4 * Copyright (c) 2003 Fabrice Bellard
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, see <http://www.gnu.org/licenses/>.
19 #define _ATFILE_SOURCE
32 #include <sys/types.h>
38 #include <sys/mount.h>
40 #include <sys/fsuid.h>
41 #include <sys/personality.h>
42 #include <sys/prctl.h>
43 #include <sys/resource.h>
49 int __clone2(int (*fn
)(void *), void *child_stack_base
,
50 size_t stack_size
, int flags
, void *arg
, ...);
52 #include <sys/socket.h>
56 #include <sys/times.h>
59 #include <sys/statfs.h>
61 #include <sys/sysinfo.h>
62 #include <sys/utsname.h>
63 //#include <sys/user.h>
64 #include <netinet/ip.h>
65 #include <netinet/tcp.h>
66 #include <linux/wireless.h>
67 #include <linux/icmp.h>
68 #include "qemu-common.h"
73 #include <sys/eventfd.h>
76 #include <sys/epoll.h>
79 #include "qemu/xattr.h"
81 #ifdef CONFIG_SENDFILE
82 #include <sys/sendfile.h>
85 #define termios host_termios
86 #define winsize host_winsize
87 #define termio host_termio
88 #define sgttyb host_sgttyb /* same as target */
89 #define tchars host_tchars /* same as target */
90 #define ltchars host_ltchars /* same as target */
92 #include <linux/termios.h>
93 #include <linux/unistd.h>
94 #include <linux/utsname.h>
95 #include <linux/cdrom.h>
96 #include <linux/hdreg.h>
97 #include <linux/soundcard.h>
99 #include <linux/mtio.h>
100 #include <linux/fs.h>
101 #if defined(CONFIG_FIEMAP)
102 #include <linux/fiemap.h>
104 #include <linux/fb.h>
105 #include <linux/vt.h>
106 #include <linux/dm-ioctl.h>
107 #include <linux/reboot.h>
108 #include <linux/route.h>
109 #include <linux/filter.h>
110 #include <linux/blkpg.h>
111 #include "linux_loop.h"
112 #include "cpu-uname.h"
116 #define CLONE_NPTL_FLAGS2 (CLONE_SETTLS | \
117 CLONE_PARENT_SETTID | CLONE_CHILD_SETTID | CLONE_CHILD_CLEARTID)
121 //#include <linux/msdos_fs.h>
122 #define VFAT_IOCTL_READDIR_BOTH _IOR('r', 1, struct linux_dirent [2])
123 #define VFAT_IOCTL_READDIR_SHORT _IOR('r', 2, struct linux_dirent [2])
134 #define _syscall0(type,name) \
135 static type name (void) \
137 return syscall(__NR_##name); \
140 #define _syscall1(type,name,type1,arg1) \
141 static type name (type1 arg1) \
143 return syscall(__NR_##name, arg1); \
146 #define _syscall2(type,name,type1,arg1,type2,arg2) \
147 static type name (type1 arg1,type2 arg2) \
149 return syscall(__NR_##name, arg1, arg2); \
152 #define _syscall3(type,name,type1,arg1,type2,arg2,type3,arg3) \
153 static type name (type1 arg1,type2 arg2,type3 arg3) \
155 return syscall(__NR_##name, arg1, arg2, arg3); \
158 #define _syscall4(type,name,type1,arg1,type2,arg2,type3,arg3,type4,arg4) \
159 static type name (type1 arg1,type2 arg2,type3 arg3,type4 arg4) \
161 return syscall(__NR_##name, arg1, arg2, arg3, arg4); \
164 #define _syscall5(type,name,type1,arg1,type2,arg2,type3,arg3,type4,arg4, \
166 static type name (type1 arg1,type2 arg2,type3 arg3,type4 arg4,type5 arg5) \
168 return syscall(__NR_##name, arg1, arg2, arg3, arg4, arg5); \
172 #define _syscall6(type,name,type1,arg1,type2,arg2,type3,arg3,type4,arg4, \
173 type5,arg5,type6,arg6) \
174 static type name (type1 arg1,type2 arg2,type3 arg3,type4 arg4,type5 arg5, \
177 return syscall(__NR_##name, arg1, arg2, arg3, arg4, arg5, arg6); \
181 #define __NR_sys_uname __NR_uname
182 #define __NR_sys_getcwd1 __NR_getcwd
183 #define __NR_sys_getdents __NR_getdents
184 #define __NR_sys_getdents64 __NR_getdents64
185 #define __NR_sys_getpriority __NR_getpriority
186 #define __NR_sys_rt_sigqueueinfo __NR_rt_sigqueueinfo
187 #define __NR_sys_syslog __NR_syslog
188 #define __NR_sys_tgkill __NR_tgkill
189 #define __NR_sys_tkill __NR_tkill
190 #define __NR_sys_futex __NR_futex
191 #define __NR_sys_inotify_init __NR_inotify_init
192 #define __NR_sys_inotify_add_watch __NR_inotify_add_watch
193 #define __NR_sys_inotify_rm_watch __NR_inotify_rm_watch
195 #if defined(__alpha__) || defined (__ia64__) || defined(__x86_64__) || \
197 #define __NR__llseek __NR_lseek
201 _syscall0(int, gettid
)
203 /* This is a replacement for the host gettid() and must return a host
205 static int gettid(void) {
210 _syscall3(int, sys_getdents
, uint
, fd
, struct linux_dirent
*, dirp
, uint
, count
);
212 #if !defined(__NR_getdents) || \
213 (defined(TARGET_NR_getdents64) && defined(__NR_getdents64))
214 _syscall3(int, sys_getdents64
, uint
, fd
, struct linux_dirent64
*, dirp
, uint
, count
);
216 #if defined(TARGET_NR__llseek) && defined(__NR_llseek)
217 _syscall5(int, _llseek
, uint
, fd
, ulong
, hi
, ulong
, lo
,
218 loff_t
*, res
, uint
, wh
);
220 _syscall3(int,sys_rt_sigqueueinfo
,int,pid
,int,sig
,siginfo_t
*,uinfo
)
221 _syscall3(int,sys_syslog
,int,type
,char*,bufp
,int,len
)
222 #if defined(TARGET_NR_tgkill) && defined(__NR_tgkill)
223 _syscall3(int,sys_tgkill
,int,tgid
,int,pid
,int,sig
)
225 #if defined(TARGET_NR_tkill) && defined(__NR_tkill)
226 _syscall2(int,sys_tkill
,int,tid
,int,sig
)
228 #ifdef __NR_exit_group
229 _syscall1(int,exit_group
,int,error_code
)
231 #if defined(TARGET_NR_set_tid_address) && defined(__NR_set_tid_address)
232 _syscall1(int,set_tid_address
,int *,tidptr
)
234 #if defined(TARGET_NR_futex) && defined(__NR_futex)
235 _syscall6(int,sys_futex
,int *,uaddr
,int,op
,int,val
,
236 const struct timespec
*,timeout
,int *,uaddr2
,int,val3
)
238 #define __NR_sys_sched_getaffinity __NR_sched_getaffinity
239 _syscall3(int, sys_sched_getaffinity
, pid_t
, pid
, unsigned int, len
,
240 unsigned long *, user_mask_ptr
);
241 #define __NR_sys_sched_setaffinity __NR_sched_setaffinity
242 _syscall3(int, sys_sched_setaffinity
, pid_t
, pid
, unsigned int, len
,
243 unsigned long *, user_mask_ptr
);
244 _syscall4(int, reboot
, int, magic1
, int, magic2
, unsigned int, cmd
,
247 static bitmask_transtbl fcntl_flags_tbl
[] = {
248 { TARGET_O_ACCMODE
, TARGET_O_WRONLY
, O_ACCMODE
, O_WRONLY
, },
249 { TARGET_O_ACCMODE
, TARGET_O_RDWR
, O_ACCMODE
, O_RDWR
, },
250 { TARGET_O_CREAT
, TARGET_O_CREAT
, O_CREAT
, O_CREAT
, },
251 { TARGET_O_EXCL
, TARGET_O_EXCL
, O_EXCL
, O_EXCL
, },
252 { TARGET_O_NOCTTY
, TARGET_O_NOCTTY
, O_NOCTTY
, O_NOCTTY
, },
253 { TARGET_O_TRUNC
, TARGET_O_TRUNC
, O_TRUNC
, O_TRUNC
, },
254 { TARGET_O_APPEND
, TARGET_O_APPEND
, O_APPEND
, O_APPEND
, },
255 { TARGET_O_NONBLOCK
, TARGET_O_NONBLOCK
, O_NONBLOCK
, O_NONBLOCK
, },
256 { TARGET_O_SYNC
, TARGET_O_DSYNC
, O_SYNC
, O_DSYNC
, },
257 { TARGET_O_SYNC
, TARGET_O_SYNC
, O_SYNC
, O_SYNC
, },
258 { TARGET_FASYNC
, TARGET_FASYNC
, FASYNC
, FASYNC
, },
259 { TARGET_O_DIRECTORY
, TARGET_O_DIRECTORY
, O_DIRECTORY
, O_DIRECTORY
, },
260 { TARGET_O_NOFOLLOW
, TARGET_O_NOFOLLOW
, O_NOFOLLOW
, O_NOFOLLOW
, },
261 #if defined(O_DIRECT)
262 { TARGET_O_DIRECT
, TARGET_O_DIRECT
, O_DIRECT
, O_DIRECT
, },
264 #if defined(O_NOATIME)
265 { TARGET_O_NOATIME
, TARGET_O_NOATIME
, O_NOATIME
, O_NOATIME
},
267 #if defined(O_CLOEXEC)
268 { TARGET_O_CLOEXEC
, TARGET_O_CLOEXEC
, O_CLOEXEC
, O_CLOEXEC
},
271 { TARGET_O_PATH
, TARGET_O_PATH
, O_PATH
, O_PATH
},
273 /* Don't terminate the list prematurely on 64-bit host+guest. */
274 #if TARGET_O_LARGEFILE != 0 || O_LARGEFILE != 0
275 { TARGET_O_LARGEFILE
, TARGET_O_LARGEFILE
, O_LARGEFILE
, O_LARGEFILE
, },
280 #define COPY_UTSNAME_FIELD(dest, src) \
282 /* __NEW_UTS_LEN doesn't include terminating null */ \
283 (void) strncpy((dest), (src), __NEW_UTS_LEN); \
284 (dest)[__NEW_UTS_LEN] = '\0'; \
287 static int sys_uname(struct new_utsname
*buf
)
289 struct utsname uts_buf
;
291 if (uname(&uts_buf
) < 0)
295 * Just in case these have some differences, we
296 * translate utsname to new_utsname (which is the
297 * struct linux kernel uses).
300 memset(buf
, 0, sizeof(*buf
));
301 COPY_UTSNAME_FIELD(buf
->sysname
, uts_buf
.sysname
);
302 COPY_UTSNAME_FIELD(buf
->nodename
, uts_buf
.nodename
);
303 COPY_UTSNAME_FIELD(buf
->release
, uts_buf
.release
);
304 COPY_UTSNAME_FIELD(buf
->version
, uts_buf
.version
);
305 COPY_UTSNAME_FIELD(buf
->machine
, uts_buf
.machine
);
307 COPY_UTSNAME_FIELD(buf
->domainname
, uts_buf
.domainname
);
311 #undef COPY_UTSNAME_FIELD
314 static int sys_getcwd1(char *buf
, size_t size
)
316 if (getcwd(buf
, size
) == NULL
) {
317 /* getcwd() sets errno */
320 return strlen(buf
)+1;
323 #ifdef TARGET_NR_openat
324 static int sys_openat(int dirfd
, const char *pathname
, int flags
, mode_t mode
)
327 * open(2) has extra parameter 'mode' when called with
330 if ((flags
& O_CREAT
) != 0) {
331 return (openat(dirfd
, pathname
, flags
, mode
));
333 return (openat(dirfd
, pathname
, flags
));
337 #ifdef TARGET_NR_utimensat
338 #ifdef CONFIG_UTIMENSAT
339 static int sys_utimensat(int dirfd
, const char *pathname
,
340 const struct timespec times
[2], int flags
)
342 if (pathname
== NULL
)
343 return futimens(dirfd
, times
);
345 return utimensat(dirfd
, pathname
, times
, flags
);
347 #elif defined(__NR_utimensat)
348 #define __NR_sys_utimensat __NR_utimensat
349 _syscall4(int,sys_utimensat
,int,dirfd
,const char *,pathname
,
350 const struct timespec
*,tsp
,int,flags
)
352 static int sys_utimensat(int dirfd
, const char *pathname
,
353 const struct timespec times
[2], int flags
)
359 #endif /* TARGET_NR_utimensat */
361 #ifdef CONFIG_INOTIFY
362 #include <sys/inotify.h>
364 #if defined(TARGET_NR_inotify_init) && defined(__NR_inotify_init)
365 static int sys_inotify_init(void)
367 return (inotify_init());
370 #if defined(TARGET_NR_inotify_add_watch) && defined(__NR_inotify_add_watch)
371 static int sys_inotify_add_watch(int fd
,const char *pathname
, int32_t mask
)
373 return (inotify_add_watch(fd
, pathname
, mask
));
376 #if defined(TARGET_NR_inotify_rm_watch) && defined(__NR_inotify_rm_watch)
377 static int sys_inotify_rm_watch(int fd
, int32_t wd
)
379 return (inotify_rm_watch(fd
, wd
));
382 #ifdef CONFIG_INOTIFY1
383 #if defined(TARGET_NR_inotify_init1) && defined(__NR_inotify_init1)
384 static int sys_inotify_init1(int flags
)
386 return (inotify_init1(flags
));
391 /* Userspace can usually survive runtime without inotify */
392 #undef TARGET_NR_inotify_init
393 #undef TARGET_NR_inotify_init1
394 #undef TARGET_NR_inotify_add_watch
395 #undef TARGET_NR_inotify_rm_watch
396 #endif /* CONFIG_INOTIFY */
398 #if defined(TARGET_NR_ppoll)
400 # define __NR_ppoll -1
402 #define __NR_sys_ppoll __NR_ppoll
403 _syscall5(int, sys_ppoll
, struct pollfd
*, fds
, nfds_t
, nfds
,
404 struct timespec
*, timeout
, const __sigset_t
*, sigmask
,
408 #if defined(TARGET_NR_pselect6)
409 #ifndef __NR_pselect6
410 # define __NR_pselect6 -1
412 #define __NR_sys_pselect6 __NR_pselect6
413 _syscall6(int, sys_pselect6
, int, nfds
, fd_set
*, readfds
, fd_set
*, writefds
,
414 fd_set
*, exceptfds
, struct timespec
*, timeout
, void *, sig
);
417 #if defined(TARGET_NR_prlimit64)
418 #ifndef __NR_prlimit64
419 # define __NR_prlimit64 -1
421 #define __NR_sys_prlimit64 __NR_prlimit64
422 /* The glibc rlimit structure may not be that used by the underlying syscall */
423 struct host_rlimit64
{
427 _syscall4(int, sys_prlimit64
, pid_t
, pid
, int, resource
,
428 const struct host_rlimit64
*, new_limit
,
429 struct host_rlimit64
*, old_limit
)
433 #if defined(TARGET_NR_timer_create)
434 /* Maxiumum of 32 active POSIX timers allowed at any one time. */
435 static timer_t g_posix_timers
[32] = { 0, } ;
437 static inline int next_free_host_timer(void)
440 /* FIXME: Does finding the next free slot require a lock? */
441 for (k
= 0; k
< ARRAY_SIZE(g_posix_timers
); k
++) {
442 if (g_posix_timers
[k
] == 0) {
443 g_posix_timers
[k
] = (timer_t
) 1;
451 /* ARM EABI and MIPS expect 64bit types aligned even on pairs or registers */
453 static inline int regpairs_aligned(void *cpu_env
) {
454 return ((((CPUARMState
*)cpu_env
)->eabi
) == 1) ;
456 #elif defined(TARGET_MIPS)
457 static inline int regpairs_aligned(void *cpu_env
) { return 1; }
458 #elif defined(TARGET_PPC) && !defined(TARGET_PPC64)
459 /* SysV AVI for PPC32 expects 64bit parameters to be passed on odd/even pairs
460 * of registers which translates to the same as ARM/MIPS, because we start with
462 static inline int regpairs_aligned(void *cpu_env
) { return 1; }
464 static inline int regpairs_aligned(void *cpu_env
) { return 0; }
467 #define ERRNO_TABLE_SIZE 1200
469 /* target_to_host_errno_table[] is initialized from
470 * host_to_target_errno_table[] in syscall_init(). */
471 static uint16_t target_to_host_errno_table
[ERRNO_TABLE_SIZE
] = {
475 * This list is the union of errno values overridden in asm-<arch>/errno.h
476 * minus the errnos that are not actually generic to all archs.
478 static uint16_t host_to_target_errno_table
[ERRNO_TABLE_SIZE
] = {
479 [EIDRM
] = TARGET_EIDRM
,
480 [ECHRNG
] = TARGET_ECHRNG
,
481 [EL2NSYNC
] = TARGET_EL2NSYNC
,
482 [EL3HLT
] = TARGET_EL3HLT
,
483 [EL3RST
] = TARGET_EL3RST
,
484 [ELNRNG
] = TARGET_ELNRNG
,
485 [EUNATCH
] = TARGET_EUNATCH
,
486 [ENOCSI
] = TARGET_ENOCSI
,
487 [EL2HLT
] = TARGET_EL2HLT
,
488 [EDEADLK
] = TARGET_EDEADLK
,
489 [ENOLCK
] = TARGET_ENOLCK
,
490 [EBADE
] = TARGET_EBADE
,
491 [EBADR
] = TARGET_EBADR
,
492 [EXFULL
] = TARGET_EXFULL
,
493 [ENOANO
] = TARGET_ENOANO
,
494 [EBADRQC
] = TARGET_EBADRQC
,
495 [EBADSLT
] = TARGET_EBADSLT
,
496 [EBFONT
] = TARGET_EBFONT
,
497 [ENOSTR
] = TARGET_ENOSTR
,
498 [ENODATA
] = TARGET_ENODATA
,
499 [ETIME
] = TARGET_ETIME
,
500 [ENOSR
] = TARGET_ENOSR
,
501 [ENONET
] = TARGET_ENONET
,
502 [ENOPKG
] = TARGET_ENOPKG
,
503 [EREMOTE
] = TARGET_EREMOTE
,
504 [ENOLINK
] = TARGET_ENOLINK
,
505 [EADV
] = TARGET_EADV
,
506 [ESRMNT
] = TARGET_ESRMNT
,
507 [ECOMM
] = TARGET_ECOMM
,
508 [EPROTO
] = TARGET_EPROTO
,
509 [EDOTDOT
] = TARGET_EDOTDOT
,
510 [EMULTIHOP
] = TARGET_EMULTIHOP
,
511 [EBADMSG
] = TARGET_EBADMSG
,
512 [ENAMETOOLONG
] = TARGET_ENAMETOOLONG
,
513 [EOVERFLOW
] = TARGET_EOVERFLOW
,
514 [ENOTUNIQ
] = TARGET_ENOTUNIQ
,
515 [EBADFD
] = TARGET_EBADFD
,
516 [EREMCHG
] = TARGET_EREMCHG
,
517 [ELIBACC
] = TARGET_ELIBACC
,
518 [ELIBBAD
] = TARGET_ELIBBAD
,
519 [ELIBSCN
] = TARGET_ELIBSCN
,
520 [ELIBMAX
] = TARGET_ELIBMAX
,
521 [ELIBEXEC
] = TARGET_ELIBEXEC
,
522 [EILSEQ
] = TARGET_EILSEQ
,
523 [ENOSYS
] = TARGET_ENOSYS
,
524 [ELOOP
] = TARGET_ELOOP
,
525 [ERESTART
] = TARGET_ERESTART
,
526 [ESTRPIPE
] = TARGET_ESTRPIPE
,
527 [ENOTEMPTY
] = TARGET_ENOTEMPTY
,
528 [EUSERS
] = TARGET_EUSERS
,
529 [ENOTSOCK
] = TARGET_ENOTSOCK
,
530 [EDESTADDRREQ
] = TARGET_EDESTADDRREQ
,
531 [EMSGSIZE
] = TARGET_EMSGSIZE
,
532 [EPROTOTYPE
] = TARGET_EPROTOTYPE
,
533 [ENOPROTOOPT
] = TARGET_ENOPROTOOPT
,
534 [EPROTONOSUPPORT
] = TARGET_EPROTONOSUPPORT
,
535 [ESOCKTNOSUPPORT
] = TARGET_ESOCKTNOSUPPORT
,
536 [EOPNOTSUPP
] = TARGET_EOPNOTSUPP
,
537 [EPFNOSUPPORT
] = TARGET_EPFNOSUPPORT
,
538 [EAFNOSUPPORT
] = TARGET_EAFNOSUPPORT
,
539 [EADDRINUSE
] = TARGET_EADDRINUSE
,
540 [EADDRNOTAVAIL
] = TARGET_EADDRNOTAVAIL
,
541 [ENETDOWN
] = TARGET_ENETDOWN
,
542 [ENETUNREACH
] = TARGET_ENETUNREACH
,
543 [ENETRESET
] = TARGET_ENETRESET
,
544 [ECONNABORTED
] = TARGET_ECONNABORTED
,
545 [ECONNRESET
] = TARGET_ECONNRESET
,
546 [ENOBUFS
] = TARGET_ENOBUFS
,
547 [EISCONN
] = TARGET_EISCONN
,
548 [ENOTCONN
] = TARGET_ENOTCONN
,
549 [EUCLEAN
] = TARGET_EUCLEAN
,
550 [ENOTNAM
] = TARGET_ENOTNAM
,
551 [ENAVAIL
] = TARGET_ENAVAIL
,
552 [EISNAM
] = TARGET_EISNAM
,
553 [EREMOTEIO
] = TARGET_EREMOTEIO
,
554 [ESHUTDOWN
] = TARGET_ESHUTDOWN
,
555 [ETOOMANYREFS
] = TARGET_ETOOMANYREFS
,
556 [ETIMEDOUT
] = TARGET_ETIMEDOUT
,
557 [ECONNREFUSED
] = TARGET_ECONNREFUSED
,
558 [EHOSTDOWN
] = TARGET_EHOSTDOWN
,
559 [EHOSTUNREACH
] = TARGET_EHOSTUNREACH
,
560 [EALREADY
] = TARGET_EALREADY
,
561 [EINPROGRESS
] = TARGET_EINPROGRESS
,
562 [ESTALE
] = TARGET_ESTALE
,
563 [ECANCELED
] = TARGET_ECANCELED
,
564 [ENOMEDIUM
] = TARGET_ENOMEDIUM
,
565 [EMEDIUMTYPE
] = TARGET_EMEDIUMTYPE
,
567 [ENOKEY
] = TARGET_ENOKEY
,
570 [EKEYEXPIRED
] = TARGET_EKEYEXPIRED
,
573 [EKEYREVOKED
] = TARGET_EKEYREVOKED
,
576 [EKEYREJECTED
] = TARGET_EKEYREJECTED
,
579 [EOWNERDEAD
] = TARGET_EOWNERDEAD
,
581 #ifdef ENOTRECOVERABLE
582 [ENOTRECOVERABLE
] = TARGET_ENOTRECOVERABLE
,
586 static inline int host_to_target_errno(int err
)
588 if(host_to_target_errno_table
[err
])
589 return host_to_target_errno_table
[err
];
593 static inline int target_to_host_errno(int err
)
595 if (target_to_host_errno_table
[err
])
596 return target_to_host_errno_table
[err
];
600 static inline abi_long
get_errno(abi_long ret
)
603 return -host_to_target_errno(errno
);
608 static inline int is_error(abi_long ret
)
610 return (abi_ulong
)ret
>= (abi_ulong
)(-4096);
613 char *target_strerror(int err
)
615 if ((err
>= ERRNO_TABLE_SIZE
) || (err
< 0)) {
618 return strerror(target_to_host_errno(err
));
621 static abi_ulong target_brk
;
622 static abi_ulong target_original_brk
;
623 static abi_ulong brk_page
;
625 void target_set_brk(abi_ulong new_brk
)
627 target_original_brk
= target_brk
= HOST_PAGE_ALIGN(new_brk
);
628 brk_page
= HOST_PAGE_ALIGN(target_brk
);
631 //#define DEBUGF_BRK(message, args...) do { fprintf(stderr, (message), ## args); } while (0)
632 #define DEBUGF_BRK(message, args...)
634 /* do_brk() must return target values and target errnos. */
635 abi_long
do_brk(abi_ulong new_brk
)
637 abi_long mapped_addr
;
640 DEBUGF_BRK("do_brk(" TARGET_ABI_FMT_lx
") -> ", new_brk
);
643 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (!new_brk)\n", target_brk
);
646 if (new_brk
< target_original_brk
) {
647 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (new_brk < target_original_brk)\n",
652 /* If the new brk is less than the highest page reserved to the
653 * target heap allocation, set it and we're almost done... */
654 if (new_brk
<= brk_page
) {
655 /* Heap contents are initialized to zero, as for anonymous
657 if (new_brk
> target_brk
) {
658 memset(g2h(target_brk
), 0, new_brk
- target_brk
);
660 target_brk
= new_brk
;
661 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (new_brk <= brk_page)\n", target_brk
);
665 /* We need to allocate more memory after the brk... Note that
666 * we don't use MAP_FIXED because that will map over the top of
667 * any existing mapping (like the one with the host libc or qemu
668 * itself); instead we treat "mapped but at wrong address" as
669 * a failure and unmap again.
671 new_alloc_size
= HOST_PAGE_ALIGN(new_brk
- brk_page
);
672 mapped_addr
= get_errno(target_mmap(brk_page
, new_alloc_size
,
673 PROT_READ
|PROT_WRITE
,
674 MAP_ANON
|MAP_PRIVATE
, 0, 0));
676 if (mapped_addr
== brk_page
) {
677 /* Heap contents are initialized to zero, as for anonymous
678 * mapped pages. Technically the new pages are already
679 * initialized to zero since they *are* anonymous mapped
680 * pages, however we have to take care with the contents that
681 * come from the remaining part of the previous page: it may
682 * contains garbage data due to a previous heap usage (grown
684 memset(g2h(target_brk
), 0, brk_page
- target_brk
);
686 target_brk
= new_brk
;
687 brk_page
= HOST_PAGE_ALIGN(target_brk
);
688 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (mapped_addr == brk_page)\n",
691 } else if (mapped_addr
!= -1) {
692 /* Mapped but at wrong address, meaning there wasn't actually
693 * enough space for this brk.
695 target_munmap(mapped_addr
, new_alloc_size
);
697 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (mapped_addr != -1)\n", target_brk
);
700 DEBUGF_BRK(TARGET_ABI_FMT_lx
" (otherwise)\n", target_brk
);
703 #if defined(TARGET_ALPHA)
704 /* We (partially) emulate OSF/1 on Alpha, which requires we
705 return a proper errno, not an unchanged brk value. */
706 return -TARGET_ENOMEM
;
708 /* For everything else, return the previous break. */
712 static inline abi_long
copy_from_user_fdset(fd_set
*fds
,
713 abi_ulong target_fds_addr
,
717 abi_ulong b
, *target_fds
;
719 nw
= (n
+ TARGET_ABI_BITS
- 1) / TARGET_ABI_BITS
;
720 if (!(target_fds
= lock_user(VERIFY_READ
,
722 sizeof(abi_ulong
) * nw
,
724 return -TARGET_EFAULT
;
728 for (i
= 0; i
< nw
; i
++) {
729 /* grab the abi_ulong */
730 __get_user(b
, &target_fds
[i
]);
731 for (j
= 0; j
< TARGET_ABI_BITS
; j
++) {
732 /* check the bit inside the abi_ulong */
739 unlock_user(target_fds
, target_fds_addr
, 0);
744 static inline abi_ulong
copy_from_user_fdset_ptr(fd_set
*fds
, fd_set
**fds_ptr
,
745 abi_ulong target_fds_addr
,
748 if (target_fds_addr
) {
749 if (copy_from_user_fdset(fds
, target_fds_addr
, n
))
750 return -TARGET_EFAULT
;
758 static inline abi_long
copy_to_user_fdset(abi_ulong target_fds_addr
,
764 abi_ulong
*target_fds
;
766 nw
= (n
+ TARGET_ABI_BITS
- 1) / TARGET_ABI_BITS
;
767 if (!(target_fds
= lock_user(VERIFY_WRITE
,
769 sizeof(abi_ulong
) * nw
,
771 return -TARGET_EFAULT
;
774 for (i
= 0; i
< nw
; i
++) {
776 for (j
= 0; j
< TARGET_ABI_BITS
; j
++) {
777 v
|= ((abi_ulong
)(FD_ISSET(k
, fds
) != 0) << j
);
780 __put_user(v
, &target_fds
[i
]);
783 unlock_user(target_fds
, target_fds_addr
, sizeof(abi_ulong
) * nw
);
788 #if defined(__alpha__)
794 static inline abi_long
host_to_target_clock_t(long ticks
)
796 #if HOST_HZ == TARGET_HZ
799 return ((int64_t)ticks
* TARGET_HZ
) / HOST_HZ
;
803 static inline abi_long
host_to_target_rusage(abi_ulong target_addr
,
804 const struct rusage
*rusage
)
806 struct target_rusage
*target_rusage
;
808 if (!lock_user_struct(VERIFY_WRITE
, target_rusage
, target_addr
, 0))
809 return -TARGET_EFAULT
;
810 target_rusage
->ru_utime
.tv_sec
= tswapal(rusage
->ru_utime
.tv_sec
);
811 target_rusage
->ru_utime
.tv_usec
= tswapal(rusage
->ru_utime
.tv_usec
);
812 target_rusage
->ru_stime
.tv_sec
= tswapal(rusage
->ru_stime
.tv_sec
);
813 target_rusage
->ru_stime
.tv_usec
= tswapal(rusage
->ru_stime
.tv_usec
);
814 target_rusage
->ru_maxrss
= tswapal(rusage
->ru_maxrss
);
815 target_rusage
->ru_ixrss
= tswapal(rusage
->ru_ixrss
);
816 target_rusage
->ru_idrss
= tswapal(rusage
->ru_idrss
);
817 target_rusage
->ru_isrss
= tswapal(rusage
->ru_isrss
);
818 target_rusage
->ru_minflt
= tswapal(rusage
->ru_minflt
);
819 target_rusage
->ru_majflt
= tswapal(rusage
->ru_majflt
);
820 target_rusage
->ru_nswap
= tswapal(rusage
->ru_nswap
);
821 target_rusage
->ru_inblock
= tswapal(rusage
->ru_inblock
);
822 target_rusage
->ru_oublock
= tswapal(rusage
->ru_oublock
);
823 target_rusage
->ru_msgsnd
= tswapal(rusage
->ru_msgsnd
);
824 target_rusage
->ru_msgrcv
= tswapal(rusage
->ru_msgrcv
);
825 target_rusage
->ru_nsignals
= tswapal(rusage
->ru_nsignals
);
826 target_rusage
->ru_nvcsw
= tswapal(rusage
->ru_nvcsw
);
827 target_rusage
->ru_nivcsw
= tswapal(rusage
->ru_nivcsw
);
828 unlock_user_struct(target_rusage
, target_addr
, 1);
833 static inline rlim_t
target_to_host_rlim(abi_ulong target_rlim
)
835 abi_ulong target_rlim_swap
;
838 target_rlim_swap
= tswapal(target_rlim
);
839 if (target_rlim_swap
== TARGET_RLIM_INFINITY
)
840 return RLIM_INFINITY
;
842 result
= target_rlim_swap
;
843 if (target_rlim_swap
!= (rlim_t
)result
)
844 return RLIM_INFINITY
;
849 static inline abi_ulong
host_to_target_rlim(rlim_t rlim
)
851 abi_ulong target_rlim_swap
;
854 if (rlim
== RLIM_INFINITY
|| rlim
!= (abi_long
)rlim
)
855 target_rlim_swap
= TARGET_RLIM_INFINITY
;
857 target_rlim_swap
= rlim
;
858 result
= tswapal(target_rlim_swap
);
863 static inline int target_to_host_resource(int code
)
866 case TARGET_RLIMIT_AS
:
868 case TARGET_RLIMIT_CORE
:
870 case TARGET_RLIMIT_CPU
:
872 case TARGET_RLIMIT_DATA
:
874 case TARGET_RLIMIT_FSIZE
:
876 case TARGET_RLIMIT_LOCKS
:
878 case TARGET_RLIMIT_MEMLOCK
:
879 return RLIMIT_MEMLOCK
;
880 case TARGET_RLIMIT_MSGQUEUE
:
881 return RLIMIT_MSGQUEUE
;
882 case TARGET_RLIMIT_NICE
:
884 case TARGET_RLIMIT_NOFILE
:
885 return RLIMIT_NOFILE
;
886 case TARGET_RLIMIT_NPROC
:
888 case TARGET_RLIMIT_RSS
:
890 case TARGET_RLIMIT_RTPRIO
:
891 return RLIMIT_RTPRIO
;
892 case TARGET_RLIMIT_SIGPENDING
:
893 return RLIMIT_SIGPENDING
;
894 case TARGET_RLIMIT_STACK
:
901 static inline abi_long
copy_from_user_timeval(struct timeval
*tv
,
902 abi_ulong target_tv_addr
)
904 struct target_timeval
*target_tv
;
906 if (!lock_user_struct(VERIFY_READ
, target_tv
, target_tv_addr
, 1))
907 return -TARGET_EFAULT
;
909 __get_user(tv
->tv_sec
, &target_tv
->tv_sec
);
910 __get_user(tv
->tv_usec
, &target_tv
->tv_usec
);
912 unlock_user_struct(target_tv
, target_tv_addr
, 0);
917 static inline abi_long
copy_to_user_timeval(abi_ulong target_tv_addr
,
918 const struct timeval
*tv
)
920 struct target_timeval
*target_tv
;
922 if (!lock_user_struct(VERIFY_WRITE
, target_tv
, target_tv_addr
, 0))
923 return -TARGET_EFAULT
;
925 __put_user(tv
->tv_sec
, &target_tv
->tv_sec
);
926 __put_user(tv
->tv_usec
, &target_tv
->tv_usec
);
928 unlock_user_struct(target_tv
, target_tv_addr
, 1);
933 #if defined(TARGET_NR_mq_open) && defined(__NR_mq_open)
936 static inline abi_long
copy_from_user_mq_attr(struct mq_attr
*attr
,
937 abi_ulong target_mq_attr_addr
)
939 struct target_mq_attr
*target_mq_attr
;
941 if (!lock_user_struct(VERIFY_READ
, target_mq_attr
,
942 target_mq_attr_addr
, 1))
943 return -TARGET_EFAULT
;
945 __get_user(attr
->mq_flags
, &target_mq_attr
->mq_flags
);
946 __get_user(attr
->mq_maxmsg
, &target_mq_attr
->mq_maxmsg
);
947 __get_user(attr
->mq_msgsize
, &target_mq_attr
->mq_msgsize
);
948 __get_user(attr
->mq_curmsgs
, &target_mq_attr
->mq_curmsgs
);
950 unlock_user_struct(target_mq_attr
, target_mq_attr_addr
, 0);
955 static inline abi_long
copy_to_user_mq_attr(abi_ulong target_mq_attr_addr
,
956 const struct mq_attr
*attr
)
958 struct target_mq_attr
*target_mq_attr
;
960 if (!lock_user_struct(VERIFY_WRITE
, target_mq_attr
,
961 target_mq_attr_addr
, 0))
962 return -TARGET_EFAULT
;
964 __put_user(attr
->mq_flags
, &target_mq_attr
->mq_flags
);
965 __put_user(attr
->mq_maxmsg
, &target_mq_attr
->mq_maxmsg
);
966 __put_user(attr
->mq_msgsize
, &target_mq_attr
->mq_msgsize
);
967 __put_user(attr
->mq_curmsgs
, &target_mq_attr
->mq_curmsgs
);
969 unlock_user_struct(target_mq_attr
, target_mq_attr_addr
, 1);
975 #if defined(TARGET_NR_select) || defined(TARGET_NR__newselect)
976 /* do_select() must return target values and target errnos. */
977 static abi_long
do_select(int n
,
978 abi_ulong rfd_addr
, abi_ulong wfd_addr
,
979 abi_ulong efd_addr
, abi_ulong target_tv_addr
)
981 fd_set rfds
, wfds
, efds
;
982 fd_set
*rfds_ptr
, *wfds_ptr
, *efds_ptr
;
983 struct timeval tv
, *tv_ptr
;
986 ret
= copy_from_user_fdset_ptr(&rfds
, &rfds_ptr
, rfd_addr
, n
);
990 ret
= copy_from_user_fdset_ptr(&wfds
, &wfds_ptr
, wfd_addr
, n
);
994 ret
= copy_from_user_fdset_ptr(&efds
, &efds_ptr
, efd_addr
, n
);
999 if (target_tv_addr
) {
1000 if (copy_from_user_timeval(&tv
, target_tv_addr
))
1001 return -TARGET_EFAULT
;
1007 ret
= get_errno(select(n
, rfds_ptr
, wfds_ptr
, efds_ptr
, tv_ptr
));
1009 if (!is_error(ret
)) {
1010 if (rfd_addr
&& copy_to_user_fdset(rfd_addr
, &rfds
, n
))
1011 return -TARGET_EFAULT
;
1012 if (wfd_addr
&& copy_to_user_fdset(wfd_addr
, &wfds
, n
))
1013 return -TARGET_EFAULT
;
1014 if (efd_addr
&& copy_to_user_fdset(efd_addr
, &efds
, n
))
1015 return -TARGET_EFAULT
;
1017 if (target_tv_addr
&& copy_to_user_timeval(target_tv_addr
, &tv
))
1018 return -TARGET_EFAULT
;
1025 static abi_long
do_pipe2(int host_pipe
[], int flags
)
1028 return pipe2(host_pipe
, flags
);
1034 static abi_long
do_pipe(void *cpu_env
, abi_ulong pipedes
,
1035 int flags
, int is_pipe2
)
1039 ret
= flags
? do_pipe2(host_pipe
, flags
) : pipe(host_pipe
);
1042 return get_errno(ret
);
1044 /* Several targets have special calling conventions for the original
1045 pipe syscall, but didn't replicate this into the pipe2 syscall. */
1047 #if defined(TARGET_ALPHA)
1048 ((CPUAlphaState
*)cpu_env
)->ir
[IR_A4
] = host_pipe
[1];
1049 return host_pipe
[0];
1050 #elif defined(TARGET_MIPS)
1051 ((CPUMIPSState
*)cpu_env
)->active_tc
.gpr
[3] = host_pipe
[1];
1052 return host_pipe
[0];
1053 #elif defined(TARGET_SH4)
1054 ((CPUSH4State
*)cpu_env
)->gregs
[1] = host_pipe
[1];
1055 return host_pipe
[0];
1056 #elif defined(TARGET_SPARC)
1057 ((CPUSPARCState
*)cpu_env
)->regwptr
[1] = host_pipe
[1];
1058 return host_pipe
[0];
1062 if (put_user_s32(host_pipe
[0], pipedes
)
1063 || put_user_s32(host_pipe
[1], pipedes
+ sizeof(host_pipe
[0])))
1064 return -TARGET_EFAULT
;
1065 return get_errno(ret
);
1068 static inline abi_long
target_to_host_ip_mreq(struct ip_mreqn
*mreqn
,
1069 abi_ulong target_addr
,
1072 struct target_ip_mreqn
*target_smreqn
;
1074 target_smreqn
= lock_user(VERIFY_READ
, target_addr
, len
, 1);
1076 return -TARGET_EFAULT
;
1077 mreqn
->imr_multiaddr
.s_addr
= target_smreqn
->imr_multiaddr
.s_addr
;
1078 mreqn
->imr_address
.s_addr
= target_smreqn
->imr_address
.s_addr
;
1079 if (len
== sizeof(struct target_ip_mreqn
))
1080 mreqn
->imr_ifindex
= tswapal(target_smreqn
->imr_ifindex
);
1081 unlock_user(target_smreqn
, target_addr
, 0);
1086 static inline abi_long
target_to_host_sockaddr(struct sockaddr
*addr
,
1087 abi_ulong target_addr
,
1090 const socklen_t unix_maxlen
= sizeof (struct sockaddr_un
);
1091 sa_family_t sa_family
;
1092 struct target_sockaddr
*target_saddr
;
1094 target_saddr
= lock_user(VERIFY_READ
, target_addr
, len
, 1);
1096 return -TARGET_EFAULT
;
1098 sa_family
= tswap16(target_saddr
->sa_family
);
1100 /* Oops. The caller might send a incomplete sun_path; sun_path
1101 * must be terminated by \0 (see the manual page), but
1102 * unfortunately it is quite common to specify sockaddr_un
1103 * length as "strlen(x->sun_path)" while it should be
1104 * "strlen(...) + 1". We'll fix that here if needed.
1105 * Linux kernel has a similar feature.
1108 if (sa_family
== AF_UNIX
) {
1109 if (len
< unix_maxlen
&& len
> 0) {
1110 char *cp
= (char*)target_saddr
;
1112 if ( cp
[len
-1] && !cp
[len
] )
1115 if (len
> unix_maxlen
)
1119 memcpy(addr
, target_saddr
, len
);
1120 addr
->sa_family
= sa_family
;
1121 unlock_user(target_saddr
, target_addr
, 0);
1126 static inline abi_long
host_to_target_sockaddr(abi_ulong target_addr
,
1127 struct sockaddr
*addr
,
1130 struct target_sockaddr
*target_saddr
;
1132 target_saddr
= lock_user(VERIFY_WRITE
, target_addr
, len
, 0);
1134 return -TARGET_EFAULT
;
1135 memcpy(target_saddr
, addr
, len
);
1136 target_saddr
->sa_family
= tswap16(addr
->sa_family
);
1137 unlock_user(target_saddr
, target_addr
, len
);
1142 static inline abi_long
target_to_host_cmsg(struct msghdr
*msgh
,
1143 struct target_msghdr
*target_msgh
)
1145 struct cmsghdr
*cmsg
= CMSG_FIRSTHDR(msgh
);
1146 abi_long msg_controllen
;
1147 abi_ulong target_cmsg_addr
;
1148 struct target_cmsghdr
*target_cmsg
;
1149 socklen_t space
= 0;
1151 msg_controllen
= tswapal(target_msgh
->msg_controllen
);
1152 if (msg_controllen
< sizeof (struct target_cmsghdr
))
1154 target_cmsg_addr
= tswapal(target_msgh
->msg_control
);
1155 target_cmsg
= lock_user(VERIFY_READ
, target_cmsg_addr
, msg_controllen
, 1);
1157 return -TARGET_EFAULT
;
1159 while (cmsg
&& target_cmsg
) {
1160 void *data
= CMSG_DATA(cmsg
);
1161 void *target_data
= TARGET_CMSG_DATA(target_cmsg
);
1163 int len
= tswapal(target_cmsg
->cmsg_len
)
1164 - TARGET_CMSG_ALIGN(sizeof (struct target_cmsghdr
));
1166 space
+= CMSG_SPACE(len
);
1167 if (space
> msgh
->msg_controllen
) {
1168 space
-= CMSG_SPACE(len
);
1169 gemu_log("Host cmsg overflow\n");
1173 if (tswap32(target_cmsg
->cmsg_level
) == TARGET_SOL_SOCKET
) {
1174 cmsg
->cmsg_level
= SOL_SOCKET
;
1176 cmsg
->cmsg_level
= tswap32(target_cmsg
->cmsg_level
);
1178 cmsg
->cmsg_type
= tswap32(target_cmsg
->cmsg_type
);
1179 cmsg
->cmsg_len
= CMSG_LEN(len
);
1181 if (cmsg
->cmsg_level
!= SOL_SOCKET
|| cmsg
->cmsg_type
!= SCM_RIGHTS
) {
1182 gemu_log("Unsupported ancillary data: %d/%d\n", cmsg
->cmsg_level
, cmsg
->cmsg_type
);
1183 memcpy(data
, target_data
, len
);
1185 int *fd
= (int *)data
;
1186 int *target_fd
= (int *)target_data
;
1187 int i
, numfds
= len
/ sizeof(int);
1189 for (i
= 0; i
< numfds
; i
++)
1190 fd
[i
] = tswap32(target_fd
[i
]);
1193 cmsg
= CMSG_NXTHDR(msgh
, cmsg
);
1194 target_cmsg
= TARGET_CMSG_NXTHDR(target_msgh
, target_cmsg
);
1196 unlock_user(target_cmsg
, target_cmsg_addr
, 0);
1198 msgh
->msg_controllen
= space
;
1202 static inline abi_long
host_to_target_cmsg(struct target_msghdr
*target_msgh
,
1203 struct msghdr
*msgh
)
1205 struct cmsghdr
*cmsg
= CMSG_FIRSTHDR(msgh
);
1206 abi_long msg_controllen
;
1207 abi_ulong target_cmsg_addr
;
1208 struct target_cmsghdr
*target_cmsg
;
1209 socklen_t space
= 0;
1211 msg_controllen
= tswapal(target_msgh
->msg_controllen
);
1212 if (msg_controllen
< sizeof (struct target_cmsghdr
))
1214 target_cmsg_addr
= tswapal(target_msgh
->msg_control
);
1215 target_cmsg
= lock_user(VERIFY_WRITE
, target_cmsg_addr
, msg_controllen
, 0);
1217 return -TARGET_EFAULT
;
1219 while (cmsg
&& target_cmsg
) {
1220 void *data
= CMSG_DATA(cmsg
);
1221 void *target_data
= TARGET_CMSG_DATA(target_cmsg
);
1223 int len
= cmsg
->cmsg_len
- CMSG_ALIGN(sizeof (struct cmsghdr
));
1225 space
+= TARGET_CMSG_SPACE(len
);
1226 if (space
> msg_controllen
) {
1227 space
-= TARGET_CMSG_SPACE(len
);
1228 gemu_log("Target cmsg overflow\n");
1232 if (cmsg
->cmsg_level
== SOL_SOCKET
) {
1233 target_cmsg
->cmsg_level
= tswap32(TARGET_SOL_SOCKET
);
1235 target_cmsg
->cmsg_level
= tswap32(cmsg
->cmsg_level
);
1237 target_cmsg
->cmsg_type
= tswap32(cmsg
->cmsg_type
);
1238 target_cmsg
->cmsg_len
= tswapal(TARGET_CMSG_LEN(len
));
1240 if ((cmsg
->cmsg_level
== SOL_SOCKET
) &&
1241 (cmsg
->cmsg_type
== SCM_RIGHTS
)) {
1242 int *fd
= (int *)data
;
1243 int *target_fd
= (int *)target_data
;
1244 int i
, numfds
= len
/ sizeof(int);
1246 for (i
= 0; i
< numfds
; i
++)
1247 target_fd
[i
] = tswap32(fd
[i
]);
1248 } else if ((cmsg
->cmsg_level
== SOL_SOCKET
) &&
1249 (cmsg
->cmsg_type
== SO_TIMESTAMP
) &&
1250 (len
== sizeof(struct timeval
))) {
1251 /* copy struct timeval to target */
1252 struct timeval
*tv
= (struct timeval
*)data
;
1253 struct target_timeval
*target_tv
=
1254 (struct target_timeval
*)target_data
;
1256 target_tv
->tv_sec
= tswapal(tv
->tv_sec
);
1257 target_tv
->tv_usec
= tswapal(tv
->tv_usec
);
1259 gemu_log("Unsupported ancillary data: %d/%d\n",
1260 cmsg
->cmsg_level
, cmsg
->cmsg_type
);
1261 memcpy(target_data
, data
, len
);
1264 cmsg
= CMSG_NXTHDR(msgh
, cmsg
);
1265 target_cmsg
= TARGET_CMSG_NXTHDR(target_msgh
, target_cmsg
);
1267 unlock_user(target_cmsg
, target_cmsg_addr
, space
);
1269 target_msgh
->msg_controllen
= tswapal(space
);
1273 /* do_setsockopt() Must return target values and target errnos. */
1274 static abi_long
do_setsockopt(int sockfd
, int level
, int optname
,
1275 abi_ulong optval_addr
, socklen_t optlen
)
1279 struct ip_mreqn
*ip_mreq
;
1280 struct ip_mreq_source
*ip_mreq_source
;
1284 /* TCP options all take an 'int' value. */
1285 if (optlen
< sizeof(uint32_t))
1286 return -TARGET_EINVAL
;
1288 if (get_user_u32(val
, optval_addr
))
1289 return -TARGET_EFAULT
;
1290 ret
= get_errno(setsockopt(sockfd
, level
, optname
, &val
, sizeof(val
)));
1297 case IP_ROUTER_ALERT
:
1301 case IP_MTU_DISCOVER
:
1307 case IP_MULTICAST_TTL
:
1308 case IP_MULTICAST_LOOP
:
1310 if (optlen
>= sizeof(uint32_t)) {
1311 if (get_user_u32(val
, optval_addr
))
1312 return -TARGET_EFAULT
;
1313 } else if (optlen
>= 1) {
1314 if (get_user_u8(val
, optval_addr
))
1315 return -TARGET_EFAULT
;
1317 ret
= get_errno(setsockopt(sockfd
, level
, optname
, &val
, sizeof(val
)));
1319 case IP_ADD_MEMBERSHIP
:
1320 case IP_DROP_MEMBERSHIP
:
1321 if (optlen
< sizeof (struct target_ip_mreq
) ||
1322 optlen
> sizeof (struct target_ip_mreqn
))
1323 return -TARGET_EINVAL
;
1325 ip_mreq
= (struct ip_mreqn
*) alloca(optlen
);
1326 target_to_host_ip_mreq(ip_mreq
, optval_addr
, optlen
);
1327 ret
= get_errno(setsockopt(sockfd
, level
, optname
, ip_mreq
, optlen
));
1330 case IP_BLOCK_SOURCE
:
1331 case IP_UNBLOCK_SOURCE
:
1332 case IP_ADD_SOURCE_MEMBERSHIP
:
1333 case IP_DROP_SOURCE_MEMBERSHIP
:
1334 if (optlen
!= sizeof (struct target_ip_mreq_source
))
1335 return -TARGET_EINVAL
;
1337 ip_mreq_source
= lock_user(VERIFY_READ
, optval_addr
, optlen
, 1);
1338 ret
= get_errno(setsockopt(sockfd
, level
, optname
, ip_mreq_source
, optlen
));
1339 unlock_user (ip_mreq_source
, optval_addr
, 0);
1348 case IPV6_MTU_DISCOVER
:
1351 case IPV6_RECVPKTINFO
:
1353 if (optlen
< sizeof(uint32_t)) {
1354 return -TARGET_EINVAL
;
1356 if (get_user_u32(val
, optval_addr
)) {
1357 return -TARGET_EFAULT
;
1359 ret
= get_errno(setsockopt(sockfd
, level
, optname
,
1360 &val
, sizeof(val
)));
1369 /* struct icmp_filter takes an u32 value */
1370 if (optlen
< sizeof(uint32_t)) {
1371 return -TARGET_EINVAL
;
1374 if (get_user_u32(val
, optval_addr
)) {
1375 return -TARGET_EFAULT
;
1377 ret
= get_errno(setsockopt(sockfd
, level
, optname
,
1378 &val
, sizeof(val
)));
1385 case TARGET_SOL_SOCKET
:
1387 case TARGET_SO_RCVTIMEO
:
1391 optname
= SO_RCVTIMEO
;
1394 if (optlen
!= sizeof(struct target_timeval
)) {
1395 return -TARGET_EINVAL
;
1398 if (copy_from_user_timeval(&tv
, optval_addr
)) {
1399 return -TARGET_EFAULT
;
1402 ret
= get_errno(setsockopt(sockfd
, SOL_SOCKET
, optname
,
1406 case TARGET_SO_SNDTIMEO
:
1407 optname
= SO_SNDTIMEO
;
1409 case TARGET_SO_ATTACH_FILTER
:
1411 struct target_sock_fprog
*tfprog
;
1412 struct target_sock_filter
*tfilter
;
1413 struct sock_fprog fprog
;
1414 struct sock_filter
*filter
;
1417 if (optlen
!= sizeof(*tfprog
)) {
1418 return -TARGET_EINVAL
;
1420 if (!lock_user_struct(VERIFY_READ
, tfprog
, optval_addr
, 0)) {
1421 return -TARGET_EFAULT
;
1423 if (!lock_user_struct(VERIFY_READ
, tfilter
,
1424 tswapal(tfprog
->filter
), 0)) {
1425 unlock_user_struct(tfprog
, optval_addr
, 1);
1426 return -TARGET_EFAULT
;
1429 fprog
.len
= tswap16(tfprog
->len
);
1430 filter
= malloc(fprog
.len
* sizeof(*filter
));
1431 if (filter
== NULL
) {
1432 unlock_user_struct(tfilter
, tfprog
->filter
, 1);
1433 unlock_user_struct(tfprog
, optval_addr
, 1);
1434 return -TARGET_ENOMEM
;
1436 for (i
= 0; i
< fprog
.len
; i
++) {
1437 filter
[i
].code
= tswap16(tfilter
[i
].code
);
1438 filter
[i
].jt
= tfilter
[i
].jt
;
1439 filter
[i
].jf
= tfilter
[i
].jf
;
1440 filter
[i
].k
= tswap32(tfilter
[i
].k
);
1442 fprog
.filter
= filter
;
1444 ret
= get_errno(setsockopt(sockfd
, SOL_SOCKET
,
1445 SO_ATTACH_FILTER
, &fprog
, sizeof(fprog
)));
1448 unlock_user_struct(tfilter
, tfprog
->filter
, 1);
1449 unlock_user_struct(tfprog
, optval_addr
, 1);
1452 /* Options with 'int' argument. */
1453 case TARGET_SO_DEBUG
:
1456 case TARGET_SO_REUSEADDR
:
1457 optname
= SO_REUSEADDR
;
1459 case TARGET_SO_TYPE
:
1462 case TARGET_SO_ERROR
:
1465 case TARGET_SO_DONTROUTE
:
1466 optname
= SO_DONTROUTE
;
1468 case TARGET_SO_BROADCAST
:
1469 optname
= SO_BROADCAST
;
1471 case TARGET_SO_SNDBUF
:
1472 optname
= SO_SNDBUF
;
1474 case TARGET_SO_RCVBUF
:
1475 optname
= SO_RCVBUF
;
1477 case TARGET_SO_KEEPALIVE
:
1478 optname
= SO_KEEPALIVE
;
1480 case TARGET_SO_OOBINLINE
:
1481 optname
= SO_OOBINLINE
;
1483 case TARGET_SO_NO_CHECK
:
1484 optname
= SO_NO_CHECK
;
1486 case TARGET_SO_PRIORITY
:
1487 optname
= SO_PRIORITY
;
1490 case TARGET_SO_BSDCOMPAT
:
1491 optname
= SO_BSDCOMPAT
;
1494 case TARGET_SO_PASSCRED
:
1495 optname
= SO_PASSCRED
;
1497 case TARGET_SO_TIMESTAMP
:
1498 optname
= SO_TIMESTAMP
;
1500 case TARGET_SO_RCVLOWAT
:
1501 optname
= SO_RCVLOWAT
;
1507 if (optlen
< sizeof(uint32_t))
1508 return -TARGET_EINVAL
;
1510 if (get_user_u32(val
, optval_addr
))
1511 return -TARGET_EFAULT
;
1512 ret
= get_errno(setsockopt(sockfd
, SOL_SOCKET
, optname
, &val
, sizeof(val
)));
1516 gemu_log("Unsupported setsockopt level=%d optname=%d\n", level
, optname
);
1517 ret
= -TARGET_ENOPROTOOPT
;
1522 /* do_getsockopt() Must return target values and target errnos. */
1523 static abi_long
do_getsockopt(int sockfd
, int level
, int optname
,
1524 abi_ulong optval_addr
, abi_ulong optlen
)
1531 case TARGET_SOL_SOCKET
:
1534 /* These don't just return a single integer */
1535 case TARGET_SO_LINGER
:
1536 case TARGET_SO_RCVTIMEO
:
1537 case TARGET_SO_SNDTIMEO
:
1538 case TARGET_SO_PEERNAME
:
1540 case TARGET_SO_PEERCRED
: {
1543 struct target_ucred
*tcr
;
1545 if (get_user_u32(len
, optlen
)) {
1546 return -TARGET_EFAULT
;
1549 return -TARGET_EINVAL
;
1553 ret
= get_errno(getsockopt(sockfd
, level
, SO_PEERCRED
,
1561 if (!lock_user_struct(VERIFY_WRITE
, tcr
, optval_addr
, 0)) {
1562 return -TARGET_EFAULT
;
1564 __put_user(cr
.pid
, &tcr
->pid
);
1565 __put_user(cr
.uid
, &tcr
->uid
);
1566 __put_user(cr
.gid
, &tcr
->gid
);
1567 unlock_user_struct(tcr
, optval_addr
, 1);
1568 if (put_user_u32(len
, optlen
)) {
1569 return -TARGET_EFAULT
;
1573 /* Options with 'int' argument. */
1574 case TARGET_SO_DEBUG
:
1577 case TARGET_SO_REUSEADDR
:
1578 optname
= SO_REUSEADDR
;
1580 case TARGET_SO_TYPE
:
1583 case TARGET_SO_ERROR
:
1586 case TARGET_SO_DONTROUTE
:
1587 optname
= SO_DONTROUTE
;
1589 case TARGET_SO_BROADCAST
:
1590 optname
= SO_BROADCAST
;
1592 case TARGET_SO_SNDBUF
:
1593 optname
= SO_SNDBUF
;
1595 case TARGET_SO_RCVBUF
:
1596 optname
= SO_RCVBUF
;
1598 case TARGET_SO_KEEPALIVE
:
1599 optname
= SO_KEEPALIVE
;
1601 case TARGET_SO_OOBINLINE
:
1602 optname
= SO_OOBINLINE
;
1604 case TARGET_SO_NO_CHECK
:
1605 optname
= SO_NO_CHECK
;
1607 case TARGET_SO_PRIORITY
:
1608 optname
= SO_PRIORITY
;
1611 case TARGET_SO_BSDCOMPAT
:
1612 optname
= SO_BSDCOMPAT
;
1615 case TARGET_SO_PASSCRED
:
1616 optname
= SO_PASSCRED
;
1618 case TARGET_SO_TIMESTAMP
:
1619 optname
= SO_TIMESTAMP
;
1621 case TARGET_SO_RCVLOWAT
:
1622 optname
= SO_RCVLOWAT
;
1629 /* TCP options all take an 'int' value. */
1631 if (get_user_u32(len
, optlen
))
1632 return -TARGET_EFAULT
;
1634 return -TARGET_EINVAL
;
1636 ret
= get_errno(getsockopt(sockfd
, level
, optname
, &val
, &lv
));
1642 if (put_user_u32(val
, optval_addr
))
1643 return -TARGET_EFAULT
;
1645 if (put_user_u8(val
, optval_addr
))
1646 return -TARGET_EFAULT
;
1648 if (put_user_u32(len
, optlen
))
1649 return -TARGET_EFAULT
;
1656 case IP_ROUTER_ALERT
:
1660 case IP_MTU_DISCOVER
:
1666 case IP_MULTICAST_TTL
:
1667 case IP_MULTICAST_LOOP
:
1668 if (get_user_u32(len
, optlen
))
1669 return -TARGET_EFAULT
;
1671 return -TARGET_EINVAL
;
1673 ret
= get_errno(getsockopt(sockfd
, level
, optname
, &val
, &lv
));
1676 if (len
< sizeof(int) && len
> 0 && val
>= 0 && val
< 255) {
1678 if (put_user_u32(len
, optlen
)
1679 || put_user_u8(val
, optval_addr
))
1680 return -TARGET_EFAULT
;
1682 if (len
> sizeof(int))
1684 if (put_user_u32(len
, optlen
)
1685 || put_user_u32(val
, optval_addr
))
1686 return -TARGET_EFAULT
;
1690 ret
= -TARGET_ENOPROTOOPT
;
1696 gemu_log("getsockopt level=%d optname=%d not yet supported\n",
1698 ret
= -TARGET_EOPNOTSUPP
;
1704 static struct iovec
*lock_iovec(int type
, abi_ulong target_addr
,
1705 int count
, int copy
)
1707 struct target_iovec
*target_vec
;
1709 abi_ulong total_len
, max_len
;
1717 if (count
< 0 || count
> IOV_MAX
) {
1722 vec
= calloc(count
, sizeof(struct iovec
));
1728 target_vec
= lock_user(VERIFY_READ
, target_addr
,
1729 count
* sizeof(struct target_iovec
), 1);
1730 if (target_vec
== NULL
) {
1735 /* ??? If host page size > target page size, this will result in a
1736 value larger than what we can actually support. */
1737 max_len
= 0x7fffffff & TARGET_PAGE_MASK
;
1740 for (i
= 0; i
< count
; i
++) {
1741 abi_ulong base
= tswapal(target_vec
[i
].iov_base
);
1742 abi_long len
= tswapal(target_vec
[i
].iov_len
);
1747 } else if (len
== 0) {
1748 /* Zero length pointer is ignored. */
1749 vec
[i
].iov_base
= 0;
1751 vec
[i
].iov_base
= lock_user(type
, base
, len
, copy
);
1752 if (!vec
[i
].iov_base
) {
1756 if (len
> max_len
- total_len
) {
1757 len
= max_len
- total_len
;
1760 vec
[i
].iov_len
= len
;
1764 unlock_user(target_vec
, target_addr
, 0);
1768 unlock_user(target_vec
, target_addr
, 0);
1775 static void unlock_iovec(struct iovec
*vec
, abi_ulong target_addr
,
1776 int count
, int copy
)
1778 struct target_iovec
*target_vec
;
1781 target_vec
= lock_user(VERIFY_READ
, target_addr
,
1782 count
* sizeof(struct target_iovec
), 1);
1784 for (i
= 0; i
< count
; i
++) {
1785 abi_ulong base
= tswapal(target_vec
[i
].iov_base
);
1786 abi_long len
= tswapal(target_vec
[i
].iov_base
);
1790 unlock_user(vec
[i
].iov_base
, base
, copy
? vec
[i
].iov_len
: 0);
1792 unlock_user(target_vec
, target_addr
, 0);
1798 static inline int target_to_host_sock_type(int *type
)
1801 int target_type
= *type
;
1803 switch (target_type
& TARGET_SOCK_TYPE_MASK
) {
1804 case TARGET_SOCK_DGRAM
:
1805 host_type
= SOCK_DGRAM
;
1807 case TARGET_SOCK_STREAM
:
1808 host_type
= SOCK_STREAM
;
1811 host_type
= target_type
& TARGET_SOCK_TYPE_MASK
;
1814 if (target_type
& TARGET_SOCK_CLOEXEC
) {
1815 #if defined(SOCK_CLOEXEC)
1816 host_type
|= SOCK_CLOEXEC
;
1818 return -TARGET_EINVAL
;
1821 if (target_type
& TARGET_SOCK_NONBLOCK
) {
1822 #if defined(SOCK_NONBLOCK)
1823 host_type
|= SOCK_NONBLOCK
;
1824 #elif !defined(O_NONBLOCK)
1825 return -TARGET_EINVAL
;
1832 /* Try to emulate socket type flags after socket creation. */
1833 static int sock_flags_fixup(int fd
, int target_type
)
1835 #if !defined(SOCK_NONBLOCK) && defined(O_NONBLOCK)
1836 if (target_type
& TARGET_SOCK_NONBLOCK
) {
1837 int flags
= fcntl(fd
, F_GETFL
);
1838 if (fcntl(fd
, F_SETFL
, O_NONBLOCK
| flags
) == -1) {
1840 return -TARGET_EINVAL
;
1847 /* do_socket() Must return target values and target errnos. */
1848 static abi_long
do_socket(int domain
, int type
, int protocol
)
1850 int target_type
= type
;
1853 ret
= target_to_host_sock_type(&type
);
1858 if (domain
== PF_NETLINK
)
1859 return -EAFNOSUPPORT
; /* do not NETLINK socket connections possible */
1860 ret
= get_errno(socket(domain
, type
, protocol
));
1862 ret
= sock_flags_fixup(ret
, target_type
);
1867 /* do_bind() Must return target values and target errnos. */
1868 static abi_long
do_bind(int sockfd
, abi_ulong target_addr
,
1874 if ((int)addrlen
< 0) {
1875 return -TARGET_EINVAL
;
1878 addr
= alloca(addrlen
+1);
1880 ret
= target_to_host_sockaddr(addr
, target_addr
, addrlen
);
1884 return get_errno(bind(sockfd
, addr
, addrlen
));
1887 /* do_connect() Must return target values and target errnos. */
1888 static abi_long
do_connect(int sockfd
, abi_ulong target_addr
,
1894 if ((int)addrlen
< 0) {
1895 return -TARGET_EINVAL
;
1898 addr
= alloca(addrlen
);
1900 ret
= target_to_host_sockaddr(addr
, target_addr
, addrlen
);
1904 return get_errno(connect(sockfd
, addr
, addrlen
));
1907 /* do_sendrecvmsg() Must return target values and target errnos. */
1908 static abi_long
do_sendrecvmsg(int fd
, abi_ulong target_msg
,
1909 int flags
, int send
)
1912 struct target_msghdr
*msgp
;
1916 abi_ulong target_vec
;
1919 if (!lock_user_struct(send
? VERIFY_READ
: VERIFY_WRITE
,
1923 return -TARGET_EFAULT
;
1924 if (msgp
->msg_name
) {
1925 msg
.msg_namelen
= tswap32(msgp
->msg_namelen
);
1926 msg
.msg_name
= alloca(msg
.msg_namelen
);
1927 ret
= target_to_host_sockaddr(msg
.msg_name
, tswapal(msgp
->msg_name
),
1933 msg
.msg_name
= NULL
;
1934 msg
.msg_namelen
= 0;
1936 msg
.msg_controllen
= 2 * tswapal(msgp
->msg_controllen
);
1937 msg
.msg_control
= alloca(msg
.msg_controllen
);
1938 msg
.msg_flags
= tswap32(msgp
->msg_flags
);
1940 count
= tswapal(msgp
->msg_iovlen
);
1941 target_vec
= tswapal(msgp
->msg_iov
);
1942 vec
= lock_iovec(send
? VERIFY_READ
: VERIFY_WRITE
,
1943 target_vec
, count
, send
);
1945 ret
= -host_to_target_errno(errno
);
1948 msg
.msg_iovlen
= count
;
1952 ret
= target_to_host_cmsg(&msg
, msgp
);
1954 ret
= get_errno(sendmsg(fd
, &msg
, flags
));
1956 ret
= get_errno(recvmsg(fd
, &msg
, flags
));
1957 if (!is_error(ret
)) {
1959 ret
= host_to_target_cmsg(msgp
, &msg
);
1960 if (!is_error(ret
)) {
1961 msgp
->msg_namelen
= tswap32(msg
.msg_namelen
);
1962 if (msg
.msg_name
!= NULL
) {
1963 ret
= host_to_target_sockaddr(tswapal(msgp
->msg_name
),
1964 msg
.msg_name
, msg
.msg_namelen
);
1976 unlock_iovec(vec
, target_vec
, count
, !send
);
1978 unlock_user_struct(msgp
, target_msg
, send
? 0 : 1);
1982 /* If we don't have a system accept4() then just call accept.
1983 * The callsites to do_accept4() will ensure that they don't
1984 * pass a non-zero flags argument in this config.
1986 #ifndef CONFIG_ACCEPT4
1987 static inline int accept4(int sockfd
, struct sockaddr
*addr
,
1988 socklen_t
*addrlen
, int flags
)
1991 return accept(sockfd
, addr
, addrlen
);
1995 /* do_accept4() Must return target values and target errnos. */
1996 static abi_long
do_accept4(int fd
, abi_ulong target_addr
,
1997 abi_ulong target_addrlen_addr
, int flags
)
2003 if (target_addr
== 0) {
2004 return get_errno(accept4(fd
, NULL
, NULL
, flags
));
2007 /* linux returns EINVAL if addrlen pointer is invalid */
2008 if (get_user_u32(addrlen
, target_addrlen_addr
))
2009 return -TARGET_EINVAL
;
2011 if ((int)addrlen
< 0) {
2012 return -TARGET_EINVAL
;
2015 if (!access_ok(VERIFY_WRITE
, target_addr
, addrlen
))
2016 return -TARGET_EINVAL
;
2018 addr
= alloca(addrlen
);
2020 ret
= get_errno(accept4(fd
, addr
, &addrlen
, flags
));
2021 if (!is_error(ret
)) {
2022 host_to_target_sockaddr(target_addr
, addr
, addrlen
);
2023 if (put_user_u32(addrlen
, target_addrlen_addr
))
2024 ret
= -TARGET_EFAULT
;
2029 /* do_getpeername() Must return target values and target errnos. */
2030 static abi_long
do_getpeername(int fd
, abi_ulong target_addr
,
2031 abi_ulong target_addrlen_addr
)
2037 if (get_user_u32(addrlen
, target_addrlen_addr
))
2038 return -TARGET_EFAULT
;
2040 if ((int)addrlen
< 0) {
2041 return -TARGET_EINVAL
;
2044 if (!access_ok(VERIFY_WRITE
, target_addr
, addrlen
))
2045 return -TARGET_EFAULT
;
2047 addr
= alloca(addrlen
);
2049 ret
= get_errno(getpeername(fd
, addr
, &addrlen
));
2050 if (!is_error(ret
)) {
2051 host_to_target_sockaddr(target_addr
, addr
, addrlen
);
2052 if (put_user_u32(addrlen
, target_addrlen_addr
))
2053 ret
= -TARGET_EFAULT
;
2058 /* do_getsockname() Must return target values and target errnos. */
2059 static abi_long
do_getsockname(int fd
, abi_ulong target_addr
,
2060 abi_ulong target_addrlen_addr
)
2066 if (get_user_u32(addrlen
, target_addrlen_addr
))
2067 return -TARGET_EFAULT
;
2069 if ((int)addrlen
< 0) {
2070 return -TARGET_EINVAL
;
2073 if (!access_ok(VERIFY_WRITE
, target_addr
, addrlen
))
2074 return -TARGET_EFAULT
;
2076 addr
= alloca(addrlen
);
2078 ret
= get_errno(getsockname(fd
, addr
, &addrlen
));
2079 if (!is_error(ret
)) {
2080 host_to_target_sockaddr(target_addr
, addr
, addrlen
);
2081 if (put_user_u32(addrlen
, target_addrlen_addr
))
2082 ret
= -TARGET_EFAULT
;
2087 /* do_socketpair() Must return target values and target errnos. */
2088 static abi_long
do_socketpair(int domain
, int type
, int protocol
,
2089 abi_ulong target_tab_addr
)
2094 target_to_host_sock_type(&type
);
2096 ret
= get_errno(socketpair(domain
, type
, protocol
, tab
));
2097 if (!is_error(ret
)) {
2098 if (put_user_s32(tab
[0], target_tab_addr
)
2099 || put_user_s32(tab
[1], target_tab_addr
+ sizeof(tab
[0])))
2100 ret
= -TARGET_EFAULT
;
2105 /* do_sendto() Must return target values and target errnos. */
2106 static abi_long
do_sendto(int fd
, abi_ulong msg
, size_t len
, int flags
,
2107 abi_ulong target_addr
, socklen_t addrlen
)
2113 if ((int)addrlen
< 0) {
2114 return -TARGET_EINVAL
;
2117 host_msg
= lock_user(VERIFY_READ
, msg
, len
, 1);
2119 return -TARGET_EFAULT
;
2121 addr
= alloca(addrlen
);
2122 ret
= target_to_host_sockaddr(addr
, target_addr
, addrlen
);
2124 unlock_user(host_msg
, msg
, 0);
2127 ret
= get_errno(sendto(fd
, host_msg
, len
, flags
, addr
, addrlen
));
2129 ret
= get_errno(send(fd
, host_msg
, len
, flags
));
2131 unlock_user(host_msg
, msg
, 0);
2135 /* do_recvfrom() Must return target values and target errnos. */
2136 static abi_long
do_recvfrom(int fd
, abi_ulong msg
, size_t len
, int flags
,
2137 abi_ulong target_addr
,
2138 abi_ulong target_addrlen
)
2145 host_msg
= lock_user(VERIFY_WRITE
, msg
, len
, 0);
2147 return -TARGET_EFAULT
;
2149 if (get_user_u32(addrlen
, target_addrlen
)) {
2150 ret
= -TARGET_EFAULT
;
2153 if ((int)addrlen
< 0) {
2154 ret
= -TARGET_EINVAL
;
2157 addr
= alloca(addrlen
);
2158 ret
= get_errno(recvfrom(fd
, host_msg
, len
, flags
, addr
, &addrlen
));
2160 addr
= NULL
; /* To keep compiler quiet. */
2161 ret
= get_errno(qemu_recv(fd
, host_msg
, len
, flags
));
2163 if (!is_error(ret
)) {
2165 host_to_target_sockaddr(target_addr
, addr
, addrlen
);
2166 if (put_user_u32(addrlen
, target_addrlen
)) {
2167 ret
= -TARGET_EFAULT
;
2171 unlock_user(host_msg
, msg
, len
);
2174 unlock_user(host_msg
, msg
, 0);
2179 #ifdef TARGET_NR_socketcall
2180 /* do_socketcall() Must return target values and target errnos. */
2181 static abi_long
do_socketcall(int num
, abi_ulong vptr
)
2183 static const unsigned ac
[] = { /* number of arguments per call */
2184 [SOCKOP_socket
] = 3, /* domain, type, protocol */
2185 [SOCKOP_bind
] = 3, /* sockfd, addr, addrlen */
2186 [SOCKOP_connect
] = 3, /* sockfd, addr, addrlen */
2187 [SOCKOP_listen
] = 2, /* sockfd, backlog */
2188 [SOCKOP_accept
] = 3, /* sockfd, addr, addrlen */
2189 [SOCKOP_accept4
] = 4, /* sockfd, addr, addrlen, flags */
2190 [SOCKOP_getsockname
] = 3, /* sockfd, addr, addrlen */
2191 [SOCKOP_getpeername
] = 3, /* sockfd, addr, addrlen */
2192 [SOCKOP_socketpair
] = 4, /* domain, type, protocol, tab */
2193 [SOCKOP_send
] = 4, /* sockfd, msg, len, flags */
2194 [SOCKOP_recv
] = 4, /* sockfd, msg, len, flags */
2195 [SOCKOP_sendto
] = 6, /* sockfd, msg, len, flags, addr, addrlen */
2196 [SOCKOP_recvfrom
] = 6, /* sockfd, msg, len, flags, addr, addrlen */
2197 [SOCKOP_shutdown
] = 2, /* sockfd, how */
2198 [SOCKOP_sendmsg
] = 3, /* sockfd, msg, flags */
2199 [SOCKOP_recvmsg
] = 3, /* sockfd, msg, flags */
2200 [SOCKOP_setsockopt
] = 5, /* sockfd, level, optname, optval, optlen */
2201 [SOCKOP_getsockopt
] = 5, /* sockfd, level, optname, optval, optlen */
2203 abi_long a
[6]; /* max 6 args */
2205 /* first, collect the arguments in a[] according to ac[] */
2206 if (num
>= 0 && num
< ARRAY_SIZE(ac
)) {
2208 assert(ARRAY_SIZE(a
) >= ac
[num
]); /* ensure we have space for args */
2209 for (i
= 0; i
< ac
[num
]; ++i
) {
2210 if (get_user_ual(a
[i
], vptr
+ i
* sizeof(abi_long
)) != 0) {
2211 return -TARGET_EFAULT
;
2216 /* now when we have the args, actually handle the call */
2218 case SOCKOP_socket
: /* domain, type, protocol */
2219 return do_socket(a
[0], a
[1], a
[2]);
2220 case SOCKOP_bind
: /* sockfd, addr, addrlen */
2221 return do_bind(a
[0], a
[1], a
[2]);
2222 case SOCKOP_connect
: /* sockfd, addr, addrlen */
2223 return do_connect(a
[0], a
[1], a
[2]);
2224 case SOCKOP_listen
: /* sockfd, backlog */
2225 return get_errno(listen(a
[0], a
[1]));
2226 case SOCKOP_accept
: /* sockfd, addr, addrlen */
2227 return do_accept4(a
[0], a
[1], a
[2], 0);
2228 case SOCKOP_accept4
: /* sockfd, addr, addrlen, flags */
2229 return do_accept4(a
[0], a
[1], a
[2], a
[3]);
2230 case SOCKOP_getsockname
: /* sockfd, addr, addrlen */
2231 return do_getsockname(a
[0], a
[1], a
[2]);
2232 case SOCKOP_getpeername
: /* sockfd, addr, addrlen */
2233 return do_getpeername(a
[0], a
[1], a
[2]);
2234 case SOCKOP_socketpair
: /* domain, type, protocol, tab */
2235 return do_socketpair(a
[0], a
[1], a
[2], a
[3]);
2236 case SOCKOP_send
: /* sockfd, msg, len, flags */
2237 return do_sendto(a
[0], a
[1], a
[2], a
[3], 0, 0);
2238 case SOCKOP_recv
: /* sockfd, msg, len, flags */
2239 return do_recvfrom(a
[0], a
[1], a
[2], a
[3], 0, 0);
2240 case SOCKOP_sendto
: /* sockfd, msg, len, flags, addr, addrlen */
2241 return do_sendto(a
[0], a
[1], a
[2], a
[3], a
[4], a
[5]);
2242 case SOCKOP_recvfrom
: /* sockfd, msg, len, flags, addr, addrlen */
2243 return do_recvfrom(a
[0], a
[1], a
[2], a
[3], a
[4], a
[5]);
2244 case SOCKOP_shutdown
: /* sockfd, how */
2245 return get_errno(shutdown(a
[0], a
[1]));
2246 case SOCKOP_sendmsg
: /* sockfd, msg, flags */
2247 return do_sendrecvmsg(a
[0], a
[1], a
[2], 1);
2248 case SOCKOP_recvmsg
: /* sockfd, msg, flags */
2249 return do_sendrecvmsg(a
[0], a
[1], a
[2], 0);
2250 case SOCKOP_setsockopt
: /* sockfd, level, optname, optval, optlen */
2251 return do_setsockopt(a
[0], a
[1], a
[2], a
[3], a
[4]);
2252 case SOCKOP_getsockopt
: /* sockfd, level, optname, optval, optlen */
2253 return do_getsockopt(a
[0], a
[1], a
[2], a
[3], a
[4]);
2255 gemu_log("Unsupported socketcall: %d\n", num
);
2256 return -TARGET_ENOSYS
;
2261 #define N_SHM_REGIONS 32
2263 static struct shm_region
{
2266 } shm_regions
[N_SHM_REGIONS
];
2268 struct target_semid_ds
2270 struct target_ipc_perm sem_perm
;
2271 abi_ulong sem_otime
;
2272 abi_ulong __unused1
;
2273 abi_ulong sem_ctime
;
2274 abi_ulong __unused2
;
2275 abi_ulong sem_nsems
;
2276 abi_ulong __unused3
;
2277 abi_ulong __unused4
;
2280 static inline abi_long
target_to_host_ipc_perm(struct ipc_perm
*host_ip
,
2281 abi_ulong target_addr
)
2283 struct target_ipc_perm
*target_ip
;
2284 struct target_semid_ds
*target_sd
;
2286 if (!lock_user_struct(VERIFY_READ
, target_sd
, target_addr
, 1))
2287 return -TARGET_EFAULT
;
2288 target_ip
= &(target_sd
->sem_perm
);
2289 host_ip
->__key
= tswap32(target_ip
->__key
);
2290 host_ip
->uid
= tswap32(target_ip
->uid
);
2291 host_ip
->gid
= tswap32(target_ip
->gid
);
2292 host_ip
->cuid
= tswap32(target_ip
->cuid
);
2293 host_ip
->cgid
= tswap32(target_ip
->cgid
);
2294 #if defined(TARGET_ALPHA) || defined(TARGET_MIPS) || defined(TARGET_PPC)
2295 host_ip
->mode
= tswap32(target_ip
->mode
);
2297 host_ip
->mode
= tswap16(target_ip
->mode
);
2299 #if defined(TARGET_PPC)
2300 host_ip
->__seq
= tswap32(target_ip
->__seq
);
2302 host_ip
->__seq
= tswap16(target_ip
->__seq
);
2304 unlock_user_struct(target_sd
, target_addr
, 0);
2308 static inline abi_long
host_to_target_ipc_perm(abi_ulong target_addr
,
2309 struct ipc_perm
*host_ip
)
2311 struct target_ipc_perm
*target_ip
;
2312 struct target_semid_ds
*target_sd
;
2314 if (!lock_user_struct(VERIFY_WRITE
, target_sd
, target_addr
, 0))
2315 return -TARGET_EFAULT
;
2316 target_ip
= &(target_sd
->sem_perm
);
2317 target_ip
->__key
= tswap32(host_ip
->__key
);
2318 target_ip
->uid
= tswap32(host_ip
->uid
);
2319 target_ip
->gid
= tswap32(host_ip
->gid
);
2320 target_ip
->cuid
= tswap32(host_ip
->cuid
);
2321 target_ip
->cgid
= tswap32(host_ip
->cgid
);
2322 #if defined(TARGET_ALPHA) || defined(TARGET_MIPS) || defined(TARGET_PPC)
2323 target_ip
->mode
= tswap32(host_ip
->mode
);
2325 target_ip
->mode
= tswap16(host_ip
->mode
);
2327 #if defined(TARGET_PPC)
2328 target_ip
->__seq
= tswap32(host_ip
->__seq
);
2330 target_ip
->__seq
= tswap16(host_ip
->__seq
);
2332 unlock_user_struct(target_sd
, target_addr
, 1);
2336 static inline abi_long
target_to_host_semid_ds(struct semid_ds
*host_sd
,
2337 abi_ulong target_addr
)
2339 struct target_semid_ds
*target_sd
;
2341 if (!lock_user_struct(VERIFY_READ
, target_sd
, target_addr
, 1))
2342 return -TARGET_EFAULT
;
2343 if (target_to_host_ipc_perm(&(host_sd
->sem_perm
),target_addr
))
2344 return -TARGET_EFAULT
;
2345 host_sd
->sem_nsems
= tswapal(target_sd
->sem_nsems
);
2346 host_sd
->sem_otime
= tswapal(target_sd
->sem_otime
);
2347 host_sd
->sem_ctime
= tswapal(target_sd
->sem_ctime
);
2348 unlock_user_struct(target_sd
, target_addr
, 0);
2352 static inline abi_long
host_to_target_semid_ds(abi_ulong target_addr
,
2353 struct semid_ds
*host_sd
)
2355 struct target_semid_ds
*target_sd
;
2357 if (!lock_user_struct(VERIFY_WRITE
, target_sd
, target_addr
, 0))
2358 return -TARGET_EFAULT
;
2359 if (host_to_target_ipc_perm(target_addr
,&(host_sd
->sem_perm
)))
2360 return -TARGET_EFAULT
;
2361 target_sd
->sem_nsems
= tswapal(host_sd
->sem_nsems
);
2362 target_sd
->sem_otime
= tswapal(host_sd
->sem_otime
);
2363 target_sd
->sem_ctime
= tswapal(host_sd
->sem_ctime
);
2364 unlock_user_struct(target_sd
, target_addr
, 1);
2368 struct target_seminfo
{
2381 static inline abi_long
host_to_target_seminfo(abi_ulong target_addr
,
2382 struct seminfo
*host_seminfo
)
2384 struct target_seminfo
*target_seminfo
;
2385 if (!lock_user_struct(VERIFY_WRITE
, target_seminfo
, target_addr
, 0))
2386 return -TARGET_EFAULT
;
2387 __put_user(host_seminfo
->semmap
, &target_seminfo
->semmap
);
2388 __put_user(host_seminfo
->semmni
, &target_seminfo
->semmni
);
2389 __put_user(host_seminfo
->semmns
, &target_seminfo
->semmns
);
2390 __put_user(host_seminfo
->semmnu
, &target_seminfo
->semmnu
);
2391 __put_user(host_seminfo
->semmsl
, &target_seminfo
->semmsl
);
2392 __put_user(host_seminfo
->semopm
, &target_seminfo
->semopm
);
2393 __put_user(host_seminfo
->semume
, &target_seminfo
->semume
);
2394 __put_user(host_seminfo
->semusz
, &target_seminfo
->semusz
);
2395 __put_user(host_seminfo
->semvmx
, &target_seminfo
->semvmx
);
2396 __put_user(host_seminfo
->semaem
, &target_seminfo
->semaem
);
2397 unlock_user_struct(target_seminfo
, target_addr
, 1);
2403 struct semid_ds
*buf
;
2404 unsigned short *array
;
2405 struct seminfo
*__buf
;
2408 union target_semun
{
2415 static inline abi_long
target_to_host_semarray(int semid
, unsigned short **host_array
,
2416 abi_ulong target_addr
)
2419 unsigned short *array
;
2421 struct semid_ds semid_ds
;
2424 semun
.buf
= &semid_ds
;
2426 ret
= semctl(semid
, 0, IPC_STAT
, semun
);
2428 return get_errno(ret
);
2430 nsems
= semid_ds
.sem_nsems
;
2432 *host_array
= malloc(nsems
*sizeof(unsigned short));
2434 return -TARGET_ENOMEM
;
2436 array
= lock_user(VERIFY_READ
, target_addr
,
2437 nsems
*sizeof(unsigned short), 1);
2440 return -TARGET_EFAULT
;
2443 for(i
=0; i
<nsems
; i
++) {
2444 __get_user((*host_array
)[i
], &array
[i
]);
2446 unlock_user(array
, target_addr
, 0);
2451 static inline abi_long
host_to_target_semarray(int semid
, abi_ulong target_addr
,
2452 unsigned short **host_array
)
2455 unsigned short *array
;
2457 struct semid_ds semid_ds
;
2460 semun
.buf
= &semid_ds
;
2462 ret
= semctl(semid
, 0, IPC_STAT
, semun
);
2464 return get_errno(ret
);
2466 nsems
= semid_ds
.sem_nsems
;
2468 array
= lock_user(VERIFY_WRITE
, target_addr
,
2469 nsems
*sizeof(unsigned short), 0);
2471 return -TARGET_EFAULT
;
2473 for(i
=0; i
<nsems
; i
++) {
2474 __put_user((*host_array
)[i
], &array
[i
]);
2477 unlock_user(array
, target_addr
, 1);
2482 static inline abi_long
do_semctl(int semid
, int semnum
, int cmd
,
2483 union target_semun target_su
)
2486 struct semid_ds dsarg
;
2487 unsigned short *array
= NULL
;
2488 struct seminfo seminfo
;
2489 abi_long ret
= -TARGET_EINVAL
;
2496 arg
.val
= tswap32(target_su
.val
);
2497 ret
= get_errno(semctl(semid
, semnum
, cmd
, arg
));
2498 target_su
.val
= tswap32(arg
.val
);
2502 err
= target_to_host_semarray(semid
, &array
, target_su
.array
);
2506 ret
= get_errno(semctl(semid
, semnum
, cmd
, arg
));
2507 err
= host_to_target_semarray(semid
, target_su
.array
, &array
);
2514 err
= target_to_host_semid_ds(&dsarg
, target_su
.buf
);
2518 ret
= get_errno(semctl(semid
, semnum
, cmd
, arg
));
2519 err
= host_to_target_semid_ds(target_su
.buf
, &dsarg
);
2525 arg
.__buf
= &seminfo
;
2526 ret
= get_errno(semctl(semid
, semnum
, cmd
, arg
));
2527 err
= host_to_target_seminfo(target_su
.__buf
, &seminfo
);
2535 ret
= get_errno(semctl(semid
, semnum
, cmd
, NULL
));
2542 struct target_sembuf
{
2543 unsigned short sem_num
;
2548 static inline abi_long
target_to_host_sembuf(struct sembuf
*host_sembuf
,
2549 abi_ulong target_addr
,
2552 struct target_sembuf
*target_sembuf
;
2555 target_sembuf
= lock_user(VERIFY_READ
, target_addr
,
2556 nsops
*sizeof(struct target_sembuf
), 1);
2558 return -TARGET_EFAULT
;
2560 for(i
=0; i
<nsops
; i
++) {
2561 __get_user(host_sembuf
[i
].sem_num
, &target_sembuf
[i
].sem_num
);
2562 __get_user(host_sembuf
[i
].sem_op
, &target_sembuf
[i
].sem_op
);
2563 __get_user(host_sembuf
[i
].sem_flg
, &target_sembuf
[i
].sem_flg
);
2566 unlock_user(target_sembuf
, target_addr
, 0);
2571 static inline abi_long
do_semop(int semid
, abi_long ptr
, unsigned nsops
)
2573 struct sembuf sops
[nsops
];
2575 if (target_to_host_sembuf(sops
, ptr
, nsops
))
2576 return -TARGET_EFAULT
;
2578 return get_errno(semop(semid
, sops
, nsops
));
2581 struct target_msqid_ds
2583 struct target_ipc_perm msg_perm
;
2584 abi_ulong msg_stime
;
2585 #if TARGET_ABI_BITS == 32
2586 abi_ulong __unused1
;
2588 abi_ulong msg_rtime
;
2589 #if TARGET_ABI_BITS == 32
2590 abi_ulong __unused2
;
2592 abi_ulong msg_ctime
;
2593 #if TARGET_ABI_BITS == 32
2594 abi_ulong __unused3
;
2596 abi_ulong __msg_cbytes
;
2598 abi_ulong msg_qbytes
;
2599 abi_ulong msg_lspid
;
2600 abi_ulong msg_lrpid
;
2601 abi_ulong __unused4
;
2602 abi_ulong __unused5
;
2605 static inline abi_long
target_to_host_msqid_ds(struct msqid_ds
*host_md
,
2606 abi_ulong target_addr
)
2608 struct target_msqid_ds
*target_md
;
2610 if (!lock_user_struct(VERIFY_READ
, target_md
, target_addr
, 1))
2611 return -TARGET_EFAULT
;
2612 if (target_to_host_ipc_perm(&(host_md
->msg_perm
),target_addr
))
2613 return -TARGET_EFAULT
;
2614 host_md
->msg_stime
= tswapal(target_md
->msg_stime
);
2615 host_md
->msg_rtime
= tswapal(target_md
->msg_rtime
);
2616 host_md
->msg_ctime
= tswapal(target_md
->msg_ctime
);
2617 host_md
->__msg_cbytes
= tswapal(target_md
->__msg_cbytes
);
2618 host_md
->msg_qnum
= tswapal(target_md
->msg_qnum
);
2619 host_md
->msg_qbytes
= tswapal(target_md
->msg_qbytes
);
2620 host_md
->msg_lspid
= tswapal(target_md
->msg_lspid
);
2621 host_md
->msg_lrpid
= tswapal(target_md
->msg_lrpid
);
2622 unlock_user_struct(target_md
, target_addr
, 0);
2626 static inline abi_long
host_to_target_msqid_ds(abi_ulong target_addr
,
2627 struct msqid_ds
*host_md
)
2629 struct target_msqid_ds
*target_md
;
2631 if (!lock_user_struct(VERIFY_WRITE
, target_md
, target_addr
, 0))
2632 return -TARGET_EFAULT
;
2633 if (host_to_target_ipc_perm(target_addr
,&(host_md
->msg_perm
)))
2634 return -TARGET_EFAULT
;
2635 target_md
->msg_stime
= tswapal(host_md
->msg_stime
);
2636 target_md
->msg_rtime
= tswapal(host_md
->msg_rtime
);
2637 target_md
->msg_ctime
= tswapal(host_md
->msg_ctime
);
2638 target_md
->__msg_cbytes
= tswapal(host_md
->__msg_cbytes
);
2639 target_md
->msg_qnum
= tswapal(host_md
->msg_qnum
);
2640 target_md
->msg_qbytes
= tswapal(host_md
->msg_qbytes
);
2641 target_md
->msg_lspid
= tswapal(host_md
->msg_lspid
);
2642 target_md
->msg_lrpid
= tswapal(host_md
->msg_lrpid
);
2643 unlock_user_struct(target_md
, target_addr
, 1);
2647 struct target_msginfo
{
2655 unsigned short int msgseg
;
2658 static inline abi_long
host_to_target_msginfo(abi_ulong target_addr
,
2659 struct msginfo
*host_msginfo
)
2661 struct target_msginfo
*target_msginfo
;
2662 if (!lock_user_struct(VERIFY_WRITE
, target_msginfo
, target_addr
, 0))
2663 return -TARGET_EFAULT
;
2664 __put_user(host_msginfo
->msgpool
, &target_msginfo
->msgpool
);
2665 __put_user(host_msginfo
->msgmap
, &target_msginfo
->msgmap
);
2666 __put_user(host_msginfo
->msgmax
, &target_msginfo
->msgmax
);
2667 __put_user(host_msginfo
->msgmnb
, &target_msginfo
->msgmnb
);
2668 __put_user(host_msginfo
->msgmni
, &target_msginfo
->msgmni
);
2669 __put_user(host_msginfo
->msgssz
, &target_msginfo
->msgssz
);
2670 __put_user(host_msginfo
->msgtql
, &target_msginfo
->msgtql
);
2671 __put_user(host_msginfo
->msgseg
, &target_msginfo
->msgseg
);
2672 unlock_user_struct(target_msginfo
, target_addr
, 1);
2676 static inline abi_long
do_msgctl(int msgid
, int cmd
, abi_long ptr
)
2678 struct msqid_ds dsarg
;
2679 struct msginfo msginfo
;
2680 abi_long ret
= -TARGET_EINVAL
;
2688 if (target_to_host_msqid_ds(&dsarg
,ptr
))
2689 return -TARGET_EFAULT
;
2690 ret
= get_errno(msgctl(msgid
, cmd
, &dsarg
));
2691 if (host_to_target_msqid_ds(ptr
,&dsarg
))
2692 return -TARGET_EFAULT
;
2695 ret
= get_errno(msgctl(msgid
, cmd
, NULL
));
2699 ret
= get_errno(msgctl(msgid
, cmd
, (struct msqid_ds
*)&msginfo
));
2700 if (host_to_target_msginfo(ptr
, &msginfo
))
2701 return -TARGET_EFAULT
;
2708 struct target_msgbuf
{
2713 static inline abi_long
do_msgsnd(int msqid
, abi_long msgp
,
2714 unsigned int msgsz
, int msgflg
)
2716 struct target_msgbuf
*target_mb
;
2717 struct msgbuf
*host_mb
;
2720 if (!lock_user_struct(VERIFY_READ
, target_mb
, msgp
, 0))
2721 return -TARGET_EFAULT
;
2722 host_mb
= malloc(msgsz
+sizeof(long));
2723 host_mb
->mtype
= (abi_long
) tswapal(target_mb
->mtype
);
2724 memcpy(host_mb
->mtext
, target_mb
->mtext
, msgsz
);
2725 ret
= get_errno(msgsnd(msqid
, host_mb
, msgsz
, msgflg
));
2727 unlock_user_struct(target_mb
, msgp
, 0);
2732 static inline abi_long
do_msgrcv(int msqid
, abi_long msgp
,
2733 unsigned int msgsz
, abi_long msgtyp
,
2736 struct target_msgbuf
*target_mb
;
2738 struct msgbuf
*host_mb
;
2741 if (!lock_user_struct(VERIFY_WRITE
, target_mb
, msgp
, 0))
2742 return -TARGET_EFAULT
;
2744 host_mb
= g_malloc(msgsz
+sizeof(long));
2745 ret
= get_errno(msgrcv(msqid
, host_mb
, msgsz
, msgtyp
, msgflg
));
2748 abi_ulong target_mtext_addr
= msgp
+ sizeof(abi_ulong
);
2749 target_mtext
= lock_user(VERIFY_WRITE
, target_mtext_addr
, ret
, 0);
2750 if (!target_mtext
) {
2751 ret
= -TARGET_EFAULT
;
2754 memcpy(target_mb
->mtext
, host_mb
->mtext
, ret
);
2755 unlock_user(target_mtext
, target_mtext_addr
, ret
);
2758 target_mb
->mtype
= tswapal(host_mb
->mtype
);
2762 unlock_user_struct(target_mb
, msgp
, 1);
2767 static inline abi_long
target_to_host_shmid_ds(struct shmid_ds
*host_sd
,
2768 abi_ulong target_addr
)
2770 struct target_shmid_ds
*target_sd
;
2772 if (!lock_user_struct(VERIFY_READ
, target_sd
, target_addr
, 1))
2773 return -TARGET_EFAULT
;
2774 if (target_to_host_ipc_perm(&(host_sd
->shm_perm
), target_addr
))
2775 return -TARGET_EFAULT
;
2776 __get_user(host_sd
->shm_segsz
, &target_sd
->shm_segsz
);
2777 __get_user(host_sd
->shm_atime
, &target_sd
->shm_atime
);
2778 __get_user(host_sd
->shm_dtime
, &target_sd
->shm_dtime
);
2779 __get_user(host_sd
->shm_ctime
, &target_sd
->shm_ctime
);
2780 __get_user(host_sd
->shm_cpid
, &target_sd
->shm_cpid
);
2781 __get_user(host_sd
->shm_lpid
, &target_sd
->shm_lpid
);
2782 __get_user(host_sd
->shm_nattch
, &target_sd
->shm_nattch
);
2783 unlock_user_struct(target_sd
, target_addr
, 0);
2787 static inline abi_long
host_to_target_shmid_ds(abi_ulong target_addr
,
2788 struct shmid_ds
*host_sd
)
2790 struct target_shmid_ds
*target_sd
;
2792 if (!lock_user_struct(VERIFY_WRITE
, target_sd
, target_addr
, 0))
2793 return -TARGET_EFAULT
;
2794 if (host_to_target_ipc_perm(target_addr
, &(host_sd
->shm_perm
)))
2795 return -TARGET_EFAULT
;
2796 __put_user(host_sd
->shm_segsz
, &target_sd
->shm_segsz
);
2797 __put_user(host_sd
->shm_atime
, &target_sd
->shm_atime
);
2798 __put_user(host_sd
->shm_dtime
, &target_sd
->shm_dtime
);
2799 __put_user(host_sd
->shm_ctime
, &target_sd
->shm_ctime
);
2800 __put_user(host_sd
->shm_cpid
, &target_sd
->shm_cpid
);
2801 __put_user(host_sd
->shm_lpid
, &target_sd
->shm_lpid
);
2802 __put_user(host_sd
->shm_nattch
, &target_sd
->shm_nattch
);
2803 unlock_user_struct(target_sd
, target_addr
, 1);
2807 struct target_shminfo
{
2815 static inline abi_long
host_to_target_shminfo(abi_ulong target_addr
,
2816 struct shminfo
*host_shminfo
)
2818 struct target_shminfo
*target_shminfo
;
2819 if (!lock_user_struct(VERIFY_WRITE
, target_shminfo
, target_addr
, 0))
2820 return -TARGET_EFAULT
;
2821 __put_user(host_shminfo
->shmmax
, &target_shminfo
->shmmax
);
2822 __put_user(host_shminfo
->shmmin
, &target_shminfo
->shmmin
);
2823 __put_user(host_shminfo
->shmmni
, &target_shminfo
->shmmni
);
2824 __put_user(host_shminfo
->shmseg
, &target_shminfo
->shmseg
);
2825 __put_user(host_shminfo
->shmall
, &target_shminfo
->shmall
);
2826 unlock_user_struct(target_shminfo
, target_addr
, 1);
2830 struct target_shm_info
{
2835 abi_ulong swap_attempts
;
2836 abi_ulong swap_successes
;
2839 static inline abi_long
host_to_target_shm_info(abi_ulong target_addr
,
2840 struct shm_info
*host_shm_info
)
2842 struct target_shm_info
*target_shm_info
;
2843 if (!lock_user_struct(VERIFY_WRITE
, target_shm_info
, target_addr
, 0))
2844 return -TARGET_EFAULT
;
2845 __put_user(host_shm_info
->used_ids
, &target_shm_info
->used_ids
);
2846 __put_user(host_shm_info
->shm_tot
, &target_shm_info
->shm_tot
);
2847 __put_user(host_shm_info
->shm_rss
, &target_shm_info
->shm_rss
);
2848 __put_user(host_shm_info
->shm_swp
, &target_shm_info
->shm_swp
);
2849 __put_user(host_shm_info
->swap_attempts
, &target_shm_info
->swap_attempts
);
2850 __put_user(host_shm_info
->swap_successes
, &target_shm_info
->swap_successes
);
2851 unlock_user_struct(target_shm_info
, target_addr
, 1);
2855 static inline abi_long
do_shmctl(int shmid
, int cmd
, abi_long buf
)
2857 struct shmid_ds dsarg
;
2858 struct shminfo shminfo
;
2859 struct shm_info shm_info
;
2860 abi_long ret
= -TARGET_EINVAL
;
2868 if (target_to_host_shmid_ds(&dsarg
, buf
))
2869 return -TARGET_EFAULT
;
2870 ret
= get_errno(shmctl(shmid
, cmd
, &dsarg
));
2871 if (host_to_target_shmid_ds(buf
, &dsarg
))
2872 return -TARGET_EFAULT
;
2875 ret
= get_errno(shmctl(shmid
, cmd
, (struct shmid_ds
*)&shminfo
));
2876 if (host_to_target_shminfo(buf
, &shminfo
))
2877 return -TARGET_EFAULT
;
2880 ret
= get_errno(shmctl(shmid
, cmd
, (struct shmid_ds
*)&shm_info
));
2881 if (host_to_target_shm_info(buf
, &shm_info
))
2882 return -TARGET_EFAULT
;
2887 ret
= get_errno(shmctl(shmid
, cmd
, NULL
));
2894 static inline abi_ulong
do_shmat(int shmid
, abi_ulong shmaddr
, int shmflg
)
2898 struct shmid_ds shm_info
;
2901 /* find out the length of the shared memory segment */
2902 ret
= get_errno(shmctl(shmid
, IPC_STAT
, &shm_info
));
2903 if (is_error(ret
)) {
2904 /* can't get length, bail out */
2911 host_raddr
= shmat(shmid
, (void *)g2h(shmaddr
), shmflg
);
2913 abi_ulong mmap_start
;
2915 mmap_start
= mmap_find_vma(0, shm_info
.shm_segsz
);
2917 if (mmap_start
== -1) {
2919 host_raddr
= (void *)-1;
2921 host_raddr
= shmat(shmid
, g2h(mmap_start
), shmflg
| SHM_REMAP
);
2924 if (host_raddr
== (void *)-1) {
2926 return get_errno((long)host_raddr
);
2928 raddr
=h2g((unsigned long)host_raddr
);
2930 page_set_flags(raddr
, raddr
+ shm_info
.shm_segsz
,
2931 PAGE_VALID
| PAGE_READ
|
2932 ((shmflg
& SHM_RDONLY
)? 0 : PAGE_WRITE
));
2934 for (i
= 0; i
< N_SHM_REGIONS
; i
++) {
2935 if (shm_regions
[i
].start
== 0) {
2936 shm_regions
[i
].start
= raddr
;
2937 shm_regions
[i
].size
= shm_info
.shm_segsz
;
2947 static inline abi_long
do_shmdt(abi_ulong shmaddr
)
2951 for (i
= 0; i
< N_SHM_REGIONS
; ++i
) {
2952 if (shm_regions
[i
].start
== shmaddr
) {
2953 shm_regions
[i
].start
= 0;
2954 page_set_flags(shmaddr
, shmaddr
+ shm_regions
[i
].size
, 0);
2959 return get_errno(shmdt(g2h(shmaddr
)));
2962 #ifdef TARGET_NR_ipc
2963 /* ??? This only works with linear mappings. */
2964 /* do_ipc() must return target values and target errnos. */
2965 static abi_long
do_ipc(unsigned int call
, int first
,
2966 int second
, int third
,
2967 abi_long ptr
, abi_long fifth
)
2972 version
= call
>> 16;
2977 ret
= do_semop(first
, ptr
, second
);
2981 ret
= get_errno(semget(first
, second
, third
));
2985 ret
= do_semctl(first
, second
, third
, (union target_semun
)(abi_ulong
) ptr
);
2989 ret
= get_errno(msgget(first
, second
));
2993 ret
= do_msgsnd(first
, ptr
, second
, third
);
2997 ret
= do_msgctl(first
, second
, ptr
);
3004 struct target_ipc_kludge
{
3009 if (!lock_user_struct(VERIFY_READ
, tmp
, ptr
, 1)) {
3010 ret
= -TARGET_EFAULT
;
3014 ret
= do_msgrcv(first
, tswapal(tmp
->msgp
), second
, tswapal(tmp
->msgtyp
), third
);
3016 unlock_user_struct(tmp
, ptr
, 0);
3020 ret
= do_msgrcv(first
, ptr
, second
, fifth
, third
);
3029 raddr
= do_shmat(first
, ptr
, second
);
3030 if (is_error(raddr
))
3031 return get_errno(raddr
);
3032 if (put_user_ual(raddr
, third
))
3033 return -TARGET_EFAULT
;
3037 ret
= -TARGET_EINVAL
;
3042 ret
= do_shmdt(ptr
);
3046 /* IPC_* flag values are the same on all linux platforms */
3047 ret
= get_errno(shmget(first
, second
, third
));
3050 /* IPC_* and SHM_* command values are the same on all linux platforms */
3052 ret
= do_shmctl(first
, second
, ptr
);
3055 gemu_log("Unsupported ipc call: %d (version %d)\n", call
, version
);
3056 ret
= -TARGET_ENOSYS
;
3063 /* kernel structure types definitions */
3065 #define STRUCT(name, ...) STRUCT_ ## name,
3066 #define STRUCT_SPECIAL(name) STRUCT_ ## name,
3068 #include "syscall_types.h"
3071 #undef STRUCT_SPECIAL
3073 #define STRUCT(name, ...) static const argtype struct_ ## name ## _def[] = { __VA_ARGS__, TYPE_NULL };
3074 #define STRUCT_SPECIAL(name)
3075 #include "syscall_types.h"
3077 #undef STRUCT_SPECIAL
3079 typedef struct IOCTLEntry IOCTLEntry
;
3081 typedef abi_long
do_ioctl_fn(const IOCTLEntry
*ie
, uint8_t *buf_temp
,
3082 int fd
, abi_long cmd
, abi_long arg
);
3085 unsigned int target_cmd
;
3086 unsigned int host_cmd
;
3089 do_ioctl_fn
*do_ioctl
;
3090 const argtype arg_type
[5];
3093 #define IOC_R 0x0001
3094 #define IOC_W 0x0002
3095 #define IOC_RW (IOC_R | IOC_W)
3097 #define MAX_STRUCT_SIZE 4096
3099 #ifdef CONFIG_FIEMAP
3100 /* So fiemap access checks don't overflow on 32 bit systems.
3101 * This is very slightly smaller than the limit imposed by
3102 * the underlying kernel.
3104 #define FIEMAP_MAX_EXTENTS ((UINT_MAX - sizeof(struct fiemap)) \
3105 / sizeof(struct fiemap_extent))
3107 static abi_long
do_ioctl_fs_ioc_fiemap(const IOCTLEntry
*ie
, uint8_t *buf_temp
,
3108 int fd
, abi_long cmd
, abi_long arg
)
3110 /* The parameter for this ioctl is a struct fiemap followed
3111 * by an array of struct fiemap_extent whose size is set
3112 * in fiemap->fm_extent_count. The array is filled in by the
3115 int target_size_in
, target_size_out
;
3117 const argtype
*arg_type
= ie
->arg_type
;
3118 const argtype extent_arg_type
[] = { MK_STRUCT(STRUCT_fiemap_extent
) };
3121 int i
, extent_size
= thunk_type_size(extent_arg_type
, 0);
3125 assert(arg_type
[0] == TYPE_PTR
);
3126 assert(ie
->access
== IOC_RW
);
3128 target_size_in
= thunk_type_size(arg_type
, 0);
3129 argptr
= lock_user(VERIFY_READ
, arg
, target_size_in
, 1);
3131 return -TARGET_EFAULT
;
3133 thunk_convert(buf_temp
, argptr
, arg_type
, THUNK_HOST
);
3134 unlock_user(argptr
, arg
, 0);
3135 fm
= (struct fiemap
*)buf_temp
;
3136 if (fm
->fm_extent_count
> FIEMAP_MAX_EXTENTS
) {
3137 return -TARGET_EINVAL
;
3140 outbufsz
= sizeof (*fm
) +
3141 (sizeof(struct fiemap_extent
) * fm
->fm_extent_count
);
3143 if (outbufsz
> MAX_STRUCT_SIZE
) {
3144 /* We can't fit all the extents into the fixed size buffer.
3145 * Allocate one that is large enough and use it instead.
3147 fm
= malloc(outbufsz
);
3149 return -TARGET_ENOMEM
;
3151 memcpy(fm
, buf_temp
, sizeof(struct fiemap
));
3154 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, fm
));
3155 if (!is_error(ret
)) {
3156 target_size_out
= target_size_in
;
3157 /* An extent_count of 0 means we were only counting the extents
3158 * so there are no structs to copy
3160 if (fm
->fm_extent_count
!= 0) {
3161 target_size_out
+= fm
->fm_mapped_extents
* extent_size
;
3163 argptr
= lock_user(VERIFY_WRITE
, arg
, target_size_out
, 0);
3165 ret
= -TARGET_EFAULT
;
3167 /* Convert the struct fiemap */
3168 thunk_convert(argptr
, fm
, arg_type
, THUNK_TARGET
);
3169 if (fm
->fm_extent_count
!= 0) {
3170 p
= argptr
+ target_size_in
;
3171 /* ...and then all the struct fiemap_extents */
3172 for (i
= 0; i
< fm
->fm_mapped_extents
; i
++) {
3173 thunk_convert(p
, &fm
->fm_extents
[i
], extent_arg_type
,
3178 unlock_user(argptr
, arg
, target_size_out
);
3188 static abi_long
do_ioctl_ifconf(const IOCTLEntry
*ie
, uint8_t *buf_temp
,
3189 int fd
, abi_long cmd
, abi_long arg
)
3191 const argtype
*arg_type
= ie
->arg_type
;
3195 struct ifconf
*host_ifconf
;
3197 const argtype ifreq_arg_type
[] = { MK_STRUCT(STRUCT_sockaddr_ifreq
) };
3198 int target_ifreq_size
;
3203 abi_long target_ifc_buf
;
3207 assert(arg_type
[0] == TYPE_PTR
);
3208 assert(ie
->access
== IOC_RW
);
3211 target_size
= thunk_type_size(arg_type
, 0);
3213 argptr
= lock_user(VERIFY_READ
, arg
, target_size
, 1);
3215 return -TARGET_EFAULT
;
3216 thunk_convert(buf_temp
, argptr
, arg_type
, THUNK_HOST
);
3217 unlock_user(argptr
, arg
, 0);
3219 host_ifconf
= (struct ifconf
*)(unsigned long)buf_temp
;
3220 target_ifc_len
= host_ifconf
->ifc_len
;
3221 target_ifc_buf
= (abi_long
)(unsigned long)host_ifconf
->ifc_buf
;
3223 target_ifreq_size
= thunk_type_size(ifreq_arg_type
, 0);
3224 nb_ifreq
= target_ifc_len
/ target_ifreq_size
;
3225 host_ifc_len
= nb_ifreq
* sizeof(struct ifreq
);
3227 outbufsz
= sizeof(*host_ifconf
) + host_ifc_len
;
3228 if (outbufsz
> MAX_STRUCT_SIZE
) {
3229 /* We can't fit all the extents into the fixed size buffer.
3230 * Allocate one that is large enough and use it instead.
3232 host_ifconf
= malloc(outbufsz
);
3234 return -TARGET_ENOMEM
;
3236 memcpy(host_ifconf
, buf_temp
, sizeof(*host_ifconf
));
3239 host_ifc_buf
= (char*)host_ifconf
+ sizeof(*host_ifconf
);
3241 host_ifconf
->ifc_len
= host_ifc_len
;
3242 host_ifconf
->ifc_buf
= host_ifc_buf
;
3244 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, host_ifconf
));
3245 if (!is_error(ret
)) {
3246 /* convert host ifc_len to target ifc_len */
3248 nb_ifreq
= host_ifconf
->ifc_len
/ sizeof(struct ifreq
);
3249 target_ifc_len
= nb_ifreq
* target_ifreq_size
;
3250 host_ifconf
->ifc_len
= target_ifc_len
;
3252 /* restore target ifc_buf */
3254 host_ifconf
->ifc_buf
= (char *)(unsigned long)target_ifc_buf
;
3256 /* copy struct ifconf to target user */
3258 argptr
= lock_user(VERIFY_WRITE
, arg
, target_size
, 0);
3260 return -TARGET_EFAULT
;
3261 thunk_convert(argptr
, host_ifconf
, arg_type
, THUNK_TARGET
);
3262 unlock_user(argptr
, arg
, target_size
);
3264 /* copy ifreq[] to target user */
3266 argptr
= lock_user(VERIFY_WRITE
, target_ifc_buf
, target_ifc_len
, 0);
3267 for (i
= 0; i
< nb_ifreq
; i
++) {
3268 thunk_convert(argptr
+ i
* target_ifreq_size
,
3269 host_ifc_buf
+ i
* sizeof(struct ifreq
),
3270 ifreq_arg_type
, THUNK_TARGET
);
3272 unlock_user(argptr
, target_ifc_buf
, target_ifc_len
);
3282 static abi_long
do_ioctl_dm(const IOCTLEntry
*ie
, uint8_t *buf_temp
, int fd
,
3283 abi_long cmd
, abi_long arg
)
3286 struct dm_ioctl
*host_dm
;
3287 abi_long guest_data
;
3288 uint32_t guest_data_size
;
3290 const argtype
*arg_type
= ie
->arg_type
;
3292 void *big_buf
= NULL
;
3296 target_size
= thunk_type_size(arg_type
, 0);
3297 argptr
= lock_user(VERIFY_READ
, arg
, target_size
, 1);
3299 ret
= -TARGET_EFAULT
;
3302 thunk_convert(buf_temp
, argptr
, arg_type
, THUNK_HOST
);
3303 unlock_user(argptr
, arg
, 0);
3305 /* buf_temp is too small, so fetch things into a bigger buffer */
3306 big_buf
= g_malloc0(((struct dm_ioctl
*)buf_temp
)->data_size
* 2);
3307 memcpy(big_buf
, buf_temp
, target_size
);
3311 guest_data
= arg
+ host_dm
->data_start
;
3312 if ((guest_data
- arg
) < 0) {
3316 guest_data_size
= host_dm
->data_size
- host_dm
->data_start
;
3317 host_data
= (char*)host_dm
+ host_dm
->data_start
;
3319 argptr
= lock_user(VERIFY_READ
, guest_data
, guest_data_size
, 1);
3320 switch (ie
->host_cmd
) {
3322 case DM_LIST_DEVICES
:
3325 case DM_DEV_SUSPEND
:
3328 case DM_TABLE_STATUS
:
3329 case DM_TABLE_CLEAR
:
3331 case DM_LIST_VERSIONS
:
3335 case DM_DEV_SET_GEOMETRY
:
3336 /* data contains only strings */
3337 memcpy(host_data
, argptr
, guest_data_size
);
3340 memcpy(host_data
, argptr
, guest_data_size
);
3341 *(uint64_t*)host_data
= tswap64(*(uint64_t*)argptr
);
3345 void *gspec
= argptr
;
3346 void *cur_data
= host_data
;
3347 const argtype arg_type
[] = { MK_STRUCT(STRUCT_dm_target_spec
) };
3348 int spec_size
= thunk_type_size(arg_type
, 0);
3351 for (i
= 0; i
< host_dm
->target_count
; i
++) {
3352 struct dm_target_spec
*spec
= cur_data
;
3356 thunk_convert(spec
, gspec
, arg_type
, THUNK_HOST
);
3357 slen
= strlen((char*)gspec
+ spec_size
) + 1;
3359 spec
->next
= sizeof(*spec
) + slen
;
3360 strcpy((char*)&spec
[1], gspec
+ spec_size
);
3362 cur_data
+= spec
->next
;
3367 ret
= -TARGET_EINVAL
;
3370 unlock_user(argptr
, guest_data
, 0);
3372 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, buf_temp
));
3373 if (!is_error(ret
)) {
3374 guest_data
= arg
+ host_dm
->data_start
;
3375 guest_data_size
= host_dm
->data_size
- host_dm
->data_start
;
3376 argptr
= lock_user(VERIFY_WRITE
, guest_data
, guest_data_size
, 0);
3377 switch (ie
->host_cmd
) {
3382 case DM_DEV_SUSPEND
:
3385 case DM_TABLE_CLEAR
:
3387 case DM_DEV_SET_GEOMETRY
:
3388 /* no return data */
3390 case DM_LIST_DEVICES
:
3392 struct dm_name_list
*nl
= (void*)host_dm
+ host_dm
->data_start
;
3393 uint32_t remaining_data
= guest_data_size
;
3394 void *cur_data
= argptr
;
3395 const argtype arg_type
[] = { MK_STRUCT(STRUCT_dm_name_list
) };
3396 int nl_size
= 12; /* can't use thunk_size due to alignment */
3399 uint32_t next
= nl
->next
;
3401 nl
->next
= nl_size
+ (strlen(nl
->name
) + 1);
3403 if (remaining_data
< nl
->next
) {
3404 host_dm
->flags
|= DM_BUFFER_FULL_FLAG
;
3407 thunk_convert(cur_data
, nl
, arg_type
, THUNK_TARGET
);
3408 strcpy(cur_data
+ nl_size
, nl
->name
);
3409 cur_data
+= nl
->next
;
3410 remaining_data
-= nl
->next
;
3414 nl
= (void*)nl
+ next
;
3419 case DM_TABLE_STATUS
:
3421 struct dm_target_spec
*spec
= (void*)host_dm
+ host_dm
->data_start
;
3422 void *cur_data
= argptr
;
3423 const argtype arg_type
[] = { MK_STRUCT(STRUCT_dm_target_spec
) };
3424 int spec_size
= thunk_type_size(arg_type
, 0);
3427 for (i
= 0; i
< host_dm
->target_count
; i
++) {
3428 uint32_t next
= spec
->next
;
3429 int slen
= strlen((char*)&spec
[1]) + 1;
3430 spec
->next
= (cur_data
- argptr
) + spec_size
+ slen
;
3431 if (guest_data_size
< spec
->next
) {
3432 host_dm
->flags
|= DM_BUFFER_FULL_FLAG
;
3435 thunk_convert(cur_data
, spec
, arg_type
, THUNK_TARGET
);
3436 strcpy(cur_data
+ spec_size
, (char*)&spec
[1]);
3437 cur_data
= argptr
+ spec
->next
;
3438 spec
= (void*)host_dm
+ host_dm
->data_start
+ next
;
3444 void *hdata
= (void*)host_dm
+ host_dm
->data_start
;
3445 int count
= *(uint32_t*)hdata
;
3446 uint64_t *hdev
= hdata
+ 8;
3447 uint64_t *gdev
= argptr
+ 8;
3450 *(uint32_t*)argptr
= tswap32(count
);
3451 for (i
= 0; i
< count
; i
++) {
3452 *gdev
= tswap64(*hdev
);
3458 case DM_LIST_VERSIONS
:
3460 struct dm_target_versions
*vers
= (void*)host_dm
+ host_dm
->data_start
;
3461 uint32_t remaining_data
= guest_data_size
;
3462 void *cur_data
= argptr
;
3463 const argtype arg_type
[] = { MK_STRUCT(STRUCT_dm_target_versions
) };
3464 int vers_size
= thunk_type_size(arg_type
, 0);
3467 uint32_t next
= vers
->next
;
3469 vers
->next
= vers_size
+ (strlen(vers
->name
) + 1);
3471 if (remaining_data
< vers
->next
) {
3472 host_dm
->flags
|= DM_BUFFER_FULL_FLAG
;
3475 thunk_convert(cur_data
, vers
, arg_type
, THUNK_TARGET
);
3476 strcpy(cur_data
+ vers_size
, vers
->name
);
3477 cur_data
+= vers
->next
;
3478 remaining_data
-= vers
->next
;
3482 vers
= (void*)vers
+ next
;
3487 ret
= -TARGET_EINVAL
;
3490 unlock_user(argptr
, guest_data
, guest_data_size
);
3492 argptr
= lock_user(VERIFY_WRITE
, arg
, target_size
, 0);
3494 ret
= -TARGET_EFAULT
;
3497 thunk_convert(argptr
, buf_temp
, arg_type
, THUNK_TARGET
);
3498 unlock_user(argptr
, arg
, target_size
);
3505 static abi_long
do_ioctl_rt(const IOCTLEntry
*ie
, uint8_t *buf_temp
,
3506 int fd
, abi_long cmd
, abi_long arg
)
3508 const argtype
*arg_type
= ie
->arg_type
;
3509 const StructEntry
*se
;
3510 const argtype
*field_types
;
3511 const int *dst_offsets
, *src_offsets
;
3514 abi_ulong
*target_rt_dev_ptr
;
3515 unsigned long *host_rt_dev_ptr
;
3519 assert(ie
->access
== IOC_W
);
3520 assert(*arg_type
== TYPE_PTR
);
3522 assert(*arg_type
== TYPE_STRUCT
);
3523 target_size
= thunk_type_size(arg_type
, 0);
3524 argptr
= lock_user(VERIFY_READ
, arg
, target_size
, 1);
3526 return -TARGET_EFAULT
;
3529 assert(*arg_type
== (int)STRUCT_rtentry
);
3530 se
= struct_entries
+ *arg_type
++;
3531 assert(se
->convert
[0] == NULL
);
3532 /* convert struct here to be able to catch rt_dev string */
3533 field_types
= se
->field_types
;
3534 dst_offsets
= se
->field_offsets
[THUNK_HOST
];
3535 src_offsets
= se
->field_offsets
[THUNK_TARGET
];
3536 for (i
= 0; i
< se
->nb_fields
; i
++) {
3537 if (dst_offsets
[i
] == offsetof(struct rtentry
, rt_dev
)) {
3538 assert(*field_types
== TYPE_PTRVOID
);
3539 target_rt_dev_ptr
= (abi_ulong
*)(argptr
+ src_offsets
[i
]);
3540 host_rt_dev_ptr
= (unsigned long *)(buf_temp
+ dst_offsets
[i
]);
3541 if (*target_rt_dev_ptr
!= 0) {
3542 *host_rt_dev_ptr
= (unsigned long)lock_user_string(
3543 tswapal(*target_rt_dev_ptr
));
3544 if (!*host_rt_dev_ptr
) {
3545 unlock_user(argptr
, arg
, 0);
3546 return -TARGET_EFAULT
;
3549 *host_rt_dev_ptr
= 0;
3554 field_types
= thunk_convert(buf_temp
+ dst_offsets
[i
],
3555 argptr
+ src_offsets
[i
],
3556 field_types
, THUNK_HOST
);
3558 unlock_user(argptr
, arg
, 0);
3560 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, buf_temp
));
3561 if (*host_rt_dev_ptr
!= 0) {
3562 unlock_user((void *)*host_rt_dev_ptr
,
3563 *target_rt_dev_ptr
, 0);
3568 static IOCTLEntry ioctl_entries
[] = {
3569 #define IOCTL(cmd, access, ...) \
3570 { TARGET_ ## cmd, cmd, #cmd, access, 0, { __VA_ARGS__ } },
3571 #define IOCTL_SPECIAL(cmd, access, dofn, ...) \
3572 { TARGET_ ## cmd, cmd, #cmd, access, dofn, { __VA_ARGS__ } },
3577 /* ??? Implement proper locking for ioctls. */
3578 /* do_ioctl() Must return target values and target errnos. */
3579 static abi_long
do_ioctl(int fd
, abi_long cmd
, abi_long arg
)
3581 const IOCTLEntry
*ie
;
3582 const argtype
*arg_type
;
3584 uint8_t buf_temp
[MAX_STRUCT_SIZE
];
3590 if (ie
->target_cmd
== 0) {
3591 gemu_log("Unsupported ioctl: cmd=0x%04lx\n", (long)cmd
);
3592 return -TARGET_ENOSYS
;
3594 if (ie
->target_cmd
== cmd
)
3598 arg_type
= ie
->arg_type
;
3600 gemu_log("ioctl: cmd=0x%04lx (%s)\n", (long)cmd
, ie
->name
);
3603 return ie
->do_ioctl(ie
, buf_temp
, fd
, cmd
, arg
);
3606 switch(arg_type
[0]) {
3609 ret
= get_errno(ioctl(fd
, ie
->host_cmd
));
3614 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, arg
));
3618 target_size
= thunk_type_size(arg_type
, 0);
3619 switch(ie
->access
) {
3621 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, buf_temp
));
3622 if (!is_error(ret
)) {
3623 argptr
= lock_user(VERIFY_WRITE
, arg
, target_size
, 0);
3625 return -TARGET_EFAULT
;
3626 thunk_convert(argptr
, buf_temp
, arg_type
, THUNK_TARGET
);
3627 unlock_user(argptr
, arg
, target_size
);
3631 argptr
= lock_user(VERIFY_READ
, arg
, target_size
, 1);
3633 return -TARGET_EFAULT
;
3634 thunk_convert(buf_temp
, argptr
, arg_type
, THUNK_HOST
);
3635 unlock_user(argptr
, arg
, 0);
3636 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, buf_temp
));
3640 argptr
= lock_user(VERIFY_READ
, arg
, target_size
, 1);
3642 return -TARGET_EFAULT
;
3643 thunk_convert(buf_temp
, argptr
, arg_type
, THUNK_HOST
);
3644 unlock_user(argptr
, arg
, 0);
3645 ret
= get_errno(ioctl(fd
, ie
->host_cmd
, buf_temp
));
3646 if (!is_error(ret
)) {
3647 argptr
= lock_user(VERIFY_WRITE
, arg
, target_size
, 0);
3649 return -TARGET_EFAULT
;
3650 thunk_convert(argptr
, buf_temp
, arg_type
, THUNK_TARGET
);
3651 unlock_user(argptr
, arg
, target_size
);
3657 gemu_log("Unsupported ioctl type: cmd=0x%04lx type=%d\n",
3658 (long)cmd
, arg_type
[0]);
3659 ret
= -TARGET_ENOSYS
;
3665 static const bitmask_transtbl iflag_tbl
[] = {
3666 { TARGET_IGNBRK
, TARGET_IGNBRK
, IGNBRK
, IGNBRK
},
3667 { TARGET_BRKINT
, TARGET_BRKINT
, BRKINT
, BRKINT
},
3668 { TARGET_IGNPAR
, TARGET_IGNPAR
, IGNPAR
, IGNPAR
},
3669 { TARGET_PARMRK
, TARGET_PARMRK
, PARMRK
, PARMRK
},
3670 { TARGET_INPCK
, TARGET_INPCK
, INPCK
, INPCK
},
3671 { TARGET_ISTRIP
, TARGET_ISTRIP
, ISTRIP
, ISTRIP
},
3672 { TARGET_INLCR
, TARGET_INLCR
, INLCR
, INLCR
},
3673 { TARGET_IGNCR
, TARGET_IGNCR
, IGNCR
, IGNCR
},
3674 { TARGET_ICRNL
, TARGET_ICRNL
, ICRNL
, ICRNL
},
3675 { TARGET_IUCLC
, TARGET_IUCLC
, IUCLC
, IUCLC
},
3676 { TARGET_IXON
, TARGET_IXON
, IXON
, IXON
},
3677 { TARGET_IXANY
, TARGET_IXANY
, IXANY
, IXANY
},
3678 { TARGET_IXOFF
, TARGET_IXOFF
, IXOFF
, IXOFF
},
3679 { TARGET_IMAXBEL
, TARGET_IMAXBEL
, IMAXBEL
, IMAXBEL
},
3683 static const bitmask_transtbl oflag_tbl
[] = {
3684 { TARGET_OPOST
, TARGET_OPOST
, OPOST
, OPOST
},
3685 { TARGET_OLCUC
, TARGET_OLCUC
, OLCUC
, OLCUC
},
3686 { TARGET_ONLCR
, TARGET_ONLCR
, ONLCR
, ONLCR
},
3687 { TARGET_OCRNL
, TARGET_OCRNL
, OCRNL
, OCRNL
},
3688 { TARGET_ONOCR
, TARGET_ONOCR
, ONOCR
, ONOCR
},
3689 { TARGET_ONLRET
, TARGET_ONLRET
, ONLRET
, ONLRET
},
3690 { TARGET_OFILL
, TARGET_OFILL
, OFILL
, OFILL
},
3691 { TARGET_OFDEL
, TARGET_OFDEL
, OFDEL
, OFDEL
},
3692 { TARGET_NLDLY
, TARGET_NL0
, NLDLY
, NL0
},
3693 { TARGET_NLDLY
, TARGET_NL1
, NLDLY
, NL1
},
3694 { TARGET_CRDLY
, TARGET_CR0
, CRDLY
, CR0
},
3695 { TARGET_CRDLY
, TARGET_CR1
, CRDLY
, CR1
},
3696 { TARGET_CRDLY
, TARGET_CR2
, CRDLY
, CR2
},
3697 { TARGET_CRDLY
, TARGET_CR3
, CRDLY
, CR3
},
3698 { TARGET_TABDLY
, TARGET_TAB0
, TABDLY
, TAB0
},
3699 { TARGET_TABDLY
, TARGET_TAB1
, TABDLY
, TAB1
},
3700 { TARGET_TABDLY
, TARGET_TAB2
, TABDLY
, TAB2
},
3701 { TARGET_TABDLY
, TARGET_TAB3
, TABDLY
, TAB3
},
3702 { TARGET_BSDLY
, TARGET_BS0
, BSDLY
, BS0
},
3703 { TARGET_BSDLY
, TARGET_BS1
, BSDLY
, BS1
},
3704 { TARGET_VTDLY
, TARGET_VT0
, VTDLY
, VT0
},
3705 { TARGET_VTDLY
, TARGET_VT1
, VTDLY
, VT1
},
3706 { TARGET_FFDLY
, TARGET_FF0
, FFDLY
, FF0
},
3707 { TARGET_FFDLY
, TARGET_FF1
, FFDLY
, FF1
},
3711 static const bitmask_transtbl cflag_tbl
[] = {
3712 { TARGET_CBAUD
, TARGET_B0
, CBAUD
, B0
},
3713 { TARGET_CBAUD
, TARGET_B50
, CBAUD
, B50
},
3714 { TARGET_CBAUD
, TARGET_B75
, CBAUD
, B75
},
3715 { TARGET_CBAUD
, TARGET_B110
, CBAUD
, B110
},
3716 { TARGET_CBAUD
, TARGET_B134
, CBAUD
, B134
},
3717 { TARGET_CBAUD
, TARGET_B150
, CBAUD
, B150
},
3718 { TARGET_CBAUD
, TARGET_B200
, CBAUD
, B200
},
3719 { TARGET_CBAUD
, TARGET_B300
, CBAUD
, B300
},
3720 { TARGET_CBAUD
, TARGET_B600
, CBAUD
, B600
},
3721 { TARGET_CBAUD
, TARGET_B1200
, CBAUD
, B1200
},
3722 { TARGET_CBAUD
, TARGET_B1800
, CBAUD
, B1800
},
3723 { TARGET_CBAUD
, TARGET_B2400
, CBAUD
, B2400
},
3724 { TARGET_CBAUD
, TARGET_B4800
, CBAUD
, B4800
},
3725 { TARGET_CBAUD
, TARGET_B9600
, CBAUD
, B9600
},
3726 { TARGET_CBAUD
, TARGET_B19200
, CBAUD
, B19200
},
3727 { TARGET_CBAUD
, TARGET_B38400
, CBAUD
, B38400
},
3728 { TARGET_CBAUD
, TARGET_B57600
, CBAUD
, B57600
},
3729 { TARGET_CBAUD
, TARGET_B115200
, CBAUD
, B115200
},
3730 { TARGET_CBAUD
, TARGET_B230400
, CBAUD
, B230400
},
3731 { TARGET_CBAUD
, TARGET_B460800
, CBAUD
, B460800
},
3732 { TARGET_CSIZE
, TARGET_CS5
, CSIZE
, CS5
},
3733 { TARGET_CSIZE
, TARGET_CS6
, CSIZE
, CS6
},
3734 { TARGET_CSIZE
, TARGET_CS7
, CSIZE
, CS7
},
3735 { TARGET_CSIZE
, TARGET_CS8
, CSIZE
, CS8
},
3736 { TARGET_CSTOPB
, TARGET_CSTOPB
, CSTOPB
, CSTOPB
},
3737 { TARGET_CREAD
, TARGET_CREAD
, CREAD
, CREAD
},
3738 { TARGET_PARENB
, TARGET_PARENB
, PARENB
, PARENB
},
3739 { TARGET_PARODD
, TARGET_PARODD
, PARODD
, PARODD
},
3740 { TARGET_HUPCL
, TARGET_HUPCL
, HUPCL
, HUPCL
},
3741 { TARGET_CLOCAL
, TARGET_CLOCAL
, CLOCAL
, CLOCAL
},
3742 { TARGET_CRTSCTS
, TARGET_CRTSCTS
, CRTSCTS
, CRTSCTS
},
3746 static const bitmask_transtbl lflag_tbl
[] = {
3747 { TARGET_ISIG
, TARGET_ISIG
, ISIG
, ISIG
},
3748 { TARGET_ICANON
, TARGET_ICANON
, ICANON
, ICANON
},
3749 { TARGET_XCASE
, TARGET_XCASE
, XCASE
, XCASE
},
3750 { TARGET_ECHO
, TARGET_ECHO
, ECHO
, ECHO
},
3751 { TARGET_ECHOE
, TARGET_ECHOE
, ECHOE
, ECHOE
},
3752 { TARGET_ECHOK
, TARGET_ECHOK
, ECHOK
, ECHOK
},
3753 { TARGET_ECHONL
, TARGET_ECHONL
, ECHONL
, ECHONL
},
3754 { TARGET_NOFLSH
, TARGET_NOFLSH
, NOFLSH
, NOFLSH
},
3755 { TARGET_TOSTOP
, TARGET_TOSTOP
, TOSTOP
, TOSTOP
},
3756 { TARGET_ECHOCTL
, TARGET_ECHOCTL
, ECHOCTL
, ECHOCTL
},
3757 { TARGET_ECHOPRT
, TARGET_ECHOPRT
, ECHOPRT
, ECHOPRT
},
3758 { TARGET_ECHOKE
, TARGET_ECHOKE
, ECHOKE
, ECHOKE
},
3759 { TARGET_FLUSHO
, TARGET_FLUSHO
, FLUSHO
, FLUSHO
},
3760 { TARGET_PENDIN
, TARGET_PENDIN
, PENDIN
, PENDIN
},
3761 { TARGET_IEXTEN
, TARGET_IEXTEN
, IEXTEN
, IEXTEN
},
3765 static void target_to_host_termios (void *dst
, const void *src
)
3767 struct host_termios
*host
= dst
;
3768 const struct target_termios
*target
= src
;
3771 target_to_host_bitmask(tswap32(target
->c_iflag
), iflag_tbl
);
3773 target_to_host_bitmask(tswap32(target
->c_oflag
), oflag_tbl
);
3775 target_to_host_bitmask(tswap32(target
->c_cflag
), cflag_tbl
);
3777 target_to_host_bitmask(tswap32(target
->c_lflag
), lflag_tbl
);
3778 host
->c_line
= target
->c_line
;
3780 memset(host
->c_cc
, 0, sizeof(host
->c_cc
));
3781 host
->c_cc
[VINTR
] = target
->c_cc
[TARGET_VINTR
];
3782 host
->c_cc
[VQUIT
] = target
->c_cc
[TARGET_VQUIT
];
3783 host
->c_cc
[VERASE
] = target
->c_cc
[TARGET_VERASE
];
3784 host
->c_cc
[VKILL
] = target
->c_cc
[TARGET_VKILL
];
3785 host
->c_cc
[VEOF
] = target
->c_cc
[TARGET_VEOF
];
3786 host
->c_cc
[VTIME
] = target
->c_cc
[TARGET_VTIME
];
3787 host
->c_cc
[VMIN
] = target
->c_cc
[TARGET_VMIN
];
3788 host
->c_cc
[VSWTC
] = target
->c_cc
[TARGET_VSWTC
];
3789 host
->c_cc
[VSTART
] = target
->c_cc
[TARGET_VSTART
];
3790 host
->c_cc
[VSTOP
] = target
->c_cc
[TARGET_VSTOP
];
3791 host
->c_cc
[VSUSP
] = target
->c_cc
[TARGET_VSUSP
];
3792 host
->c_cc
[VEOL
] = target
->c_cc
[TARGET_VEOL
];
3793 host
->c_cc
[VREPRINT
] = target
->c_cc
[TARGET_VREPRINT
];
3794 host
->c_cc
[VDISCARD
] = target
->c_cc
[TARGET_VDISCARD
];
3795 host
->c_cc
[VWERASE
] = target
->c_cc
[TARGET_VWERASE
];
3796 host
->c_cc
[VLNEXT
] = target
->c_cc
[TARGET_VLNEXT
];
3797 host
->c_cc
[VEOL2
] = target
->c_cc
[TARGET_VEOL2
];
3800 static void host_to_target_termios (void *dst
, const void *src
)
3802 struct target_termios
*target
= dst
;
3803 const struct host_termios
*host
= src
;
3806 tswap32(host_to_target_bitmask(host
->c_iflag
, iflag_tbl
));
3808 tswap32(host_to_target_bitmask(host
->c_oflag
, oflag_tbl
));
3810 tswap32(host_to_target_bitmask(host
->c_cflag
, cflag_tbl
));
3812 tswap32(host_to_target_bitmask(host
->c_lflag
, lflag_tbl
));
3813 target
->c_line
= host
->c_line
;
3815 memset(target
->c_cc
, 0, sizeof(target
->c_cc
));
3816 target
->c_cc
[TARGET_VINTR
] = host
->c_cc
[VINTR
];
3817 target
->c_cc
[TARGET_VQUIT
] = host
->c_cc
[VQUIT
];
3818 target
->c_cc
[TARGET_VERASE
] = host
->c_cc
[VERASE
];
3819 target
->c_cc
[TARGET_VKILL
] = host
->c_cc
[VKILL
];
3820 target
->c_cc
[TARGET_VEOF
] = host
->c_cc
[VEOF
];
3821 target
->c_cc
[TARGET_VTIME
] = host
->c_cc
[VTIME
];
3822 target
->c_cc
[TARGET_VMIN
] = host
->c_cc
[VMIN
];
3823 target
->c_cc
[TARGET_VSWTC
] = host
->c_cc
[VSWTC
];
3824 target
->c_cc
[TARGET_VSTART
] = host
->c_cc
[VSTART
];
3825 target
->c_cc
[TARGET_VSTOP
] = host
->c_cc
[VSTOP
];
3826 target
->c_cc
[TARGET_VSUSP
] = host
->c_cc
[VSUSP
];
3827 target
->c_cc
[TARGET_VEOL
] = host
->c_cc
[VEOL
];
3828 target
->c_cc
[TARGET_VREPRINT
] = host
->c_cc
[VREPRINT
];
3829 target
->c_cc
[TARGET_VDISCARD
] = host
->c_cc
[VDISCARD
];
3830 target
->c_cc
[TARGET_VWERASE
] = host
->c_cc
[VWERASE
];
3831 target
->c_cc
[TARGET_VLNEXT
] = host
->c_cc
[VLNEXT
];
3832 target
->c_cc
[TARGET_VEOL2
] = host
->c_cc
[VEOL2
];
3835 static const StructEntry struct_termios_def
= {
3836 .convert
= { host_to_target_termios
, target_to_host_termios
},
3837 .size
= { sizeof(struct target_termios
), sizeof(struct host_termios
) },
3838 .align
= { __alignof__(struct target_termios
), __alignof__(struct host_termios
) },
3841 static bitmask_transtbl mmap_flags_tbl
[] = {
3842 { TARGET_MAP_SHARED
, TARGET_MAP_SHARED
, MAP_SHARED
, MAP_SHARED
},
3843 { TARGET_MAP_PRIVATE
, TARGET_MAP_PRIVATE
, MAP_PRIVATE
, MAP_PRIVATE
},
3844 { TARGET_MAP_FIXED
, TARGET_MAP_FIXED
, MAP_FIXED
, MAP_FIXED
},
3845 { TARGET_MAP_ANONYMOUS
, TARGET_MAP_ANONYMOUS
, MAP_ANONYMOUS
, MAP_ANONYMOUS
},
3846 { TARGET_MAP_GROWSDOWN
, TARGET_MAP_GROWSDOWN
, MAP_GROWSDOWN
, MAP_GROWSDOWN
},
3847 { TARGET_MAP_DENYWRITE
, TARGET_MAP_DENYWRITE
, MAP_DENYWRITE
, MAP_DENYWRITE
},
3848 { TARGET_MAP_EXECUTABLE
, TARGET_MAP_EXECUTABLE
, MAP_EXECUTABLE
, MAP_EXECUTABLE
},
3849 { TARGET_MAP_LOCKED
, TARGET_MAP_LOCKED
, MAP_LOCKED
, MAP_LOCKED
},
3853 #if defined(TARGET_I386)
3855 /* NOTE: there is really one LDT for all the threads */
3856 static uint8_t *ldt_table
;
3858 static abi_long
read_ldt(abi_ulong ptr
, unsigned long bytecount
)
3865 size
= TARGET_LDT_ENTRIES
* TARGET_LDT_ENTRY_SIZE
;
3866 if (size
> bytecount
)
3868 p
= lock_user(VERIFY_WRITE
, ptr
, size
, 0);
3870 return -TARGET_EFAULT
;
3871 /* ??? Should this by byteswapped? */
3872 memcpy(p
, ldt_table
, size
);
3873 unlock_user(p
, ptr
, size
);
3877 /* XXX: add locking support */
3878 static abi_long
write_ldt(CPUX86State
*env
,
3879 abi_ulong ptr
, unsigned long bytecount
, int oldmode
)
3881 struct target_modify_ldt_ldt_s ldt_info
;
3882 struct target_modify_ldt_ldt_s
*target_ldt_info
;
3883 int seg_32bit
, contents
, read_exec_only
, limit_in_pages
;
3884 int seg_not_present
, useable
, lm
;
3885 uint32_t *lp
, entry_1
, entry_2
;
3887 if (bytecount
!= sizeof(ldt_info
))
3888 return -TARGET_EINVAL
;
3889 if (!lock_user_struct(VERIFY_READ
, target_ldt_info
, ptr
, 1))
3890 return -TARGET_EFAULT
;
3891 ldt_info
.entry_number
= tswap32(target_ldt_info
->entry_number
);
3892 ldt_info
.base_addr
= tswapal(target_ldt_info
->base_addr
);
3893 ldt_info
.limit
= tswap32(target_ldt_info
->limit
);
3894 ldt_info
.flags
= tswap32(target_ldt_info
->flags
);
3895 unlock_user_struct(target_ldt_info
, ptr
, 0);
3897 if (ldt_info
.entry_number
>= TARGET_LDT_ENTRIES
)
3898 return -TARGET_EINVAL
;
3899 seg_32bit
= ldt_info
.flags
& 1;
3900 contents
= (ldt_info
.flags
>> 1) & 3;
3901 read_exec_only
= (ldt_info
.flags
>> 3) & 1;
3902 limit_in_pages
= (ldt_info
.flags
>> 4) & 1;
3903 seg_not_present
= (ldt_info
.flags
>> 5) & 1;
3904 useable
= (ldt_info
.flags
>> 6) & 1;
3908 lm
= (ldt_info
.flags
>> 7) & 1;
3910 if (contents
== 3) {
3912 return -TARGET_EINVAL
;
3913 if (seg_not_present
== 0)
3914 return -TARGET_EINVAL
;
3916 /* allocate the LDT */
3918 env
->ldt
.base
= target_mmap(0,
3919 TARGET_LDT_ENTRIES
* TARGET_LDT_ENTRY_SIZE
,
3920 PROT_READ
|PROT_WRITE
,
3921 MAP_ANONYMOUS
|MAP_PRIVATE
, -1, 0);
3922 if (env
->ldt
.base
== -1)
3923 return -TARGET_ENOMEM
;
3924 memset(g2h(env
->ldt
.base
), 0,
3925 TARGET_LDT_ENTRIES
* TARGET_LDT_ENTRY_SIZE
);
3926 env
->ldt
.limit
= 0xffff;
3927 ldt_table
= g2h(env
->ldt
.base
);
3930 /* NOTE: same code as Linux kernel */
3931 /* Allow LDTs to be cleared by the user. */
3932 if (ldt_info
.base_addr
== 0 && ldt_info
.limit
== 0) {
3935 read_exec_only
== 1 &&
3937 limit_in_pages
== 0 &&
3938 seg_not_present
== 1 &&
3946 entry_1
= ((ldt_info
.base_addr
& 0x0000ffff) << 16) |
3947 (ldt_info
.limit
& 0x0ffff);
3948 entry_2
= (ldt_info
.base_addr
& 0xff000000) |
3949 ((ldt_info
.base_addr
& 0x00ff0000) >> 16) |
3950 (ldt_info
.limit
& 0xf0000) |
3951 ((read_exec_only
^ 1) << 9) |
3953 ((seg_not_present
^ 1) << 15) |
3955 (limit_in_pages
<< 23) |
3959 entry_2
|= (useable
<< 20);
3961 /* Install the new entry ... */
3963 lp
= (uint32_t *)(ldt_table
+ (ldt_info
.entry_number
<< 3));
3964 lp
[0] = tswap32(entry_1
);
3965 lp
[1] = tswap32(entry_2
);
3969 /* specific and weird i386 syscalls */
3970 static abi_long
do_modify_ldt(CPUX86State
*env
, int func
, abi_ulong ptr
,
3971 unsigned long bytecount
)
3977 ret
= read_ldt(ptr
, bytecount
);
3980 ret
= write_ldt(env
, ptr
, bytecount
, 1);
3983 ret
= write_ldt(env
, ptr
, bytecount
, 0);
3986 ret
= -TARGET_ENOSYS
;
3992 #if defined(TARGET_I386) && defined(TARGET_ABI32)
3993 abi_long
do_set_thread_area(CPUX86State
*env
, abi_ulong ptr
)
3995 uint64_t *gdt_table
= g2h(env
->gdt
.base
);
3996 struct target_modify_ldt_ldt_s ldt_info
;
3997 struct target_modify_ldt_ldt_s
*target_ldt_info
;
3998 int seg_32bit
, contents
, read_exec_only
, limit_in_pages
;
3999 int seg_not_present
, useable
, lm
;
4000 uint32_t *lp
, entry_1
, entry_2
;
4003 lock_user_struct(VERIFY_WRITE
, target_ldt_info
, ptr
, 1);
4004 if (!target_ldt_info
)
4005 return -TARGET_EFAULT
;
4006 ldt_info
.entry_number
= tswap32(target_ldt_info
->entry_number
);
4007 ldt_info
.base_addr
= tswapal(target_ldt_info
->base_addr
);
4008 ldt_info
.limit
= tswap32(target_ldt_info
->limit
);
4009 ldt_info
.flags
= tswap32(target_ldt_info
->flags
);
4010 if (ldt_info
.entry_number
== -1) {
4011 for (i
=TARGET_GDT_ENTRY_TLS_MIN
; i
<=TARGET_GDT_ENTRY_TLS_MAX
; i
++) {
4012 if (gdt_table
[i
] == 0) {
4013 ldt_info
.entry_number
= i
;
4014 target_ldt_info
->entry_number
= tswap32(i
);
4019 unlock_user_struct(target_ldt_info
, ptr
, 1);
4021 if (ldt_info
.entry_number
< TARGET_GDT_ENTRY_TLS_MIN
||
4022 ldt_info
.entry_number
> TARGET_GDT_ENTRY_TLS_MAX
)
4023 return -TARGET_EINVAL
;
4024 seg_32bit
= ldt_info
.flags
& 1;
4025 contents
= (ldt_info
.flags
>> 1) & 3;
4026 read_exec_only
= (ldt_info
.flags
>> 3) & 1;
4027 limit_in_pages
= (ldt_info
.flags
>> 4) & 1;
4028 seg_not_present
= (ldt_info
.flags
>> 5) & 1;
4029 useable
= (ldt_info
.flags
>> 6) & 1;
4033 lm
= (ldt_info
.flags
>> 7) & 1;
4036 if (contents
== 3) {
4037 if (seg_not_present
== 0)
4038 return -TARGET_EINVAL
;
4041 /* NOTE: same code as Linux kernel */
4042 /* Allow LDTs to be cleared by the user. */
4043 if (ldt_info
.base_addr
== 0 && ldt_info
.limit
== 0) {
4044 if ((contents
== 0 &&
4045 read_exec_only
== 1 &&
4047 limit_in_pages
== 0 &&
4048 seg_not_present
== 1 &&
4056 entry_1
= ((ldt_info
.base_addr
& 0x0000ffff) << 16) |
4057 (ldt_info
.limit
& 0x0ffff);
4058 entry_2
= (ldt_info
.base_addr
& 0xff000000) |
4059 ((ldt_info
.base_addr
& 0x00ff0000) >> 16) |
4060 (ldt_info
.limit
& 0xf0000) |
4061 ((read_exec_only
^ 1) << 9) |
4063 ((seg_not_present
^ 1) << 15) |
4065 (limit_in_pages
<< 23) |
4070 /* Install the new entry ... */
4072 lp
= (uint32_t *)(gdt_table
+ ldt_info
.entry_number
);
4073 lp
[0] = tswap32(entry_1
);
4074 lp
[1] = tswap32(entry_2
);
4078 static abi_long
do_get_thread_area(CPUX86State
*env
, abi_ulong ptr
)
4080 struct target_modify_ldt_ldt_s
*target_ldt_info
;
4081 uint64_t *gdt_table
= g2h(env
->gdt
.base
);
4082 uint32_t base_addr
, limit
, flags
;
4083 int seg_32bit
, contents
, read_exec_only
, limit_in_pages
, idx
;
4084 int seg_not_present
, useable
, lm
;
4085 uint32_t *lp
, entry_1
, entry_2
;
4087 lock_user_struct(VERIFY_WRITE
, target_ldt_info
, ptr
, 1);
4088 if (!target_ldt_info
)
4089 return -TARGET_EFAULT
;
4090 idx
= tswap32(target_ldt_info
->entry_number
);
4091 if (idx
< TARGET_GDT_ENTRY_TLS_MIN
||
4092 idx
> TARGET_GDT_ENTRY_TLS_MAX
) {
4093 unlock_user_struct(target_ldt_info
, ptr
, 1);
4094 return -TARGET_EINVAL
;
4096 lp
= (uint32_t *)(gdt_table
+ idx
);
4097 entry_1
= tswap32(lp
[0]);
4098 entry_2
= tswap32(lp
[1]);
4100 read_exec_only
= ((entry_2
>> 9) & 1) ^ 1;
4101 contents
= (entry_2
>> 10) & 3;
4102 seg_not_present
= ((entry_2
>> 15) & 1) ^ 1;
4103 seg_32bit
= (entry_2
>> 22) & 1;
4104 limit_in_pages
= (entry_2
>> 23) & 1;
4105 useable
= (entry_2
>> 20) & 1;
4109 lm
= (entry_2
>> 21) & 1;
4111 flags
= (seg_32bit
<< 0) | (contents
<< 1) |
4112 (read_exec_only
<< 3) | (limit_in_pages
<< 4) |
4113 (seg_not_present
<< 5) | (useable
<< 6) | (lm
<< 7);
4114 limit
= (entry_1
& 0xffff) | (entry_2
& 0xf0000);
4115 base_addr
= (entry_1
>> 16) |
4116 (entry_2
& 0xff000000) |
4117 ((entry_2
& 0xff) << 16);
4118 target_ldt_info
->base_addr
= tswapal(base_addr
);
4119 target_ldt_info
->limit
= tswap32(limit
);
4120 target_ldt_info
->flags
= tswap32(flags
);
4121 unlock_user_struct(target_ldt_info
, ptr
, 1);
4124 #endif /* TARGET_I386 && TARGET_ABI32 */
4126 #ifndef TARGET_ABI32
4127 abi_long
do_arch_prctl(CPUX86State
*env
, int code
, abi_ulong addr
)
4134 case TARGET_ARCH_SET_GS
:
4135 case TARGET_ARCH_SET_FS
:
4136 if (code
== TARGET_ARCH_SET_GS
)
4140 cpu_x86_load_seg(env
, idx
, 0);
4141 env
->segs
[idx
].base
= addr
;
4143 case TARGET_ARCH_GET_GS
:
4144 case TARGET_ARCH_GET_FS
:
4145 if (code
== TARGET_ARCH_GET_GS
)
4149 val
= env
->segs
[idx
].base
;
4150 if (put_user(val
, addr
, abi_ulong
))
4151 ret
= -TARGET_EFAULT
;
4154 ret
= -TARGET_EINVAL
;
4161 #endif /* defined(TARGET_I386) */
4163 #define NEW_STACK_SIZE 0x40000
4166 static pthread_mutex_t clone_lock
= PTHREAD_MUTEX_INITIALIZER
;
4169 pthread_mutex_t mutex
;
4170 pthread_cond_t cond
;
4173 abi_ulong child_tidptr
;
4174 abi_ulong parent_tidptr
;
4178 static void *clone_func(void *arg
)
4180 new_thread_info
*info
= arg
;
4186 cpu
= ENV_GET_CPU(env
);
4188 ts
= (TaskState
*)env
->opaque
;
4189 info
->tid
= gettid();
4190 cpu
->host_tid
= info
->tid
;
4192 if (info
->child_tidptr
)
4193 put_user_u32(info
->tid
, info
->child_tidptr
);
4194 if (info
->parent_tidptr
)
4195 put_user_u32(info
->tid
, info
->parent_tidptr
);
4196 /* Enable signals. */
4197 sigprocmask(SIG_SETMASK
, &info
->sigmask
, NULL
);
4198 /* Signal to the parent that we're ready. */
4199 pthread_mutex_lock(&info
->mutex
);
4200 pthread_cond_broadcast(&info
->cond
);
4201 pthread_mutex_unlock(&info
->mutex
);
4202 /* Wait until the parent has finshed initializing the tls state. */
4203 pthread_mutex_lock(&clone_lock
);
4204 pthread_mutex_unlock(&clone_lock
);
4210 /* do_fork() Must return host values and target errnos (unlike most
4211 do_*() functions). */
4212 static int do_fork(CPUArchState
*env
, unsigned int flags
, abi_ulong newsp
,
4213 abi_ulong parent_tidptr
, target_ulong newtls
,
4214 abi_ulong child_tidptr
)
4218 CPUArchState
*new_env
;
4219 unsigned int nptl_flags
;
4222 /* Emulate vfork() with fork() */
4223 if (flags
& CLONE_VFORK
)
4224 flags
&= ~(CLONE_VFORK
| CLONE_VM
);
4226 if (flags
& CLONE_VM
) {
4227 TaskState
*parent_ts
= (TaskState
*)env
->opaque
;
4228 new_thread_info info
;
4229 pthread_attr_t attr
;
4231 ts
= g_malloc0(sizeof(TaskState
));
4232 init_task_state(ts
);
4233 /* we create a new CPU instance. */
4234 new_env
= cpu_copy(env
);
4235 /* Init regs that differ from the parent. */
4236 cpu_clone_regs(new_env
, newsp
);
4237 new_env
->opaque
= ts
;
4238 ts
->bprm
= parent_ts
->bprm
;
4239 ts
->info
= parent_ts
->info
;
4241 flags
&= ~CLONE_NPTL_FLAGS2
;
4243 if (nptl_flags
& CLONE_CHILD_CLEARTID
) {
4244 ts
->child_tidptr
= child_tidptr
;
4247 if (nptl_flags
& CLONE_SETTLS
)
4248 cpu_set_tls (new_env
, newtls
);
4250 /* Grab a mutex so that thread setup appears atomic. */
4251 pthread_mutex_lock(&clone_lock
);
4253 memset(&info
, 0, sizeof(info
));
4254 pthread_mutex_init(&info
.mutex
, NULL
);
4255 pthread_mutex_lock(&info
.mutex
);
4256 pthread_cond_init(&info
.cond
, NULL
);
4258 if (nptl_flags
& CLONE_CHILD_SETTID
)
4259 info
.child_tidptr
= child_tidptr
;
4260 if (nptl_flags
& CLONE_PARENT_SETTID
)
4261 info
.parent_tidptr
= parent_tidptr
;
4263 ret
= pthread_attr_init(&attr
);
4264 ret
= pthread_attr_setstacksize(&attr
, NEW_STACK_SIZE
);
4265 ret
= pthread_attr_setdetachstate(&attr
, PTHREAD_CREATE_DETACHED
);
4266 /* It is not safe to deliver signals until the child has finished
4267 initializing, so temporarily block all signals. */
4268 sigfillset(&sigmask
);
4269 sigprocmask(SIG_BLOCK
, &sigmask
, &info
.sigmask
);
4271 ret
= pthread_create(&info
.thread
, &attr
, clone_func
, &info
);
4272 /* TODO: Free new CPU state if thread creation failed. */
4274 sigprocmask(SIG_SETMASK
, &info
.sigmask
, NULL
);
4275 pthread_attr_destroy(&attr
);
4277 /* Wait for the child to initialize. */
4278 pthread_cond_wait(&info
.cond
, &info
.mutex
);
4280 if (flags
& CLONE_PARENT_SETTID
)
4281 put_user_u32(ret
, parent_tidptr
);
4285 pthread_mutex_unlock(&info
.mutex
);
4286 pthread_cond_destroy(&info
.cond
);
4287 pthread_mutex_destroy(&info
.mutex
);
4288 pthread_mutex_unlock(&clone_lock
);
4290 /* if no CLONE_VM, we consider it is a fork */
4291 if ((flags
& ~(CSIGNAL
| CLONE_NPTL_FLAGS2
)) != 0)
4296 /* Child Process. */
4297 cpu_clone_regs(env
, newsp
);
4299 /* There is a race condition here. The parent process could
4300 theoretically read the TID in the child process before the child
4301 tid is set. This would require using either ptrace
4302 (not implemented) or having *_tidptr to point at a shared memory
4303 mapping. We can't repeat the spinlock hack used above because
4304 the child process gets its own copy of the lock. */
4305 if (flags
& CLONE_CHILD_SETTID
)
4306 put_user_u32(gettid(), child_tidptr
);
4307 if (flags
& CLONE_PARENT_SETTID
)
4308 put_user_u32(gettid(), parent_tidptr
);
4309 ts
= (TaskState
*)env
->opaque
;
4310 if (flags
& CLONE_SETTLS
)
4311 cpu_set_tls (env
, newtls
);
4312 if (flags
& CLONE_CHILD_CLEARTID
)
4313 ts
->child_tidptr
= child_tidptr
;
4321 /* warning : doesn't handle linux specific flags... */
4322 static int target_to_host_fcntl_cmd(int cmd
)
4325 case TARGET_F_DUPFD
:
4326 case TARGET_F_GETFD
:
4327 case TARGET_F_SETFD
:
4328 case TARGET_F_GETFL
:
4329 case TARGET_F_SETFL
:
4331 case TARGET_F_GETLK
:
4333 case TARGET_F_SETLK
:
4335 case TARGET_F_SETLKW
:
4337 case TARGET_F_GETOWN
:
4339 case TARGET_F_SETOWN
:
4341 case TARGET_F_GETSIG
:
4343 case TARGET_F_SETSIG
:
4345 #if TARGET_ABI_BITS == 32
4346 case TARGET_F_GETLK64
:
4348 case TARGET_F_SETLK64
:
4350 case TARGET_F_SETLKW64
:
4353 case TARGET_F_SETLEASE
:
4355 case TARGET_F_GETLEASE
:
4357 #ifdef F_DUPFD_CLOEXEC
4358 case TARGET_F_DUPFD_CLOEXEC
:
4359 return F_DUPFD_CLOEXEC
;
4361 case TARGET_F_NOTIFY
:
4364 return -TARGET_EINVAL
;
4366 return -TARGET_EINVAL
;
4369 #define TRANSTBL_CONVERT(a) { -1, TARGET_##a, -1, a }
4370 static const bitmask_transtbl flock_tbl
[] = {
4371 TRANSTBL_CONVERT(F_RDLCK
),
4372 TRANSTBL_CONVERT(F_WRLCK
),
4373 TRANSTBL_CONVERT(F_UNLCK
),
4374 TRANSTBL_CONVERT(F_EXLCK
),
4375 TRANSTBL_CONVERT(F_SHLCK
),
4379 static abi_long
do_fcntl(int fd
, int cmd
, abi_ulong arg
)
4382 struct target_flock
*target_fl
;
4383 struct flock64 fl64
;
4384 struct target_flock64
*target_fl64
;
4386 int host_cmd
= target_to_host_fcntl_cmd(cmd
);
4388 if (host_cmd
== -TARGET_EINVAL
)
4392 case TARGET_F_GETLK
:
4393 if (!lock_user_struct(VERIFY_READ
, target_fl
, arg
, 1))
4394 return -TARGET_EFAULT
;
4396 target_to_host_bitmask(tswap16(target_fl
->l_type
), flock_tbl
);
4397 fl
.l_whence
= tswap16(target_fl
->l_whence
);
4398 fl
.l_start
= tswapal(target_fl
->l_start
);
4399 fl
.l_len
= tswapal(target_fl
->l_len
);
4400 fl
.l_pid
= tswap32(target_fl
->l_pid
);
4401 unlock_user_struct(target_fl
, arg
, 0);
4402 ret
= get_errno(fcntl(fd
, host_cmd
, &fl
));
4404 if (!lock_user_struct(VERIFY_WRITE
, target_fl
, arg
, 0))
4405 return -TARGET_EFAULT
;
4407 host_to_target_bitmask(tswap16(fl
.l_type
), flock_tbl
);
4408 target_fl
->l_whence
= tswap16(fl
.l_whence
);
4409 target_fl
->l_start
= tswapal(fl
.l_start
);
4410 target_fl
->l_len
= tswapal(fl
.l_len
);
4411 target_fl
->l_pid
= tswap32(fl
.l_pid
);
4412 unlock_user_struct(target_fl
, arg
, 1);
4416 case TARGET_F_SETLK
:
4417 case TARGET_F_SETLKW
:
4418 if (!lock_user_struct(VERIFY_READ
, target_fl
, arg
, 1))
4419 return -TARGET_EFAULT
;
4421 target_to_host_bitmask(tswap16(target_fl
->l_type
), flock_tbl
);
4422 fl
.l_whence
= tswap16(target_fl
->l_whence
);
4423 fl
.l_start
= tswapal(target_fl
->l_start
);
4424 fl
.l_len
= tswapal(target_fl
->l_len
);
4425 fl
.l_pid
= tswap32(target_fl
->l_pid
);
4426 unlock_user_struct(target_fl
, arg
, 0);
4427 ret
= get_errno(fcntl(fd
, host_cmd
, &fl
));
4430 case TARGET_F_GETLK64
:
4431 if (!lock_user_struct(VERIFY_READ
, target_fl64
, arg
, 1))
4432 return -TARGET_EFAULT
;
4434 target_to_host_bitmask(tswap16(target_fl64
->l_type
), flock_tbl
) >> 1;
4435 fl64
.l_whence
= tswap16(target_fl64
->l_whence
);
4436 fl64
.l_start
= tswap64(target_fl64
->l_start
);
4437 fl64
.l_len
= tswap64(target_fl64
->l_len
);
4438 fl64
.l_pid
= tswap32(target_fl64
->l_pid
);
4439 unlock_user_struct(target_fl64
, arg
, 0);
4440 ret
= get_errno(fcntl(fd
, host_cmd
, &fl64
));
4442 if (!lock_user_struct(VERIFY_WRITE
, target_fl64
, arg
, 0))
4443 return -TARGET_EFAULT
;
4444 target_fl64
->l_type
=
4445 host_to_target_bitmask(tswap16(fl64
.l_type
), flock_tbl
) >> 1;
4446 target_fl64
->l_whence
= tswap16(fl64
.l_whence
);
4447 target_fl64
->l_start
= tswap64(fl64
.l_start
);
4448 target_fl64
->l_len
= tswap64(fl64
.l_len
);
4449 target_fl64
->l_pid
= tswap32(fl64
.l_pid
);
4450 unlock_user_struct(target_fl64
, arg
, 1);
4453 case TARGET_F_SETLK64
:
4454 case TARGET_F_SETLKW64
:
4455 if (!lock_user_struct(VERIFY_READ
, target_fl64
, arg
, 1))
4456 return -TARGET_EFAULT
;
4458 target_to_host_bitmask(tswap16(target_fl64
->l_type
), flock_tbl
) >> 1;
4459 fl64
.l_whence
= tswap16(target_fl64
->l_whence
);
4460 fl64
.l_start
= tswap64(target_fl64
->l_start
);
4461 fl64
.l_len
= tswap64(target_fl64
->l_len
);
4462 fl64
.l_pid
= tswap32(target_fl64
->l_pid
);
4463 unlock_user_struct(target_fl64
, arg
, 0);
4464 ret
= get_errno(fcntl(fd
, host_cmd
, &fl64
));
4467 case TARGET_F_GETFL
:
4468 ret
= get_errno(fcntl(fd
, host_cmd
, arg
));
4470 ret
= host_to_target_bitmask(ret
, fcntl_flags_tbl
);
4474 case TARGET_F_SETFL
:
4475 ret
= get_errno(fcntl(fd
, host_cmd
, target_to_host_bitmask(arg
, fcntl_flags_tbl
)));
4478 case TARGET_F_SETOWN
:
4479 case TARGET_F_GETOWN
:
4480 case TARGET_F_SETSIG
:
4481 case TARGET_F_GETSIG
:
4482 case TARGET_F_SETLEASE
:
4483 case TARGET_F_GETLEASE
:
4484 ret
= get_errno(fcntl(fd
, host_cmd
, arg
));
4488 ret
= get_errno(fcntl(fd
, cmd
, arg
));
4496 static inline int high2lowuid(int uid
)
4504 static inline int high2lowgid(int gid
)
4512 static inline int low2highuid(int uid
)
4514 if ((int16_t)uid
== -1)
4520 static inline int low2highgid(int gid
)
4522 if ((int16_t)gid
== -1)
4527 static inline int tswapid(int id
)
4531 #else /* !USE_UID16 */
4532 static inline int high2lowuid(int uid
)
4536 static inline int high2lowgid(int gid
)
4540 static inline int low2highuid(int uid
)
4544 static inline int low2highgid(int gid
)
4548 static inline int tswapid(int id
)
4552 #endif /* USE_UID16 */
4554 void syscall_init(void)
4557 const argtype
*arg_type
;
4561 #define STRUCT(name, ...) thunk_register_struct(STRUCT_ ## name, #name, struct_ ## name ## _def);
4562 #define STRUCT_SPECIAL(name) thunk_register_struct_direct(STRUCT_ ## name, #name, &struct_ ## name ## _def);
4563 #include "syscall_types.h"
4565 #undef STRUCT_SPECIAL
4567 /* Build target_to_host_errno_table[] table from
4568 * host_to_target_errno_table[]. */
4569 for (i
= 0; i
< ERRNO_TABLE_SIZE
; i
++) {
4570 target_to_host_errno_table
[host_to_target_errno_table
[i
]] = i
;
4573 /* we patch the ioctl size if necessary. We rely on the fact that
4574 no ioctl has all the bits at '1' in the size field */
4576 while (ie
->target_cmd
!= 0) {
4577 if (((ie
->target_cmd
>> TARGET_IOC_SIZESHIFT
) & TARGET_IOC_SIZEMASK
) ==
4578 TARGET_IOC_SIZEMASK
) {
4579 arg_type
= ie
->arg_type
;
4580 if (arg_type
[0] != TYPE_PTR
) {
4581 fprintf(stderr
, "cannot patch size for ioctl 0x%x\n",
4586 size
= thunk_type_size(arg_type
, 0);
4587 ie
->target_cmd
= (ie
->target_cmd
&
4588 ~(TARGET_IOC_SIZEMASK
<< TARGET_IOC_SIZESHIFT
)) |
4589 (size
<< TARGET_IOC_SIZESHIFT
);
4592 /* automatic consistency check if same arch */
4593 #if (defined(__i386__) && defined(TARGET_I386) && defined(TARGET_ABI32)) || \
4594 (defined(__x86_64__) && defined(TARGET_X86_64))
4595 if (unlikely(ie
->target_cmd
!= ie
->host_cmd
)) {
4596 fprintf(stderr
, "ERROR: ioctl(%s): target=0x%x host=0x%x\n",
4597 ie
->name
, ie
->target_cmd
, ie
->host_cmd
);
4604 #if TARGET_ABI_BITS == 32
4605 static inline uint64_t target_offset64(uint32_t word0
, uint32_t word1
)
4607 #ifdef TARGET_WORDS_BIGENDIAN
4608 return ((uint64_t)word0
<< 32) | word1
;
4610 return ((uint64_t)word1
<< 32) | word0
;
4613 #else /* TARGET_ABI_BITS == 32 */
4614 static inline uint64_t target_offset64(uint64_t word0
, uint64_t word1
)
4618 #endif /* TARGET_ABI_BITS != 32 */
4620 #ifdef TARGET_NR_truncate64
4621 static inline abi_long
target_truncate64(void *cpu_env
, const char *arg1
,
4626 if (regpairs_aligned(cpu_env
)) {
4630 return get_errno(truncate64(arg1
, target_offset64(arg2
, arg3
)));
4634 #ifdef TARGET_NR_ftruncate64
4635 static inline abi_long
target_ftruncate64(void *cpu_env
, abi_long arg1
,
4640 if (regpairs_aligned(cpu_env
)) {
4644 return get_errno(ftruncate64(arg1
, target_offset64(arg2
, arg3
)));
4648 static inline abi_long
target_to_host_timespec(struct timespec
*host_ts
,
4649 abi_ulong target_addr
)
4651 struct target_timespec
*target_ts
;
4653 if (!lock_user_struct(VERIFY_READ
, target_ts
, target_addr
, 1))
4654 return -TARGET_EFAULT
;
4655 host_ts
->tv_sec
= tswapal(target_ts
->tv_sec
);
4656 host_ts
->tv_nsec
= tswapal(target_ts
->tv_nsec
);
4657 unlock_user_struct(target_ts
, target_addr
, 0);
4661 static inline abi_long
host_to_target_timespec(abi_ulong target_addr
,
4662 struct timespec
*host_ts
)
4664 struct target_timespec
*target_ts
;
4666 if (!lock_user_struct(VERIFY_WRITE
, target_ts
, target_addr
, 0))
4667 return -TARGET_EFAULT
;
4668 target_ts
->tv_sec
= tswapal(host_ts
->tv_sec
);
4669 target_ts
->tv_nsec
= tswapal(host_ts
->tv_nsec
);
4670 unlock_user_struct(target_ts
, target_addr
, 1);
4674 static inline abi_long
target_to_host_itimerspec(struct itimerspec
*host_itspec
,
4675 abi_ulong target_addr
)
4677 struct target_itimerspec
*target_itspec
;
4679 if (!lock_user_struct(VERIFY_READ
, target_itspec
, target_addr
, 1)) {
4680 return -TARGET_EFAULT
;
4683 host_itspec
->it_interval
.tv_sec
=
4684 tswapal(target_itspec
->it_interval
.tv_sec
);
4685 host_itspec
->it_interval
.tv_nsec
=
4686 tswapal(target_itspec
->it_interval
.tv_nsec
);
4687 host_itspec
->it_value
.tv_sec
= tswapal(target_itspec
->it_value
.tv_sec
);
4688 host_itspec
->it_value
.tv_nsec
= tswapal(target_itspec
->it_value
.tv_nsec
);
4690 unlock_user_struct(target_itspec
, target_addr
, 1);
4694 static inline abi_long
host_to_target_itimerspec(abi_ulong target_addr
,
4695 struct itimerspec
*host_its
)
4697 struct target_itimerspec
*target_itspec
;
4699 if (!lock_user_struct(VERIFY_WRITE
, target_itspec
, target_addr
, 0)) {
4700 return -TARGET_EFAULT
;
4703 target_itspec
->it_interval
.tv_sec
= tswapal(host_its
->it_interval
.tv_sec
);
4704 target_itspec
->it_interval
.tv_nsec
= tswapal(host_its
->it_interval
.tv_nsec
);
4706 target_itspec
->it_value
.tv_sec
= tswapal(host_its
->it_value
.tv_sec
);
4707 target_itspec
->it_value
.tv_nsec
= tswapal(host_its
->it_value
.tv_nsec
);
4709 unlock_user_struct(target_itspec
, target_addr
, 0);
4713 #if defined(TARGET_NR_stat64) || defined(TARGET_NR_newfstatat)
4714 static inline abi_long
host_to_target_stat64(void *cpu_env
,
4715 abi_ulong target_addr
,
4716 struct stat
*host_st
)
4718 #if defined(TARGET_ARM) && defined(TARGET_ABI32)
4719 if (((CPUARMState
*)cpu_env
)->eabi
) {
4720 struct target_eabi_stat64
*target_st
;
4722 if (!lock_user_struct(VERIFY_WRITE
, target_st
, target_addr
, 0))
4723 return -TARGET_EFAULT
;
4724 memset(target_st
, 0, sizeof(struct target_eabi_stat64
));
4725 __put_user(host_st
->st_dev
, &target_st
->st_dev
);
4726 __put_user(host_st
->st_ino
, &target_st
->st_ino
);
4727 #ifdef TARGET_STAT64_HAS_BROKEN_ST_INO
4728 __put_user(host_st
->st_ino
, &target_st
->__st_ino
);
4730 __put_user(host_st
->st_mode
, &target_st
->st_mode
);
4731 __put_user(host_st
->st_nlink
, &target_st
->st_nlink
);
4732 __put_user(host_st
->st_uid
, &target_st
->st_uid
);
4733 __put_user(host_st
->st_gid
, &target_st
->st_gid
);
4734 __put_user(host_st
->st_rdev
, &target_st
->st_rdev
);
4735 __put_user(host_st
->st_size
, &target_st
->st_size
);
4736 __put_user(host_st
->st_blksize
, &target_st
->st_blksize
);
4737 __put_user(host_st
->st_blocks
, &target_st
->st_blocks
);
4738 __put_user(host_st
->st_atime
, &target_st
->target_st_atime
);
4739 __put_user(host_st
->st_mtime
, &target_st
->target_st_mtime
);
4740 __put_user(host_st
->st_ctime
, &target_st
->target_st_ctime
);
4741 unlock_user_struct(target_st
, target_addr
, 1);
4745 #if defined(TARGET_HAS_STRUCT_STAT64)
4746 struct target_stat64
*target_st
;
4748 struct target_stat
*target_st
;
4751 if (!lock_user_struct(VERIFY_WRITE
, target_st
, target_addr
, 0))
4752 return -TARGET_EFAULT
;
4753 memset(target_st
, 0, sizeof(*target_st
));
4754 __put_user(host_st
->st_dev
, &target_st
->st_dev
);
4755 __put_user(host_st
->st_ino
, &target_st
->st_ino
);
4756 #ifdef TARGET_STAT64_HAS_BROKEN_ST_INO
4757 __put_user(host_st
->st_ino
, &target_st
->__st_ino
);
4759 __put_user(host_st
->st_mode
, &target_st
->st_mode
);
4760 __put_user(host_st
->st_nlink
, &target_st
->st_nlink
);
4761 __put_user(host_st
->st_uid
, &target_st
->st_uid
);
4762 __put_user(host_st
->st_gid
, &target_st
->st_gid
);
4763 __put_user(host_st
->st_rdev
, &target_st
->st_rdev
);
4764 /* XXX: better use of kernel struct */
4765 __put_user(host_st
->st_size
, &target_st
->st_size
);
4766 __put_user(host_st
->st_blksize
, &target_st
->st_blksize
);
4767 __put_user(host_st
->st_blocks
, &target_st
->st_blocks
);
4768 __put_user(host_st
->st_atime
, &target_st
->target_st_atime
);
4769 __put_user(host_st
->st_mtime
, &target_st
->target_st_mtime
);
4770 __put_user(host_st
->st_ctime
, &target_st
->target_st_ctime
);
4771 unlock_user_struct(target_st
, target_addr
, 1);
4778 /* ??? Using host futex calls even when target atomic operations
4779 are not really atomic probably breaks things. However implementing
4780 futexes locally would make futexes shared between multiple processes
4781 tricky. However they're probably useless because guest atomic
4782 operations won't work either. */
4783 static int do_futex(target_ulong uaddr
, int op
, int val
, target_ulong timeout
,
4784 target_ulong uaddr2
, int val3
)
4786 struct timespec ts
, *pts
;
4789 /* ??? We assume FUTEX_* constants are the same on both host
4791 #ifdef FUTEX_CMD_MASK
4792 base_op
= op
& FUTEX_CMD_MASK
;
4798 case FUTEX_WAIT_BITSET
:
4801 target_to_host_timespec(pts
, timeout
);
4805 return get_errno(sys_futex(g2h(uaddr
), op
, tswap32(val
),
4808 return get_errno(sys_futex(g2h(uaddr
), op
, val
, NULL
, NULL
, 0));
4810 return get_errno(sys_futex(g2h(uaddr
), op
, val
, NULL
, NULL
, 0));
4812 case FUTEX_CMP_REQUEUE
:
4814 /* For FUTEX_REQUEUE, FUTEX_CMP_REQUEUE, and FUTEX_WAKE_OP, the
4815 TIMEOUT parameter is interpreted as a uint32_t by the kernel.
4816 But the prototype takes a `struct timespec *'; insert casts
4817 to satisfy the compiler. We do not need to tswap TIMEOUT
4818 since it's not compared to guest memory. */
4819 pts
= (struct timespec
*)(uintptr_t) timeout
;
4820 return get_errno(sys_futex(g2h(uaddr
), op
, val
, pts
,
4822 (base_op
== FUTEX_CMP_REQUEUE
4826 return -TARGET_ENOSYS
;
4830 /* Map host to target signal numbers for the wait family of syscalls.
4831 Assume all other status bits are the same. */
4832 int host_to_target_waitstatus(int status
)
4834 if (WIFSIGNALED(status
)) {
4835 return host_to_target_signal(WTERMSIG(status
)) | (status
& ~0x7f);
4837 if (WIFSTOPPED(status
)) {
4838 return (host_to_target_signal(WSTOPSIG(status
)) << 8)
4844 static int relstr_to_int(const char *s
)
4846 /* Convert a uname release string like "2.6.18" to an integer
4847 * of the form 0x020612. (Beware that 0x020612 is *not* 2.6.12.)
4852 for (i
= 0; i
< 3; i
++) {
4854 while (*s
>= '0' && *s
<= '9') {
4859 tmp
= (tmp
<< 8) + n
;
4867 int get_osversion(void)
4869 static int osversion
;
4870 struct new_utsname buf
;
4875 if (qemu_uname_release
&& *qemu_uname_release
) {
4876 s
= qemu_uname_release
;
4878 if (sys_uname(&buf
))
4882 osversion
= relstr_to_int(s
);
4886 void init_qemu_uname_release(void)
4888 /* Initialize qemu_uname_release for later use.
4889 * If the host kernel is too old and the user hasn't asked for
4890 * a specific fake version number, we might want to fake a minimum
4891 * target kernel version.
4893 #ifdef UNAME_MINIMUM_RELEASE
4894 struct new_utsname buf
;
4896 if (qemu_uname_release
&& *qemu_uname_release
) {
4900 if (sys_uname(&buf
)) {
4904 if (relstr_to_int(buf
.release
) < relstr_to_int(UNAME_MINIMUM_RELEASE
)) {
4905 qemu_uname_release
= UNAME_MINIMUM_RELEASE
;
4910 static int open_self_maps(void *cpu_env
, int fd
)
4912 #if defined(TARGET_ARM) || defined(TARGET_M68K) || defined(TARGET_UNICORE32)
4913 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
4920 fp
= fopen("/proc/self/maps", "r");
4925 while ((read
= getline(&line
, &len
, fp
)) != -1) {
4926 int fields
, dev_maj
, dev_min
, inode
;
4927 uint64_t min
, max
, offset
;
4928 char flag_r
, flag_w
, flag_x
, flag_p
;
4929 char path
[512] = "";
4930 fields
= sscanf(line
, "%"PRIx64
"-%"PRIx64
" %c%c%c%c %"PRIx64
" %x:%x %d"
4931 " %512s", &min
, &max
, &flag_r
, &flag_w
, &flag_x
,
4932 &flag_p
, &offset
, &dev_maj
, &dev_min
, &inode
, path
);
4934 if ((fields
< 10) || (fields
> 11)) {
4937 if (!strncmp(path
, "[stack]", 7)) {
4940 if (h2g_valid(min
) && h2g_valid(max
)) {
4941 dprintf(fd
, TARGET_ABI_FMT_lx
"-" TARGET_ABI_FMT_lx
4942 " %c%c%c%c %08" PRIx64
" %02x:%02x %d %s%s\n",
4943 h2g(min
), h2g(max
), flag_r
, flag_w
,
4944 flag_x
, flag_p
, offset
, dev_maj
, dev_min
, inode
,
4945 path
[0] ? " " : "", path
);
4952 #if defined(TARGET_ARM) || defined(TARGET_M68K) || defined(TARGET_UNICORE32)
4953 dprintf(fd
, "%08llx-%08llx rw-p %08llx 00:00 0 [stack]\n",
4954 (unsigned long long)ts
->info
->stack_limit
,
4955 (unsigned long long)(ts
->info
->start_stack
+
4956 (TARGET_PAGE_SIZE
- 1)) & TARGET_PAGE_MASK
,
4957 (unsigned long long)0);
4963 static int open_self_stat(void *cpu_env
, int fd
)
4965 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
4966 abi_ulong start_stack
= ts
->info
->start_stack
;
4969 for (i
= 0; i
< 44; i
++) {
4977 snprintf(buf
, sizeof(buf
), "%"PRId64
" ", val
);
4978 } else if (i
== 1) {
4980 snprintf(buf
, sizeof(buf
), "(%s) ", ts
->bprm
->argv
[0]);
4981 } else if (i
== 27) {
4984 snprintf(buf
, sizeof(buf
), "%"PRId64
" ", val
);
4986 /* for the rest, there is MasterCard */
4987 snprintf(buf
, sizeof(buf
), "0%c", i
== 43 ? '\n' : ' ');
4991 if (write(fd
, buf
, len
) != len
) {
4999 static int open_self_auxv(void *cpu_env
, int fd
)
5001 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
5002 abi_ulong auxv
= ts
->info
->saved_auxv
;
5003 abi_ulong len
= ts
->info
->auxv_len
;
5007 * Auxiliary vector is stored in target process stack.
5008 * read in whole auxv vector and copy it to file
5010 ptr
= lock_user(VERIFY_READ
, auxv
, len
, 0);
5014 r
= write(fd
, ptr
, len
);
5021 lseek(fd
, 0, SEEK_SET
);
5022 unlock_user(ptr
, auxv
, len
);
5028 static int is_proc_myself(const char *filename
, const char *entry
)
5030 if (!strncmp(filename
, "/proc/", strlen("/proc/"))) {
5031 filename
+= strlen("/proc/");
5032 if (!strncmp(filename
, "self/", strlen("self/"))) {
5033 filename
+= strlen("self/");
5034 } else if (*filename
>= '1' && *filename
<= '9') {
5036 snprintf(myself
, sizeof(myself
), "%d/", getpid());
5037 if (!strncmp(filename
, myself
, strlen(myself
))) {
5038 filename
+= strlen(myself
);
5045 if (!strcmp(filename
, entry
)) {
5052 #if defined(HOST_WORDS_BIGENDIAN) != defined(TARGET_WORDS_BIGENDIAN)
5053 static int is_proc(const char *filename
, const char *entry
)
5055 return strcmp(filename
, entry
) == 0;
5058 static int open_net_route(void *cpu_env
, int fd
)
5065 fp
= fopen("/proc/net/route", "r");
5072 read
= getline(&line
, &len
, fp
);
5073 dprintf(fd
, "%s", line
);
5077 while ((read
= getline(&line
, &len
, fp
)) != -1) {
5079 uint32_t dest
, gw
, mask
;
5080 unsigned int flags
, refcnt
, use
, metric
, mtu
, window
, irtt
;
5081 sscanf(line
, "%s\t%08x\t%08x\t%04x\t%d\t%d\t%d\t%08x\t%d\t%u\t%u\n",
5082 iface
, &dest
, &gw
, &flags
, &refcnt
, &use
, &metric
,
5083 &mask
, &mtu
, &window
, &irtt
);
5084 dprintf(fd
, "%s\t%08x\t%08x\t%04x\t%d\t%d\t%d\t%08x\t%d\t%u\t%u\n",
5085 iface
, tswap32(dest
), tswap32(gw
), flags
, refcnt
, use
,
5086 metric
, tswap32(mask
), mtu
, window
, irtt
);
5096 static int do_open(void *cpu_env
, const char *pathname
, int flags
, mode_t mode
)
5099 const char *filename
;
5100 int (*fill
)(void *cpu_env
, int fd
);
5101 int (*cmp
)(const char *s1
, const char *s2
);
5103 const struct fake_open
*fake_open
;
5104 static const struct fake_open fakes
[] = {
5105 { "maps", open_self_maps
, is_proc_myself
},
5106 { "stat", open_self_stat
, is_proc_myself
},
5107 { "auxv", open_self_auxv
, is_proc_myself
},
5108 #if defined(HOST_WORDS_BIGENDIAN) != defined(TARGET_WORDS_BIGENDIAN)
5109 { "/proc/net/route", open_net_route
, is_proc
},
5111 { NULL
, NULL
, NULL
}
5114 for (fake_open
= fakes
; fake_open
->filename
; fake_open
++) {
5115 if (fake_open
->cmp(pathname
, fake_open
->filename
)) {
5120 if (fake_open
->filename
) {
5122 char filename
[PATH_MAX
];
5125 /* create temporary file to map stat to */
5126 tmpdir
= getenv("TMPDIR");
5129 snprintf(filename
, sizeof(filename
), "%s/qemu-open.XXXXXX", tmpdir
);
5130 fd
= mkstemp(filename
);
5136 if ((r
= fake_open
->fill(cpu_env
, fd
))) {
5140 lseek(fd
, 0, SEEK_SET
);
5145 return get_errno(open(path(pathname
), flags
, mode
));
5148 /* do_syscall() should always have a single exit point at the end so
5149 that actions, such as logging of syscall results, can be performed.
5150 All errnos that do_syscall() returns must be -TARGET_<errcode>. */
5151 abi_long
do_syscall(void *cpu_env
, int num
, abi_long arg1
,
5152 abi_long arg2
, abi_long arg3
, abi_long arg4
,
5153 abi_long arg5
, abi_long arg6
, abi_long arg7
,
5156 CPUState
*cpu
= ENV_GET_CPU(cpu_env
);
5163 gemu_log("syscall %d", num
);
5166 print_syscall(num
, arg1
, arg2
, arg3
, arg4
, arg5
, arg6
);
5169 case TARGET_NR_exit
:
5170 /* In old applications this may be used to implement _exit(2).
5171 However in threaded applictions it is used for thread termination,
5172 and _exit_group is used for application termination.
5173 Do thread termination if we have more then one thread. */
5174 /* FIXME: This probably breaks if a signal arrives. We should probably
5175 be disabling signals. */
5176 if (CPU_NEXT(first_cpu
)) {
5180 /* Remove the CPU from the list. */
5181 QTAILQ_REMOVE(&cpus
, cpu
, node
);
5183 ts
= ((CPUArchState
*)cpu_env
)->opaque
;
5184 if (ts
->child_tidptr
) {
5185 put_user_u32(0, ts
->child_tidptr
);
5186 sys_futex(g2h(ts
->child_tidptr
), FUTEX_WAKE
, INT_MAX
,
5190 object_unref(OBJECT(ENV_GET_CPU(cpu_env
)));
5197 gdb_exit(cpu_env
, arg1
);
5199 ret
= 0; /* avoid warning */
5201 case TARGET_NR_read
:
5205 if (!(p
= lock_user(VERIFY_WRITE
, arg2
, arg3
, 0)))
5207 ret
= get_errno(read(arg1
, p
, arg3
));
5208 unlock_user(p
, arg2
, ret
);
5211 case TARGET_NR_write
:
5212 if (!(p
= lock_user(VERIFY_READ
, arg2
, arg3
, 1)))
5214 ret
= get_errno(write(arg1
, p
, arg3
));
5215 unlock_user(p
, arg2
, 0);
5217 case TARGET_NR_open
:
5218 if (!(p
= lock_user_string(arg1
)))
5220 ret
= get_errno(do_open(cpu_env
, p
,
5221 target_to_host_bitmask(arg2
, fcntl_flags_tbl
),
5223 unlock_user(p
, arg1
, 0);
5225 #if defined(TARGET_NR_openat) && defined(__NR_openat)
5226 case TARGET_NR_openat
:
5227 if (!(p
= lock_user_string(arg2
)))
5229 ret
= get_errno(sys_openat(arg1
,
5231 target_to_host_bitmask(arg3
, fcntl_flags_tbl
),
5233 unlock_user(p
, arg2
, 0);
5236 case TARGET_NR_close
:
5237 ret
= get_errno(close(arg1
));
5242 case TARGET_NR_fork
:
5243 ret
= get_errno(do_fork(cpu_env
, SIGCHLD
, 0, 0, 0, 0));
5245 #ifdef TARGET_NR_waitpid
5246 case TARGET_NR_waitpid
:
5249 ret
= get_errno(waitpid(arg1
, &status
, arg3
));
5250 if (!is_error(ret
) && arg2
&& ret
5251 && put_user_s32(host_to_target_waitstatus(status
), arg2
))
5256 #ifdef TARGET_NR_waitid
5257 case TARGET_NR_waitid
:
5261 ret
= get_errno(waitid(arg1
, arg2
, &info
, arg4
));
5262 if (!is_error(ret
) && arg3
&& info
.si_pid
!= 0) {
5263 if (!(p
= lock_user(VERIFY_WRITE
, arg3
, sizeof(target_siginfo_t
), 0)))
5265 host_to_target_siginfo(p
, &info
);
5266 unlock_user(p
, arg3
, sizeof(target_siginfo_t
));
5271 #ifdef TARGET_NR_creat /* not on alpha */
5272 case TARGET_NR_creat
:
5273 if (!(p
= lock_user_string(arg1
)))
5275 ret
= get_errno(creat(p
, arg2
));
5276 unlock_user(p
, arg1
, 0);
5279 case TARGET_NR_link
:
5282 p
= lock_user_string(arg1
);
5283 p2
= lock_user_string(arg2
);
5285 ret
= -TARGET_EFAULT
;
5287 ret
= get_errno(link(p
, p2
));
5288 unlock_user(p2
, arg2
, 0);
5289 unlock_user(p
, arg1
, 0);
5292 #if defined(TARGET_NR_linkat)
5293 case TARGET_NR_linkat
:
5298 p
= lock_user_string(arg2
);
5299 p2
= lock_user_string(arg4
);
5301 ret
= -TARGET_EFAULT
;
5303 ret
= get_errno(linkat(arg1
, p
, arg3
, p2
, arg5
));
5304 unlock_user(p
, arg2
, 0);
5305 unlock_user(p2
, arg4
, 0);
5309 case TARGET_NR_unlink
:
5310 if (!(p
= lock_user_string(arg1
)))
5312 ret
= get_errno(unlink(p
));
5313 unlock_user(p
, arg1
, 0);
5315 #if defined(TARGET_NR_unlinkat)
5316 case TARGET_NR_unlinkat
:
5317 if (!(p
= lock_user_string(arg2
)))
5319 ret
= get_errno(unlinkat(arg1
, p
, arg3
));
5320 unlock_user(p
, arg2
, 0);
5323 case TARGET_NR_execve
:
5325 char **argp
, **envp
;
5328 abi_ulong guest_argp
;
5329 abi_ulong guest_envp
;
5336 for (gp
= guest_argp
; gp
; gp
+= sizeof(abi_ulong
)) {
5337 if (get_user_ual(addr
, gp
))
5345 for (gp
= guest_envp
; gp
; gp
+= sizeof(abi_ulong
)) {
5346 if (get_user_ual(addr
, gp
))
5353 argp
= alloca((argc
+ 1) * sizeof(void *));
5354 envp
= alloca((envc
+ 1) * sizeof(void *));
5356 for (gp
= guest_argp
, q
= argp
; gp
;
5357 gp
+= sizeof(abi_ulong
), q
++) {
5358 if (get_user_ual(addr
, gp
))
5362 if (!(*q
= lock_user_string(addr
)))
5364 total_size
+= strlen(*q
) + 1;
5368 for (gp
= guest_envp
, q
= envp
; gp
;
5369 gp
+= sizeof(abi_ulong
), q
++) {
5370 if (get_user_ual(addr
, gp
))
5374 if (!(*q
= lock_user_string(addr
)))
5376 total_size
+= strlen(*q
) + 1;
5380 /* This case will not be caught by the host's execve() if its
5381 page size is bigger than the target's. */
5382 if (total_size
> MAX_ARG_PAGES
* TARGET_PAGE_SIZE
) {
5383 ret
= -TARGET_E2BIG
;
5386 if (!(p
= lock_user_string(arg1
)))
5388 ret
= get_errno(execve(p
, argp
, envp
));
5389 unlock_user(p
, arg1
, 0);
5394 ret
= -TARGET_EFAULT
;
5397 for (gp
= guest_argp
, q
= argp
; *q
;
5398 gp
+= sizeof(abi_ulong
), q
++) {
5399 if (get_user_ual(addr
, gp
)
5402 unlock_user(*q
, addr
, 0);
5404 for (gp
= guest_envp
, q
= envp
; *q
;
5405 gp
+= sizeof(abi_ulong
), q
++) {
5406 if (get_user_ual(addr
, gp
)
5409 unlock_user(*q
, addr
, 0);
5413 case TARGET_NR_chdir
:
5414 if (!(p
= lock_user_string(arg1
)))
5416 ret
= get_errno(chdir(p
));
5417 unlock_user(p
, arg1
, 0);
5419 #ifdef TARGET_NR_time
5420 case TARGET_NR_time
:
5423 ret
= get_errno(time(&host_time
));
5426 && put_user_sal(host_time
, arg1
))
5431 case TARGET_NR_mknod
:
5432 if (!(p
= lock_user_string(arg1
)))
5434 ret
= get_errno(mknod(p
, arg2
, arg3
));
5435 unlock_user(p
, arg1
, 0);
5437 #if defined(TARGET_NR_mknodat)
5438 case TARGET_NR_mknodat
:
5439 if (!(p
= lock_user_string(arg2
)))
5441 ret
= get_errno(mknodat(arg1
, p
, arg3
, arg4
));
5442 unlock_user(p
, arg2
, 0);
5445 case TARGET_NR_chmod
:
5446 if (!(p
= lock_user_string(arg1
)))
5448 ret
= get_errno(chmod(p
, arg2
));
5449 unlock_user(p
, arg1
, 0);
5451 #ifdef TARGET_NR_break
5452 case TARGET_NR_break
:
5455 #ifdef TARGET_NR_oldstat
5456 case TARGET_NR_oldstat
:
5459 case TARGET_NR_lseek
:
5460 ret
= get_errno(lseek(arg1
, arg2
, arg3
));
5462 #if defined(TARGET_NR_getxpid) && defined(TARGET_ALPHA)
5463 /* Alpha specific */
5464 case TARGET_NR_getxpid
:
5465 ((CPUAlphaState
*)cpu_env
)->ir
[IR_A4
] = getppid();
5466 ret
= get_errno(getpid());
5469 #ifdef TARGET_NR_getpid
5470 case TARGET_NR_getpid
:
5471 ret
= get_errno(getpid());
5474 case TARGET_NR_mount
:
5476 /* need to look at the data field */
5478 p
= lock_user_string(arg1
);
5479 p2
= lock_user_string(arg2
);
5480 p3
= lock_user_string(arg3
);
5481 if (!p
|| !p2
|| !p3
)
5482 ret
= -TARGET_EFAULT
;
5484 /* FIXME - arg5 should be locked, but it isn't clear how to
5485 * do that since it's not guaranteed to be a NULL-terminated
5489 ret
= get_errno(mount(p
, p2
, p3
, (unsigned long)arg4
, NULL
));
5491 ret
= get_errno(mount(p
, p2
, p3
, (unsigned long)arg4
, g2h(arg5
)));
5493 unlock_user(p
, arg1
, 0);
5494 unlock_user(p2
, arg2
, 0);
5495 unlock_user(p3
, arg3
, 0);
5498 #ifdef TARGET_NR_umount
5499 case TARGET_NR_umount
:
5500 if (!(p
= lock_user_string(arg1
)))
5502 ret
= get_errno(umount(p
));
5503 unlock_user(p
, arg1
, 0);
5506 #ifdef TARGET_NR_stime /* not on alpha */
5507 case TARGET_NR_stime
:
5510 if (get_user_sal(host_time
, arg1
))
5512 ret
= get_errno(stime(&host_time
));
5516 case TARGET_NR_ptrace
:
5518 #ifdef TARGET_NR_alarm /* not on alpha */
5519 case TARGET_NR_alarm
:
5523 #ifdef TARGET_NR_oldfstat
5524 case TARGET_NR_oldfstat
:
5527 #ifdef TARGET_NR_pause /* not on alpha */
5528 case TARGET_NR_pause
:
5529 ret
= get_errno(pause());
5532 #ifdef TARGET_NR_utime
5533 case TARGET_NR_utime
:
5535 struct utimbuf tbuf
, *host_tbuf
;
5536 struct target_utimbuf
*target_tbuf
;
5538 if (!lock_user_struct(VERIFY_READ
, target_tbuf
, arg2
, 1))
5540 tbuf
.actime
= tswapal(target_tbuf
->actime
);
5541 tbuf
.modtime
= tswapal(target_tbuf
->modtime
);
5542 unlock_user_struct(target_tbuf
, arg2
, 0);
5547 if (!(p
= lock_user_string(arg1
)))
5549 ret
= get_errno(utime(p
, host_tbuf
));
5550 unlock_user(p
, arg1
, 0);
5554 case TARGET_NR_utimes
:
5556 struct timeval
*tvp
, tv
[2];
5558 if (copy_from_user_timeval(&tv
[0], arg2
)
5559 || copy_from_user_timeval(&tv
[1],
5560 arg2
+ sizeof(struct target_timeval
)))
5566 if (!(p
= lock_user_string(arg1
)))
5568 ret
= get_errno(utimes(p
, tvp
));
5569 unlock_user(p
, arg1
, 0);
5572 #if defined(TARGET_NR_futimesat)
5573 case TARGET_NR_futimesat
:
5575 struct timeval
*tvp
, tv
[2];
5577 if (copy_from_user_timeval(&tv
[0], arg3
)
5578 || copy_from_user_timeval(&tv
[1],
5579 arg3
+ sizeof(struct target_timeval
)))
5585 if (!(p
= lock_user_string(arg2
)))
5587 ret
= get_errno(futimesat(arg1
, path(p
), tvp
));
5588 unlock_user(p
, arg2
, 0);
5592 #ifdef TARGET_NR_stty
5593 case TARGET_NR_stty
:
5596 #ifdef TARGET_NR_gtty
5597 case TARGET_NR_gtty
:
5600 case TARGET_NR_access
:
5601 if (!(p
= lock_user_string(arg1
)))
5603 ret
= get_errno(access(path(p
), arg2
));
5604 unlock_user(p
, arg1
, 0);
5606 #if defined(TARGET_NR_faccessat) && defined(__NR_faccessat)
5607 case TARGET_NR_faccessat
:
5608 if (!(p
= lock_user_string(arg2
)))
5610 ret
= get_errno(faccessat(arg1
, p
, arg3
, 0));
5611 unlock_user(p
, arg2
, 0);
5614 #ifdef TARGET_NR_nice /* not on alpha */
5615 case TARGET_NR_nice
:
5616 ret
= get_errno(nice(arg1
));
5619 #ifdef TARGET_NR_ftime
5620 case TARGET_NR_ftime
:
5623 case TARGET_NR_sync
:
5627 case TARGET_NR_kill
:
5628 ret
= get_errno(kill(arg1
, target_to_host_signal(arg2
)));
5630 case TARGET_NR_rename
:
5633 p
= lock_user_string(arg1
);
5634 p2
= lock_user_string(arg2
);
5636 ret
= -TARGET_EFAULT
;
5638 ret
= get_errno(rename(p
, p2
));
5639 unlock_user(p2
, arg2
, 0);
5640 unlock_user(p
, arg1
, 0);
5643 #if defined(TARGET_NR_renameat)
5644 case TARGET_NR_renameat
:
5647 p
= lock_user_string(arg2
);
5648 p2
= lock_user_string(arg4
);
5650 ret
= -TARGET_EFAULT
;
5652 ret
= get_errno(renameat(arg1
, p
, arg3
, p2
));
5653 unlock_user(p2
, arg4
, 0);
5654 unlock_user(p
, arg2
, 0);
5658 case TARGET_NR_mkdir
:
5659 if (!(p
= lock_user_string(arg1
)))
5661 ret
= get_errno(mkdir(p
, arg2
));
5662 unlock_user(p
, arg1
, 0);
5664 #if defined(TARGET_NR_mkdirat)
5665 case TARGET_NR_mkdirat
:
5666 if (!(p
= lock_user_string(arg2
)))
5668 ret
= get_errno(mkdirat(arg1
, p
, arg3
));
5669 unlock_user(p
, arg2
, 0);
5672 case TARGET_NR_rmdir
:
5673 if (!(p
= lock_user_string(arg1
)))
5675 ret
= get_errno(rmdir(p
));
5676 unlock_user(p
, arg1
, 0);
5679 ret
= get_errno(dup(arg1
));
5681 case TARGET_NR_pipe
:
5682 ret
= do_pipe(cpu_env
, arg1
, 0, 0);
5684 #ifdef TARGET_NR_pipe2
5685 case TARGET_NR_pipe2
:
5686 ret
= do_pipe(cpu_env
, arg1
,
5687 target_to_host_bitmask(arg2
, fcntl_flags_tbl
), 1);
5690 case TARGET_NR_times
:
5692 struct target_tms
*tmsp
;
5694 ret
= get_errno(times(&tms
));
5696 tmsp
= lock_user(VERIFY_WRITE
, arg1
, sizeof(struct target_tms
), 0);
5699 tmsp
->tms_utime
= tswapal(host_to_target_clock_t(tms
.tms_utime
));
5700 tmsp
->tms_stime
= tswapal(host_to_target_clock_t(tms
.tms_stime
));
5701 tmsp
->tms_cutime
= tswapal(host_to_target_clock_t(tms
.tms_cutime
));
5702 tmsp
->tms_cstime
= tswapal(host_to_target_clock_t(tms
.tms_cstime
));
5705 ret
= host_to_target_clock_t(ret
);
5708 #ifdef TARGET_NR_prof
5709 case TARGET_NR_prof
:
5712 #ifdef TARGET_NR_signal
5713 case TARGET_NR_signal
:
5716 case TARGET_NR_acct
:
5718 ret
= get_errno(acct(NULL
));
5720 if (!(p
= lock_user_string(arg1
)))
5722 ret
= get_errno(acct(path(p
)));
5723 unlock_user(p
, arg1
, 0);
5726 #ifdef TARGET_NR_umount2
5727 case TARGET_NR_umount2
:
5728 if (!(p
= lock_user_string(arg1
)))
5730 ret
= get_errno(umount2(p
, arg2
));
5731 unlock_user(p
, arg1
, 0);
5734 #ifdef TARGET_NR_lock
5735 case TARGET_NR_lock
:
5738 case TARGET_NR_ioctl
:
5739 ret
= do_ioctl(arg1
, arg2
, arg3
);
5741 case TARGET_NR_fcntl
:
5742 ret
= do_fcntl(arg1
, arg2
, arg3
);
5744 #ifdef TARGET_NR_mpx
5748 case TARGET_NR_setpgid
:
5749 ret
= get_errno(setpgid(arg1
, arg2
));
5751 #ifdef TARGET_NR_ulimit
5752 case TARGET_NR_ulimit
:
5755 #ifdef TARGET_NR_oldolduname
5756 case TARGET_NR_oldolduname
:
5759 case TARGET_NR_umask
:
5760 ret
= get_errno(umask(arg1
));
5762 case TARGET_NR_chroot
:
5763 if (!(p
= lock_user_string(arg1
)))
5765 ret
= get_errno(chroot(p
));
5766 unlock_user(p
, arg1
, 0);
5768 case TARGET_NR_ustat
:
5770 case TARGET_NR_dup2
:
5771 ret
= get_errno(dup2(arg1
, arg2
));
5773 #if defined(CONFIG_DUP3) && defined(TARGET_NR_dup3)
5774 case TARGET_NR_dup3
:
5775 ret
= get_errno(dup3(arg1
, arg2
, arg3
));
5778 #ifdef TARGET_NR_getppid /* not on alpha */
5779 case TARGET_NR_getppid
:
5780 ret
= get_errno(getppid());
5783 case TARGET_NR_getpgrp
:
5784 ret
= get_errno(getpgrp());
5786 case TARGET_NR_setsid
:
5787 ret
= get_errno(setsid());
5789 #ifdef TARGET_NR_sigaction
5790 case TARGET_NR_sigaction
:
5792 #if defined(TARGET_ALPHA)
5793 struct target_sigaction act
, oact
, *pact
= 0;
5794 struct target_old_sigaction
*old_act
;
5796 if (!lock_user_struct(VERIFY_READ
, old_act
, arg2
, 1))
5798 act
._sa_handler
= old_act
->_sa_handler
;
5799 target_siginitset(&act
.sa_mask
, old_act
->sa_mask
);
5800 act
.sa_flags
= old_act
->sa_flags
;
5801 act
.sa_restorer
= 0;
5802 unlock_user_struct(old_act
, arg2
, 0);
5805 ret
= get_errno(do_sigaction(arg1
, pact
, &oact
));
5806 if (!is_error(ret
) && arg3
) {
5807 if (!lock_user_struct(VERIFY_WRITE
, old_act
, arg3
, 0))
5809 old_act
->_sa_handler
= oact
._sa_handler
;
5810 old_act
->sa_mask
= oact
.sa_mask
.sig
[0];
5811 old_act
->sa_flags
= oact
.sa_flags
;
5812 unlock_user_struct(old_act
, arg3
, 1);
5814 #elif defined(TARGET_MIPS)
5815 struct target_sigaction act
, oact
, *pact
, *old_act
;
5818 if (!lock_user_struct(VERIFY_READ
, old_act
, arg2
, 1))
5820 act
._sa_handler
= old_act
->_sa_handler
;
5821 target_siginitset(&act
.sa_mask
, old_act
->sa_mask
.sig
[0]);
5822 act
.sa_flags
= old_act
->sa_flags
;
5823 unlock_user_struct(old_act
, arg2
, 0);
5829 ret
= get_errno(do_sigaction(arg1
, pact
, &oact
));
5831 if (!is_error(ret
) && arg3
) {
5832 if (!lock_user_struct(VERIFY_WRITE
, old_act
, arg3
, 0))
5834 old_act
->_sa_handler
= oact
._sa_handler
;
5835 old_act
->sa_flags
= oact
.sa_flags
;
5836 old_act
->sa_mask
.sig
[0] = oact
.sa_mask
.sig
[0];
5837 old_act
->sa_mask
.sig
[1] = 0;
5838 old_act
->sa_mask
.sig
[2] = 0;
5839 old_act
->sa_mask
.sig
[3] = 0;
5840 unlock_user_struct(old_act
, arg3
, 1);
5843 struct target_old_sigaction
*old_act
;
5844 struct target_sigaction act
, oact
, *pact
;
5846 if (!lock_user_struct(VERIFY_READ
, old_act
, arg2
, 1))
5848 act
._sa_handler
= old_act
->_sa_handler
;
5849 target_siginitset(&act
.sa_mask
, old_act
->sa_mask
);
5850 act
.sa_flags
= old_act
->sa_flags
;
5851 act
.sa_restorer
= old_act
->sa_restorer
;
5852 unlock_user_struct(old_act
, arg2
, 0);
5857 ret
= get_errno(do_sigaction(arg1
, pact
, &oact
));
5858 if (!is_error(ret
) && arg3
) {
5859 if (!lock_user_struct(VERIFY_WRITE
, old_act
, arg3
, 0))
5861 old_act
->_sa_handler
= oact
._sa_handler
;
5862 old_act
->sa_mask
= oact
.sa_mask
.sig
[0];
5863 old_act
->sa_flags
= oact
.sa_flags
;
5864 old_act
->sa_restorer
= oact
.sa_restorer
;
5865 unlock_user_struct(old_act
, arg3
, 1);
5871 case TARGET_NR_rt_sigaction
:
5873 #if defined(TARGET_ALPHA)
5874 struct target_sigaction act
, oact
, *pact
= 0;
5875 struct target_rt_sigaction
*rt_act
;
5876 /* ??? arg4 == sizeof(sigset_t). */
5878 if (!lock_user_struct(VERIFY_READ
, rt_act
, arg2
, 1))
5880 act
._sa_handler
= rt_act
->_sa_handler
;
5881 act
.sa_mask
= rt_act
->sa_mask
;
5882 act
.sa_flags
= rt_act
->sa_flags
;
5883 act
.sa_restorer
= arg5
;
5884 unlock_user_struct(rt_act
, arg2
, 0);
5887 ret
= get_errno(do_sigaction(arg1
, pact
, &oact
));
5888 if (!is_error(ret
) && arg3
) {
5889 if (!lock_user_struct(VERIFY_WRITE
, rt_act
, arg3
, 0))
5891 rt_act
->_sa_handler
= oact
._sa_handler
;
5892 rt_act
->sa_mask
= oact
.sa_mask
;
5893 rt_act
->sa_flags
= oact
.sa_flags
;
5894 unlock_user_struct(rt_act
, arg3
, 1);
5897 struct target_sigaction
*act
;
5898 struct target_sigaction
*oact
;
5901 if (!lock_user_struct(VERIFY_READ
, act
, arg2
, 1))
5906 if (!lock_user_struct(VERIFY_WRITE
, oact
, arg3
, 0)) {
5907 ret
= -TARGET_EFAULT
;
5908 goto rt_sigaction_fail
;
5912 ret
= get_errno(do_sigaction(arg1
, act
, oact
));
5915 unlock_user_struct(act
, arg2
, 0);
5917 unlock_user_struct(oact
, arg3
, 1);
5921 #ifdef TARGET_NR_sgetmask /* not on alpha */
5922 case TARGET_NR_sgetmask
:
5925 abi_ulong target_set
;
5926 sigprocmask(0, NULL
, &cur_set
);
5927 host_to_target_old_sigset(&target_set
, &cur_set
);
5932 #ifdef TARGET_NR_ssetmask /* not on alpha */
5933 case TARGET_NR_ssetmask
:
5935 sigset_t set
, oset
, cur_set
;
5936 abi_ulong target_set
= arg1
;
5937 sigprocmask(0, NULL
, &cur_set
);
5938 target_to_host_old_sigset(&set
, &target_set
);
5939 sigorset(&set
, &set
, &cur_set
);
5940 sigprocmask(SIG_SETMASK
, &set
, &oset
);
5941 host_to_target_old_sigset(&target_set
, &oset
);
5946 #ifdef TARGET_NR_sigprocmask
5947 case TARGET_NR_sigprocmask
:
5949 #if defined(TARGET_ALPHA)
5950 sigset_t set
, oldset
;
5955 case TARGET_SIG_BLOCK
:
5958 case TARGET_SIG_UNBLOCK
:
5961 case TARGET_SIG_SETMASK
:
5965 ret
= -TARGET_EINVAL
;
5969 target_to_host_old_sigset(&set
, &mask
);
5971 ret
= get_errno(sigprocmask(how
, &set
, &oldset
));
5972 if (!is_error(ret
)) {
5973 host_to_target_old_sigset(&mask
, &oldset
);
5975 ((CPUAlphaState
*)cpu_env
)->ir
[IR_V0
] = 0; /* force no error */
5978 sigset_t set
, oldset
, *set_ptr
;
5983 case TARGET_SIG_BLOCK
:
5986 case TARGET_SIG_UNBLOCK
:
5989 case TARGET_SIG_SETMASK
:
5993 ret
= -TARGET_EINVAL
;
5996 if (!(p
= lock_user(VERIFY_READ
, arg2
, sizeof(target_sigset_t
), 1)))
5998 target_to_host_old_sigset(&set
, p
);
5999 unlock_user(p
, arg2
, 0);
6005 ret
= get_errno(sigprocmask(how
, set_ptr
, &oldset
));
6006 if (!is_error(ret
) && arg3
) {
6007 if (!(p
= lock_user(VERIFY_WRITE
, arg3
, sizeof(target_sigset_t
), 0)))
6009 host_to_target_old_sigset(p
, &oldset
);
6010 unlock_user(p
, arg3
, sizeof(target_sigset_t
));
6016 case TARGET_NR_rt_sigprocmask
:
6019 sigset_t set
, oldset
, *set_ptr
;
6023 case TARGET_SIG_BLOCK
:
6026 case TARGET_SIG_UNBLOCK
:
6029 case TARGET_SIG_SETMASK
:
6033 ret
= -TARGET_EINVAL
;
6036 if (!(p
= lock_user(VERIFY_READ
, arg2
, sizeof(target_sigset_t
), 1)))
6038 target_to_host_sigset(&set
, p
);
6039 unlock_user(p
, arg2
, 0);
6045 ret
= get_errno(sigprocmask(how
, set_ptr
, &oldset
));
6046 if (!is_error(ret
) && arg3
) {
6047 if (!(p
= lock_user(VERIFY_WRITE
, arg3
, sizeof(target_sigset_t
), 0)))
6049 host_to_target_sigset(p
, &oldset
);
6050 unlock_user(p
, arg3
, sizeof(target_sigset_t
));
6054 #ifdef TARGET_NR_sigpending
6055 case TARGET_NR_sigpending
:
6058 ret
= get_errno(sigpending(&set
));
6059 if (!is_error(ret
)) {
6060 if (!(p
= lock_user(VERIFY_WRITE
, arg1
, sizeof(target_sigset_t
), 0)))
6062 host_to_target_old_sigset(p
, &set
);
6063 unlock_user(p
, arg1
, sizeof(target_sigset_t
));
6068 case TARGET_NR_rt_sigpending
:
6071 ret
= get_errno(sigpending(&set
));
6072 if (!is_error(ret
)) {
6073 if (!(p
= lock_user(VERIFY_WRITE
, arg1
, sizeof(target_sigset_t
), 0)))
6075 host_to_target_sigset(p
, &set
);
6076 unlock_user(p
, arg1
, sizeof(target_sigset_t
));
6080 #ifdef TARGET_NR_sigsuspend
6081 case TARGET_NR_sigsuspend
:
6084 #if defined(TARGET_ALPHA)
6085 abi_ulong mask
= arg1
;
6086 target_to_host_old_sigset(&set
, &mask
);
6088 if (!(p
= lock_user(VERIFY_READ
, arg1
, sizeof(target_sigset_t
), 1)))
6090 target_to_host_old_sigset(&set
, p
);
6091 unlock_user(p
, arg1
, 0);
6093 ret
= get_errno(sigsuspend(&set
));
6097 case TARGET_NR_rt_sigsuspend
:
6100 if (!(p
= lock_user(VERIFY_READ
, arg1
, sizeof(target_sigset_t
), 1)))
6102 target_to_host_sigset(&set
, p
);
6103 unlock_user(p
, arg1
, 0);
6104 ret
= get_errno(sigsuspend(&set
));
6107 case TARGET_NR_rt_sigtimedwait
:
6110 struct timespec uts
, *puts
;
6113 if (!(p
= lock_user(VERIFY_READ
, arg1
, sizeof(target_sigset_t
), 1)))
6115 target_to_host_sigset(&set
, p
);
6116 unlock_user(p
, arg1
, 0);
6119 target_to_host_timespec(puts
, arg3
);
6123 ret
= get_errno(sigtimedwait(&set
, &uinfo
, puts
));
6124 if (!is_error(ret
) && arg2
) {
6125 if (!(p
= lock_user(VERIFY_WRITE
, arg2
, sizeof(target_siginfo_t
), 0)))
6127 host_to_target_siginfo(p
, &uinfo
);
6128 unlock_user(p
, arg2
, sizeof(target_siginfo_t
));
6132 case TARGET_NR_rt_sigqueueinfo
:
6135 if (!(p
= lock_user(VERIFY_READ
, arg3
, sizeof(target_sigset_t
), 1)))
6137 target_to_host_siginfo(&uinfo
, p
);
6138 unlock_user(p
, arg1
, 0);
6139 ret
= get_errno(sys_rt_sigqueueinfo(arg1
, arg2
, &uinfo
));
6142 #ifdef TARGET_NR_sigreturn
6143 case TARGET_NR_sigreturn
:
6144 /* NOTE: ret is eax, so not transcoding must be done */
6145 ret
= do_sigreturn(cpu_env
);
6148 case TARGET_NR_rt_sigreturn
:
6149 /* NOTE: ret is eax, so not transcoding must be done */
6150 ret
= do_rt_sigreturn(cpu_env
);
6152 case TARGET_NR_sethostname
:
6153 if (!(p
= lock_user_string(arg1
)))
6155 ret
= get_errno(sethostname(p
, arg2
));
6156 unlock_user(p
, arg1
, 0);
6158 case TARGET_NR_setrlimit
:
6160 int resource
= target_to_host_resource(arg1
);
6161 struct target_rlimit
*target_rlim
;
6163 if (!lock_user_struct(VERIFY_READ
, target_rlim
, arg2
, 1))
6165 rlim
.rlim_cur
= target_to_host_rlim(target_rlim
->rlim_cur
);
6166 rlim
.rlim_max
= target_to_host_rlim(target_rlim
->rlim_max
);
6167 unlock_user_struct(target_rlim
, arg2
, 0);
6168 ret
= get_errno(setrlimit(resource
, &rlim
));
6171 case TARGET_NR_getrlimit
:
6173 int resource
= target_to_host_resource(arg1
);
6174 struct target_rlimit
*target_rlim
;
6177 ret
= get_errno(getrlimit(resource
, &rlim
));
6178 if (!is_error(ret
)) {
6179 if (!lock_user_struct(VERIFY_WRITE
, target_rlim
, arg2
, 0))
6181 target_rlim
->rlim_cur
= host_to_target_rlim(rlim
.rlim_cur
);
6182 target_rlim
->rlim_max
= host_to_target_rlim(rlim
.rlim_max
);
6183 unlock_user_struct(target_rlim
, arg2
, 1);
6187 case TARGET_NR_getrusage
:
6189 struct rusage rusage
;
6190 ret
= get_errno(getrusage(arg1
, &rusage
));
6191 if (!is_error(ret
)) {
6192 host_to_target_rusage(arg2
, &rusage
);
6196 case TARGET_NR_gettimeofday
:
6199 ret
= get_errno(gettimeofday(&tv
, NULL
));
6200 if (!is_error(ret
)) {
6201 if (copy_to_user_timeval(arg1
, &tv
))
6206 case TARGET_NR_settimeofday
:
6209 if (copy_from_user_timeval(&tv
, arg1
))
6211 ret
= get_errno(settimeofday(&tv
, NULL
));
6214 #if defined(TARGET_NR_select)
6215 case TARGET_NR_select
:
6216 #if defined(TARGET_S390X) || defined(TARGET_ALPHA)
6217 ret
= do_select(arg1
, arg2
, arg3
, arg4
, arg5
);
6220 struct target_sel_arg_struct
*sel
;
6221 abi_ulong inp
, outp
, exp
, tvp
;
6224 if (!lock_user_struct(VERIFY_READ
, sel
, arg1
, 1))
6226 nsel
= tswapal(sel
->n
);
6227 inp
= tswapal(sel
->inp
);
6228 outp
= tswapal(sel
->outp
);
6229 exp
= tswapal(sel
->exp
);
6230 tvp
= tswapal(sel
->tvp
);
6231 unlock_user_struct(sel
, arg1
, 0);
6232 ret
= do_select(nsel
, inp
, outp
, exp
, tvp
);
6237 #ifdef TARGET_NR_pselect6
6238 case TARGET_NR_pselect6
:
6240 abi_long rfd_addr
, wfd_addr
, efd_addr
, n
, ts_addr
;
6241 fd_set rfds
, wfds
, efds
;
6242 fd_set
*rfds_ptr
, *wfds_ptr
, *efds_ptr
;
6243 struct timespec ts
, *ts_ptr
;
6246 * The 6th arg is actually two args smashed together,
6247 * so we cannot use the C library.
6255 abi_ulong arg_sigset
, arg_sigsize
, *arg7
;
6256 target_sigset_t
*target_sigset
;
6264 ret
= copy_from_user_fdset_ptr(&rfds
, &rfds_ptr
, rfd_addr
, n
);
6268 ret
= copy_from_user_fdset_ptr(&wfds
, &wfds_ptr
, wfd_addr
, n
);
6272 ret
= copy_from_user_fdset_ptr(&efds
, &efds_ptr
, efd_addr
, n
);
6278 * This takes a timespec, and not a timeval, so we cannot
6279 * use the do_select() helper ...
6282 if (target_to_host_timespec(&ts
, ts_addr
)) {
6290 /* Extract the two packed args for the sigset */
6293 sig
.size
= _NSIG
/ 8;
6295 arg7
= lock_user(VERIFY_READ
, arg6
, sizeof(*arg7
) * 2, 1);
6299 arg_sigset
= tswapal(arg7
[0]);
6300 arg_sigsize
= tswapal(arg7
[1]);
6301 unlock_user(arg7
, arg6
, 0);
6305 if (arg_sigsize
!= sizeof(*target_sigset
)) {
6306 /* Like the kernel, we enforce correct size sigsets */
6307 ret
= -TARGET_EINVAL
;
6310 target_sigset
= lock_user(VERIFY_READ
, arg_sigset
,
6311 sizeof(*target_sigset
), 1);
6312 if (!target_sigset
) {
6315 target_to_host_sigset(&set
, target_sigset
);
6316 unlock_user(target_sigset
, arg_sigset
, 0);
6324 ret
= get_errno(sys_pselect6(n
, rfds_ptr
, wfds_ptr
, efds_ptr
,
6327 if (!is_error(ret
)) {
6328 if (rfd_addr
&& copy_to_user_fdset(rfd_addr
, &rfds
, n
))
6330 if (wfd_addr
&& copy_to_user_fdset(wfd_addr
, &wfds
, n
))
6332 if (efd_addr
&& copy_to_user_fdset(efd_addr
, &efds
, n
))
6335 if (ts_addr
&& host_to_target_timespec(ts_addr
, &ts
))
6341 case TARGET_NR_symlink
:
6344 p
= lock_user_string(arg1
);
6345 p2
= lock_user_string(arg2
);
6347 ret
= -TARGET_EFAULT
;
6349 ret
= get_errno(symlink(p
, p2
));
6350 unlock_user(p2
, arg2
, 0);
6351 unlock_user(p
, arg1
, 0);
6354 #if defined(TARGET_NR_symlinkat)
6355 case TARGET_NR_symlinkat
:
6358 p
= lock_user_string(arg1
);
6359 p2
= lock_user_string(arg3
);
6361 ret
= -TARGET_EFAULT
;
6363 ret
= get_errno(symlinkat(p
, arg2
, p2
));
6364 unlock_user(p2
, arg3
, 0);
6365 unlock_user(p
, arg1
, 0);
6369 #ifdef TARGET_NR_oldlstat
6370 case TARGET_NR_oldlstat
:
6373 case TARGET_NR_readlink
:
6376 p
= lock_user_string(arg1
);
6377 p2
= lock_user(VERIFY_WRITE
, arg2
, arg3
, 0);
6379 ret
= -TARGET_EFAULT
;
6380 } else if (is_proc_myself((const char *)p
, "exe")) {
6381 char real
[PATH_MAX
], *temp
;
6382 temp
= realpath(exec_path
, real
);
6383 ret
= temp
== NULL
? get_errno(-1) : strlen(real
) ;
6384 snprintf((char *)p2
, arg3
, "%s", real
);
6386 ret
= get_errno(readlink(path(p
), p2
, arg3
));
6388 unlock_user(p2
, arg2
, ret
);
6389 unlock_user(p
, arg1
, 0);
6392 #if defined(TARGET_NR_readlinkat)
6393 case TARGET_NR_readlinkat
:
6396 p
= lock_user_string(arg2
);
6397 p2
= lock_user(VERIFY_WRITE
, arg3
, arg4
, 0);
6399 ret
= -TARGET_EFAULT
;
6400 } else if (is_proc_myself((const char *)p
, "exe")) {
6401 char real
[PATH_MAX
], *temp
;
6402 temp
= realpath(exec_path
, real
);
6403 ret
= temp
== NULL
? get_errno(-1) : strlen(real
) ;
6404 snprintf((char *)p2
, arg4
, "%s", real
);
6406 ret
= get_errno(readlinkat(arg1
, path(p
), p2
, arg4
));
6408 unlock_user(p2
, arg3
, ret
);
6409 unlock_user(p
, arg2
, 0);
6413 #ifdef TARGET_NR_uselib
6414 case TARGET_NR_uselib
:
6417 #ifdef TARGET_NR_swapon
6418 case TARGET_NR_swapon
:
6419 if (!(p
= lock_user_string(arg1
)))
6421 ret
= get_errno(swapon(p
, arg2
));
6422 unlock_user(p
, arg1
, 0);
6425 case TARGET_NR_reboot
:
6426 if (arg3
== LINUX_REBOOT_CMD_RESTART2
) {
6427 /* arg4 must be ignored in all other cases */
6428 p
= lock_user_string(arg4
);
6432 ret
= get_errno(reboot(arg1
, arg2
, arg3
, p
));
6433 unlock_user(p
, arg4
, 0);
6435 ret
= get_errno(reboot(arg1
, arg2
, arg3
, NULL
));
6438 #ifdef TARGET_NR_readdir
6439 case TARGET_NR_readdir
:
6442 #ifdef TARGET_NR_mmap
6443 case TARGET_NR_mmap
:
6444 #if (defined(TARGET_I386) && defined(TARGET_ABI32)) || \
6445 (defined(TARGET_ARM) && defined(TARGET_ABI32)) || \
6446 defined(TARGET_M68K) || defined(TARGET_CRIS) || defined(TARGET_MICROBLAZE) \
6447 || defined(TARGET_S390X)
6450 abi_ulong v1
, v2
, v3
, v4
, v5
, v6
;
6451 if (!(v
= lock_user(VERIFY_READ
, arg1
, 6 * sizeof(abi_ulong
), 1)))
6459 unlock_user(v
, arg1
, 0);
6460 ret
= get_errno(target_mmap(v1
, v2
, v3
,
6461 target_to_host_bitmask(v4
, mmap_flags_tbl
),
6465 ret
= get_errno(target_mmap(arg1
, arg2
, arg3
,
6466 target_to_host_bitmask(arg4
, mmap_flags_tbl
),
6472 #ifdef TARGET_NR_mmap2
6473 case TARGET_NR_mmap2
:
6475 #define MMAP_SHIFT 12
6477 ret
= get_errno(target_mmap(arg1
, arg2
, arg3
,
6478 target_to_host_bitmask(arg4
, mmap_flags_tbl
),
6480 arg6
<< MMAP_SHIFT
));
6483 case TARGET_NR_munmap
:
6484 ret
= get_errno(target_munmap(arg1
, arg2
));
6486 case TARGET_NR_mprotect
:
6488 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
6489 /* Special hack to detect libc making the stack executable. */
6490 if ((arg3
& PROT_GROWSDOWN
)
6491 && arg1
>= ts
->info
->stack_limit
6492 && arg1
<= ts
->info
->start_stack
) {
6493 arg3
&= ~PROT_GROWSDOWN
;
6494 arg2
= arg2
+ arg1
- ts
->info
->stack_limit
;
6495 arg1
= ts
->info
->stack_limit
;
6498 ret
= get_errno(target_mprotect(arg1
, arg2
, arg3
));
6500 #ifdef TARGET_NR_mremap
6501 case TARGET_NR_mremap
:
6502 ret
= get_errno(target_mremap(arg1
, arg2
, arg3
, arg4
, arg5
));
6505 /* ??? msync/mlock/munlock are broken for softmmu. */
6506 #ifdef TARGET_NR_msync
6507 case TARGET_NR_msync
:
6508 ret
= get_errno(msync(g2h(arg1
), arg2
, arg3
));
6511 #ifdef TARGET_NR_mlock
6512 case TARGET_NR_mlock
:
6513 ret
= get_errno(mlock(g2h(arg1
), arg2
));
6516 #ifdef TARGET_NR_munlock
6517 case TARGET_NR_munlock
:
6518 ret
= get_errno(munlock(g2h(arg1
), arg2
));
6521 #ifdef TARGET_NR_mlockall
6522 case TARGET_NR_mlockall
:
6523 ret
= get_errno(mlockall(arg1
));
6526 #ifdef TARGET_NR_munlockall
6527 case TARGET_NR_munlockall
:
6528 ret
= get_errno(munlockall());
6531 case TARGET_NR_truncate
:
6532 if (!(p
= lock_user_string(arg1
)))
6534 ret
= get_errno(truncate(p
, arg2
));
6535 unlock_user(p
, arg1
, 0);
6537 case TARGET_NR_ftruncate
:
6538 ret
= get_errno(ftruncate(arg1
, arg2
));
6540 case TARGET_NR_fchmod
:
6541 ret
= get_errno(fchmod(arg1
, arg2
));
6543 #if defined(TARGET_NR_fchmodat)
6544 case TARGET_NR_fchmodat
:
6545 if (!(p
= lock_user_string(arg2
)))
6547 ret
= get_errno(fchmodat(arg1
, p
, arg3
, 0));
6548 unlock_user(p
, arg2
, 0);
6551 case TARGET_NR_getpriority
:
6552 /* Note that negative values are valid for getpriority, so we must
6553 differentiate based on errno settings. */
6555 ret
= getpriority(arg1
, arg2
);
6556 if (ret
== -1 && errno
!= 0) {
6557 ret
= -host_to_target_errno(errno
);
6561 /* Return value is the unbiased priority. Signal no error. */
6562 ((CPUAlphaState
*)cpu_env
)->ir
[IR_V0
] = 0;
6564 /* Return value is a biased priority to avoid negative numbers. */
6568 case TARGET_NR_setpriority
:
6569 ret
= get_errno(setpriority(arg1
, arg2
, arg3
));
6571 #ifdef TARGET_NR_profil
6572 case TARGET_NR_profil
:
6575 case TARGET_NR_statfs
:
6576 if (!(p
= lock_user_string(arg1
)))
6578 ret
= get_errno(statfs(path(p
), &stfs
));
6579 unlock_user(p
, arg1
, 0);
6581 if (!is_error(ret
)) {
6582 struct target_statfs
*target_stfs
;
6584 if (!lock_user_struct(VERIFY_WRITE
, target_stfs
, arg2
, 0))
6586 __put_user(stfs
.f_type
, &target_stfs
->f_type
);
6587 __put_user(stfs
.f_bsize
, &target_stfs
->f_bsize
);
6588 __put_user(stfs
.f_blocks
, &target_stfs
->f_blocks
);
6589 __put_user(stfs
.f_bfree
, &target_stfs
->f_bfree
);
6590 __put_user(stfs
.f_bavail
, &target_stfs
->f_bavail
);
6591 __put_user(stfs
.f_files
, &target_stfs
->f_files
);
6592 __put_user(stfs
.f_ffree
, &target_stfs
->f_ffree
);
6593 __put_user(stfs
.f_fsid
.__val
[0], &target_stfs
->f_fsid
.val
[0]);
6594 __put_user(stfs
.f_fsid
.__val
[1], &target_stfs
->f_fsid
.val
[1]);
6595 __put_user(stfs
.f_namelen
, &target_stfs
->f_namelen
);
6596 __put_user(stfs
.f_frsize
, &target_stfs
->f_frsize
);
6597 memset(target_stfs
->f_spare
, 0, sizeof(target_stfs
->f_spare
));
6598 unlock_user_struct(target_stfs
, arg2
, 1);
6601 case TARGET_NR_fstatfs
:
6602 ret
= get_errno(fstatfs(arg1
, &stfs
));
6603 goto convert_statfs
;
6604 #ifdef TARGET_NR_statfs64
6605 case TARGET_NR_statfs64
:
6606 if (!(p
= lock_user_string(arg1
)))
6608 ret
= get_errno(statfs(path(p
), &stfs
));
6609 unlock_user(p
, arg1
, 0);
6611 if (!is_error(ret
)) {
6612 struct target_statfs64
*target_stfs
;
6614 if (!lock_user_struct(VERIFY_WRITE
, target_stfs
, arg3
, 0))
6616 __put_user(stfs
.f_type
, &target_stfs
->f_type
);
6617 __put_user(stfs
.f_bsize
, &target_stfs
->f_bsize
);
6618 __put_user(stfs
.f_blocks
, &target_stfs
->f_blocks
);
6619 __put_user(stfs
.f_bfree
, &target_stfs
->f_bfree
);
6620 __put_user(stfs
.f_bavail
, &target_stfs
->f_bavail
);
6621 __put_user(stfs
.f_files
, &target_stfs
->f_files
);
6622 __put_user(stfs
.f_ffree
, &target_stfs
->f_ffree
);
6623 __put_user(stfs
.f_fsid
.__val
[0], &target_stfs
->f_fsid
.val
[0]);
6624 __put_user(stfs
.f_fsid
.__val
[1], &target_stfs
->f_fsid
.val
[1]);
6625 __put_user(stfs
.f_namelen
, &target_stfs
->f_namelen
);
6626 __put_user(stfs
.f_frsize
, &target_stfs
->f_frsize
);
6627 memset(target_stfs
->f_spare
, 0, sizeof(target_stfs
->f_spare
));
6628 unlock_user_struct(target_stfs
, arg3
, 1);
6631 case TARGET_NR_fstatfs64
:
6632 ret
= get_errno(fstatfs(arg1
, &stfs
));
6633 goto convert_statfs64
;
6635 #ifdef TARGET_NR_ioperm
6636 case TARGET_NR_ioperm
:
6639 #ifdef TARGET_NR_socketcall
6640 case TARGET_NR_socketcall
:
6641 ret
= do_socketcall(arg1
, arg2
);
6644 #ifdef TARGET_NR_accept
6645 case TARGET_NR_accept
:
6646 ret
= do_accept4(arg1
, arg2
, arg3
, 0);
6649 #ifdef TARGET_NR_accept4
6650 case TARGET_NR_accept4
:
6651 #ifdef CONFIG_ACCEPT4
6652 ret
= do_accept4(arg1
, arg2
, arg3
, arg4
);
6658 #ifdef TARGET_NR_bind
6659 case TARGET_NR_bind
:
6660 ret
= do_bind(arg1
, arg2
, arg3
);
6663 #ifdef TARGET_NR_connect
6664 case TARGET_NR_connect
:
6665 ret
= do_connect(arg1
, arg2
, arg3
);
6668 #ifdef TARGET_NR_getpeername
6669 case TARGET_NR_getpeername
:
6670 ret
= do_getpeername(arg1
, arg2
, arg3
);
6673 #ifdef TARGET_NR_getsockname
6674 case TARGET_NR_getsockname
:
6675 ret
= do_getsockname(arg1
, arg2
, arg3
);
6678 #ifdef TARGET_NR_getsockopt
6679 case TARGET_NR_getsockopt
:
6680 ret
= do_getsockopt(arg1
, arg2
, arg3
, arg4
, arg5
);
6683 #ifdef TARGET_NR_listen
6684 case TARGET_NR_listen
:
6685 ret
= get_errno(listen(arg1
, arg2
));
6688 #ifdef TARGET_NR_recv
6689 case TARGET_NR_recv
:
6690 ret
= do_recvfrom(arg1
, arg2
, arg3
, arg4
, 0, 0);
6693 #ifdef TARGET_NR_recvfrom
6694 case TARGET_NR_recvfrom
:
6695 ret
= do_recvfrom(arg1
, arg2
, arg3
, arg4
, arg5
, arg6
);
6698 #ifdef TARGET_NR_recvmsg
6699 case TARGET_NR_recvmsg
:
6700 ret
= do_sendrecvmsg(arg1
, arg2
, arg3
, 0);
6703 #ifdef TARGET_NR_send
6704 case TARGET_NR_send
:
6705 ret
= do_sendto(arg1
, arg2
, arg3
, arg4
, 0, 0);
6708 #ifdef TARGET_NR_sendmsg
6709 case TARGET_NR_sendmsg
:
6710 ret
= do_sendrecvmsg(arg1
, arg2
, arg3
, 1);
6713 #ifdef TARGET_NR_sendto
6714 case TARGET_NR_sendto
:
6715 ret
= do_sendto(arg1
, arg2
, arg3
, arg4
, arg5
, arg6
);
6718 #ifdef TARGET_NR_shutdown
6719 case TARGET_NR_shutdown
:
6720 ret
= get_errno(shutdown(arg1
, arg2
));
6723 #ifdef TARGET_NR_socket
6724 case TARGET_NR_socket
:
6725 ret
= do_socket(arg1
, arg2
, arg3
);
6728 #ifdef TARGET_NR_socketpair
6729 case TARGET_NR_socketpair
:
6730 ret
= do_socketpair(arg1
, arg2
, arg3
, arg4
);
6733 #ifdef TARGET_NR_setsockopt
6734 case TARGET_NR_setsockopt
:
6735 ret
= do_setsockopt(arg1
, arg2
, arg3
, arg4
, (socklen_t
) arg5
);
6739 case TARGET_NR_syslog
:
6740 if (!(p
= lock_user_string(arg2
)))
6742 ret
= get_errno(sys_syslog((int)arg1
, p
, (int)arg3
));
6743 unlock_user(p
, arg2
, 0);
6746 case TARGET_NR_setitimer
:
6748 struct itimerval value
, ovalue
, *pvalue
;
6752 if (copy_from_user_timeval(&pvalue
->it_interval
, arg2
)
6753 || copy_from_user_timeval(&pvalue
->it_value
,
6754 arg2
+ sizeof(struct target_timeval
)))
6759 ret
= get_errno(setitimer(arg1
, pvalue
, &ovalue
));
6760 if (!is_error(ret
) && arg3
) {
6761 if (copy_to_user_timeval(arg3
,
6762 &ovalue
.it_interval
)
6763 || copy_to_user_timeval(arg3
+ sizeof(struct target_timeval
),
6769 case TARGET_NR_getitimer
:
6771 struct itimerval value
;
6773 ret
= get_errno(getitimer(arg1
, &value
));
6774 if (!is_error(ret
) && arg2
) {
6775 if (copy_to_user_timeval(arg2
,
6777 || copy_to_user_timeval(arg2
+ sizeof(struct target_timeval
),
6783 case TARGET_NR_stat
:
6784 if (!(p
= lock_user_string(arg1
)))
6786 ret
= get_errno(stat(path(p
), &st
));
6787 unlock_user(p
, arg1
, 0);
6789 case TARGET_NR_lstat
:
6790 if (!(p
= lock_user_string(arg1
)))
6792 ret
= get_errno(lstat(path(p
), &st
));
6793 unlock_user(p
, arg1
, 0);
6795 case TARGET_NR_fstat
:
6797 ret
= get_errno(fstat(arg1
, &st
));
6799 if (!is_error(ret
)) {
6800 struct target_stat
*target_st
;
6802 if (!lock_user_struct(VERIFY_WRITE
, target_st
, arg2
, 0))
6804 memset(target_st
, 0, sizeof(*target_st
));
6805 __put_user(st
.st_dev
, &target_st
->st_dev
);
6806 __put_user(st
.st_ino
, &target_st
->st_ino
);
6807 __put_user(st
.st_mode
, &target_st
->st_mode
);
6808 __put_user(st
.st_uid
, &target_st
->st_uid
);
6809 __put_user(st
.st_gid
, &target_st
->st_gid
);
6810 __put_user(st
.st_nlink
, &target_st
->st_nlink
);
6811 __put_user(st
.st_rdev
, &target_st
->st_rdev
);
6812 __put_user(st
.st_size
, &target_st
->st_size
);
6813 __put_user(st
.st_blksize
, &target_st
->st_blksize
);
6814 __put_user(st
.st_blocks
, &target_st
->st_blocks
);
6815 __put_user(st
.st_atime
, &target_st
->target_st_atime
);
6816 __put_user(st
.st_mtime
, &target_st
->target_st_mtime
);
6817 __put_user(st
.st_ctime
, &target_st
->target_st_ctime
);
6818 unlock_user_struct(target_st
, arg2
, 1);
6822 #ifdef TARGET_NR_olduname
6823 case TARGET_NR_olduname
:
6826 #ifdef TARGET_NR_iopl
6827 case TARGET_NR_iopl
:
6830 case TARGET_NR_vhangup
:
6831 ret
= get_errno(vhangup());
6833 #ifdef TARGET_NR_idle
6834 case TARGET_NR_idle
:
6837 #ifdef TARGET_NR_syscall
6838 case TARGET_NR_syscall
:
6839 ret
= do_syscall(cpu_env
, arg1
& 0xffff, arg2
, arg3
, arg4
, arg5
,
6840 arg6
, arg7
, arg8
, 0);
6843 case TARGET_NR_wait4
:
6846 abi_long status_ptr
= arg2
;
6847 struct rusage rusage
, *rusage_ptr
;
6848 abi_ulong target_rusage
= arg4
;
6850 rusage_ptr
= &rusage
;
6853 ret
= get_errno(wait4(arg1
, &status
, arg3
, rusage_ptr
));
6854 if (!is_error(ret
)) {
6855 if (status_ptr
&& ret
) {
6856 status
= host_to_target_waitstatus(status
);
6857 if (put_user_s32(status
, status_ptr
))
6861 host_to_target_rusage(target_rusage
, &rusage
);
6865 #ifdef TARGET_NR_swapoff
6866 case TARGET_NR_swapoff
:
6867 if (!(p
= lock_user_string(arg1
)))
6869 ret
= get_errno(swapoff(p
));
6870 unlock_user(p
, arg1
, 0);
6873 case TARGET_NR_sysinfo
:
6875 struct target_sysinfo
*target_value
;
6876 struct sysinfo value
;
6877 ret
= get_errno(sysinfo(&value
));
6878 if (!is_error(ret
) && arg1
)
6880 if (!lock_user_struct(VERIFY_WRITE
, target_value
, arg1
, 0))
6882 __put_user(value
.uptime
, &target_value
->uptime
);
6883 __put_user(value
.loads
[0], &target_value
->loads
[0]);
6884 __put_user(value
.loads
[1], &target_value
->loads
[1]);
6885 __put_user(value
.loads
[2], &target_value
->loads
[2]);
6886 __put_user(value
.totalram
, &target_value
->totalram
);
6887 __put_user(value
.freeram
, &target_value
->freeram
);
6888 __put_user(value
.sharedram
, &target_value
->sharedram
);
6889 __put_user(value
.bufferram
, &target_value
->bufferram
);
6890 __put_user(value
.totalswap
, &target_value
->totalswap
);
6891 __put_user(value
.freeswap
, &target_value
->freeswap
);
6892 __put_user(value
.procs
, &target_value
->procs
);
6893 __put_user(value
.totalhigh
, &target_value
->totalhigh
);
6894 __put_user(value
.freehigh
, &target_value
->freehigh
);
6895 __put_user(value
.mem_unit
, &target_value
->mem_unit
);
6896 unlock_user_struct(target_value
, arg1
, 1);
6900 #ifdef TARGET_NR_ipc
6902 ret
= do_ipc(arg1
, arg2
, arg3
, arg4
, arg5
, arg6
);
6905 #ifdef TARGET_NR_semget
6906 case TARGET_NR_semget
:
6907 ret
= get_errno(semget(arg1
, arg2
, arg3
));
6910 #ifdef TARGET_NR_semop
6911 case TARGET_NR_semop
:
6912 ret
= do_semop(arg1
, arg2
, arg3
);
6915 #ifdef TARGET_NR_semctl
6916 case TARGET_NR_semctl
:
6917 ret
= do_semctl(arg1
, arg2
, arg3
, (union target_semun
)(abi_ulong
)arg4
);
6920 #ifdef TARGET_NR_msgctl
6921 case TARGET_NR_msgctl
:
6922 ret
= do_msgctl(arg1
, arg2
, arg3
);
6925 #ifdef TARGET_NR_msgget
6926 case TARGET_NR_msgget
:
6927 ret
= get_errno(msgget(arg1
, arg2
));
6930 #ifdef TARGET_NR_msgrcv
6931 case TARGET_NR_msgrcv
:
6932 ret
= do_msgrcv(arg1
, arg2
, arg3
, arg4
, arg5
);
6935 #ifdef TARGET_NR_msgsnd
6936 case TARGET_NR_msgsnd
:
6937 ret
= do_msgsnd(arg1
, arg2
, arg3
, arg4
);
6940 #ifdef TARGET_NR_shmget
6941 case TARGET_NR_shmget
:
6942 ret
= get_errno(shmget(arg1
, arg2
, arg3
));
6945 #ifdef TARGET_NR_shmctl
6946 case TARGET_NR_shmctl
:
6947 ret
= do_shmctl(arg1
, arg2
, arg3
);
6950 #ifdef TARGET_NR_shmat
6951 case TARGET_NR_shmat
:
6952 ret
= do_shmat(arg1
, arg2
, arg3
);
6955 #ifdef TARGET_NR_shmdt
6956 case TARGET_NR_shmdt
:
6957 ret
= do_shmdt(arg1
);
6960 case TARGET_NR_fsync
:
6961 ret
= get_errno(fsync(arg1
));
6963 case TARGET_NR_clone
:
6964 /* Linux manages to have three different orderings for its
6965 * arguments to clone(); the BACKWARDS and BACKWARDS2 defines
6966 * match the kernel's CONFIG_CLONE_* settings.
6967 * Microblaze is further special in that it uses a sixth
6968 * implicit argument to clone for the TLS pointer.
6970 #if defined(TARGET_MICROBLAZE)
6971 ret
= get_errno(do_fork(cpu_env
, arg1
, arg2
, arg4
, arg6
, arg5
));
6972 #elif defined(TARGET_CLONE_BACKWARDS)
6973 ret
= get_errno(do_fork(cpu_env
, arg1
, arg2
, arg3
, arg4
, arg5
));
6974 #elif defined(TARGET_CLONE_BACKWARDS2)
6975 ret
= get_errno(do_fork(cpu_env
, arg2
, arg1
, arg3
, arg5
, arg4
));
6977 ret
= get_errno(do_fork(cpu_env
, arg1
, arg2
, arg3
, arg5
, arg4
));
6980 #ifdef __NR_exit_group
6981 /* new thread calls */
6982 case TARGET_NR_exit_group
:
6986 gdb_exit(cpu_env
, arg1
);
6987 ret
= get_errno(exit_group(arg1
));
6990 case TARGET_NR_setdomainname
:
6991 if (!(p
= lock_user_string(arg1
)))
6993 ret
= get_errno(setdomainname(p
, arg2
));
6994 unlock_user(p
, arg1
, 0);
6996 case TARGET_NR_uname
:
6997 /* no need to transcode because we use the linux syscall */
6999 struct new_utsname
* buf
;
7001 if (!lock_user_struct(VERIFY_WRITE
, buf
, arg1
, 0))
7003 ret
= get_errno(sys_uname(buf
));
7004 if (!is_error(ret
)) {
7005 /* Overrite the native machine name with whatever is being
7007 strcpy (buf
->machine
, cpu_to_uname_machine(cpu_env
));
7008 /* Allow the user to override the reported release. */
7009 if (qemu_uname_release
&& *qemu_uname_release
)
7010 strcpy (buf
->release
, qemu_uname_release
);
7012 unlock_user_struct(buf
, arg1
, 1);
7016 case TARGET_NR_modify_ldt
:
7017 ret
= do_modify_ldt(cpu_env
, arg1
, arg2
, arg3
);
7019 #if !defined(TARGET_X86_64)
7020 case TARGET_NR_vm86old
:
7022 case TARGET_NR_vm86
:
7023 ret
= do_vm86(cpu_env
, arg1
, arg2
);
7027 case TARGET_NR_adjtimex
:
7029 #ifdef TARGET_NR_create_module
7030 case TARGET_NR_create_module
:
7032 case TARGET_NR_init_module
:
7033 case TARGET_NR_delete_module
:
7034 #ifdef TARGET_NR_get_kernel_syms
7035 case TARGET_NR_get_kernel_syms
:
7038 case TARGET_NR_quotactl
:
7040 case TARGET_NR_getpgid
:
7041 ret
= get_errno(getpgid(arg1
));
7043 case TARGET_NR_fchdir
:
7044 ret
= get_errno(fchdir(arg1
));
7046 #ifdef TARGET_NR_bdflush /* not on x86_64 */
7047 case TARGET_NR_bdflush
:
7050 #ifdef TARGET_NR_sysfs
7051 case TARGET_NR_sysfs
:
7054 case TARGET_NR_personality
:
7055 ret
= get_errno(personality(arg1
));
7057 #ifdef TARGET_NR_afs_syscall
7058 case TARGET_NR_afs_syscall
:
7061 #ifdef TARGET_NR__llseek /* Not on alpha */
7062 case TARGET_NR__llseek
:
7065 #if !defined(__NR_llseek)
7066 res
= lseek(arg1
, ((uint64_t)arg2
<< 32) | arg3
, arg5
);
7068 ret
= get_errno(res
);
7073 ret
= get_errno(_llseek(arg1
, arg2
, arg3
, &res
, arg5
));
7075 if ((ret
== 0) && put_user_s64(res
, arg4
)) {
7081 case TARGET_NR_getdents
:
7082 #ifdef __NR_getdents
7083 #if TARGET_ABI_BITS == 32 && HOST_LONG_BITS == 64
7085 struct target_dirent
*target_dirp
;
7086 struct linux_dirent
*dirp
;
7087 abi_long count
= arg3
;
7089 dirp
= malloc(count
);
7091 ret
= -TARGET_ENOMEM
;
7095 ret
= get_errno(sys_getdents(arg1
, dirp
, count
));
7096 if (!is_error(ret
)) {
7097 struct linux_dirent
*de
;
7098 struct target_dirent
*tde
;
7100 int reclen
, treclen
;
7101 int count1
, tnamelen
;
7105 if (!(target_dirp
= lock_user(VERIFY_WRITE
, arg2
, count
, 0)))
7109 reclen
= de
->d_reclen
;
7110 tnamelen
= reclen
- offsetof(struct linux_dirent
, d_name
);
7111 assert(tnamelen
>= 0);
7112 treclen
= tnamelen
+ offsetof(struct target_dirent
, d_name
);
7113 assert(count1
+ treclen
<= count
);
7114 tde
->d_reclen
= tswap16(treclen
);
7115 tde
->d_ino
= tswapal(de
->d_ino
);
7116 tde
->d_off
= tswapal(de
->d_off
);
7117 memcpy(tde
->d_name
, de
->d_name
, tnamelen
);
7118 de
= (struct linux_dirent
*)((char *)de
+ reclen
);
7120 tde
= (struct target_dirent
*)((char *)tde
+ treclen
);
7124 unlock_user(target_dirp
, arg2
, ret
);
7130 struct linux_dirent
*dirp
;
7131 abi_long count
= arg3
;
7133 if (!(dirp
= lock_user(VERIFY_WRITE
, arg2
, count
, 0)))
7135 ret
= get_errno(sys_getdents(arg1
, dirp
, count
));
7136 if (!is_error(ret
)) {
7137 struct linux_dirent
*de
;
7142 reclen
= de
->d_reclen
;
7145 de
->d_reclen
= tswap16(reclen
);
7146 tswapls(&de
->d_ino
);
7147 tswapls(&de
->d_off
);
7148 de
= (struct linux_dirent
*)((char *)de
+ reclen
);
7152 unlock_user(dirp
, arg2
, ret
);
7156 /* Implement getdents in terms of getdents64 */
7158 struct linux_dirent64
*dirp
;
7159 abi_long count
= arg3
;
7161 dirp
= lock_user(VERIFY_WRITE
, arg2
, count
, 0);
7165 ret
= get_errno(sys_getdents64(arg1
, dirp
, count
));
7166 if (!is_error(ret
)) {
7167 /* Convert the dirent64 structs to target dirent. We do this
7168 * in-place, since we can guarantee that a target_dirent is no
7169 * larger than a dirent64; however this means we have to be
7170 * careful to read everything before writing in the new format.
7172 struct linux_dirent64
*de
;
7173 struct target_dirent
*tde
;
7178 tde
= (struct target_dirent
*)dirp
;
7180 int namelen
, treclen
;
7181 int reclen
= de
->d_reclen
;
7182 uint64_t ino
= de
->d_ino
;
7183 int64_t off
= de
->d_off
;
7184 uint8_t type
= de
->d_type
;
7186 namelen
= strlen(de
->d_name
);
7187 treclen
= offsetof(struct target_dirent
, d_name
)
7189 treclen
= QEMU_ALIGN_UP(treclen
, sizeof(abi_long
));
7191 memmove(tde
->d_name
, de
->d_name
, namelen
+ 1);
7192 tde
->d_ino
= tswapal(ino
);
7193 tde
->d_off
= tswapal(off
);
7194 tde
->d_reclen
= tswap16(treclen
);
7195 /* The target_dirent type is in what was formerly a padding
7196 * byte at the end of the structure:
7198 *(((char *)tde
) + treclen
- 1) = type
;
7200 de
= (struct linux_dirent64
*)((char *)de
+ reclen
);
7201 tde
= (struct target_dirent
*)((char *)tde
+ treclen
);
7207 unlock_user(dirp
, arg2
, ret
);
7211 #if defined(TARGET_NR_getdents64) && defined(__NR_getdents64)
7212 case TARGET_NR_getdents64
:
7214 struct linux_dirent64
*dirp
;
7215 abi_long count
= arg3
;
7216 if (!(dirp
= lock_user(VERIFY_WRITE
, arg2
, count
, 0)))
7218 ret
= get_errno(sys_getdents64(arg1
, dirp
, count
));
7219 if (!is_error(ret
)) {
7220 struct linux_dirent64
*de
;
7225 reclen
= de
->d_reclen
;
7228 de
->d_reclen
= tswap16(reclen
);
7229 tswap64s((uint64_t *)&de
->d_ino
);
7230 tswap64s((uint64_t *)&de
->d_off
);
7231 de
= (struct linux_dirent64
*)((char *)de
+ reclen
);
7235 unlock_user(dirp
, arg2
, ret
);
7238 #endif /* TARGET_NR_getdents64 */
7239 #if defined(TARGET_NR__newselect)
7240 case TARGET_NR__newselect
:
7241 ret
= do_select(arg1
, arg2
, arg3
, arg4
, arg5
);
7244 #if defined(TARGET_NR_poll) || defined(TARGET_NR_ppoll)
7245 # ifdef TARGET_NR_poll
7246 case TARGET_NR_poll
:
7248 # ifdef TARGET_NR_ppoll
7249 case TARGET_NR_ppoll
:
7252 struct target_pollfd
*target_pfd
;
7253 unsigned int nfds
= arg2
;
7258 target_pfd
= lock_user(VERIFY_WRITE
, arg1
, sizeof(struct target_pollfd
) * nfds
, 1);
7262 pfd
= alloca(sizeof(struct pollfd
) * nfds
);
7263 for(i
= 0; i
< nfds
; i
++) {
7264 pfd
[i
].fd
= tswap32(target_pfd
[i
].fd
);
7265 pfd
[i
].events
= tswap16(target_pfd
[i
].events
);
7268 # ifdef TARGET_NR_ppoll
7269 if (num
== TARGET_NR_ppoll
) {
7270 struct timespec _timeout_ts
, *timeout_ts
= &_timeout_ts
;
7271 target_sigset_t
*target_set
;
7272 sigset_t _set
, *set
= &_set
;
7275 if (target_to_host_timespec(timeout_ts
, arg3
)) {
7276 unlock_user(target_pfd
, arg1
, 0);
7284 target_set
= lock_user(VERIFY_READ
, arg4
, sizeof(target_sigset_t
), 1);
7286 unlock_user(target_pfd
, arg1
, 0);
7289 target_to_host_sigset(set
, target_set
);
7294 ret
= get_errno(sys_ppoll(pfd
, nfds
, timeout_ts
, set
, _NSIG
/8));
7296 if (!is_error(ret
) && arg3
) {
7297 host_to_target_timespec(arg3
, timeout_ts
);
7300 unlock_user(target_set
, arg4
, 0);
7304 ret
= get_errno(poll(pfd
, nfds
, timeout
));
7306 if (!is_error(ret
)) {
7307 for(i
= 0; i
< nfds
; i
++) {
7308 target_pfd
[i
].revents
= tswap16(pfd
[i
].revents
);
7311 unlock_user(target_pfd
, arg1
, sizeof(struct target_pollfd
) * nfds
);
7315 case TARGET_NR_flock
:
7316 /* NOTE: the flock constant seems to be the same for every
7318 ret
= get_errno(flock(arg1
, arg2
));
7320 case TARGET_NR_readv
:
7322 struct iovec
*vec
= lock_iovec(VERIFY_WRITE
, arg2
, arg3
, 0);
7324 ret
= get_errno(readv(arg1
, vec
, arg3
));
7325 unlock_iovec(vec
, arg2
, arg3
, 1);
7327 ret
= -host_to_target_errno(errno
);
7331 case TARGET_NR_writev
:
7333 struct iovec
*vec
= lock_iovec(VERIFY_READ
, arg2
, arg3
, 1);
7335 ret
= get_errno(writev(arg1
, vec
, arg3
));
7336 unlock_iovec(vec
, arg2
, arg3
, 0);
7338 ret
= -host_to_target_errno(errno
);
7342 case TARGET_NR_getsid
:
7343 ret
= get_errno(getsid(arg1
));
7345 #if defined(TARGET_NR_fdatasync) /* Not on alpha (osf_datasync ?) */
7346 case TARGET_NR_fdatasync
:
7347 ret
= get_errno(fdatasync(arg1
));
7350 case TARGET_NR__sysctl
:
7351 /* We don't implement this, but ENOTDIR is always a safe
7353 ret
= -TARGET_ENOTDIR
;
7355 case TARGET_NR_sched_getaffinity
:
7357 unsigned int mask_size
;
7358 unsigned long *mask
;
7361 * sched_getaffinity needs multiples of ulong, so need to take
7362 * care of mismatches between target ulong and host ulong sizes.
7364 if (arg2
& (sizeof(abi_ulong
) - 1)) {
7365 ret
= -TARGET_EINVAL
;
7368 mask_size
= (arg2
+ (sizeof(*mask
) - 1)) & ~(sizeof(*mask
) - 1);
7370 mask
= alloca(mask_size
);
7371 ret
= get_errno(sys_sched_getaffinity(arg1
, mask_size
, mask
));
7373 if (!is_error(ret
)) {
7374 if (copy_to_user(arg3
, mask
, ret
)) {
7380 case TARGET_NR_sched_setaffinity
:
7382 unsigned int mask_size
;
7383 unsigned long *mask
;
7386 * sched_setaffinity needs multiples of ulong, so need to take
7387 * care of mismatches between target ulong and host ulong sizes.
7389 if (arg2
& (sizeof(abi_ulong
) - 1)) {
7390 ret
= -TARGET_EINVAL
;
7393 mask_size
= (arg2
+ (sizeof(*mask
) - 1)) & ~(sizeof(*mask
) - 1);
7395 mask
= alloca(mask_size
);
7396 if (!lock_user_struct(VERIFY_READ
, p
, arg3
, 1)) {
7399 memcpy(mask
, p
, arg2
);
7400 unlock_user_struct(p
, arg2
, 0);
7402 ret
= get_errno(sys_sched_setaffinity(arg1
, mask_size
, mask
));
7405 case TARGET_NR_sched_setparam
:
7407 struct sched_param
*target_schp
;
7408 struct sched_param schp
;
7410 if (!lock_user_struct(VERIFY_READ
, target_schp
, arg2
, 1))
7412 schp
.sched_priority
= tswap32(target_schp
->sched_priority
);
7413 unlock_user_struct(target_schp
, arg2
, 0);
7414 ret
= get_errno(sched_setparam(arg1
, &schp
));
7417 case TARGET_NR_sched_getparam
:
7419 struct sched_param
*target_schp
;
7420 struct sched_param schp
;
7421 ret
= get_errno(sched_getparam(arg1
, &schp
));
7422 if (!is_error(ret
)) {
7423 if (!lock_user_struct(VERIFY_WRITE
, target_schp
, arg2
, 0))
7425 target_schp
->sched_priority
= tswap32(schp
.sched_priority
);
7426 unlock_user_struct(target_schp
, arg2
, 1);
7430 case TARGET_NR_sched_setscheduler
:
7432 struct sched_param
*target_schp
;
7433 struct sched_param schp
;
7434 if (!lock_user_struct(VERIFY_READ
, target_schp
, arg3
, 1))
7436 schp
.sched_priority
= tswap32(target_schp
->sched_priority
);
7437 unlock_user_struct(target_schp
, arg3
, 0);
7438 ret
= get_errno(sched_setscheduler(arg1
, arg2
, &schp
));
7441 case TARGET_NR_sched_getscheduler
:
7442 ret
= get_errno(sched_getscheduler(arg1
));
7444 case TARGET_NR_sched_yield
:
7445 ret
= get_errno(sched_yield());
7447 case TARGET_NR_sched_get_priority_max
:
7448 ret
= get_errno(sched_get_priority_max(arg1
));
7450 case TARGET_NR_sched_get_priority_min
:
7451 ret
= get_errno(sched_get_priority_min(arg1
));
7453 case TARGET_NR_sched_rr_get_interval
:
7456 ret
= get_errno(sched_rr_get_interval(arg1
, &ts
));
7457 if (!is_error(ret
)) {
7458 host_to_target_timespec(arg2
, &ts
);
7462 case TARGET_NR_nanosleep
:
7464 struct timespec req
, rem
;
7465 target_to_host_timespec(&req
, arg1
);
7466 ret
= get_errno(nanosleep(&req
, &rem
));
7467 if (is_error(ret
) && arg2
) {
7468 host_to_target_timespec(arg2
, &rem
);
7472 #ifdef TARGET_NR_query_module
7473 case TARGET_NR_query_module
:
7476 #ifdef TARGET_NR_nfsservctl
7477 case TARGET_NR_nfsservctl
:
7480 case TARGET_NR_prctl
:
7482 case PR_GET_PDEATHSIG
:
7485 ret
= get_errno(prctl(arg1
, &deathsig
, arg3
, arg4
, arg5
));
7486 if (!is_error(ret
) && arg2
7487 && put_user_ual(deathsig
, arg2
)) {
7495 void *name
= lock_user(VERIFY_WRITE
, arg2
, 16, 1);
7499 ret
= get_errno(prctl(arg1
, (unsigned long)name
,
7501 unlock_user(name
, arg2
, 16);
7506 void *name
= lock_user(VERIFY_READ
, arg2
, 16, 1);
7510 ret
= get_errno(prctl(arg1
, (unsigned long)name
,
7512 unlock_user(name
, arg2
, 0);
7517 /* Most prctl options have no pointer arguments */
7518 ret
= get_errno(prctl(arg1
, arg2
, arg3
, arg4
, arg5
));
7522 #ifdef TARGET_NR_arch_prctl
7523 case TARGET_NR_arch_prctl
:
7524 #if defined(TARGET_I386) && !defined(TARGET_ABI32)
7525 ret
= do_arch_prctl(cpu_env
, arg1
, arg2
);
7531 #ifdef TARGET_NR_pread64
7532 case TARGET_NR_pread64
:
7533 if (regpairs_aligned(cpu_env
)) {
7537 if (!(p
= lock_user(VERIFY_WRITE
, arg2
, arg3
, 0)))
7539 ret
= get_errno(pread64(arg1
, p
, arg3
, target_offset64(arg4
, arg5
)));
7540 unlock_user(p
, arg2
, ret
);
7542 case TARGET_NR_pwrite64
:
7543 if (regpairs_aligned(cpu_env
)) {
7547 if (!(p
= lock_user(VERIFY_READ
, arg2
, arg3
, 1)))
7549 ret
= get_errno(pwrite64(arg1
, p
, arg3
, target_offset64(arg4
, arg5
)));
7550 unlock_user(p
, arg2
, 0);
7553 case TARGET_NR_getcwd
:
7554 if (!(p
= lock_user(VERIFY_WRITE
, arg1
, arg2
, 0)))
7556 ret
= get_errno(sys_getcwd1(p
, arg2
));
7557 unlock_user(p
, arg1
, ret
);
7559 case TARGET_NR_capget
:
7561 case TARGET_NR_capset
:
7563 case TARGET_NR_sigaltstack
:
7564 #if defined(TARGET_I386) || defined(TARGET_ARM) || defined(TARGET_MIPS) || \
7565 defined(TARGET_SPARC) || defined(TARGET_PPC) || defined(TARGET_ALPHA) || \
7566 defined(TARGET_M68K) || defined(TARGET_S390X) || defined(TARGET_OPENRISC)
7567 ret
= do_sigaltstack(arg1
, arg2
, get_sp_from_cpustate((CPUArchState
*)cpu_env
));
7573 #ifdef CONFIG_SENDFILE
7574 case TARGET_NR_sendfile
:
7579 ret
= get_user_sal(off
, arg3
);
7580 if (is_error(ret
)) {
7585 ret
= get_errno(sendfile(arg1
, arg2
, offp
, arg4
));
7586 if (!is_error(ret
) && arg3
) {
7587 abi_long ret2
= put_user_sal(off
, arg3
);
7588 if (is_error(ret2
)) {
7594 #ifdef TARGET_NR_sendfile64
7595 case TARGET_NR_sendfile64
:
7600 ret
= get_user_s64(off
, arg3
);
7601 if (is_error(ret
)) {
7606 ret
= get_errno(sendfile(arg1
, arg2
, offp
, arg4
));
7607 if (!is_error(ret
) && arg3
) {
7608 abi_long ret2
= put_user_s64(off
, arg3
);
7609 if (is_error(ret2
)) {
7617 case TARGET_NR_sendfile
:
7618 #ifdef TARGET_NR_sendfile64
7619 case TARGET_NR_sendfile64
:
7624 #ifdef TARGET_NR_getpmsg
7625 case TARGET_NR_getpmsg
:
7628 #ifdef TARGET_NR_putpmsg
7629 case TARGET_NR_putpmsg
:
7632 #ifdef TARGET_NR_vfork
7633 case TARGET_NR_vfork
:
7634 ret
= get_errno(do_fork(cpu_env
, CLONE_VFORK
| CLONE_VM
| SIGCHLD
,
7638 #ifdef TARGET_NR_ugetrlimit
7639 case TARGET_NR_ugetrlimit
:
7642 int resource
= target_to_host_resource(arg1
);
7643 ret
= get_errno(getrlimit(resource
, &rlim
));
7644 if (!is_error(ret
)) {
7645 struct target_rlimit
*target_rlim
;
7646 if (!lock_user_struct(VERIFY_WRITE
, target_rlim
, arg2
, 0))
7648 target_rlim
->rlim_cur
= host_to_target_rlim(rlim
.rlim_cur
);
7649 target_rlim
->rlim_max
= host_to_target_rlim(rlim
.rlim_max
);
7650 unlock_user_struct(target_rlim
, arg2
, 1);
7655 #ifdef TARGET_NR_truncate64
7656 case TARGET_NR_truncate64
:
7657 if (!(p
= lock_user_string(arg1
)))
7659 ret
= target_truncate64(cpu_env
, p
, arg2
, arg3
, arg4
);
7660 unlock_user(p
, arg1
, 0);
7663 #ifdef TARGET_NR_ftruncate64
7664 case TARGET_NR_ftruncate64
:
7665 ret
= target_ftruncate64(cpu_env
, arg1
, arg2
, arg3
, arg4
);
7668 #ifdef TARGET_NR_stat64
7669 case TARGET_NR_stat64
:
7670 if (!(p
= lock_user_string(arg1
)))
7672 ret
= get_errno(stat(path(p
), &st
));
7673 unlock_user(p
, arg1
, 0);
7675 ret
= host_to_target_stat64(cpu_env
, arg2
, &st
);
7678 #ifdef TARGET_NR_lstat64
7679 case TARGET_NR_lstat64
:
7680 if (!(p
= lock_user_string(arg1
)))
7682 ret
= get_errno(lstat(path(p
), &st
));
7683 unlock_user(p
, arg1
, 0);
7685 ret
= host_to_target_stat64(cpu_env
, arg2
, &st
);
7688 #ifdef TARGET_NR_fstat64
7689 case TARGET_NR_fstat64
:
7690 ret
= get_errno(fstat(arg1
, &st
));
7692 ret
= host_to_target_stat64(cpu_env
, arg2
, &st
);
7695 #if (defined(TARGET_NR_fstatat64) || defined(TARGET_NR_newfstatat))
7696 #ifdef TARGET_NR_fstatat64
7697 case TARGET_NR_fstatat64
:
7699 #ifdef TARGET_NR_newfstatat
7700 case TARGET_NR_newfstatat
:
7702 if (!(p
= lock_user_string(arg2
)))
7704 ret
= get_errno(fstatat(arg1
, path(p
), &st
, arg4
));
7706 ret
= host_to_target_stat64(cpu_env
, arg3
, &st
);
7709 case TARGET_NR_lchown
:
7710 if (!(p
= lock_user_string(arg1
)))
7712 ret
= get_errno(lchown(p
, low2highuid(arg2
), low2highgid(arg3
)));
7713 unlock_user(p
, arg1
, 0);
7715 #ifdef TARGET_NR_getuid
7716 case TARGET_NR_getuid
:
7717 ret
= get_errno(high2lowuid(getuid()));
7720 #ifdef TARGET_NR_getgid
7721 case TARGET_NR_getgid
:
7722 ret
= get_errno(high2lowgid(getgid()));
7725 #ifdef TARGET_NR_geteuid
7726 case TARGET_NR_geteuid
:
7727 ret
= get_errno(high2lowuid(geteuid()));
7730 #ifdef TARGET_NR_getegid
7731 case TARGET_NR_getegid
:
7732 ret
= get_errno(high2lowgid(getegid()));
7735 case TARGET_NR_setreuid
:
7736 ret
= get_errno(setreuid(low2highuid(arg1
), low2highuid(arg2
)));
7738 case TARGET_NR_setregid
:
7739 ret
= get_errno(setregid(low2highgid(arg1
), low2highgid(arg2
)));
7741 case TARGET_NR_getgroups
:
7743 int gidsetsize
= arg1
;
7744 target_id
*target_grouplist
;
7748 grouplist
= alloca(gidsetsize
* sizeof(gid_t
));
7749 ret
= get_errno(getgroups(gidsetsize
, grouplist
));
7750 if (gidsetsize
== 0)
7752 if (!is_error(ret
)) {
7753 target_grouplist
= lock_user(VERIFY_WRITE
, arg2
, gidsetsize
* sizeof(target_id
), 0);
7754 if (!target_grouplist
)
7756 for(i
= 0;i
< ret
; i
++)
7757 target_grouplist
[i
] = tswapid(high2lowgid(grouplist
[i
]));
7758 unlock_user(target_grouplist
, arg2
, gidsetsize
* sizeof(target_id
));
7762 case TARGET_NR_setgroups
:
7764 int gidsetsize
= arg1
;
7765 target_id
*target_grouplist
;
7766 gid_t
*grouplist
= NULL
;
7769 grouplist
= alloca(gidsetsize
* sizeof(gid_t
));
7770 target_grouplist
= lock_user(VERIFY_READ
, arg2
, gidsetsize
* sizeof(target_id
), 1);
7771 if (!target_grouplist
) {
7772 ret
= -TARGET_EFAULT
;
7775 for (i
= 0; i
< gidsetsize
; i
++) {
7776 grouplist
[i
] = low2highgid(tswapid(target_grouplist
[i
]));
7778 unlock_user(target_grouplist
, arg2
, 0);
7780 ret
= get_errno(setgroups(gidsetsize
, grouplist
));
7783 case TARGET_NR_fchown
:
7784 ret
= get_errno(fchown(arg1
, low2highuid(arg2
), low2highgid(arg3
)));
7786 #if defined(TARGET_NR_fchownat)
7787 case TARGET_NR_fchownat
:
7788 if (!(p
= lock_user_string(arg2
)))
7790 ret
= get_errno(fchownat(arg1
, p
, low2highuid(arg3
),
7791 low2highgid(arg4
), arg5
));
7792 unlock_user(p
, arg2
, 0);
7795 #ifdef TARGET_NR_setresuid
7796 case TARGET_NR_setresuid
:
7797 ret
= get_errno(setresuid(low2highuid(arg1
),
7799 low2highuid(arg3
)));
7802 #ifdef TARGET_NR_getresuid
7803 case TARGET_NR_getresuid
:
7805 uid_t ruid
, euid
, suid
;
7806 ret
= get_errno(getresuid(&ruid
, &euid
, &suid
));
7807 if (!is_error(ret
)) {
7808 if (put_user_u16(high2lowuid(ruid
), arg1
)
7809 || put_user_u16(high2lowuid(euid
), arg2
)
7810 || put_user_u16(high2lowuid(suid
), arg3
))
7816 #ifdef TARGET_NR_getresgid
7817 case TARGET_NR_setresgid
:
7818 ret
= get_errno(setresgid(low2highgid(arg1
),
7820 low2highgid(arg3
)));
7823 #ifdef TARGET_NR_getresgid
7824 case TARGET_NR_getresgid
:
7826 gid_t rgid
, egid
, sgid
;
7827 ret
= get_errno(getresgid(&rgid
, &egid
, &sgid
));
7828 if (!is_error(ret
)) {
7829 if (put_user_u16(high2lowgid(rgid
), arg1
)
7830 || put_user_u16(high2lowgid(egid
), arg2
)
7831 || put_user_u16(high2lowgid(sgid
), arg3
))
7837 case TARGET_NR_chown
:
7838 if (!(p
= lock_user_string(arg1
)))
7840 ret
= get_errno(chown(p
, low2highuid(arg2
), low2highgid(arg3
)));
7841 unlock_user(p
, arg1
, 0);
7843 case TARGET_NR_setuid
:
7844 ret
= get_errno(setuid(low2highuid(arg1
)));
7846 case TARGET_NR_setgid
:
7847 ret
= get_errno(setgid(low2highgid(arg1
)));
7849 case TARGET_NR_setfsuid
:
7850 ret
= get_errno(setfsuid(arg1
));
7852 case TARGET_NR_setfsgid
:
7853 ret
= get_errno(setfsgid(arg1
));
7856 #ifdef TARGET_NR_lchown32
7857 case TARGET_NR_lchown32
:
7858 if (!(p
= lock_user_string(arg1
)))
7860 ret
= get_errno(lchown(p
, arg2
, arg3
));
7861 unlock_user(p
, arg1
, 0);
7864 #ifdef TARGET_NR_getuid32
7865 case TARGET_NR_getuid32
:
7866 ret
= get_errno(getuid());
7870 #if defined(TARGET_NR_getxuid) && defined(TARGET_ALPHA)
7871 /* Alpha specific */
7872 case TARGET_NR_getxuid
:
7876 ((CPUAlphaState
*)cpu_env
)->ir
[IR_A4
]=euid
;
7878 ret
= get_errno(getuid());
7881 #if defined(TARGET_NR_getxgid) && defined(TARGET_ALPHA)
7882 /* Alpha specific */
7883 case TARGET_NR_getxgid
:
7887 ((CPUAlphaState
*)cpu_env
)->ir
[IR_A4
]=egid
;
7889 ret
= get_errno(getgid());
7892 #if defined(TARGET_NR_osf_getsysinfo) && defined(TARGET_ALPHA)
7893 /* Alpha specific */
7894 case TARGET_NR_osf_getsysinfo
:
7895 ret
= -TARGET_EOPNOTSUPP
;
7897 case TARGET_GSI_IEEE_FP_CONTROL
:
7899 uint64_t swcr
, fpcr
= cpu_alpha_load_fpcr (cpu_env
);
7901 /* Copied from linux ieee_fpcr_to_swcr. */
7902 swcr
= (fpcr
>> 35) & SWCR_STATUS_MASK
;
7903 swcr
|= (fpcr
>> 36) & SWCR_MAP_DMZ
;
7904 swcr
|= (~fpcr
>> 48) & (SWCR_TRAP_ENABLE_INV
7905 | SWCR_TRAP_ENABLE_DZE
7906 | SWCR_TRAP_ENABLE_OVF
);
7907 swcr
|= (~fpcr
>> 57) & (SWCR_TRAP_ENABLE_UNF
7908 | SWCR_TRAP_ENABLE_INE
);
7909 swcr
|= (fpcr
>> 47) & SWCR_MAP_UMZ
;
7910 swcr
|= (~fpcr
>> 41) & SWCR_TRAP_ENABLE_DNO
;
7912 if (put_user_u64 (swcr
, arg2
))
7918 /* case GSI_IEEE_STATE_AT_SIGNAL:
7919 -- Not implemented in linux kernel.
7921 -- Retrieves current unaligned access state; not much used.
7923 -- Retrieves implver information; surely not used.
7925 -- Grabs a copy of the HWRPB; surely not used.
7930 #if defined(TARGET_NR_osf_setsysinfo) && defined(TARGET_ALPHA)
7931 /* Alpha specific */
7932 case TARGET_NR_osf_setsysinfo
:
7933 ret
= -TARGET_EOPNOTSUPP
;
7935 case TARGET_SSI_IEEE_FP_CONTROL
:
7937 uint64_t swcr
, fpcr
, orig_fpcr
;
7939 if (get_user_u64 (swcr
, arg2
)) {
7942 orig_fpcr
= cpu_alpha_load_fpcr(cpu_env
);
7943 fpcr
= orig_fpcr
& FPCR_DYN_MASK
;
7945 /* Copied from linux ieee_swcr_to_fpcr. */
7946 fpcr
|= (swcr
& SWCR_STATUS_MASK
) << 35;
7947 fpcr
|= (swcr
& SWCR_MAP_DMZ
) << 36;
7948 fpcr
|= (~swcr
& (SWCR_TRAP_ENABLE_INV
7949 | SWCR_TRAP_ENABLE_DZE
7950 | SWCR_TRAP_ENABLE_OVF
)) << 48;
7951 fpcr
|= (~swcr
& (SWCR_TRAP_ENABLE_UNF
7952 | SWCR_TRAP_ENABLE_INE
)) << 57;
7953 fpcr
|= (swcr
& SWCR_MAP_UMZ
? FPCR_UNDZ
| FPCR_UNFD
: 0);
7954 fpcr
|= (~swcr
& SWCR_TRAP_ENABLE_DNO
) << 41;
7956 cpu_alpha_store_fpcr(cpu_env
, fpcr
);
7961 case TARGET_SSI_IEEE_RAISE_EXCEPTION
:
7963 uint64_t exc
, fpcr
, orig_fpcr
;
7966 if (get_user_u64(exc
, arg2
)) {
7970 orig_fpcr
= cpu_alpha_load_fpcr(cpu_env
);
7972 /* We only add to the exception status here. */
7973 fpcr
= orig_fpcr
| ((exc
& SWCR_STATUS_MASK
) << 35);
7975 cpu_alpha_store_fpcr(cpu_env
, fpcr
);
7978 /* Old exceptions are not signaled. */
7979 fpcr
&= ~(orig_fpcr
& FPCR_STATUS_MASK
);
7981 /* If any exceptions set by this call,
7982 and are unmasked, send a signal. */
7984 if ((fpcr
& (FPCR_INE
| FPCR_INED
)) == FPCR_INE
) {
7985 si_code
= TARGET_FPE_FLTRES
;
7987 if ((fpcr
& (FPCR_UNF
| FPCR_UNFD
)) == FPCR_UNF
) {
7988 si_code
= TARGET_FPE_FLTUND
;
7990 if ((fpcr
& (FPCR_OVF
| FPCR_OVFD
)) == FPCR_OVF
) {
7991 si_code
= TARGET_FPE_FLTOVF
;
7993 if ((fpcr
& (FPCR_DZE
| FPCR_DZED
)) == FPCR_DZE
) {
7994 si_code
= TARGET_FPE_FLTDIV
;
7996 if ((fpcr
& (FPCR_INV
| FPCR_INVD
)) == FPCR_INV
) {
7997 si_code
= TARGET_FPE_FLTINV
;
8000 target_siginfo_t info
;
8001 info
.si_signo
= SIGFPE
;
8003 info
.si_code
= si_code
;
8004 info
._sifields
._sigfault
._addr
8005 = ((CPUArchState
*)cpu_env
)->pc
;
8006 queue_signal((CPUArchState
*)cpu_env
, info
.si_signo
, &info
);
8011 /* case SSI_NVPAIRS:
8012 -- Used with SSIN_UACPROC to enable unaligned accesses.
8013 case SSI_IEEE_STATE_AT_SIGNAL:
8014 case SSI_IEEE_IGNORE_STATE_AT_SIGNAL:
8015 -- Not implemented in linux kernel
8020 #ifdef TARGET_NR_osf_sigprocmask
8021 /* Alpha specific. */
8022 case TARGET_NR_osf_sigprocmask
:
8026 sigset_t set
, oldset
;
8029 case TARGET_SIG_BLOCK
:
8032 case TARGET_SIG_UNBLOCK
:
8035 case TARGET_SIG_SETMASK
:
8039 ret
= -TARGET_EINVAL
;
8043 target_to_host_old_sigset(&set
, &mask
);
8044 sigprocmask(how
, &set
, &oldset
);
8045 host_to_target_old_sigset(&mask
, &oldset
);
8051 #ifdef TARGET_NR_getgid32
8052 case TARGET_NR_getgid32
:
8053 ret
= get_errno(getgid());
8056 #ifdef TARGET_NR_geteuid32
8057 case TARGET_NR_geteuid32
:
8058 ret
= get_errno(geteuid());
8061 #ifdef TARGET_NR_getegid32
8062 case TARGET_NR_getegid32
:
8063 ret
= get_errno(getegid());
8066 #ifdef TARGET_NR_setreuid32
8067 case TARGET_NR_setreuid32
:
8068 ret
= get_errno(setreuid(arg1
, arg2
));
8071 #ifdef TARGET_NR_setregid32
8072 case TARGET_NR_setregid32
:
8073 ret
= get_errno(setregid(arg1
, arg2
));
8076 #ifdef TARGET_NR_getgroups32
8077 case TARGET_NR_getgroups32
:
8079 int gidsetsize
= arg1
;
8080 uint32_t *target_grouplist
;
8084 grouplist
= alloca(gidsetsize
* sizeof(gid_t
));
8085 ret
= get_errno(getgroups(gidsetsize
, grouplist
));
8086 if (gidsetsize
== 0)
8088 if (!is_error(ret
)) {
8089 target_grouplist
= lock_user(VERIFY_WRITE
, arg2
, gidsetsize
* 4, 0);
8090 if (!target_grouplist
) {
8091 ret
= -TARGET_EFAULT
;
8094 for(i
= 0;i
< ret
; i
++)
8095 target_grouplist
[i
] = tswap32(grouplist
[i
]);
8096 unlock_user(target_grouplist
, arg2
, gidsetsize
* 4);
8101 #ifdef TARGET_NR_setgroups32
8102 case TARGET_NR_setgroups32
:
8104 int gidsetsize
= arg1
;
8105 uint32_t *target_grouplist
;
8109 grouplist
= alloca(gidsetsize
* sizeof(gid_t
));
8110 target_grouplist
= lock_user(VERIFY_READ
, arg2
, gidsetsize
* 4, 1);
8111 if (!target_grouplist
) {
8112 ret
= -TARGET_EFAULT
;
8115 for(i
= 0;i
< gidsetsize
; i
++)
8116 grouplist
[i
] = tswap32(target_grouplist
[i
]);
8117 unlock_user(target_grouplist
, arg2
, 0);
8118 ret
= get_errno(setgroups(gidsetsize
, grouplist
));
8122 #ifdef TARGET_NR_fchown32
8123 case TARGET_NR_fchown32
:
8124 ret
= get_errno(fchown(arg1
, arg2
, arg3
));
8127 #ifdef TARGET_NR_setresuid32
8128 case TARGET_NR_setresuid32
:
8129 ret
= get_errno(setresuid(arg1
, arg2
, arg3
));
8132 #ifdef TARGET_NR_getresuid32
8133 case TARGET_NR_getresuid32
:
8135 uid_t ruid
, euid
, suid
;
8136 ret
= get_errno(getresuid(&ruid
, &euid
, &suid
));
8137 if (!is_error(ret
)) {
8138 if (put_user_u32(ruid
, arg1
)
8139 || put_user_u32(euid
, arg2
)
8140 || put_user_u32(suid
, arg3
))
8146 #ifdef TARGET_NR_setresgid32
8147 case TARGET_NR_setresgid32
:
8148 ret
= get_errno(setresgid(arg1
, arg2
, arg3
));
8151 #ifdef TARGET_NR_getresgid32
8152 case TARGET_NR_getresgid32
:
8154 gid_t rgid
, egid
, sgid
;
8155 ret
= get_errno(getresgid(&rgid
, &egid
, &sgid
));
8156 if (!is_error(ret
)) {
8157 if (put_user_u32(rgid
, arg1
)
8158 || put_user_u32(egid
, arg2
)
8159 || put_user_u32(sgid
, arg3
))
8165 #ifdef TARGET_NR_chown32
8166 case TARGET_NR_chown32
:
8167 if (!(p
= lock_user_string(arg1
)))
8169 ret
= get_errno(chown(p
, arg2
, arg3
));
8170 unlock_user(p
, arg1
, 0);
8173 #ifdef TARGET_NR_setuid32
8174 case TARGET_NR_setuid32
:
8175 ret
= get_errno(setuid(arg1
));
8178 #ifdef TARGET_NR_setgid32
8179 case TARGET_NR_setgid32
:
8180 ret
= get_errno(setgid(arg1
));
8183 #ifdef TARGET_NR_setfsuid32
8184 case TARGET_NR_setfsuid32
:
8185 ret
= get_errno(setfsuid(arg1
));
8188 #ifdef TARGET_NR_setfsgid32
8189 case TARGET_NR_setfsgid32
:
8190 ret
= get_errno(setfsgid(arg1
));
8194 case TARGET_NR_pivot_root
:
8196 #ifdef TARGET_NR_mincore
8197 case TARGET_NR_mincore
:
8200 ret
= -TARGET_EFAULT
;
8201 if (!(a
= lock_user(VERIFY_READ
, arg1
,arg2
, 0)))
8203 if (!(p
= lock_user_string(arg3
)))
8205 ret
= get_errno(mincore(a
, arg2
, p
));
8206 unlock_user(p
, arg3
, ret
);
8208 unlock_user(a
, arg1
, 0);
8212 #ifdef TARGET_NR_arm_fadvise64_64
8213 case TARGET_NR_arm_fadvise64_64
:
8216 * arm_fadvise64_64 looks like fadvise64_64 but
8217 * with different argument order
8225 #if defined(TARGET_NR_fadvise64_64) || defined(TARGET_NR_arm_fadvise64_64) || defined(TARGET_NR_fadvise64)
8226 #ifdef TARGET_NR_fadvise64_64
8227 case TARGET_NR_fadvise64_64
:
8229 #ifdef TARGET_NR_fadvise64
8230 case TARGET_NR_fadvise64
:
8234 case 4: arg4
= POSIX_FADV_NOREUSE
+ 1; break; /* make sure it's an invalid value */
8235 case 5: arg4
= POSIX_FADV_NOREUSE
+ 2; break; /* ditto */
8236 case 6: arg4
= POSIX_FADV_DONTNEED
; break;
8237 case 7: arg4
= POSIX_FADV_NOREUSE
; break;
8241 ret
= -posix_fadvise(arg1
, arg2
, arg3
, arg4
);
8244 #ifdef TARGET_NR_madvise
8245 case TARGET_NR_madvise
:
8246 /* A straight passthrough may not be safe because qemu sometimes
8247 turns private file-backed mappings into anonymous mappings.
8248 This will break MADV_DONTNEED.
8249 This is a hint, so ignoring and returning success is ok. */
8253 #if TARGET_ABI_BITS == 32
8254 case TARGET_NR_fcntl64
:
8258 struct target_flock64
*target_fl
;
8260 struct target_eabi_flock64
*target_efl
;
8263 cmd
= target_to_host_fcntl_cmd(arg2
);
8264 if (cmd
== -TARGET_EINVAL
) {
8270 case TARGET_F_GETLK64
:
8272 if (((CPUARMState
*)cpu_env
)->eabi
) {
8273 if (!lock_user_struct(VERIFY_READ
, target_efl
, arg3
, 1))
8275 fl
.l_type
= tswap16(target_efl
->l_type
);
8276 fl
.l_whence
= tswap16(target_efl
->l_whence
);
8277 fl
.l_start
= tswap64(target_efl
->l_start
);
8278 fl
.l_len
= tswap64(target_efl
->l_len
);
8279 fl
.l_pid
= tswap32(target_efl
->l_pid
);
8280 unlock_user_struct(target_efl
, arg3
, 0);
8284 if (!lock_user_struct(VERIFY_READ
, target_fl
, arg3
, 1))
8286 fl
.l_type
= tswap16(target_fl
->l_type
);
8287 fl
.l_whence
= tswap16(target_fl
->l_whence
);
8288 fl
.l_start
= tswap64(target_fl
->l_start
);
8289 fl
.l_len
= tswap64(target_fl
->l_len
);
8290 fl
.l_pid
= tswap32(target_fl
->l_pid
);
8291 unlock_user_struct(target_fl
, arg3
, 0);
8293 ret
= get_errno(fcntl(arg1
, cmd
, &fl
));
8296 if (((CPUARMState
*)cpu_env
)->eabi
) {
8297 if (!lock_user_struct(VERIFY_WRITE
, target_efl
, arg3
, 0))
8299 target_efl
->l_type
= tswap16(fl
.l_type
);
8300 target_efl
->l_whence
= tswap16(fl
.l_whence
);
8301 target_efl
->l_start
= tswap64(fl
.l_start
);
8302 target_efl
->l_len
= tswap64(fl
.l_len
);
8303 target_efl
->l_pid
= tswap32(fl
.l_pid
);
8304 unlock_user_struct(target_efl
, arg3
, 1);
8308 if (!lock_user_struct(VERIFY_WRITE
, target_fl
, arg3
, 0))
8310 target_fl
->l_type
= tswap16(fl
.l_type
);
8311 target_fl
->l_whence
= tswap16(fl
.l_whence
);
8312 target_fl
->l_start
= tswap64(fl
.l_start
);
8313 target_fl
->l_len
= tswap64(fl
.l_len
);
8314 target_fl
->l_pid
= tswap32(fl
.l_pid
);
8315 unlock_user_struct(target_fl
, arg3
, 1);
8320 case TARGET_F_SETLK64
:
8321 case TARGET_F_SETLKW64
:
8323 if (((CPUARMState
*)cpu_env
)->eabi
) {
8324 if (!lock_user_struct(VERIFY_READ
, target_efl
, arg3
, 1))
8326 fl
.l_type
= tswap16(target_efl
->l_type
);
8327 fl
.l_whence
= tswap16(target_efl
->l_whence
);
8328 fl
.l_start
= tswap64(target_efl
->l_start
);
8329 fl
.l_len
= tswap64(target_efl
->l_len
);
8330 fl
.l_pid
= tswap32(target_efl
->l_pid
);
8331 unlock_user_struct(target_efl
, arg3
, 0);
8335 if (!lock_user_struct(VERIFY_READ
, target_fl
, arg3
, 1))
8337 fl
.l_type
= tswap16(target_fl
->l_type
);
8338 fl
.l_whence
= tswap16(target_fl
->l_whence
);
8339 fl
.l_start
= tswap64(target_fl
->l_start
);
8340 fl
.l_len
= tswap64(target_fl
->l_len
);
8341 fl
.l_pid
= tswap32(target_fl
->l_pid
);
8342 unlock_user_struct(target_fl
, arg3
, 0);
8344 ret
= get_errno(fcntl(arg1
, cmd
, &fl
));
8347 ret
= do_fcntl(arg1
, arg2
, arg3
);
8353 #ifdef TARGET_NR_cacheflush
8354 case TARGET_NR_cacheflush
:
8355 /* self-modifying code is handled automatically, so nothing needed */
8359 #ifdef TARGET_NR_security
8360 case TARGET_NR_security
:
8363 #ifdef TARGET_NR_getpagesize
8364 case TARGET_NR_getpagesize
:
8365 ret
= TARGET_PAGE_SIZE
;
8368 case TARGET_NR_gettid
:
8369 ret
= get_errno(gettid());
8371 #ifdef TARGET_NR_readahead
8372 case TARGET_NR_readahead
:
8373 #if TARGET_ABI_BITS == 32
8374 if (regpairs_aligned(cpu_env
)) {
8379 ret
= get_errno(readahead(arg1
, ((off64_t
)arg3
<< 32) | arg2
, arg4
));
8381 ret
= get_errno(readahead(arg1
, arg2
, arg3
));
8386 #ifdef TARGET_NR_setxattr
8387 case TARGET_NR_listxattr
:
8388 case TARGET_NR_llistxattr
:
8392 b
= lock_user(VERIFY_WRITE
, arg2
, arg3
, 0);
8394 ret
= -TARGET_EFAULT
;
8398 p
= lock_user_string(arg1
);
8400 if (num
== TARGET_NR_listxattr
) {
8401 ret
= get_errno(listxattr(p
, b
, arg3
));
8403 ret
= get_errno(llistxattr(p
, b
, arg3
));
8406 ret
= -TARGET_EFAULT
;
8408 unlock_user(p
, arg1
, 0);
8409 unlock_user(b
, arg2
, arg3
);
8412 case TARGET_NR_flistxattr
:
8416 b
= lock_user(VERIFY_WRITE
, arg2
, arg3
, 0);
8418 ret
= -TARGET_EFAULT
;
8422 ret
= get_errno(flistxattr(arg1
, b
, arg3
));
8423 unlock_user(b
, arg2
, arg3
);
8426 case TARGET_NR_setxattr
:
8427 case TARGET_NR_lsetxattr
:
8429 void *p
, *n
, *v
= 0;
8431 v
= lock_user(VERIFY_READ
, arg3
, arg4
, 1);
8433 ret
= -TARGET_EFAULT
;
8437 p
= lock_user_string(arg1
);
8438 n
= lock_user_string(arg2
);
8440 if (num
== TARGET_NR_setxattr
) {
8441 ret
= get_errno(setxattr(p
, n
, v
, arg4
, arg5
));
8443 ret
= get_errno(lsetxattr(p
, n
, v
, arg4
, arg5
));
8446 ret
= -TARGET_EFAULT
;
8448 unlock_user(p
, arg1
, 0);
8449 unlock_user(n
, arg2
, 0);
8450 unlock_user(v
, arg3
, 0);
8453 case TARGET_NR_fsetxattr
:
8457 v
= lock_user(VERIFY_READ
, arg3
, arg4
, 1);
8459 ret
= -TARGET_EFAULT
;
8463 n
= lock_user_string(arg2
);
8465 ret
= get_errno(fsetxattr(arg1
, n
, v
, arg4
, arg5
));
8467 ret
= -TARGET_EFAULT
;
8469 unlock_user(n
, arg2
, 0);
8470 unlock_user(v
, arg3
, 0);
8473 case TARGET_NR_getxattr
:
8474 case TARGET_NR_lgetxattr
:
8476 void *p
, *n
, *v
= 0;
8478 v
= lock_user(VERIFY_WRITE
, arg3
, arg4
, 0);
8480 ret
= -TARGET_EFAULT
;
8484 p
= lock_user_string(arg1
);
8485 n
= lock_user_string(arg2
);
8487 if (num
== TARGET_NR_getxattr
) {
8488 ret
= get_errno(getxattr(p
, n
, v
, arg4
));
8490 ret
= get_errno(lgetxattr(p
, n
, v
, arg4
));
8493 ret
= -TARGET_EFAULT
;
8495 unlock_user(p
, arg1
, 0);
8496 unlock_user(n
, arg2
, 0);
8497 unlock_user(v
, arg3
, arg4
);
8500 case TARGET_NR_fgetxattr
:
8504 v
= lock_user(VERIFY_WRITE
, arg3
, arg4
, 0);
8506 ret
= -TARGET_EFAULT
;
8510 n
= lock_user_string(arg2
);
8512 ret
= get_errno(fgetxattr(arg1
, n
, v
, arg4
));
8514 ret
= -TARGET_EFAULT
;
8516 unlock_user(n
, arg2
, 0);
8517 unlock_user(v
, arg3
, arg4
);
8520 case TARGET_NR_removexattr
:
8521 case TARGET_NR_lremovexattr
:
8524 p
= lock_user_string(arg1
);
8525 n
= lock_user_string(arg2
);
8527 if (num
== TARGET_NR_removexattr
) {
8528 ret
= get_errno(removexattr(p
, n
));
8530 ret
= get_errno(lremovexattr(p
, n
));
8533 ret
= -TARGET_EFAULT
;
8535 unlock_user(p
, arg1
, 0);
8536 unlock_user(n
, arg2
, 0);
8539 case TARGET_NR_fremovexattr
:
8542 n
= lock_user_string(arg2
);
8544 ret
= get_errno(fremovexattr(arg1
, n
));
8546 ret
= -TARGET_EFAULT
;
8548 unlock_user(n
, arg2
, 0);
8552 #endif /* CONFIG_ATTR */
8553 #ifdef TARGET_NR_set_thread_area
8554 case TARGET_NR_set_thread_area
:
8555 #if defined(TARGET_MIPS)
8556 ((CPUMIPSState
*) cpu_env
)->tls_value
= arg1
;
8559 #elif defined(TARGET_CRIS)
8561 ret
= -TARGET_EINVAL
;
8563 ((CPUCRISState
*) cpu_env
)->pregs
[PR_PID
] = arg1
;
8567 #elif defined(TARGET_I386) && defined(TARGET_ABI32)
8568 ret
= do_set_thread_area(cpu_env
, arg1
);
8570 #elif defined(TARGET_M68K)
8572 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
8573 ts
->tp_value
= arg1
;
8578 goto unimplemented_nowarn
;
8581 #ifdef TARGET_NR_get_thread_area
8582 case TARGET_NR_get_thread_area
:
8583 #if defined(TARGET_I386) && defined(TARGET_ABI32)
8584 ret
= do_get_thread_area(cpu_env
, arg1
);
8586 #elif defined(TARGET_M68K)
8588 TaskState
*ts
= ((CPUArchState
*)cpu_env
)->opaque
;
8593 goto unimplemented_nowarn
;
8596 #ifdef TARGET_NR_getdomainname
8597 case TARGET_NR_getdomainname
:
8598 goto unimplemented_nowarn
;
8601 #ifdef TARGET_NR_clock_gettime
8602 case TARGET_NR_clock_gettime
:
8605 ret
= get_errno(clock_gettime(arg1
, &ts
));
8606 if (!is_error(ret
)) {
8607 host_to_target_timespec(arg2
, &ts
);
8612 #ifdef TARGET_NR_clock_getres
8613 case TARGET_NR_clock_getres
:
8616 ret
= get_errno(clock_getres(arg1
, &ts
));
8617 if (!is_error(ret
)) {
8618 host_to_target_timespec(arg2
, &ts
);
8623 #ifdef TARGET_NR_clock_nanosleep
8624 case TARGET_NR_clock_nanosleep
:
8627 target_to_host_timespec(&ts
, arg3
);
8628 ret
= get_errno(clock_nanosleep(arg1
, arg2
, &ts
, arg4
? &ts
: NULL
));
8630 host_to_target_timespec(arg4
, &ts
);
8635 #if defined(TARGET_NR_set_tid_address) && defined(__NR_set_tid_address)
8636 case TARGET_NR_set_tid_address
:
8637 ret
= get_errno(set_tid_address((int *)g2h(arg1
)));
8641 #if defined(TARGET_NR_tkill) && defined(__NR_tkill)
8642 case TARGET_NR_tkill
:
8643 ret
= get_errno(sys_tkill((int)arg1
, target_to_host_signal(arg2
)));
8647 #if defined(TARGET_NR_tgkill) && defined(__NR_tgkill)
8648 case TARGET_NR_tgkill
:
8649 ret
= get_errno(sys_tgkill((int)arg1
, (int)arg2
,
8650 target_to_host_signal(arg3
)));
8654 #ifdef TARGET_NR_set_robust_list
8655 case TARGET_NR_set_robust_list
:
8656 case TARGET_NR_get_robust_list
:
8657 /* The ABI for supporting robust futexes has userspace pass
8658 * the kernel a pointer to a linked list which is updated by
8659 * userspace after the syscall; the list is walked by the kernel
8660 * when the thread exits. Since the linked list in QEMU guest
8661 * memory isn't a valid linked list for the host and we have
8662 * no way to reliably intercept the thread-death event, we can't
8663 * support these. Silently return ENOSYS so that guest userspace
8664 * falls back to a non-robust futex implementation (which should
8665 * be OK except in the corner case of the guest crashing while
8666 * holding a mutex that is shared with another process via
8669 goto unimplemented_nowarn
;
8672 #if defined(TARGET_NR_utimensat)
8673 case TARGET_NR_utimensat
:
8675 struct timespec
*tsp
, ts
[2];
8679 target_to_host_timespec(ts
, arg3
);
8680 target_to_host_timespec(ts
+1, arg3
+sizeof(struct target_timespec
));
8684 ret
= get_errno(sys_utimensat(arg1
, NULL
, tsp
, arg4
));
8686 if (!(p
= lock_user_string(arg2
))) {
8687 ret
= -TARGET_EFAULT
;
8690 ret
= get_errno(sys_utimensat(arg1
, path(p
), tsp
, arg4
));
8691 unlock_user(p
, arg2
, 0);
8696 case TARGET_NR_futex
:
8697 ret
= do_futex(arg1
, arg2
, arg3
, arg4
, arg5
, arg6
);
8699 #if defined(TARGET_NR_inotify_init) && defined(__NR_inotify_init)
8700 case TARGET_NR_inotify_init
:
8701 ret
= get_errno(sys_inotify_init());
8704 #ifdef CONFIG_INOTIFY1
8705 #if defined(TARGET_NR_inotify_init1) && defined(__NR_inotify_init1)
8706 case TARGET_NR_inotify_init1
:
8707 ret
= get_errno(sys_inotify_init1(arg1
));
8711 #if defined(TARGET_NR_inotify_add_watch) && defined(__NR_inotify_add_watch)
8712 case TARGET_NR_inotify_add_watch
:
8713 p
= lock_user_string(arg2
);
8714 ret
= get_errno(sys_inotify_add_watch(arg1
, path(p
), arg3
));
8715 unlock_user(p
, arg2
, 0);
8718 #if defined(TARGET_NR_inotify_rm_watch) && defined(__NR_inotify_rm_watch)
8719 case TARGET_NR_inotify_rm_watch
:
8720 ret
= get_errno(sys_inotify_rm_watch(arg1
, arg2
));
8724 #if defined(TARGET_NR_mq_open) && defined(__NR_mq_open)
8725 case TARGET_NR_mq_open
:
8727 struct mq_attr posix_mq_attr
;
8729 p
= lock_user_string(arg1
- 1);
8731 copy_from_user_mq_attr (&posix_mq_attr
, arg4
);
8732 ret
= get_errno(mq_open(p
, arg2
, arg3
, &posix_mq_attr
));
8733 unlock_user (p
, arg1
, 0);
8737 case TARGET_NR_mq_unlink
:
8738 p
= lock_user_string(arg1
- 1);
8739 ret
= get_errno(mq_unlink(p
));
8740 unlock_user (p
, arg1
, 0);
8743 case TARGET_NR_mq_timedsend
:
8747 p
= lock_user (VERIFY_READ
, arg2
, arg3
, 1);
8749 target_to_host_timespec(&ts
, arg5
);
8750 ret
= get_errno(mq_timedsend(arg1
, p
, arg3
, arg4
, &ts
));
8751 host_to_target_timespec(arg5
, &ts
);
8754 ret
= get_errno(mq_send(arg1
, p
, arg3
, arg4
));
8755 unlock_user (p
, arg2
, arg3
);
8759 case TARGET_NR_mq_timedreceive
:
8764 p
= lock_user (VERIFY_READ
, arg2
, arg3
, 1);
8766 target_to_host_timespec(&ts
, arg5
);
8767 ret
= get_errno(mq_timedreceive(arg1
, p
, arg3
, &prio
, &ts
));
8768 host_to_target_timespec(arg5
, &ts
);
8771 ret
= get_errno(mq_receive(arg1
, p
, arg3
, &prio
));
8772 unlock_user (p
, arg2
, arg3
);
8774 put_user_u32(prio
, arg4
);
8778 /* Not implemented for now... */
8779 /* case TARGET_NR_mq_notify: */
8782 case TARGET_NR_mq_getsetattr
:
8784 struct mq_attr posix_mq_attr_in
, posix_mq_attr_out
;
8787 ret
= mq_getattr(arg1
, &posix_mq_attr_out
);
8788 copy_to_user_mq_attr(arg3
, &posix_mq_attr_out
);
8791 copy_from_user_mq_attr(&posix_mq_attr_in
, arg2
);
8792 ret
|= mq_setattr(arg1
, &posix_mq_attr_in
, &posix_mq_attr_out
);
8799 #ifdef CONFIG_SPLICE
8800 #ifdef TARGET_NR_tee
8803 ret
= get_errno(tee(arg1
,arg2
,arg3
,arg4
));
8807 #ifdef TARGET_NR_splice
8808 case TARGET_NR_splice
:
8810 loff_t loff_in
, loff_out
;
8811 loff_t
*ploff_in
= NULL
, *ploff_out
= NULL
;
8813 get_user_u64(loff_in
, arg2
);
8814 ploff_in
= &loff_in
;
8817 get_user_u64(loff_out
, arg2
);
8818 ploff_out
= &loff_out
;
8820 ret
= get_errno(splice(arg1
, ploff_in
, arg3
, ploff_out
, arg5
, arg6
));
8824 #ifdef TARGET_NR_vmsplice
8825 case TARGET_NR_vmsplice
:
8827 struct iovec
*vec
= lock_iovec(VERIFY_READ
, arg2
, arg3
, 1);
8829 ret
= get_errno(vmsplice(arg1
, vec
, arg3
, arg4
));
8830 unlock_iovec(vec
, arg2
, arg3
, 0);
8832 ret
= -host_to_target_errno(errno
);
8837 #endif /* CONFIG_SPLICE */
8838 #ifdef CONFIG_EVENTFD
8839 #if defined(TARGET_NR_eventfd)
8840 case TARGET_NR_eventfd
:
8841 ret
= get_errno(eventfd(arg1
, 0));
8844 #if defined(TARGET_NR_eventfd2)
8845 case TARGET_NR_eventfd2
:
8847 int host_flags
= arg2
& (~(TARGET_O_NONBLOCK
| TARGET_O_CLOEXEC
));
8848 if (arg2
& TARGET_O_NONBLOCK
) {
8849 host_flags
|= O_NONBLOCK
;
8851 if (arg2
& TARGET_O_CLOEXEC
) {
8852 host_flags
|= O_CLOEXEC
;
8854 ret
= get_errno(eventfd(arg1
, host_flags
));
8858 #endif /* CONFIG_EVENTFD */
8859 #if defined(CONFIG_FALLOCATE) && defined(TARGET_NR_fallocate)
8860 case TARGET_NR_fallocate
:
8861 #if TARGET_ABI_BITS == 32
8862 ret
= get_errno(fallocate(arg1
, arg2
, target_offset64(arg3
, arg4
),
8863 target_offset64(arg5
, arg6
)));
8865 ret
= get_errno(fallocate(arg1
, arg2
, arg3
, arg4
));
8869 #if defined(CONFIG_SYNC_FILE_RANGE)
8870 #if defined(TARGET_NR_sync_file_range)
8871 case TARGET_NR_sync_file_range
:
8872 #if TARGET_ABI_BITS == 32
8873 #if defined(TARGET_MIPS)
8874 ret
= get_errno(sync_file_range(arg1
, target_offset64(arg3
, arg4
),
8875 target_offset64(arg5
, arg6
), arg7
));
8877 ret
= get_errno(sync_file_range(arg1
, target_offset64(arg2
, arg3
),
8878 target_offset64(arg4
, arg5
), arg6
));
8879 #endif /* !TARGET_MIPS */
8881 ret
= get_errno(sync_file_range(arg1
, arg2
, arg3
, arg4
));
8885 #if defined(TARGET_NR_sync_file_range2)
8886 case TARGET_NR_sync_file_range2
:
8887 /* This is like sync_file_range but the arguments are reordered */
8888 #if TARGET_ABI_BITS == 32
8889 ret
= get_errno(sync_file_range(arg1
, target_offset64(arg3
, arg4
),
8890 target_offset64(arg5
, arg6
), arg2
));
8892 ret
= get_errno(sync_file_range(arg1
, arg3
, arg4
, arg2
));
8897 #if defined(CONFIG_EPOLL)
8898 #if defined(TARGET_NR_epoll_create)
8899 case TARGET_NR_epoll_create
:
8900 ret
= get_errno(epoll_create(arg1
));
8903 #if defined(TARGET_NR_epoll_create1) && defined(CONFIG_EPOLL_CREATE1)
8904 case TARGET_NR_epoll_create1
:
8905 ret
= get_errno(epoll_create1(arg1
));
8908 #if defined(TARGET_NR_epoll_ctl)
8909 case TARGET_NR_epoll_ctl
:
8911 struct epoll_event ep
;
8912 struct epoll_event
*epp
= 0;
8914 struct target_epoll_event
*target_ep
;
8915 if (!lock_user_struct(VERIFY_READ
, target_ep
, arg4
, 1)) {
8918 ep
.events
= tswap32(target_ep
->events
);
8919 /* The epoll_data_t union is just opaque data to the kernel,
8920 * so we transfer all 64 bits across and need not worry what
8921 * actual data type it is.
8923 ep
.data
.u64
= tswap64(target_ep
->data
.u64
);
8924 unlock_user_struct(target_ep
, arg4
, 0);
8927 ret
= get_errno(epoll_ctl(arg1
, arg2
, arg3
, epp
));
8932 #if defined(TARGET_NR_epoll_pwait) && defined(CONFIG_EPOLL_PWAIT)
8933 #define IMPLEMENT_EPOLL_PWAIT
8935 #if defined(TARGET_NR_epoll_wait) || defined(IMPLEMENT_EPOLL_PWAIT)
8936 #if defined(TARGET_NR_epoll_wait)
8937 case TARGET_NR_epoll_wait
:
8939 #if defined(IMPLEMENT_EPOLL_PWAIT)
8940 case TARGET_NR_epoll_pwait
:
8943 struct target_epoll_event
*target_ep
;
8944 struct epoll_event
*ep
;
8946 int maxevents
= arg3
;
8949 target_ep
= lock_user(VERIFY_WRITE
, arg2
,
8950 maxevents
* sizeof(struct target_epoll_event
), 1);
8955 ep
= alloca(maxevents
* sizeof(struct epoll_event
));
8958 #if defined(IMPLEMENT_EPOLL_PWAIT)
8959 case TARGET_NR_epoll_pwait
:
8961 target_sigset_t
*target_set
;
8962 sigset_t _set
, *set
= &_set
;
8965 target_set
= lock_user(VERIFY_READ
, arg5
,
8966 sizeof(target_sigset_t
), 1);
8968 unlock_user(target_ep
, arg2
, 0);
8971 target_to_host_sigset(set
, target_set
);
8972 unlock_user(target_set
, arg5
, 0);
8977 ret
= get_errno(epoll_pwait(epfd
, ep
, maxevents
, timeout
, set
));
8981 #if defined(TARGET_NR_epoll_wait)
8982 case TARGET_NR_epoll_wait
:
8983 ret
= get_errno(epoll_wait(epfd
, ep
, maxevents
, timeout
));
8987 ret
= -TARGET_ENOSYS
;
8989 if (!is_error(ret
)) {
8991 for (i
= 0; i
< ret
; i
++) {
8992 target_ep
[i
].events
= tswap32(ep
[i
].events
);
8993 target_ep
[i
].data
.u64
= tswap64(ep
[i
].data
.u64
);
8996 unlock_user(target_ep
, arg2
, ret
* sizeof(struct target_epoll_event
));
9001 #ifdef TARGET_NR_prlimit64
9002 case TARGET_NR_prlimit64
:
9004 /* args: pid, resource number, ptr to new rlimit, ptr to old rlimit */
9005 struct target_rlimit64
*target_rnew
, *target_rold
;
9006 struct host_rlimit64 rnew
, rold
, *rnewp
= 0;
9008 if (!lock_user_struct(VERIFY_READ
, target_rnew
, arg3
, 1)) {
9011 rnew
.rlim_cur
= tswap64(target_rnew
->rlim_cur
);
9012 rnew
.rlim_max
= tswap64(target_rnew
->rlim_max
);
9013 unlock_user_struct(target_rnew
, arg3
, 0);
9017 ret
= get_errno(sys_prlimit64(arg1
, arg2
, rnewp
, arg4
? &rold
: 0));
9018 if (!is_error(ret
) && arg4
) {
9019 if (!lock_user_struct(VERIFY_WRITE
, target_rold
, arg4
, 1)) {
9022 target_rold
->rlim_cur
= tswap64(rold
.rlim_cur
);
9023 target_rold
->rlim_max
= tswap64(rold
.rlim_max
);
9024 unlock_user_struct(target_rold
, arg4
, 1);
9029 #ifdef TARGET_NR_gethostname
9030 case TARGET_NR_gethostname
:
9032 char *name
= lock_user(VERIFY_WRITE
, arg1
, arg2
, 0);
9034 ret
= get_errno(gethostname(name
, arg2
));
9035 unlock_user(name
, arg1
, arg2
);
9037 ret
= -TARGET_EFAULT
;
9042 #ifdef TARGET_NR_atomic_cmpxchg_32
9043 case TARGET_NR_atomic_cmpxchg_32
:
9045 /* should use start_exclusive from main.c */
9046 abi_ulong mem_value
;
9047 if (get_user_u32(mem_value
, arg6
)) {
9048 target_siginfo_t info
;
9049 info
.si_signo
= SIGSEGV
;
9051 info
.si_code
= TARGET_SEGV_MAPERR
;
9052 info
._sifields
._sigfault
._addr
= arg6
;
9053 queue_signal((CPUArchState
*)cpu_env
, info
.si_signo
, &info
);
9057 if (mem_value
== arg2
)
9058 put_user_u32(arg1
, arg6
);
9063 #ifdef TARGET_NR_atomic_barrier
9064 case TARGET_NR_atomic_barrier
:
9066 /* Like the kernel implementation and the qemu arm barrier, no-op this? */
9071 #ifdef TARGET_NR_timer_create
9072 case TARGET_NR_timer_create
:
9074 /* args: clockid_t clockid, struct sigevent *sevp, timer_t *timerid */
9076 struct sigevent host_sevp
= { {0}, }, *phost_sevp
= NULL
;
9077 struct target_sigevent
*ptarget_sevp
;
9078 struct target_timer_t
*ptarget_timer
;
9081 int timer_index
= next_free_host_timer();
9083 if (timer_index
< 0) {
9084 ret
= -TARGET_EAGAIN
;
9086 timer_t
*phtimer
= g_posix_timers
+ timer_index
;
9089 if (!lock_user_struct(VERIFY_READ
, ptarget_sevp
, arg2
, 1)) {
9093 host_sevp
.sigev_signo
= tswap32(ptarget_sevp
->sigev_signo
);
9094 host_sevp
.sigev_notify
= tswap32(ptarget_sevp
->sigev_notify
);
9096 phost_sevp
= &host_sevp
;
9099 ret
= get_errno(timer_create(clkid
, phost_sevp
, phtimer
));
9103 if (!lock_user_struct(VERIFY_WRITE
, ptarget_timer
, arg3
, 1)) {
9106 ptarget_timer
->ptr
= tswap32(0xcafe0000 | timer_index
);
9107 unlock_user_struct(ptarget_timer
, arg3
, 1);
9114 #ifdef TARGET_NR_timer_settime
9115 case TARGET_NR_timer_settime
:
9117 /* args: timer_t timerid, int flags, const struct itimerspec *new_value,
9118 * struct itimerspec * old_value */
9120 if (arg3
== 0 || arg1
< 0 || arg1
>= ARRAY_SIZE(g_posix_timers
)) {
9121 ret
= -TARGET_EINVAL
;
9123 timer_t htimer
= g_posix_timers
[arg1
];
9124 struct itimerspec hspec_new
= {{0},}, hspec_old
= {{0},};
9126 target_to_host_itimerspec(&hspec_new
, arg3
);
9128 timer_settime(htimer
, arg2
, &hspec_new
, &hspec_old
));
9129 host_to_target_itimerspec(arg2
, &hspec_old
);
9135 #ifdef TARGET_NR_timer_gettime
9136 case TARGET_NR_timer_gettime
:
9138 /* args: timer_t timerid, struct itimerspec *curr_value */
9141 return -TARGET_EFAULT
;
9142 } else if (arg1
< 0 || arg1
>= ARRAY_SIZE(g_posix_timers
)) {
9143 ret
= -TARGET_EINVAL
;
9145 timer_t htimer
= g_posix_timers
[arg1
];
9146 struct itimerspec hspec
;
9147 ret
= get_errno(timer_gettime(htimer
, &hspec
));
9149 if (host_to_target_itimerspec(arg2
, &hspec
)) {
9150 ret
= -TARGET_EFAULT
;
9157 #ifdef TARGET_NR_timer_getoverrun
9158 case TARGET_NR_timer_getoverrun
:
9160 /* args: timer_t timerid */
9162 if (arg1
< 0 || arg1
>= ARRAY_SIZE(g_posix_timers
)) {
9163 ret
= -TARGET_EINVAL
;
9165 timer_t htimer
= g_posix_timers
[arg1
];
9166 ret
= get_errno(timer_getoverrun(htimer
));
9172 #ifdef TARGET_NR_timer_delete
9173 case TARGET_NR_timer_delete
:
9175 /* args: timer_t timerid */
9177 if (arg1
< 0 || arg1
>= ARRAY_SIZE(g_posix_timers
)) {
9178 ret
= -TARGET_EINVAL
;
9180 timer_t htimer
= g_posix_timers
[arg1
];
9181 ret
= get_errno(timer_delete(htimer
));
9182 g_posix_timers
[arg1
] = 0;
9190 gemu_log("qemu: Unsupported syscall: %d\n", num
);
9191 #if defined(TARGET_NR_setxattr) || defined(TARGET_NR_get_thread_area) || defined(TARGET_NR_getdomainname) || defined(TARGET_NR_set_robust_list)
9192 unimplemented_nowarn
:
9194 ret
= -TARGET_ENOSYS
;
9199 gemu_log(" = " TARGET_ABI_FMT_ld
"\n", ret
);
9202 print_syscall_ret(num
, ret
);
9205 ret
= -TARGET_EFAULT
;