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  1. ------------------------------------------------------------------------------
  2. T H E /proc F I L E S Y S T E M
  3. ------------------------------------------------------------------------------
  4. /proc/sys Terrehon Bowden <terrehon@pacbell.net> October 7 1999
  5. Bodo Bauer <bb@ricochet.net>
  6. 2.4.x update Jorge Nerin <comandante@zaralinux.com> November 14 2000
  7. move /proc/sys Shen Feng <shen@cn.fujitsu.com> April 1 2009
  8. ------------------------------------------------------------------------------
  9. Version 1.3 Kernel version 2.2.12
  10. Kernel version 2.4.0-test11-pre4
  11. ------------------------------------------------------------------------------
  12. fixes/update part 1.1 Stefani Seibold <stefani@seibold.net> June 9 2009
  13. Table of Contents
  14. -----------------
  15. 0 Preface
  16. 0.1 Introduction/Credits
  17. 0.2 Legal Stuff
  18. 1 Collecting System Information
  19. 1.1 Process-Specific Subdirectories
  20. 1.2 Kernel data
  21. 1.3 IDE devices in /proc/ide
  22. 1.4 Networking info in /proc/net
  23. 1.5 SCSI info
  24. 1.6 Parallel port info in /proc/parport
  25. 1.7 TTY info in /proc/tty
  26. 1.8 Miscellaneous kernel statistics in /proc/stat
  27. 1.9 Ext4 file system parameters
  28. 2 Modifying System Parameters
  29. 3 Per-Process Parameters
  30. 3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj - Adjust the oom-killer
  31. score
  32. 3.2 /proc/<pid>/oom_score - Display current oom-killer score
  33. 3.3 /proc/<pid>/io - Display the IO accounting fields
  34. 3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
  35. 3.5 /proc/<pid>/mountinfo - Information about mounts
  36. 3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
  37. 3.7 /proc/<pid>/task/<tid>/children - Information about task children
  38. 3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
  39. 3.9 /proc/<pid>/map_files - Information about memory mapped files
  40. 4 Configuring procfs
  41. 4.1 Mount options
  42. ------------------------------------------------------------------------------
  43. Preface
  44. ------------------------------------------------------------------------------
  45. 0.1 Introduction/Credits
  46. ------------------------
  47. This documentation is part of a soon (or so we hope) to be released book on
  48. the SuSE Linux distribution. As there is no complete documentation for the
  49. /proc file system and we've used many freely available sources to write these
  50. chapters, it seems only fair to give the work back to the Linux community.
  51. This work is based on the 2.2.* kernel version and the upcoming 2.4.*. I'm
  52. afraid it's still far from complete, but we hope it will be useful. As far as
  53. we know, it is the first 'all-in-one' document about the /proc file system. It
  54. is focused on the Intel x86 hardware, so if you are looking for PPC, ARM,
  55. SPARC, AXP, etc., features, you probably won't find what you are looking for.
  56. It also only covers IPv4 networking, not IPv6 nor other protocols - sorry. But
  57. additions and patches are welcome and will be added to this document if you
  58. mail them to Bodo.
  59. We'd like to thank Alan Cox, Rik van Riel, and Alexey Kuznetsov and a lot of
  60. other people for help compiling this documentation. We'd also like to extend a
  61. special thank you to Andi Kleen for documentation, which we relied on heavily
  62. to create this document, as well as the additional information he provided.
  63. Thanks to everybody else who contributed source or docs to the Linux kernel
  64. and helped create a great piece of software... :)
  65. If you have any comments, corrections or additions, please don't hesitate to
  66. contact Bodo Bauer at bb@ricochet.net. We'll be happy to add them to this
  67. document.
  68. The latest version of this document is available online at
  69. http://tldp.org/LDP/Linux-Filesystem-Hierarchy/html/proc.html
  70. If the above direction does not works for you, you could try the kernel
  71. mailing list at linux-kernel@vger.kernel.org and/or try to reach me at
  72. comandante@zaralinux.com.
  73. 0.2 Legal Stuff
  74. ---------------
  75. We don't guarantee the correctness of this document, and if you come to us
  76. complaining about how you screwed up your system because of incorrect
  77. documentation, we won't feel responsible...
  78. ------------------------------------------------------------------------------
  79. CHAPTER 1: COLLECTING SYSTEM INFORMATION
  80. ------------------------------------------------------------------------------
  81. ------------------------------------------------------------------------------
  82. In This Chapter
  83. ------------------------------------------------------------------------------
  84. * Investigating the properties of the pseudo file system /proc and its
  85. ability to provide information on the running Linux system
  86. * Examining /proc's structure
  87. * Uncovering various information about the kernel and the processes running
  88. on the system
  89. ------------------------------------------------------------------------------
  90. The proc file system acts as an interface to internal data structures in the
  91. kernel. It can be used to obtain information about the system and to change
  92. certain kernel parameters at runtime (sysctl).
  93. First, we'll take a look at the read-only parts of /proc. In Chapter 2, we
  94. show you how you can use /proc/sys to change settings.
  95. 1.1 Process-Specific Subdirectories
  96. -----------------------------------
  97. The directory /proc contains (among other things) one subdirectory for each
  98. process running on the system, which is named after the process ID (PID).
  99. The link self points to the process reading the file system. Each process
  100. subdirectory has the entries listed in Table 1-1.
  101. Table 1-1: Process specific entries in /proc
  102. ..............................................................................
  103. File Content
  104. clear_refs Clears page referenced bits shown in smaps output
  105. cmdline Command line arguments
  106. cpu Current and last cpu in which it was executed (2.4)(smp)
  107. cwd Link to the current working directory
  108. environ Values of environment variables
  109. exe Link to the executable of this process
  110. fd Directory, which contains all file descriptors
  111. maps Memory maps to executables and library files (2.4)
  112. mem Memory held by this process
  113. root Link to the root directory of this process
  114. stat Process status
  115. statm Process memory status information
  116. status Process status in human readable form
  117. wchan If CONFIG_KALLSYMS is set, a pre-decoded wchan
  118. pagemap Page table
  119. stack Report full stack trace, enable via CONFIG_STACKTRACE
  120. smaps a extension based on maps, showing the memory consumption of
  121. each mapping and flags associated with it
  122. numa_maps an extension based on maps, showing the memory locality and
  123. binding policy as well as mem usage (in pages) of each mapping.
  124. ..............................................................................
  125. For example, to get the status information of a process, all you have to do is
  126. read the file /proc/PID/status:
  127. >cat /proc/self/status
  128. Name: cat
  129. State: R (running)
  130. Tgid: 5452
  131. Pid: 5452
  132. PPid: 743
  133. TracerPid: 0 (2.4)
  134. Uid: 501 501 501 501
  135. Gid: 100 100 100 100
  136. FDSize: 256
  137. Groups: 100 14 16
  138. VmPeak: 5004 kB
  139. VmSize: 5004 kB
  140. VmLck: 0 kB
  141. VmHWM: 476 kB
  142. VmRSS: 476 kB
  143. VmData: 156 kB
  144. VmStk: 88 kB
  145. VmExe: 68 kB
  146. VmLib: 1412 kB
  147. VmPTE: 20 kb
  148. VmSwap: 0 kB
  149. Threads: 1
  150. SigQ: 0/28578
  151. SigPnd: 0000000000000000
  152. ShdPnd: 0000000000000000
  153. SigBlk: 0000000000000000
  154. SigIgn: 0000000000000000
  155. SigCgt: 0000000000000000
  156. CapInh: 00000000fffffeff
  157. CapPrm: 0000000000000000
  158. CapEff: 0000000000000000
  159. CapBnd: ffffffffffffffff
  160. Seccomp: 0
  161. voluntary_ctxt_switches: 0
  162. nonvoluntary_ctxt_switches: 1
  163. This shows you nearly the same information you would get if you viewed it with
  164. the ps command. In fact, ps uses the proc file system to obtain its
  165. information. But you get a more detailed view of the process by reading the
  166. file /proc/PID/status. It fields are described in table 1-2.
  167. The statm file contains more detailed information about the process
  168. memory usage. Its seven fields are explained in Table 1-3. The stat file
  169. contains details information about the process itself. Its fields are
  170. explained in Table 1-4.
  171. (for SMP CONFIG users)
  172. For making accounting scalable, RSS related information are handled in an
  173. asynchronous manner and the value may not be very precise. To see a precise
  174. snapshot of a moment, you can see /proc/<pid>/smaps file and scan page table.
  175. It's slow but very precise.
  176. Table 1-2: Contents of the status files (as of 4.1)
  177. ..............................................................................
  178. Field Content
  179. Name filename of the executable
  180. State state (R is running, S is sleeping, D is sleeping
  181. in an uninterruptible wait, Z is zombie,
  182. T is traced or stopped)
  183. Tgid thread group ID
  184. Ngid NUMA group ID (0 if none)
  185. Pid process id
  186. PPid process id of the parent process
  187. TracerPid PID of process tracing this process (0 if not)
  188. Uid Real, effective, saved set, and file system UIDs
  189. Gid Real, effective, saved set, and file system GIDs
  190. FDSize number of file descriptor slots currently allocated
  191. Groups supplementary group list
  192. NStgid descendant namespace thread group ID hierarchy
  193. NSpid descendant namespace process ID hierarchy
  194. NSpgid descendant namespace process group ID hierarchy
  195. NSsid descendant namespace session ID hierarchy
  196. VmPeak peak virtual memory size
  197. VmSize total program size
  198. VmLck locked memory size
  199. VmHWM peak resident set size ("high water mark")
  200. VmRSS size of memory portions
  201. VmData size of data, stack, and text segments
  202. VmStk size of data, stack, and text segments
  203. VmExe size of text segment
  204. VmLib size of shared library code
  205. VmPTE size of page table entries
  206. VmPMD size of second level page tables
  207. VmSwap size of swap usage (the number of referred swapents)
  208. Threads number of threads
  209. SigQ number of signals queued/max. number for queue
  210. SigPnd bitmap of pending signals for the thread
  211. ShdPnd bitmap of shared pending signals for the process
  212. SigBlk bitmap of blocked signals
  213. SigIgn bitmap of ignored signals
  214. SigCgt bitmap of caught signals
  215. CapInh bitmap of inheritable capabilities
  216. CapPrm bitmap of permitted capabilities
  217. CapEff bitmap of effective capabilities
  218. CapBnd bitmap of capabilities bounding set
  219. Seccomp seccomp mode, like prctl(PR_GET_SECCOMP, ...)
  220. Cpus_allowed mask of CPUs on which this process may run
  221. Cpus_allowed_list Same as previous, but in "list format"
  222. Mems_allowed mask of memory nodes allowed to this process
  223. Mems_allowed_list Same as previous, but in "list format"
  224. voluntary_ctxt_switches number of voluntary context switches
  225. nonvoluntary_ctxt_switches number of non voluntary context switches
  226. ..............................................................................
  227. Table 1-3: Contents of the statm files (as of 2.6.8-rc3)
  228. ..............................................................................
  229. Field Content
  230. size total program size (pages) (same as VmSize in status)
  231. resident size of memory portions (pages) (same as VmRSS in status)
  232. shared number of pages that are shared (i.e. backed by a file)
  233. trs number of pages that are 'code' (not including libs; broken,
  234. includes data segment)
  235. lrs number of pages of library (always 0 on 2.6)
  236. drs number of pages of data/stack (including libs; broken,
  237. includes library text)
  238. dt number of dirty pages (always 0 on 2.6)
  239. ..............................................................................
  240. Table 1-4: Contents of the stat files (as of 2.6.30-rc7)
  241. ..............................................................................
  242. Field Content
  243. pid process id
  244. tcomm filename of the executable
  245. state state (R is running, S is sleeping, D is sleeping in an
  246. uninterruptible wait, Z is zombie, T is traced or stopped)
  247. ppid process id of the parent process
  248. pgrp pgrp of the process
  249. sid session id
  250. tty_nr tty the process uses
  251. tty_pgrp pgrp of the tty
  252. flags task flags
  253. min_flt number of minor faults
  254. cmin_flt number of minor faults with child's
  255. maj_flt number of major faults
  256. cmaj_flt number of major faults with child's
  257. utime user mode jiffies
  258. stime kernel mode jiffies
  259. cutime user mode jiffies with child's
  260. cstime kernel mode jiffies with child's
  261. priority priority level
  262. nice nice level
  263. num_threads number of threads
  264. it_real_value (obsolete, always 0)
  265. start_time time the process started after system boot
  266. vsize virtual memory size
  267. rss resident set memory size
  268. rsslim current limit in bytes on the rss
  269. start_code address above which program text can run
  270. end_code address below which program text can run
  271. start_stack address of the start of the main process stack
  272. esp current value of ESP
  273. eip current value of EIP
  274. pending bitmap of pending signals
  275. blocked bitmap of blocked signals
  276. sigign bitmap of ignored signals
  277. sigcatch bitmap of caught signals
  278. wchan address where process went to sleep
  279. 0 (place holder)
  280. 0 (place holder)
  281. exit_signal signal to send to parent thread on exit
  282. task_cpu which CPU the task is scheduled on
  283. rt_priority realtime priority
  284. policy scheduling policy (man sched_setscheduler)
  285. blkio_ticks time spent waiting for block IO
  286. gtime guest time of the task in jiffies
  287. cgtime guest time of the task children in jiffies
  288. start_data address above which program data+bss is placed
  289. end_data address below which program data+bss is placed
  290. start_brk address above which program heap can be expanded with brk()
  291. arg_start address above which program command line is placed
  292. arg_end address below which program command line is placed
  293. env_start address above which program environment is placed
  294. env_end address below which program environment is placed
  295. exit_code the thread's exit_code in the form reported by the waitpid system call
  296. ..............................................................................
  297. The /proc/PID/maps file containing the currently mapped memory regions and
  298. their access permissions.
  299. The format is:
  300. address perms offset dev inode pathname
  301. 08048000-08049000 r-xp 00000000 03:00 8312 /opt/test
  302. 08049000-0804a000 rw-p 00001000 03:00 8312 /opt/test
  303. 0804a000-0806b000 rw-p 00000000 00:00 0 [heap]
  304. a7cb1000-a7cb2000 ---p 00000000 00:00 0
  305. a7cb2000-a7eb2000 rw-p 00000000 00:00 0
  306. a7eb2000-a7eb3000 ---p 00000000 00:00 0
  307. a7eb3000-a7ed5000 rw-p 00000000 00:00 0 [stack:1001]
  308. a7ed5000-a8008000 r-xp 00000000 03:00 4222 /lib/libc.so.6
  309. a8008000-a800a000 r--p 00133000 03:00 4222 /lib/libc.so.6
  310. a800a000-a800b000 rw-p 00135000 03:00 4222 /lib/libc.so.6
  311. a800b000-a800e000 rw-p 00000000 00:00 0
  312. a800e000-a8022000 r-xp 00000000 03:00 14462 /lib/libpthread.so.0
  313. a8022000-a8023000 r--p 00013000 03:00 14462 /lib/libpthread.so.0
  314. a8023000-a8024000 rw-p 00014000 03:00 14462 /lib/libpthread.so.0
  315. a8024000-a8027000 rw-p 00000000 00:00 0
  316. a8027000-a8043000 r-xp 00000000 03:00 8317 /lib/ld-linux.so.2
  317. a8043000-a8044000 r--p 0001b000 03:00 8317 /lib/ld-linux.so.2
  318. a8044000-a8045000 rw-p 0001c000 03:00 8317 /lib/ld-linux.so.2
  319. aff35000-aff4a000 rw-p 00000000 00:00 0 [stack]
  320. ffffe000-fffff000 r-xp 00000000 00:00 0 [vdso]
  321. where "address" is the address space in the process that it occupies, "perms"
  322. is a set of permissions:
  323. r = read
  324. w = write
  325. x = execute
  326. s = shared
  327. p = private (copy on write)
  328. "offset" is the offset into the mapping, "dev" is the device (major:minor), and
  329. "inode" is the inode on that device. 0 indicates that no inode is associated
  330. with the memory region, as the case would be with BSS (uninitialized data).
  331. The "pathname" shows the name associated file for this mapping. If the mapping
  332. is not associated with a file:
  333. [heap] = the heap of the program
  334. [stack] = the stack of the main process
  335. [stack:1001] = the stack of the thread with tid 1001
  336. [vdso] = the "virtual dynamic shared object",
  337. the kernel system call handler
  338. or if empty, the mapping is anonymous.
  339. The /proc/PID/task/TID/maps is a view of the virtual memory from the viewpoint
  340. of the individual tasks of a process. In this file you will see a mapping marked
  341. as [stack] if that task sees it as a stack. This is a key difference from the
  342. content of /proc/PID/maps, where you will see all mappings that are being used
  343. as stack by all of those tasks. Hence, for the example above, the task-level
  344. map, i.e. /proc/PID/task/TID/maps for thread 1001 will look like this:
  345. 08048000-08049000 r-xp 00000000 03:00 8312 /opt/test
  346. 08049000-0804a000 rw-p 00001000 03:00 8312 /opt/test
  347. 0804a000-0806b000 rw-p 00000000 00:00 0 [heap]
  348. a7cb1000-a7cb2000 ---p 00000000 00:00 0
  349. a7cb2000-a7eb2000 rw-p 00000000 00:00 0
  350. a7eb2000-a7eb3000 ---p 00000000 00:00 0
  351. a7eb3000-a7ed5000 rw-p 00000000 00:00 0 [stack]
  352. a7ed5000-a8008000 r-xp 00000000 03:00 4222 /lib/libc.so.6
  353. a8008000-a800a000 r--p 00133000 03:00 4222 /lib/libc.so.6
  354. a800a000-a800b000 rw-p 00135000 03:00 4222 /lib/libc.so.6
  355. a800b000-a800e000 rw-p 00000000 00:00 0
  356. a800e000-a8022000 r-xp 00000000 03:00 14462 /lib/libpthread.so.0
  357. a8022000-a8023000 r--p 00013000 03:00 14462 /lib/libpthread.so.0
  358. a8023000-a8024000 rw-p 00014000 03:00 14462 /lib/libpthread.so.0
  359. a8024000-a8027000 rw-p 00000000 00:00 0
  360. a8027000-a8043000 r-xp 00000000 03:00 8317 /lib/ld-linux.so.2
  361. a8043000-a8044000 r--p 0001b000 03:00 8317 /lib/ld-linux.so.2
  362. a8044000-a8045000 rw-p 0001c000 03:00 8317 /lib/ld-linux.so.2
  363. aff35000-aff4a000 rw-p 00000000 00:00 0
  364. ffffe000-fffff000 r-xp 00000000 00:00 0 [vdso]
  365. The /proc/PID/smaps is an extension based on maps, showing the memory
  366. consumption for each of the process's mappings. For each of mappings there
  367. is a series of lines such as the following:
  368. 08048000-080bc000 r-xp 00000000 03:02 13130 /bin/bash
  369. Size: 1084 kB
  370. Rss: 892 kB
  371. Pss: 374 kB
  372. Shared_Clean: 892 kB
  373. Shared_Dirty: 0 kB
  374. Private_Clean: 0 kB
  375. Private_Dirty: 0 kB
  376. Referenced: 892 kB
  377. Anonymous: 0 kB
  378. Swap: 0 kB
  379. SwapPss: 0 kB
  380. KernelPageSize: 4 kB
  381. MMUPageSize: 4 kB
  382. Locked: 374 kB
  383. VmFlags: rd ex mr mw me de
  384. the first of these lines shows the same information as is displayed for the
  385. mapping in /proc/PID/maps. The remaining lines show the size of the mapping
  386. (size), the amount of the mapping that is currently resident in RAM (RSS), the
  387. process' proportional share of this mapping (PSS), the number of clean and
  388. dirty private pages in the mapping.
  389. The "proportional set size" (PSS) of a process is the count of pages it has
  390. in memory, where each page is divided by the number of processes sharing it.
  391. So if a process has 1000 pages all to itself, and 1000 shared with one other
  392. process, its PSS will be 1500.
  393. Note that even a page which is part of a MAP_SHARED mapping, but has only
  394. a single pte mapped, i.e. is currently used by only one process, is accounted
  395. as private and not as shared.
  396. "Referenced" indicates the amount of memory currently marked as referenced or
  397. accessed.
  398. "Anonymous" shows the amount of memory that does not belong to any file. Even
  399. a mapping associated with a file may contain anonymous pages: when MAP_PRIVATE
  400. and a page is modified, the file page is replaced by a private anonymous copy.
  401. "Swap" shows how much would-be-anonymous memory is also used, but out on
  402. swap.
  403. "SwapPss" shows proportional swap share of this mapping.
  404. "VmFlags" field deserves a separate description. This member represents the kernel
  405. flags associated with the particular virtual memory area in two letter encoded
  406. manner. The codes are the following:
  407. rd - readable
  408. wr - writeable
  409. ex - executable
  410. sh - shared
  411. mr - may read
  412. mw - may write
  413. me - may execute
  414. ms - may share
  415. gd - stack segment growns down
  416. pf - pure PFN range
  417. dw - disabled write to the mapped file
  418. lo - pages are locked in memory
  419. io - memory mapped I/O area
  420. sr - sequential read advise provided
  421. rr - random read advise provided
  422. dc - do not copy area on fork
  423. de - do not expand area on remapping
  424. ac - area is accountable
  425. nr - swap space is not reserved for the area
  426. ht - area uses huge tlb pages
  427. nl - non-linear mapping
  428. ar - architecture specific flag
  429. dd - do not include area into core dump
  430. sd - soft-dirty flag
  431. mm - mixed map area
  432. hg - huge page advise flag
  433. nh - no-huge page advise flag
  434. mg - mergable advise flag
  435. Note that there is no guarantee that every flag and associated mnemonic will
  436. be present in all further kernel releases. Things get changed, the flags may
  437. be vanished or the reverse -- new added.
  438. This file is only present if the CONFIG_MMU kernel configuration option is
  439. enabled.
  440. The /proc/PID/clear_refs is used to reset the PG_Referenced and ACCESSED/YOUNG
  441. bits on both physical and virtual pages associated with a process, and the
  442. soft-dirty bit on pte (see Documentation/vm/soft-dirty.txt for details).
  443. To clear the bits for all the pages associated with the process
  444. > echo 1 > /proc/PID/clear_refs
  445. To clear the bits for the anonymous pages associated with the process
  446. > echo 2 > /proc/PID/clear_refs
  447. To clear the bits for the file mapped pages associated with the process
  448. > echo 3 > /proc/PID/clear_refs
  449. To clear the soft-dirty bit
  450. > echo 4 > /proc/PID/clear_refs
  451. To reset the peak resident set size ("high water mark") to the process's
  452. current value:
  453. > echo 5 > /proc/PID/clear_refs
  454. Any other value written to /proc/PID/clear_refs will have no effect.
  455. The /proc/pid/pagemap gives the PFN, which can be used to find the pageflags
  456. using /proc/kpageflags and number of times a page is mapped using
  457. /proc/kpagecount. For detailed explanation, see Documentation/vm/pagemap.txt.
  458. The /proc/pid/numa_maps is an extension based on maps, showing the memory
  459. locality and binding policy, as well as the memory usage (in pages) of
  460. each mapping. The output follows a general format where mapping details get
  461. summarized separated by blank spaces, one mapping per each file line:
  462. address policy mapping details
  463. 00400000 default file=/usr/local/bin/app mapped=1 active=0 N3=1 kernelpagesize_kB=4
  464. 00600000 default file=/usr/local/bin/app anon=1 dirty=1 N3=1 kernelpagesize_kB=4
  465. 3206000000 default file=/lib64/ld-2.12.so mapped=26 mapmax=6 N0=24 N3=2 kernelpagesize_kB=4
  466. 320621f000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
  467. 3206220000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
  468. 3206221000 default anon=1 dirty=1 N3=1 kernelpagesize_kB=4
  469. 3206800000 default file=/lib64/libc-2.12.so mapped=59 mapmax=21 active=55 N0=41 N3=18 kernelpagesize_kB=4
  470. 320698b000 default file=/lib64/libc-2.12.so
  471. 3206b8a000 default file=/lib64/libc-2.12.so anon=2 dirty=2 N3=2 kernelpagesize_kB=4
  472. 3206b8e000 default file=/lib64/libc-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
  473. 3206b8f000 default anon=3 dirty=3 active=1 N3=3 kernelpagesize_kB=4
  474. 7f4dc10a2000 default anon=3 dirty=3 N3=3 kernelpagesize_kB=4
  475. 7f4dc10b4000 default anon=2 dirty=2 active=1 N3=2 kernelpagesize_kB=4
  476. 7f4dc1200000 default file=/anon_hugepage\040(deleted) huge anon=1 dirty=1 N3=1 kernelpagesize_kB=2048
  477. 7fff335f0000 default stack anon=3 dirty=3 N3=3 kernelpagesize_kB=4
  478. 7fff3369d000 default mapped=1 mapmax=35 active=0 N3=1 kernelpagesize_kB=4
  479. Where:
  480. "address" is the starting address for the mapping;
  481. "policy" reports the NUMA memory policy set for the mapping (see vm/numa_memory_policy.txt);
  482. "mapping details" summarizes mapping data such as mapping type, page usage counters,
  483. node locality page counters (N0 == node0, N1 == node1, ...) and the kernel page
  484. size, in KB, that is backing the mapping up.
  485. 1.2 Kernel data
  486. ---------------
  487. Similar to the process entries, the kernel data files give information about
  488. the running kernel. The files used to obtain this information are contained in
  489. /proc and are listed in Table 1-5. Not all of these will be present in your
  490. system. It depends on the kernel configuration and the loaded modules, which
  491. files are there, and which are missing.
  492. Table 1-5: Kernel info in /proc
  493. ..............................................................................
  494. File Content
  495. apm Advanced power management info
  496. buddyinfo Kernel memory allocator information (see text) (2.5)
  497. bus Directory containing bus specific information
  498. cmdline Kernel command line
  499. cpuinfo Info about the CPU
  500. devices Available devices (block and character)
  501. dma Used DMS channels
  502. filesystems Supported filesystems
  503. driver Various drivers grouped here, currently rtc (2.4)
  504. execdomains Execdomains, related to security (2.4)
  505. fb Frame Buffer devices (2.4)
  506. fs File system parameters, currently nfs/exports (2.4)
  507. ide Directory containing info about the IDE subsystem
  508. interrupts Interrupt usage
  509. iomem Memory map (2.4)
  510. ioports I/O port usage
  511. irq Masks for irq to cpu affinity (2.4)(smp?)
  512. isapnp ISA PnP (Plug&Play) Info (2.4)
  513. kcore Kernel core image (can be ELF or A.OUT(deprecated in 2.4))
  514. kmsg Kernel messages
  515. ksyms Kernel symbol table
  516. loadavg Load average of last 1, 5 & 15 minutes
  517. locks Kernel locks
  518. meminfo Memory info
  519. misc Miscellaneous
  520. modules List of loaded modules
  521. mounts Mounted filesystems
  522. net Networking info (see text)
  523. pagetypeinfo Additional page allocator information (see text) (2.5)
  524. partitions Table of partitions known to the system
  525. pci Deprecated info of PCI bus (new way -> /proc/bus/pci/,
  526. decoupled by lspci (2.4)
  527. rtc Real time clock
  528. scsi SCSI info (see text)
  529. slabinfo Slab pool info
  530. softirqs softirq usage
  531. stat Overall statistics
  532. swaps Swap space utilization
  533. sys See chapter 2
  534. sysvipc Info of SysVIPC Resources (msg, sem, shm) (2.4)
  535. tty Info of tty drivers
  536. uptime Wall clock since boot, combined idle time of all cpus
  537. version Kernel version
  538. video bttv info of video resources (2.4)
  539. vmallocinfo Show vmalloced areas
  540. ..............................................................................
  541. You can, for example, check which interrupts are currently in use and what
  542. they are used for by looking in the file /proc/interrupts:
  543. > cat /proc/interrupts
  544. CPU0
  545. 0: 8728810 XT-PIC timer
  546. 1: 895 XT-PIC keyboard
  547. 2: 0 XT-PIC cascade
  548. 3: 531695 XT-PIC aha152x
  549. 4: 2014133 XT-PIC serial
  550. 5: 44401 XT-PIC pcnet_cs
  551. 8: 2 XT-PIC rtc
  552. 11: 8 XT-PIC i82365
  553. 12: 182918 XT-PIC PS/2 Mouse
  554. 13: 1 XT-PIC fpu
  555. 14: 1232265 XT-PIC ide0
  556. 15: 7 XT-PIC ide1
  557. NMI: 0
  558. In 2.4.* a couple of lines where added to this file LOC & ERR (this time is the
  559. output of a SMP machine):
  560. > cat /proc/interrupts
  561. CPU0 CPU1
  562. 0: 1243498 1214548 IO-APIC-edge timer
  563. 1: 8949 8958 IO-APIC-edge keyboard
  564. 2: 0 0 XT-PIC cascade
  565. 5: 11286 10161 IO-APIC-edge soundblaster
  566. 8: 1 0 IO-APIC-edge rtc
  567. 9: 27422 27407 IO-APIC-edge 3c503
  568. 12: 113645 113873 IO-APIC-edge PS/2 Mouse
  569. 13: 0 0 XT-PIC fpu
  570. 14: 22491 24012 IO-APIC-edge ide0
  571. 15: 2183 2415 IO-APIC-edge ide1
  572. 17: 30564 30414 IO-APIC-level eth0
  573. 18: 177 164 IO-APIC-level bttv
  574. NMI: 2457961 2457959
  575. LOC: 2457882 2457881
  576. ERR: 2155
  577. NMI is incremented in this case because every timer interrupt generates a NMI
  578. (Non Maskable Interrupt) which is used by the NMI Watchdog to detect lockups.
  579. LOC is the local interrupt counter of the internal APIC of every CPU.
  580. ERR is incremented in the case of errors in the IO-APIC bus (the bus that
  581. connects the CPUs in a SMP system. This means that an error has been detected,
  582. the IO-APIC automatically retry the transmission, so it should not be a big
  583. problem, but you should read the SMP-FAQ.
  584. In 2.6.2* /proc/interrupts was expanded again. This time the goal was for
  585. /proc/interrupts to display every IRQ vector in use by the system, not
  586. just those considered 'most important'. The new vectors are:
  587. THR -- interrupt raised when a machine check threshold counter
  588. (typically counting ECC corrected errors of memory or cache) exceeds
  589. a configurable threshold. Only available on some systems.
  590. TRM -- a thermal event interrupt occurs when a temperature threshold
  591. has been exceeded for the CPU. This interrupt may also be generated
  592. when the temperature drops back to normal.
  593. SPU -- a spurious interrupt is some interrupt that was raised then lowered
  594. by some IO device before it could be fully processed by the APIC. Hence
  595. the APIC sees the interrupt but does not know what device it came from.
  596. For this case the APIC will generate the interrupt with a IRQ vector
  597. of 0xff. This might also be generated by chipset bugs.
  598. RES, CAL, TLB -- rescheduling, call and TLB flush interrupts are
  599. sent from one CPU to another per the needs of the OS. Typically,
  600. their statistics are used by kernel developers and interested users to
  601. determine the occurrence of interrupts of the given type.
  602. The above IRQ vectors are displayed only when relevant. For example,
  603. the threshold vector does not exist on x86_64 platforms. Others are
  604. suppressed when the system is a uniprocessor. As of this writing, only
  605. i386 and x86_64 platforms support the new IRQ vector displays.
  606. Of some interest is the introduction of the /proc/irq directory to 2.4.
  607. It could be used to set IRQ to CPU affinity, this means that you can "hook" an
  608. IRQ to only one CPU, or to exclude a CPU of handling IRQs. The contents of the
  609. irq subdir is one subdir for each IRQ, and two files; default_smp_affinity and
  610. prof_cpu_mask.
  611. For example
  612. > ls /proc/irq/
  613. 0 10 12 14 16 18 2 4 6 8 prof_cpu_mask
  614. 1 11 13 15 17 19 3 5 7 9 default_smp_affinity
  615. > ls /proc/irq/0/
  616. smp_affinity
  617. smp_affinity is a bitmask, in which you can specify which CPUs can handle the
  618. IRQ, you can set it by doing:
  619. > echo 1 > /proc/irq/10/smp_affinity
  620. This means that only the first CPU will handle the IRQ, but you can also echo
  621. 5 which means that only the first and fourth CPU can handle the IRQ.
  622. The contents of each smp_affinity file is the same by default:
  623. > cat /proc/irq/0/smp_affinity
  624. ffffffff
  625. There is an alternate interface, smp_affinity_list which allows specifying
  626. a cpu range instead of a bitmask:
  627. > cat /proc/irq/0/smp_affinity_list
  628. 1024-1031
  629. The default_smp_affinity mask applies to all non-active IRQs, which are the
  630. IRQs which have not yet been allocated/activated, and hence which lack a
  631. /proc/irq/[0-9]* directory.
  632. The node file on an SMP system shows the node to which the device using the IRQ
  633. reports itself as being attached. This hardware locality information does not
  634. include information about any possible driver locality preference.
  635. prof_cpu_mask specifies which CPUs are to be profiled by the system wide
  636. profiler. Default value is ffffffff (all cpus if there are only 32 of them).
  637. The way IRQs are routed is handled by the IO-APIC, and it's Round Robin
  638. between all the CPUs which are allowed to handle it. As usual the kernel has
  639. more info than you and does a better job than you, so the defaults are the
  640. best choice for almost everyone. [Note this applies only to those IO-APIC's
  641. that support "Round Robin" interrupt distribution.]
  642. There are three more important subdirectories in /proc: net, scsi, and sys.
  643. The general rule is that the contents, or even the existence of these
  644. directories, depend on your kernel configuration. If SCSI is not enabled, the
  645. directory scsi may not exist. The same is true with the net, which is there
  646. only when networking support is present in the running kernel.
  647. The slabinfo file gives information about memory usage at the slab level.
  648. Linux uses slab pools for memory management above page level in version 2.2.
  649. Commonly used objects have their own slab pool (such as network buffers,
  650. directory cache, and so on).
  651. ..............................................................................
  652. > cat /proc/buddyinfo
  653. Node 0, zone DMA 0 4 5 4 4 3 ...
  654. Node 0, zone Normal 1 0 0 1 101 8 ...
  655. Node 0, zone HighMem 2 0 0 1 1 0 ...
  656. External fragmentation is a problem under some workloads, and buddyinfo is a
  657. useful tool for helping diagnose these problems. Buddyinfo will give you a
  658. clue as to how big an area you can safely allocate, or why a previous
  659. allocation failed.
  660. Each column represents the number of pages of a certain order which are
  661. available. In this case, there are 0 chunks of 2^0*PAGE_SIZE available in
  662. ZONE_DMA, 4 chunks of 2^1*PAGE_SIZE in ZONE_DMA, 101 chunks of 2^4*PAGE_SIZE
  663. available in ZONE_NORMAL, etc...
  664. More information relevant to external fragmentation can be found in
  665. pagetypeinfo.
  666. > cat /proc/pagetypeinfo
  667. Page block order: 9
  668. Pages per block: 512
  669. Free pages count per migrate type at order 0 1 2 3 4 5 6 7 8 9 10
  670. Node 0, zone DMA, type Unmovable 0 0 0 1 1 1 1 1 1 1 0
  671. Node 0, zone DMA, type Reclaimable 0 0 0 0 0 0 0 0 0 0 0
  672. Node 0, zone DMA, type Movable 1 1 2 1 2 1 1 0 1 0 2
  673. Node 0, zone DMA, type Reserve 0 0 0 0 0 0 0 0 0 1 0
  674. Node 0, zone DMA, type Isolate 0 0 0 0 0 0 0 0 0 0 0
  675. Node 0, zone DMA32, type Unmovable 103 54 77 1 1 1 11 8 7 1 9
  676. Node 0, zone DMA32, type Reclaimable 0 0 2 1 0 0 0 0 1 0 0
  677. Node 0, zone DMA32, type Movable 169 152 113 91 77 54 39 13 6 1 452
  678. Node 0, zone DMA32, type Reserve 1 2 2 2 2 0 1 1 1 1 0
  679. Node 0, zone DMA32, type Isolate 0 0 0 0 0 0 0 0 0 0 0
  680. Number of blocks type Unmovable Reclaimable Movable Reserve Isolate
  681. Node 0, zone DMA 2 0 5 1 0
  682. Node 0, zone DMA32 41 6 967 2 0
  683. Fragmentation avoidance in the kernel works by grouping pages of different
  684. migrate types into the same contiguous regions of memory called page blocks.
  685. A page block is typically the size of the default hugepage size e.g. 2MB on
  686. X86-64. By keeping pages grouped based on their ability to move, the kernel
  687. can reclaim pages within a page block to satisfy a high-order allocation.
  688. The pagetypinfo begins with information on the size of a page block. It
  689. then gives the same type of information as buddyinfo except broken down
  690. by migrate-type and finishes with details on how many page blocks of each
  691. type exist.
  692. If min_free_kbytes has been tuned correctly (recommendations made by hugeadm
  693. from libhugetlbfs http://sourceforge.net/projects/libhugetlbfs/), one can
  694. make an estimate of the likely number of huge pages that can be allocated
  695. at a given point in time. All the "Movable" blocks should be allocatable
  696. unless memory has been mlock()'d. Some of the Reclaimable blocks should
  697. also be allocatable although a lot of filesystem metadata may have to be
  698. reclaimed to achieve this.
  699. ..............................................................................
  700. meminfo:
  701. Provides information about distribution and utilization of memory. This
  702. varies by architecture and compile options. The following is from a
  703. 16GB PIII, which has highmem enabled. You may not have all of these fields.
  704. > cat /proc/meminfo
  705. The "Locked" indicates whether the mapping is locked in memory or not.
  706. MemTotal: 16344972 kB
  707. MemFree: 13634064 kB
  708. MemAvailable: 14836172 kB
  709. Buffers: 3656 kB
  710. Cached: 1195708 kB
  711. SwapCached: 0 kB
  712. Active: 891636 kB
  713. Inactive: 1077224 kB
  714. HighTotal: 15597528 kB
  715. HighFree: 13629632 kB
  716. LowTotal: 747444 kB
  717. LowFree: 4432 kB
  718. SwapTotal: 0 kB
  719. SwapFree: 0 kB
  720. Dirty: 968 kB
  721. Writeback: 0 kB
  722. AnonPages: 861800 kB
  723. Mapped: 280372 kB
  724. Slab: 284364 kB
  725. SReclaimable: 159856 kB
  726. SUnreclaim: 124508 kB
  727. PageTables: 24448 kB
  728. NFS_Unstable: 0 kB
  729. Bounce: 0 kB
  730. WritebackTmp: 0 kB
  731. CommitLimit: 7669796 kB
  732. Committed_AS: 100056 kB
  733. VmallocTotal: 112216 kB
  734. VmallocUsed: 428 kB
  735. VmallocChunk: 111088 kB
  736. AnonHugePages: 49152 kB
  737. MemTotal: Total usable ram (i.e. physical ram minus a few reserved
  738. bits and the kernel binary code)
  739. MemFree: The sum of LowFree+HighFree
  740. MemAvailable: An estimate of how much memory is available for starting new
  741. applications, without swapping. Calculated from MemFree,
  742. SReclaimable, the size of the file LRU lists, and the low
  743. watermarks in each zone.
  744. The estimate takes into account that the system needs some
  745. page cache to function well, and that not all reclaimable
  746. slab will be reclaimable, due to items being in use. The
  747. impact of those factors will vary from system to system.
  748. Buffers: Relatively temporary storage for raw disk blocks
  749. shouldn't get tremendously large (20MB or so)
  750. Cached: in-memory cache for files read from the disk (the
  751. pagecache). Doesn't include SwapCached
  752. SwapCached: Memory that once was swapped out, is swapped back in but
  753. still also is in the swapfile (if memory is needed it
  754. doesn't need to be swapped out AGAIN because it is already
  755. in the swapfile. This saves I/O)
  756. Active: Memory that has been used more recently and usually not
  757. reclaimed unless absolutely necessary.
  758. Inactive: Memory which has been less recently used. It is more
  759. eligible to be reclaimed for other purposes
  760. HighTotal:
  761. HighFree: Highmem is all memory above ~860MB of physical memory
  762. Highmem areas are for use by userspace programs, or
  763. for the pagecache. The kernel must use tricks to access
  764. this memory, making it slower to access than lowmem.
  765. LowTotal:
  766. LowFree: Lowmem is memory which can be used for everything that
  767. highmem can be used for, but it is also available for the
  768. kernel's use for its own data structures. Among many
  769. other things, it is where everything from the Slab is
  770. allocated. Bad things happen when you're out of lowmem.
  771. SwapTotal: total amount of swap space available
  772. SwapFree: Memory which has been evicted from RAM, and is temporarily
  773. on the disk
  774. Dirty: Memory which is waiting to get written back to the disk
  775. Writeback: Memory which is actively being written back to the disk
  776. AnonPages: Non-file backed pages mapped into userspace page tables
  777. AnonHugePages: Non-file backed huge pages mapped into userspace page tables
  778. Mapped: files which have been mmaped, such as libraries
  779. Slab: in-kernel data structures cache
  780. SReclaimable: Part of Slab, that might be reclaimed, such as caches
  781. SUnreclaim: Part of Slab, that cannot be reclaimed on memory pressure
  782. PageTables: amount of memory dedicated to the lowest level of page
  783. tables.
  784. NFS_Unstable: NFS pages sent to the server, but not yet committed to stable
  785. storage
  786. Bounce: Memory used for block device "bounce buffers"
  787. WritebackTmp: Memory used by FUSE for temporary writeback buffers
  788. CommitLimit: Based on the overcommit ratio ('vm.overcommit_ratio'),
  789. this is the total amount of memory currently available to
  790. be allocated on the system. This limit is only adhered to
  791. if strict overcommit accounting is enabled (mode 2 in
  792. 'vm.overcommit_memory').
  793. The CommitLimit is calculated with the following formula:
  794. CommitLimit = ([total RAM pages] - [total huge TLB pages]) *
  795. overcommit_ratio / 100 + [total swap pages]
  796. For example, on a system with 1G of physical RAM and 7G
  797. of swap with a `vm.overcommit_ratio` of 30 it would
  798. yield a CommitLimit of 7.3G.
  799. For more details, see the memory overcommit documentation
  800. in vm/overcommit-accounting.
  801. Committed_AS: The amount of memory presently allocated on the system.
  802. The committed memory is a sum of all of the memory which
  803. has been allocated by processes, even if it has not been
  804. "used" by them as of yet. A process which malloc()'s 1G
  805. of memory, but only touches 300M of it will show up as
  806. using 1G. This 1G is memory which has been "committed" to
  807. by the VM and can be used at any time by the allocating
  808. application. With strict overcommit enabled on the system
  809. (mode 2 in 'vm.overcommit_memory'),allocations which would
  810. exceed the CommitLimit (detailed above) will not be permitted.
  811. This is useful if one needs to guarantee that processes will
  812. not fail due to lack of memory once that memory has been
  813. successfully allocated.
  814. VmallocTotal: total size of vmalloc memory area
  815. VmallocUsed: amount of vmalloc area which is used
  816. VmallocChunk: largest contiguous block of vmalloc area which is free
  817. ..............................................................................
  818. vmallocinfo:
  819. Provides information about vmalloced/vmaped areas. One line per area,
  820. containing the virtual address range of the area, size in bytes,
  821. caller information of the creator, and optional information depending
  822. on the kind of area :
  823. pages=nr number of pages
  824. phys=addr if a physical address was specified
  825. ioremap I/O mapping (ioremap() and friends)
  826. vmalloc vmalloc() area
  827. vmap vmap()ed pages
  828. user VM_USERMAP area
  829. vpages buffer for pages pointers was vmalloced (huge area)
  830. N<node>=nr (Only on NUMA kernels)
  831. Number of pages allocated on memory node <node>
  832. > cat /proc/vmallocinfo
  833. 0xffffc20000000000-0xffffc20000201000 2101248 alloc_large_system_hash+0x204 ...
  834. /0x2c0 pages=512 vmalloc N0=128 N1=128 N2=128 N3=128
  835. 0xffffc20000201000-0xffffc20000302000 1052672 alloc_large_system_hash+0x204 ...
  836. /0x2c0 pages=256 vmalloc N0=64 N1=64 N2=64 N3=64
  837. 0xffffc20000302000-0xffffc20000304000 8192 acpi_tb_verify_table+0x21/0x4f...
  838. phys=7fee8000 ioremap
  839. 0xffffc20000304000-0xffffc20000307000 12288 acpi_tb_verify_table+0x21/0x4f...
  840. phys=7fee7000 ioremap
  841. 0xffffc2000031d000-0xffffc2000031f000 8192 init_vdso_vars+0x112/0x210
  842. 0xffffc2000031f000-0xffffc2000032b000 49152 cramfs_uncompress_init+0x2e ...
  843. /0x80 pages=11 vmalloc N0=3 N1=3 N2=2 N3=3
  844. 0xffffc2000033a000-0xffffc2000033d000 12288 sys_swapon+0x640/0xac0 ...
  845. pages=2 vmalloc N1=2
  846. 0xffffc20000347000-0xffffc2000034c000 20480 xt_alloc_table_info+0xfe ...
  847. /0x130 [x_tables] pages=4 vmalloc N0=4
  848. 0xffffffffa0000000-0xffffffffa000f000 61440 sys_init_module+0xc27/0x1d00 ...
  849. pages=14 vmalloc N2=14
  850. 0xffffffffa000f000-0xffffffffa0014000 20480 sys_init_module+0xc27/0x1d00 ...
  851. pages=4 vmalloc N1=4
  852. 0xffffffffa0014000-0xffffffffa0017000 12288 sys_init_module+0xc27/0x1d00 ...
  853. pages=2 vmalloc N1=2
  854. 0xffffffffa0017000-0xffffffffa0022000 45056 sys_init_module+0xc27/0x1d00 ...
  855. pages=10 vmalloc N0=10
  856. ..............................................................................
  857. softirqs:
  858. Provides counts of softirq handlers serviced since boot time, for each cpu.
  859. > cat /proc/softirqs
  860. CPU0 CPU1 CPU2 CPU3
  861. HI: 0 0 0 0
  862. TIMER: 27166 27120 27097 27034
  863. NET_TX: 0 0 0 17
  864. NET_RX: 42 0 0 39
  865. BLOCK: 0 0 107 1121
  866. TASKLET: 0 0 0 290
  867. SCHED: 27035 26983 26971 26746
  868. HRTIMER: 0 0 0 0
  869. RCU: 1678 1769 2178 2250
  870. 1.3 IDE devices in /proc/ide
  871. ----------------------------
  872. The subdirectory /proc/ide contains information about all IDE devices of which
  873. the kernel is aware. There is one subdirectory for each IDE controller, the
  874. file drivers and a link for each IDE device, pointing to the device directory
  875. in the controller specific subtree.
  876. The file drivers contains general information about the drivers used for the
  877. IDE devices:
  878. > cat /proc/ide/drivers
  879. ide-cdrom version 4.53
  880. ide-disk version 1.08
  881. More detailed information can be found in the controller specific
  882. subdirectories. These are named ide0, ide1 and so on. Each of these
  883. directories contains the files shown in table 1-6.
  884. Table 1-6: IDE controller info in /proc/ide/ide?
  885. ..............................................................................
  886. File Content
  887. channel IDE channel (0 or 1)
  888. config Configuration (only for PCI/IDE bridge)
  889. mate Mate name
  890. model Type/Chipset of IDE controller
  891. ..............................................................................
  892. Each device connected to a controller has a separate subdirectory in the
  893. controllers directory. The files listed in table 1-7 are contained in these
  894. directories.
  895. Table 1-7: IDE device information
  896. ..............................................................................
  897. File Content
  898. cache The cache
  899. capacity Capacity of the medium (in 512Byte blocks)
  900. driver driver and version
  901. geometry physical and logical geometry
  902. identify device identify block
  903. media media type
  904. model device identifier
  905. settings device setup
  906. smart_thresholds IDE disk management thresholds
  907. smart_values IDE disk management values
  908. ..............................................................................
  909. The most interesting file is settings. This file contains a nice overview of
  910. the drive parameters:
  911. # cat /proc/ide/ide0/hda/settings
  912. name value min max mode
  913. ---- ----- --- --- ----
  914. bios_cyl 526 0 65535 rw
  915. bios_head 255 0 255 rw
  916. bios_sect 63 0 63 rw
  917. breada_readahead 4 0 127 rw
  918. bswap 0 0 1 r
  919. file_readahead 72 0 2097151 rw
  920. io_32bit 0 0 3 rw
  921. keepsettings 0 0 1 rw
  922. max_kb_per_request 122 1 127 rw
  923. multcount 0 0 8 rw
  924. nice1 1 0 1 rw
  925. nowerr 0 0 1 rw
  926. pio_mode write-only 0 255 w
  927. slow 0 0 1 rw
  928. unmaskirq 0 0 1 rw
  929. using_dma 0 0 1 rw
  930. 1.4 Networking info in /proc/net
  931. --------------------------------
  932. The subdirectory /proc/net follows the usual pattern. Table 1-8 shows the
  933. additional values you get for IP version 6 if you configure the kernel to
  934. support this. Table 1-9 lists the files and their meaning.
  935. Table 1-8: IPv6 info in /proc/net
  936. ..............................................................................
  937. File Content
  938. udp6 UDP sockets (IPv6)
  939. tcp6 TCP sockets (IPv6)
  940. raw6 Raw device statistics (IPv6)
  941. igmp6 IP multicast addresses, which this host joined (IPv6)
  942. if_inet6 List of IPv6 interface addresses
  943. ipv6_route Kernel routing table for IPv6
  944. rt6_stats Global IPv6 routing tables statistics
  945. sockstat6 Socket statistics (IPv6)
  946. snmp6 Snmp data (IPv6)
  947. ..............................................................................
  948. Table 1-9: Network info in /proc/net
  949. ..............................................................................
  950. File Content
  951. arp Kernel ARP table
  952. dev network devices with statistics
  953. dev_mcast the Layer2 multicast groups a device is listening too
  954. (interface index, label, number of references, number of bound
  955. addresses).
  956. dev_stat network device status
  957. ip_fwchains Firewall chain linkage
  958. ip_fwnames Firewall chain names
  959. ip_masq Directory containing the masquerading tables
  960. ip_masquerade Major masquerading table
  961. netstat Network statistics
  962. raw raw device statistics
  963. route Kernel routing table
  964. rpc Directory containing rpc info
  965. rt_cache Routing cache
  966. snmp SNMP data
  967. sockstat Socket statistics
  968. tcp TCP sockets
  969. udp UDP sockets
  970. unix UNIX domain sockets
  971. wireless Wireless interface data (Wavelan etc)
  972. igmp IP multicast addresses, which this host joined
  973. psched Global packet scheduler parameters.
  974. netlink List of PF_NETLINK sockets
  975. ip_mr_vifs List of multicast virtual interfaces
  976. ip_mr_cache List of multicast routing cache
  977. ..............................................................................
  978. You can use this information to see which network devices are available in
  979. your system and how much traffic was routed over those devices:
  980. > cat /proc/net/dev
  981. Inter-|Receive |[...
  982. face |bytes packets errs drop fifo frame compressed multicast|[...
  983. lo: 908188 5596 0 0 0 0 0 0 [...
  984. ppp0:15475140 20721 410 0 0 410 0 0 [...
  985. eth0: 614530 7085 0 0 0 0 0 1 [...
  986. ...] Transmit
  987. ...] bytes packets errs drop fifo colls carrier compressed
  988. ...] 908188 5596 0 0 0 0 0 0
  989. ...] 1375103 17405 0 0 0 0 0 0
  990. ...] 1703981 5535 0 0 0 3 0 0
  991. In addition, each Channel Bond interface has its own directory. For
  992. example, the bond0 device will have a directory called /proc/net/bond0/.
  993. It will contain information that is specific to that bond, such as the
  994. current slaves of the bond, the link status of the slaves, and how
  995. many times the slaves link has failed.
  996. 1.5 SCSI info
  997. -------------
  998. If you have a SCSI host adapter in your system, you'll find a subdirectory
  999. named after the driver for this adapter in /proc/scsi. You'll also see a list
  1000. of all recognized SCSI devices in /proc/scsi:
  1001. >cat /proc/scsi/scsi
  1002. Attached devices:
  1003. Host: scsi0 Channel: 00 Id: 00 Lun: 00
  1004. Vendor: IBM Model: DGHS09U Rev: 03E0
  1005. Type: Direct-Access ANSI SCSI revision: 03
  1006. Host: scsi0 Channel: 00 Id: 06 Lun: 00
  1007. Vendor: PIONEER Model: CD-ROM DR-U06S Rev: 1.04
  1008. Type: CD-ROM ANSI SCSI revision: 02
  1009. The directory named after the driver has one file for each adapter found in
  1010. the system. These files contain information about the controller, including
  1011. the used IRQ and the IO address range. The amount of information shown is
  1012. dependent on the adapter you use. The example shows the output for an Adaptec
  1013. AHA-2940 SCSI adapter:
  1014. > cat /proc/scsi/aic7xxx/0
  1015. Adaptec AIC7xxx driver version: 5.1.19/3.2.4
  1016. Compile Options:
  1017. TCQ Enabled By Default : Disabled
  1018. AIC7XXX_PROC_STATS : Disabled
  1019. AIC7XXX_RESET_DELAY : 5
  1020. Adapter Configuration:
  1021. SCSI Adapter: Adaptec AHA-294X Ultra SCSI host adapter
  1022. Ultra Wide Controller
  1023. PCI MMAPed I/O Base: 0xeb001000
  1024. Adapter SEEPROM Config: SEEPROM found and used.
  1025. Adaptec SCSI BIOS: Enabled
  1026. IRQ: 10
  1027. SCBs: Active 0, Max Active 2,
  1028. Allocated 15, HW 16, Page 255
  1029. Interrupts: 160328
  1030. BIOS Control Word: 0x18b6
  1031. Adapter Control Word: 0x005b
  1032. Extended Translation: Enabled
  1033. Disconnect Enable Flags: 0xffff
  1034. Ultra Enable Flags: 0x0001
  1035. Tag Queue Enable Flags: 0x0000
  1036. Ordered Queue Tag Flags: 0x0000
  1037. Default Tag Queue Depth: 8
  1038. Tagged Queue By Device array for aic7xxx host instance 0:
  1039. {255,255,255,255,255,255,255,255,255,255,255,255,255,255,255,255}
  1040. Actual queue depth per device for aic7xxx host instance 0:
  1041. {1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}
  1042. Statistics:
  1043. (scsi0:0:0:0)
  1044. Device using Wide/Sync transfers at 40.0 MByte/sec, offset 8
  1045. Transinfo settings: current(12/8/1/0), goal(12/8/1/0), user(12/15/1/0)
  1046. Total transfers 160151 (74577 reads and 85574 writes)
  1047. (scsi0:0:6:0)
  1048. Device using Narrow/Sync transfers at 5.0 MByte/sec, offset 15
  1049. Transinfo settings: current(50/15/0/0), goal(50/15/0/0), user(50/15/0/0)
  1050. Total transfers 0 (0 reads and 0 writes)
  1051. 1.6 Parallel port info in /proc/parport
  1052. ---------------------------------------
  1053. The directory /proc/parport contains information about the parallel ports of
  1054. your system. It has one subdirectory for each port, named after the port
  1055. number (0,1,2,...).
  1056. These directories contain the four files shown in Table 1-10.
  1057. Table 1-10: Files in /proc/parport
  1058. ..............................................................................
  1059. File Content
  1060. autoprobe Any IEEE-1284 device ID information that has been acquired.
  1061. devices list of the device drivers using that port. A + will appear by the
  1062. name of the device currently using the port (it might not appear
  1063. against any).
  1064. hardware Parallel port's base address, IRQ line and DMA channel.
  1065. irq IRQ that parport is using for that port. This is in a separate
  1066. file to allow you to alter it by writing a new value in (IRQ
  1067. number or none).
  1068. ..............................................................................
  1069. 1.7 TTY info in /proc/tty
  1070. -------------------------
  1071. Information about the available and actually used tty's can be found in the
  1072. directory /proc/tty.You'll find entries for drivers and line disciplines in
  1073. this directory, as shown in Table 1-11.
  1074. Table 1-11: Files in /proc/tty
  1075. ..............................................................................
  1076. File Content
  1077. drivers list of drivers and their usage
  1078. ldiscs registered line disciplines
  1079. driver/serial usage statistic and status of single tty lines
  1080. ..............................................................................
  1081. To see which tty's are currently in use, you can simply look into the file
  1082. /proc/tty/drivers:
  1083. > cat /proc/tty/drivers
  1084. pty_slave /dev/pts 136 0-255 pty:slave
  1085. pty_master /dev/ptm 128 0-255 pty:master
  1086. pty_slave /dev/ttyp 3 0-255 pty:slave
  1087. pty_master /dev/pty 2 0-255 pty:master
  1088. serial /dev/cua 5 64-67 serial:callout
  1089. serial /dev/ttyS 4 64-67 serial
  1090. /dev/tty0 /dev/tty0 4 0 system:vtmaster
  1091. /dev/ptmx /dev/ptmx 5 2 system
  1092. /dev/console /dev/console 5 1 system:console
  1093. /dev/tty /dev/tty 5 0 system:/dev/tty
  1094. unknown /dev/tty 4 1-63 console
  1095. 1.8 Miscellaneous kernel statistics in /proc/stat
  1096. -------------------------------------------------
  1097. Various pieces of information about kernel activity are available in the
  1098. /proc/stat file. All of the numbers reported in this file are aggregates
  1099. since the system first booted. For a quick look, simply cat the file:
  1100. > cat /proc/stat
  1101. cpu 2255 34 2290 22625563 6290 127 456 0 0 0
  1102. cpu0 1132 34 1441 11311718 3675 127 438 0 0 0
  1103. cpu1 1123 0 849 11313845 2614 0 18 0 0 0
  1104. intr 114930548 113199788 3 0 5 263 0 4 [... lots more numbers ...]
  1105. ctxt 1990473
  1106. btime 1062191376
  1107. processes 2915
  1108. procs_running 1
  1109. procs_blocked 0
  1110. softirq 183433 0 21755 12 39 1137 231 21459 2263
  1111. The very first "cpu" line aggregates the numbers in all of the other "cpuN"
  1112. lines. These numbers identify the amount of time the CPU has spent performing
  1113. different kinds of work. Time units are in USER_HZ (typically hundredths of a
  1114. second). The meanings of the columns are as follows, from left to right:
  1115. - user: normal processes executing in user mode
  1116. - nice: niced processes executing in user mode
  1117. - system: processes executing in kernel mode
  1118. - idle: twiddling thumbs
  1119. - iowait: waiting for I/O to complete
  1120. - irq: servicing interrupts
  1121. - softirq: servicing softirqs
  1122. - steal: involuntary wait
  1123. - guest: running a normal guest
  1124. - guest_nice: running a niced guest
  1125. The "intr" line gives counts of interrupts serviced since boot time, for each
  1126. of the possible system interrupts. The first column is the total of all
  1127. interrupts serviced including unnumbered architecture specific interrupts;
  1128. each subsequent column is the total for that particular numbered interrupt.
  1129. Unnumbered interrupts are not shown, only summed into the total.
  1130. The "ctxt" line gives the total number of context switches across all CPUs.
  1131. The "btime" line gives the time at which the system booted, in seconds since
  1132. the Unix epoch.
  1133. The "processes" line gives the number of processes and threads created, which
  1134. includes (but is not limited to) those created by calls to the fork() and
  1135. clone() system calls.
  1136. The "procs_running" line gives the total number of threads that are
  1137. running or ready to run (i.e., the total number of runnable threads).
  1138. The "procs_blocked" line gives the number of processes currently blocked,
  1139. waiting for I/O to complete.
  1140. The "softirq" line gives counts of softirqs serviced since boot time, for each
  1141. of the possible system softirqs. The first column is the total of all
  1142. softirqs serviced; each subsequent column is the total for that particular
  1143. softirq.
  1144. 1.9 Ext4 file system parameters
  1145. -------------------------------
  1146. Information about mounted ext4 file systems can be found in
  1147. /proc/fs/ext4. Each mounted filesystem will have a directory in
  1148. /proc/fs/ext4 based on its device name (i.e., /proc/fs/ext4/hdc or
  1149. /proc/fs/ext4/dm-0). The files in each per-device directory are shown
  1150. in Table 1-12, below.
  1151. Table 1-12: Files in /proc/fs/ext4/<devname>
  1152. ..............................................................................
  1153. File Content
  1154. mb_groups details of multiblock allocator buddy cache of free blocks
  1155. ..............................................................................
  1156. 2.0 /proc/consoles
  1157. ------------------
  1158. Shows registered system console lines.
  1159. To see which character device lines are currently used for the system console
  1160. /dev/console, you may simply look into the file /proc/consoles:
  1161. > cat /proc/consoles
  1162. tty0 -WU (ECp) 4:7
  1163. ttyS0 -W- (Ep) 4:64
  1164. The columns are:
  1165. device name of the device
  1166. operations R = can do read operations
  1167. W = can do write operations
  1168. U = can do unblank
  1169. flags E = it is enabled
  1170. C = it is preferred console
  1171. B = it is primary boot console
  1172. p = it is used for printk buffer
  1173. b = it is not a TTY but a Braille device
  1174. a = it is safe to use when cpu is offline
  1175. major:minor major and minor number of the device separated by a colon
  1176. ------------------------------------------------------------------------------
  1177. Summary
  1178. ------------------------------------------------------------------------------
  1179. The /proc file system serves information about the running system. It not only
  1180. allows access to process data but also allows you to request the kernel status
  1181. by reading files in the hierarchy.
  1182. The directory structure of /proc reflects the types of information and makes
  1183. it easy, if not obvious, where to look for specific data.
  1184. ------------------------------------------------------------------------------
  1185. ------------------------------------------------------------------------------
  1186. CHAPTER 2: MODIFYING SYSTEM PARAMETERS
  1187. ------------------------------------------------------------------------------
  1188. ------------------------------------------------------------------------------
  1189. In This Chapter
  1190. ------------------------------------------------------------------------------
  1191. * Modifying kernel parameters by writing into files found in /proc/sys
  1192. * Exploring the files which modify certain parameters
  1193. * Review of the /proc/sys file tree
  1194. ------------------------------------------------------------------------------
  1195. A very interesting part of /proc is the directory /proc/sys. This is not only
  1196. a source of information, it also allows you to change parameters within the
  1197. kernel. Be very careful when attempting this. You can optimize your system,
  1198. but you can also cause it to crash. Never alter kernel parameters on a
  1199. production system. Set up a development machine and test to make sure that
  1200. everything works the way you want it to. You may have no alternative but to
  1201. reboot the machine once an error has been made.
  1202. To change a value, simply echo the new value into the file. An example is
  1203. given below in the section on the file system data. You need to be root to do
  1204. this. You can create your own boot script to perform this every time your
  1205. system boots.
  1206. The files in /proc/sys can be used to fine tune and monitor miscellaneous and
  1207. general things in the operation of the Linux kernel. Since some of the files
  1208. can inadvertently disrupt your system, it is advisable to read both
  1209. documentation and source before actually making adjustments. In any case, be
  1210. very careful when writing to any of these files. The entries in /proc may
  1211. change slightly between the 2.1.* and the 2.2 kernel, so if there is any doubt
  1212. review the kernel documentation in the directory /usr/src/linux/Documentation.
  1213. This chapter is heavily based on the documentation included in the pre 2.2
  1214. kernels, and became part of it in version 2.2.1 of the Linux kernel.
  1215. Please see: Documentation/sysctl/ directory for descriptions of these
  1216. entries.
  1217. ------------------------------------------------------------------------------
  1218. Summary
  1219. ------------------------------------------------------------------------------
  1220. Certain aspects of kernel behavior can be modified at runtime, without the
  1221. need to recompile the kernel, or even to reboot the system. The files in the
  1222. /proc/sys tree can not only be read, but also modified. You can use the echo
  1223. command to write value into these files, thereby changing the default settings
  1224. of the kernel.
  1225. ------------------------------------------------------------------------------
  1226. ------------------------------------------------------------------------------
  1227. CHAPTER 3: PER-PROCESS PARAMETERS
  1228. ------------------------------------------------------------------------------
  1229. 3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj- Adjust the oom-killer score
  1230. --------------------------------------------------------------------------------
  1231. These file can be used to adjust the badness heuristic used to select which
  1232. process gets killed in out of memory conditions.
  1233. The badness heuristic assigns a value to each candidate task ranging from 0
  1234. (never kill) to 1000 (always kill) to determine which process is targeted. The
  1235. units are roughly a proportion along that range of allowed memory the process
  1236. may allocate from based on an estimation of its current memory and swap use.
  1237. For example, if a task is using all allowed memory, its badness score will be
  1238. 1000. If it is using half of its allowed memory, its score will be 500.
  1239. There is an additional factor included in the badness score: the current memory
  1240. and swap usage is discounted by 3% for root processes.
  1241. The amount of "allowed" memory depends on the context in which the oom killer
  1242. was called. If it is due to the memory assigned to the allocating task's cpuset
  1243. being exhausted, the allowed memory represents the set of mems assigned to that
  1244. cpuset. If it is due to a mempolicy's node(s) being exhausted, the allowed
  1245. memory represents the set of mempolicy nodes. If it is due to a memory
  1246. limit (or swap limit) being reached, the allowed memory is that configured
  1247. limit. Finally, if it is due to the entire system being out of memory, the
  1248. allowed memory represents all allocatable resources.
  1249. The value of /proc/<pid>/oom_score_adj is added to the badness score before it
  1250. is used to determine which task to kill. Acceptable values range from -1000
  1251. (OOM_SCORE_ADJ_MIN) to +1000 (OOM_SCORE_ADJ_MAX). This allows userspace to
  1252. polarize the preference for oom killing either by always preferring a certain
  1253. task or completely disabling it. The lowest possible value, -1000, is
  1254. equivalent to disabling oom killing entirely for that task since it will always
  1255. report a badness score of 0.
  1256. Consequently, it is very simple for userspace to define the amount of memory to
  1257. consider for each task. Setting a /proc/<pid>/oom_score_adj value of +500, for
  1258. example, is roughly equivalent to allowing the remainder of tasks sharing the
  1259. same system, cpuset, mempolicy, or memory controller resources to use at least
  1260. 50% more memory. A value of -500, on the other hand, would be roughly
  1261. equivalent to discounting 50% of the task's allowed memory from being considered
  1262. as scoring against the task.
  1263. For backwards compatibility with previous kernels, /proc/<pid>/oom_adj may also
  1264. be used to tune the badness score. Its acceptable values range from -16
  1265. (OOM_ADJUST_MIN) to +15 (OOM_ADJUST_MAX) and a special value of -17
  1266. (OOM_DISABLE) to disable oom killing entirely for that task. Its value is
  1267. scaled linearly with /proc/<pid>/oom_score_adj.
  1268. The value of /proc/<pid>/oom_score_adj may be reduced no lower than the last
  1269. value set by a CAP_SYS_RESOURCE process. To reduce the value any lower
  1270. requires CAP_SYS_RESOURCE.
  1271. Caveat: when a parent task is selected, the oom killer will sacrifice any first
  1272. generation children with separate address spaces instead, if possible. This
  1273. avoids servers and important system daemons from being killed and loses the
  1274. minimal amount of work.
  1275. 3.2 /proc/<pid>/oom_score - Display current oom-killer score
  1276. -------------------------------------------------------------
  1277. This file can be used to check the current score used by the oom-killer is for
  1278. any given <pid>. Use it together with /proc/<pid>/oom_score_adj to tune which
  1279. process should be killed in an out-of-memory situation.
  1280. 3.3 /proc/<pid>/io - Display the IO accounting fields
  1281. -------------------------------------------------------
  1282. This file contains IO statistics for each running process
  1283. Example
  1284. -------
  1285. test:/tmp # dd if=/dev/zero of=/tmp/test.dat &
  1286. [1] 3828
  1287. test:/tmp # cat /proc/3828/io
  1288. rchar: 323934931
  1289. wchar: 323929600
  1290. syscr: 632687
  1291. syscw: 632675
  1292. read_bytes: 0
  1293. write_bytes: 323932160
  1294. cancelled_write_bytes: 0
  1295. Description
  1296. -----------
  1297. rchar
  1298. -----
  1299. I/O counter: chars read
  1300. The number of bytes which this task has caused to be read from storage. This
  1301. is simply the sum of bytes which this process passed to read() and pread().
  1302. It includes things like tty IO and it is unaffected by whether or not actual
  1303. physical disk IO was required (the read might have been satisfied from
  1304. pagecache)
  1305. wchar
  1306. -----
  1307. I/O counter: chars written
  1308. The number of bytes which this task has caused, or shall cause to be written
  1309. to disk. Similar caveats apply here as with rchar.
  1310. syscr
  1311. -----
  1312. I/O counter: read syscalls
  1313. Attempt to count the number of read I/O operations, i.e. syscalls like read()
  1314. and pread().
  1315. syscw
  1316. -----
  1317. I/O counter: write syscalls
  1318. Attempt to count the number of write I/O operations, i.e. syscalls like
  1319. write() and pwrite().
  1320. read_bytes
  1321. ----------
  1322. I/O counter: bytes read
  1323. Attempt to count the number of bytes which this process really did cause to
  1324. be fetched from the storage layer. Done at the submit_bio() level, so it is
  1325. accurate for block-backed filesystems. <please add status regarding NFS and
  1326. CIFS at a later time>
  1327. write_bytes
  1328. -----------
  1329. I/O counter: bytes written
  1330. Attempt to count the number of bytes which this process caused to be sent to
  1331. the storage layer. This is done at page-dirtying time.
  1332. cancelled_write_bytes
  1333. ---------------------
  1334. The big inaccuracy here is truncate. If a process writes 1MB to a file and
  1335. then deletes the file, it will in fact perform no writeout. But it will have
  1336. been accounted as having caused 1MB of write.
  1337. In other words: The number of bytes which this process caused to not happen,
  1338. by truncating pagecache. A task can cause "negative" IO too. If this task
  1339. truncates some dirty pagecache, some IO which another task has been accounted
  1340. for (in its write_bytes) will not be happening. We _could_ just subtract that
  1341. from the truncating task's write_bytes, but there is information loss in doing
  1342. that.
  1343. Note
  1344. ----
  1345. At its current implementation state, this is a bit racy on 32-bit machines: if
  1346. process A reads process B's /proc/pid/io while process B is updating one of
  1347. those 64-bit counters, process A could see an intermediate result.
  1348. More information about this can be found within the taskstats documentation in
  1349. Documentation/accounting.
  1350. 3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
  1351. ---------------------------------------------------------------
  1352. When a process is dumped, all anonymous memory is written to a core file as
  1353. long as the size of the core file isn't limited. But sometimes we don't want
  1354. to dump some memory segments, for example, huge shared memory. Conversely,
  1355. sometimes we want to save file-backed memory segments into a core file, not
  1356. only the individual files.
  1357. /proc/<pid>/coredump_filter allows you to customize which memory segments
  1358. will be dumped when the <pid> process is dumped. coredump_filter is a bitmask
  1359. of memory types. If a bit of the bitmask is set, memory segments of the
  1360. corresponding memory type are dumped, otherwise they are not dumped.
  1361. The following 7 memory types are supported:
  1362. - (bit 0) anonymous private memory
  1363. - (bit 1) anonymous shared memory
  1364. - (bit 2) file-backed private memory
  1365. - (bit 3) file-backed shared memory
  1366. - (bit 4) ELF header pages in file-backed private memory areas (it is
  1367. effective only if the bit 2 is cleared)
  1368. - (bit 5) hugetlb private memory
  1369. - (bit 6) hugetlb shared memory
  1370. Note that MMIO pages such as frame buffer are never dumped and vDSO pages
  1371. are always dumped regardless of the bitmask status.
  1372. Note bit 0-4 doesn't effect any hugetlb memory. hugetlb memory are only
  1373. effected by bit 5-6.
  1374. Default value of coredump_filter is 0x23; this means all anonymous memory
  1375. segments and hugetlb private memory are dumped.
  1376. If you don't want to dump all shared memory segments attached to pid 1234,
  1377. write 0x21 to the process's proc file.
  1378. $ echo 0x21 > /proc/1234/coredump_filter
  1379. When a new process is created, the process inherits the bitmask status from its
  1380. parent. It is useful to set up coredump_filter before the program runs.
  1381. For example:
  1382. $ echo 0x7 > /proc/self/coredump_filter
  1383. $ ./some_program
  1384. 3.5 /proc/<pid>/mountinfo - Information about mounts
  1385. --------------------------------------------------------
  1386. This file contains lines of the form:
  1387. 36 35 98:0 /mnt1 /mnt2 rw,noatime master:1 - ext3 /dev/root rw,errors=continue
  1388. (1)(2)(3) (4) (5) (6) (7) (8) (9) (10) (11)
  1389. (1) mount ID: unique identifier of the mount (may be reused after umount)
  1390. (2) parent ID: ID of parent (or of self for the top of the mount tree)
  1391. (3) major:minor: value of st_dev for files on filesystem
  1392. (4) root: root of the mount within the filesystem
  1393. (5) mount point: mount point relative to the process's root
  1394. (6) mount options: per mount options
  1395. (7) optional fields: zero or more fields of the form "tag[:value]"
  1396. (8) separator: marks the end of the optional fields
  1397. (9) filesystem type: name of filesystem of the form "type[.subtype]"
  1398. (10) mount source: filesystem specific information or "none"
  1399. (11) super options: per super block options
  1400. Parsers should ignore all unrecognised optional fields. Currently the
  1401. possible optional fields are:
  1402. shared:X mount is shared in peer group X
  1403. master:X mount is slave to peer group X
  1404. propagate_from:X mount is slave and receives propagation from peer group X (*)
  1405. unbindable mount is unbindable
  1406. (*) X is the closest dominant peer group under the process's root. If
  1407. X is the immediate master of the mount, or if there's no dominant peer
  1408. group under the same root, then only the "master:X" field is present
  1409. and not the "propagate_from:X" field.
  1410. For more information on mount propagation see:
  1411. Documentation/filesystems/sharedsubtree.txt
  1412. 3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
  1413. --------------------------------------------------------
  1414. These files provide a method to access a tasks comm value. It also allows for
  1415. a task to set its own or one of its thread siblings comm value. The comm value
  1416. is limited in size compared to the cmdline value, so writing anything longer
  1417. then the kernel's TASK_COMM_LEN (currently 16 chars) will result in a truncated
  1418. comm value.
  1419. 3.7 /proc/<pid>/task/<tid>/children - Information about task children
  1420. -------------------------------------------------------------------------
  1421. This file provides a fast way to retrieve first level children pids
  1422. of a task pointed by <pid>/<tid> pair. The format is a space separated
  1423. stream of pids.
  1424. Note the "first level" here -- if a child has own children they will
  1425. not be listed here, one needs to read /proc/<children-pid>/task/<tid>/children
  1426. to obtain the descendants.
  1427. Since this interface is intended to be fast and cheap it doesn't
  1428. guarantee to provide precise results and some children might be
  1429. skipped, especially if they've exited right after we printed their
  1430. pids, so one need to either stop or freeze processes being inspected
  1431. if precise results are needed.
  1432. 3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
  1433. ---------------------------------------------------------------
  1434. This file provides information associated with an opened file. The regular
  1435. files have at least three fields -- 'pos', 'flags' and mnt_id. The 'pos'
  1436. represents the current offset of the opened file in decimal form [see lseek(2)
  1437. for details], 'flags' denotes the octal O_xxx mask the file has been
  1438. created with [see open(2) for details] and 'mnt_id' represents mount ID of
  1439. the file system containing the opened file [see 3.5 /proc/<pid>/mountinfo
  1440. for details].
  1441. A typical output is
  1442. pos: 0
  1443. flags: 0100002
  1444. mnt_id: 19
  1445. All locks associated with a file descriptor are shown in its fdinfo too.
  1446. lock: 1: FLOCK ADVISORY WRITE 359 00:13:11691 0 EOF
  1447. The files such as eventfd, fsnotify, signalfd, epoll among the regular pos/flags
  1448. pair provide additional information particular to the objects they represent.
  1449. Eventfd files
  1450. ~~~~~~~~~~~~~
  1451. pos: 0
  1452. flags: 04002
  1453. mnt_id: 9
  1454. eventfd-count: 5a
  1455. where 'eventfd-count' is hex value of a counter.
  1456. Signalfd files
  1457. ~~~~~~~~~~~~~~
  1458. pos: 0
  1459. flags: 04002
  1460. mnt_id: 9
  1461. sigmask: 0000000000000200
  1462. where 'sigmask' is hex value of the signal mask associated
  1463. with a file.
  1464. Epoll files
  1465. ~~~~~~~~~~~
  1466. pos: 0
  1467. flags: 02
  1468. mnt_id: 9
  1469. tfd: 5 events: 1d data: ffffffffffffffff
  1470. where 'tfd' is a target file descriptor number in decimal form,
  1471. 'events' is events mask being watched and the 'data' is data
  1472. associated with a target [see epoll(7) for more details].
  1473. Fsnotify files
  1474. ~~~~~~~~~~~~~~
  1475. For inotify files the format is the following
  1476. pos: 0
  1477. flags: 02000000
  1478. inotify wd:3 ino:9e7e sdev:800013 mask:800afce ignored_mask:0 fhandle-bytes:8 fhandle-type:1 f_handle:7e9e0000640d1b6d
  1479. where 'wd' is a watch descriptor in decimal form, ie a target file
  1480. descriptor number, 'ino' and 'sdev' are inode and device where the
  1481. target file resides and the 'mask' is the mask of events, all in hex
  1482. form [see inotify(7) for more details].
  1483. If the kernel was built with exportfs support, the path to the target
  1484. file is encoded as a file handle. The file handle is provided by three
  1485. fields 'fhandle-bytes', 'fhandle-type' and 'f_handle', all in hex
  1486. format.
  1487. If the kernel is built without exportfs support the file handle won't be
  1488. printed out.
  1489. If there is no inotify mark attached yet the 'inotify' line will be omitted.
  1490. For fanotify files the format is
  1491. pos: 0
  1492. flags: 02
  1493. mnt_id: 9
  1494. fanotify flags:10 event-flags:0
  1495. fanotify mnt_id:12 mflags:40 mask:38 ignored_mask:40000003
  1496. fanotify ino:4f969 sdev:800013 mflags:0 mask:3b ignored_mask:40000000 fhandle-bytes:8 fhandle-type:1 f_handle:69f90400c275b5b4
  1497. where fanotify 'flags' and 'event-flags' are values used in fanotify_init
  1498. call, 'mnt_id' is the mount point identifier, 'mflags' is the value of
  1499. flags associated with mark which are tracked separately from events
  1500. mask. 'ino', 'sdev' are target inode and device, 'mask' is the events
  1501. mask and 'ignored_mask' is the mask of events which are to be ignored.
  1502. All in hex format. Incorporation of 'mflags', 'mask' and 'ignored_mask'
  1503. does provide information about flags and mask used in fanotify_mark
  1504. call [see fsnotify manpage for details].
  1505. While the first three lines are mandatory and always printed, the rest is
  1506. optional and may be omitted if no marks created yet.
  1507. Timerfd files
  1508. ~~~~~~~~~~~~~
  1509. pos: 0
  1510. flags: 02
  1511. mnt_id: 9
  1512. clockid: 0
  1513. ticks: 0
  1514. settime flags: 01
  1515. it_value: (0, 49406829)
  1516. it_interval: (1, 0)
  1517. where 'clockid' is the clock type and 'ticks' is the number of the timer expirations
  1518. that have occurred [see timerfd_create(2) for details]. 'settime flags' are
  1519. flags in octal form been used to setup the timer [see timerfd_settime(2) for
  1520. details]. 'it_value' is remaining time until the timer exiration.
  1521. 'it_interval' is the interval for the timer. Note the timer might be set up
  1522. with TIMER_ABSTIME option which will be shown in 'settime flags', but 'it_value'
  1523. still exhibits timer's remaining time.
  1524. 3.9 /proc/<pid>/map_files - Information about memory mapped files
  1525. ---------------------------------------------------------------------
  1526. This directory contains symbolic links which represent memory mapped files
  1527. the process is maintaining. Example output:
  1528. | lr-------- 1 root root 64 Jan 27 11:24 333c600000-333c620000 -> /usr/lib64/ld-2.18.so
  1529. | lr-------- 1 root root 64 Jan 27 11:24 333c81f000-333c820000 -> /usr/lib64/ld-2.18.so
  1530. | lr-------- 1 root root 64 Jan 27 11:24 333c820000-333c821000 -> /usr/lib64/ld-2.18.so
  1531. | ...
  1532. | lr-------- 1 root root 64 Jan 27 11:24 35d0421000-35d0422000 -> /usr/lib64/libselinux.so.1
  1533. | lr-------- 1 root root 64 Jan 27 11:24 400000-41a000 -> /usr/bin/ls
  1534. The name of a link represents the virtual memory bounds of a mapping, i.e.
  1535. vm_area_struct::vm_start-vm_area_struct::vm_end.
  1536. The main purpose of the map_files is to retrieve a set of memory mapped
  1537. files in a fast way instead of parsing /proc/<pid>/maps or
  1538. /proc/<pid>/smaps, both of which contain many more records. At the same
  1539. time one can open(2) mappings from the listings of two processes and
  1540. comparing their inode numbers to figure out which anonymous memory areas
  1541. are actually shared.
  1542. ------------------------------------------------------------------------------
  1543. Configuring procfs
  1544. ------------------------------------------------------------------------------
  1545. 4.1 Mount options
  1546. ---------------------
  1547. The following mount options are supported:
  1548. hidepid= Set /proc/<pid>/ access mode.
  1549. gid= Set the group authorized to learn processes information.
  1550. hidepid=0 means classic mode - everybody may access all /proc/<pid>/ directories
  1551. (default).
  1552. hidepid=1 means users may not access any /proc/<pid>/ directories but their
  1553. own. Sensitive files like cmdline, sched*, status are now protected against
  1554. other users. This makes it impossible to learn whether any user runs
  1555. specific program (given the program doesn't reveal itself by its behaviour).
  1556. As an additional bonus, as /proc/<pid>/cmdline is unaccessible for other users,
  1557. poorly written programs passing sensitive information via program arguments are
  1558. now protected against local eavesdroppers.
  1559. hidepid=2 means hidepid=1 plus all /proc/<pid>/ will be fully invisible to other
  1560. users. It doesn't mean that it hides a fact whether a process with a specific
  1561. pid value exists (it can be learned by other means, e.g. by "kill -0 $PID"),
  1562. but it hides process' uid and gid, which may be learned by stat()'ing
  1563. /proc/<pid>/ otherwise. It greatly complicates an intruder's task of gathering
  1564. information about running processes, whether some daemon runs with elevated
  1565. privileges, whether other user runs some sensitive program, whether other users
  1566. run any program at all, etc.
  1567. gid= defines a group authorized to learn processes information otherwise
  1568. prohibited by hidepid=. If you use some daemon like identd which needs to learn
  1569. information about processes information, just add identd to this group.