syscall.c 76.5 KB
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/*
 *  Linux syscalls
 * 
 *  Copyright (c) 2003 Fabrice Bellard
 *
 *  This program is free software; you can redistribute it and/or modify
 *  it under the terms of the GNU General Public License as published by
 *  the Free Software Foundation; either version 2 of the License, or
 *  (at your option) any later version.
 *
 *  This program 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 General Public License for more details.
 *
 *  You should have received a copy of the GNU General Public License
 *  along with this program; if not, write to the Free Software
 *  Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 */
#include <stdlib.h>
#include <stdio.h>
#include <stdarg.h>
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#include <string.h>
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#include <elf.h>
#include <endian.h>
#include <errno.h>
#include <unistd.h>
#include <fcntl.h>
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#include <time.h>
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#include <sys/types.h>
#include <sys/wait.h>
#include <sys/time.h>
#include <sys/stat.h>
#include <sys/mount.h>
#include <sys/resource.h>
#include <sys/mman.h>
#include <sys/swap.h>
#include <signal.h>
#include <sched.h>
#include <sys/socket.h>
#include <sys/uio.h>
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#include <sys/poll.h>
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#include <sys/times.h>
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//#include <sys/user.h>
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#include <netinet/tcp.h>
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#define termios host_termios
#define winsize host_winsize
#define termio host_termio
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#define sgttyb host_sgttyb /* same as target */
#define tchars host_tchars /* same as target */
#define ltchars host_ltchars /* same as target */
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#include <linux/termios.h>
#include <linux/unistd.h>
#include <linux/utsname.h>
#include <linux/cdrom.h>
#include <linux/hdreg.h>
#include <linux/soundcard.h>
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#include <linux/dirent.h>
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#include "qemu.h"
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//#define DEBUG
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#ifndef PAGE_SIZE
#define PAGE_SIZE 4096
#define PAGE_MASK ~(PAGE_SIZE - 1)
#endif

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//#include <linux/msdos_fs.h>
#define	VFAT_IOCTL_READDIR_BOTH		_IOR('r', 1, struct dirent [2])
#define	VFAT_IOCTL_READDIR_SHORT	_IOR('r', 2, struct dirent [2])

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void host_to_target_siginfo(target_siginfo_t *tinfo, const siginfo_t *info);
void target_to_host_siginfo(siginfo_t *info, const target_siginfo_t *tinfo);
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long do_sigreturn(CPUX86State *env);
long do_rt_sigreturn(CPUX86State *env);

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#define __NR_sys_uname __NR_uname
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#define __NR_sys_getcwd1 __NR_getcwd
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#define __NR_sys_statfs __NR_statfs
#define __NR_sys_fstatfs __NR_fstatfs
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#define __NR_sys_getdents __NR_getdents
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#define __NR_sys_getdents64 __NR_getdents64
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#define __NR_sys_rt_sigqueueinfo __NR_rt_sigqueueinfo
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#ifdef __alpha__
#define __NR__llseek __NR_lseek
#endif

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#ifdef __NR_gettid
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_syscall0(int, gettid)
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#else
static int gettid(void) {
    return -ENOSYS;
}
#endif
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_syscall1(int,sys_uname,struct new_utsname *,buf)
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_syscall2(int,sys_getcwd1,char *,buf,size_t,size)
_syscall3(int, sys_getdents, uint, fd, struct dirent *, dirp, uint, count);
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_syscall3(int, sys_getdents64, uint, fd, struct dirent64 *, dirp, uint, count);
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_syscall5(int, _llseek,  uint,  fd, ulong, hi, ulong, lo,
          loff_t *, res, uint, wh);
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_syscall2(int,sys_statfs,const char *,path,struct kernel_statfs *,buf)
_syscall2(int,sys_fstatfs,int,fd,struct kernel_statfs *,buf)
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_syscall3(int,sys_rt_sigqueueinfo,int,pid,int,sig,siginfo_t *,uinfo)

extern int personality(int);
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extern int flock(int, int);
extern int setfsuid(int);
extern int setfsgid(int);
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extern int setresuid(uid_t, uid_t, uid_t);
extern int getresuid(uid_t *, uid_t *, uid_t *);
extern int setresgid(gid_t, gid_t, gid_t);
extern int getresgid(gid_t *, gid_t *, gid_t *);
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static inline long get_errno(long ret)
{
    if (ret == -1)
        return -errno;
    else
        return ret;
}

static inline int is_error(long ret)
{
    return (unsigned long)ret >= (unsigned long)(-4096);
}

static char *target_brk;
static char *target_original_brk;

void target_set_brk(char *new_brk)
{
    target_brk = new_brk;
    target_original_brk = new_brk;
}

static long do_brk(char *new_brk)
{
    char *brk_page;
    long mapped_addr;
    int	new_alloc_size;

    if (!new_brk)
        return (long)target_brk;
    if (new_brk < target_original_brk)
        return -ENOMEM;
    
    brk_page = (char *)(((unsigned long)target_brk + PAGE_SIZE - 1) & PAGE_MASK);

    /* If the new brk is less than this, set it and we're done... */
    if (new_brk < brk_page) {
	target_brk = new_brk;
    	return (long)target_brk;
    }

    /* We need to allocate more memory after the brk... */
    new_alloc_size = ((new_brk - brk_page + 1)+(PAGE_SIZE-1)) & PAGE_MASK;
    mapped_addr = get_errno((long)mmap((caddr_t)brk_page, new_alloc_size, 
                                       PROT_READ|PROT_WRITE,
                                       MAP_ANON|MAP_FIXED|MAP_PRIVATE, 0, 0));
    
    if (is_error(mapped_addr)) {
	return mapped_addr;
    } else {
	target_brk = new_brk;
    	return (long)target_brk;
    }
}

static inline fd_set *target_to_host_fds(fd_set *fds, 
                                         target_long *target_fds, int n)
{
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#if !defined(BSWAP_NEEDED) && !defined(WORDS_BIGENDIAN)
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    return (fd_set *)target_fds;
#else
    int i, b;
    if (target_fds) {
        FD_ZERO(fds);
        for(i = 0;i < n; i++) {
            b = (tswapl(target_fds[i / TARGET_LONG_BITS]) >>
                 (i & (TARGET_LONG_BITS - 1))) & 1;
            if (b)
                FD_SET(i, fds);
        }
        return fds;
    } else {
        return NULL;
    }
#endif
}

static inline void host_to_target_fds(target_long *target_fds, 
                                      fd_set *fds, int n)
{
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#if !defined(BSWAP_NEEDED) && !defined(WORDS_BIGENDIAN)
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    /* nothing to do */
#else
    int i, nw, j, k;
    target_long v;

    if (target_fds) {
        nw = n / TARGET_LONG_BITS;
        k = 0;
        for(i = 0;i < nw; i++) {
            v = 0;
            for(j = 0; j < TARGET_LONG_BITS; j++) {
                v |= ((FD_ISSET(k, fds) != 0) << j);
                k++;
            }
            target_fds[i] = tswapl(v);
        }
    }
#endif
}

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static inline void target_to_host_timeval(struct timeval *tv, 
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                                          const struct target_timeval *target_tv)
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{
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    tv->tv_sec = tswapl(target_tv->tv_sec);
    tv->tv_usec = tswapl(target_tv->tv_usec);
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}

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static inline void host_to_target_timeval(struct target_timeval *target_tv, 
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                                          const struct timeval *tv)
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{
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    target_tv->tv_sec = tswapl(tv->tv_sec);
    target_tv->tv_usec = tswapl(tv->tv_usec);
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}


static long do_select(long n, 
                      target_long *target_rfds, target_long *target_wfds, 
                      target_long *target_efds, struct target_timeval *target_tv)
{
    fd_set rfds, wfds, efds;
    fd_set *rfds_ptr, *wfds_ptr, *efds_ptr;
    struct timeval tv, *tv_ptr;
    long ret;

    rfds_ptr = target_to_host_fds(&rfds, target_rfds, n);
    wfds_ptr = target_to_host_fds(&wfds, target_wfds, n);
    efds_ptr = target_to_host_fds(&efds, target_efds, n);
            
    if (target_tv) {
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        target_to_host_timeval(&tv, target_tv);
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        tv_ptr = &tv;
    } else {
        tv_ptr = NULL;
    }
    ret = get_errno(select(n, rfds_ptr, wfds_ptr, efds_ptr, tv_ptr));
    if (!is_error(ret)) {
        host_to_target_fds(target_rfds, rfds_ptr, n);
        host_to_target_fds(target_wfds, wfds_ptr, n);
        host_to_target_fds(target_efds, efds_ptr, n);

        if (target_tv) {
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            host_to_target_timeval(target_tv, &tv);
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        }
    }
    return ret;
}

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static inline void target_to_host_sockaddr(struct sockaddr *addr,
                                           struct target_sockaddr *target_addr,
                                           socklen_t len)
{
    memcpy(addr, target_addr, len);
    addr->sa_family = tswap16(target_addr->sa_family);
}

static inline void host_to_target_sockaddr(struct target_sockaddr *target_addr,
                                           struct sockaddr *addr,
                                           socklen_t len)
{
    memcpy(target_addr, addr, len);
    target_addr->sa_family = tswap16(addr->sa_family);
}

static inline void target_to_host_cmsg(struct msghdr *msgh,
                                       struct target_msghdr *target_msgh)
{
    struct cmsghdr *cmsg = CMSG_FIRSTHDR(msgh);
    struct target_cmsghdr *target_cmsg = TARGET_CMSG_FIRSTHDR(target_msgh);
    socklen_t space = 0;

    while (cmsg && target_cmsg) {
        void *data = CMSG_DATA(cmsg);
        void *target_data = TARGET_CMSG_DATA(target_cmsg);

        int len = tswapl(target_cmsg->cmsg_len) 
                  - TARGET_CMSG_ALIGN(sizeof (struct target_cmsghdr));

        space += CMSG_SPACE(len);
        if (space > msgh->msg_controllen) {
            space -= CMSG_SPACE(len);
            gemu_log("Host cmsg overflow");
            break;
        }

        cmsg->cmsg_level = tswap32(target_cmsg->cmsg_level);
        cmsg->cmsg_type = tswap32(target_cmsg->cmsg_type);
        cmsg->cmsg_len = CMSG_LEN(len);

        if (cmsg->cmsg_level != SOL_SOCKET || cmsg->cmsg_type != SCM_RIGHTS) {
            gemu_log("Unsupported ancillary data: %d/%d\n", cmsg->cmsg_level, cmsg->cmsg_type);
            memcpy(data, target_data, len);
        } else {
            int *fd = (int *)data;
            int *target_fd = (int *)target_data;
            int i, numfds = len / sizeof(int);

            for (i = 0; i < numfds; i++)
                fd[i] = tswap32(target_fd[i]);
        }

        cmsg = CMSG_NXTHDR(msgh, cmsg);
        target_cmsg = TARGET_CMSG_NXTHDR(target_msgh, target_cmsg);
    }

    msgh->msg_controllen = space;
}

static inline void host_to_target_cmsg(struct target_msghdr *target_msgh,
                                       struct msghdr *msgh)
{
    struct cmsghdr *cmsg = CMSG_FIRSTHDR(msgh);
    struct target_cmsghdr *target_cmsg = TARGET_CMSG_FIRSTHDR(target_msgh);
    socklen_t space = 0;

    while (cmsg && target_cmsg) {
        void *data = CMSG_DATA(cmsg);
        void *target_data = TARGET_CMSG_DATA(target_cmsg);

        int len = cmsg->cmsg_len - CMSG_ALIGN(sizeof (struct cmsghdr));

        space += TARGET_CMSG_SPACE(len);
        if (space > tswapl(target_msgh->msg_controllen)) {
            space -= TARGET_CMSG_SPACE(len);
            gemu_log("Target cmsg overflow");
            break;
        }

        target_cmsg->cmsg_level = tswap32(cmsg->cmsg_level);
        target_cmsg->cmsg_type = tswap32(cmsg->cmsg_type);
        target_cmsg->cmsg_len = tswapl(TARGET_CMSG_LEN(len));

        if (cmsg->cmsg_level != SOL_SOCKET || cmsg->cmsg_type != SCM_RIGHTS) {
            gemu_log("Unsupported ancillary data: %d/%d\n", cmsg->cmsg_level, cmsg->cmsg_type);
            memcpy(target_data, data, len);
        } else {
            int *fd = (int *)data;
            int *target_fd = (int *)target_data;
            int i, numfds = len / sizeof(int);

            for (i = 0; i < numfds; i++)
                target_fd[i] = tswap32(fd[i]);
        }

        cmsg = CMSG_NXTHDR(msgh, cmsg);
        target_cmsg = TARGET_CMSG_NXTHDR(target_msgh, target_cmsg);
    }

    msgh->msg_controllen = tswapl(space);
}

static long do_setsockopt(int sockfd, int level, int optname, 
                          void *optval, socklen_t optlen)
{
    if (level == SOL_TCP) {
        /* TCP options all take an 'int' value.  */
        int val;

        if (optlen < sizeof(uint32_t))
            return -EINVAL;

        val = tswap32(*(uint32_t *)optval);
        return get_errno(setsockopt(sockfd, level, optname, &val, sizeof(val)));
    }

    else if (level != SOL_SOCKET) {
        gemu_log("Unsupported setsockopt level: %d\n", level);
        return -ENOSYS;
    }

    switch (optname) {
    /* Options with 'int' argument.  */
    case SO_DEBUG:
    case SO_REUSEADDR:
    case SO_TYPE:
    case SO_ERROR:
    case SO_DONTROUTE:
    case SO_BROADCAST:
    case SO_SNDBUF:
    case SO_RCVBUF:
    case SO_KEEPALIVE:
    case SO_OOBINLINE:
    case SO_NO_CHECK:
    case SO_PRIORITY:
    case SO_BSDCOMPAT:
    case SO_PASSCRED:
    case SO_TIMESTAMP:
    case SO_RCVLOWAT:
    case SO_RCVTIMEO:
    case SO_SNDTIMEO:
    {
        int val;
        if (optlen < sizeof(uint32_t))
            return -EINVAL;
        val = tswap32(*(uint32_t *)optval);
        return get_errno(setsockopt(sockfd, level, optname, &val, sizeof(val)));
    }

    default:
        gemu_log("Unsupported setsockopt SOL_SOCKET option: %d\n", optname);
        return -ENOSYS;
    }
}

static long do_getsockopt(int sockfd, int level, int optname, 
                          void *optval, socklen_t *optlen)
{
    gemu_log("getsockopt not yet supported\n");
    return -ENOSYS;
}

static long do_socketcall(int num, int32_t *vptr)
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{
    long ret;

    switch(num) {
    case SOCKOP_socket:
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	{
            int domain = tswap32(vptr[0]);
            int type = tswap32(vptr[1]);
            int protocol = tswap32(vptr[2]);

            ret = get_errno(socket(domain, type, protocol));
	}
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        break;
    case SOCKOP_bind:
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	{
            int sockfd = tswap32(vptr[0]);
            void *target_addr = (void *)tswap32(vptr[1]);
            socklen_t addrlen = tswap32(vptr[2]);
            void *addr = alloca(addrlen);

            target_to_host_sockaddr(addr, target_addr, addrlen);
            ret = get_errno(bind(sockfd, addr, addrlen));
        }
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        break;
    case SOCKOP_connect:
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        {
            int sockfd = tswap32(vptr[0]);
            void *target_addr = (void *)tswap32(vptr[1]);
            socklen_t addrlen = tswap32(vptr[2]);
            void *addr = alloca(addrlen);

            target_to_host_sockaddr(addr, target_addr, addrlen);
            ret = get_errno(connect(sockfd, addr, addrlen));
        }
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        break;
    case SOCKOP_listen:
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        {
            int sockfd = tswap32(vptr[0]);
            int backlog = tswap32(vptr[1]);

            ret = get_errno(listen(sockfd, backlog));
        }
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        break;
    case SOCKOP_accept:
        {
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            int sockfd = tswap32(vptr[0]);
            void *target_addr = (void *)tswap32(vptr[1]);
            uint32_t *target_addrlen = (void *)tswap32(vptr[2]);
            socklen_t addrlen = tswap32(*target_addrlen);
            void *addr = alloca(addrlen);

            ret = get_errno(accept(sockfd, addr, &addrlen));
            if (!is_error(ret)) {
                host_to_target_sockaddr(target_addr, addr, addrlen);
                *target_addrlen = tswap32(addrlen);
            }
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        }
        break;
    case SOCKOP_getsockname:
        {
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            int sockfd = tswap32(vptr[0]);
            void *target_addr = (void *)tswap32(vptr[1]);
            uint32_t *target_addrlen = (void *)tswap32(vptr[2]);
            socklen_t addrlen = tswap32(*target_addrlen);
            void *addr = alloca(addrlen);

            ret = get_errno(getsockname(sockfd, addr, &addrlen));
            if (!is_error(ret)) {
                host_to_target_sockaddr(target_addr, addr, addrlen);
                *target_addrlen = tswap32(addrlen);
            }
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        }
        break;
    case SOCKOP_getpeername:
        {
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            int sockfd = tswap32(vptr[0]);
            void *target_addr = (void *)tswap32(vptr[1]);
            uint32_t *target_addrlen = (void *)tswap32(vptr[2]);
            socklen_t addrlen = tswap32(*target_addrlen);
            void *addr = alloca(addrlen);

            ret = get_errno(getpeername(sockfd, addr, &addrlen));
            if (!is_error(ret)) {
                host_to_target_sockaddr(target_addr, addr, addrlen);
                *target_addrlen = tswap32(addrlen);
            }
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        }
        break;
    case SOCKOP_socketpair:
        {
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            int domain = tswap32(vptr[0]);
            int type = tswap32(vptr[1]);
            int protocol = tswap32(vptr[2]);
            int32_t *target_tab = (void *)tswap32(vptr[3]);
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            int tab[2];
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            ret = get_errno(socketpair(domain, type, protocol, tab));
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            if (!is_error(ret)) {
                target_tab[0] = tswap32(tab[0]);
                target_tab[1] = tswap32(tab[1]);
            }
        }
        break;
    case SOCKOP_send:
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        {
            int sockfd = tswap32(vptr[0]);
            void *msg = (void *)tswap32(vptr[1]);
            size_t len = tswap32(vptr[2]);
            int flags = tswap32(vptr[3]);

            ret = get_errno(send(sockfd, msg, len, flags));
        }
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        break;
    case SOCKOP_recv:
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        {
            int sockfd = tswap32(vptr[0]);
            void *msg = (void *)tswap32(vptr[1]);
            size_t len = tswap32(vptr[2]);
            int flags = tswap32(vptr[3]);

            ret = get_errno(recv(sockfd, msg, len, flags));
        }
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        break;
    case SOCKOP_sendto:
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        {
            int sockfd = tswap32(vptr[0]);
            void *msg = (void *)tswap32(vptr[1]);
            size_t len = tswap32(vptr[2]);
            int flags = tswap32(vptr[3]);
            void *target_addr = (void *)tswap32(vptr[4]);
            socklen_t addrlen = tswap32(vptr[5]);
            void *addr = alloca(addrlen);

            target_to_host_sockaddr(addr, target_addr, addrlen);
            ret = get_errno(sendto(sockfd, msg, len, flags, addr, addrlen));
        }
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        break;
    case SOCKOP_recvfrom:
        {
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            int sockfd = tswap32(vptr[0]);
            void *msg = (void *)tswap32(vptr[1]);
            size_t len = tswap32(vptr[2]);
            int flags = tswap32(vptr[3]);
            void *target_addr = (void *)tswap32(vptr[4]);
            uint32_t *target_addrlen = (void *)tswap32(vptr[5]);
            socklen_t addrlen = tswap32(*target_addrlen);
            void *addr = alloca(addrlen);

            ret = get_errno(recvfrom(sockfd, msg, len, flags, addr, &addrlen));
            if (!is_error(ret)) {
                host_to_target_sockaddr(target_addr, addr, addrlen);
                *target_addrlen = tswap32(addrlen);
            }
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        }
        break;
    case SOCKOP_shutdown:
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        {
            int sockfd = tswap32(vptr[0]);
            int how = tswap32(vptr[1]);

            ret = get_errno(shutdown(sockfd, how));
        }
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        break;
    case SOCKOP_sendmsg:
    case SOCKOP_recvmsg:
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        {
            int fd;
            struct target_msghdr *msgp;
            struct msghdr msg;
            int flags, count, i;
            struct iovec *vec;
            struct target_iovec *target_vec;

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            msgp = (void *)tswap32(vptr[1]);
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            msg.msg_name = (void *)tswapl(msgp->msg_name);
            msg.msg_namelen = tswapl(msgp->msg_namelen);
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            msg.msg_controllen = 2 * tswapl(msgp->msg_controllen);
            msg.msg_control = alloca(msg.msg_controllen);
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            msg.msg_flags = tswap32(msgp->msg_flags);

            count = tswapl(msgp->msg_iovlen);
            vec = alloca(count * sizeof(struct iovec));
            target_vec = (void *)tswapl(msgp->msg_iov);
            for(i = 0;i < count; i++) {
                vec[i].iov_base = (void *)tswapl(target_vec[i].iov_base);
                vec[i].iov_len = tswapl(target_vec[i].iov_len);
            }
            msg.msg_iovlen = count;
            msg.msg_iov = vec;

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            fd = tswap32(vptr[0]);
            flags = tswap32(vptr[2]);
            if (num == SOCKOP_sendmsg) {
                target_to_host_cmsg(&msg, msgp);
                ret = get_errno(sendmsg(fd, &msg, flags));
            } else {
                ret = get_errno(recvmsg(fd, &msg, flags));
                if (!is_error(ret))
                  host_to_target_cmsg(msgp, &msg);
            }
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        }
        break;
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    case SOCKOP_setsockopt:
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        {
            int sockfd = tswap32(vptr[0]);
            int level = tswap32(vptr[1]);
            int optname = tswap32(vptr[2]);
            void *optval = (void *)tswap32(vptr[3]);
            socklen_t optlen = tswap32(vptr[4]);

            ret = do_setsockopt(sockfd, level, optname, optval, optlen);
        }
        break;
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    case SOCKOP_getsockopt:
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        {
            int sockfd = tswap32(vptr[0]);
            int level = tswap32(vptr[1]);
            int optname = tswap32(vptr[2]);
            void *optval = (void *)tswap32(vptr[3]);
            uint32_t *target_len = (void *)tswap32(vptr[4]);
            socklen_t optlen = tswap32(*target_len);

            ret = do_getsockopt(sockfd, level, optname, optval, &optlen);
            if (!is_error(ret))
                *target_len = tswap32(optlen);
        }
        break;
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    default:
        gemu_log("Unsupported socketcall: %d\n", num);
        ret = -ENOSYS;
        break;
    }
    return ret;
}

/* kernel structure types definitions */
#define IFNAMSIZ        16

#define STRUCT(name, list...) STRUCT_ ## name,
#define STRUCT_SPECIAL(name) STRUCT_ ## name,
enum {
#include "syscall_types.h"
};
#undef STRUCT
#undef STRUCT_SPECIAL

#define STRUCT(name, list...) const argtype struct_ ## name ## _def[] = { list, TYPE_NULL };
#define STRUCT_SPECIAL(name)
#include "syscall_types.h"
#undef STRUCT
#undef STRUCT_SPECIAL

typedef struct IOCTLEntry {
    int target_cmd;
    int host_cmd;
    const char *name;
    int access;
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    const argtype arg_type[5];
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} IOCTLEntry;

#define IOC_R 0x0001
#define IOC_W 0x0002
#define IOC_RW (IOC_R | IOC_W)

#define MAX_STRUCT_SIZE 4096

const IOCTLEntry ioctl_entries[] = {
#define IOCTL(cmd, access, types...) \
    { TARGET_ ## cmd, cmd, #cmd, access, { types } },
#include "ioctls.h"
    { 0, 0, },
};

static long do_ioctl(long fd, long cmd, long arg)
{
    const IOCTLEntry *ie;
    const argtype *arg_type;
    long ret;
    uint8_t buf_temp[MAX_STRUCT_SIZE];

    ie = ioctl_entries;
    for(;;) {
        if (ie->target_cmd == 0) {
            gemu_log("Unsupported ioctl: cmd=0x%04lx\n", cmd);
            return -ENOSYS;
        }
        if (ie->target_cmd == cmd)
            break;
        ie++;
    }
    arg_type = ie->arg_type;
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#if defined(DEBUG)
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    gemu_log("ioctl: cmd=0x%04lx (%s)\n", cmd, ie->name);
#endif
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    switch(arg_type[0]) {
    case TYPE_NULL:
        /* no argument */
        ret = get_errno(ioctl(fd, ie->host_cmd));
        break;
    case TYPE_PTRVOID:
    case TYPE_INT:
        /* int argment */
        ret = get_errno(ioctl(fd, ie->host_cmd, arg));
        break;
    case TYPE_PTR:
        arg_type++;
        switch(ie->access) {
        case IOC_R:
            ret = get_errno(ioctl(fd, ie->host_cmd, buf_temp));
            if (!is_error(ret)) {
                thunk_convert((void *)arg, buf_temp, arg_type, THUNK_TARGET);
            }
            break;
        case IOC_W:
            thunk_convert(buf_temp, (void *)arg, arg_type, THUNK_HOST);
            ret = get_errno(ioctl(fd, ie->host_cmd, buf_temp));
            break;
        default:
        case IOC_RW:
            thunk_convert(buf_temp, (void *)arg, arg_type, THUNK_HOST);
            ret = get_errno(ioctl(fd, ie->host_cmd, buf_temp));
            if (!is_error(ret)) {
                thunk_convert((void *)arg, buf_temp, arg_type, THUNK_TARGET);
            }
            break;
        }
        break;
    default:
        gemu_log("Unsupported ioctl type: cmd=0x%04lx type=%d\n", cmd, arg_type[0]);
        ret = -ENOSYS;
        break;
    }
    return ret;
}

bitmask_transtbl iflag_tbl[] = {
        { TARGET_IGNBRK, TARGET_IGNBRK, IGNBRK, IGNBRK },
        { TARGET_BRKINT, TARGET_BRKINT, BRKINT, BRKINT },
        { TARGET_IGNPAR, TARGET_IGNPAR, IGNPAR, IGNPAR },
        { TARGET_PARMRK, TARGET_PARMRK, PARMRK, PARMRK },
        { TARGET_INPCK, TARGET_INPCK, INPCK, INPCK },
        { TARGET_ISTRIP, TARGET_ISTRIP, ISTRIP, ISTRIP },
        { TARGET_INLCR, TARGET_INLCR, INLCR, INLCR },
        { TARGET_IGNCR, TARGET_IGNCR, IGNCR, IGNCR },
        { TARGET_ICRNL, TARGET_ICRNL, ICRNL, ICRNL },
        { TARGET_IUCLC, TARGET_IUCLC, IUCLC, IUCLC },
        { TARGET_IXON, TARGET_IXON, IXON, IXON },
        { TARGET_IXANY, TARGET_IXANY, IXANY, IXANY },
        { TARGET_IXOFF, TARGET_IXOFF, IXOFF, IXOFF },
        { TARGET_IMAXBEL, TARGET_IMAXBEL, IMAXBEL, IMAXBEL },
        { 0, 0, 0, 0 }
};

bitmask_transtbl oflag_tbl[] = {
	{ TARGET_OPOST, TARGET_OPOST, OPOST, OPOST },
	{ TARGET_OLCUC, TARGET_OLCUC, OLCUC, OLCUC },
	{ TARGET_ONLCR, TARGET_ONLCR, ONLCR, ONLCR },
	{ TARGET_OCRNL, TARGET_OCRNL, OCRNL, OCRNL },
	{ TARGET_ONOCR, TARGET_ONOCR, ONOCR, ONOCR },
	{ TARGET_ONLRET, TARGET_ONLRET, ONLRET, ONLRET },
	{ TARGET_OFILL, TARGET_OFILL, OFILL, OFILL },
	{ TARGET_OFDEL, TARGET_OFDEL, OFDEL, OFDEL },
	{ TARGET_NLDLY, TARGET_NL0, NLDLY, NL0 },
	{ TARGET_NLDLY, TARGET_NL1, NLDLY, NL1 },
	{ TARGET_CRDLY, TARGET_CR0, CRDLY, CR0 },
	{ TARGET_CRDLY, TARGET_CR1, CRDLY, CR1 },
	{ TARGET_CRDLY, TARGET_CR2, CRDLY, CR2 },
	{ TARGET_CRDLY, TARGET_CR3, CRDLY, CR3 },
	{ TARGET_TABDLY, TARGET_TAB0, TABDLY, TAB0 },
	{ TARGET_TABDLY, TARGET_TAB1, TABDLY, TAB1 },
	{ TARGET_TABDLY, TARGET_TAB2, TABDLY, TAB2 },
	{ TARGET_TABDLY, TARGET_TAB3, TABDLY, TAB3 },
	{ TARGET_BSDLY, TARGET_BS0, BSDLY, BS0 },
	{ TARGET_BSDLY, TARGET_BS1, BSDLY, BS1 },
	{ TARGET_VTDLY, TARGET_VT0, VTDLY, VT0 },
	{ TARGET_VTDLY, TARGET_VT1, VTDLY, VT1 },
	{ TARGET_FFDLY, TARGET_FF0, FFDLY, FF0 },
	{ TARGET_FFDLY, TARGET_FF1, FFDLY, FF1 },
	{ 0, 0, 0, 0 }
};

bitmask_transtbl cflag_tbl[] = {
	{ TARGET_CBAUD, TARGET_B0, CBAUD, B0 },
	{ TARGET_CBAUD, TARGET_B50, CBAUD, B50 },
	{ TARGET_CBAUD, TARGET_B75, CBAUD, B75 },
	{ TARGET_CBAUD, TARGET_B110, CBAUD, B110 },
	{ TARGET_CBAUD, TARGET_B134, CBAUD, B134 },
	{ TARGET_CBAUD, TARGET_B150, CBAUD, B150 },
	{ TARGET_CBAUD, TARGET_B200, CBAUD, B200 },
	{ TARGET_CBAUD, TARGET_B300, CBAUD, B300 },
	{ TARGET_CBAUD, TARGET_B600, CBAUD, B600 },
	{ TARGET_CBAUD, TARGET_B1200, CBAUD, B1200 },
	{ TARGET_CBAUD, TARGET_B1800, CBAUD, B1800 },
	{ TARGET_CBAUD, TARGET_B2400, CBAUD, B2400 },
	{ TARGET_CBAUD, TARGET_B4800, CBAUD, B4800 },
	{ TARGET_CBAUD, TARGET_B9600, CBAUD, B9600 },
	{ TARGET_CBAUD, TARGET_B19200, CBAUD, B19200 },
	{ TARGET_CBAUD, TARGET_B38400, CBAUD, B38400 },
	{ TARGET_CBAUD, TARGET_B57600, CBAUD, B57600 },
	{ TARGET_CBAUD, TARGET_B115200, CBAUD, B115200 },
	{ TARGET_CBAUD, TARGET_B230400, CBAUD, B230400 },
	{ TARGET_CBAUD, TARGET_B460800, CBAUD, B460800 },
	{ TARGET_CSIZE, TARGET_CS5, CSIZE, CS5 },
	{ TARGET_CSIZE, TARGET_CS6, CSIZE, CS6 },
	{ TARGET_CSIZE, TARGET_CS7, CSIZE, CS7 },
	{ TARGET_CSIZE, TARGET_CS8, CSIZE, CS8 },
	{ TARGET_CSTOPB, TARGET_CSTOPB, CSTOPB, CSTOPB },
	{ TARGET_CREAD, TARGET_CREAD, CREAD, CREAD },
	{ TARGET_PARENB, TARGET_PARENB, PARENB, PARENB },
	{ TARGET_PARODD, TARGET_PARODD, PARODD, PARODD },
	{ TARGET_HUPCL, TARGET_HUPCL, HUPCL, HUPCL },
	{ TARGET_CLOCAL, TARGET_CLOCAL, CLOCAL, CLOCAL },
	{ TARGET_CRTSCTS, TARGET_CRTSCTS, CRTSCTS, CRTSCTS },
	{ 0, 0, 0, 0 }
};

bitmask_transtbl lflag_tbl[] = {
	{ TARGET_ISIG, TARGET_ISIG, ISIG, ISIG },
	{ TARGET_ICANON, TARGET_ICANON, ICANON, ICANON },
	{ TARGET_XCASE, TARGET_XCASE, XCASE, XCASE },
	{ TARGET_ECHO, TARGET_ECHO, ECHO, ECHO },
	{ TARGET_ECHOE, TARGET_ECHOE, ECHOE, ECHOE },
	{ TARGET_ECHOK, TARGET_ECHOK, ECHOK, ECHOK },
	{ TARGET_ECHONL, TARGET_ECHONL, ECHONL, ECHONL },
	{ TARGET_NOFLSH, TARGET_NOFLSH, NOFLSH, NOFLSH },
	{ TARGET_TOSTOP, TARGET_TOSTOP, TOSTOP, TOSTOP },
	{ TARGET_ECHOCTL, TARGET_ECHOCTL, ECHOCTL, ECHOCTL },
	{ TARGET_ECHOPRT, TARGET_ECHOPRT, ECHOPRT, ECHOPRT },
	{ TARGET_ECHOKE, TARGET_ECHOKE, ECHOKE, ECHOKE },
	{ TARGET_FLUSHO, TARGET_FLUSHO, FLUSHO, FLUSHO },
	{ TARGET_PENDIN, TARGET_PENDIN, PENDIN, PENDIN },
	{ TARGET_IEXTEN, TARGET_IEXTEN, IEXTEN, IEXTEN },
	{ 0, 0, 0, 0 }
};

static void target_to_host_termios (void *dst, const void *src)
{
    struct host_termios *host = dst;
    const struct target_termios *target = src;
    
    host->c_iflag = 
        target_to_host_bitmask(tswap32(target->c_iflag), iflag_tbl);
    host->c_oflag = 
        target_to_host_bitmask(tswap32(target->c_oflag), oflag_tbl);
    host->c_cflag = 
        target_to_host_bitmask(tswap32(target->c_cflag), cflag_tbl);
    host->c_lflag = 
        target_to_host_bitmask(tswap32(target->c_lflag), lflag_tbl);
    host->c_line = target->c_line;
    
    host->c_cc[VINTR] = target->c_cc[TARGET_VINTR]; 
    host->c_cc[VQUIT] = target->c_cc[TARGET_VQUIT]; 
    host->c_cc[VERASE] = target->c_cc[TARGET_VERASE];       
    host->c_cc[VKILL] = target->c_cc[TARGET_VKILL]; 
    host->c_cc[VEOF] = target->c_cc[TARGET_VEOF];   
    host->c_cc[VTIME] = target->c_cc[TARGET_VTIME]; 
    host->c_cc[VMIN] = target->c_cc[TARGET_VMIN];   
    host->c_cc[VSWTC] = target->c_cc[TARGET_VSWTC]; 
    host->c_cc[VSTART] = target->c_cc[TARGET_VSTART];       
    host->c_cc[VSTOP] = target->c_cc[TARGET_VSTOP]; 
    host->c_cc[VSUSP] = target->c_cc[TARGET_VSUSP]; 
    host->c_cc[VEOL] = target->c_cc[TARGET_VEOL];   
    host->c_cc[VREPRINT] = target->c_cc[TARGET_VREPRINT];   
    host->c_cc[VDISCARD] = target->c_cc[TARGET_VDISCARD];   
    host->c_cc[VWERASE] = target->c_cc[TARGET_VWERASE];     
    host->c_cc[VLNEXT] = target->c_cc[TARGET_VLNEXT];       
    host->c_cc[VEOL2] = target->c_cc[TARGET_VEOL2]; 
}
  
static void host_to_target_termios (void *dst, const void *src)
{
    struct target_termios *target = dst;
    const struct host_termios *host = src;

    target->c_iflag = 
        tswap32(host_to_target_bitmask(host->c_iflag, iflag_tbl));
    target->c_oflag = 
        tswap32(host_to_target_bitmask(host->c_oflag, oflag_tbl));
    target->c_cflag = 
        tswap32(host_to_target_bitmask(host->c_cflag, cflag_tbl));
    target->c_lflag = 
        tswap32(host_to_target_bitmask(host->c_lflag, lflag_tbl));
    target->c_line = host->c_line;
  
    target->c_cc[TARGET_VINTR] = host->c_cc[VINTR];
    target->c_cc[TARGET_VQUIT] = host->c_cc[VQUIT];
    target->c_cc[TARGET_VERASE] = host->c_cc[VERASE];
    target->c_cc[TARGET_VKILL] = host->c_cc[VKILL];
    target->c_cc[TARGET_VEOF] = host->c_cc[VEOF];
    target->c_cc[TARGET_VTIME] = host->c_cc[VTIME];
    target->c_cc[TARGET_VMIN] = host->c_cc[VMIN];
    target->c_cc[TARGET_VSWTC] = host->c_cc[VSWTC];
    target->c_cc[TARGET_VSTART] = host->c_cc[VSTART];
    target->c_cc[TARGET_VSTOP] = host->c_cc[VSTOP];
    target->c_cc[TARGET_VSUSP] = host->c_cc[VSUSP];
    target->c_cc[TARGET_VEOL] = host->c_cc[VEOL];
    target->c_cc[TARGET_VREPRINT] = host->c_cc[VREPRINT];
    target->c_cc[TARGET_VDISCARD] = host->c_cc[VDISCARD];
    target->c_cc[TARGET_VWERASE] = host->c_cc[VWERASE];
    target->c_cc[TARGET_VLNEXT] = host->c_cc[VLNEXT];
    target->c_cc[TARGET_VEOL2] = host->c_cc[VEOL2];
}

StructEntry struct_termios_def = {
    .convert = { host_to_target_termios, target_to_host_termios },
    .size = { sizeof(struct target_termios), sizeof(struct host_termios) },
    .align = { __alignof__(struct target_termios), __alignof__(struct host_termios) },
};

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#ifdef TARGET_I386

/* NOTE: there is really one LDT for all the threads */
uint8_t *ldt_table;

static int read_ldt(void *ptr, unsigned long bytecount)
{
    int size;

    if (!ldt_table)
        return 0;
    size = TARGET_LDT_ENTRIES * TARGET_LDT_ENTRY_SIZE;
    if (size > bytecount)
        size = bytecount;
    memcpy(ptr, ldt_table, size);
    return size;
}

/* XXX: add locking support */
static int write_ldt(CPUX86State *env, 
                     void *ptr, unsigned long bytecount, int oldmode)
{
    struct target_modify_ldt_ldt_s ldt_info;
    int seg_32bit, contents, read_exec_only, limit_in_pages;
    int seg_not_present, useable;
    uint32_t *lp, entry_1, entry_2;

    if (bytecount != sizeof(ldt_info))
        return -EINVAL;
    memcpy(&ldt_info, ptr, sizeof(ldt_info));
    tswap32s(&ldt_info.entry_number);
    tswapls((long *)&ldt_info.base_addr);
    tswap32s(&ldt_info.limit);
    tswap32s(&ldt_info.flags);
    
    if (ldt_info.entry_number >= TARGET_LDT_ENTRIES)
        return -EINVAL;
    seg_32bit = ldt_info.flags & 1;
    contents = (ldt_info.flags >> 1) & 3;
    read_exec_only = (ldt_info.flags >> 3) & 1;
    limit_in_pages = (ldt_info.flags >> 4) & 1;
    seg_not_present = (ldt_info.flags >> 5) & 1;
    useable = (ldt_info.flags >> 6) & 1;

    if (contents == 3) {
        if (oldmode)
            return -EINVAL;
        if (seg_not_present == 0)
            return -EINVAL;
    }
    /* allocate the LDT */
    if (!ldt_table) {
        ldt_table = malloc(TARGET_LDT_ENTRIES * TARGET_LDT_ENTRY_SIZE);
        if (!ldt_table)
            return -ENOMEM;
        memset(ldt_table, 0, TARGET_LDT_ENTRIES * TARGET_LDT_ENTRY_SIZE);
        env->ldt.base = ldt_table;
        env->ldt.limit = 0xffff;
    }

    /* NOTE: same code as Linux kernel */
    /* Allow LDTs to be cleared by the user. */
    if (ldt_info.base_addr == 0 && ldt_info.limit == 0) {
        if (oldmode ||
            (contents == 0		&&
             read_exec_only == 1	&&
             seg_32bit == 0		&&
             limit_in_pages == 0	&&
             seg_not_present == 1	&&
             useable == 0 )) {
            entry_1 = 0;
            entry_2 = 0;
            goto install;
        }
    }
    
    entry_1 = ((ldt_info.base_addr & 0x0000ffff) << 16) |
        (ldt_info.limit & 0x0ffff);
    entry_2 = (ldt_info.base_addr & 0xff000000) |
        ((ldt_info.base_addr & 0x00ff0000) >> 16) |
        (ldt_info.limit & 0xf0000) |
        ((read_exec_only ^ 1) << 9) |
        (contents << 10) |
        ((seg_not_present ^ 1) << 15) |
        (seg_32bit << 22) |
        (limit_in_pages << 23) |
        0x7000;
    if (!oldmode)
        entry_2 |= (useable << 20);
    
    /* Install the new entry ...  */
install:
    lp = (uint32_t *)(ldt_table + (ldt_info.entry_number << 3));
    lp[0] = tswap32(entry_1);
    lp[1] = tswap32(entry_2);
    return 0;
}

/* specific and weird i386 syscalls */
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int do_modify_ldt(CPUX86State *env, int func, void *ptr, unsigned long bytecount)
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{
    int ret = -ENOSYS;
    
    switch (func) {
    case 0:
        ret = read_ldt(ptr, bytecount);
        break;
    case 1:
        ret = write_ldt(env, ptr, bytecount, 1);
        break;
    case 0x11:
        ret = write_ldt(env, ptr, bytecount, 0);
        break;
    }
    return ret;
}
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/* vm86 emulation */

#define SAFE_MASK  (0xDD5)

int do_vm86(CPUX86State *env, long subfunction, 
            struct target_vm86plus_struct * target_v86)
{
    TaskState *ts = env->opaque;
    int ret;
    
    switch (subfunction) {
    case TARGET_VM86_REQUEST_IRQ:
    case TARGET_VM86_FREE_IRQ:
    case TARGET_VM86_GET_IRQ_BITS:
    case TARGET_VM86_GET_AND_RESET_IRQ:
        gemu_log("qemu: unsupported vm86 subfunction (%ld)\n", subfunction);
        ret = -EINVAL;
        goto out;
    case TARGET_VM86_PLUS_INSTALL_CHECK:
        /* NOTE: on old vm86 stuff this will return the error
           from verify_area(), because the subfunction is
           interpreted as (invalid) address to vm86_struct.
           So the installation check works.
            */
        ret = 0;
        goto out;
    }

    ts->target_v86 = target_v86;
    /* save current CPU regs */
    ts->vm86_saved_regs.eax = 0; /* default vm86 syscall return code */
    ts->vm86_saved_regs.ebx = env->regs[R_EBX];
    ts->vm86_saved_regs.ecx = env->regs[R_ECX];
    ts->vm86_saved_regs.edx = env->regs[R_EDX];
    ts->vm86_saved_regs.esi = env->regs[R_ESI];
    ts->vm86_saved_regs.edi = env->regs[R_EDI];
    ts->vm86_saved_regs.ebp = env->regs[R_EBP];
    ts->vm86_saved_regs.esp = env->regs[R_ESP];
    ts->vm86_saved_regs.eflags = env->eflags;
    ts->vm86_saved_regs.eip  = env->eip;
    ts->vm86_saved_regs.cs = env->segs[R_CS];
    ts->vm86_saved_regs.ss = env->segs[R_SS];
    ts->vm86_saved_regs.ds = env->segs[R_DS];
    ts->vm86_saved_regs.es = env->segs[R_ES];
    ts->vm86_saved_regs.fs = env->segs[R_FS];
    ts->vm86_saved_regs.gs = env->segs[R_GS];

    /* build vm86 CPU state */
    env->eflags = (env->eflags & ~SAFE_MASK) | 
        (tswap32(target_v86->regs.eflags) & SAFE_MASK) | VM_MASK;

    env->regs[R_EBX] = tswap32(target_v86->regs.ebx);
    env->regs[R_ECX] = tswap32(target_v86->regs.ecx);
    env->regs[R_EDX] = tswap32(target_v86->regs.edx);
    env->regs[R_ESI] = tswap32(target_v86->regs.esi);
    env->regs[R_EDI] = tswap32(target_v86->regs.edi);
    env->regs[R_EBP] = tswap32(target_v86->regs.ebp);
    env->regs[R_ESP] = tswap32(target_v86->regs.esp);
    env->eip = tswap32(target_v86->regs.eip);
    cpu_x86_load_seg(env, R_CS, tswap16(target_v86->regs.cs));
    cpu_x86_load_seg(env, R_SS, tswap16(target_v86->regs.ss));
    cpu_x86_load_seg(env, R_DS, tswap16(target_v86->regs.ds));
    cpu_x86_load_seg(env, R_ES, tswap16(target_v86->regs.es));
    cpu_x86_load_seg(env, R_FS, tswap16(target_v86->regs.fs));
    cpu_x86_load_seg(env, R_GS, tswap16(target_v86->regs.gs));
    ret = tswap32(target_v86->regs.eax); /* eax will be restored at
                                            the end of the syscall */
    /* now the virtual CPU is ready for vm86 execution ! */
 out:
    return ret;
}

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/* this stack is the equivalent of the kernel stack associated with a
   thread/process */
#define NEW_STACK_SIZE 8192

static int clone_func(void *arg)
{
    CPUX86State *env = arg;
    cpu_loop(env);
    /* never exits */
    return 0;
}

int do_fork(CPUX86State *env, unsigned int flags, unsigned long newsp)
{
    int ret;
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    TaskState *ts;
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    uint8_t *new_stack;
    CPUX86State *new_env;
    
    if (flags & CLONE_VM) {
        if (!newsp)
            newsp = env->regs[R_ESP];
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        ts = malloc(sizeof(TaskState) + NEW_STACK_SIZE);
        memset(ts, 0, sizeof(TaskState));
        new_stack = ts->stack;
        ts->used = 1;
        /* add in task state list */
        ts->next = first_task_state;
        first_task_state = ts;
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        /* we create a new CPU instance. */
        new_env = cpu_x86_init();
        memcpy(new_env, env, sizeof(CPUX86State));
        new_env->regs[R_ESP] = newsp;
        new_env->regs[R_EAX] = 0;
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        new_env->opaque = ts;
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        ret = clone(clone_func, new_stack + NEW_STACK_SIZE, flags, new_env);
    } else {
        /* if no CLONE_VM, we consider it is a fork */
        if ((flags & ~CSIGNAL) != 0)
            return -EINVAL;
        ret = fork();
    }
    return ret;
}

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#endif

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#define high2lowuid(x) (x)
#define high2lowgid(x) (x)
#define low2highuid(x) (x)
#define low2highgid(x) (x)
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1180 1181 1182 1183 1184 1185 1186 1187 1188
void syscall_init(void)
{
#define STRUCT(name, list...) thunk_register_struct(STRUCT_ ## name, #name, struct_ ## name ## _def); 
#define STRUCT_SPECIAL(name) thunk_register_struct_direct(STRUCT_ ## name, #name, &struct_ ## name ## _def); 
#include "syscall_types.h"
#undef STRUCT
#undef STRUCT_SPECIAL
}
                                 
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long do_syscall(void *cpu_env, int num, long arg1, long arg2, long arg3, 
1190 1191 1192 1193
                long arg4, long arg5, long arg6)
{
    long ret;
    struct stat st;
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    struct kernel_statfs *stfs;
1195
    
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#ifdef DEBUG
    gemu_log("syscall %d\n", num);
#endif
1199 1200
    switch(num) {
    case TARGET_NR_exit:
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#ifdef HAVE_GPROF
        _mcleanup();
#endif
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        /* XXX: should free thread stack and CPU env */
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        _exit(arg1);
        ret = 0; /* avoid warning */
        break;
    case TARGET_NR_read:
        ret = get_errno(read(arg1, (void *)arg2, arg3));
        break;
    case TARGET_NR_write:
        ret = get_errno(write(arg1, (void *)arg2, arg3));
        break;
    case TARGET_NR_open:
        ret = get_errno(open((const char *)arg1, arg2, arg3));
        break;
    case TARGET_NR_close:
        ret = get_errno(close(arg1));
        break;
    case TARGET_NR_brk:
        ret = do_brk((char *)arg1);
        break;
    case TARGET_NR_fork:
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        ret = get_errno(do_fork(cpu_env, SIGCHLD, 0));
1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243
        break;
    case TARGET_NR_waitpid:
        {
            int *status = (int *)arg2;
            ret = get_errno(waitpid(arg1, status, arg3));
            if (!is_error(ret) && status)
                tswapls((long *)&status);
        }
        break;
    case TARGET_NR_creat:
        ret = get_errno(creat((const char *)arg1, arg2));
        break;
    case TARGET_NR_link:
        ret = get_errno(link((const char *)arg1, (const char *)arg2));
        break;
    case TARGET_NR_unlink:
        ret = get_errno(unlink((const char *)arg1));
        break;
    case TARGET_NR_execve:
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        {
            char **argp, **envp;
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            int argc, envc;
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            uint32_t *p;
            char **q;

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            argc = 0;
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            for (p = (void *)arg2; *p; p++)
                argc++;
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            envc = 0;
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            for (p = (void *)arg3; *p; p++)
                envc++;

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            argp = alloca((argc + 1) * sizeof(void *));
            envp = alloca((envc + 1) * sizeof(void *));
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            for (p = (void *)arg2, q = argp; *p; p++, q++)
                *q = (void *)tswap32(*p);
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            *q = NULL;

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            for (p = (void *)arg3, q = envp; *p; p++, q++)
                *q = (void *)tswap32(*p);
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            *q = NULL;
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            ret = get_errno(execve((const char *)arg1, argp, envp));
        }
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        break;
    case TARGET_NR_chdir:
        ret = get_errno(chdir((const char *)arg1));
        break;
    case TARGET_NR_time:
        {
            int *time_ptr = (int *)arg1;
            ret = get_errno(time((time_t *)time_ptr));
            if (!is_error(ret) && time_ptr)
                tswap32s(time_ptr);
        }
        break;
    case TARGET_NR_mknod:
        ret = get_errno(mknod((const char *)arg1, arg2, arg3));
        break;
    case TARGET_NR_chmod:
        ret = get_errno(chmod((const char *)arg1, arg2));
        break;
    case TARGET_NR_lchown:
        ret = get_errno(chown((const char *)arg1, arg2, arg3));
        break;
    case TARGET_NR_break:
        goto unimplemented;
    case TARGET_NR_oldstat:
        goto unimplemented;
    case TARGET_NR_lseek:
        ret = get_errno(lseek(arg1, arg2, arg3));
        break;
    case TARGET_NR_getpid:
        ret = get_errno(getpid());
        break;
    case TARGET_NR_mount:
        /* need to look at the data field */
        goto unimplemented;
    case TARGET_NR_umount:
        ret = get_errno(umount((const char *)arg1));
        break;
    case TARGET_NR_setuid:
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        ret = get_errno(setuid(low2highuid(arg1)));
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        break;
    case TARGET_NR_getuid:
        ret = get_errno(getuid());
        break;
    case TARGET_NR_stime:
        {
            int *time_ptr = (int *)arg1;
            if (time_ptr)
                tswap32s(time_ptr);
            ret = get_errno(stime((time_t *)time_ptr));
        }
        break;
    case TARGET_NR_ptrace:
        goto unimplemented;
    case TARGET_NR_alarm:
        ret = alarm(arg1);
        break;
    case TARGET_NR_oldfstat:
        goto unimplemented;
    case TARGET_NR_pause:
        ret = get_errno(pause());
        break;
    case TARGET_NR_utime:
        goto unimplemented;
    case TARGET_NR_stty:
        goto unimplemented;
    case TARGET_NR_gtty:
        goto unimplemented;
    case TARGET_NR_access:
        ret = get_errno(access((const char *)arg1, arg2));
        break;
    case TARGET_NR_nice:
        ret = get_errno(nice(arg1));
        break;
    case TARGET_NR_ftime:
        goto unimplemented;
    case TARGET_NR_sync:
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        sync();
        ret = 0;
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        break;
    case TARGET_NR_kill:
        ret = get_errno(kill(arg1, arg2));
        break;
    case TARGET_NR_rename:
        ret = get_errno(rename((const char *)arg1, (const char *)arg2));
        break;
    case TARGET_NR_mkdir:
        ret = get_errno(mkdir((const char *)arg1, arg2));
        break;
    case TARGET_NR_rmdir:
        ret = get_errno(rmdir((const char *)arg1));
        break;
    case TARGET_NR_dup:
        ret = get_errno(dup(arg1));
        break;
    case TARGET_NR_pipe:
        {
            int *pipe_ptr = (int *)arg1;
            ret = get_errno(pipe(pipe_ptr));
            if (!is_error(ret)) {
                tswap32s(&pipe_ptr[0]);
                tswap32s(&pipe_ptr[1]);
            }
        }
        break;
    case TARGET_NR_times:
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        {
            struct target_tms *tmsp = (void *)arg1;
            struct tms tms;
            ret = get_errno(times(&tms));
            if (tmsp) {
                tmsp->tms_utime = tswapl(tms.tms_utime);
                tmsp->tms_stime = tswapl(tms.tms_stime);
                tmsp->tms_cutime = tswapl(tms.tms_cutime);
                tmsp->tms_cstime = tswapl(tms.tms_cstime);
            }
        }
        break;
1387 1388 1389
    case TARGET_NR_prof:
        goto unimplemented;
    case TARGET_NR_setgid:
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        ret = get_errno(setgid(low2highgid(arg1)));
1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454
        break;
    case TARGET_NR_getgid:
        ret = get_errno(getgid());
        break;
    case TARGET_NR_signal:
        goto unimplemented;
    case TARGET_NR_geteuid:
        ret = get_errno(geteuid());
        break;
    case TARGET_NR_getegid:
        ret = get_errno(getegid());
        break;
    case TARGET_NR_acct:
        goto unimplemented;
    case TARGET_NR_umount2:
        ret = get_errno(umount2((const char *)arg1, arg2));
        break;
    case TARGET_NR_lock:
        goto unimplemented;
    case TARGET_NR_ioctl:
        ret = do_ioctl(arg1, arg2, arg3);
        break;
    case TARGET_NR_fcntl:
        switch(arg2) {
        case F_GETLK:
        case F_SETLK:
        case F_SETLKW:
            goto unimplemented;
        default:
            ret = get_errno(fcntl(arg1, arg2, arg3));
            break;
        }
        break;
    case TARGET_NR_mpx:
        goto unimplemented;
    case TARGET_NR_setpgid:
        ret = get_errno(setpgid(arg1, arg2));
        break;
    case TARGET_NR_ulimit:
        goto unimplemented;
    case TARGET_NR_oldolduname:
        goto unimplemented;
    case TARGET_NR_umask:
        ret = get_errno(umask(arg1));
        break;
    case TARGET_NR_chroot:
        ret = get_errno(chroot((const char *)arg1));
        break;
    case TARGET_NR_ustat:
        goto unimplemented;
    case TARGET_NR_dup2:
        ret = get_errno(dup2(arg1, arg2));
        break;
    case TARGET_NR_getppid:
        ret = get_errno(getppid());
        break;
    case TARGET_NR_getpgrp:
        ret = get_errno(getpgrp());
        break;
    case TARGET_NR_setsid:
        ret = get_errno(setsid());
        break;
    case TARGET_NR_sigaction:
        {
B
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            struct target_old_sigaction *old_act = (void *)arg2;
            struct target_old_sigaction *old_oact = (void *)arg3;
            struct target_sigaction act, oact, *pact;
            if (old_act) {
                act._sa_handler = old_act->_sa_handler;
                target_siginitset(&act.sa_mask, old_act->sa_mask);
                act.sa_flags = old_act->sa_flags;
                act.sa_restorer = old_act->sa_restorer;
                pact = &act;
            } else {
                pact = NULL;
            }
            ret = get_errno(do_sigaction(arg1, pact, &oact));
            if (!is_error(ret) && old_oact) {
                old_oact->_sa_handler = oact._sa_handler;
                old_oact->sa_mask = oact.sa_mask.sig[0];
                old_oact->sa_flags = oact.sa_flags;
                old_oact->sa_restorer = oact.sa_restorer;
            }
1474 1475
        }
        break;
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    case TARGET_NR_rt_sigaction:
        ret = get_errno(do_sigaction(arg1, (void *)arg2, (void *)arg3));
        break;
1479
    case TARGET_NR_sgetmask:
B
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        {
            sigset_t cur_set;
            target_ulong target_set;
            sigprocmask(0, NULL, &cur_set);
            host_to_target_old_sigset(&target_set, &cur_set);
            ret = target_set;
        }
        break;
1488
    case TARGET_NR_ssetmask:
B
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1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 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
        {
            sigset_t set, oset, cur_set;
            target_ulong target_set = arg1;
            sigprocmask(0, NULL, &cur_set);
            target_to_host_old_sigset(&set, &target_set);
            sigorset(&set, &set, &cur_set);
            sigprocmask(SIG_SETMASK, &set, &oset);
            host_to_target_old_sigset(&target_set, &oset);
            ret = target_set;
        }
        break;
    case TARGET_NR_sigprocmask:
        {
            int how = arg1;
            sigset_t set, oldset, *set_ptr;
            target_ulong *pset = (void *)arg2, *poldset = (void *)arg3;
            
            if (pset) {
                switch(how) {
                case TARGET_SIG_BLOCK:
                    how = SIG_BLOCK;
                    break;
                case TARGET_SIG_UNBLOCK:
                    how = SIG_UNBLOCK;
                    break;
                case TARGET_SIG_SETMASK:
                    how = SIG_SETMASK;
                    break;
                default:
                    ret = -EINVAL;
                    goto fail;
                }
                target_to_host_old_sigset(&set, pset);
                set_ptr = &set;
            } else {
                how = 0;
                set_ptr = NULL;
            }
            ret = get_errno(sigprocmask(arg1, set_ptr, &oldset));
            if (!is_error(ret) && poldset) {
                host_to_target_old_sigset(poldset, &oldset);
            }
        }
        break;
    case TARGET_NR_rt_sigprocmask:
        {
            int how = arg1;
            sigset_t set, oldset, *set_ptr;
            target_sigset_t *pset = (void *)arg2;
            target_sigset_t *poldset = (void *)arg3;
            
            if (pset) {
                switch(how) {
                case TARGET_SIG_BLOCK:
                    how = SIG_BLOCK;
                    break;
                case TARGET_SIG_UNBLOCK:
                    how = SIG_UNBLOCK;
                    break;
                case TARGET_SIG_SETMASK:
                    how = SIG_SETMASK;
                    break;
                default:
                    ret = -EINVAL;
                    goto fail;
                }
                target_to_host_sigset(&set, pset);
                set_ptr = &set;
            } else {
                how = 0;
                set_ptr = NULL;
            }
            ret = get_errno(sigprocmask(how, set_ptr, &oldset));
            if (!is_error(ret) && poldset) {
                host_to_target_sigset(poldset, &oldset);
            }
        }
        break;
    case TARGET_NR_sigpending:
        {
            sigset_t set;
            ret = get_errno(sigpending(&set));
            if (!is_error(ret)) {
                host_to_target_old_sigset((target_ulong *)arg1, &set);
            }
        }
        break;
    case TARGET_NR_rt_sigpending:
        {
            sigset_t set;
            ret = get_errno(sigpending(&set));
            if (!is_error(ret)) {
                host_to_target_sigset((target_sigset_t *)arg1, &set);
            }
        }
        break;
    case TARGET_NR_sigsuspend:
        {
            sigset_t set;
            target_to_host_old_sigset(&set, (target_ulong *)arg1);
            ret = get_errno(sigsuspend(&set));
        }
        break;
    case TARGET_NR_rt_sigsuspend:
        {
            sigset_t set;
            target_to_host_sigset(&set, (target_sigset_t *)arg1);
            ret = get_errno(sigsuspend(&set));
        }
        break;
    case TARGET_NR_rt_sigtimedwait:
        {
            target_sigset_t *target_set = (void *)arg1;
            target_siginfo_t *target_uinfo = (void *)arg2;
            struct target_timespec *target_uts = (void *)arg3;
            sigset_t set;
            struct timespec uts, *puts;
            siginfo_t uinfo;
            
            target_to_host_sigset(&set, target_set);
            if (target_uts) {
                puts = &uts;
                puts->tv_sec = tswapl(target_uts->tv_sec);
                puts->tv_nsec = tswapl(target_uts->tv_nsec);
            } else {
                puts = NULL;
            }
            ret = get_errno(sigtimedwait(&set, &uinfo, puts));
            if (!is_error(ret) && target_uinfo) {
                host_to_target_siginfo(target_uinfo, &uinfo);
            }
        }
        break;
    case TARGET_NR_rt_sigqueueinfo:
        {
            siginfo_t uinfo;
            target_to_host_siginfo(&uinfo, (target_siginfo_t *)arg3);
            ret = get_errno(sys_rt_sigqueueinfo(arg1, arg2, &uinfo));
        }
        break;
    case TARGET_NR_sigreturn:
        /* NOTE: ret is eax, so not transcoding must be done */
        ret = do_sigreturn(cpu_env);
        break;
    case TARGET_NR_rt_sigreturn:
        /* NOTE: ret is eax, so not transcoding must be done */
        ret = do_rt_sigreturn(cpu_env);
        break;
1637 1638 1639 1640 1641 1642 1643 1644 1645 1646
    case TARGET_NR_setreuid:
        ret = get_errno(setreuid(arg1, arg2));
        break;
    case TARGET_NR_setregid:
        ret = get_errno(setregid(arg1, arg2));
        break;
    case TARGET_NR_sethostname:
        ret = get_errno(sethostname((const char *)arg1, arg2));
        break;
    case TARGET_NR_setrlimit:
B
bellard 已提交
1647 1648 1649 1650 1651 1652 1653 1654 1655 1656
        {
            /* XXX: convert resource ? */
            int resource = arg1;
            struct target_rlimit *target_rlim = (void *)arg2;
            struct rlimit rlim;
            rlim.rlim_cur = tswapl(target_rlim->rlim_cur);
            rlim.rlim_max = tswapl(target_rlim->rlim_max);
            ret = get_errno(setrlimit(resource, &rlim));
        }
        break;
1657
    case TARGET_NR_getrlimit:
B
bellard 已提交
1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670
        {
            /* XXX: convert resource ? */
            int resource = arg1;
            struct target_rlimit *target_rlim = (void *)arg2;
            struct rlimit rlim;
            
            ret = get_errno(getrlimit(resource, &rlim));
            if (!is_error(ret)) {
                target_rlim->rlim_cur = tswapl(rlim.rlim_cur);
                target_rlim->rlim_max = tswapl(rlim.rlim_max);
            }
        }
        break;
1671 1672 1673 1674 1675 1676 1677 1678
    case TARGET_NR_getrusage:
        goto unimplemented;
    case TARGET_NR_gettimeofday:
        {
            struct target_timeval *target_tv = (void *)arg1;
            struct timeval tv;
            ret = get_errno(gettimeofday(&tv, NULL));
            if (!is_error(ret)) {
B
bellard 已提交
1679
                host_to_target_timeval(target_tv, &tv);
1680 1681 1682 1683 1684 1685 1686
            }
        }
        break;
    case TARGET_NR_settimeofday:
        {
            struct target_timeval *target_tv = (void *)arg1;
            struct timeval tv;
B
bellard 已提交
1687
            target_to_host_timeval(&tv, target_tv);
1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738
            ret = get_errno(settimeofday(&tv, NULL));
        }
        break;
    case TARGET_NR_getgroups:
        goto unimplemented;
    case TARGET_NR_setgroups:
        goto unimplemented;
    case TARGET_NR_select:
        goto unimplemented;
    case TARGET_NR_symlink:
        ret = get_errno(symlink((const char *)arg1, (const char *)arg2));
        break;
    case TARGET_NR_oldlstat:
        goto unimplemented;
    case TARGET_NR_readlink:
        ret = get_errno(readlink((const char *)arg1, (char *)arg2, arg3));
        break;
    case TARGET_NR_uselib:
        goto unimplemented;
    case TARGET_NR_swapon:
        ret = get_errno(swapon((const char *)arg1, arg2));
        break;
    case TARGET_NR_reboot:
        goto unimplemented;
    case TARGET_NR_readdir:
        goto unimplemented;
#ifdef TARGET_I386
    case TARGET_NR_mmap:
        {
            uint32_t v1, v2, v3, v4, v5, v6, *vptr;
            vptr = (uint32_t *)arg1;
            v1 = tswap32(vptr[0]);
            v2 = tswap32(vptr[1]);
            v3 = tswap32(vptr[2]);
            v4 = tswap32(vptr[3]);
            v5 = tswap32(vptr[4]);
            v6 = tswap32(vptr[5]);
            ret = get_errno((long)mmap((void *)v1, v2, v3, v4, v5, v6));
        }
        break;
#endif
#ifdef TARGET_I386
    case TARGET_NR_mmap2:
#else
    case TARGET_NR_mmap:
#endif
        ret = get_errno((long)mmap((void *)arg1, arg2, arg3, arg4, arg5, arg6));
        break;
    case TARGET_NR_munmap:
        ret = get_errno(munmap((void *)arg1, arg2));
        break;
B
bellard 已提交
1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759
    case TARGET_NR_mprotect:
        ret = get_errno(mprotect((void *)arg1, arg2, arg3));
        break;
    case TARGET_NR_mremap:
        ret = get_errno((long)mremap((void *)arg1, arg2, arg3, arg4));
        break;
    case TARGET_NR_msync:
        ret = get_errno(msync((void *)arg1, arg2, arg3));
        break;
    case TARGET_NR_mlock:
        ret = get_errno(mlock((void *)arg1, arg2));
        break;
    case TARGET_NR_munlock:
        ret = get_errno(munlock((void *)arg1, arg2));
        break;
    case TARGET_NR_mlockall:
        ret = get_errno(mlockall(arg1));
        break;
    case TARGET_NR_munlockall:
        ret = get_errno(munlockall());
        break;
1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803
    case TARGET_NR_truncate:
        ret = get_errno(truncate((const char *)arg1, arg2));
        break;
    case TARGET_NR_ftruncate:
        ret = get_errno(ftruncate(arg1, arg2));
        break;
    case TARGET_NR_fchmod:
        ret = get_errno(fchmod(arg1, arg2));
        break;
    case TARGET_NR_fchown:
        ret = get_errno(fchown(arg1, arg2, arg3));
        break;
    case TARGET_NR_getpriority:
        ret = get_errno(getpriority(arg1, arg2));
        break;
    case TARGET_NR_setpriority:
        ret = get_errno(setpriority(arg1, arg2, arg3));
        break;
    case TARGET_NR_profil:
        goto unimplemented;
    case TARGET_NR_statfs:
        stfs = (void *)arg2;
        ret = get_errno(sys_statfs((const char *)arg1, stfs));
    convert_statfs:
        if (!is_error(ret)) {
            tswap32s(&stfs->f_type);
            tswap32s(&stfs->f_bsize);
            tswap32s(&stfs->f_blocks);
            tswap32s(&stfs->f_bfree);
            tswap32s(&stfs->f_bavail);
            tswap32s(&stfs->f_files);
            tswap32s(&stfs->f_ffree);
            tswap32s(&stfs->f_fsid.val[0]);
            tswap32s(&stfs->f_fsid.val[1]);
            tswap32s(&stfs->f_namelen);
        }
        break;
    case TARGET_NR_fstatfs:
        stfs = (void *)arg2;
        ret = get_errno(sys_fstatfs(arg1, stfs));
        goto convert_statfs;
    case TARGET_NR_ioperm:
        goto unimplemented;
    case TARGET_NR_socketcall:
B
bellard 已提交
1804
        ret = do_socketcall(arg1, (int32_t *)arg2);
1805 1806 1807 1808
        break;
    case TARGET_NR_syslog:
        goto unimplemented;
    case TARGET_NR_setitimer:
B
bellard 已提交
1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831
        {
            struct target_itimerval *target_value = (void *)arg2;
            struct target_itimerval *target_ovalue = (void *)arg3;
            struct itimerval value, ovalue, *pvalue;

            if (target_value) {
                pvalue = &value;
                target_to_host_timeval(&pvalue->it_interval, 
                                       &target_value->it_interval);
                target_to_host_timeval(&pvalue->it_value, 
                                       &target_value->it_value);
            } else {
                pvalue = NULL;
            }
            ret = get_errno(setitimer(arg1, pvalue, &ovalue));
            if (!is_error(ret) && target_ovalue) {
                host_to_target_timeval(&target_ovalue->it_interval, 
                                       &ovalue.it_interval);
                host_to_target_timeval(&target_ovalue->it_value, 
                                       &ovalue.it_value);
            }
        }
        break;
1832
    case TARGET_NR_getitimer:
B
bellard 已提交
1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845
        {
            struct target_itimerval *target_value = (void *)arg2;
            struct itimerval value;
            
            ret = get_errno(getitimer(arg1, &value));
            if (!is_error(ret) && target_value) {
                host_to_target_timeval(&target_value->it_interval, 
                                       &value.it_interval);
                host_to_target_timeval(&target_value->it_value, 
                                       &value.it_value);
            }
        }
        break;
1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859
    case TARGET_NR_stat:
        ret = get_errno(stat((const char *)arg1, &st));
        goto do_stat;
    case TARGET_NR_lstat:
        ret = get_errno(lstat((const char *)arg1, &st));
        goto do_stat;
    case TARGET_NR_fstat:
        {
            ret = get_errno(fstat(arg1, &st));
        do_stat:
            if (!is_error(ret)) {
                struct target_stat *target_st = (void *)arg2;
                target_st->st_dev = tswap16(st.st_dev);
                target_st->st_ino = tswapl(st.st_ino);
B
bellard 已提交
1860
                target_st->st_mode = tswap32(st.st_mode);
1861 1862 1863 1864 1865 1866 1867
                target_st->st_nlink = tswap16(st.st_nlink);
                target_st->st_uid = tswap16(st.st_uid);
                target_st->st_gid = tswap16(st.st_gid);
                target_st->st_rdev = tswap16(st.st_rdev);
                target_st->st_size = tswapl(st.st_size);
                target_st->st_blksize = tswapl(st.st_blksize);
                target_st->st_blocks = tswapl(st.st_blocks);
B
bellard 已提交
1868 1869 1870
                target_st->target_st_atime = tswapl(st.st_atime);
                target_st->target_st_mtime = tswapl(st.st_mtime);
                target_st->target_st_ctime = tswapl(st.st_ctime);
1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930
            }
        }
        break;
    case TARGET_NR_olduname:
        goto unimplemented;
    case TARGET_NR_iopl:
        goto unimplemented;
    case TARGET_NR_vhangup:
        ret = get_errno(vhangup());
        break;
    case TARGET_NR_idle:
        goto unimplemented;
    case TARGET_NR_wait4:
        {
            int status;
            target_long *status_ptr = (void *)arg2;
            struct rusage rusage, *rusage_ptr;
            struct target_rusage *target_rusage = (void *)arg4;
            if (target_rusage)
                rusage_ptr = &rusage;
            else
                rusage_ptr = NULL;
            ret = get_errno(wait4(arg1, &status, arg3, rusage_ptr));
            if (!is_error(ret)) {
                if (status_ptr)
                    *status_ptr = tswap32(status);
                if (target_rusage) {
                    target_rusage->ru_utime.tv_sec = tswapl(rusage.ru_utime.tv_sec);
                    target_rusage->ru_utime.tv_usec = tswapl(rusage.ru_utime.tv_usec);
                    target_rusage->ru_stime.tv_sec = tswapl(rusage.ru_stime.tv_sec);
                    target_rusage->ru_stime.tv_usec = tswapl(rusage.ru_stime.tv_usec);
                    target_rusage->ru_maxrss = tswapl(rusage.ru_maxrss);
                    target_rusage->ru_ixrss = tswapl(rusage.ru_ixrss);
                    target_rusage->ru_idrss = tswapl(rusage.ru_idrss);
                    target_rusage->ru_isrss = tswapl(rusage.ru_isrss);
                    target_rusage->ru_minflt = tswapl(rusage.ru_minflt);
                    target_rusage->ru_majflt = tswapl(rusage.ru_majflt);
                    target_rusage->ru_nswap = tswapl(rusage.ru_nswap);
                    target_rusage->ru_inblock = tswapl(rusage.ru_inblock);
                    target_rusage->ru_oublock = tswapl(rusage.ru_oublock);
                    target_rusage->ru_msgsnd = tswapl(rusage.ru_msgsnd);
                    target_rusage->ru_msgrcv = tswapl(rusage.ru_msgrcv);
                    target_rusage->ru_nsignals = tswapl(rusage.ru_nsignals);
                    target_rusage->ru_nvcsw = tswapl(rusage.ru_nvcsw);
                    target_rusage->ru_nivcsw = tswapl(rusage.ru_nivcsw);
                }
            }
        }
        break;
    case TARGET_NR_swapoff:
        ret = get_errno(swapoff((const char *)arg1));
        break;
    case TARGET_NR_sysinfo:
        goto unimplemented;
    case TARGET_NR_ipc:
        goto unimplemented;
    case TARGET_NR_fsync:
        ret = get_errno(fsync(arg1));
        break;
    case TARGET_NR_clone:
B
bellard 已提交
1931 1932
        ret = get_errno(do_fork(cpu_env, arg1, arg2));
        break;
1933 1934 1935 1936 1937 1938 1939
    case TARGET_NR_setdomainname:
        ret = get_errno(setdomainname((const char *)arg1, arg2));
        break;
    case TARGET_NR_uname:
        /* no need to transcode because we use the linux syscall */
        ret = get_errno(sys_uname((struct new_utsname *)arg1));
        break;
B
bellard 已提交
1940
#ifdef TARGET_I386
1941
    case TARGET_NR_modify_ldt:
B
bellard 已提交
1942 1943 1944 1945 1946 1947
        ret = get_errno(do_modify_ldt(cpu_env, arg1, (void *)arg2, arg3));
        break;
    case TARGET_NR_vm86old:
        goto unimplemented;
    case TARGET_NR_vm86:
        ret = do_vm86(cpu_env, arg1, (void *)arg2);
B
bellard 已提交
1948 1949
        break;
#endif
1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969
    case TARGET_NR_adjtimex:
        goto unimplemented;
    case TARGET_NR_create_module:
    case TARGET_NR_init_module:
    case TARGET_NR_delete_module:
    case TARGET_NR_get_kernel_syms:
        goto unimplemented;
    case TARGET_NR_quotactl:
        goto unimplemented;
    case TARGET_NR_getpgid:
        ret = get_errno(getpgid(arg1));
        break;
    case TARGET_NR_fchdir:
        ret = get_errno(fchdir(arg1));
        break;
    case TARGET_NR_bdflush:
        goto unimplemented;
    case TARGET_NR_sysfs:
        goto unimplemented;
    case TARGET_NR_personality:
B
bellard 已提交
1970
        ret = get_errno(personality(arg1));
1971 1972 1973 1974
        break;
    case TARGET_NR_afs_syscall:
        goto unimplemented;
    case TARGET_NR_setfsuid:
B
bellard 已提交
1975 1976
        ret = get_errno(setfsuid(arg1));
        break;
1977
    case TARGET_NR_setfsgid:
B
bellard 已提交
1978 1979
        ret = get_errno(setfsgid(arg1));
        break;
1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993
    case TARGET_NR__llseek:
        {
            int64_t res;
            ret = get_errno(_llseek(arg1, arg2, arg3, &res, arg5));
            *(int64_t *)arg4 = tswap64(res);
        }
        break;
    case TARGET_NR_getdents:
#if TARGET_LONG_SIZE != 4
#error not supported
#endif
        {
            struct dirent *dirp = (void *)arg2;
            long count = arg3;
B
bellard 已提交
1994

B
bellard 已提交
1995
            ret = get_errno(sys_getdents(arg1, dirp, count));
1996 1997 1998 1999 2000 2001
            if (!is_error(ret)) {
                struct dirent *de;
                int len = ret;
                int reclen;
                de = dirp;
                while (len > 0) {
B
bellard 已提交
2002
                    reclen = de->d_reclen;
2003 2004
                    if (reclen > len)
                        break;
B
bellard 已提交
2005
                    de->d_reclen = tswap16(reclen);
2006 2007 2008 2009 2010 2011 2012 2013
                    tswapls(&de->d_ino);
                    tswapls(&de->d_off);
                    de = (struct dirent *)((char *)de + reclen);
                    len -= reclen;
                }
            }
        }
        break;
B
bellard 已提交
2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024
    case TARGET_NR_getdents64:
        {
            struct dirent64 *dirp = (void *)arg2;
            long count = arg3;
            ret = get_errno(sys_getdents64(arg1, dirp, count));
            if (!is_error(ret)) {
                struct dirent64 *de;
                int len = ret;
                int reclen;
                de = dirp;
                while (len > 0) {
B
bellard 已提交
2025
                    reclen = de->d_reclen;
B
bellard 已提交
2026 2027
                    if (reclen > len)
                        break;
B
bellard 已提交
2028
                    de->d_reclen = tswap16(reclen);
B
bellard 已提交
2029 2030 2031 2032 2033 2034 2035 2036
                    tswap64s(&de->d_ino);
                    tswap64s(&de->d_off);
                    de = (struct dirent64 *)((char *)de + reclen);
                    len -= reclen;
                }
            }
        }
        break;
2037 2038 2039 2040
    case TARGET_NR__newselect:
        ret = do_select(arg1, (void *)arg2, (void *)arg3, (void *)arg4, 
                        (void *)arg5);
        break;
B
bellard 已提交
2041 2042 2043 2044 2045 2046
    case TARGET_NR_poll:
        {
            struct target_pollfd *target_pfd = (void *)arg1;
            unsigned int nfds = arg2;
            int timeout = arg3;
            struct pollfd *pfd;
B
bellard 已提交
2047
            unsigned int i;
B
bellard 已提交
2048 2049 2050

            pfd = alloca(sizeof(struct pollfd) * nfds);
            for(i = 0; i < nfds; i++) {
B
bellard 已提交
2051 2052
                pfd[i].fd = tswap32(target_pfd[i].fd);
                pfd[i].events = tswap16(target_pfd[i].events);
B
bellard 已提交
2053 2054 2055 2056
            }
            ret = get_errno(poll(pfd, nfds, timeout));
            if (!is_error(ret)) {
                for(i = 0; i < nfds; i++) {
B
bellard 已提交
2057
                    target_pfd[i].revents = tswap16(pfd[i].revents);
B
bellard 已提交
2058 2059 2060 2061
                }
            }
        }
        break;
2062
    case TARGET_NR_flock:
B
bellard 已提交
2063 2064 2065
        /* NOTE: the flock constant seems to be the same for every
           Linux platform */
        ret = get_errno(flock(arg1, arg2));
2066 2067 2068 2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100
        break;
    case TARGET_NR_readv:
        {
            int count = arg3;
            int i;
            struct iovec *vec;
            struct target_iovec *target_vec = (void *)arg2;

            vec = alloca(count * sizeof(struct iovec));
            for(i = 0;i < count; i++) {
                vec[i].iov_base = (void *)tswapl(target_vec[i].iov_base);
                vec[i].iov_len = tswapl(target_vec[i].iov_len);
            }
            ret = get_errno(readv(arg1, vec, count));
        }
        break;
    case TARGET_NR_writev:
        {
            int count = arg3;
            int i;
            struct iovec *vec;
            struct target_iovec *target_vec = (void *)arg2;

            vec = alloca(count * sizeof(struct iovec));
            for(i = 0;i < count; i++) {
                vec[i].iov_base = (void *)tswapl(target_vec[i].iov_base);
                vec[i].iov_len = tswapl(target_vec[i].iov_len);
            }
            ret = get_errno(writev(arg1, vec, count));
        }
        break;
    case TARGET_NR_getsid:
        ret = get_errno(getsid(arg1));
        break;
    case TARGET_NR_fdatasync:
B
bellard 已提交
2101 2102
        ret = get_errno(fdatasync(arg1));
        break;
2103 2104 2105
    case TARGET_NR__sysctl:
        goto unimplemented;
    case TARGET_NR_sched_setparam:
B
bellard 已提交
2106 2107 2108 2109 2110 2111 2112
        {
            struct sched_param *target_schp = (void *)arg2;
            struct sched_param schp;
            schp.sched_priority = tswap32(target_schp->sched_priority);
            ret = get_errno(sched_setparam(arg1, &schp));
        }
        break;
2113
    case TARGET_NR_sched_getparam:
B
bellard 已提交
2114 2115 2116 2117 2118 2119 2120 2121 2122
        {
            struct sched_param *target_schp = (void *)arg2;
            struct sched_param schp;
            ret = get_errno(sched_getparam(arg1, &schp));
            if (!is_error(ret)) {
                target_schp->sched_priority = tswap32(schp.sched_priority);
            }
        }
        break;
2123
    case TARGET_NR_sched_setscheduler:
B
bellard 已提交
2124 2125 2126 2127 2128 2129 2130
        {
            struct sched_param *target_schp = (void *)arg3;
            struct sched_param schp;
            schp.sched_priority = tswap32(target_schp->sched_priority);
            ret = get_errno(sched_setscheduler(arg1, arg2, &schp));
        }
        break;
2131
    case TARGET_NR_sched_getscheduler:
B
bellard 已提交
2132 2133
        ret = get_errno(sched_getscheduler(arg1));
        break;
2134 2135 2136 2137
    case TARGET_NR_sched_yield:
        ret = get_errno(sched_yield());
        break;
    case TARGET_NR_sched_get_priority_max:
B
bellard 已提交
2138 2139
        ret = get_errno(sched_get_priority_max(arg1));
        break;
2140
    case TARGET_NR_sched_get_priority_min:
B
bellard 已提交
2141 2142
        ret = get_errno(sched_get_priority_min(arg1));
        break;
2143
    case TARGET_NR_sched_rr_get_interval:
B
bellard 已提交
2144 2145 2146 2147 2148 2149 2150 2151 2152 2153
        {
            struct target_timespec *target_ts = (void *)arg2;
            struct timespec ts;
            ret = get_errno(sched_rr_get_interval(arg1, &ts));
            if (!is_error(ret)) {
                target_ts->tv_sec = tswapl(ts.tv_sec);
                target_ts->tv_nsec = tswapl(ts.tv_nsec);
            }
        }
        break;
2154
    case TARGET_NR_nanosleep:
B
bellard 已提交
2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167
        {
            struct target_timespec *target_req = (void *)arg1;
            struct target_timespec *target_rem = (void *)arg2;
            struct timespec req, rem;
            req.tv_sec = tswapl(target_req->tv_sec);
            req.tv_nsec = tswapl(target_req->tv_nsec);
            ret = get_errno(nanosleep(&req, &rem));
            if (target_rem) {
                target_rem->tv_sec = tswapl(rem.tv_sec);
                target_rem->tv_nsec = tswapl(rem.tv_nsec);
            }
        }
        break;
2168
    case TARGET_NR_setresuid:
B
bellard 已提交
2169 2170 2171 2172
        ret = get_errno(setresuid(low2highuid(arg1), 
                                  low2highuid(arg2), 
                                  low2highuid(arg3)));
        break;
2173
    case TARGET_NR_getresuid:
B
bellard 已提交
2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199
        {
            int ruid, euid, suid;
            ret = get_errno(getresuid(&ruid, &euid, &suid));
            if (!is_error(ret)) {
                *(uint16_t *)arg1 = tswap16(high2lowuid(ruid));
                *(uint16_t *)arg2 = tswap16(high2lowuid(euid));
                *(uint16_t *)arg3 = tswap16(high2lowuid(suid));
            }
        }
        break;
    case TARGET_NR_setresgid:
        ret = get_errno(setresgid(low2highgid(arg1), 
                                  low2highgid(arg2), 
                                  low2highgid(arg3)));
        break;
    case TARGET_NR_getresgid:
        {
            int rgid, egid, sgid;
            ret = get_errno(getresgid(&rgid, &egid, &sgid));
            if (!is_error(ret)) {
                *(uint16_t *)arg1 = high2lowgid(tswap16(rgid));
                *(uint16_t *)arg2 = high2lowgid(tswap16(egid));
                *(uint16_t *)arg3 = high2lowgid(tswap16(sgid));
            }
        }
        break;
2200
    case TARGET_NR_query_module:
B
bellard 已提交
2201
        goto unimplemented;
2202
    case TARGET_NR_nfsservctl:
B
bellard 已提交
2203
        goto unimplemented;
2204
    case TARGET_NR_prctl:
B
bellard 已提交
2205
        goto unimplemented;
2206
    case TARGET_NR_pread:
B
bellard 已提交
2207
        goto unimplemented;
2208 2209 2210 2211 2212 2213
    case TARGET_NR_pwrite:
        goto unimplemented;
    case TARGET_NR_chown:
        ret = get_errno(chown((const char *)arg1, arg2, arg3));
        break;
    case TARGET_NR_getcwd:
B
bellard 已提交
2214
        ret = get_errno(sys_getcwd1((char *)arg1, arg2));
2215 2216
        break;
    case TARGET_NR_capget:
B
bellard 已提交
2217
        goto unimplemented;
2218
    case TARGET_NR_capset:
B
bellard 已提交
2219
        goto unimplemented;
2220
    case TARGET_NR_sigaltstack:
B
bellard 已提交
2221
        goto unimplemented;
2222
    case TARGET_NR_sendfile:
B
bellard 已提交
2223
        goto unimplemented;
2224
    case TARGET_NR_getpmsg:
B
bellard 已提交
2225
        goto unimplemented;
2226
    case TARGET_NR_putpmsg:
B
bellard 已提交
2227
        goto unimplemented;
2228
    case TARGET_NR_vfork:
B
bellard 已提交
2229
        ret = get_errno(do_fork(cpu_env, CLONE_VFORK | CLONE_VM | SIGCHLD, 0));
2230 2231
        break;
    case TARGET_NR_ugetrlimit:
B
bellard 已提交
2232
        goto unimplemented;
2233
    case TARGET_NR_truncate64:
B
bellard 已提交
2234
        goto unimplemented;
2235
    case TARGET_NR_ftruncate64:
B
bellard 已提交
2236
        goto unimplemented;
2237
    case TARGET_NR_stat64:
B
bellard 已提交
2238 2239
        ret = get_errno(stat((const char *)arg1, &st));
        goto do_stat64;
2240
    case TARGET_NR_lstat64:
B
bellard 已提交
2241 2242
        ret = get_errno(lstat((const char *)arg1, &st));
        goto do_stat64;
2243
    case TARGET_NR_fstat64:
B
bellard 已提交
2244 2245 2246 2247 2248 2249 2250
        {
            ret = get_errno(fstat(arg1, &st));
        do_stat64:
            if (!is_error(ret)) {
                struct target_stat64 *target_st = (void *)arg2;
                target_st->st_dev = tswap16(st.st_dev);
                target_st->st_ino = tswapl(st.st_ino);
B
bellard 已提交
2251
                target_st->st_mode = tswap32(st.st_mode);
B
bellard 已提交
2252 2253 2254 2255 2256 2257 2258 2259
                target_st->st_nlink = tswap16(st.st_nlink);
                target_st->st_uid = tswap16(st.st_uid);
                target_st->st_gid = tswap16(st.st_gid);
                target_st->st_rdev = tswap16(st.st_rdev);
                /* XXX: better use of kernel struct */
                target_st->st_size = tswapl(st.st_size);
                target_st->st_blksize = tswapl(st.st_blksize);
                target_st->st_blocks = tswapl(st.st_blocks);
B
bellard 已提交
2260 2261 2262
                target_st->target_st_atime = tswapl(st.st_atime);
                target_st->target_st_mtime = tswapl(st.st_mtime);
                target_st->target_st_ctime = tswapl(st.st_ctime);
B
bellard 已提交
2263 2264 2265 2266
            }
        }
        break;

2267
    case TARGET_NR_lchown32:
B
bellard 已提交
2268 2269
        ret = get_errno(lchown((const char *)arg1, arg2, arg3));
        break;
2270
    case TARGET_NR_getuid32:
B
bellard 已提交
2271 2272
        ret = get_errno(getuid());
        break;
2273
    case TARGET_NR_getgid32:
B
bellard 已提交
2274 2275
        ret = get_errno(getgid());
        break;
2276
    case TARGET_NR_geteuid32:
B
bellard 已提交
2277 2278
        ret = get_errno(geteuid());
        break;
2279
    case TARGET_NR_getegid32:
B
bellard 已提交
2280 2281
        ret = get_errno(getegid());
        break;
2282
    case TARGET_NR_setreuid32:
B
bellard 已提交
2283 2284
        ret = get_errno(setreuid(arg1, arg2));
        break;
2285
    case TARGET_NR_setregid32:
B
bellard 已提交
2286 2287
        ret = get_errno(setregid(arg1, arg2));
        break;
2288
    case TARGET_NR_getgroups32:
B
bellard 已提交
2289
        goto unimplemented;
2290
    case TARGET_NR_setgroups32:
B
bellard 已提交
2291
        goto unimplemented;
2292
    case TARGET_NR_fchown32:
B
bellard 已提交
2293 2294
        ret = get_errno(fchown(arg1, arg2, arg3));
        break;
2295
    case TARGET_NR_setresuid32:
B
bellard 已提交
2296 2297
        ret = get_errno(setresuid(arg1, arg2, arg3));
        break;
2298
    case TARGET_NR_getresuid32:
B
bellard 已提交
2299 2300 2301 2302 2303 2304 2305 2306 2307 2308
        {
            int ruid, euid, suid;
            ret = get_errno(getresuid(&ruid, &euid, &suid));
            if (!is_error(ret)) {
                *(uint32_t *)arg1 = tswap32(ruid);
                *(uint32_t *)arg2 = tswap32(euid);
                *(uint32_t *)arg3 = tswap32(suid);
            }
        }
        break;
2309
    case TARGET_NR_setresgid32:
B
bellard 已提交
2310 2311
        ret = get_errno(setresgid(arg1, arg2, arg3));
        break;
2312
    case TARGET_NR_getresgid32:
B
bellard 已提交
2313 2314 2315 2316 2317 2318 2319 2320 2321 2322
        {
            int rgid, egid, sgid;
            ret = get_errno(getresgid(&rgid, &egid, &sgid));
            if (!is_error(ret)) {
                *(uint32_t *)arg1 = tswap32(rgid);
                *(uint32_t *)arg2 = tswap32(egid);
                *(uint32_t *)arg3 = tswap32(sgid);
            }
        }
        break;
2323
    case TARGET_NR_chown32:
B
bellard 已提交
2324 2325
        ret = get_errno(chown((const char *)arg1, arg2, arg3));
        break;
2326
    case TARGET_NR_setuid32:
B
bellard 已提交
2327 2328
        ret = get_errno(setuid(arg1));
        break;
2329
    case TARGET_NR_setgid32:
B
bellard 已提交
2330 2331
        ret = get_errno(setgid(arg1));
        break;
2332
    case TARGET_NR_setfsuid32:
B
bellard 已提交
2333 2334
        ret = get_errno(setfsuid(arg1));
        break;
2335
    case TARGET_NR_setfsgid32:
B
bellard 已提交
2336 2337
        ret = get_errno(setfsgid(arg1));
        break;
2338
    case TARGET_NR_pivot_root:
B
bellard 已提交
2339
        goto unimplemented;
2340
    case TARGET_NR_mincore:
B
bellard 已提交
2341
        goto unimplemented;
2342
    case TARGET_NR_madvise:
B
bellard 已提交
2343 2344
        goto unimplemented;
#if TARGET_LONG_BITS == 32
2345
    case TARGET_NR_fcntl64:
B
bellard 已提交
2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356
        switch(arg2) {
        case F_GETLK64:
        case F_SETLK64:
        case F_SETLKW64:
            goto unimplemented;
        default:
            ret = get_errno(fcntl(arg1, arg2, arg3));
            break;
        }
        break;
#endif
2357 2358 2359 2360 2361 2362
    case TARGET_NR_security:
        goto unimplemented;
    case TARGET_NR_gettid:
        ret = get_errno(gettid());
        break;
    case TARGET_NR_readahead:
B
bellard 已提交
2363
        goto unimplemented;
2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375
    case TARGET_NR_setxattr:
    case TARGET_NR_lsetxattr:
    case TARGET_NR_fsetxattr:
    case TARGET_NR_getxattr:
    case TARGET_NR_lgetxattr:
    case TARGET_NR_fgetxattr:
    case TARGET_NR_listxattr:
    case TARGET_NR_llistxattr:
    case TARGET_NR_flistxattr:
    case TARGET_NR_removexattr:
    case TARGET_NR_lremovexattr:
    case TARGET_NR_fremovexattr:
B
bellard 已提交
2376 2377 2378 2379
        goto unimplemented_nowarn;
    case TARGET_NR_set_thread_area:
    case TARGET_NR_get_thread_area:
        goto unimplemented_nowarn;
2380 2381
    default:
    unimplemented:
B
bellard 已提交
2382 2383
        gemu_log("qemu: Unsupported syscall: %d\n", num);
    unimplemented_nowarn:
2384 2385 2386 2387 2388 2389 2390
        ret = -ENOSYS;
        break;
    }
 fail:
    return ret;
}