4 * Copyright (C) 1991, 1992 Linus Torvalds
7 #include <linux/syscalls.h>
8 #include <linux/init.h>
11 #include <linux/file.h>
12 #include <linux/fdtable.h>
13 #include <linux/capability.h>
14 #include <linux/dnotify.h>
15 #include <linux/slab.h>
16 #include <linux/module.h>
17 #include <linux/pipe_fs_i.h>
18 #include <linux/security.h>
19 #include <linux/ptrace.h>
20 #include <linux/signal.h>
21 #include <linux/rcupdate.h>
22 #include <linux/pid_namespace.h>
23 #include <linux/user_namespace.h>
26 #include <asm/siginfo.h>
27 #include <asm/uaccess.h>
29 #define SETFL_MASK (O_APPEND | O_NONBLOCK | O_NDELAY | O_DIRECT | O_NOATIME)
31 static int setfl(int fd
, struct file
* filp
, unsigned long arg
)
33 struct inode
* inode
= file_inode(filp
);
37 * O_APPEND cannot be cleared if the file is marked as append-only
38 * and the file is open for write.
40 if (((arg
^ filp
->f_flags
) & O_APPEND
) && IS_APPEND(inode
))
43 /* O_NOATIME can only be set by the owner or superuser */
44 if ((arg
& O_NOATIME
) && !(filp
->f_flags
& O_NOATIME
))
45 if (!inode_owner_or_capable(inode
))
48 /* required for strict SunOS emulation */
49 if (O_NONBLOCK
!= O_NDELAY
)
54 if (!filp
->f_mapping
|| !filp
->f_mapping
->a_ops
||
55 !filp
->f_mapping
->a_ops
->direct_IO
)
59 if (filp
->f_op
->check_flags
)
60 error
= filp
->f_op
->check_flags(arg
);
65 * ->fasync() is responsible for setting the FASYNC bit.
67 if (((arg
^ filp
->f_flags
) & FASYNC
) && filp
->f_op
->fasync
) {
68 error
= filp
->f_op
->fasync(fd
, filp
, (arg
& FASYNC
) != 0);
74 spin_lock(&filp
->f_lock
);
75 filp
->f_flags
= (arg
& SETFL_MASK
) | (filp
->f_flags
& ~SETFL_MASK
);
76 spin_unlock(&filp
->f_lock
);
82 static void f_modown(struct file
*filp
, struct pid
*pid
, enum pid_type type
,
85 write_lock_irq(&filp
->f_owner
.lock
);
86 if (force
|| !filp
->f_owner
.pid
) {
87 put_pid(filp
->f_owner
.pid
);
88 filp
->f_owner
.pid
= get_pid(pid
);
89 filp
->f_owner
.pid_type
= type
;
92 const struct cred
*cred
= current_cred();
93 filp
->f_owner
.uid
= cred
->uid
;
94 filp
->f_owner
.euid
= cred
->euid
;
97 write_unlock_irq(&filp
->f_owner
.lock
);
100 int __f_setown(struct file
*filp
, struct pid
*pid
, enum pid_type type
,
105 err
= security_file_set_fowner(filp
);
109 f_modown(filp
, pid
, type
, force
);
112 EXPORT_SYMBOL(__f_setown
);
114 int f_setown(struct file
*filp
, unsigned long arg
, int force
)
126 pid
= find_vpid(who
);
127 result
= __f_setown(filp
, pid
, type
, force
);
131 EXPORT_SYMBOL(f_setown
);
133 void f_delown(struct file
*filp
)
135 f_modown(filp
, NULL
, PIDTYPE_PID
, 1);
138 pid_t
f_getown(struct file
*filp
)
141 read_lock(&filp
->f_owner
.lock
);
142 pid
= pid_vnr(filp
->f_owner
.pid
);
143 if (filp
->f_owner
.pid_type
== PIDTYPE_PGID
)
145 read_unlock(&filp
->f_owner
.lock
);
149 static int f_setown_ex(struct file
*filp
, unsigned long arg
)
151 struct f_owner_ex __user
*owner_p
= (void __user
*)arg
;
152 struct f_owner_ex owner
;
157 ret
= copy_from_user(&owner
, owner_p
, sizeof(owner
));
161 switch (owner
.type
) {
179 pid
= find_vpid(owner
.pid
);
180 if (owner
.pid
&& !pid
)
183 ret
= __f_setown(filp
, pid
, type
, 1);
189 static int f_getown_ex(struct file
*filp
, unsigned long arg
)
191 struct f_owner_ex __user
*owner_p
= (void __user
*)arg
;
192 struct f_owner_ex owner
;
195 read_lock(&filp
->f_owner
.lock
);
196 owner
.pid
= pid_vnr(filp
->f_owner
.pid
);
197 switch (filp
->f_owner
.pid_type
) {
199 owner
.type
= F_OWNER_TID
;
203 owner
.type
= F_OWNER_PID
;
207 owner
.type
= F_OWNER_PGRP
;
215 read_unlock(&filp
->f_owner
.lock
);
218 ret
= copy_to_user(owner_p
, &owner
, sizeof(owner
));
225 #ifdef CONFIG_CHECKPOINT_RESTORE
226 static int f_getowner_uids(struct file
*filp
, unsigned long arg
)
228 struct user_namespace
*user_ns
= current_user_ns();
229 uid_t __user
*dst
= (void __user
*)arg
;
233 read_lock(&filp
->f_owner
.lock
);
234 src
[0] = from_kuid(user_ns
, filp
->f_owner
.uid
);
235 src
[1] = from_kuid(user_ns
, filp
->f_owner
.euid
);
236 read_unlock(&filp
->f_owner
.lock
);
238 err
= put_user(src
[0], &dst
[0]);
239 err
|= put_user(src
[1], &dst
[1]);
244 static int f_getowner_uids(struct file
*filp
, unsigned long arg
)
250 static long do_fcntl(int fd
, unsigned int cmd
, unsigned long arg
,
257 err
= f_dupfd(arg
, filp
, 0);
259 case F_DUPFD_CLOEXEC
:
260 err
= f_dupfd(arg
, filp
, O_CLOEXEC
);
263 err
= get_close_on_exec(fd
) ? FD_CLOEXEC
: 0;
267 set_close_on_exec(fd
, arg
& FD_CLOEXEC
);
273 err
= setfl(fd
, filp
, arg
);
276 err
= fcntl_getlk(filp
, (struct flock __user
*) arg
);
280 err
= fcntl_setlk(fd
, filp
, cmd
, (struct flock __user
*) arg
);
284 * XXX If f_owner is a process group, the
285 * negative return value will get converted
286 * into an error. Oops. If we keep the
287 * current syscall conventions, the only way
288 * to fix this will be in libc.
290 err
= f_getown(filp
);
291 force_successful_syscall_return();
294 err
= f_setown(filp
, arg
, 1);
297 err
= f_getown_ex(filp
, arg
);
300 err
= f_setown_ex(filp
, arg
);
302 case F_GETOWNER_UIDS
:
303 err
= f_getowner_uids(filp
, arg
);
306 err
= filp
->f_owner
.signum
;
309 /* arg == 0 restores default behaviour. */
310 if (!valid_signal(arg
)) {
314 filp
->f_owner
.signum
= arg
;
317 err
= fcntl_getlease(filp
);
320 err
= fcntl_setlease(fd
, filp
, arg
);
323 err
= fcntl_dirnotify(fd
, filp
, arg
);
327 err
= pipe_fcntl(filp
, cmd
, arg
);
335 static int check_fcntl_cmd(unsigned cmd
)
339 case F_DUPFD_CLOEXEC
:
348 SYSCALL_DEFINE3(fcntl
, unsigned int, fd
, unsigned int, cmd
, unsigned long, arg
)
350 struct fd f
= fdget_raw(fd
);
356 if (unlikely(f
.file
->f_mode
& FMODE_PATH
)) {
357 if (!check_fcntl_cmd(cmd
))
361 err
= security_file_fcntl(f
.file
, cmd
, arg
);
363 err
= do_fcntl(fd
, cmd
, arg
, f
.file
);
371 #if BITS_PER_LONG == 32
372 SYSCALL_DEFINE3(fcntl64
, unsigned int, fd
, unsigned int, cmd
,
375 struct fd f
= fdget_raw(fd
);
381 if (unlikely(f
.file
->f_mode
& FMODE_PATH
)) {
382 if (!check_fcntl_cmd(cmd
))
386 err
= security_file_fcntl(f
.file
, cmd
, arg
);
392 err
= fcntl_getlk64(f
.file
, (struct flock64 __user
*) arg
);
396 err
= fcntl_setlk64(fd
, f
.file
, cmd
,
397 (struct flock64 __user
*) arg
);
400 err
= do_fcntl(fd
, cmd
, arg
, f
.file
);
410 /* Table to convert sigio signal codes into poll band bitmaps */
412 static const long band_table
[NSIGPOLL
] = {
413 POLLIN
| POLLRDNORM
, /* POLL_IN */
414 POLLOUT
| POLLWRNORM
| POLLWRBAND
, /* POLL_OUT */
415 POLLIN
| POLLRDNORM
| POLLMSG
, /* POLL_MSG */
416 POLLERR
, /* POLL_ERR */
417 POLLPRI
| POLLRDBAND
, /* POLL_PRI */
418 POLLHUP
| POLLERR
/* POLL_HUP */
421 static inline int sigio_perm(struct task_struct
*p
,
422 struct fown_struct
*fown
, int sig
)
424 const struct cred
*cred
;
428 cred
= __task_cred(p
);
429 ret
= ((uid_eq(fown
->euid
, GLOBAL_ROOT_UID
) ||
430 uid_eq(fown
->euid
, cred
->suid
) || uid_eq(fown
->euid
, cred
->uid
) ||
431 uid_eq(fown
->uid
, cred
->suid
) || uid_eq(fown
->uid
, cred
->uid
)) &&
432 !security_file_send_sigiotask(p
, fown
, sig
));
437 static void send_sigio_to_task(struct task_struct
*p
,
438 struct fown_struct
*fown
,
439 int fd
, int reason
, int group
)
442 * F_SETSIG can change ->signum lockless in parallel, make
443 * sure we read it once and use the same value throughout.
445 int signum
= ACCESS_ONCE(fown
->signum
);
447 if (!sigio_perm(p
, fown
, signum
))
453 /* Queue a rt signal with the appropriate fd as its
454 value. We use SI_SIGIO as the source, not
455 SI_KERNEL, since kernel signals always get
456 delivered even if we can't queue. Failure to
457 queue in this case _should_ be reported; we fall
458 back to SIGIO in that case. --sct */
459 si
.si_signo
= signum
;
462 /* Make sure we are called with one of the POLL_*
463 reasons, otherwise we could leak kernel stack into
465 BUG_ON((reason
& __SI_MASK
) != __SI_POLL
);
466 if (reason
- POLL_IN
>= NSIGPOLL
)
469 si
.si_band
= band_table
[reason
- POLL_IN
];
471 if (!do_send_sig_info(signum
, &si
, p
, group
))
473 /* fall-through: fall back on the old plain SIGIO signal */
475 do_send_sig_info(SIGIO
, SEND_SIG_PRIV
, p
, group
);
479 void send_sigio(struct fown_struct
*fown
, int fd
, int band
)
481 struct task_struct
*p
;
486 read_lock(&fown
->lock
);
488 type
= fown
->pid_type
;
489 if (type
== PIDTYPE_MAX
) {
496 goto out_unlock_fown
;
498 read_lock(&tasklist_lock
);
499 do_each_pid_task(pid
, type
, p
) {
500 send_sigio_to_task(p
, fown
, fd
, band
, group
);
501 } while_each_pid_task(pid
, type
, p
);
502 read_unlock(&tasklist_lock
);
504 read_unlock(&fown
->lock
);
507 static void send_sigurg_to_task(struct task_struct
*p
,
508 struct fown_struct
*fown
, int group
)
510 if (sigio_perm(p
, fown
, SIGURG
))
511 do_send_sig_info(SIGURG
, SEND_SIG_PRIV
, p
, group
);
514 int send_sigurg(struct fown_struct
*fown
)
516 struct task_struct
*p
;
522 read_lock(&fown
->lock
);
524 type
= fown
->pid_type
;
525 if (type
== PIDTYPE_MAX
) {
532 goto out_unlock_fown
;
536 read_lock(&tasklist_lock
);
537 do_each_pid_task(pid
, type
, p
) {
538 send_sigurg_to_task(p
, fown
, group
);
539 } while_each_pid_task(pid
, type
, p
);
540 read_unlock(&tasklist_lock
);
542 read_unlock(&fown
->lock
);
546 static DEFINE_SPINLOCK(fasync_lock
);
547 static struct kmem_cache
*fasync_cache __read_mostly
;
549 static void fasync_free_rcu(struct rcu_head
*head
)
551 kmem_cache_free(fasync_cache
,
552 container_of(head
, struct fasync_struct
, fa_rcu
));
556 * Remove a fasync entry. If successfully removed, return
557 * positive and clear the FASYNC flag. If no entry exists,
558 * do nothing and return 0.
560 * NOTE! It is very important that the FASYNC flag always
561 * match the state "is the filp on a fasync list".
564 int fasync_remove_entry(struct file
*filp
, struct fasync_struct
**fapp
)
566 struct fasync_struct
*fa
, **fp
;
569 spin_lock(&filp
->f_lock
);
570 spin_lock(&fasync_lock
);
571 for (fp
= fapp
; (fa
= *fp
) != NULL
; fp
= &fa
->fa_next
) {
572 if (fa
->fa_file
!= filp
)
575 spin_lock_irq(&fa
->fa_lock
);
577 spin_unlock_irq(&fa
->fa_lock
);
580 call_rcu(&fa
->fa_rcu
, fasync_free_rcu
);
581 filp
->f_flags
&= ~FASYNC
;
585 spin_unlock(&fasync_lock
);
586 spin_unlock(&filp
->f_lock
);
590 struct fasync_struct
*fasync_alloc(void)
592 return kmem_cache_alloc(fasync_cache
, GFP_KERNEL
);
596 * NOTE! This can be used only for unused fasync entries:
597 * entries that actually got inserted on the fasync list
598 * need to be released by rcu - see fasync_remove_entry.
600 void fasync_free(struct fasync_struct
*new)
602 kmem_cache_free(fasync_cache
, new);
606 * Insert a new entry into the fasync list. Return the pointer to the
607 * old one if we didn't use the new one.
609 * NOTE! It is very important that the FASYNC flag always
610 * match the state "is the filp on a fasync list".
612 struct fasync_struct
*fasync_insert_entry(int fd
, struct file
*filp
, struct fasync_struct
**fapp
, struct fasync_struct
*new)
614 struct fasync_struct
*fa
, **fp
;
616 spin_lock(&filp
->f_lock
);
617 spin_lock(&fasync_lock
);
618 for (fp
= fapp
; (fa
= *fp
) != NULL
; fp
= &fa
->fa_next
) {
619 if (fa
->fa_file
!= filp
)
622 spin_lock_irq(&fa
->fa_lock
);
624 spin_unlock_irq(&fa
->fa_lock
);
628 spin_lock_init(&new->fa_lock
);
629 new->magic
= FASYNC_MAGIC
;
632 new->fa_next
= *fapp
;
633 rcu_assign_pointer(*fapp
, new);
634 filp
->f_flags
|= FASYNC
;
637 spin_unlock(&fasync_lock
);
638 spin_unlock(&filp
->f_lock
);
643 * Add a fasync entry. Return negative on error, positive if
644 * added, and zero if did nothing but change an existing one.
646 static int fasync_add_entry(int fd
, struct file
*filp
, struct fasync_struct
**fapp
)
648 struct fasync_struct
*new;
650 new = fasync_alloc();
655 * fasync_insert_entry() returns the old (update) entry if
658 * So free the (unused) new entry and return 0 to let the
659 * caller know that we didn't add any new fasync entries.
661 if (fasync_insert_entry(fd
, filp
, fapp
, new)) {
670 * fasync_helper() is used by almost all character device drivers
671 * to set up the fasync queue, and for regular files by the file
672 * lease code. It returns negative on error, 0 if it did no changes
673 * and positive if it added/deleted the entry.
675 int fasync_helper(int fd
, struct file
* filp
, int on
, struct fasync_struct
**fapp
)
678 return fasync_remove_entry(filp
, fapp
);
679 return fasync_add_entry(fd
, filp
, fapp
);
682 EXPORT_SYMBOL(fasync_helper
);
685 * rcu_read_lock() is held
687 static void kill_fasync_rcu(struct fasync_struct
*fa
, int sig
, int band
)
690 struct fown_struct
*fown
;
693 if (fa
->magic
!= FASYNC_MAGIC
) {
694 printk(KERN_ERR
"kill_fasync: bad magic number in "
698 spin_lock_irqsave(&fa
->fa_lock
, flags
);
700 fown
= &fa
->fa_file
->f_owner
;
701 /* Don't send SIGURG to processes which have not set a
702 queued signum: SIGURG has its own default signalling
704 if (!(sig
== SIGURG
&& fown
->signum
== 0))
705 send_sigio(fown
, fa
->fa_fd
, band
);
707 spin_unlock_irqrestore(&fa
->fa_lock
, flags
);
708 fa
= rcu_dereference(fa
->fa_next
);
712 void kill_fasync(struct fasync_struct
**fp
, int sig
, int band
)
714 /* First a quick test without locking: usually
719 kill_fasync_rcu(rcu_dereference(*fp
), sig
, band
);
723 EXPORT_SYMBOL(kill_fasync
);
725 static int __init
fcntl_init(void)
728 * Please add new bits here to ensure allocation uniqueness.
729 * Exceptions: O_NONBLOCK is a two bit define on parisc; O_NDELAY
730 * is defined as O_NONBLOCK on some platforms and not on others.
732 BUILD_BUG_ON(20 - 1 /* for O_RDONLY being 0 */ != HWEIGHT32(
733 O_RDONLY
| O_WRONLY
| O_RDWR
|
734 O_CREAT
| O_EXCL
| O_NOCTTY
|
735 O_TRUNC
| O_APPEND
| /* O_NONBLOCK | */
736 __O_SYNC
| O_DSYNC
| FASYNC
|
737 O_DIRECT
| O_LARGEFILE
| O_DIRECTORY
|
738 O_NOFOLLOW
| O_NOATIME
| O_CLOEXEC
|
739 __FMODE_EXEC
| O_PATH
| __O_TMPFILE
742 fasync_cache
= kmem_cache_create("fasync_cache",
743 sizeof(struct fasync_struct
), 0, SLAB_PANIC
, NULL
);
747 module_init(fcntl_init
)