4 * Copyright (C) 1991, 1992 Linus Torvalds
6 * proc base directory handling functions
8 * 1999, Al Viro. Rewritten. Now it covers the whole per-process part.
9 * Instead of using magical inumbers to determine the kind of object
10 * we allocate and fill in-core inodes upon lookup. They don't even
11 * go into icache. We cache the reference to task_struct upon lookup too.
12 * Eventually it should become a filesystem in its own. We don't use the
13 * rest of procfs anymore.
19 * Bruna Moreira <bruna.moreira@indt.org.br>
20 * Edjard Mota <edjard.mota@indt.org.br>
21 * Ilias Biris <ilias.biris@indt.org.br>
22 * Mauricio Lin <mauricio.lin@indt.org.br>
24 * Embedded Linux Lab - 10LE Instituto Nokia de Tecnologia - INdT
26 * A new process specific entry (smaps) included in /proc. It shows the
27 * size of rss for each memory area. The maps entry lacks information
28 * about physical memory size (rss) for each mapped file, i.e.,
29 * rss information for executables and library files.
30 * This additional information is useful for any tools that need to know
31 * about physical memory consumption for a process specific library.
35 * Embedded Linux Lab - 10LE Instituto Nokia de Tecnologia - INdT
36 * Pud inclusion in the page table walking.
40 * 10LE Instituto Nokia de Tecnologia - INdT:
41 * A better way to walks through the page table as suggested by Hugh Dickins.
43 * Simo Piiroinen <simo.piiroinen@nokia.com>:
44 * Smaps information related to shared, private, clean and dirty pages.
46 * Paul Mundt <paul.mundt@nokia.com>:
47 * Overall revision about smaps.
50 #include <asm/uaccess.h>
52 #include <linux/errno.h>
53 #include <linux/time.h>
54 #include <linux/proc_fs.h>
55 #include <linux/stat.h>
56 #include <linux/task_io_accounting_ops.h>
57 #include <linux/init.h>
58 #include <linux/capability.h>
59 #include <linux/file.h>
60 #include <linux/fdtable.h>
61 #include <linux/string.h>
62 #include <linux/seq_file.h>
63 #include <linux/namei.h>
64 #include <linux/mnt_namespace.h>
66 #include <linux/swap.h>
67 #include <linux/rcupdate.h>
68 #include <linux/kallsyms.h>
69 #include <linux/stacktrace.h>
70 #include <linux/resource.h>
71 #include <linux/module.h>
72 #include <linux/mount.h>
73 #include <linux/security.h>
74 #include <linux/ptrace.h>
75 #include <linux/tracehook.h>
76 #include <linux/printk.h>
77 #include <linux/cgroup.h>
78 #include <linux/cpuset.h>
79 #include <linux/audit.h>
80 #include <linux/poll.h>
81 #include <linux/nsproxy.h>
82 #include <linux/oom.h>
83 #include <linux/elf.h>
84 #include <linux/pid_namespace.h>
85 #include <linux/user_namespace.h>
86 #include <linux/fs_struct.h>
87 #include <linux/slab.h>
88 #include <linux/flex_array.h>
89 #include <linux/posix-timers.h>
90 #ifdef CONFIG_HARDWALL
91 #include <asm/hardwall.h>
93 #include <trace/events/oom.h>
98 * Implementing inode permission operations in /proc is almost
99 * certainly an error. Permission checks need to happen during
100 * each system call not at open time. The reason is that most of
101 * what we wish to check for permissions in /proc varies at runtime.
103 * The classic example of a problem is opening file descriptors
104 * in /proc for a task before it execs a suid executable.
111 const struct inode_operations
*iop
;
112 const struct file_operations
*fop
;
116 #define NOD(NAME, MODE, IOP, FOP, OP) { \
118 .len = sizeof(NAME) - 1, \
125 #define DIR(NAME, MODE, iops, fops) \
126 NOD(NAME, (S_IFDIR|(MODE)), &iops, &fops, {} )
127 #define LNK(NAME, get_link) \
128 NOD(NAME, (S_IFLNK|S_IRWXUGO), \
129 &proc_pid_link_inode_operations, NULL, \
130 { .proc_get_link = get_link } )
131 #define REG(NAME, MODE, fops) \
132 NOD(NAME, (S_IFREG|(MODE)), NULL, &fops, {})
133 #define INF(NAME, MODE, read) \
134 NOD(NAME, (S_IFREG|(MODE)), \
135 NULL, &proc_info_file_operations, \
136 { .proc_read = read } )
137 #define ONE(NAME, MODE, show) \
138 NOD(NAME, (S_IFREG|(MODE)), \
139 NULL, &proc_single_file_operations, \
140 { .proc_show = show } )
143 * Count the number of hardlinks for the pid_entry table, excluding the .
146 static unsigned int pid_entry_count_dirs(const struct pid_entry
*entries
,
153 for (i
= 0; i
< n
; ++i
) {
154 if (S_ISDIR(entries
[i
].mode
))
161 static int get_task_root(struct task_struct
*task
, struct path
*root
)
163 int result
= -ENOENT
;
167 get_fs_root(task
->fs
, root
);
174 static int proc_cwd_link(struct dentry
*dentry
, struct path
*path
)
176 struct task_struct
*task
= get_proc_task(dentry
->d_inode
);
177 int result
= -ENOENT
;
182 get_fs_pwd(task
->fs
, path
);
186 put_task_struct(task
);
191 static int proc_root_link(struct dentry
*dentry
, struct path
*path
)
193 struct task_struct
*task
= get_proc_task(dentry
->d_inode
);
194 int result
= -ENOENT
;
197 result
= get_task_root(task
, path
);
198 put_task_struct(task
);
203 static int proc_pid_cmdline(struct task_struct
*task
, char * buffer
)
207 struct mm_struct
*mm
= get_task_mm(task
);
211 goto out_mm
; /* Shh! No looking before we're done */
213 len
= mm
->arg_end
- mm
->arg_start
;
218 res
= access_process_vm(task
, mm
->arg_start
, buffer
, len
, 0);
220 // If the nul at the end of args has been overwritten, then
221 // assume application is using setproctitle(3).
222 if (res
> 0 && buffer
[res
-1] != '\0' && len
< PAGE_SIZE
) {
223 len
= strnlen(buffer
, res
);
227 len
= mm
->env_end
- mm
->env_start
;
228 if (len
> PAGE_SIZE
- res
)
229 len
= PAGE_SIZE
- res
;
230 res
+= access_process_vm(task
, mm
->env_start
, buffer
+res
, len
, 0);
231 res
= strnlen(buffer
, res
);
240 static int proc_pid_auxv(struct task_struct
*task
, char *buffer
)
242 struct mm_struct
*mm
= mm_access(task
, PTRACE_MODE_READ
);
243 int res
= PTR_ERR(mm
);
244 if (mm
&& !IS_ERR(mm
)) {
245 unsigned int nwords
= 0;
248 } while (mm
->saved_auxv
[nwords
- 2] != 0); /* AT_NULL */
249 res
= nwords
* sizeof(mm
->saved_auxv
[0]);
252 memcpy(buffer
, mm
->saved_auxv
, res
);
259 #ifdef CONFIG_KALLSYMS
261 * Provides a wchan file via kallsyms in a proper one-value-per-file format.
262 * Returns the resolved symbol. If that fails, simply return the address.
264 static int proc_pid_wchan(struct task_struct
*task
, char *buffer
)
267 char symname
[KSYM_NAME_LEN
];
269 wchan
= get_wchan(task
);
271 if (lookup_symbol_name(wchan
, symname
) < 0)
272 if (!ptrace_may_access(task
, PTRACE_MODE_READ
))
275 return sprintf(buffer
, "%lu", wchan
);
277 return sprintf(buffer
, "%s", symname
);
279 #endif /* CONFIG_KALLSYMS */
281 static int lock_trace(struct task_struct
*task
)
283 int err
= mutex_lock_killable(&task
->signal
->cred_guard_mutex
);
286 if (!ptrace_may_access(task
, PTRACE_MODE_ATTACH
)) {
287 mutex_unlock(&task
->signal
->cred_guard_mutex
);
293 static void unlock_trace(struct task_struct
*task
)
295 mutex_unlock(&task
->signal
->cred_guard_mutex
);
298 #ifdef CONFIG_STACKTRACE
300 #define MAX_STACK_TRACE_DEPTH 64
302 static int proc_pid_stack(struct seq_file
*m
, struct pid_namespace
*ns
,
303 struct pid
*pid
, struct task_struct
*task
)
305 struct stack_trace trace
;
306 unsigned long *entries
;
310 entries
= kmalloc(MAX_STACK_TRACE_DEPTH
* sizeof(*entries
), GFP_KERNEL
);
314 trace
.nr_entries
= 0;
315 trace
.max_entries
= MAX_STACK_TRACE_DEPTH
;
316 trace
.entries
= entries
;
319 err
= lock_trace(task
);
321 save_stack_trace_tsk(task
, &trace
);
323 for (i
= 0; i
< trace
.nr_entries
; i
++) {
324 seq_printf(m
, "[<%pK>] %pS\n",
325 (void *)entries
[i
], (void *)entries
[i
]);
335 #ifdef CONFIG_SCHEDSTATS
337 * Provides /proc/PID/schedstat
339 static int proc_pid_schedstat(struct task_struct
*task
, char *buffer
)
341 return sprintf(buffer
, "%llu %llu %lu\n",
342 (unsigned long long)task
->se
.sum_exec_runtime
,
343 (unsigned long long)task
->sched_info
.run_delay
,
344 task
->sched_info
.pcount
);
348 #ifdef CONFIG_LATENCYTOP
349 static int lstats_show_proc(struct seq_file
*m
, void *v
)
352 struct inode
*inode
= m
->private;
353 struct task_struct
*task
= get_proc_task(inode
);
357 seq_puts(m
, "Latency Top version : v0.1\n");
358 for (i
= 0; i
< 32; i
++) {
359 struct latency_record
*lr
= &task
->latency_record
[i
];
360 if (lr
->backtrace
[0]) {
362 seq_printf(m
, "%i %li %li",
363 lr
->count
, lr
->time
, lr
->max
);
364 for (q
= 0; q
< LT_BACKTRACEDEPTH
; q
++) {
365 unsigned long bt
= lr
->backtrace
[q
];
370 seq_printf(m
, " %ps", (void *)bt
);
376 put_task_struct(task
);
380 static int lstats_open(struct inode
*inode
, struct file
*file
)
382 return single_open(file
, lstats_show_proc
, inode
);
385 static ssize_t
lstats_write(struct file
*file
, const char __user
*buf
,
386 size_t count
, loff_t
*offs
)
388 struct task_struct
*task
= get_proc_task(file_inode(file
));
392 clear_all_latency_tracing(task
);
393 put_task_struct(task
);
398 static const struct file_operations proc_lstats_operations
= {
401 .write
= lstats_write
,
403 .release
= single_release
,
408 #ifdef CONFIG_CGROUPS
409 static int cgroup_open(struct inode
*inode
, struct file
*file
)
411 struct pid
*pid
= PROC_I(inode
)->pid
;
412 return single_open(file
, proc_cgroup_show
, pid
);
415 static const struct file_operations proc_cgroup_operations
= {
419 .release
= single_release
,
423 #ifdef CONFIG_PROC_PID_CPUSET
425 static int cpuset_open(struct inode
*inode
, struct file
*file
)
427 struct pid
*pid
= PROC_I(inode
)->pid
;
428 return single_open(file
, proc_cpuset_show
, pid
);
431 static const struct file_operations proc_cpuset_operations
= {
435 .release
= single_release
,
439 static int proc_oom_score(struct task_struct
*task
, char *buffer
)
441 unsigned long totalpages
= totalram_pages
+ total_swap_pages
;
442 unsigned long points
= 0;
444 read_lock(&tasklist_lock
);
446 points
= oom_badness(task
, NULL
, NULL
, totalpages
) *
448 read_unlock(&tasklist_lock
);
449 return sprintf(buffer
, "%lu\n", points
);
457 static const struct limit_names lnames
[RLIM_NLIMITS
] = {
458 [RLIMIT_CPU
] = {"Max cpu time", "seconds"},
459 [RLIMIT_FSIZE
] = {"Max file size", "bytes"},
460 [RLIMIT_DATA
] = {"Max data size", "bytes"},
461 [RLIMIT_STACK
] = {"Max stack size", "bytes"},
462 [RLIMIT_CORE
] = {"Max core file size", "bytes"},
463 [RLIMIT_RSS
] = {"Max resident set", "bytes"},
464 [RLIMIT_NPROC
] = {"Max processes", "processes"},
465 [RLIMIT_NOFILE
] = {"Max open files", "files"},
466 [RLIMIT_MEMLOCK
] = {"Max locked memory", "bytes"},
467 [RLIMIT_AS
] = {"Max address space", "bytes"},
468 [RLIMIT_LOCKS
] = {"Max file locks", "locks"},
469 [RLIMIT_SIGPENDING
] = {"Max pending signals", "signals"},
470 [RLIMIT_MSGQUEUE
] = {"Max msgqueue size", "bytes"},
471 [RLIMIT_NICE
] = {"Max nice priority", NULL
},
472 [RLIMIT_RTPRIO
] = {"Max realtime priority", NULL
},
473 [RLIMIT_RTTIME
] = {"Max realtime timeout", "us"},
476 /* Display limits for a process */
477 static int proc_pid_limits(struct task_struct
*task
, char *buffer
)
482 char *bufptr
= buffer
;
484 struct rlimit rlim
[RLIM_NLIMITS
];
486 if (!lock_task_sighand(task
, &flags
))
488 memcpy(rlim
, task
->signal
->rlim
, sizeof(struct rlimit
) * RLIM_NLIMITS
);
489 unlock_task_sighand(task
, &flags
);
492 * print the file header
494 count
+= sprintf(&bufptr
[count
], "%-25s %-20s %-20s %-10s\n",
495 "Limit", "Soft Limit", "Hard Limit", "Units");
497 for (i
= 0; i
< RLIM_NLIMITS
; i
++) {
498 if (rlim
[i
].rlim_cur
== RLIM_INFINITY
)
499 count
+= sprintf(&bufptr
[count
], "%-25s %-20s ",
500 lnames
[i
].name
, "unlimited");
502 count
+= sprintf(&bufptr
[count
], "%-25s %-20lu ",
503 lnames
[i
].name
, rlim
[i
].rlim_cur
);
505 if (rlim
[i
].rlim_max
== RLIM_INFINITY
)
506 count
+= sprintf(&bufptr
[count
], "%-20s ", "unlimited");
508 count
+= sprintf(&bufptr
[count
], "%-20lu ",
512 count
+= sprintf(&bufptr
[count
], "%-10s\n",
515 count
+= sprintf(&bufptr
[count
], "\n");
521 #ifdef CONFIG_HAVE_ARCH_TRACEHOOK
522 static int proc_pid_syscall(struct task_struct
*task
, char *buffer
)
525 unsigned long args
[6], sp
, pc
;
526 int res
= lock_trace(task
);
530 if (task_current_syscall(task
, &nr
, args
, 6, &sp
, &pc
))
531 res
= sprintf(buffer
, "running\n");
533 res
= sprintf(buffer
, "%ld 0x%lx 0x%lx\n", nr
, sp
, pc
);
535 res
= sprintf(buffer
,
536 "%ld 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx\n",
538 args
[0], args
[1], args
[2], args
[3], args
[4], args
[5],
543 #endif /* CONFIG_HAVE_ARCH_TRACEHOOK */
545 /************************************************************************/
546 /* Here the fs part begins */
547 /************************************************************************/
549 /* permission checks */
550 static int proc_fd_access_allowed(struct inode
*inode
)
552 struct task_struct
*task
;
554 /* Allow access to a task's file descriptors if it is us or we
555 * may use ptrace attach to the process and find out that
558 task
= get_proc_task(inode
);
560 allowed
= ptrace_may_access(task
, PTRACE_MODE_READ
);
561 put_task_struct(task
);
566 int proc_setattr(struct dentry
*dentry
, struct iattr
*attr
)
569 struct inode
*inode
= dentry
->d_inode
;
571 if (attr
->ia_valid
& ATTR_MODE
)
574 error
= inode_change_ok(inode
, attr
);
578 setattr_copy(inode
, attr
);
579 mark_inode_dirty(inode
);
584 * May current process learn task's sched/cmdline info (for hide_pid_min=1)
585 * or euid/egid (for hide_pid_min=2)?
587 static bool has_pid_permissions(struct pid_namespace
*pid
,
588 struct task_struct
*task
,
591 if (pid
->hide_pid
< hide_pid_min
)
593 if (in_group_p(pid
->pid_gid
))
595 return ptrace_may_access(task
, PTRACE_MODE_READ
);
599 static int proc_pid_permission(struct inode
*inode
, int mask
)
601 struct pid_namespace
*pid
= inode
->i_sb
->s_fs_info
;
602 struct task_struct
*task
;
605 task
= get_proc_task(inode
);
608 has_perms
= has_pid_permissions(pid
, task
, 1);
609 put_task_struct(task
);
612 if (pid
->hide_pid
== 2) {
614 * Let's make getdents(), stat(), and open()
615 * consistent with each other. If a process
616 * may not stat() a file, it shouldn't be seen
624 return generic_permission(inode
, mask
);
629 static const struct inode_operations proc_def_inode_operations
= {
630 .setattr
= proc_setattr
,
633 #define PROC_BLOCK_SIZE (3*1024) /* 4K page size but our output routines use some slack for overruns */
635 static ssize_t
proc_info_read(struct file
* file
, char __user
* buf
,
636 size_t count
, loff_t
*ppos
)
638 struct inode
* inode
= file_inode(file
);
641 struct task_struct
*task
= get_proc_task(inode
);
647 if (count
> PROC_BLOCK_SIZE
)
648 count
= PROC_BLOCK_SIZE
;
651 if (!(page
= __get_free_page(GFP_TEMPORARY
)))
654 length
= PROC_I(inode
)->op
.proc_read(task
, (char*)page
);
657 length
= simple_read_from_buffer(buf
, count
, ppos
, (char *)page
, length
);
660 put_task_struct(task
);
665 static const struct file_operations proc_info_file_operations
= {
666 .read
= proc_info_read
,
667 .llseek
= generic_file_llseek
,
670 static int proc_single_show(struct seq_file
*m
, void *v
)
672 struct inode
*inode
= m
->private;
673 struct pid_namespace
*ns
;
675 struct task_struct
*task
;
678 ns
= inode
->i_sb
->s_fs_info
;
679 pid
= proc_pid(inode
);
680 task
= get_pid_task(pid
, PIDTYPE_PID
);
684 ret
= PROC_I(inode
)->op
.proc_show(m
, ns
, pid
, task
);
686 put_task_struct(task
);
690 static int proc_single_open(struct inode
*inode
, struct file
*filp
)
692 return single_open(filp
, proc_single_show
, inode
);
695 static const struct file_operations proc_single_file_operations
= {
696 .open
= proc_single_open
,
699 .release
= single_release
,
702 static int __mem_open(struct inode
*inode
, struct file
*file
, unsigned int mode
)
704 struct task_struct
*task
= get_proc_task(file_inode(file
));
705 struct mm_struct
*mm
;
710 mm
= mm_access(task
, mode
);
711 put_task_struct(task
);
717 /* ensure this mm_struct can't be freed */
718 atomic_inc(&mm
->mm_count
);
719 /* but do not pin its memory */
723 file
->private_data
= mm
;
728 static int mem_open(struct inode
*inode
, struct file
*file
)
730 int ret
= __mem_open(inode
, file
, PTRACE_MODE_ATTACH
);
732 /* OK to pass negative loff_t, we can catch out-of-range */
733 file
->f_mode
|= FMODE_UNSIGNED_OFFSET
;
738 static ssize_t
mem_rw(struct file
*file
, char __user
*buf
,
739 size_t count
, loff_t
*ppos
, int write
)
741 struct mm_struct
*mm
= file
->private_data
;
742 unsigned long addr
= *ppos
;
749 page
= (char *)__get_free_page(GFP_TEMPORARY
);
754 if (!atomic_inc_not_zero(&mm
->mm_users
))
758 int this_len
= min_t(int, count
, PAGE_SIZE
);
760 if (write
&& copy_from_user(page
, buf
, this_len
)) {
765 this_len
= access_remote_vm(mm
, addr
, page
, this_len
, write
);
772 if (!write
&& copy_to_user(buf
, page
, this_len
)) {
786 free_page((unsigned long) page
);
790 static ssize_t
mem_read(struct file
*file
, char __user
*buf
,
791 size_t count
, loff_t
*ppos
)
793 return mem_rw(file
, buf
, count
, ppos
, 0);
796 static ssize_t
mem_write(struct file
*file
, const char __user
*buf
,
797 size_t count
, loff_t
*ppos
)
799 return mem_rw(file
, (char __user
*)buf
, count
, ppos
, 1);
802 loff_t
mem_lseek(struct file
*file
, loff_t offset
, int orig
)
806 file
->f_pos
= offset
;
809 file
->f_pos
+= offset
;
814 force_successful_syscall_return();
818 static int mem_release(struct inode
*inode
, struct file
*file
)
820 struct mm_struct
*mm
= file
->private_data
;
826 static const struct file_operations proc_mem_operations
= {
831 .release
= mem_release
,
834 static int environ_open(struct inode
*inode
, struct file
*file
)
836 return __mem_open(inode
, file
, PTRACE_MODE_READ
);
839 static ssize_t
environ_read(struct file
*file
, char __user
*buf
,
840 size_t count
, loff_t
*ppos
)
843 unsigned long src
= *ppos
;
845 struct mm_struct
*mm
= file
->private_data
;
850 page
= (char *)__get_free_page(GFP_TEMPORARY
);
855 if (!atomic_inc_not_zero(&mm
->mm_users
))
858 size_t this_len
, max_len
;
861 if (src
>= (mm
->env_end
- mm
->env_start
))
864 this_len
= mm
->env_end
- (mm
->env_start
+ src
);
866 max_len
= min_t(size_t, PAGE_SIZE
, count
);
867 this_len
= min(max_len
, this_len
);
869 retval
= access_remote_vm(mm
, (mm
->env_start
+ src
),
877 if (copy_to_user(buf
, page
, retval
)) {
891 free_page((unsigned long) page
);
895 static const struct file_operations proc_environ_operations
= {
896 .open
= environ_open
,
897 .read
= environ_read
,
898 .llseek
= generic_file_llseek
,
899 .release
= mem_release
,
902 static ssize_t
oom_adj_read(struct file
*file
, char __user
*buf
, size_t count
,
905 struct task_struct
*task
= get_proc_task(file_inode(file
));
906 char buffer
[PROC_NUMBUF
];
907 int oom_adj
= OOM_ADJUST_MIN
;
913 if (lock_task_sighand(task
, &flags
)) {
914 if (task
->signal
->oom_score_adj
== OOM_SCORE_ADJ_MAX
)
915 oom_adj
= OOM_ADJUST_MAX
;
917 oom_adj
= (task
->signal
->oom_score_adj
* -OOM_DISABLE
) /
919 unlock_task_sighand(task
, &flags
);
921 put_task_struct(task
);
922 len
= snprintf(buffer
, sizeof(buffer
), "%d\n", oom_adj
);
923 return simple_read_from_buffer(buf
, count
, ppos
, buffer
, len
);
926 static ssize_t
oom_adj_write(struct file
*file
, const char __user
*buf
,
927 size_t count
, loff_t
*ppos
)
929 struct task_struct
*task
;
930 char buffer
[PROC_NUMBUF
];
935 memset(buffer
, 0, sizeof(buffer
));
936 if (count
> sizeof(buffer
) - 1)
937 count
= sizeof(buffer
) - 1;
938 if (copy_from_user(buffer
, buf
, count
)) {
943 err
= kstrtoint(strstrip(buffer
), 0, &oom_adj
);
946 if ((oom_adj
< OOM_ADJUST_MIN
|| oom_adj
> OOM_ADJUST_MAX
) &&
947 oom_adj
!= OOM_DISABLE
) {
952 task
= get_proc_task(file_inode(file
));
964 if (!lock_task_sighand(task
, &flags
)) {
970 * Scale /proc/pid/oom_score_adj appropriately ensuring that a maximum
971 * value is always attainable.
973 if (oom_adj
== OOM_ADJUST_MAX
)
974 oom_adj
= OOM_SCORE_ADJ_MAX
;
976 oom_adj
= (oom_adj
* OOM_SCORE_ADJ_MAX
) / -OOM_DISABLE
;
978 if (oom_adj
< task
->signal
->oom_score_adj
&&
979 !capable(CAP_SYS_RESOURCE
)) {
985 * /proc/pid/oom_adj is provided for legacy purposes, ask users to use
986 * /proc/pid/oom_score_adj instead.
988 pr_warn_once("%s (%d): /proc/%d/oom_adj is deprecated, please use /proc/%d/oom_score_adj instead.\n",
989 current
->comm
, task_pid_nr(current
), task_pid_nr(task
),
992 task
->signal
->oom_score_adj
= oom_adj
;
993 trace_oom_score_adj_update(task
);
995 unlock_task_sighand(task
, &flags
);
998 put_task_struct(task
);
1000 return err
< 0 ? err
: count
;
1003 static const struct file_operations proc_oom_adj_operations
= {
1004 .read
= oom_adj_read
,
1005 .write
= oom_adj_write
,
1006 .llseek
= generic_file_llseek
,
1009 static ssize_t
oom_score_adj_read(struct file
*file
, char __user
*buf
,
1010 size_t count
, loff_t
*ppos
)
1012 struct task_struct
*task
= get_proc_task(file_inode(file
));
1013 char buffer
[PROC_NUMBUF
];
1014 short oom_score_adj
= OOM_SCORE_ADJ_MIN
;
1015 unsigned long flags
;
1020 if (lock_task_sighand(task
, &flags
)) {
1021 oom_score_adj
= task
->signal
->oom_score_adj
;
1022 unlock_task_sighand(task
, &flags
);
1024 put_task_struct(task
);
1025 len
= snprintf(buffer
, sizeof(buffer
), "%hd\n", oom_score_adj
);
1026 return simple_read_from_buffer(buf
, count
, ppos
, buffer
, len
);
1029 static ssize_t
oom_score_adj_write(struct file
*file
, const char __user
*buf
,
1030 size_t count
, loff_t
*ppos
)
1032 struct task_struct
*task
;
1033 char buffer
[PROC_NUMBUF
];
1034 unsigned long flags
;
1038 memset(buffer
, 0, sizeof(buffer
));
1039 if (count
> sizeof(buffer
) - 1)
1040 count
= sizeof(buffer
) - 1;
1041 if (copy_from_user(buffer
, buf
, count
)) {
1046 err
= kstrtoint(strstrip(buffer
), 0, &oom_score_adj
);
1049 if (oom_score_adj
< OOM_SCORE_ADJ_MIN
||
1050 oom_score_adj
> OOM_SCORE_ADJ_MAX
) {
1055 task
= get_proc_task(file_inode(file
));
1067 if (!lock_task_sighand(task
, &flags
)) {
1072 if ((short)oom_score_adj
< task
->signal
->oom_score_adj_min
&&
1073 !capable(CAP_SYS_RESOURCE
)) {
1078 task
->signal
->oom_score_adj
= (short)oom_score_adj
;
1079 if (has_capability_noaudit(current
, CAP_SYS_RESOURCE
))
1080 task
->signal
->oom_score_adj_min
= (short)oom_score_adj
;
1081 trace_oom_score_adj_update(task
);
1084 unlock_task_sighand(task
, &flags
);
1087 put_task_struct(task
);
1089 return err
< 0 ? err
: count
;
1092 static const struct file_operations proc_oom_score_adj_operations
= {
1093 .read
= oom_score_adj_read
,
1094 .write
= oom_score_adj_write
,
1095 .llseek
= default_llseek
,
1098 #ifdef CONFIG_AUDITSYSCALL
1099 #define TMPBUFLEN 21
1100 static ssize_t
proc_loginuid_read(struct file
* file
, char __user
* buf
,
1101 size_t count
, loff_t
*ppos
)
1103 struct inode
* inode
= file_inode(file
);
1104 struct task_struct
*task
= get_proc_task(inode
);
1106 char tmpbuf
[TMPBUFLEN
];
1110 length
= scnprintf(tmpbuf
, TMPBUFLEN
, "%u",
1111 from_kuid(file
->f_cred
->user_ns
,
1112 audit_get_loginuid(task
)));
1113 put_task_struct(task
);
1114 return simple_read_from_buffer(buf
, count
, ppos
, tmpbuf
, length
);
1117 static ssize_t
proc_loginuid_write(struct file
* file
, const char __user
* buf
,
1118 size_t count
, loff_t
*ppos
)
1120 struct inode
* inode
= file_inode(file
);
1127 if (current
!= pid_task(proc_pid(inode
), PIDTYPE_PID
)) {
1133 if (count
>= PAGE_SIZE
)
1134 count
= PAGE_SIZE
- 1;
1137 /* No partial writes. */
1140 page
= (char*)__get_free_page(GFP_TEMPORARY
);
1144 if (copy_from_user(page
, buf
, count
))
1148 loginuid
= simple_strtoul(page
, &tmp
, 10);
1155 /* is userspace tring to explicitly UNSET the loginuid? */
1156 if (loginuid
== AUDIT_UID_UNSET
) {
1157 kloginuid
= INVALID_UID
;
1159 kloginuid
= make_kuid(file
->f_cred
->user_ns
, loginuid
);
1160 if (!uid_valid(kloginuid
)) {
1166 length
= audit_set_loginuid(kloginuid
);
1167 if (likely(length
== 0))
1171 free_page((unsigned long) page
);
1175 static const struct file_operations proc_loginuid_operations
= {
1176 .read
= proc_loginuid_read
,
1177 .write
= proc_loginuid_write
,
1178 .llseek
= generic_file_llseek
,
1181 static ssize_t
proc_sessionid_read(struct file
* file
, char __user
* buf
,
1182 size_t count
, loff_t
*ppos
)
1184 struct inode
* inode
= file_inode(file
);
1185 struct task_struct
*task
= get_proc_task(inode
);
1187 char tmpbuf
[TMPBUFLEN
];
1191 length
= scnprintf(tmpbuf
, TMPBUFLEN
, "%u",
1192 audit_get_sessionid(task
));
1193 put_task_struct(task
);
1194 return simple_read_from_buffer(buf
, count
, ppos
, tmpbuf
, length
);
1197 static const struct file_operations proc_sessionid_operations
= {
1198 .read
= proc_sessionid_read
,
1199 .llseek
= generic_file_llseek
,
1203 #ifdef CONFIG_FAULT_INJECTION
1204 static ssize_t
proc_fault_inject_read(struct file
* file
, char __user
* buf
,
1205 size_t count
, loff_t
*ppos
)
1207 struct task_struct
*task
= get_proc_task(file_inode(file
));
1208 char buffer
[PROC_NUMBUF
];
1214 make_it_fail
= task
->make_it_fail
;
1215 put_task_struct(task
);
1217 len
= snprintf(buffer
, sizeof(buffer
), "%i\n", make_it_fail
);
1219 return simple_read_from_buffer(buf
, count
, ppos
, buffer
, len
);
1222 static ssize_t
proc_fault_inject_write(struct file
* file
,
1223 const char __user
* buf
, size_t count
, loff_t
*ppos
)
1225 struct task_struct
*task
;
1226 char buffer
[PROC_NUMBUF
], *end
;
1229 if (!capable(CAP_SYS_RESOURCE
))
1231 memset(buffer
, 0, sizeof(buffer
));
1232 if (count
> sizeof(buffer
) - 1)
1233 count
= sizeof(buffer
) - 1;
1234 if (copy_from_user(buffer
, buf
, count
))
1236 make_it_fail
= simple_strtol(strstrip(buffer
), &end
, 0);
1239 task
= get_proc_task(file_inode(file
));
1242 task
->make_it_fail
= make_it_fail
;
1243 put_task_struct(task
);
1248 static const struct file_operations proc_fault_inject_operations
= {
1249 .read
= proc_fault_inject_read
,
1250 .write
= proc_fault_inject_write
,
1251 .llseek
= generic_file_llseek
,
1256 #ifdef CONFIG_SCHED_DEBUG
1258 * Print out various scheduling related per-task fields:
1260 static int sched_show(struct seq_file
*m
, void *v
)
1262 struct inode
*inode
= m
->private;
1263 struct task_struct
*p
;
1265 p
= get_proc_task(inode
);
1268 proc_sched_show_task(p
, m
);
1276 sched_write(struct file
*file
, const char __user
*buf
,
1277 size_t count
, loff_t
*offset
)
1279 struct inode
*inode
= file_inode(file
);
1280 struct task_struct
*p
;
1282 p
= get_proc_task(inode
);
1285 proc_sched_set_task(p
);
1292 static int sched_open(struct inode
*inode
, struct file
*filp
)
1294 return single_open(filp
, sched_show
, inode
);
1297 static const struct file_operations proc_pid_sched_operations
= {
1300 .write
= sched_write
,
1301 .llseek
= seq_lseek
,
1302 .release
= single_release
,
1307 #ifdef CONFIG_SCHED_AUTOGROUP
1309 * Print out autogroup related information:
1311 static int sched_autogroup_show(struct seq_file
*m
, void *v
)
1313 struct inode
*inode
= m
->private;
1314 struct task_struct
*p
;
1316 p
= get_proc_task(inode
);
1319 proc_sched_autogroup_show_task(p
, m
);
1327 sched_autogroup_write(struct file
*file
, const char __user
*buf
,
1328 size_t count
, loff_t
*offset
)
1330 struct inode
*inode
= file_inode(file
);
1331 struct task_struct
*p
;
1332 char buffer
[PROC_NUMBUF
];
1336 memset(buffer
, 0, sizeof(buffer
));
1337 if (count
> sizeof(buffer
) - 1)
1338 count
= sizeof(buffer
) - 1;
1339 if (copy_from_user(buffer
, buf
, count
))
1342 err
= kstrtoint(strstrip(buffer
), 0, &nice
);
1346 p
= get_proc_task(inode
);
1350 err
= proc_sched_autogroup_set_nice(p
, nice
);
1359 static int sched_autogroup_open(struct inode
*inode
, struct file
*filp
)
1363 ret
= single_open(filp
, sched_autogroup_show
, NULL
);
1365 struct seq_file
*m
= filp
->private_data
;
1372 static const struct file_operations proc_pid_sched_autogroup_operations
= {
1373 .open
= sched_autogroup_open
,
1375 .write
= sched_autogroup_write
,
1376 .llseek
= seq_lseek
,
1377 .release
= single_release
,
1380 #endif /* CONFIG_SCHED_AUTOGROUP */
1382 static ssize_t
comm_write(struct file
*file
, const char __user
*buf
,
1383 size_t count
, loff_t
*offset
)
1385 struct inode
*inode
= file_inode(file
);
1386 struct task_struct
*p
;
1387 char buffer
[TASK_COMM_LEN
];
1388 const size_t maxlen
= sizeof(buffer
) - 1;
1390 memset(buffer
, 0, sizeof(buffer
));
1391 if (copy_from_user(buffer
, buf
, count
> maxlen
? maxlen
: count
))
1394 p
= get_proc_task(inode
);
1398 if (same_thread_group(current
, p
))
1399 set_task_comm(p
, buffer
);
1408 static int comm_show(struct seq_file
*m
, void *v
)
1410 struct inode
*inode
= m
->private;
1411 struct task_struct
*p
;
1413 p
= get_proc_task(inode
);
1418 seq_printf(m
, "%s\n", p
->comm
);
1426 static int comm_open(struct inode
*inode
, struct file
*filp
)
1428 return single_open(filp
, comm_show
, inode
);
1431 static const struct file_operations proc_pid_set_comm_operations
= {
1434 .write
= comm_write
,
1435 .llseek
= seq_lseek
,
1436 .release
= single_release
,
1439 static int proc_exe_link(struct dentry
*dentry
, struct path
*exe_path
)
1441 struct task_struct
*task
;
1442 struct mm_struct
*mm
;
1443 struct file
*exe_file
;
1445 task
= get_proc_task(dentry
->d_inode
);
1448 mm
= get_task_mm(task
);
1449 put_task_struct(task
);
1452 exe_file
= get_mm_exe_file(mm
);
1455 *exe_path
= exe_file
->f_path
;
1456 path_get(&exe_file
->f_path
);
1463 static void *proc_pid_follow_link(struct dentry
*dentry
, struct nameidata
*nd
)
1465 struct inode
*inode
= dentry
->d_inode
;
1467 int error
= -EACCES
;
1469 /* Are we allowed to snoop on the tasks file descriptors? */
1470 if (!proc_fd_access_allowed(inode
))
1473 error
= PROC_I(inode
)->op
.proc_get_link(dentry
, &path
);
1477 nd_jump_link(nd
, &path
);
1480 return ERR_PTR(error
);
1483 static int do_proc_readlink(struct path
*path
, char __user
*buffer
, int buflen
)
1485 char *tmp
= (char*)__get_free_page(GFP_TEMPORARY
);
1492 pathname
= d_path(path
, tmp
, PAGE_SIZE
);
1493 len
= PTR_ERR(pathname
);
1494 if (IS_ERR(pathname
))
1496 len
= tmp
+ PAGE_SIZE
- 1 - pathname
;
1500 if (copy_to_user(buffer
, pathname
, len
))
1503 free_page((unsigned long)tmp
);
1507 static int proc_pid_readlink(struct dentry
* dentry
, char __user
* buffer
, int buflen
)
1509 int error
= -EACCES
;
1510 struct inode
*inode
= dentry
->d_inode
;
1513 /* Are we allowed to snoop on the tasks file descriptors? */
1514 if (!proc_fd_access_allowed(inode
))
1517 error
= PROC_I(inode
)->op
.proc_get_link(dentry
, &path
);
1521 error
= do_proc_readlink(&path
, buffer
, buflen
);
1527 const struct inode_operations proc_pid_link_inode_operations
= {
1528 .readlink
= proc_pid_readlink
,
1529 .follow_link
= proc_pid_follow_link
,
1530 .setattr
= proc_setattr
,
1534 /* building an inode */
1536 struct inode
*proc_pid_make_inode(struct super_block
* sb
, struct task_struct
*task
)
1538 struct inode
* inode
;
1539 struct proc_inode
*ei
;
1540 const struct cred
*cred
;
1542 /* We need a new inode */
1544 inode
= new_inode(sb
);
1550 inode
->i_ino
= get_next_ino();
1551 inode
->i_mtime
= inode
->i_atime
= inode
->i_ctime
= CURRENT_TIME
;
1552 inode
->i_op
= &proc_def_inode_operations
;
1555 * grab the reference to task.
1557 ei
->pid
= get_task_pid(task
, PIDTYPE_PID
);
1561 if (task_dumpable(task
)) {
1563 cred
= __task_cred(task
);
1564 inode
->i_uid
= cred
->euid
;
1565 inode
->i_gid
= cred
->egid
;
1568 security_task_to_inode(task
, inode
);
1578 int pid_getattr(struct vfsmount
*mnt
, struct dentry
*dentry
, struct kstat
*stat
)
1580 struct inode
*inode
= dentry
->d_inode
;
1581 struct task_struct
*task
;
1582 const struct cred
*cred
;
1583 struct pid_namespace
*pid
= dentry
->d_sb
->s_fs_info
;
1585 generic_fillattr(inode
, stat
);
1588 stat
->uid
= GLOBAL_ROOT_UID
;
1589 stat
->gid
= GLOBAL_ROOT_GID
;
1590 task
= pid_task(proc_pid(inode
), PIDTYPE_PID
);
1592 if (!has_pid_permissions(pid
, task
, 2)) {
1595 * This doesn't prevent learning whether PID exists,
1596 * it only makes getattr() consistent with readdir().
1600 if ((inode
->i_mode
== (S_IFDIR
|S_IRUGO
|S_IXUGO
)) ||
1601 task_dumpable(task
)) {
1602 cred
= __task_cred(task
);
1603 stat
->uid
= cred
->euid
;
1604 stat
->gid
= cred
->egid
;
1614 * Exceptional case: normally we are not allowed to unhash a busy
1615 * directory. In this case, however, we can do it - no aliasing problems
1616 * due to the way we treat inodes.
1618 * Rewrite the inode's ownerships here because the owning task may have
1619 * performed a setuid(), etc.
1621 * Before the /proc/pid/status file was created the only way to read
1622 * the effective uid of a /process was to stat /proc/pid. Reading
1623 * /proc/pid/status is slow enough that procps and other packages
1624 * kept stating /proc/pid. To keep the rules in /proc simple I have
1625 * made this apply to all per process world readable and executable
1628 int pid_revalidate(struct dentry
*dentry
, unsigned int flags
)
1630 struct inode
*inode
;
1631 struct task_struct
*task
;
1632 const struct cred
*cred
;
1634 if (flags
& LOOKUP_RCU
)
1637 inode
= dentry
->d_inode
;
1638 task
= get_proc_task(inode
);
1641 if ((inode
->i_mode
== (S_IFDIR
|S_IRUGO
|S_IXUGO
)) ||
1642 task_dumpable(task
)) {
1644 cred
= __task_cred(task
);
1645 inode
->i_uid
= cred
->euid
;
1646 inode
->i_gid
= cred
->egid
;
1649 inode
->i_uid
= GLOBAL_ROOT_UID
;
1650 inode
->i_gid
= GLOBAL_ROOT_GID
;
1652 inode
->i_mode
&= ~(S_ISUID
| S_ISGID
);
1653 security_task_to_inode(task
, inode
);
1654 put_task_struct(task
);
1661 int pid_delete_dentry(const struct dentry
*dentry
)
1663 /* Is the task we represent dead?
1664 * If so, then don't put the dentry on the lru list,
1665 * kill it immediately.
1667 return !proc_pid(dentry
->d_inode
)->tasks
[PIDTYPE_PID
].first
;
1670 const struct dentry_operations pid_dentry_operations
=
1672 .d_revalidate
= pid_revalidate
,
1673 .d_delete
= pid_delete_dentry
,
1679 * Fill a directory entry.
1681 * If possible create the dcache entry and derive our inode number and
1682 * file type from dcache entry.
1684 * Since all of the proc inode numbers are dynamically generated, the inode
1685 * numbers do not exist until the inode is cache. This means creating the
1686 * the dcache entry in readdir is necessary to keep the inode numbers
1687 * reported by readdir in sync with the inode numbers reported
1690 bool proc_fill_cache(struct file
*file
, struct dir_context
*ctx
,
1691 const char *name
, int len
,
1692 instantiate_t instantiate
, struct task_struct
*task
, const void *ptr
)
1694 struct dentry
*child
, *dir
= file
->f_path
.dentry
;
1695 struct qstr qname
= QSTR_INIT(name
, len
);
1696 struct inode
*inode
;
1700 child
= d_hash_and_lookup(dir
, &qname
);
1702 child
= d_alloc(dir
, &qname
);
1704 goto end_instantiate
;
1705 if (instantiate(dir
->d_inode
, child
, task
, ptr
) < 0) {
1707 goto end_instantiate
;
1710 inode
= child
->d_inode
;
1712 type
= inode
->i_mode
>> 12;
1714 return dir_emit(ctx
, name
, len
, ino
, type
);
1717 return dir_emit(ctx
, name
, len
, 1, DT_UNKNOWN
);
1720 #ifdef CONFIG_CHECKPOINT_RESTORE
1723 * dname_to_vma_addr - maps a dentry name into two unsigned longs
1724 * which represent vma start and end addresses.
1726 static int dname_to_vma_addr(struct dentry
*dentry
,
1727 unsigned long *start
, unsigned long *end
)
1729 if (sscanf(dentry
->d_name
.name
, "%lx-%lx", start
, end
) != 2)
1735 static int map_files_d_revalidate(struct dentry
*dentry
, unsigned int flags
)
1737 unsigned long vm_start
, vm_end
;
1738 bool exact_vma_exists
= false;
1739 struct mm_struct
*mm
= NULL
;
1740 struct task_struct
*task
;
1741 const struct cred
*cred
;
1742 struct inode
*inode
;
1745 if (flags
& LOOKUP_RCU
)
1748 if (!capable(CAP_SYS_ADMIN
)) {
1753 inode
= dentry
->d_inode
;
1754 task
= get_proc_task(inode
);
1758 mm
= mm_access(task
, PTRACE_MODE_READ
);
1759 if (IS_ERR_OR_NULL(mm
))
1762 if (!dname_to_vma_addr(dentry
, &vm_start
, &vm_end
)) {
1763 down_read(&mm
->mmap_sem
);
1764 exact_vma_exists
= !!find_exact_vma(mm
, vm_start
, vm_end
);
1765 up_read(&mm
->mmap_sem
);
1770 if (exact_vma_exists
) {
1771 if (task_dumpable(task
)) {
1773 cred
= __task_cred(task
);
1774 inode
->i_uid
= cred
->euid
;
1775 inode
->i_gid
= cred
->egid
;
1778 inode
->i_uid
= GLOBAL_ROOT_UID
;
1779 inode
->i_gid
= GLOBAL_ROOT_GID
;
1781 security_task_to_inode(task
, inode
);
1786 put_task_struct(task
);
1795 static const struct dentry_operations tid_map_files_dentry_operations
= {
1796 .d_revalidate
= map_files_d_revalidate
,
1797 .d_delete
= pid_delete_dentry
,
1800 static int proc_map_files_get_link(struct dentry
*dentry
, struct path
*path
)
1802 unsigned long vm_start
, vm_end
;
1803 struct vm_area_struct
*vma
;
1804 struct task_struct
*task
;
1805 struct mm_struct
*mm
;
1809 task
= get_proc_task(dentry
->d_inode
);
1813 mm
= get_task_mm(task
);
1814 put_task_struct(task
);
1818 rc
= dname_to_vma_addr(dentry
, &vm_start
, &vm_end
);
1822 down_read(&mm
->mmap_sem
);
1823 vma
= find_exact_vma(mm
, vm_start
, vm_end
);
1824 if (vma
&& vma
->vm_file
) {
1825 *path
= vma
->vm_file
->f_path
;
1829 up_read(&mm
->mmap_sem
);
1837 struct map_files_info
{
1840 unsigned char name
[4*sizeof(long)+2]; /* max: %lx-%lx\0 */
1844 proc_map_files_instantiate(struct inode
*dir
, struct dentry
*dentry
,
1845 struct task_struct
*task
, const void *ptr
)
1847 fmode_t mode
= (fmode_t
)(unsigned long)ptr
;
1848 struct proc_inode
*ei
;
1849 struct inode
*inode
;
1851 inode
= proc_pid_make_inode(dir
->i_sb
, task
);
1856 ei
->op
.proc_get_link
= proc_map_files_get_link
;
1858 inode
->i_op
= &proc_pid_link_inode_operations
;
1860 inode
->i_mode
= S_IFLNK
;
1862 if (mode
& FMODE_READ
)
1863 inode
->i_mode
|= S_IRUSR
;
1864 if (mode
& FMODE_WRITE
)
1865 inode
->i_mode
|= S_IWUSR
;
1867 d_set_d_op(dentry
, &tid_map_files_dentry_operations
);
1868 d_add(dentry
, inode
);
1873 static struct dentry
*proc_map_files_lookup(struct inode
*dir
,
1874 struct dentry
*dentry
, unsigned int flags
)
1876 unsigned long vm_start
, vm_end
;
1877 struct vm_area_struct
*vma
;
1878 struct task_struct
*task
;
1880 struct mm_struct
*mm
;
1883 if (!capable(CAP_SYS_ADMIN
))
1887 task
= get_proc_task(dir
);
1892 if (!ptrace_may_access(task
, PTRACE_MODE_READ
))
1896 if (dname_to_vma_addr(dentry
, &vm_start
, &vm_end
))
1899 mm
= get_task_mm(task
);
1903 down_read(&mm
->mmap_sem
);
1904 vma
= find_exact_vma(mm
, vm_start
, vm_end
);
1909 result
= proc_map_files_instantiate(dir
, dentry
, task
,
1910 (void *)(unsigned long)vma
->vm_file
->f_mode
);
1913 up_read(&mm
->mmap_sem
);
1916 put_task_struct(task
);
1918 return ERR_PTR(result
);
1921 static const struct inode_operations proc_map_files_inode_operations
= {
1922 .lookup
= proc_map_files_lookup
,
1923 .permission
= proc_fd_permission
,
1924 .setattr
= proc_setattr
,
1928 proc_map_files_readdir(struct file
*file
, struct dir_context
*ctx
)
1930 struct vm_area_struct
*vma
;
1931 struct task_struct
*task
;
1932 struct mm_struct
*mm
;
1933 unsigned long nr_files
, pos
, i
;
1934 struct flex_array
*fa
= NULL
;
1935 struct map_files_info info
;
1936 struct map_files_info
*p
;
1940 if (!capable(CAP_SYS_ADMIN
))
1944 task
= get_proc_task(file_inode(file
));
1949 if (!ptrace_may_access(task
, PTRACE_MODE_READ
))
1953 if (!dir_emit_dots(file
, ctx
))
1956 mm
= get_task_mm(task
);
1959 down_read(&mm
->mmap_sem
);
1964 * We need two passes here:
1966 * 1) Collect vmas of mapped files with mmap_sem taken
1967 * 2) Release mmap_sem and instantiate entries
1969 * otherwise we get lockdep complained, since filldir()
1970 * routine might require mmap_sem taken in might_fault().
1973 for (vma
= mm
->mmap
, pos
= 2; vma
; vma
= vma
->vm_next
) {
1974 if (vma
->vm_file
&& ++pos
> ctx
->pos
)
1979 fa
= flex_array_alloc(sizeof(info
), nr_files
,
1981 if (!fa
|| flex_array_prealloc(fa
, 0, nr_files
,
1985 flex_array_free(fa
);
1986 up_read(&mm
->mmap_sem
);
1990 for (i
= 0, vma
= mm
->mmap
, pos
= 2; vma
;
1991 vma
= vma
->vm_next
) {
1994 if (++pos
<= ctx
->pos
)
1997 info
.mode
= vma
->vm_file
->f_mode
;
1998 info
.len
= snprintf(info
.name
,
1999 sizeof(info
.name
), "%lx-%lx",
2000 vma
->vm_start
, vma
->vm_end
);
2001 if (flex_array_put(fa
, i
++, &info
, GFP_KERNEL
))
2005 up_read(&mm
->mmap_sem
);
2007 for (i
= 0; i
< nr_files
; i
++) {
2008 p
= flex_array_get(fa
, i
);
2009 if (!proc_fill_cache(file
, ctx
,
2011 proc_map_files_instantiate
,
2013 (void *)(unsigned long)p
->mode
))
2018 flex_array_free(fa
);
2022 put_task_struct(task
);
2027 static const struct file_operations proc_map_files_operations
= {
2028 .read
= generic_read_dir
,
2029 .iterate
= proc_map_files_readdir
,
2030 .llseek
= default_llseek
,
2033 struct timers_private
{
2035 struct task_struct
*task
;
2036 struct sighand_struct
*sighand
;
2037 struct pid_namespace
*ns
;
2038 unsigned long flags
;
2041 static void *timers_start(struct seq_file
*m
, loff_t
*pos
)
2043 struct timers_private
*tp
= m
->private;
2045 tp
->task
= get_pid_task(tp
->pid
, PIDTYPE_PID
);
2047 return ERR_PTR(-ESRCH
);
2049 tp
->sighand
= lock_task_sighand(tp
->task
, &tp
->flags
);
2051 return ERR_PTR(-ESRCH
);
2053 return seq_list_start(&tp
->task
->signal
->posix_timers
, *pos
);
2056 static void *timers_next(struct seq_file
*m
, void *v
, loff_t
*pos
)
2058 struct timers_private
*tp
= m
->private;
2059 return seq_list_next(v
, &tp
->task
->signal
->posix_timers
, pos
);
2062 static void timers_stop(struct seq_file
*m
, void *v
)
2064 struct timers_private
*tp
= m
->private;
2067 unlock_task_sighand(tp
->task
, &tp
->flags
);
2072 put_task_struct(tp
->task
);
2077 static int show_timer(struct seq_file
*m
, void *v
)
2079 struct k_itimer
*timer
;
2080 struct timers_private
*tp
= m
->private;
2082 static char *nstr
[] = {
2083 [SIGEV_SIGNAL
] = "signal",
2084 [SIGEV_NONE
] = "none",
2085 [SIGEV_THREAD
] = "thread",
2088 timer
= list_entry((struct list_head
*)v
, struct k_itimer
, list
);
2089 notify
= timer
->it_sigev_notify
;
2091 seq_printf(m
, "ID: %d\n", timer
->it_id
);
2092 seq_printf(m
, "signal: %d/%p\n", timer
->sigq
->info
.si_signo
,
2093 timer
->sigq
->info
.si_value
.sival_ptr
);
2094 seq_printf(m
, "notify: %s/%s.%d\n",
2095 nstr
[notify
& ~SIGEV_THREAD_ID
],
2096 (notify
& SIGEV_THREAD_ID
) ? "tid" : "pid",
2097 pid_nr_ns(timer
->it_pid
, tp
->ns
));
2098 seq_printf(m
, "ClockID: %d\n", timer
->it_clock
);
2103 static const struct seq_operations proc_timers_seq_ops
= {
2104 .start
= timers_start
,
2105 .next
= timers_next
,
2106 .stop
= timers_stop
,
2110 static int proc_timers_open(struct inode
*inode
, struct file
*file
)
2112 struct timers_private
*tp
;
2114 tp
= __seq_open_private(file
, &proc_timers_seq_ops
,
2115 sizeof(struct timers_private
));
2119 tp
->pid
= proc_pid(inode
);
2120 tp
->ns
= inode
->i_sb
->s_fs_info
;
2124 static const struct file_operations proc_timers_operations
= {
2125 .open
= proc_timers_open
,
2127 .llseek
= seq_lseek
,
2128 .release
= seq_release_private
,
2130 #endif /* CONFIG_CHECKPOINT_RESTORE */
2132 static int proc_pident_instantiate(struct inode
*dir
,
2133 struct dentry
*dentry
, struct task_struct
*task
, const void *ptr
)
2135 const struct pid_entry
*p
= ptr
;
2136 struct inode
*inode
;
2137 struct proc_inode
*ei
;
2139 inode
= proc_pid_make_inode(dir
->i_sb
, task
);
2144 inode
->i_mode
= p
->mode
;
2145 if (S_ISDIR(inode
->i_mode
))
2146 set_nlink(inode
, 2); /* Use getattr to fix if necessary */
2148 inode
->i_op
= p
->iop
;
2150 inode
->i_fop
= p
->fop
;
2152 d_set_d_op(dentry
, &pid_dentry_operations
);
2153 d_add(dentry
, inode
);
2154 /* Close the race of the process dying before we return the dentry */
2155 if (pid_revalidate(dentry
, 0))
2161 static struct dentry
*proc_pident_lookup(struct inode
*dir
,
2162 struct dentry
*dentry
,
2163 const struct pid_entry
*ents
,
2167 struct task_struct
*task
= get_proc_task(dir
);
2168 const struct pid_entry
*p
, *last
;
2176 * Yes, it does not scale. And it should not. Don't add
2177 * new entries into /proc/<tgid>/ without very good reasons.
2179 last
= &ents
[nents
- 1];
2180 for (p
= ents
; p
<= last
; p
++) {
2181 if (p
->len
!= dentry
->d_name
.len
)
2183 if (!memcmp(dentry
->d_name
.name
, p
->name
, p
->len
))
2189 error
= proc_pident_instantiate(dir
, dentry
, task
, p
);
2191 put_task_struct(task
);
2193 return ERR_PTR(error
);
2196 static int proc_pident_readdir(struct file
*file
, struct dir_context
*ctx
,
2197 const struct pid_entry
*ents
, unsigned int nents
)
2199 struct task_struct
*task
= get_proc_task(file_inode(file
));
2200 const struct pid_entry
*p
;
2205 if (!dir_emit_dots(file
, ctx
))
2208 if (ctx
->pos
>= nents
+ 2)
2211 for (p
= ents
+ (ctx
->pos
- 2); p
<= ents
+ nents
- 1; p
++) {
2212 if (!proc_fill_cache(file
, ctx
, p
->name
, p
->len
,
2213 proc_pident_instantiate
, task
, p
))
2218 put_task_struct(task
);
2222 #ifdef CONFIG_SECURITY
2223 static ssize_t
proc_pid_attr_read(struct file
* file
, char __user
* buf
,
2224 size_t count
, loff_t
*ppos
)
2226 struct inode
* inode
= file_inode(file
);
2229 struct task_struct
*task
= get_proc_task(inode
);
2234 length
= security_getprocattr(task
,
2235 (char*)file
->f_path
.dentry
->d_name
.name
,
2237 put_task_struct(task
);
2239 length
= simple_read_from_buffer(buf
, count
, ppos
, p
, length
);
2244 static ssize_t
proc_pid_attr_write(struct file
* file
, const char __user
* buf
,
2245 size_t count
, loff_t
*ppos
)
2247 struct inode
* inode
= file_inode(file
);
2250 struct task_struct
*task
= get_proc_task(inode
);
2255 if (count
> PAGE_SIZE
)
2258 /* No partial writes. */
2264 page
= (char*)__get_free_page(GFP_TEMPORARY
);
2269 if (copy_from_user(page
, buf
, count
))
2272 /* Guard against adverse ptrace interaction */
2273 length
= mutex_lock_interruptible(&task
->signal
->cred_guard_mutex
);
2277 length
= security_setprocattr(task
,
2278 (char*)file
->f_path
.dentry
->d_name
.name
,
2279 (void*)page
, count
);
2280 mutex_unlock(&task
->signal
->cred_guard_mutex
);
2282 free_page((unsigned long) page
);
2284 put_task_struct(task
);
2289 static const struct file_operations proc_pid_attr_operations
= {
2290 .read
= proc_pid_attr_read
,
2291 .write
= proc_pid_attr_write
,
2292 .llseek
= generic_file_llseek
,
2295 static const struct pid_entry attr_dir_stuff
[] = {
2296 REG("current", S_IRUGO
|S_IWUGO
, proc_pid_attr_operations
),
2297 REG("prev", S_IRUGO
, proc_pid_attr_operations
),
2298 REG("exec", S_IRUGO
|S_IWUGO
, proc_pid_attr_operations
),
2299 REG("fscreate", S_IRUGO
|S_IWUGO
, proc_pid_attr_operations
),
2300 REG("keycreate", S_IRUGO
|S_IWUGO
, proc_pid_attr_operations
),
2301 REG("sockcreate", S_IRUGO
|S_IWUGO
, proc_pid_attr_operations
),
2304 static int proc_attr_dir_readdir(struct file
*file
, struct dir_context
*ctx
)
2306 return proc_pident_readdir(file
, ctx
,
2307 attr_dir_stuff
, ARRAY_SIZE(attr_dir_stuff
));
2310 static const struct file_operations proc_attr_dir_operations
= {
2311 .read
= generic_read_dir
,
2312 .iterate
= proc_attr_dir_readdir
,
2313 .llseek
= default_llseek
,
2316 static struct dentry
*proc_attr_dir_lookup(struct inode
*dir
,
2317 struct dentry
*dentry
, unsigned int flags
)
2319 return proc_pident_lookup(dir
, dentry
,
2320 attr_dir_stuff
, ARRAY_SIZE(attr_dir_stuff
));
2323 static const struct inode_operations proc_attr_dir_inode_operations
= {
2324 .lookup
= proc_attr_dir_lookup
,
2325 .getattr
= pid_getattr
,
2326 .setattr
= proc_setattr
,
2331 #ifdef CONFIG_ELF_CORE
2332 static ssize_t
proc_coredump_filter_read(struct file
*file
, char __user
*buf
,
2333 size_t count
, loff_t
*ppos
)
2335 struct task_struct
*task
= get_proc_task(file_inode(file
));
2336 struct mm_struct
*mm
;
2337 char buffer
[PROC_NUMBUF
];
2345 mm
= get_task_mm(task
);
2347 len
= snprintf(buffer
, sizeof(buffer
), "%08lx\n",
2348 ((mm
->flags
& MMF_DUMP_FILTER_MASK
) >>
2349 MMF_DUMP_FILTER_SHIFT
));
2351 ret
= simple_read_from_buffer(buf
, count
, ppos
, buffer
, len
);
2354 put_task_struct(task
);
2359 static ssize_t
proc_coredump_filter_write(struct file
*file
,
2360 const char __user
*buf
,
2364 struct task_struct
*task
;
2365 struct mm_struct
*mm
;
2366 char buffer
[PROC_NUMBUF
], *end
;
2373 memset(buffer
, 0, sizeof(buffer
));
2374 if (count
> sizeof(buffer
) - 1)
2375 count
= sizeof(buffer
) - 1;
2376 if (copy_from_user(buffer
, buf
, count
))
2380 val
= (unsigned int)simple_strtoul(buffer
, &end
, 0);
2383 if (end
- buffer
== 0)
2387 task
= get_proc_task(file_inode(file
));
2392 mm
= get_task_mm(task
);
2396 for (i
= 0, mask
= 1; i
< MMF_DUMP_FILTER_BITS
; i
++, mask
<<= 1) {
2398 set_bit(i
+ MMF_DUMP_FILTER_SHIFT
, &mm
->flags
);
2400 clear_bit(i
+ MMF_DUMP_FILTER_SHIFT
, &mm
->flags
);
2405 put_task_struct(task
);
2410 static const struct file_operations proc_coredump_filter_operations
= {
2411 .read
= proc_coredump_filter_read
,
2412 .write
= proc_coredump_filter_write
,
2413 .llseek
= generic_file_llseek
,
2417 #ifdef CONFIG_TASK_IO_ACCOUNTING
2418 static int do_io_accounting(struct task_struct
*task
, char *buffer
, int whole
)
2420 struct task_io_accounting acct
= task
->ioac
;
2421 unsigned long flags
;
2424 result
= mutex_lock_killable(&task
->signal
->cred_guard_mutex
);
2428 if (!ptrace_may_access(task
, PTRACE_MODE_READ
)) {
2433 if (whole
&& lock_task_sighand(task
, &flags
)) {
2434 struct task_struct
*t
= task
;
2436 task_io_accounting_add(&acct
, &task
->signal
->ioac
);
2437 while_each_thread(task
, t
)
2438 task_io_accounting_add(&acct
, &t
->ioac
);
2440 unlock_task_sighand(task
, &flags
);
2442 result
= sprintf(buffer
,
2447 "read_bytes: %llu\n"
2448 "write_bytes: %llu\n"
2449 "cancelled_write_bytes: %llu\n",
2450 (unsigned long long)acct
.rchar
,
2451 (unsigned long long)acct
.wchar
,
2452 (unsigned long long)acct
.syscr
,
2453 (unsigned long long)acct
.syscw
,
2454 (unsigned long long)acct
.read_bytes
,
2455 (unsigned long long)acct
.write_bytes
,
2456 (unsigned long long)acct
.cancelled_write_bytes
);
2458 mutex_unlock(&task
->signal
->cred_guard_mutex
);
2462 static int proc_tid_io_accounting(struct task_struct
*task
, char *buffer
)
2464 return do_io_accounting(task
, buffer
, 0);
2467 static int proc_tgid_io_accounting(struct task_struct
*task
, char *buffer
)
2469 return do_io_accounting(task
, buffer
, 1);
2471 #endif /* CONFIG_TASK_IO_ACCOUNTING */
2473 #ifdef CONFIG_USER_NS
2474 static int proc_id_map_open(struct inode
*inode
, struct file
*file
,
2475 struct seq_operations
*seq_ops
)
2477 struct user_namespace
*ns
= NULL
;
2478 struct task_struct
*task
;
2479 struct seq_file
*seq
;
2482 task
= get_proc_task(inode
);
2485 ns
= get_user_ns(task_cred_xxx(task
, user_ns
));
2487 put_task_struct(task
);
2492 ret
= seq_open(file
, seq_ops
);
2496 seq
= file
->private_data
;
2506 static int proc_id_map_release(struct inode
*inode
, struct file
*file
)
2508 struct seq_file
*seq
= file
->private_data
;
2509 struct user_namespace
*ns
= seq
->private;
2511 return seq_release(inode
, file
);
2514 static int proc_uid_map_open(struct inode
*inode
, struct file
*file
)
2516 return proc_id_map_open(inode
, file
, &proc_uid_seq_operations
);
2519 static int proc_gid_map_open(struct inode
*inode
, struct file
*file
)
2521 return proc_id_map_open(inode
, file
, &proc_gid_seq_operations
);
2524 static int proc_projid_map_open(struct inode
*inode
, struct file
*file
)
2526 return proc_id_map_open(inode
, file
, &proc_projid_seq_operations
);
2529 static const struct file_operations proc_uid_map_operations
= {
2530 .open
= proc_uid_map_open
,
2531 .write
= proc_uid_map_write
,
2533 .llseek
= seq_lseek
,
2534 .release
= proc_id_map_release
,
2537 static const struct file_operations proc_gid_map_operations
= {
2538 .open
= proc_gid_map_open
,
2539 .write
= proc_gid_map_write
,
2541 .llseek
= seq_lseek
,
2542 .release
= proc_id_map_release
,
2545 static const struct file_operations proc_projid_map_operations
= {
2546 .open
= proc_projid_map_open
,
2547 .write
= proc_projid_map_write
,
2549 .llseek
= seq_lseek
,
2550 .release
= proc_id_map_release
,
2552 #endif /* CONFIG_USER_NS */
2554 static int proc_pid_personality(struct seq_file
*m
, struct pid_namespace
*ns
,
2555 struct pid
*pid
, struct task_struct
*task
)
2557 int err
= lock_trace(task
);
2559 seq_printf(m
, "%08x\n", task
->personality
);
2568 static const struct file_operations proc_task_operations
;
2569 static const struct inode_operations proc_task_inode_operations
;
2571 static const struct pid_entry tgid_base_stuff
[] = {
2572 DIR("task", S_IRUGO
|S_IXUGO
, proc_task_inode_operations
, proc_task_operations
),
2573 DIR("fd", S_IRUSR
|S_IXUSR
, proc_fd_inode_operations
, proc_fd_operations
),
2574 #ifdef CONFIG_CHECKPOINT_RESTORE
2575 DIR("map_files", S_IRUSR
|S_IXUSR
, proc_map_files_inode_operations
, proc_map_files_operations
),
2577 DIR("fdinfo", S_IRUSR
|S_IXUSR
, proc_fdinfo_inode_operations
, proc_fdinfo_operations
),
2578 DIR("ns", S_IRUSR
|S_IXUGO
, proc_ns_dir_inode_operations
, proc_ns_dir_operations
),
2580 DIR("net", S_IRUGO
|S_IXUGO
, proc_net_inode_operations
, proc_net_operations
),
2582 REG("environ", S_IRUSR
, proc_environ_operations
),
2583 INF("auxv", S_IRUSR
, proc_pid_auxv
),
2584 ONE("status", S_IRUGO
, proc_pid_status
),
2585 ONE("personality", S_IRUGO
, proc_pid_personality
),
2586 INF("limits", S_IRUGO
, proc_pid_limits
),
2587 #ifdef CONFIG_SCHED_DEBUG
2588 REG("sched", S_IRUGO
|S_IWUSR
, proc_pid_sched_operations
),
2590 #ifdef CONFIG_SCHED_AUTOGROUP
2591 REG("autogroup", S_IRUGO
|S_IWUSR
, proc_pid_sched_autogroup_operations
),
2593 REG("comm", S_IRUGO
|S_IWUSR
, proc_pid_set_comm_operations
),
2594 #ifdef CONFIG_HAVE_ARCH_TRACEHOOK
2595 INF("syscall", S_IRUGO
, proc_pid_syscall
),
2597 INF("cmdline", S_IRUGO
, proc_pid_cmdline
),
2598 ONE("stat", S_IRUGO
, proc_tgid_stat
),
2599 ONE("statm", S_IRUGO
, proc_pid_statm
),
2600 REG("maps", S_IRUGO
, proc_pid_maps_operations
),
2602 REG("numa_maps", S_IRUGO
, proc_pid_numa_maps_operations
),
2604 REG("mem", S_IRUSR
|S_IWUSR
, proc_mem_operations
),
2605 LNK("cwd", proc_cwd_link
),
2606 LNK("root", proc_root_link
),
2607 LNK("exe", proc_exe_link
),
2608 REG("mounts", S_IRUGO
, proc_mounts_operations
),
2609 REG("mountinfo", S_IRUGO
, proc_mountinfo_operations
),
2610 REG("mountstats", S_IRUSR
, proc_mountstats_operations
),
2611 #ifdef CONFIG_PROC_PAGE_MONITOR
2612 REG("clear_refs", S_IWUSR
, proc_clear_refs_operations
),
2613 REG("smaps", S_IRUGO
, proc_pid_smaps_operations
),
2614 REG("pagemap", S_IRUGO
, proc_pagemap_operations
),
2616 #ifdef CONFIG_SECURITY
2617 DIR("attr", S_IRUGO
|S_IXUGO
, proc_attr_dir_inode_operations
, proc_attr_dir_operations
),
2619 #ifdef CONFIG_KALLSYMS
2620 INF("wchan", S_IRUGO
, proc_pid_wchan
),
2622 #ifdef CONFIG_STACKTRACE
2623 ONE("stack", S_IRUGO
, proc_pid_stack
),
2625 #ifdef CONFIG_SCHEDSTATS
2626 INF("schedstat", S_IRUGO
, proc_pid_schedstat
),
2628 #ifdef CONFIG_LATENCYTOP
2629 REG("latency", S_IRUGO
, proc_lstats_operations
),
2631 #ifdef CONFIG_PROC_PID_CPUSET
2632 REG("cpuset", S_IRUGO
, proc_cpuset_operations
),
2634 #ifdef CONFIG_CGROUPS
2635 REG("cgroup", S_IRUGO
, proc_cgroup_operations
),
2637 INF("oom_score", S_IRUGO
, proc_oom_score
),
2638 REG("oom_adj", S_IRUGO
|S_IWUSR
, proc_oom_adj_operations
),
2639 REG("oom_score_adj", S_IRUGO
|S_IWUSR
, proc_oom_score_adj_operations
),
2640 #ifdef CONFIG_AUDITSYSCALL
2641 REG("loginuid", S_IWUSR
|S_IRUGO
, proc_loginuid_operations
),
2642 REG("sessionid", S_IRUGO
, proc_sessionid_operations
),
2644 #ifdef CONFIG_FAULT_INJECTION
2645 REG("make-it-fail", S_IRUGO
|S_IWUSR
, proc_fault_inject_operations
),
2647 #ifdef CONFIG_ELF_CORE
2648 REG("coredump_filter", S_IRUGO
|S_IWUSR
, proc_coredump_filter_operations
),
2650 #ifdef CONFIG_TASK_IO_ACCOUNTING
2651 INF("io", S_IRUSR
, proc_tgid_io_accounting
),
2653 #ifdef CONFIG_HARDWALL
2654 INF("hardwall", S_IRUGO
, proc_pid_hardwall
),
2656 #ifdef CONFIG_USER_NS
2657 REG("uid_map", S_IRUGO
|S_IWUSR
, proc_uid_map_operations
),
2658 REG("gid_map", S_IRUGO
|S_IWUSR
, proc_gid_map_operations
),
2659 REG("projid_map", S_IRUGO
|S_IWUSR
, proc_projid_map_operations
),
2661 #ifdef CONFIG_CHECKPOINT_RESTORE
2662 REG("timers", S_IRUGO
, proc_timers_operations
),
2666 static int proc_tgid_base_readdir(struct file
*file
, struct dir_context
*ctx
)
2668 return proc_pident_readdir(file
, ctx
,
2669 tgid_base_stuff
, ARRAY_SIZE(tgid_base_stuff
));
2672 static const struct file_operations proc_tgid_base_operations
= {
2673 .read
= generic_read_dir
,
2674 .iterate
= proc_tgid_base_readdir
,
2675 .llseek
= default_llseek
,
2678 static struct dentry
*proc_tgid_base_lookup(struct inode
*dir
, struct dentry
*dentry
, unsigned int flags
)
2680 return proc_pident_lookup(dir
, dentry
,
2681 tgid_base_stuff
, ARRAY_SIZE(tgid_base_stuff
));
2684 static const struct inode_operations proc_tgid_base_inode_operations
= {
2685 .lookup
= proc_tgid_base_lookup
,
2686 .getattr
= pid_getattr
,
2687 .setattr
= proc_setattr
,
2688 .permission
= proc_pid_permission
,
2691 static void proc_flush_task_mnt(struct vfsmount
*mnt
, pid_t pid
, pid_t tgid
)
2693 struct dentry
*dentry
, *leader
, *dir
;
2694 char buf
[PROC_NUMBUF
];
2698 name
.len
= snprintf(buf
, sizeof(buf
), "%d", pid
);
2699 /* no ->d_hash() rejects on procfs */
2700 dentry
= d_hash_and_lookup(mnt
->mnt_root
, &name
);
2702 shrink_dcache_parent(dentry
);
2708 name
.len
= snprintf(buf
, sizeof(buf
), "%d", tgid
);
2709 leader
= d_hash_and_lookup(mnt
->mnt_root
, &name
);
2714 name
.len
= strlen(name
.name
);
2715 dir
= d_hash_and_lookup(leader
, &name
);
2717 goto out_put_leader
;
2720 name
.len
= snprintf(buf
, sizeof(buf
), "%d", pid
);
2721 dentry
= d_hash_and_lookup(dir
, &name
);
2723 shrink_dcache_parent(dentry
);
2736 * proc_flush_task - Remove dcache entries for @task from the /proc dcache.
2737 * @task: task that should be flushed.
2739 * When flushing dentries from proc, one needs to flush them from global
2740 * proc (proc_mnt) and from all the namespaces' procs this task was seen
2741 * in. This call is supposed to do all of this job.
2743 * Looks in the dcache for
2745 * /proc/@tgid/task/@pid
2746 * if either directory is present flushes it and all of it'ts children
2749 * It is safe and reasonable to cache /proc entries for a task until
2750 * that task exits. After that they just clog up the dcache with
2751 * useless entries, possibly causing useful dcache entries to be
2752 * flushed instead. This routine is proved to flush those useless
2753 * dcache entries at process exit time.
2755 * NOTE: This routine is just an optimization so it does not guarantee
2756 * that no dcache entries will exist at process exit time it
2757 * just makes it very unlikely that any will persist.
2760 void proc_flush_task(struct task_struct
*task
)
2763 struct pid
*pid
, *tgid
;
2766 pid
= task_pid(task
);
2767 tgid
= task_tgid(task
);
2769 for (i
= 0; i
<= pid
->level
; i
++) {
2770 upid
= &pid
->numbers
[i
];
2771 proc_flush_task_mnt(upid
->ns
->proc_mnt
, upid
->nr
,
2772 tgid
->numbers
[i
].nr
);
2776 static int proc_pid_instantiate(struct inode
*dir
,
2777 struct dentry
* dentry
,
2778 struct task_struct
*task
, const void *ptr
)
2780 struct inode
*inode
;
2782 inode
= proc_pid_make_inode(dir
->i_sb
, task
);
2786 inode
->i_mode
= S_IFDIR
|S_IRUGO
|S_IXUGO
;
2787 inode
->i_op
= &proc_tgid_base_inode_operations
;
2788 inode
->i_fop
= &proc_tgid_base_operations
;
2789 inode
->i_flags
|=S_IMMUTABLE
;
2791 set_nlink(inode
, 2 + pid_entry_count_dirs(tgid_base_stuff
,
2792 ARRAY_SIZE(tgid_base_stuff
)));
2794 d_set_d_op(dentry
, &pid_dentry_operations
);
2796 d_add(dentry
, inode
);
2797 /* Close the race of the process dying before we return the dentry */
2798 if (pid_revalidate(dentry
, 0))
2804 struct dentry
*proc_pid_lookup(struct inode
*dir
, struct dentry
* dentry
, unsigned int flags
)
2807 struct task_struct
*task
;
2809 struct pid_namespace
*ns
;
2811 tgid
= name_to_int(dentry
);
2815 ns
= dentry
->d_sb
->s_fs_info
;
2817 task
= find_task_by_pid_ns(tgid
, ns
);
2819 get_task_struct(task
);
2824 result
= proc_pid_instantiate(dir
, dentry
, task
, NULL
);
2825 put_task_struct(task
);
2827 return ERR_PTR(result
);
2831 * Find the first task with tgid >= tgid
2836 struct task_struct
*task
;
2838 static struct tgid_iter
next_tgid(struct pid_namespace
*ns
, struct tgid_iter iter
)
2843 put_task_struct(iter
.task
);
2847 pid
= find_ge_pid(iter
.tgid
, ns
);
2849 iter
.tgid
= pid_nr_ns(pid
, ns
);
2850 iter
.task
= pid_task(pid
, PIDTYPE_PID
);
2851 /* What we to know is if the pid we have find is the
2852 * pid of a thread_group_leader. Testing for task
2853 * being a thread_group_leader is the obvious thing
2854 * todo but there is a window when it fails, due to
2855 * the pid transfer logic in de_thread.
2857 * So we perform the straight forward test of seeing
2858 * if the pid we have found is the pid of a thread
2859 * group leader, and don't worry if the task we have
2860 * found doesn't happen to be a thread group leader.
2861 * As we don't care in the case of readdir.
2863 if (!iter
.task
|| !has_group_leader_pid(iter
.task
)) {
2867 get_task_struct(iter
.task
);
2873 #define TGID_OFFSET (FIRST_PROCESS_ENTRY + 1)
2875 /* for the /proc/ directory itself, after non-process stuff has been done */
2876 int proc_pid_readdir(struct file
*file
, struct dir_context
*ctx
)
2878 struct tgid_iter iter
;
2879 struct pid_namespace
*ns
= file
->f_dentry
->d_sb
->s_fs_info
;
2880 loff_t pos
= ctx
->pos
;
2882 if (pos
>= PID_MAX_LIMIT
+ TGID_OFFSET
)
2885 if (pos
== TGID_OFFSET
- 1) {
2886 struct inode
*inode
= ns
->proc_self
->d_inode
;
2887 if (!dir_emit(ctx
, "self", 4, inode
->i_ino
, DT_LNK
))
2891 iter
.tgid
= pos
- TGID_OFFSET
;
2894 for (iter
= next_tgid(ns
, iter
);
2896 iter
.tgid
+= 1, iter
= next_tgid(ns
, iter
)) {
2897 char name
[PROC_NUMBUF
];
2899 if (!has_pid_permissions(ns
, iter
.task
, 2))
2902 len
= snprintf(name
, sizeof(name
), "%d", iter
.tgid
);
2903 ctx
->pos
= iter
.tgid
+ TGID_OFFSET
;
2904 if (!proc_fill_cache(file
, ctx
, name
, len
,
2905 proc_pid_instantiate
, iter
.task
, NULL
)) {
2906 put_task_struct(iter
.task
);
2910 ctx
->pos
= PID_MAX_LIMIT
+ TGID_OFFSET
;
2917 static const struct pid_entry tid_base_stuff
[] = {
2918 DIR("fd", S_IRUSR
|S_IXUSR
, proc_fd_inode_operations
, proc_fd_operations
),
2919 DIR("fdinfo", S_IRUSR
|S_IXUSR
, proc_fdinfo_inode_operations
, proc_fdinfo_operations
),
2920 DIR("ns", S_IRUSR
|S_IXUGO
, proc_ns_dir_inode_operations
, proc_ns_dir_operations
),
2921 REG("environ", S_IRUSR
, proc_environ_operations
),
2922 INF("auxv", S_IRUSR
, proc_pid_auxv
),
2923 ONE("status", S_IRUGO
, proc_pid_status
),
2924 ONE("personality", S_IRUGO
, proc_pid_personality
),
2925 INF("limits", S_IRUGO
, proc_pid_limits
),
2926 #ifdef CONFIG_SCHED_DEBUG
2927 REG("sched", S_IRUGO
|S_IWUSR
, proc_pid_sched_operations
),
2929 REG("comm", S_IRUGO
|S_IWUSR
, proc_pid_set_comm_operations
),
2930 #ifdef CONFIG_HAVE_ARCH_TRACEHOOK
2931 INF("syscall", S_IRUGO
, proc_pid_syscall
),
2933 INF("cmdline", S_IRUGO
, proc_pid_cmdline
),
2934 ONE("stat", S_IRUGO
, proc_tid_stat
),
2935 ONE("statm", S_IRUGO
, proc_pid_statm
),
2936 REG("maps", S_IRUGO
, proc_tid_maps_operations
),
2937 #ifdef CONFIG_CHECKPOINT_RESTORE
2938 REG("children", S_IRUGO
, proc_tid_children_operations
),
2941 REG("numa_maps", S_IRUGO
, proc_tid_numa_maps_operations
),
2943 REG("mem", S_IRUSR
|S_IWUSR
, proc_mem_operations
),
2944 LNK("cwd", proc_cwd_link
),
2945 LNK("root", proc_root_link
),
2946 LNK("exe", proc_exe_link
),
2947 REG("mounts", S_IRUGO
, proc_mounts_operations
),
2948 REG("mountinfo", S_IRUGO
, proc_mountinfo_operations
),
2949 #ifdef CONFIG_PROC_PAGE_MONITOR
2950 REG("clear_refs", S_IWUSR
, proc_clear_refs_operations
),
2951 REG("smaps", S_IRUGO
, proc_tid_smaps_operations
),
2952 REG("pagemap", S_IRUGO
, proc_pagemap_operations
),
2954 #ifdef CONFIG_SECURITY
2955 DIR("attr", S_IRUGO
|S_IXUGO
, proc_attr_dir_inode_operations
, proc_attr_dir_operations
),
2957 #ifdef CONFIG_KALLSYMS
2958 INF("wchan", S_IRUGO
, proc_pid_wchan
),
2960 #ifdef CONFIG_STACKTRACE
2961 ONE("stack", S_IRUGO
, proc_pid_stack
),
2963 #ifdef CONFIG_SCHEDSTATS
2964 INF("schedstat", S_IRUGO
, proc_pid_schedstat
),
2966 #ifdef CONFIG_LATENCYTOP
2967 REG("latency", S_IRUGO
, proc_lstats_operations
),
2969 #ifdef CONFIG_PROC_PID_CPUSET
2970 REG("cpuset", S_IRUGO
, proc_cpuset_operations
),
2972 #ifdef CONFIG_CGROUPS
2973 REG("cgroup", S_IRUGO
, proc_cgroup_operations
),
2975 INF("oom_score", S_IRUGO
, proc_oom_score
),
2976 REG("oom_adj", S_IRUGO
|S_IWUSR
, proc_oom_adj_operations
),
2977 REG("oom_score_adj", S_IRUGO
|S_IWUSR
, proc_oom_score_adj_operations
),
2978 #ifdef CONFIG_AUDITSYSCALL
2979 REG("loginuid", S_IWUSR
|S_IRUGO
, proc_loginuid_operations
),
2980 REG("sessionid", S_IRUGO
, proc_sessionid_operations
),
2982 #ifdef CONFIG_FAULT_INJECTION
2983 REG("make-it-fail", S_IRUGO
|S_IWUSR
, proc_fault_inject_operations
),
2985 #ifdef CONFIG_TASK_IO_ACCOUNTING
2986 INF("io", S_IRUSR
, proc_tid_io_accounting
),
2988 #ifdef CONFIG_HARDWALL
2989 INF("hardwall", S_IRUGO
, proc_pid_hardwall
),
2991 #ifdef CONFIG_USER_NS
2992 REG("uid_map", S_IRUGO
|S_IWUSR
, proc_uid_map_operations
),
2993 REG("gid_map", S_IRUGO
|S_IWUSR
, proc_gid_map_operations
),
2994 REG("projid_map", S_IRUGO
|S_IWUSR
, proc_projid_map_operations
),
2998 static int proc_tid_base_readdir(struct file
*file
, struct dir_context
*ctx
)
3000 return proc_pident_readdir(file
, ctx
,
3001 tid_base_stuff
, ARRAY_SIZE(tid_base_stuff
));
3004 static struct dentry
*proc_tid_base_lookup(struct inode
*dir
, struct dentry
*dentry
, unsigned int flags
)
3006 return proc_pident_lookup(dir
, dentry
,
3007 tid_base_stuff
, ARRAY_SIZE(tid_base_stuff
));
3010 static const struct file_operations proc_tid_base_operations
= {
3011 .read
= generic_read_dir
,
3012 .iterate
= proc_tid_base_readdir
,
3013 .llseek
= default_llseek
,
3016 static const struct inode_operations proc_tid_base_inode_operations
= {
3017 .lookup
= proc_tid_base_lookup
,
3018 .getattr
= pid_getattr
,
3019 .setattr
= proc_setattr
,
3022 static int proc_task_instantiate(struct inode
*dir
,
3023 struct dentry
*dentry
, struct task_struct
*task
, const void *ptr
)
3025 struct inode
*inode
;
3026 inode
= proc_pid_make_inode(dir
->i_sb
, task
);
3030 inode
->i_mode
= S_IFDIR
|S_IRUGO
|S_IXUGO
;
3031 inode
->i_op
= &proc_tid_base_inode_operations
;
3032 inode
->i_fop
= &proc_tid_base_operations
;
3033 inode
->i_flags
|=S_IMMUTABLE
;
3035 set_nlink(inode
, 2 + pid_entry_count_dirs(tid_base_stuff
,
3036 ARRAY_SIZE(tid_base_stuff
)));
3038 d_set_d_op(dentry
, &pid_dentry_operations
);
3040 d_add(dentry
, inode
);
3041 /* Close the race of the process dying before we return the dentry */
3042 if (pid_revalidate(dentry
, 0))
3048 static struct dentry
*proc_task_lookup(struct inode
*dir
, struct dentry
* dentry
, unsigned int flags
)
3050 int result
= -ENOENT
;
3051 struct task_struct
*task
;
3052 struct task_struct
*leader
= get_proc_task(dir
);
3054 struct pid_namespace
*ns
;
3059 tid
= name_to_int(dentry
);
3063 ns
= dentry
->d_sb
->s_fs_info
;
3065 task
= find_task_by_pid_ns(tid
, ns
);
3067 get_task_struct(task
);
3071 if (!same_thread_group(leader
, task
))
3074 result
= proc_task_instantiate(dir
, dentry
, task
, NULL
);
3076 put_task_struct(task
);
3078 put_task_struct(leader
);
3080 return ERR_PTR(result
);
3084 * Find the first tid of a thread group to return to user space.
3086 * Usually this is just the thread group leader, but if the users
3087 * buffer was too small or there was a seek into the middle of the
3088 * directory we have more work todo.
3090 * In the case of a short read we start with find_task_by_pid.
3092 * In the case of a seek we start with the leader and walk nr
3095 static struct task_struct
*first_tid(struct task_struct
*leader
,
3096 int tid
, int nr
, struct pid_namespace
*ns
)
3098 struct task_struct
*pos
;
3101 /* Attempt to start with the pid of a thread */
3102 if (tid
&& (nr
> 0)) {
3103 pos
= find_task_by_pid_ns(tid
, ns
);
3104 if (pos
&& (pos
->group_leader
== leader
))
3108 /* If nr exceeds the number of threads there is nothing todo */
3110 if (nr
&& nr
>= get_nr_threads(leader
))
3113 /* If we haven't found our starting place yet start
3114 * with the leader and walk nr threads forward.
3116 for (pos
= leader
; nr
> 0; --nr
) {
3117 pos
= next_thread(pos
);
3118 if (pos
== leader
) {
3124 get_task_struct(pos
);
3131 * Find the next thread in the thread list.
3132 * Return NULL if there is an error or no next thread.
3134 * The reference to the input task_struct is released.
3136 static struct task_struct
*next_tid(struct task_struct
*start
)
3138 struct task_struct
*pos
= NULL
;
3140 if (pid_alive(start
)) {
3141 pos
= next_thread(start
);
3142 if (thread_group_leader(pos
))
3145 get_task_struct(pos
);
3148 put_task_struct(start
);
3152 /* for the /proc/TGID/task/ directories */
3153 static int proc_task_readdir(struct file
*file
, struct dir_context
*ctx
)
3155 struct task_struct
*leader
= NULL
;
3156 struct task_struct
*task
= get_proc_task(file_inode(file
));
3157 struct pid_namespace
*ns
;
3163 if (pid_alive(task
)) {
3164 leader
= task
->group_leader
;
3165 get_task_struct(leader
);
3168 put_task_struct(task
);
3172 if (!dir_emit_dots(file
, ctx
))
3175 /* f_version caches the tgid value that the last readdir call couldn't
3176 * return. lseek aka telldir automagically resets f_version to 0.
3178 ns
= file
->f_dentry
->d_sb
->s_fs_info
;
3179 tid
= (int)file
->f_version
;
3180 file
->f_version
= 0;
3181 for (task
= first_tid(leader
, tid
, ctx
->pos
- 2, ns
);
3183 task
= next_tid(task
), ctx
->pos
++) {
3184 char name
[PROC_NUMBUF
];
3186 tid
= task_pid_nr_ns(task
, ns
);
3187 len
= snprintf(name
, sizeof(name
), "%d", tid
);
3188 if (!proc_fill_cache(file
, ctx
, name
, len
,
3189 proc_task_instantiate
, task
, NULL
)) {
3190 /* returning this tgid failed, save it as the first
3191 * pid for the next readir call */
3192 file
->f_version
= (u64
)tid
;
3193 put_task_struct(task
);
3198 put_task_struct(leader
);
3202 static int proc_task_getattr(struct vfsmount
*mnt
, struct dentry
*dentry
, struct kstat
*stat
)
3204 struct inode
*inode
= dentry
->d_inode
;
3205 struct task_struct
*p
= get_proc_task(inode
);
3206 generic_fillattr(inode
, stat
);
3209 stat
->nlink
+= get_nr_threads(p
);
3216 static const struct inode_operations proc_task_inode_operations
= {
3217 .lookup
= proc_task_lookup
,
3218 .getattr
= proc_task_getattr
,
3219 .setattr
= proc_setattr
,
3220 .permission
= proc_pid_permission
,
3223 static const struct file_operations proc_task_operations
= {
3224 .read
= generic_read_dir
,
3225 .iterate
= proc_task_readdir
,
3226 .llseek
= default_llseek
,