x2000) {
1466
        cpu_restore_state(cs, ra);
1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477
        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;
}

1478 1479 1480 1481 1482 1483 1484
uint32_t HELPER(tprot)(uint64_t a1, uint64_t a2)
{
    /* XXX implement */
    return 0;
}

/* insert storage key extended */
1485
uint64_t HELPER(iske)(CPUS390XState *env, uint64_t r2)
1486
{
1487 1488
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
1489
    uint64_t addr = wrap_address(env, r2);
1490
    uint8_t key;
1491 1492 1493 1494 1495

    if (addr > ram_size) {
        return 0;
    }

1496 1497 1498 1499 1500 1501 1502 1503 1504
    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;
1505 1506 1507
}

/* set storage key extended */
R
Richard Henderson 已提交
1508
void HELPER(sske)(CPUS390XState *env, uint64_t r1, uint64_t r2)
1509
{
1510 1511
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
1512
    uint64_t addr = wrap_address(env, r2);
1513
    uint8_t key;
1514 1515 1516 1517 1518

    if (addr > ram_size) {
        return;
    }

1519 1520 1521 1522 1523 1524 1525
    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);
1526 1527 1528
}

/* reset reference bit extended */
R
Richard Henderson 已提交
1529
uint32_t HELPER(rrbe)(CPUS390XState *env, uint64_t r2)
1530
{
1531 1532 1533
    static S390SKeysState *ss;
    static S390SKeysClass *skeyclass;
    uint8_t re, key;
1534 1535 1536 1537 1538

    if (r2 > ram_size) {
        return 0;
    }

1539 1540 1541 1542 1543 1544 1545 1546 1547
    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;
    }

1548
    re = key & (SK_R | SK_C);
1549 1550 1551 1552 1553
    key &= ~SK_R;

    if (skeyclass->set_skeys(ss, r2 / TARGET_PAGE_SIZE, 1, &key)) {
        return 0;
    }
1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566

    /*
     * 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;
}

1567
uint32_t HELPER(mvcs)(CPUS390XState *env, uint64_t l, uint64_t a1, uint64_t a2)
1568
{
1569
    uintptr_t ra = GETPC();
1570
    int cc = 0, i;
1571

1572 1573 1574 1575
    HELPER_LOG("%s: %16" PRIx64 " %16" PRIx64 " %16" PRIx64 "\n",
               __func__, l, a1, a2);

    if (l > 256) {
1576 1577 1578 1579 1580 1581 1582
        /* max 256 */
        l = 256;
        cc = 3;
    }

    /* XXX replace w/ memcpy */
    for (i = 0; i < l; i++) {
1583 1584
        uint8_t x = cpu_ldub_primary_ra(env, a2 + i, ra);
        cpu_stb_secondary_ra(env, a1 + i, x, ra);
1585 1586 1587 1588 1589
    }

    return cc;
}

1590
uint32_t HELPER(mvcp)(CPUS390XState *env, uint64_t l, uint64_t a1, uint64_t a2)
1591
{
1592
    uintptr_t ra = GETPC();
1593 1594
    int cc = 0, i;

1595 1596 1597
    HELPER_LOG("%s: %16" PRIx64 " %16" PRIx64 " %16" PRIx64 "\n",
               __func__, l, a1, a2);

1598 1599 1600 1601 1602
    if (l > 256) {
        /* max 256 */
        l = 256;
        cc = 3;
    }
1603

1604 1605
    /* XXX replace w/ memcpy */
    for (i = 0; i < l; i++) {
1606 1607
        uint8_t x = cpu_ldub_secondary_ra(env, a2 + i, ra);
        cpu_stb_primary_ra(env, a1 + i, x, ra);
1608
    }
1609

1610
    return cc;
1611 1612
}

1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663
void HELPER(idte)(CPUS390XState *env, uint64_t r1, uint64_t r2, uint32_t m4)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));
    const uintptr_t ra = GETPC();
    uint64_t table, entry, raddr;
    uint16_t entries, i, index = 0;

    if (r2 & 0xff000) {
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_SPECIFICATION, 4);
    }

    if (!(r2 & 0x800)) {
        /* invalidation-and-clearing operation */
        table = r1 & _ASCE_ORIGIN;
        entries = (r2 & 0x7ff) + 1;

        switch (r1 & _ASCE_TYPE_MASK) {
        case _ASCE_TYPE_REGION1:
            index = (r2 >> 53) & 0x7ff;
            break;
        case _ASCE_TYPE_REGION2:
            index = (r2 >> 42) & 0x7ff;
            break;
        case _ASCE_TYPE_REGION3:
            index = (r2 >> 31) & 0x7ff;
            break;
        case _ASCE_TYPE_SEGMENT:
            index = (r2 >> 20) & 0x7ff;
            break;
        }
        for (i = 0; i < entries; i++) {
            /* addresses are not wrapped in 24/31bit mode but table index is */
            raddr = table + ((index + i) & 0x7ff) * sizeof(entry);
            entry = ldq_phys(cs->as, raddr);
            if (!(entry & _REGION_ENTRY_INV)) {
                /* we are allowed to not store if already invalid */
                entry |= _REGION_ENTRY_INV;
                stq_phys(cs->as, raddr, entry);
            }
        }
    }

    /* We simply flush the complete tlb, therefore we can ignore r3. */
    if (m4 & 1) {
        tlb_flush(cs);
    } else {
        tlb_flush_all_cpus_synced(cs);
    }
}

1664
/* invalidate pte */
1665 1666
void HELPER(ipte)(CPUS390XState *env, uint64_t pto, uint64_t vaddr,
                  uint32_t m4)
1667
{
1668
    CPUState *cs = CPU(s390_env_get_cpu(env));
1669
    uint64_t page = vaddr & TARGET_PAGE_MASK;
1670
    uint64_t pte_addr, pte;
1671

1672 1673
    /* Compute the page table entry address */
    pte_addr = (pto & _SEGMENT_ENTRY_ORIGIN);
1674
    pte_addr += (vaddr & VADDR_PX) >> 9;
1675 1676 1677 1678 1679

    /* Mark the page table entry as invalid */
    pte = ldq_phys(cs->as, pte_addr);
    pte |= _PAGE_INVALID;
    stq_phys(cs->as, pte_addr, pte);
1680 1681 1682

    /* XXX we exploit the fact that Linux passes the exact virtual
       address here - it's not obliged to! */
1683
    if (m4 & 1) {
1684 1685 1686 1687 1688 1689 1690 1691
        if (vaddr & ~VADDR_PX) {
            tlb_flush_page(cs, page);
            /* XXX 31-bit hack */
            tlb_flush_page(cs, page ^ 0x80000000);
        } else {
            /* looks like we don't have a valid virtual address */
            tlb_flush(cs);
        }
1692
    } else {
1693 1694 1695 1696 1697 1698 1699 1700
        if (vaddr & ~VADDR_PX) {
            tlb_flush_page_all_cpus_synced(cs, page);
            /* XXX 31-bit hack */
            tlb_flush_page_all_cpus_synced(cs, page ^ 0x80000000);
        } else {
            /* looks like we don't have a valid virtual address */
            tlb_flush_all_cpus_synced(cs);
        }
1701 1702 1703 1704
    }
}

/* flush local tlb */
1705
void HELPER(ptlb)(CPUS390XState *env)
1706
{
1707 1708
    S390CPU *cpu = s390_env_get_cpu(env);

1709
    tlb_flush(CPU(cpu));
1710 1711
}

1712 1713 1714 1715 1716 1717 1718 1719
/* flush global tlb */
void HELPER(purge)(CPUS390XState *env)
{
    S390CPU *cpu = s390_env_get_cpu(env);

    tlb_flush_all_cpus_synced(CPU(cpu));
}

1720 1721 1722 1723 1724
/* load using real address */
uint64_t HELPER(lura)(CPUS390XState *env, uint64_t addr)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));

1725
    return (uint32_t)ldl_phys(cs->as, wrap_address(env, addr));
1726 1727 1728 1729 1730 1731
}

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

1732
    return ldq_phys(cs->as, wrap_address(env, addr));
1733 1734
}

1735
/* store using real address */
R
Richard Henderson 已提交
1736
void HELPER(stura)(CPUS390XState *env, uint64_t addr, uint64_t v1)
1737
{
1738 1739
    CPUState *cs = CPU(s390_env_get_cpu(env));

1740
    stl_phys(cs->as, wrap_address(env, addr), (uint32_t)v1);
1741 1742 1743 1744 1745 1746 1747 1748

    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);
    }
1749 1750
}

1751 1752 1753 1754
void HELPER(sturg)(CPUS390XState *env, uint64_t addr, uint64_t v1)
{
    CPUState *cs = CPU(s390_env_get_cpu(env));

1755
    stq_phys(cs->as, wrap_address(env, addr), v1);
1756 1757 1758 1759 1760 1761 1762 1763

    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);
    }
1764 1765
}

1766
/* load real address */
R
Richard Henderson 已提交
1767
uint64_t HELPER(lra)(CPUS390XState *env, uint64_t addr)
1768
{
1769
    CPUState *cs = CPU(s390_env_get_cpu(env));
1770 1771 1772
    uint32_t cc = 0;
    uint64_t asc = env->psw.mask & PSW_MASK_ASC;
    uint64_t ret;
1773
    int old_exc, flags;
1774 1775 1776

    /* XXX incomplete - has more corner cases */
    if (!(env->psw.mask & PSW_MASK_64) && (addr >> 32)) {
1777
        cpu_restore_state(cs, GETPC());
1778 1779 1780
        program_interrupt(env, PGM_SPECIAL_OP, 2);
    }

1781
    old_exc = cs->exception_index;
1782
    if (mmu_translate(env, addr, 0, asc, &ret, &flags, true)) {
1783 1784
        cc = 3;
    }
1785
    if (cs->exception_index == EXCP_PGM) {
1786 1787 1788 1789
        ret = env->int_pgm_code | 0x80000000;
    } else {
        ret |= addr & ~TARGET_PAGE_MASK;
    }
1790
    cs->exception_index = old_exc;
1791

R
Richard Henderson 已提交
1792 1793
    env->cc_op = cc;
    return ret;
1794 1795
}
#endif
1796

1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823
/* load pair from quadword */
uint64_t HELPER(lpq)(CPUS390XState *env, uint64_t addr)
{
    uintptr_t ra = GETPC();
    uint64_t hi, lo;

    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);
        Int128 v = helper_atomic_ldo_be_mmu(env, addr, oi, ra);
        hi = int128_gethi(v);
        lo = int128_getlo(v);
#endif
    } else {
        check_alignment(env, addr, 16, ra);

        hi = cpu_ldq_data_ra(env, addr + 0, ra);
        lo = cpu_ldq_data_ra(env, addr + 8, ra);
    }

    env->retxl = lo;
    return hi;
}

1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847
/* store pair to quadword */
void HELPER(stpq)(CPUS390XState *env, uint64_t addr,
                  uint64_t low, uint64_t high)
{
    uintptr_t ra = GETPC();

    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);

        Int128 v = int128_make128(low, high);
        helper_atomic_sto_be_mmu(env, addr, v, oi, ra);
#endif
    } else {
        check_alignment(env, addr, 16, ra);

        cpu_stq_data_ra(env, addr + 0, high, ra);
        cpu_stq_data_ra(env, addr + 8, low, ra);
    }
}

1848 1849 1850 1851 1852 1853
/* 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.

   Perform this by recording the modified instruction in env->ex_value.
   This will be noticed by cpu_get_tb_cpu_state and thus tb translation.
1854
*/
1855
void HELPER(ex)(CPUS390XState *env, uint32_t ilen, uint64_t r1, uint64_t addr)
1856
{
1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877
    uint64_t insn = cpu_lduw_code(env, addr);
    uint8_t opc = insn >> 8;

    /* Or in the contents of R1[56:63].  */
    insn |= r1 & 0xff;

    /* Load the rest of the instruction.  */
    insn <<= 48;
    switch (get_ilen(opc)) {
    case 2:
        break;
    case 4:
        insn |= (uint64_t)cpu_lduw_code(env, addr + 2) << 32;
        break;
    case 6:
        insn |= (uint64_t)(uint32_t)cpu_ldl_code(env, addr + 2) << 16;
        break;
    default:
        g_assert_not_reached();
    }

1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898
    /* The very most common cases can be sped up by avoiding a new TB.  */
    if ((opc & 0xf0) == 0xd0) {
        typedef uint32_t (*dx_helper)(CPUS390XState *, uint32_t, uint64_t,
                                      uint64_t, uintptr_t);
        static const dx_helper dx[16] = {
            [0x2] = do_helper_mvc,
            [0x4] = do_helper_nc,
            [0x5] = do_helper_clc,
            [0x6] = do_helper_oc,
            [0x7] = do_helper_xc,
            [0xc] = do_helper_tr,
            [0xd] = do_helper_trt,
        };
        dx_helper helper = dx[opc & 0xf];

        if (helper) {
            uint32_t l = extract64(insn, 48, 8);
            uint32_t b1 = extract64(insn, 44, 4);
            uint32_t d1 = extract64(insn, 32, 12);
            uint32_t b2 = extract64(insn, 28, 4);
            uint32_t d2 = extract64(insn, 16, 12);
1899 1900
            uint64_t a1 = wrap_address(env, env->regs[b1] + d1);
            uint64_t a2 = wrap_address(env, env->regs[b2] + d2);
1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912

            env->cc_op = helper(env, l, a1, a2, 0);
            env->psw.addr += ilen;
            return;
        }
    } else if (opc == 0x0a) {
        env->int_svc_code = extract64(insn, 48, 8);
        env->int_svc_ilen = ilen;
        helper_exception(env, EXCP_SVC);
        g_assert_not_reached();
    }

1913 1914 1915 1916 1917
    /* Record the insn we want to execute as well as the ilen to use
       during the execution of the target insn.  This will also ensure
       that ex_value is non-zero, which flags that we are in a state
       that requires such execution.  */
    env->ex_value = insn | ilen;
1918
}
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uint32_t HELPER(mvcos)(CPUS390XState *env, uint64_t dest, uint64_t src,
                       uint64_t len)
{
    const uint8_t psw_key = (env->psw.mask & PSW_MASK_KEY) >> PSW_SHIFT_KEY;
    const uint8_t psw_as = (env->psw.mask & PSW_MASK_ASC) >> PSW_SHIFT_ASC;
    const uint64_t r0 = env->regs[0];
    const uintptr_t ra = GETPC();
    CPUState *cs = CPU(s390_env_get_cpu(env));
    uint8_t dest_key, dest_as, dest_k, dest_a;
    uint8_t src_key, src_as, src_k, src_a;
    uint64_t val;
    int cc = 0;

    HELPER_LOG("%s dest %" PRIx64 ", src %" PRIx64 ", len %" PRIx64 "\n",
               __func__, dest, src, len);

    if (!(env->psw.mask & PSW_MASK_DAT)) {
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_SPECIAL_OP, 6);
    }

    /* OAC (operand access control) for the first operand -> dest */
    val = (r0 & 0xffff0000ULL) >> 16;
    dest_key = (val >> 12) & 0xf;
    dest_as = (val >> 6) & 0x3;
    dest_k = (val >> 1) & 0x1;
    dest_a = val & 0x1;

    /* OAC (operand access control) for the second operand -> src */
    val = (r0 & 0x0000ffffULL);
    src_key = (val >> 12) & 0xf;
    src_as = (val >> 6) & 0x3;
    src_k = (val >> 1) & 0x1;
    src_a = val & 0x1;

    if (!dest_k) {
        dest_key = psw_key;
    }
    if (!src_k) {
        src_key = psw_key;
    }
    if (!dest_a) {
        dest_as = psw_as;
    }
    if (!src_a) {
        src_as = psw_as;
    }

    if (dest_a && dest_as == AS_HOME && (env->psw.mask & PSW_MASK_PSTATE)) {
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_SPECIAL_OP, 6);
    }
    if (!(env->cregs[0] & CR0_SECONDARY) &&
        (dest_as == AS_SECONDARY || src_as == AS_SECONDARY)) {
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_SPECIAL_OP, 6);
    }
    if (!psw_key_valid(env, dest_key) || !psw_key_valid(env, src_key)) {
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_PRIVILEGED, 6);
    }

    len = wrap_length(env, len);
    if (len > 4096) {
        cc = 3;
        len = 4096;
    }

    /* FIXME: AR-mode and proper problem state mode (using PSW keys) missing */
    if (src_as == AS_ACCREG || dest_as == AS_ACCREG ||
        (env->psw.mask & PSW_MASK_PSTATE)) {
        qemu_log_mask(LOG_UNIMP, "%s: AR-mode and PSTATE support missing\n",
                      __func__);
        cpu_restore_state(cs, ra);
        program_interrupt(env, PGM_ADDRESSING, 6);
    }

    /* FIXME: a) LAP
     *        b) Access using correct keys
     *        c) AR-mode
     */
#ifdef CONFIG_USER_ONLY
    /* psw keys are never valid in user mode, we will never reach this */
    g_assert_not_reached();
#else
    fast_memmove_as(env, dest, src, len, dest_as, src_as, ra);
#endif

    return cc;
}