요약·해설과 원문, 전문 번역을 서로 분리했습니다. API 이름, symbol, source path는 원문 표기를 사용합니다.
1. 요약·해설
원문의 핵심 논리와 kernel programming 관점의 보충 설명입니다. 아래의 전문 번역과는 별도로 작성했습니다.
2. 영어 원문 전체
번역 기준이 된 Linux v6.18.37 원문입니다. 줄 번호는 이 버전의 파일 좌표입니다.
원문 전체 펼치기
.. SPDX-License-Identifier: GPL-2.0
====================
The /proc Filesystem
====================
===================== ======================================= ================
/proc/sys Terrehon Bowden <[email protected]>, October 7 1999
Bodo Bauer <[email protected]>
2.4.x update Jorge Nerin <[email protected]> November 14 2000
move /proc/sys Shen Feng <[email protected]> April 1 2009
fixes/update part 1.1 Stefani Seibold <[email protected]> June 9 2009
===================== ======================================= ================
.. Table of Contents
0 Preface
0.1 Introduction/Credits
0.2 Legal Stuff
1 Collecting System Information
1.1 Process-Specific Subdirectories
1.2 Kernel data
1.3 IDE devices in /proc/ide
1.4 Networking info in /proc/net
1.5 SCSI info
1.6 Parallel port info in /proc/parport
1.7 TTY info in /proc/tty
1.8 Miscellaneous kernel statistics in /proc/stat
1.9 Ext4 file system parameters
2 Modifying System Parameters
3 Per-Process Parameters
3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj - Adjust the oom-killer
score
3.2 /proc/<pid>/oom_score - Display current oom-killer score
3.3 /proc/<pid>/io - Display the IO accounting fields
3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
3.5 /proc/<pid>/mountinfo - Information about mounts
3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
3.7 /proc/<pid>/task/<tid>/children - Information about task children
3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
3.9 /proc/<pid>/map_files - Information about memory mapped files
3.10 /proc/<pid>/timerslack_ns - Task timerslack value
3.11 /proc/<pid>/patch_state - Livepatch patch operation state
3.12 /proc/<pid>/arch_status - Task architecture specific information
3.13 /proc/<pid>/fd - List of symlinks to open files
3.14 /proc/<pid/ksm_stat - Information about the process's ksm status.
4 Configuring procfs
4.1 Mount options
5 Filesystem behavior
Preface
=======
0.1 Introduction/Credits
------------------------
We'd like to thank Alan Cox, Rik van Riel, and Alexey Kuznetsov and a lot of
other people for help compiling this documentation. We'd also like to extend a
special thank you to Andi Kleen for documentation, which we relied on heavily
to create this document, as well as the additional information he provided.
Thanks to everybody else who contributed source or docs to the Linux kernel
and helped create a great piece of software... :)
The latest version of this document is available online at
https://www.kernel.org/doc/html/latest/filesystems/proc.html
0.2 Legal Stuff
---------------
We don't guarantee the correctness of this document, and if you come to us
complaining about how you screwed up your system because of incorrect
documentation, we won't feel responsible...
Chapter 1: Collecting System Information
========================================
In This Chapter
---------------
* Investigating the properties of the pseudo file system /proc and its
ability to provide information on the running Linux system
* Examining /proc's structure
* Uncovering various information about the kernel and the processes running
on the system
------------------------------------------------------------------------------
The proc file system acts as an interface to internal data structures in the
kernel. It can be used to obtain information about the system and to change
certain kernel parameters at runtime (sysctl).
First, we'll take a look at the read-only parts of /proc. In Chapter 2, we
show you how you can use /proc/sys to change settings.
1.1 Process-Specific Subdirectories
-----------------------------------
The directory /proc contains (among other things) one subdirectory for each
process running on the system, which is named after the process ID (PID).
The link 'self' points to the process reading the file system. Each process
subdirectory has the entries listed in Table 1-1.
A process can read its own information from /proc/PID/* with no extra
permissions. When reading /proc/PID/* information for other processes, reading
process is required to have either CAP_SYS_PTRACE capability with
PTRACE_MODE_READ access permissions, or, alternatively, CAP_PERFMON
capability. This applies to all read-only information like `maps`, `environ`,
`pagemap`, etc. The only exception is `mem` file due to its read-write nature,
which requires CAP_SYS_PTRACE capabilities with more elevated
PTRACE_MODE_ATTACH permissions; CAP_PERFMON capability does not grant access
to /proc/PID/mem for other processes.
Note that an open file descriptor to /proc/<pid> or to any of its
contained files or subdirectories does not prevent <pid> being reused
for some other process in the event that <pid> exits. Operations on
open /proc/<pid> file descriptors corresponding to dead processes
never act on any new process that the kernel may, through chance, have
also assigned the process ID <pid>. Instead, operations on these FDs
usually fail with ESRCH.
.. table:: Table 1-1: Process specific entries in /proc
============= ===============================================================
File Content
============= ===============================================================
clear_refs Clears page referenced bits shown in smaps output
cmdline Command line arguments
cpu Current and last cpu in which it was executed (2.4)(smp)
cwd Link to the current working directory
environ Values of environment variables
exe Link to the executable of this process
fd Directory, which contains all file descriptors
maps Memory maps to executables and library files (2.4)
mem Memory held by this process
root Link to the root directory of this process
stat Process status
statm Process memory status information
status Process status in human readable form
wchan Present with CONFIG_KALLSYMS=y: it shows the kernel function
symbol the task is blocked in - or "0" if not blocked.
pagemap Page table
stack Report full stack trace, enable via CONFIG_STACKTRACE
smaps An extension based on maps, showing the memory consumption of
each mapping and flags associated with it
smaps_rollup Accumulated smaps stats for all mappings of the process. This
can be derived from smaps, but is faster and more convenient
numa_maps An extension based on maps, showing the memory locality and
binding policy as well as mem usage (in pages) of each mapping.
============= ===============================================================
For example, to get the status information of a process, all you have to do is
read the file /proc/PID/status::
>cat /proc/self/status
Name: cat
State: R (running)
Tgid: 5452
Pid: 5452
PPid: 743
TracerPid: 0 (2.4)
Uid: 501 501 501 501
Gid: 100 100 100 100
FDSize: 256
Groups: 100 14 16
Kthread: 0
VmPeak: 5004 kB
VmSize: 5004 kB
VmLck: 0 kB
VmHWM: 476 kB
VmRSS: 476 kB
RssAnon: 352 kB
RssFile: 120 kB
RssShmem: 4 kB
VmData: 156 kB
VmStk: 88 kB
VmExe: 68 kB
VmLib: 1412 kB
VmPTE: 20 kb
VmSwap: 0 kB
HugetlbPages: 0 kB
CoreDumping: 0
THP_enabled: 1
Threads: 1
SigQ: 0/28578
SigPnd: 0000000000000000
ShdPnd: 0000000000000000
SigBlk: 0000000000000000
SigIgn: 0000000000000000
SigCgt: 0000000000000000
CapInh: 00000000fffffeff
CapPrm: 0000000000000000
CapEff: 0000000000000000
CapBnd: ffffffffffffffff
CapAmb: 0000000000000000
NoNewPrivs: 0
Seccomp: 0
Speculation_Store_Bypass: thread vulnerable
SpeculationIndirectBranch: conditional enabled
voluntary_ctxt_switches: 0
nonvoluntary_ctxt_switches: 1
This shows you nearly the same information you would get if you viewed it with
the ps command. In fact, ps uses the proc file system to obtain its
information. But you get a more detailed view of the process by reading the
file /proc/PID/status. It fields are described in table 1-2.
The statm file contains more detailed information about the process
memory usage. Its seven fields are explained in Table 1-3. The stat file
contains detailed information about the process itself. Its fields are
explained in Table 1-4.
(for SMP CONFIG users)
For making accounting scalable, RSS related information are handled in an
asynchronous manner and the value may not be very precise. To see a precise
snapshot of a moment, you can see /proc/<pid>/smaps file and scan page table.
It's slow but very precise.
.. table:: Table 1-2: Contents of the status fields (as of 4.19)
========================== ===================================================
Field Content
========================== ===================================================
Name filename of the executable
Umask file mode creation mask
State state (R is running, S is sleeping, D is sleeping
in an uninterruptible wait, Z is zombie,
T is traced or stopped)
Tgid thread group ID
Ngid NUMA group ID (0 if none)
Pid process id
PPid process id of the parent process
TracerPid PID of process tracing this process (0 if not, or
the tracer is outside of the current pid namespace)
Uid Real, effective, saved set, and file system UIDs
Gid Real, effective, saved set, and file system GIDs
FDSize number of file descriptor slots currently allocated
Groups supplementary group list
NStgid descendant namespace thread group ID hierarchy
NSpid descendant namespace process ID hierarchy
NSpgid descendant namespace process group ID hierarchy
NSsid descendant namespace session ID hierarchy
Kthread kernel thread flag, 1 is yes, 0 is no
VmPeak peak virtual memory size
VmSize total program size
VmLck locked memory size
VmPin pinned memory size
VmHWM peak resident set size ("high water mark")
VmRSS size of memory portions. It contains the three
following parts
(VmRSS = RssAnon + RssFile + RssShmem)
RssAnon size of resident anonymous memory
RssFile size of resident file mappings
RssShmem size of resident shmem memory (includes SysV shm,
mapping of tmpfs and shared anonymous mappings)
VmData size of private data segments
VmStk size of stack segments
VmExe size of text segment
VmLib size of shared library code
VmPTE size of page table entries
VmSwap amount of swap used by anonymous private data
(shmem swap usage is not included)
HugetlbPages size of hugetlb memory portions
CoreDumping process's memory is currently being dumped
(killing the process may lead to a corrupted core)
THP_enabled process is allowed to use THP (returns 0 when
PR_SET_THP_DISABLE is set on the process to disable
THP completely, not just partially)
Threads number of threads
SigQ number of signals queued/max. number for queue
SigPnd bitmap of pending signals for the thread
ShdPnd bitmap of shared pending signals for the process
SigBlk bitmap of blocked signals
SigIgn bitmap of ignored signals
SigCgt bitmap of caught signals
CapInh bitmap of inheritable capabilities
CapPrm bitmap of permitted capabilities
CapEff bitmap of effective capabilities
CapBnd bitmap of capabilities bounding set
CapAmb bitmap of ambient capabilities
NoNewPrivs no_new_privs, like prctl(PR_GET_NO_NEW_PRIV, ...)
Seccomp seccomp mode, like prctl(PR_GET_SECCOMP, ...)
Speculation_Store_Bypass speculative store bypass mitigation status
SpeculationIndirectBranch indirect branch speculation mode
Cpus_allowed mask of CPUs on which this process may run
Cpus_allowed_list Same as previous, but in "list format"
Mems_allowed mask of memory nodes allowed to this process
Mems_allowed_list Same as previous, but in "list format"
voluntary_ctxt_switches number of voluntary context switches
nonvoluntary_ctxt_switches number of non voluntary context switches
========================== ===================================================
.. table:: Table 1-3: Contents of the statm fields (as of 2.6.8-rc3)
======== =============================== ==============================
Field Content
======== =============================== ==============================
size total program size (pages) (same as VmSize in status)
resident size of memory portions (pages) (same as VmRSS in status)
shared number of pages that are shared (i.e. backed by a file, same
as RssFile+RssShmem in status)
trs number of pages that are 'code' (not including libs; broken,
includes data segment)
lrs number of pages of library (always 0 on 2.6)
drs number of pages of data/stack (including libs; broken,
includes library text)
dt number of dirty pages (always 0 on 2.6)
======== =============================== ==============================
.. table:: Table 1-4: Contents of the stat fields (as of 2.6.30-rc7)
============= ===============================================================
Field Content
============= ===============================================================
pid process id
tcomm filename of the executable
state state (R is running, S is sleeping, D is sleeping in an
uninterruptible wait, Z is zombie, T is traced or stopped)
ppid process id of the parent process
pgrp pgrp of the process
sid session id
tty_nr tty the process uses
tty_pgrp pgrp of the tty
flags task flags
min_flt number of minor faults
cmin_flt number of minor faults with child's
maj_flt number of major faults
cmaj_flt number of major faults with child's
utime user mode jiffies
stime kernel mode jiffies
cutime user mode jiffies with child's
cstime kernel mode jiffies with child's
priority priority level
nice nice level
num_threads number of threads
it_real_value (obsolete, always 0)
start_time time the process started after system boot
vsize virtual memory size
rss resident set memory size
rsslim current limit in bytes on the rss
start_code address above which program text can run
end_code address below which program text can run
start_stack address of the start of the main process stack
esp current value of ESP
eip current value of EIP
pending bitmap of pending signals
blocked bitmap of blocked signals
sigign bitmap of ignored signals
sigcatch bitmap of caught signals
0 (place holder, used to be the wchan address,
use /proc/PID/wchan instead)
0 (place holder)
0 (place holder)
exit_signal signal to send to parent thread on exit
task_cpu which CPU the task is scheduled on
rt_priority realtime priority
policy scheduling policy (man sched_setscheduler)
blkio_ticks time spent waiting for block IO
gtime guest time of the task in jiffies
cgtime guest time of the task children in jiffies
start_data address above which program data+bss is placed
end_data address below which program data+bss is placed
start_brk address above which program heap can be expanded with brk()
arg_start address above which program command line is placed
arg_end address below which program command line is placed
env_start address above which program environment is placed
env_end address below which program environment is placed
exit_code the thread's exit_code in the form reported by the waitpid
system call
============= ===============================================================
The /proc/PID/maps file contains the currently mapped memory regions and
their access permissions.
The format is::
address perms offset dev inode pathname
08048000-08049000 r-xp 00000000 03:00 8312 /opt/test
08049000-0804a000 rw-p 00001000 03:00 8312 /opt/test
0804a000-0806b000 rw-p 00000000 00:00 0 [heap]
a7cb1000-a7cb2000 ---p 00000000 00:00 0
a7cb2000-a7eb2000 rw-p 00000000 00:00 0
a7eb2000-a7eb3000 ---p 00000000 00:00 0
a7eb3000-a7ed5000 rw-p 00000000 00:00 0
a7ed5000-a8008000 r-xp 00000000 03:00 4222 /lib/libc.so.6
a8008000-a800a000 r--p 00133000 03:00 4222 /lib/libc.so.6
a800a000-a800b000 rw-p 00135000 03:00 4222 /lib/libc.so.6
a800b000-a800e000 rw-p 00000000 00:00 0
a800e000-a8022000 r-xp 00000000 03:00 14462 /lib/libpthread.so.0
a8022000-a8023000 r--p 00013000 03:00 14462 /lib/libpthread.so.0
a8023000-a8024000 rw-p 00014000 03:00 14462 /lib/libpthread.so.0
a8024000-a8027000 rw-p 00000000 00:00 0
a8027000-a8043000 r-xp 00000000 03:00 8317 /lib/ld-linux.so.2
a8043000-a8044000 r--p 0001b000 03:00 8317 /lib/ld-linux.so.2
a8044000-a8045000 rw-p 0001c000 03:00 8317 /lib/ld-linux.so.2
aff35000-aff4a000 rw-p 00000000 00:00 0 [stack]
ffffe000-fffff000 r-xp 00000000 00:00 0 [vdso]
where "address" is the address space in the process that it occupies, "perms"
is a set of permissions::
r = read
w = write
x = execute
s = shared
p = private (copy on write)
"offset" is the offset into the mapping, "dev" is the device (major:minor), and
"inode" is the inode on that device. 0 indicates that no inode is associated
with the memory region, as the case would be with BSS (uninitialized data).
The "pathname" shows the name associated file for this mapping. If the mapping
is not associated with a file:
=================== ===========================================
[heap] the heap of the program
[stack] the stack of the main process
[vdso] the "virtual dynamic shared object",
the kernel system call handler
[anon:<name>] a private anonymous mapping that has been
named by userspace
[anon_shmem:<name>] an anonymous shared memory mapping that has
been named by userspace
=================== ===========================================
or if empty, the mapping is anonymous.
Starting with 6.11 kernel, /proc/PID/maps provides an alternative
ioctl()-based API that gives ability to flexibly and efficiently query and
filter individual VMAs. This interface is binary and is meant for more
efficient and easy programmatic use. `struct procmap_query`, defined in
linux/fs.h UAPI header, serves as an input/output argument to the
`PROCMAP_QUERY` ioctl() command. See comments in linus/fs.h UAPI header for
details on query semantics, supported flags, data returned, and general API
usage information.
The /proc/PID/smaps is an extension based on maps, showing the memory
consumption for each of the process's mappings. For each mapping (aka Virtual
Memory Area, or VMA) there is a series of lines such as the following::
08048000-080bc000 r-xp 00000000 03:02 13130 /bin/bash
Size: 1084 kB
KernelPageSize: 4 kB
MMUPageSize: 4 kB
Rss: 892 kB
Pss: 374 kB
Pss_Dirty: 0 kB
Shared_Clean: 892 kB
Shared_Dirty: 0 kB
Private_Clean: 0 kB
Private_Dirty: 0 kB
Referenced: 892 kB
Anonymous: 0 kB
KSM: 0 kB
LazyFree: 0 kB
AnonHugePages: 0 kB
ShmemPmdMapped: 0 kB
Shared_Hugetlb: 0 kB
Private_Hugetlb: 0 kB
Swap: 0 kB
SwapPss: 0 kB
KernelPageSize: 4 kB
MMUPageSize: 4 kB
Locked: 0 kB
THPeligible: 0
VmFlags: rd ex mr mw me dw
The first of these lines shows the same information as is displayed for
the mapping in /proc/PID/maps. Following lines show the size of the
mapping (size); the size of each page allocated when backing a VMA
(KernelPageSize), which is usually the same as the size in the page table
entries; the page size used by the MMU when backing a VMA (in most cases,
the same as KernelPageSize); the amount of the mapping that is currently
resident in RAM (RSS); the process's proportional share of this mapping
(PSS); and the number of clean and dirty shared and private pages in the
mapping.
The "proportional set size" (PSS) of a process is the count of pages it has
in memory, where each page is divided by the number of processes sharing it.
So if a process has 1000 pages all to itself, and 1000 shared with one other
process, its PSS will be 1500. "Pss_Dirty" is the portion of PSS which
consists of dirty pages. ("Pss_Clean" is not included, but it can be
calculated by subtracting "Pss_Dirty" from "Pss".)
Traditionally, a page is accounted as "private" if it is mapped exactly once,
and a page is accounted as "shared" when mapped multiple times, even when
mapped in the same process multiple times. Note that this accounting is
independent of MAP_SHARED.
In some kernel configurations, the semantics of pages part of a larger
allocation (e.g., THP) can differ: a page is accounted as "private" if all
pages part of the corresponding large allocation are *certainly* mapped in the
same process, even if the page is mapped multiple times in that process. A
page is accounted as "shared" if any page page of the larger allocation
is *maybe* mapped in a different process. In some cases, a large allocation
might be treated as "maybe mapped by multiple processes" even though this
is no longer the case.
Some kernel configurations do not track the precise number of times a page part
of a larger allocation is mapped. In this case, when calculating the PSS, the
average number of mappings per page in this larger allocation might be used
as an approximation for the number of mappings of a page. The PSS calculation
will be imprecise in this case.
"Referenced" indicates the amount of memory currently marked as referenced or
accessed.
"Anonymous" shows the amount of memory that does not belong to any file. Even
a mapping associated with a file may contain anonymous pages: when MAP_PRIVATE
and a page is modified, the file page is replaced by a private anonymous copy.
"KSM" reports how many of the pages are KSM pages. Note that KSM-placed zeropages
are not included, only actual KSM pages.
"LazyFree" shows the amount of memory which is marked by madvise(MADV_FREE).
The memory isn't freed immediately with madvise(). It's freed in memory
pressure if the memory is clean. Please note that the printed value might
be lower than the real value due to optimizations used in the current
implementation. If this is not desirable please file a bug report.
"AnonHugePages" shows the amount of memory backed by transparent hugepage.
"ShmemPmdMapped" shows the amount of shared (shmem/tmpfs) memory backed by
huge pages.
"Shared_Hugetlb" and "Private_Hugetlb" show the amounts of memory backed by
hugetlbfs page which is *not* counted in "RSS" or "PSS" field for historical
reasons. And these are not included in {Shared,Private}_{Clean,Dirty} field.
"Swap" shows how much would-be-anonymous memory is also used, but out on swap.
For shmem mappings, "Swap" includes also the size of the mapped (and not
replaced by copy-on-write) part of the underlying shmem object out on swap.
"SwapPss" shows proportional swap share of this mapping. Unlike "Swap", this
does not take into account swapped out page of underlying shmem objects.
"Locked" indicates whether the mapping is locked in memory or not.
"THPeligible" indicates whether the mapping is eligible for allocating
naturally aligned THP pages of any currently enabled size. 1 if true, 0
otherwise.
"VmFlags" field deserves a separate description. This member represents the
kernel flags associated with the particular virtual memory area in two letter
encoded manner. The codes are the following:
== =============================================================
rd readable
wr writeable
ex executable
sh shared
mr may read
mw may write
me may execute
ms may share
gd stack segment growns down
pf pure PFN range
lo pages are locked in memory
io memory mapped I/O area
sr sequential read advise provided
rr random read advise provided
dc do not copy area on fork
de do not expand area on remapping
ac area is accountable
nr swap space is not reserved for the area
ht area uses huge tlb pages
sf synchronous page fault
ar architecture specific flag
wf wipe on fork
dd do not include area into core dump
sd soft dirty flag
mm mixed map area
hg huge page advise flag
nh no huge page advise flag
mg mergeable advise flag
bt arm64 BTI guarded page
mt arm64 MTE allocation tags are enabled
um userfaultfd missing tracking
uw userfaultfd wr-protect tracking
ui userfaultfd minor fault
ss shadow/guarded control stack page
sl sealed
lf lock on fault pages
dp always lazily freeable mapping
gu maybe contains guard regions (if not set, definitely doesn't)
== =============================================================
Note that there is no guarantee that every flag and associated mnemonic will
be present in all further kernel releases. Things get changed, the flags may
be vanished or the reverse -- new added. Interpretation of their meaning
might change in future as well. So each consumer of these flags has to
follow each specific kernel version for the exact semantic.
This file is only present if the CONFIG_MMU kernel configuration option is
enabled.
Note: reading /proc/PID/maps or /proc/PID/smaps is inherently racy (consistent
output can be achieved only in the single read call).
This typically manifests when doing partial reads of these files while the
memory map is being modified. Despite the races, we do provide the following
guarantees:
1) The mapped addresses never go backwards, which implies no two
regions will ever overlap.
2) If there is something at a given vaddr during the entirety of the
life of the smaps/maps walk, there will be some output for it.
The /proc/PID/smaps_rollup file includes the same fields as /proc/PID/smaps,
but their values are the sums of the corresponding values for all mappings of
the process. Additionally, it contains these fields:
- Pss_Anon
- Pss_File
- Pss_Shmem
They represent the proportional shares of anonymous, file, and shmem pages, as
described for smaps above. These fields are omitted in smaps since each
mapping identifies the type (anon, file, or shmem) of all pages it contains.
Thus all information in smaps_rollup can be derived from smaps, but at a
significantly higher cost.
The /proc/PID/clear_refs is used to reset the PG_Referenced and ACCESSED/YOUNG
bits on both physical and virtual pages associated with a process, and the
soft-dirty bit on pte (see Documentation/admin-guide/mm/soft-dirty.rst
for details).
To clear the bits for all the pages associated with the process::
> echo 1 > /proc/PID/clear_refs
To clear the bits for the anonymous pages associated with the process::
> echo 2 > /proc/PID/clear_refs
To clear the bits for the file mapped pages associated with the process::
> echo 3 > /proc/PID/clear_refs
To clear the soft-dirty bit::
> echo 4 > /proc/PID/clear_refs
To reset the peak resident set size ("high water mark") to the process's
current value::
> echo 5 > /proc/PID/clear_refs
Any other value written to /proc/PID/clear_refs will have no effect.
The /proc/pid/pagemap gives the PFN, which can be used to find the pageflags
using /proc/kpageflags and number of times a page is mapped using
/proc/kpagecount. For detailed explanation, see
Documentation/admin-guide/mm/pagemap.rst.
The /proc/pid/numa_maps is an extension based on maps, showing the memory
locality and binding policy, as well as the memory usage (in pages) of
each mapping. The output follows a general format where mapping details get
summarized separated by blank spaces, one mapping per each file line::
address policy mapping details
00400000 default file=/usr/local/bin/app mapped=1 active=0 N3=1 kernelpagesize_kB=4
00600000 default file=/usr/local/bin/app anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206000000 default file=/lib64/ld-2.12.so mapped=26 mapmax=6 N0=24 N3=2 kernelpagesize_kB=4
320621f000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206220000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206221000 default anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206800000 default file=/lib64/libc-2.12.so mapped=59 mapmax=21 active=55 N0=41 N3=18 kernelpagesize_kB=4
320698b000 default file=/lib64/libc-2.12.so
3206b8a000 default file=/lib64/libc-2.12.so anon=2 dirty=2 N3=2 kernelpagesize_kB=4
3206b8e000 default file=/lib64/libc-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206b8f000 default anon=3 dirty=3 active=1 N3=3 kernelpagesize_kB=4
7f4dc10a2000 default anon=3 dirty=3 N3=3 kernelpagesize_kB=4
7f4dc10b4000 default anon=2 dirty=2 active=1 N3=2 kernelpagesize_kB=4
7f4dc1200000 default file=/anon_hugepage\040(deleted) huge anon=1 dirty=1 N3=1 kernelpagesize_kB=2048
7fff335f0000 default stack anon=3 dirty=3 N3=3 kernelpagesize_kB=4
7fff3369d000 default mapped=1 mapmax=35 active=0 N3=1 kernelpagesize_kB=4
Where:
"address" is the starting address for the mapping;
"policy" reports the NUMA memory policy set for the mapping (see Documentation/admin-guide/mm/numa_memory_policy.rst);
"mapping details" summarizes mapping data such as mapping type, page usage counters,
node locality page counters (N0 == node0, N1 == node1, ...) and the kernel page
size, in KB, that is backing the mapping up.
Note that some kernel configurations do not track the precise number of times
a page part of a larger allocation (e.g., THP) is mapped. In these
configurations, "mapmax" might corresponds to the average number of mappings
per page in such a larger allocation instead.
1.2 Kernel data
---------------
Similar to the process entries, the kernel data files give information about
the running kernel. The files used to obtain this information are contained in
/proc and are listed in Table 1-5. Not all of these will be present in your
system. It depends on the kernel configuration and the loaded modules, which
files are there, and which are missing.
.. table:: Table 1-5: Kernel info in /proc
============ ===============================================================
File Content
============ ===============================================================
allocinfo Memory allocations profiling information
apm Advanced power management info
bootconfig Kernel command line obtained from boot config,
and, if there were kernel parameters from the
boot loader, a "# Parameters from bootloader:"
line followed by a line containing those
parameters prefixed by "# ". (5.5)
buddyinfo Kernel memory allocator information (see text) (2.5)
bus Directory containing bus specific information
cmdline Kernel command line, both from bootloader and embedded
in the kernel image
cpuinfo Info about the CPU
devices Available devices (block and character)
dma Used DMS channels
filesystems Supported filesystems
driver Various drivers grouped here, currently rtc (2.4)
execdomains Execdomains, related to security (2.4)
fb Frame Buffer devices (2.4)
fs File system parameters, currently nfs/exports (2.4)
ide Directory containing info about the IDE subsystem
interrupts Interrupt usage
iomem Memory map (2.4)
ioports I/O port usage
irq Masks for irq to cpu affinity (2.4)(smp?)
isapnp ISA PnP (Plug&Play) Info (2.4)
kcore Kernel core image (can be ELF or A.OUT(deprecated in 2.4))
kmsg Kernel messages
ksyms Kernel symbol table
loadavg Load average of last 1, 5 & 15 minutes;
number of processes currently runnable (running or on ready queue);
total number of processes in system;
last pid created.
All fields are separated by one space except "number of
processes currently runnable" and "total number of processes
in system", which are separated by a slash ('/'). Example:
0.61 0.61 0.55 3/828 22084
locks Kernel locks
meminfo Memory info
misc Miscellaneous
modules List of loaded modules
mounts Mounted filesystems
net Networking info (see text)
pagetypeinfo Additional page allocator information (see text) (2.5)
partitions Table of partitions known to the system
pci Deprecated info of PCI bus (new way -> /proc/bus/pci/,
decoupled by lspci (2.4)
rtc Real time clock
scsi SCSI info (see text)
slabinfo Slab pool info
softirqs softirq usage
stat Overall statistics
swaps Swap space utilization
sys See chapter 2
sysvipc Info of SysVIPC Resources (msg, sem, shm) (2.4)
tty Info of tty drivers
uptime Wall clock since boot, combined idle time of all cpus
version Kernel version
video bttv info of video resources (2.4)
vmallocinfo Show vmalloced areas
============ ===============================================================
You can, for example, check which interrupts are currently in use and what
they are used for by looking in the file /proc/interrupts::
> cat /proc/interrupts
CPU0
0: 8728810 XT-PIC timer
1: 895 XT-PIC keyboard
2: 0 XT-PIC cascade
3: 531695 XT-PIC aha152x
4: 2014133 XT-PIC serial
5: 44401 XT-PIC pcnet_cs
8: 2 XT-PIC rtc
11: 8 XT-PIC i82365
12: 182918 XT-PIC PS/2 Mouse
13: 1 XT-PIC fpu
14: 1232265 XT-PIC ide0
15: 7 XT-PIC ide1
NMI: 0
In 2.4.* a couple of lines where added to this file LOC & ERR (this time is the
output of a SMP machine)::
> cat /proc/interrupts
CPU0 CPU1
0: 1243498 1214548 IO-APIC-edge timer
1: 8949 8958 IO-APIC-edge keyboard
2: 0 0 XT-PIC cascade
5: 11286 10161 IO-APIC-edge soundblaster
8: 1 0 IO-APIC-edge rtc
9: 27422 27407 IO-APIC-edge 3c503
12: 113645 113873 IO-APIC-edge PS/2 Mouse
13: 0 0 XT-PIC fpu
14: 22491 24012 IO-APIC-edge ide0
15: 2183 2415 IO-APIC-edge ide1
17: 30564 30414 IO-APIC-level eth0
18: 177 164 IO-APIC-level bttv
NMI: 2457961 2457959
LOC: 2457882 2457881
ERR: 2155
NMI is incremented in this case because every timer interrupt generates a NMI
(Non Maskable Interrupt) which is used by the NMI Watchdog to detect lockups.
LOC is the local interrupt counter of the internal APIC of every CPU.
ERR is incremented in the case of errors in the IO-APIC bus (the bus that
connects the CPUs in a SMP system. This means that an error has been detected,
the IO-APIC automatically retry the transmission, so it should not be a big
problem, but you should read the SMP-FAQ.
In 2.6.2* /proc/interrupts was expanded again. This time the goal was for
/proc/interrupts to display every IRQ vector in use by the system, not
just those considered 'most important'. The new vectors are:
THR
interrupt raised when a machine check threshold counter
(typically counting ECC corrected errors of memory or cache) exceeds
a configurable threshold. Only available on some systems.
TRM
a thermal event interrupt occurs when a temperature threshold
has been exceeded for the CPU. This interrupt may also be generated
when the temperature drops back to normal.
SPU
a spurious interrupt is some interrupt that was raised then lowered
by some IO device before it could be fully processed by the APIC. Hence
the APIC sees the interrupt but does not know what device it came from.
For this case the APIC will generate the interrupt with a IRQ vector
of 0xff. This might also be generated by chipset bugs.
RES, CAL, TLB
rescheduling, call and TLB flush interrupts are
sent from one CPU to another per the needs of the OS. Typically,
their statistics are used by kernel developers and interested users to
determine the occurrence of interrupts of the given type.
The above IRQ vectors are displayed only when relevant. For example,
the threshold vector does not exist on x86_64 platforms. Others are
suppressed when the system is a uniprocessor. As of this writing, only
i386 and x86_64 platforms support the new IRQ vector displays.
Of some interest is the introduction of the /proc/irq directory to 2.4.
It could be used to set IRQ to CPU affinity. This means that you can "hook" an
IRQ to only one CPU, or to exclude a CPU of handling IRQs. The contents of the
irq subdir is one subdir for each IRQ, and two files; default_smp_affinity and
prof_cpu_mask.
For example::
> ls /proc/irq/
0 10 12 14 16 18 2 4 6 8 prof_cpu_mask
1 11 13 15 17 19 3 5 7 9 default_smp_affinity
> ls /proc/irq/0/
smp_affinity
smp_affinity is a bitmask, in which you can specify which CPUs can handle the
IRQ. You can set it by doing::
> echo 1 > /proc/irq/10/smp_affinity
This means that only the first CPU will handle the IRQ, but you can also echo
5 which means that only the first and third CPU can handle the IRQ.
The contents of each smp_affinity file is the same by default::
> cat /proc/irq/0/smp_affinity
ffffffff
There is an alternate interface, smp_affinity_list which allows specifying
a CPU range instead of a bitmask::
> cat /proc/irq/0/smp_affinity_list
1024-1031
The default_smp_affinity mask applies to all non-active IRQs, which are the
IRQs which have not yet been allocated/activated, and hence which lack a
/proc/irq/[0-9]* directory.
The node file on an SMP system shows the node to which the device using the IRQ
reports itself as being attached. This hardware locality information does not
include information about any possible driver locality preference.
prof_cpu_mask specifies which CPUs are to be profiled by the system wide
profiler. Default value is ffffffff (all CPUs if there are only 32 of them).
The way IRQs are routed is handled by the IO-APIC, and it's Round Robin
between all the CPUs which are allowed to handle it. As usual the kernel has
more info than you and does a better job than you, so the defaults are the
best choice for almost everyone. [Note this applies only to those IO-APIC's
that support "Round Robin" interrupt distribution.]
There are three more important subdirectories in /proc: net, scsi, and sys.
The general rule is that the contents, or even the existence of these
directories, depend on your kernel configuration. If SCSI is not enabled, the
directory scsi may not exist. The same is true with the net, which is there
only when networking support is present in the running kernel.
The slabinfo file gives information about memory usage at the slab level.
Linux uses slab pools for memory management above page level in version 2.2.
Commonly used objects have their own slab pool (such as network buffers,
directory cache, and so on).
::
> cat /proc/buddyinfo
Node 0, zone DMA 0 4 5 4 4 3 ...
Node 0, zone Normal 1 0 0 1 101 8 ...
Node 0, zone HighMem 2 0 0 1 1 0 ...
External fragmentation is a problem under some workloads, and buddyinfo is a
useful tool for helping diagnose these problems. Buddyinfo will give you a
clue as to how big an area you can safely allocate, or why a previous
allocation failed.
Each column represents the number of pages of a certain order which are
available. In this case, there are 0 chunks of 2^0*PAGE_SIZE available in
ZONE_DMA, 4 chunks of 2^1*PAGE_SIZE in ZONE_DMA, 101 chunks of 2^4*PAGE_SIZE
available in ZONE_NORMAL, etc...
More information relevant to external fragmentation can be found in
pagetypeinfo::
> cat /proc/pagetypeinfo
Page block order: 9
Pages per block: 512
Free pages count per migrate type at order 0 1 2 3 4 5 6 7 8 9 10
Node 0, zone DMA, type Unmovable 0 0 0 1 1 1 1 1 1 1 0
Node 0, zone DMA, type Reclaimable 0 0 0 0 0 0 0 0 0 0 0
Node 0, zone DMA, type Movable 1 1 2 1 2 1 1 0 1 0 2
Node 0, zone DMA, type Reserve 0 0 0 0 0 0 0 0 0 1 0
Node 0, zone DMA, type Isolate 0 0 0 0 0 0 0 0 0 0 0
Node 0, zone DMA32, type Unmovable 103 54 77 1 1 1 11 8 7 1 9
Node 0, zone DMA32, type Reclaimable 0 0 2 1 0 0 0 0 1 0 0
Node 0, zone DMA32, type Movable 169 152 113 91 77 54 39 13 6 1 452
Node 0, zone DMA32, type Reserve 1 2 2 2 2 0 1 1 1 1 0
Node 0, zone DMA32, type Isolate 0 0 0 0 0 0 0 0 0 0 0
Number of blocks type Unmovable Reclaimable Movable Reserve Isolate
Node 0, zone DMA 2 0 5 1 0
Node 0, zone DMA32 41 6 967 2 0
Fragmentation avoidance in the kernel works by grouping pages of different
migrate types into the same contiguous regions of memory called page blocks.
A page block is typically the size of the default hugepage size, e.g. 2MB on
X86-64. By keeping pages grouped based on their ability to move, the kernel
can reclaim pages within a page block to satisfy a high-order allocation.
The pagetypinfo begins with information on the size of a page block. It
then gives the same type of information as buddyinfo except broken down
by migrate-type and finishes with details on how many page blocks of each
type exist.
If min_free_kbytes has been tuned correctly (recommendations made by hugeadm
from libhugetlbfs https://github.com/libhugetlbfs/libhugetlbfs/), one can
make an estimate of the likely number of huge pages that can be allocated
at a given point in time. All the "Movable" blocks should be allocatable
unless memory has been mlock()'d. Some of the Reclaimable blocks should
also be allocatable although a lot of filesystem metadata may have to be
reclaimed to achieve this.
allocinfo
~~~~~~~~~
Provides information about memory allocations at all locations in the code
base. Each allocation in the code is identified by its source file, line
number, module (if originates from a loadable module) and the function calling
the allocation. The number of bytes allocated and number of calls at each
location are reported. The first line indicates the version of the file, the
second line is the header listing fields in the file.
If file version is 2.0 or higher then each line may contain additional
<key>:<value> pairs representing extra information about the call site.
For example if the counters are not accurate, the line will be appended with
"accurate:no" pair.
Supported markers in v2:
accurate:no
Absolute values of the counters in this line are not accurate
because of the failure to allocate memory to track some of the
allocations made at this location. Deltas in these counters are
accurate, therefore counters can be used to track allocation size
and count changes.
Example output.
::
> tail -n +3 /proc/allocinfo | sort -rn
127664128 31168 mm/page_ext.c:270 func:alloc_page_ext
56373248 4737 mm/slub.c:2259 func:alloc_slab_page
14880768 3633 mm/readahead.c:247 func:page_cache_ra_unbounded
14417920 3520 mm/mm_init.c:2530 func:alloc_large_system_hash
13377536 234 block/blk-mq.c:3421 func:blk_mq_alloc_rqs
11718656 2861 mm/filemap.c:1919 func:__filemap_get_folio
9192960 2800 kernel/fork.c:307 func:alloc_thread_stack_node
4206592 4 net/netfilter/nf_conntrack_core.c:2567 func:nf_ct_alloc_hashtable
4136960 1010 drivers/staging/ctagmod/ctagmod.c:20 [ctagmod] func:ctagmod_start
3940352 962 mm/memory.c:4214 func:alloc_anon_folio
2894464 22613 fs/kernfs/dir.c:615 func:__kernfs_new_node
...
meminfo
~~~~~~~
Provides information about distribution and utilization of memory. This
varies by architecture and compile options. Some of the counters reported
here overlap. The memory reported by the non overlapping counters may not
add up to the overall memory usage and the difference for some workloads
can be substantial. In many cases there are other means to find out
additional memory using subsystem specific interfaces, for instance
/proc/net/sockstat for TCP memory allocations.
Example output. You may not have all of these fields.
::
> cat /proc/meminfo
MemTotal: 32858820 kB
MemFree: 21001236 kB
MemAvailable: 27214312 kB
Buffers: 581092 kB
Cached: 5587612 kB
SwapCached: 0 kB
Active: 3237152 kB
Inactive: 7586256 kB
Active(anon): 94064 kB
Inactive(anon): 4570616 kB
Active(file): 3143088 kB
Inactive(file): 3015640 kB
Unevictable: 0 kB
Mlocked: 0 kB
SwapTotal: 0 kB
SwapFree: 0 kB
Zswap: 1904 kB
Zswapped: 7792 kB
Dirty: 12 kB
Writeback: 0 kB
AnonPages: 4654780 kB
Mapped: 266244 kB
Shmem: 9976 kB
KReclaimable: 517708 kB
Slab: 660044 kB
SReclaimable: 517708 kB
SUnreclaim: 142336 kB
KernelStack: 11168 kB
PageTables: 20540 kB
SecPageTables: 0 kB
NFS_Unstable: 0 kB
Bounce: 0 kB
WritebackTmp: 0 kB
CommitLimit: 16429408 kB
Committed_AS: 7715148 kB
VmallocTotal: 34359738367 kB
VmallocUsed: 40444 kB
VmallocChunk: 0 kB
Percpu: 29312 kB
EarlyMemtestBad: 0 kB
HardwareCorrupted: 0 kB
AnonHugePages: 4149248 kB
ShmemHugePages: 0 kB
ShmemPmdMapped: 0 kB
FileHugePages: 0 kB
FilePmdMapped: 0 kB
CmaTotal: 0 kB
CmaFree: 0 kB
Unaccepted: 0 kB
Balloon: 0 kB
HugePages_Total: 0
HugePages_Free: 0
HugePages_Rsvd: 0
HugePages_Surp: 0
Hugepagesize: 2048 kB
Hugetlb: 0 kB
DirectMap4k: 401152 kB
DirectMap2M: 10008576 kB
DirectMap1G: 24117248 kB
MemTotal
Total usable RAM (i.e. physical RAM minus a few reserved
bits and the kernel binary code)
MemFree
Total free RAM. On highmem systems, the sum of LowFree+HighFree
MemAvailable
An estimate of how much memory is available for starting new
applications, without swapping. Calculated from MemFree,
SReclaimable, the size of the file LRU lists, and the low
watermarks in each zone.
The estimate takes into account that the system needs some
page cache to function well, and that not all reclaimable
slab will be reclaimable, due to items being in use. The
impact of those factors will vary from system to system.
Buffers
Relatively temporary storage for raw disk blocks
shouldn't get tremendously large (20MB or so)
Cached
In-memory cache for files read from the disk (the
pagecache) as well as tmpfs & shmem.
Doesn't include SwapCached.
SwapCached
Memory that once was swapped out, is swapped back in but
still also is in the swapfile (if memory is needed it
doesn't need to be swapped out AGAIN because it is already
in the swapfile. This saves I/O)
Active
Memory that has been used more recently and usually not
reclaimed unless absolutely necessary.
Inactive
Memory which has been less recently used. It is more
eligible to be reclaimed for other purposes
Unevictable
Memory allocated for userspace which cannot be reclaimed, such
as mlocked pages, ramfs backing pages, secret memfd pages etc.
Mlocked
Memory locked with mlock().
HighTotal, HighFree
Highmem is all memory above ~860MB of physical memory.
Highmem areas are for use by userspace programs, or
for the pagecache. The kernel must use tricks to access
this memory, making it slower to access than lowmem.
LowTotal, LowFree
Lowmem is memory which can be used for everything that
highmem can be used for, but it is also available for the
kernel's use for its own data structures. Among many
other things, it is where everything from the Slab is
allocated. Bad things happen when you're out of lowmem.
SwapTotal
total amount of swap space available
SwapFree
Memory which has been evicted from RAM, and is temporarily
on the disk
Zswap
Memory consumed by the zswap backend (compressed size)
Zswapped
Amount of anonymous memory stored in zswap (original size)
Dirty
Memory which is waiting to get written back to the disk
Writeback
Memory which is actively being written back to the disk
AnonPages
Non-file backed pages mapped into userspace page tables. Note that
some kernel configurations might consider all pages part of a
larger allocation (e.g., THP) as "mapped", as soon as a single
page is mapped.
Mapped
files which have been mmapped, such as libraries. Note that some
kernel configurations might consider all pages part of a larger
allocation (e.g., THP) as "mapped", as soon as a single page is
mapped.
Shmem
Total memory used by shared memory (shmem) and tmpfs
KReclaimable
Kernel allocations that the kernel will attempt to reclaim
under memory pressure. Includes SReclaimable (below), and other
direct allocations with a shrinker.
Slab
in-kernel data structures cache
SReclaimable
Part of Slab, that might be reclaimed, such as caches
SUnreclaim
Part of Slab, that cannot be reclaimed on memory pressure
KernelStack
Memory consumed by the kernel stacks of all tasks
PageTables
Memory consumed by userspace page tables
SecPageTables
Memory consumed by secondary page tables, this currently includes
KVM mmu and IOMMU allocations on x86 and arm64.
NFS_Unstable
Always zero. Previously counted pages which had been written to
the server, but has not been committed to stable storage.
Bounce
Always zero. Previously memory used for block device
"bounce buffers".
WritebackTmp
Always zero. Previously memory used by FUSE for temporary
writeback buffers.
CommitLimit
Based on the overcommit ratio ('vm.overcommit_ratio'),
this is the total amount of memory currently available to
be allocated on the system. This limit is only adhered to
if strict overcommit accounting is enabled (mode 2 in
'vm.overcommit_memory').
The CommitLimit is calculated with the following formula::
CommitLimit = ([total RAM pages] - [total huge TLB pages]) *
overcommit_ratio / 100 + [total swap pages]
For example, on a system with 1G of physical RAM and 7G
of swap with a `vm.overcommit_ratio` of 30 it would
yield a CommitLimit of 7.3G.
For more details, see the memory overcommit documentation
in mm/overcommit-accounting.
Committed_AS
The amount of memory presently allocated on the system.
The committed memory is a sum of all of the memory which
has been allocated by processes, even if it has not been
"used" by them as of yet. A process which malloc()'s 1G
of memory, but only touches 300M of it will show up as
using 1G. This 1G is memory which has been "committed" to
by the VM and can be used at any time by the allocating
application. With strict overcommit enabled on the system
(mode 2 in 'vm.overcommit_memory'), allocations which would
exceed the CommitLimit (detailed above) will not be permitted.
This is useful if one needs to guarantee that processes will
not fail due to lack of memory once that memory has been
successfully allocated.
VmallocTotal
total size of vmalloc virtual address space
VmallocUsed
amount of vmalloc area which is used
VmallocChunk
largest contiguous block of vmalloc area which is free
Percpu
Memory allocated to the percpu allocator used to back percpu
allocations. This stat excludes the cost of metadata.
EarlyMemtestBad
The amount of RAM/memory in kB, that was identified as corrupted
by early memtest. If memtest was not run, this field will not
be displayed at all. Size is never rounded down to 0 kB.
That means if 0 kB is reported, you can safely assume
there was at least one pass of memtest and none of the passes
found a single faulty byte of RAM.
HardwareCorrupted
The amount of RAM/memory in KB, the kernel identifies as
corrupted.
AnonHugePages
Non-file backed huge pages mapped into userspace page tables
ShmemHugePages
Memory used by shared memory (shmem) and tmpfs allocated
with huge pages
ShmemPmdMapped
Shared memory mapped into userspace with huge pages
FileHugePages
Memory used for filesystem data (page cache) allocated
with huge pages
FilePmdMapped
Page cache mapped into userspace with huge pages
CmaTotal
Memory reserved for the Contiguous Memory Allocator (CMA)
CmaFree
Free remaining memory in the CMA reserves
Unaccepted
Memory that has not been accepted by the guest
Balloon
Memory returned to Host by VM Balloon Drivers
HugePages_Total, HugePages_Free, HugePages_Rsvd, HugePages_Surp, Hugepagesize, Hugetlb
See Documentation/admin-guide/mm/hugetlbpage.rst.
DirectMap4k, DirectMap2M, DirectMap1G
Breakdown of page table sizes used in the kernel's
identity mapping of RAM
vmallocinfo
~~~~~~~~~~~
Provides information about vmalloced/vmaped areas. One line per area,
containing the virtual address range of the area, size in bytes,
caller information of the creator, and optional information depending
on the kind of area:
========== ===================================================
pages=nr number of pages
phys=addr if a physical address was specified
ioremap I/O mapping (ioremap() and friends)
vmalloc vmalloc() area
vmap vmap()ed pages
user VM_USERMAP area
vpages buffer for pages pointers was vmalloced (huge area)
N<node>=nr (Only on NUMA kernels)
Number of pages allocated on memory node <node>
========== ===================================================
::
> cat /proc/vmallocinfo
0xffffc20000000000-0xffffc20000201000 2101248 alloc_large_system_hash+0x204 ...
/0x2c0 pages=512 vmalloc N0=128 N1=128 N2=128 N3=128
0xffffc20000201000-0xffffc20000302000 1052672 alloc_large_system_hash+0x204 ...
/0x2c0 pages=256 vmalloc N0=64 N1=64 N2=64 N3=64
0xffffc20000302000-0xffffc20000304000 8192 acpi_tb_verify_table+0x21/0x4f...
phys=7fee8000 ioremap
0xffffc20000304000-0xffffc20000307000 12288 acpi_tb_verify_table+0x21/0x4f...
phys=7fee7000 ioremap
0xffffc2000031d000-0xffffc2000031f000 8192 init_vdso_vars+0x112/0x210
0xffffc2000031f000-0xffffc2000032b000 49152 cramfs_uncompress_init+0x2e ...
/0x80 pages=11 vmalloc N0=3 N1=3 N2=2 N3=3
0xffffc2000033a000-0xffffc2000033d000 12288 sys_swapon+0x640/0xac0 ...
pages=2 vmalloc N1=2
0xffffc20000347000-0xffffc2000034c000 20480 xt_alloc_table_info+0xfe ...
/0x130 [x_tables] pages=4 vmalloc N0=4
0xffffffffa0000000-0xffffffffa000f000 61440 sys_init_module+0xc27/0x1d00 ...
pages=14 vmalloc N2=14
0xffffffffa000f000-0xffffffffa0014000 20480 sys_init_module+0xc27/0x1d00 ...
pages=4 vmalloc N1=4
0xffffffffa0014000-0xffffffffa0017000 12288 sys_init_module+0xc27/0x1d00 ...
pages=2 vmalloc N1=2
0xffffffffa0017000-0xffffffffa0022000 45056 sys_init_module+0xc27/0x1d00 ...
pages=10 vmalloc N0=10
softirqs
~~~~~~~~
Provides counts of softirq handlers serviced since boot time, for each CPU.
::
> cat /proc/softirqs
CPU0 CPU1 CPU2 CPU3
HI: 0 0 0 0
TIMER: 27166 27120 27097 27034
NET_TX: 0 0 0 17
NET_RX: 42 0 0 39
BLOCK: 0 0 107 1121
TASKLET: 0 0 0 290
SCHED: 27035 26983 26971 26746
HRTIMER: 0 0 0 0
RCU: 1678 1769 2178 2250
1.3 Networking info in /proc/net
--------------------------------
The subdirectory /proc/net follows the usual pattern. Table 1-8 shows the
additional values you get for IP version 6 if you configure the kernel to
support this. Table 1-9 lists the files and their meaning.
.. table:: Table 1-8: IPv6 info in /proc/net
========== =====================================================
File Content
========== =====================================================
udp6 UDP sockets (IPv6)
tcp6 TCP sockets (IPv6)
raw6 Raw device statistics (IPv6)
igmp6 IP multicast addresses, which this host joined (IPv6)
if_inet6 List of IPv6 interface addresses
ipv6_route Kernel routing table for IPv6
rt6_stats Global IPv6 routing tables statistics
sockstat6 Socket statistics (IPv6)
snmp6 Snmp data (IPv6)
========== =====================================================
.. table:: Table 1-9: Network info in /proc/net
============= ================================================================
File Content
============= ================================================================
arp Kernel ARP table
dev network devices with statistics
dev_mcast the Layer2 multicast groups a device is listening too
(interface index, label, number of references, number of bound
addresses).
dev_stat network device status
ip_fwchains Firewall chain linkage
ip_fwnames Firewall chain names
ip_masq Directory containing the masquerading tables
ip_masquerade Major masquerading table
netstat Network statistics
raw raw device statistics
route Kernel routing table
rpc Directory containing rpc info
rt_cache Routing cache
snmp SNMP data
sockstat Socket statistics
softnet_stat Per-CPU incoming packets queues statistics of online CPUs
tcp TCP sockets
udp UDP sockets
unix UNIX domain sockets
wireless Wireless interface data (Wavelan etc)
igmp IP multicast addresses, which this host joined
psched Global packet scheduler parameters.
netlink List of PF_NETLINK sockets
ip_mr_vifs List of multicast virtual interfaces
ip_mr_cache List of multicast routing cache
============= ================================================================
You can use this information to see which network devices are available in
your system and how much traffic was routed over those devices::
> cat /proc/net/dev
Inter-|Receive |[...
face |bytes packets errs drop fifo frame compressed multicast|[...
lo: 908188 5596 0 0 0 0 0 0 [...
ppp0:15475140 20721 410 0 0 410 0 0 [...
eth0: 614530 7085 0 0 0 0 0 1 [...
...] Transmit
...] bytes packets errs drop fifo colls carrier compressed
...] 908188 5596 0 0 0 0 0 0
...] 1375103 17405 0 0 0 0 0 0
...] 1703981 5535 0 0 0 3 0 0
In addition, each Channel Bond interface has its own directory. For
example, the bond0 device will have a directory called /proc/net/bond0/.
It will contain information that is specific to that bond, such as the
current slaves of the bond, the link status of the slaves, and how
many times the slaves link has failed.
1.4 SCSI info
-------------
If you have a SCSI or ATA host adapter in your system, you'll find a
subdirectory named after the driver for this adapter in /proc/scsi.
You'll also see a list of all recognized SCSI devices in /proc/scsi::
>cat /proc/scsi/scsi
Attached devices:
Host: scsi0 Channel: 00 Id: 00 Lun: 00
Vendor: IBM Model: DGHS09U Rev: 03E0
Type: Direct-Access ANSI SCSI revision: 03
Host: scsi0 Channel: 00 Id: 06 Lun: 00
Vendor: PIONEER Model: CD-ROM DR-U06S Rev: 1.04
Type: CD-ROM ANSI SCSI revision: 02
The directory named after the driver has one file for each adapter found in
the system. These files contain information about the controller, including
the used IRQ and the IO address range. The amount of information shown is
dependent on the adapter you use. The example shows the output for an Adaptec
AHA-2940 SCSI adapter::
> cat /proc/scsi/aic7xxx/0
Adaptec AIC7xxx driver version: 5.1.19/3.2.4
Compile Options:
TCQ Enabled By Default : Disabled
AIC7XXX_PROC_STATS : Disabled
AIC7XXX_RESET_DELAY : 5
Adapter Configuration:
SCSI Adapter: Adaptec AHA-294X Ultra SCSI host adapter
Ultra Wide Controller
PCI MMAPed I/O Base: 0xeb001000
Adapter SEEPROM Config: SEEPROM found and used.
Adaptec SCSI BIOS: Enabled
IRQ: 10
SCBs: Active 0, Max Active 2,
Allocated 15, HW 16, Page 255
Interrupts: 160328
BIOS Control Word: 0x18b6
Adapter Control Word: 0x005b
Extended Translation: Enabled
Disconnect Enable Flags: 0xffff
Ultra Enable Flags: 0x0001
Tag Queue Enable Flags: 0x0000
Ordered Queue Tag Flags: 0x0000
Default Tag Queue Depth: 8
Tagged Queue By Device array for aic7xxx host instance 0:
{255,255,255,255,255,255,255,255,255,255,255,255,255,255,255,255}
Actual queue depth per device for aic7xxx host instance 0:
{1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}
Statistics:
(scsi0:0:0:0)
Device using Wide/Sync transfers at 40.0 MByte/sec, offset 8
Transinfo settings: current(12/8/1/0), goal(12/8/1/0), user(12/15/1/0)
Total transfers 160151 (74577 reads and 85574 writes)
(scsi0:0:6:0)
Device using Narrow/Sync transfers at 5.0 MByte/sec, offset 15
Transinfo settings: current(50/15/0/0), goal(50/15/0/0), user(50/15/0/0)
Total transfers 0 (0 reads and 0 writes)
1.5 Parallel port info in /proc/parport
---------------------------------------
The directory /proc/parport contains information about the parallel ports of
your system. It has one subdirectory for each port, named after the port
number (0,1,2,...).
These directories contain the four files shown in Table 1-10.
.. table:: Table 1-10: Files in /proc/parport
========= ====================================================================
File Content
========= ====================================================================
autoprobe Any IEEE-1284 device ID information that has been acquired.
devices list of the device drivers using that port. A + will appear by the
name of the device currently using the port (it might not appear
against any).
hardware Parallel port's base address, IRQ line and DMA channel.
irq IRQ that parport is using for that port. This is in a separate
file to allow you to alter it by writing a new value in (IRQ
number or none).
========= ====================================================================
1.6 TTY info in /proc/tty
-------------------------
Information about the available and actually used tty's can be found in the
directory /proc/tty. You'll find entries for drivers and line disciplines in
this directory, as shown in Table 1-11.
.. table:: Table 1-11: Files in /proc/tty
============= ==============================================
File Content
============= ==============================================
drivers list of drivers and their usage
ldiscs registered line disciplines
driver/serial usage statistic and status of single tty lines
============= ==============================================
To see which tty's are currently in use, you can simply look into the file
/proc/tty/drivers::
> cat /proc/tty/drivers
pty_slave /dev/pts 136 0-255 pty:slave
pty_master /dev/ptm 128 0-255 pty:master
pty_slave /dev/ttyp 3 0-255 pty:slave
pty_master /dev/pty 2 0-255 pty:master
serial /dev/cua 5 64-67 serial:callout
serial /dev/ttyS 4 64-67 serial
/dev/tty0 /dev/tty0 4 0 system:vtmaster
/dev/ptmx /dev/ptmx 5 2 system
/dev/console /dev/console 5 1 system:console
/dev/tty /dev/tty 5 0 system:/dev/tty
unknown /dev/tty 4 1-63 console
1.7 Miscellaneous kernel statistics in /proc/stat
-------------------------------------------------
Various pieces of information about kernel activity are available in the
/proc/stat file. All of the numbers reported in this file are aggregates
since the system first booted. For a quick look, simply cat the file::
> cat /proc/stat
cpu 237902850 368826709 106375398 1873517540 1135548 0 14507935 0 0 0
cpu0 60045249 91891769 26331539 468411416 495718 0 5739640 0 0 0
cpu1 59746288 91759249 26609887 468860630 312281 0 4384817 0 0 0
cpu2 59489247 92985423 26904446 467808813 171668 0 2268998 0 0 0
cpu3 58622065 92190267 26529524 468436680 155879 0 2114478 0 0 0
intr 8688370575 8 3373 0 0 0 0 0 0 1 40791 0 0 353317 0 0 0 0 224789828 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 190974333 41958554 123983334 43 0 224593 0 0 0 <more 0's deleted>
ctxt 22848221062
btime 1605316999
processes 746787147
procs_running 2
procs_blocked 0
softirq 12121874454 100099120 3938138295 127375644 2795979 187870761 0 173808342 3072582055 52608 224184354
The very first "cpu" line aggregates the numbers in all of the other "cpuN"
lines. These numbers identify the amount of time the CPU has spent performing
different kinds of work. Time units are in USER_HZ (typically hundredths of a
second). The meanings of the columns are as follows, from left to right:
- user: normal processes executing in user mode
- nice: niced processes executing in user mode
- system: processes executing in kernel mode
- idle: twiddling thumbs
- iowait: In a word, iowait stands for waiting for I/O to complete. But there
are several problems:
1. CPU will not wait for I/O to complete, iowait is the time that a task is
waiting for I/O to complete. When CPU goes into idle state for
outstanding task I/O, another task will be scheduled on this CPU.
2. In a multi-core CPU, the task waiting for I/O to complete is not running
on any CPU, so the iowait of each CPU is difficult to calculate.
3. The value of iowait field in /proc/stat will decrease in certain
conditions.
So, the iowait is not reliable by reading from /proc/stat.
- irq: servicing interrupts
- softirq: servicing softirqs
- steal: involuntary wait
- guest: running a normal guest
- guest_nice: running a niced guest
The "intr" line gives counts of interrupts serviced since boot time, for each
of the possible system interrupts. The first column is the total of all
interrupts serviced including unnumbered architecture specific interrupts;
each subsequent column is the total for that particular numbered interrupt.
Unnumbered interrupts are not shown, only summed into the total.
The "ctxt" line gives the total number of context switches across all CPUs.
The "btime" line gives the time at which the system booted, in seconds since
the Unix epoch.
The "processes" line gives the number of processes and threads created, which
includes (but is not limited to) those created by calls to the fork() and
clone() system calls.
The "procs_running" line gives the total number of threads that are
running or ready to run (i.e., the total number of runnable threads).
The "procs_blocked" line gives the number of processes currently blocked,
waiting for I/O to complete.
The "softirq" line gives counts of softirqs serviced since boot time, for each
of the possible system softirqs. The first column is the total of all
softirqs serviced; each subsequent column is the total for that particular
softirq.
1.8 Ext4 file system parameters
-------------------------------
Information about mounted ext4 file systems can be found in
/proc/fs/ext4. Each mounted filesystem will have a directory in
/proc/fs/ext4 based on its device name (i.e., /proc/fs/ext4/hdc or
/proc/fs/ext4/sda9 or /proc/fs/ext4/dm-0). The files in each per-device
directory are shown in Table 1-12, below.
.. table:: Table 1-12: Files in /proc/fs/ext4/<devname>
============== ==========================================================
File Content
mb_groups details of multiblock allocator buddy cache of free blocks
============== ==========================================================
1.9 /proc/consoles
-------------------
Shows registered system console lines.
To see which character device lines are currently used for the system console
/dev/console, you may simply look into the file /proc/consoles::
> cat /proc/consoles
tty0 -WU (ECp) 4:7
ttyS0 -W- (Ep) 4:64
The columns are:
+--------------------+-------------------------------------------------------+
| device | name of the device |
+====================+=======================================================+
| operations | * R = can do read operations |
| | * W = can do write operations |
| | * U = can do unblank |
+--------------------+-------------------------------------------------------+
| flags | * E = it is enabled |
| | * C = it is preferred console |
| | * B = it is primary boot console |
| | * p = it is used for printk buffer |
| | * b = it is not a TTY but a Braille device |
| | * a = it is safe to use when cpu is offline |
+--------------------+-------------------------------------------------------+
| major:minor | major and minor number of the device separated by a |
| | colon |
+--------------------+-------------------------------------------------------+
Summary
-------
The /proc file system serves information about the running system. It not only
allows access to process data but also allows you to request the kernel status
by reading files in the hierarchy.
The directory structure of /proc reflects the types of information and makes
it easy, if not obvious, where to look for specific data.
Chapter 2: Modifying System Parameters
======================================
In This Chapter
---------------
* Modifying kernel parameters by writing into files found in /proc/sys
* Exploring the files which modify certain parameters
* Review of the /proc/sys file tree
------------------------------------------------------------------------------
A very interesting part of /proc is the directory /proc/sys. This is not only
a source of information, it also allows you to change parameters within the
kernel. Be very careful when attempting this. You can optimize your system,
but you can also cause it to crash. Never alter kernel parameters on a
production system. Set up a development machine and test to make sure that
everything works the way you want it to. You may have no alternative but to
reboot the machine once an error has been made.
To change a value, simply echo the new value into the file.
You need to be root to do this. You can create your own boot script
to perform this every time your system boots.
The files in /proc/sys can be used to fine tune and monitor miscellaneous and
general things in the operation of the Linux kernel. Since some of the files
can inadvertently disrupt your system, it is advisable to read both
documentation and source before actually making adjustments. In any case, be
very careful when writing to any of these files. The entries in /proc may
change slightly between the 2.1.* and the 2.2 kernel, so if there is any doubt
review the kernel documentation in the directory linux/Documentation.
This chapter is heavily based on the documentation included in the pre 2.2
kernels, and became part of it in version 2.2.1 of the Linux kernel.
Please see: Documentation/admin-guide/sysctl/ directory for descriptions of
these entries.
Summary
-------
Certain aspects of kernel behavior can be modified at runtime, without the
need to recompile the kernel, or even to reboot the system. The files in the
/proc/sys tree can not only be read, but also modified. You can use the echo
command to write value into these files, thereby changing the default settings
of the kernel.
Chapter 3: Per-process Parameters
=================================
3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj- Adjust the oom-killer score
--------------------------------------------------------------------------------
These files can be used to adjust the badness heuristic used to select which
process gets killed in out of memory (oom) conditions.
The badness heuristic assigns a value to each candidate task ranging from 0
(never kill) to 1000 (always kill) to determine which process is targeted. The
units are roughly a proportion along that range of allowed memory the process
may allocate from based on an estimation of its current memory and swap use.
For example, if a task is using all allowed memory, its badness score will be
1000. If it is using half of its allowed memory, its score will be 500.
The amount of "allowed" memory depends on the context in which the oom killer
was called. If it is due to the memory assigned to the allocating task's cpuset
being exhausted, the allowed memory represents the set of mems assigned to that
cpuset. If it is due to a mempolicy's node(s) being exhausted, the allowed
memory represents the set of mempolicy nodes. If it is due to a memory
limit (or swap limit) being reached, the allowed memory is that configured
limit. Finally, if it is due to the entire system being out of memory, the
allowed memory represents all allocatable resources.
The value of /proc/<pid>/oom_score_adj is added to the badness score before it
is used to determine which task to kill. Acceptable values range from -1000
(OOM_SCORE_ADJ_MIN) to +1000 (OOM_SCORE_ADJ_MAX). This allows userspace to
polarize the preference for oom killing either by always preferring a certain
task or completely disabling it. The lowest possible value, -1000, is
equivalent to disabling oom killing entirely for that task since it will always
report a badness score of 0.
Consequently, it is very simple for userspace to define the amount of memory to
consider for each task. Setting a /proc/<pid>/oom_score_adj value of +500, for
example, is roughly equivalent to allowing the remainder of tasks sharing the
same system, cpuset, mempolicy, or memory controller resources to use at least
50% more memory. A value of -500, on the other hand, would be roughly
equivalent to discounting 50% of the task's allowed memory from being considered
as scoring against the task.
For backwards compatibility with previous kernels, /proc/<pid>/oom_adj may also
be used to tune the badness score. Its acceptable values range from -16
(OOM_ADJUST_MIN) to +15 (OOM_ADJUST_MAX) and a special value of -17
(OOM_DISABLE) to disable oom killing entirely for that task. Its value is
scaled linearly with /proc/<pid>/oom_score_adj.
The value of /proc/<pid>/oom_score_adj may be reduced no lower than the last
value set by a CAP_SYS_RESOURCE process. To reduce the value any lower
requires CAP_SYS_RESOURCE.
3.2 /proc/<pid>/oom_score - Display current oom-killer score
-------------------------------------------------------------
This file can be used to check the current score used by the oom-killer for
any given <pid>. Use it together with /proc/<pid>/oom_score_adj to tune which
process should be killed in an out-of-memory situation.
Please note that the exported value includes oom_score_adj so it is
effectively in range [0,2000].
3.3 /proc/<pid>/io - Display the IO accounting fields
-------------------------------------------------------
This file contains IO statistics for each running process.
Example
~~~~~~~
::
test:/tmp # dd if=/dev/zero of=/tmp/test.dat &
[1] 3828
test:/tmp # cat /proc/3828/io
rchar: 323934931
wchar: 323929600
syscr: 632687
syscw: 632675
read_bytes: 0
write_bytes: 323932160
cancelled_write_bytes: 0
Description
~~~~~~~~~~~
rchar
^^^^^
I/O counter: chars read
The number of bytes which this task has caused to be read from storage. This
is simply the sum of bytes which this process passed to read() and pread().
It includes things like tty IO and it is unaffected by whether or not actual
physical disk IO was required (the read might have been satisfied from
pagecache).
wchar
^^^^^
I/O counter: chars written
The number of bytes which this task has caused, or shall cause to be written
to disk. Similar caveats apply here as with rchar.
syscr
^^^^^
I/O counter: read syscalls
Attempt to count the number of read I/O operations, i.e. syscalls like read()
and pread().
syscw
^^^^^
I/O counter: write syscalls
Attempt to count the number of write I/O operations, i.e. syscalls like
write() and pwrite().
read_bytes
^^^^^^^^^^
I/O counter: bytes read
Attempt to count the number of bytes which this process really did cause to
be fetched from the storage layer. Done at the submit_bio() level, so it is
accurate for block-backed filesystems. <please add status regarding NFS and
CIFS at a later time>
write_bytes
^^^^^^^^^^^
I/O counter: bytes written
Attempt to count the number of bytes which this process caused to be sent to
the storage layer. This is done at page-dirtying time.
cancelled_write_bytes
^^^^^^^^^^^^^^^^^^^^^
The big inaccuracy here is truncate. If a process writes 1MB to a file and
then deletes the file, it will in fact perform no writeout. But it will have
been accounted as having caused 1MB of write.
In other words: The number of bytes which this process caused to not happen,
by truncating pagecache. A task can cause "negative" IO too. If this task
truncates some dirty pagecache, some IO which another task has been accounted
for (in its write_bytes) will not be happening. We _could_ just subtract that
from the truncating task's write_bytes, but there is information loss in doing
that.
.. Note::
At its current implementation state, this is a bit racy on 32-bit machines:
if process A reads process B's /proc/pid/io while process B is updating one
of those 64-bit counters, process A could see an intermediate result.
More information about this can be found within the taskstats documentation in
Documentation/accounting.
3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
---------------------------------------------------------------
When a process is dumped, all anonymous memory is written to a core file as
long as the size of the core file isn't limited. But sometimes we don't want
to dump some memory segments, for example, huge shared memory or DAX.
Conversely, sometimes we want to save file-backed memory segments into a core
file, not only the individual files.
/proc/<pid>/coredump_filter allows you to customize which memory segments
will be dumped when the <pid> process is dumped. coredump_filter is a bitmask
of memory types. If a bit of the bitmask is set, memory segments of the
corresponding memory type are dumped, otherwise they are not dumped.
The following 9 memory types are supported:
- (bit 0) anonymous private memory
- (bit 1) anonymous shared memory
- (bit 2) file-backed private memory
- (bit 3) file-backed shared memory
- (bit 4) ELF header pages in file-backed private memory areas (it is
effective only if the bit 2 is cleared)
- (bit 5) hugetlb private memory
- (bit 6) hugetlb shared memory
- (bit 7) DAX private memory
- (bit 8) DAX shared memory
Note that MMIO pages such as frame buffer are never dumped and vDSO pages
are always dumped regardless of the bitmask status.
Note that bits 0-4 don't affect hugetlb or DAX memory. hugetlb memory is
only affected by bit 5-6, and DAX is only affected by bits 7-8.
The default value of coredump_filter is 0x33; this means all anonymous memory
segments, ELF header pages and hugetlb private memory are dumped.
If you don't want to dump all shared memory segments attached to pid 1234,
write 0x31 to the process's proc file::
$ echo 0x31 > /proc/1234/coredump_filter
When a new process is created, the process inherits the bitmask status from its
parent. It is useful to set up coredump_filter before the program runs.
For example::
$ echo 0x7 > /proc/self/coredump_filter
$ ./some_program
3.5 /proc/<pid>/mountinfo - Information about mounts
--------------------------------------------------------
This file contains lines of the form::
36 35 98:0 /mnt1 /mnt2 rw,noatime master:1 - ext3 /dev/root rw,errors=continue
(1)(2)(3) (4) (5) (6) (n…m) (m+1)(m+2) (m+3) (m+4)
(1) mount ID: unique identifier of the mount (may be reused after umount)
(2) parent ID: ID of parent (or of self for the top of the mount tree)
(3) major:minor: value of st_dev for files on filesystem
(4) root: root of the mount within the filesystem
(5) mount point: mount point relative to the process's root
(6) mount options: per mount options
(n…m) optional fields: zero or more fields of the form "tag[:value]"
(m+1) separator: marks the end of the optional fields
(m+2) filesystem type: name of filesystem of the form "type[.subtype]"
(m+3) mount source: filesystem specific information or "none"
(m+4) super options: per super block options
Parsers should ignore all unrecognised optional fields. Currently the
possible optional fields are:
================ ==============================================================
shared:X mount is shared in peer group X
master:X mount is slave to peer group X
propagate_from:X mount is slave and receives propagation from peer group X [#]_
unbindable mount is unbindable
================ ==============================================================
.. [#] X is the closest dominant peer group under the process's root. If
X is the immediate master of the mount, or if there's no dominant peer
group under the same root, then only the "master:X" field is present
and not the "propagate_from:X" field.
For more information on mount propagation see:
Documentation/filesystems/sharedsubtree.rst
3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
--------------------------------------------------------
These files provide a method to access a task's comm value. It also allows for
a task to set its own or one of its thread siblings comm value. The comm value
is limited in size compared to the cmdline value, so writing anything longer
then the kernel's TASK_COMM_LEN (currently 16 chars, including the NUL
terminator) will result in a truncated comm value.
3.7 /proc/<pid>/task/<tid>/children - Information about task children
-------------------------------------------------------------------------
This file provides a fast way to retrieve first level children pids
of a task pointed by <pid>/<tid> pair. The format is a space separated
stream of pids.
Note the "first level" here -- if a child has its own children they will
not be listed here; one needs to read /proc/<children-pid>/task/<tid>/children
to obtain the descendants.
Since this interface is intended to be fast and cheap it doesn't
guarantee to provide precise results and some children might be
skipped, especially if they've exited right after we printed their
pids, so one needs to either stop or freeze processes being inspected
if precise results are needed.
3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
---------------------------------------------------------------
This file provides information associated with an opened file. The regular
files have at least four fields -- 'pos', 'flags', 'mnt_id' and 'ino'.
The 'pos' represents the current offset of the opened file in decimal
form [see lseek(2) for details], 'flags' denotes the octal O_xxx mask the
file has been created with [see open(2) for details] and 'mnt_id' represents
mount ID of the file system containing the opened file [see 3.5
/proc/<pid>/mountinfo for details]. 'ino' represents the inode number of
the file.
A typical output is::
pos: 0
flags: 0100002
mnt_id: 19
ino: 63107
All locks associated with a file descriptor are shown in its fdinfo too::
lock: 1: FLOCK ADVISORY WRITE 359 00:13:11691 0 EOF
The files such as eventfd, fsnotify, signalfd, epoll among the regular pos/flags
pair provide additional information particular to the objects they represent.
Eventfd files
~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
eventfd-count: 5a
where 'eventfd-count' is hex value of a counter.
Signalfd files
~~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
sigmask: 0000000000000200
where 'sigmask' is hex value of the signal mask associated
with a file.
Epoll files
~~~~~~~~~~~
::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
tfd: 5 events: 1d data: ffffffffffffffff pos:0 ino:61af sdev:7
where 'tfd' is a target file descriptor number in decimal form,
'events' is events mask being watched and the 'data' is data
associated with a target [see epoll(7) for more details].
The 'pos' is current offset of the target file in decimal form
[see lseek(2)], 'ino' and 'sdev' are inode and device numbers
where target file resides, all in hex format.
Fsnotify files
~~~~~~~~~~~~~~
For inotify files the format is the following::
pos: 0
flags: 02000000
mnt_id: 9
ino: 63107
inotify wd:3 ino:9e7e sdev:800013 mask:800afce ignored_mask:0 fhandle-bytes:8 fhandle-type:1 f_handle:7e9e0000640d1b6d
where 'wd' is a watch descriptor in decimal form, i.e. a target file
descriptor number, 'ino' and 'sdev' are inode and device where the
target file resides and the 'mask' is the mask of events, all in hex
form [see inotify(7) for more details].
If the kernel was built with exportfs support, the path to the target
file is encoded as a file handle. The file handle is provided by three
fields 'fhandle-bytes', 'fhandle-type' and 'f_handle', all in hex
format.
If the kernel is built without exportfs support the file handle won't be
printed out.
If there is no inotify mark attached yet the 'inotify' line will be omitted.
For fanotify files the format is::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
fanotify flags:10 event-flags:0
fanotify mnt_id:12 mflags:40 mask:38 ignored_mask:40000003
fanotify ino:4f969 sdev:800013 mflags:0 mask:3b ignored_mask:40000000 fhandle-bytes:8 fhandle-type:1 f_handle:69f90400c275b5b4
where fanotify 'flags' and 'event-flags' are values used in fanotify_init
call, 'mnt_id' is the mount point identifier, 'mflags' is the value of
flags associated with mark which are tracked separately from events
mask. 'ino' and 'sdev' are target inode and device, 'mask' is the events
mask and 'ignored_mask' is the mask of events which are to be ignored.
All are in hex format. Incorporation of 'mflags', 'mask' and 'ignored_mask'
provide information about flags and mask used in fanotify_mark
call [see fsnotify manpage for details].
While the first three lines are mandatory and always printed, the rest is
optional and may be omitted if no marks created yet.
Timerfd files
~~~~~~~~~~~~~
::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
clockid: 0
ticks: 0
settime flags: 01
it_value: (0, 49406829)
it_interval: (1, 0)
where 'clockid' is the clock type and 'ticks' is the number of the timer expirations
that have occurred [see timerfd_create(2) for details]. 'settime flags' are
flags in octal form been used to setup the timer [see timerfd_settime(2) for
details]. 'it_value' is remaining time until the timer expiration.
'it_interval' is the interval for the timer. Note the timer might be set up
with TIMER_ABSTIME option which will be shown in 'settime flags', but 'it_value'
still exhibits timer's remaining time.
DMA Buffer files
~~~~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
size: 32768
count: 2
exp_name: system-heap
where 'size' is the size of the DMA buffer in bytes. 'count' is the file count of
the DMA buffer file. 'exp_name' is the name of the DMA buffer exporter.
VFIO Device files
~~~~~~~~~~~~~~~~~
::
pos: 0
flags: 02000002
mnt_id: 17
ino: 5122
vfio-device-syspath: /sys/devices/pci0000:e0/0000:e0:01.1/0000:e1:00.0/0000:e2:05.0/0000:e8:00.0
where 'vfio-device-syspath' is the sysfs path corresponding to the VFIO device
file.
3.9 /proc/<pid>/map_files - Information about memory mapped files
---------------------------------------------------------------------
This directory contains symbolic links which represent memory mapped files
the process is maintaining. Example output::
| lr-------- 1 root root 64 Jan 27 11:24 333c600000-333c620000 -> /usr/lib64/ld-2.18.so
| lr-------- 1 root root 64 Jan 27 11:24 333c81f000-333c820000 -> /usr/lib64/ld-2.18.so
| lr-------- 1 root root 64 Jan 27 11:24 333c820000-333c821000 -> /usr/lib64/ld-2.18.so
| ...
| lr-------- 1 root root 64 Jan 27 11:24 35d0421000-35d0422000 -> /usr/lib64/libselinux.so.1
| lr-------- 1 root root 64 Jan 27 11:24 400000-41a000 -> /usr/bin/ls
The name of a link represents the virtual memory bounds of a mapping, i.e.
vm_area_struct::vm_start-vm_area_struct::vm_end.
The main purpose of the map_files is to retrieve a set of memory mapped
files in a fast way instead of parsing /proc/<pid>/maps or
/proc/<pid>/smaps, both of which contain many more records. At the same
time one can open(2) mappings from the listings of two processes and
comparing their inode numbers to figure out which anonymous memory areas
are actually shared.
3.10 /proc/<pid>/timerslack_ns - Task timerslack value
---------------------------------------------------------
This file provides the value of the task's timerslack value in nanoseconds.
This value specifies an amount of time that normal timers may be deferred
in order to coalesce timers and avoid unnecessary wakeups.
This allows a task's interactivity vs power consumption tradeoff to be
adjusted.
Writing 0 to the file will set the task's timerslack to the default value.
Valid values are from 0 - ULLONG_MAX
An application setting the value must have PTRACE_MODE_ATTACH_FSCREDS level
permissions on the task specified to change its timerslack_ns value.
3.11 /proc/<pid>/patch_state - Livepatch patch operation state
-----------------------------------------------------------------
When CONFIG_LIVEPATCH is enabled, this file displays the value of the
patch state for the task.
A value of '-1' indicates that no patch is in transition.
A value of '0' indicates that a patch is in transition and the task is
unpatched. If the patch is being enabled, then the task hasn't been
patched yet. If the patch is being disabled, then the task has already
been unpatched.
A value of '1' indicates that a patch is in transition and the task is
patched. If the patch is being enabled, then the task has already been
patched. If the patch is being disabled, then the task hasn't been
unpatched yet.
3.12 /proc/<pid>/arch_status - task architecture specific status
-------------------------------------------------------------------
When CONFIG_PROC_PID_ARCH_STATUS is enabled, this file displays the
architecture specific status of the task.
Example
~~~~~~~
::
$ cat /proc/6753/arch_status
AVX512_elapsed_ms: 8
Description
~~~~~~~~~~~
x86 specific entries
~~~~~~~~~~~~~~~~~~~~~
AVX512_elapsed_ms
^^^^^^^^^^^^^^^^^^
If AVX512 is supported on the machine, this entry shows the milliseconds
elapsed since the last time AVX512 usage was recorded. The recording
happens on a best effort basis when a task is scheduled out. This means
that the value depends on two factors:
1) The time which the task spent on the CPU without being scheduled
out. With CPU isolation and a single runnable task this can take
several seconds.
2) The time since the task was scheduled out last. Depending on the
reason for being scheduled out (time slice exhausted, syscall ...)
this can be arbitrary long time.
As a consequence the value cannot be considered precise and authoritative
information. The application which uses this information has to be aware
of the overall scenario on the system in order to determine whether a
task is a real AVX512 user or not. Precise information can be obtained
with performance counters.
A special value of '-1' indicates that no AVX512 usage was recorded, thus
the task is unlikely an AVX512 user, but depends on the workload and the
scheduling scenario, it also could be a false negative mentioned above.
3.13 /proc/<pid>/fd - List of symlinks to open files
-------------------------------------------------------
This directory contains symbolic links which represent open files
the process is maintaining. Example output::
lr-x------ 1 root root 64 Sep 20 17:53 0 -> /dev/null
l-wx------ 1 root root 64 Sep 20 17:53 1 -> /dev/null
lrwx------ 1 root root 64 Sep 20 17:53 10 -> 'socket:[12539]'
lrwx------ 1 root root 64 Sep 20 17:53 11 -> 'socket:[12540]'
lrwx------ 1 root root 64 Sep 20 17:53 12 -> 'socket:[12542]'
The number of open files for the process is stored in 'size' member
of stat() output for /proc/<pid>/fd for fast access.
-------------------------------------------------------
3.14 /proc/<pid/ksm_stat - Information about the process's ksm status
---------------------------------------------------------------------
When CONFIG_KSM is enabled, each process has this file which displays
the information of ksm merging status.
Example
~~~~~~~
::
/ # cat /proc/self/ksm_stat
ksm_rmap_items 0
ksm_zero_pages 0
ksm_merging_pages 0
ksm_process_profit 0
ksm_merge_any: no
ksm_mergeable: no
Description
~~~~~~~~~~~
ksm_rmap_items
^^^^^^^^^^^^^^
The number of ksm_rmap_item structures in use. The structure
ksm_rmap_item stores the reverse mapping information for virtual
addresses. KSM will generate a ksm_rmap_item for each ksm-scanned page of
the process.
ksm_zero_pages
^^^^^^^^^^^^^^
When /sys/kernel/mm/ksm/use_zero_pages is enabled, it represent how many
empty pages are merged with kernel zero pages by KSM.
ksm_merging_pages
^^^^^^^^^^^^^^^^^
It represents how many pages of this process are involved in KSM merging
(not including ksm_zero_pages). It is the same with what
/proc/<pid>/ksm_merging_pages shows.
ksm_process_profit
^^^^^^^^^^^^^^^^^^
The profit that KSM brings (Saved bytes). KSM can save memory by merging
identical pages, but also can consume additional memory, because it needs
to generate a number of rmap_items to save each scanned page's brief rmap
information. Some of these pages may be merged, but some may not be abled
to be merged after being checked several times, which are unprofitable
memory consumed.
ksm_merge_any
^^^^^^^^^^^^^
It specifies whether the process's 'mm is added by prctl() into the
candidate list of KSM or not, and if KSM scanning is fully enabled at
process level.
ksm_mergeable
^^^^^^^^^^^^^
It specifies whether any VMAs of the process''s mms are currently
applicable to KSM.
More information about KSM can be found in
Documentation/admin-guide/mm/ksm.rst.
Chapter 4: Configuring procfs
=============================
4.1 Mount options
---------------------
The following mount options are supported:
========= ========================================================
hidepid= Set /proc/<pid>/ access mode.
gid= Set the group authorized to learn processes information.
subset= Show only the specified subset of procfs.
pidns= Specify a the namespace used by this procfs.
========= ========================================================
hidepid=off or hidepid=0 means classic mode - everybody may access all
/proc/<pid>/ directories (default).
hidepid=noaccess or hidepid=1 means users may not access any /proc/<pid>/
directories but their own. Sensitive files like cmdline, sched*, status are now
protected against other users. This makes it impossible to learn whether any
user runs specific program (given the program doesn't reveal itself by its
behaviour). As an additional bonus, as /proc/<pid>/cmdline is unaccessible for
other users, poorly written programs passing sensitive information via program
arguments are now protected against local eavesdroppers.
hidepid=invisible or hidepid=2 means hidepid=1 plus all /proc/<pid>/ will be
fully invisible to other users. It doesn't mean that it hides a fact whether a
process with a specific pid value exists (it can be learned by other means, e.g.
by "kill -0 $PID"), but it hides process's uid and gid, which may be learned by
stat()'ing /proc/<pid>/ otherwise. It greatly complicates an intruder's task of
gathering information about running processes, whether some daemon runs with
elevated privileges, whether other user runs some sensitive program, whether
other users run any program at all, etc.
hidepid=ptraceable or hidepid=4 means that procfs should only contain
/proc/<pid>/ directories that the caller can ptrace.
gid= defines a group authorized to learn processes information otherwise
prohibited by hidepid=. If you use some daemon like identd which needs to learn
information about processes information, just add identd to this group.
subset=pid hides all top level files and directories in the procfs that
are not related to tasks.
pidns= specifies a pid namespace (either as a string path to something like
`/proc/$pid/ns/pid`, or a file descriptor when using `FSCONFIG_SET_FD`) that
will be used by the procfs instance when translating pids. By default, procfs
will use the calling process's active pid namespace. Note that the pid
namespace of an existing procfs instance cannot be modified (attempting to do
so will give an `-EBUSY` error).
Chapter 5: Filesystem behavior
==============================
Originally, before the advent of pid namespace, procfs was a global file
system. It means that there was only one procfs instance in the system.
When pid namespace was added, a separate procfs instance was mounted in
each pid namespace. So, procfs mount options are global among all
mountpoints within the same namespace::
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=2 0 0
# strace -e mount mount -o hidepid=1 -t proc proc /tmp/proc
mount("proc", "/tmp/proc", "proc", 0, "hidepid=1") = 0
+++ exited with 0 +++
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=2 0 0
proc /tmp/proc proc rw,relatime,hidepid=2 0 0
and only after remounting procfs mount options will change at all
mountpoints::
# mount -o remount,hidepid=1 -t proc proc /tmp/proc
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=1 0 0
proc /tmp/proc proc rw,relatime,hidepid=1 0 0
This behavior is different from the behavior of other filesystems.
The new procfs behavior is more like other filesystems. Each procfs mount
creates a new procfs instance. Mount options affect own procfs instance.
It means that it became possible to have several procfs instances
displaying tasks with different filtering options in one pid namespace::
# mount -o hidepid=invisible -t proc proc /proc
# mount -o hidepid=noaccess -t proc proc /tmp/proc
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=invisible 0 0
proc /tmp/proc proc rw,relatime,hidepid=noaccess 0 0
3. 한국어 전문 번역
영어 원문의 문단 순서와 의미를 유지한 전체 번역입니다. 코드, 함수명, symbol과 URL은 원문 표기를 유지합니다.
문서 범위, 목차, 서문
1-100이 문서는 `/proc` filesystem의 system·process 정보 수집, `/proc/sys`를 통한 runtime parameter 변경, process별 control file, procfs mount option과 instance 동작을 설명한다. 초판 `/proc/sys` 자료와 2.4.x 갱신, `/proc/sys` 이동 및 후속 수정의 작성자와 날짜를 원문 표에 기록한다.
1장은 process directory, kernel data, networking, SCSI, parallel port, TTY, `/proc/stat`, ext4와 console 정보를 다룬다. 2장은 system parameter 변경, 3장은 OOM·I/O·core dump·mount·fdinfo·KSM 등 process별 parameter, 4장은 mount option, 5장은 filesystem instance 동작을 설명한다.
Alan Cox, Rik van Riel, Alexey Kuznetsov를 비롯한 기여자와 특히 Andi Kleen의 문서를 바탕으로 작성됐으며 최신 문서는 kernel.org HTML에서 볼 수 있다. 정확성을 보증하지 않는다는 법적 고지도 포함한다.
`/proc`은 kernel 내부 data structure에 대한 interface다. 실행 중인 system 정보를 읽을 수 있을 뿐 아니라 sysctl을 통해 특정 kernel parameter를 runtime에 바꿀 수 있다. 1장은 read-only 정보를, 2장은 `/proc/sys` 변경 방법을 다룬다.
읽기용 관찰 interface에서 process control과 mount 구성으로 범위를 넓힌다.
.. SPDX-License-Identifier: GPL-2.0
====================
The /proc Filesystem
====================
===================== ======================================= ================
/proc/sys Terrehon Bowden <[email protected]>, October 7 1999
Bodo Bauer <[email protected]>
2.4.x update Jorge Nerin <[email protected]> November 14 2000
move /proc/sys Shen Feng <[email protected]> April 1 2009
fixes/update part 1.1 Stefani Seibold <[email protected]> June 9 2009
===================== ======================================= ================
.. Table of Contents
0 Preface
0.1 Introduction/Credits
0.2 Legal Stuff
1 Collecting System Information
1.1 Process-Specific Subdirectories
1.2 Kernel data
1.3 IDE devices in /proc/ide
1.4 Networking info in /proc/net
1.5 SCSI info
1.6 Parallel port info in /proc/parport
1.7 TTY info in /proc/tty
1.8 Miscellaneous kernel statistics in /proc/stat
1.9 Ext4 file system parameters
2 Modifying System Parameters
3 Per-Process Parameters
3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj - Adjust the oom-killer
score
3.2 /proc/<pid>/oom_score - Display current oom-killer score
3.3 /proc/<pid>/io - Display the IO accounting fields
3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
3.5 /proc/<pid>/mountinfo - Information about mounts
3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
3.7 /proc/<pid>/task/<tid>/children - Information about task children
3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
3.9 /proc/<pid>/map_files - Information about memory mapped files
3.10 /proc/<pid>/timerslack_ns - Task timerslack value
3.11 /proc/<pid>/patch_state - Livepatch patch operation state
3.12 /proc/<pid>/arch_status - Task architecture specific information
3.13 /proc/<pid>/fd - List of symlinks to open files
3.14 /proc/<pid/ksm_stat - Information about the process's ksm status.
4 Configuring procfs
4.1 Mount options
5 Filesystem behavior
Preface
=======
0.1 Introduction/Credits
------------------------
We'd like to thank Alan Cox, Rik van Riel, and Alexey Kuznetsov and a lot of
other people for help compiling this documentation. We'd also like to extend a
special thank you to Andi Kleen for documentation, which we relied on heavily
to create this document, as well as the additional information he provided.
Thanks to everybody else who contributed source or docs to the Linux kernel
and helped create a great piece of software... :)
The latest version of this document is available online at
https://www.kernel.org/doc/html/latest/filesystems/proc.html
0.2 Legal Stuff
---------------
We don't guarantee the correctness of this document, and if you come to us
complaining about how you screwed up your system because of incorrect
documentation, we won't feel responsible...
Chapter 1: Collecting System Information
========================================
In This Chapter
---------------
* Investigating the properties of the pseudo file system /proc and its
ability to provide information on the running Linux system
* Examining /proc's structure
* Uncovering various information about the kernel and the processes running
on the system
------------------------------------------------------------------------------
The proc file system acts as an interface to internal data structures in the
kernel. It can be used to obtain information about the system and to change
certain kernel parameters at runtime (sysctl).
First, we'll take a look at the read-only parts of /proc. In Chapter 2, we
show you how you can use /proc/sys to change settings.
Process별 directory와 접근 권한
101-214`/proc`에는 실행 중인 각 process ID를 이름으로 한 subdirectory가 있고 `self` symlink는 filesystem을 읽는 process 자신을 가리킨다. 자기 `/proc/PID/*` 정보는 추가 권한 없이 읽을 수 있다. 다른 process의 `maps`, `environ`, `pagemap` 같은 read-only 정보에는 `PTRACE_MODE_READ`가 허용된 `CAP_SYS_PTRACE` 또는 `CAP_PERFMON`이 필요하다.
예외인 `mem`은 read-write 성격 때문에 더 강한 `PTRACE_MODE_ATTACH` 조건의 `CAP_SYS_PTRACE`가 필요하며 `CAP_PERFMON`만으로 다른 process의 `/proc/PID/mem`에 접근할 수 없다.
열린 `/proc/<pid>` descriptor는 process가 종료된 뒤 PID 재사용을 막지 않는다. 하지만 기존 FD의 operation이 우연히 같은 PID를 받은 새 process에 작용하지는 않으며, 보통 `ESRCH`로 실패한다.
Table 1-1의 파일과 의미를 기능별로 보존했다.
`/proc/PID/status`는 `ps`가 procfs에서 얻는 정보보다 자세한 사람이 읽는 view를 제공한다. 예에는 identity, UID/GID, memory, signal, capability, seccomp, speculation mitigation, context switch가 나온다. `statm`은 7개 memory field, `stat`은 process 자체의 저수준 field를 제공한다.
1.1 Process-Specific Subdirectories
-----------------------------------
The directory /proc contains (among other things) one subdirectory for each
process running on the system, which is named after the process ID (PID).
The link 'self' points to the process reading the file system. Each process
subdirectory has the entries listed in Table 1-1.
A process can read its own information from /proc/PID/* with no extra
permissions. When reading /proc/PID/* information for other processes, reading
process is required to have either CAP_SYS_PTRACE capability with
PTRACE_MODE_READ access permissions, or, alternatively, CAP_PERFMON
capability. This applies to all read-only information like `maps`, `environ`,
`pagemap`, etc. The only exception is `mem` file due to its read-write nature,
which requires CAP_SYS_PTRACE capabilities with more elevated
PTRACE_MODE_ATTACH permissions; CAP_PERFMON capability does not grant access
to /proc/PID/mem for other processes.
Note that an open file descriptor to /proc/<pid> or to any of its
contained files or subdirectories does not prevent <pid> being reused
for some other process in the event that <pid> exits. Operations on
open /proc/<pid> file descriptors corresponding to dead processes
never act on any new process that the kernel may, through chance, have
also assigned the process ID <pid>. Instead, operations on these FDs
usually fail with ESRCH.
.. table:: Table 1-1: Process specific entries in /proc
============= ===============================================================
File Content
============= ===============================================================
clear_refs Clears page referenced bits shown in smaps output
cmdline Command line arguments
cpu Current and last cpu in which it was executed (2.4)(smp)
cwd Link to the current working directory
environ Values of environment variables
exe Link to the executable of this process
fd Directory, which contains all file descriptors
maps Memory maps to executables and library files (2.4)
mem Memory held by this process
root Link to the root directory of this process
stat Process status
statm Process memory status information
status Process status in human readable form
wchan Present with CONFIG_KALLSYMS=y: it shows the kernel function
symbol the task is blocked in - or "0" if not blocked.
pagemap Page table
stack Report full stack trace, enable via CONFIG_STACKTRACE
smaps An extension based on maps, showing the memory consumption of
each mapping and flags associated with it
smaps_rollup Accumulated smaps stats for all mappings of the process. This
can be derived from smaps, but is faster and more convenient
numa_maps An extension based on maps, showing the memory locality and
binding policy as well as mem usage (in pages) of each mapping.
============= ===============================================================
For example, to get the status information of a process, all you have to do is
read the file /proc/PID/status::
>cat /proc/self/status
Name: cat
State: R (running)
Tgid: 5452
Pid: 5452
PPid: 743
TracerPid: 0 (2.4)
Uid: 501 501 501 501
Gid: 100 100 100 100
FDSize: 256
Groups: 100 14 16
Kthread: 0
VmPeak: 5004 kB
VmSize: 5004 kB
VmLck: 0 kB
VmHWM: 476 kB
VmRSS: 476 kB
RssAnon: 352 kB
RssFile: 120 kB
RssShmem: 4 kB
VmData: 156 kB
VmStk: 88 kB
VmExe: 68 kB
VmLib: 1412 kB
VmPTE: 20 kb
VmSwap: 0 kB
HugetlbPages: 0 kB
CoreDumping: 0
THP_enabled: 1
Threads: 1
SigQ: 0/28578
SigPnd: 0000000000000000
ShdPnd: 0000000000000000
SigBlk: 0000000000000000
SigIgn: 0000000000000000
SigCgt: 0000000000000000
CapInh: 00000000fffffeff
CapPrm: 0000000000000000
CapEff: 0000000000000000
CapBnd: ffffffffffffffff
CapAmb: 0000000000000000
NoNewPrivs: 0
Seccomp: 0
Speculation_Store_Bypass: thread vulnerable
SpeculationIndirectBranch: conditional enabled
voluntary_ctxt_switches: 0
nonvoluntary_ctxt_switches: 1
This shows you nearly the same information you would get if you viewed it with
the ps command. In fact, ps uses the proc file system to obtain its
information. But you get a more detailed view of the process by reading the
file /proc/PID/status. It fields are described in table 1-2.
The statm file contains more detailed information about the process
`status`, `statm`, `stat` field
215-380SMP에서 RSS 관련 accounting은 확장성을 위해 비동기로 처리되므로 값이 정확한 순간 snapshot이 아닐 수 있다. 정확한 값이 필요하면 느리지만 page table을 scan하는 `/proc/<pid>/smaps`를 읽는다.
Table 1-2의 process identity와 memory 항목이다.
signal queue, capability, policy와 context switch 정보다.
`statm`의 `size`와 `resident`는 page 단위의 program size와 RSS다. `shared`는 file-backed page로 `RssFile+RssShmem`에 해당한다. `trs`와 `drs`는 각각 code 및 data/stack을 나타내지만 2.6에서 의미가 깨져 있고, `lrs`와 `dt`는 항상 0이다.
`stat`은 `pid`, executable `tcomm`, state, parent·process group·session·TTY ID, task flags, minor/major fault, user·kernel·child time, priority·nice·thread 수, start time, virtual size·RSS·limit, code/data/stack/heap/argument/environment 주소, signal bitmap, exit signal·code, CPU·scheduler policy·realtime priority, block I/O wait와 guest time을 순서대로 제공한다. 옛 `wchan` 위치와 두 항목은 0 placeholder다.
가벼운 비동기 계수와 page-table scan 사이의 비용·정확도 차이다.
memory usage. Its seven fields are explained in Table 1-3. The stat file
contains detailed information about the process itself. Its fields are
explained in Table 1-4.
(for SMP CONFIG users)
For making accounting scalable, RSS related information are handled in an
asynchronous manner and the value may not be very precise. To see a precise
snapshot of a moment, you can see /proc/<pid>/smaps file and scan page table.
It's slow but very precise.
.. table:: Table 1-2: Contents of the status fields (as of 4.19)
========================== ===================================================
Field Content
========================== ===================================================
Name filename of the executable
Umask file mode creation mask
State state (R is running, S is sleeping, D is sleeping
in an uninterruptible wait, Z is zombie,
T is traced or stopped)
Tgid thread group ID
Ngid NUMA group ID (0 if none)
Pid process id
PPid process id of the parent process
TracerPid PID of process tracing this process (0 if not, or
the tracer is outside of the current pid namespace)
Uid Real, effective, saved set, and file system UIDs
Gid Real, effective, saved set, and file system GIDs
FDSize number of file descriptor slots currently allocated
Groups supplementary group list
NStgid descendant namespace thread group ID hierarchy
NSpid descendant namespace process ID hierarchy
NSpgid descendant namespace process group ID hierarchy
NSsid descendant namespace session ID hierarchy
Kthread kernel thread flag, 1 is yes, 0 is no
VmPeak peak virtual memory size
VmSize total program size
VmLck locked memory size
VmPin pinned memory size
VmHWM peak resident set size ("high water mark")
VmRSS size of memory portions. It contains the three
following parts
(VmRSS = RssAnon + RssFile + RssShmem)
RssAnon size of resident anonymous memory
RssFile size of resident file mappings
RssShmem size of resident shmem memory (includes SysV shm,
mapping of tmpfs and shared anonymous mappings)
VmData size of private data segments
VmStk size of stack segments
VmExe size of text segment
VmLib size of shared library code
VmPTE size of page table entries
VmSwap amount of swap used by anonymous private data
(shmem swap usage is not included)
HugetlbPages size of hugetlb memory portions
CoreDumping process's memory is currently being dumped
(killing the process may lead to a corrupted core)
THP_enabled process is allowed to use THP (returns 0 when
PR_SET_THP_DISABLE is set on the process to disable
THP completely, not just partially)
Threads number of threads
SigQ number of signals queued/max. number for queue
SigPnd bitmap of pending signals for the thread
ShdPnd bitmap of shared pending signals for the process
SigBlk bitmap of blocked signals
SigIgn bitmap of ignored signals
SigCgt bitmap of caught signals
CapInh bitmap of inheritable capabilities
CapPrm bitmap of permitted capabilities
CapEff bitmap of effective capabilities
CapBnd bitmap of capabilities bounding set
CapAmb bitmap of ambient capabilities
NoNewPrivs no_new_privs, like prctl(PR_GET_NO_NEW_PRIV, ...)
Seccomp seccomp mode, like prctl(PR_GET_SECCOMP, ...)
Speculation_Store_Bypass speculative store bypass mitigation status
SpeculationIndirectBranch indirect branch speculation mode
Cpus_allowed mask of CPUs on which this process may run
Cpus_allowed_list Same as previous, but in "list format"
Mems_allowed mask of memory nodes allowed to this process
Mems_allowed_list Same as previous, but in "list format"
voluntary_ctxt_switches number of voluntary context switches
nonvoluntary_ctxt_switches number of non voluntary context switches
========================== ===================================================
.. table:: Table 1-3: Contents of the statm fields (as of 2.6.8-rc3)
======== =============================== ==============================
Field Content
======== =============================== ==============================
size total program size (pages) (same as VmSize in status)
resident size of memory portions (pages) (same as VmRSS in status)
shared number of pages that are shared (i.e. backed by a file, same
as RssFile+RssShmem in status)
trs number of pages that are 'code' (not including libs; broken,
includes data segment)
lrs number of pages of library (always 0 on 2.6)
drs number of pages of data/stack (including libs; broken,
includes library text)
dt number of dirty pages (always 0 on 2.6)
======== =============================== ==============================
.. table:: Table 1-4: Contents of the stat fields (as of 2.6.30-rc7)
============= ===============================================================
Field Content
============= ===============================================================
pid process id
tcomm filename of the executable
state state (R is running, S is sleeping, D is sleeping in an
uninterruptible wait, Z is zombie, T is traced or stopped)
ppid process id of the parent process
pgrp pgrp of the process
sid session id
tty_nr tty the process uses
tty_pgrp pgrp of the tty
flags task flags
min_flt number of minor faults
cmin_flt number of minor faults with child's
maj_flt number of major faults
cmaj_flt number of major faults with child's
utime user mode jiffies
stime kernel mode jiffies
cutime user mode jiffies with child's
cstime kernel mode jiffies with child's
priority priority level
nice nice level
num_threads number of threads
it_real_value (obsolete, always 0)
start_time time the process started after system boot
vsize virtual memory size
rss resident set memory size
rsslim current limit in bytes on the rss
start_code address above which program text can run
end_code address below which program text can run
start_stack address of the start of the main process stack
esp current value of ESP
eip current value of EIP
pending bitmap of pending signals
blocked bitmap of blocked signals
sigign bitmap of ignored signals
sigcatch bitmap of caught signals
0 (place holder, used to be the wchan address,
use /proc/PID/wchan instead)
0 (place holder)
0 (place holder)
exit_signal signal to send to parent thread on exit
task_cpu which CPU the task is scheduled on
rt_priority realtime priority
policy scheduling policy (man sched_setscheduler)
blkio_ticks time spent waiting for block IO
gtime guest time of the task in jiffies
cgtime guest time of the task children in jiffies
start_data address above which program data+bss is placed
end_data address below which program data+bss is placed
start_brk address above which program heap can be expanded with brk()
arg_start address above which program command line is placed
arg_end address below which program command line is placed
env_start address above which program environment is placed
env_end address below which program environment is placed
exit_code the thread's exit_code in the form reported by the waitpid
system call
============= ===============================================================
`/proc/PID/maps` 형식
381-445`/proc/PID/maps`는 현재 memory mapping region과 access permission을 한 줄씩 표시한다. column은 `address`, `perms`, file `offset`, device `major:minor`, `inode`, `pathname` 순서다.
mapping 한 줄의 각 위치가 뜻하는 값이다.
file 없는 특별 mapping은 `[heap]`, main process `[stack]`, kernel system-call handler인 `[vdso]`로 표시된다. userspace가 이름을 붙인 private anonymous mapping은 `[anon:<name>]`, anonymous shared memory는 `[anon_shmem:<name>]`다. pathname이 비어 있으면 일반 anonymous mapping이다.
Linux 6.11부터 `/proc/PID/maps`에는 VMA를 효율적으로 query·filter하는 binary `ioctl()` API도 있다. UAPI `linux/fs.h`의 `struct procmap_query`가 `PROCMAP_QUERY`의 input/output 인자이며 정확한 flag와 반환 semantics는 해당 header comment를 따른다.
text 전체 parsing 대신 필요한 VMA를 binary query로 선택한다.
The /proc/PID/maps file contains the currently mapped memory regions and
their access permissions.
The format is::
address perms offset dev inode pathname
08048000-08049000 r-xp 00000000 03:00 8312 /opt/test
08049000-0804a000 rw-p 00001000 03:00 8312 /opt/test
0804a000-0806b000 rw-p 00000000 00:00 0 [heap]
a7cb1000-a7cb2000 ---p 00000000 00:00 0
a7cb2000-a7eb2000 rw-p 00000000 00:00 0
a7eb2000-a7eb3000 ---p 00000000 00:00 0
a7eb3000-a7ed5000 rw-p 00000000 00:00 0
a7ed5000-a8008000 r-xp 00000000 03:00 4222 /lib/libc.so.6
a8008000-a800a000 r--p 00133000 03:00 4222 /lib/libc.so.6
a800a000-a800b000 rw-p 00135000 03:00 4222 /lib/libc.so.6
a800b000-a800e000 rw-p 00000000 00:00 0
a800e000-a8022000 r-xp 00000000 03:00 14462 /lib/libpthread.so.0
a8022000-a8023000 r--p 00013000 03:00 14462 /lib/libpthread.so.0
a8023000-a8024000 rw-p 00014000 03:00 14462 /lib/libpthread.so.0
a8024000-a8027000 rw-p 00000000 00:00 0
a8027000-a8043000 r-xp 00000000 03:00 8317 /lib/ld-linux.so.2
a8043000-a8044000 r--p 0001b000 03:00 8317 /lib/ld-linux.so.2
a8044000-a8045000 rw-p 0001c000 03:00 8317 /lib/ld-linux.so.2
aff35000-aff4a000 rw-p 00000000 00:00 0 [stack]
ffffe000-fffff000 r-xp 00000000 00:00 0 [vdso]
where "address" is the address space in the process that it occupies, "perms"
is a set of permissions::
r = read
w = write
x = execute
s = shared
p = private (copy on write)
"offset" is the offset into the mapping, "dev" is the device (major:minor), and
"inode" is the inode on that device. 0 indicates that no inode is associated
with the memory region, as the case would be with BSS (uninitialized data).
The "pathname" shows the name associated file for this mapping. If the mapping
is not associated with a file:
=================== ===========================================
[heap] the heap of the program
[stack] the stack of the main process
[vdso] the "virtual dynamic shared object",
the kernel system call handler
[anon:<name>] a private anonymous mapping that has been
named by userspace
[anon_shmem:<name>] an anonymous shared memory mapping that has
been named by userspace
=================== ===========================================
or if empty, the mapping is anonymous.
Starting with 6.11 kernel, /proc/PID/maps provides an alternative
ioctl()-based API that gives ability to flexibly and efficiently query and
filter individual VMAs. This interface is binary and is meant for more
efficient and easy programmatic use. `struct procmap_query`, defined in
linux/fs.h UAPI header, serves as an input/output argument to the
`PROCMAP_QUERY` ioctl() command. See comments in linus/fs.h UAPI header for
details on query semantics, supported flags, data returned, and general API
usage information.
`smaps` memory accounting
446-526`/proc/PID/smaps`는 `maps`를 확장해 각 VMA의 memory 소비를 보여 준다. 첫 줄은 `maps`와 같고 뒤에는 mapping size, kernel과 MMU page size, RAM resident size `Rss`, proportional share `Pss`, dirty PSS, shared/private clean·dirty page, reference·anonymous·KSM·lazy-free·hugepage·swap·lock·THP eligibility와 `VmFlags`가 이어진다.
PSS는 각 resident page를 그 page를 공유하는 process 수로 나눠 합한 값이다. 독점 page 1000개와 두 process가 공유하는 page 1000개가 있으면 PSS는 1500 page다. `Pss_Dirty`는 dirty portion이고 clean portion은 `Pss-Pss_Dirty`로 계산한다.
전통적 accounting은 한 번 mapping된 page를 private, 여러 번 mapping된 page를 shared로 분류하며 `MAP_SHARED`와는 독립적이다. THP 같은 큰 allocation은 구성 page가 모두 같은 process에 있다고 확실할 때 private, 다른 process에 있을 가능성이 있으면 shared로 볼 수 있다. mapping 횟수를 정밀하게 추적하지 않는 구성은 큰 allocation의 page별 평균 mapping 수를 사용하므로 PSS가 근사치가 된다.
mapping의 resident·sharing·backing 특성을 구분한다.
file mapping도 `MAP_PRIVATE` page가 수정되면 file page가 private anonymous copy로 대체돼 `Anonymous`에 포함될 수 있다. `KSM`은 실제 KSM page만 세며 KSM이 배치한 zero page는 제외한다. `LazyFree`는 구현 최적화 때문에 실제보다 낮게 출력될 수 있다.
The /proc/PID/smaps is an extension based on maps, showing the memory
consumption for each of the process's mappings. For each mapping (aka Virtual
Memory Area, or VMA) there is a series of lines such as the following::
08048000-080bc000 r-xp 00000000 03:02 13130 /bin/bash
Size: 1084 kB
KernelPageSize: 4 kB
MMUPageSize: 4 kB
Rss: 892 kB
Pss: 374 kB
Pss_Dirty: 0 kB
Shared_Clean: 892 kB
Shared_Dirty: 0 kB
Private_Clean: 0 kB
Private_Dirty: 0 kB
Referenced: 892 kB
Anonymous: 0 kB
KSM: 0 kB
LazyFree: 0 kB
AnonHugePages: 0 kB
ShmemPmdMapped: 0 kB
Shared_Hugetlb: 0 kB
Private_Hugetlb: 0 kB
Swap: 0 kB
SwapPss: 0 kB
KernelPageSize: 4 kB
MMUPageSize: 4 kB
Locked: 0 kB
THPeligible: 0
VmFlags: rd ex mr mw me dw
The first of these lines shows the same information as is displayed for
the mapping in /proc/PID/maps. Following lines show the size of the
mapping (size); the size of each page allocated when backing a VMA
(KernelPageSize), which is usually the same as the size in the page table
entries; the page size used by the MMU when backing a VMA (in most cases,
the same as KernelPageSize); the amount of the mapping that is currently
resident in RAM (RSS); the process's proportional share of this mapping
(PSS); and the number of clean and dirty shared and private pages in the
mapping.
The "proportional set size" (PSS) of a process is the count of pages it has
in memory, where each page is divided by the number of processes sharing it.
So if a process has 1000 pages all to itself, and 1000 shared with one other
process, its PSS will be 1500. "Pss_Dirty" is the portion of PSS which
consists of dirty pages. ("Pss_Clean" is not included, but it can be
calculated by subtracting "Pss_Dirty" from "Pss".)
Traditionally, a page is accounted as "private" if it is mapped exactly once,
and a page is accounted as "shared" when mapped multiple times, even when
mapped in the same process multiple times. Note that this accounting is
independent of MAP_SHARED.
In some kernel configurations, the semantics of pages part of a larger
allocation (e.g., THP) can differ: a page is accounted as "private" if all
pages part of the corresponding large allocation are *certainly* mapped in the
same process, even if the page is mapped multiple times in that process. A
page is accounted as "shared" if any page page of the larger allocation
is *maybe* mapped in a different process. In some cases, a large allocation
might be treated as "maybe mapped by multiple processes" even though this
is no longer the case.
Some kernel configurations do not track the precise number of times a page part
of a larger allocation is mapped. In this case, when calculating the PSS, the
average number of mappings per page in this larger allocation might be used
as an approximation for the number of mappings of a page. The PSS calculation
will be imprecise in this case.
"Referenced" indicates the amount of memory currently marked as referenced or
accessed.
"Anonymous" shows the amount of memory that does not belong to any file. Even
a mapping associated with a file may contain anonymous pages: when MAP_PRIVATE
and a page is modified, the file page is replaced by a private anonymous copy.
"KSM" reports how many of the pages are KSM pages. Note that KSM-placed zeropages
are not included, only actual KSM pages.
"LazyFree" shows the amount of memory which is marked by madvise(MADV_FREE).
The memory isn't freed immediately with madvise(). It's freed in memory
`smaps` hugepage·swap·VmFlags와 race
527-617`AnonHugePages`는 THP-backed memory, `ShmemPmdMapped`는 huge page로 뒷받침된 shared shmem/tmpfs다. `Shared_Hugetlb`와 `Private_Hugetlb`는 역사적 이유로 `RSS`, `PSS`, clean/dirty 분해에 포함되지 않는 hugetlbfs memory다.
`Swap`은 swap에 나간 would-be-anonymous memory를 나타낸다. shmem mapping에서는 COW로 대체되지 않은 underlying shmem object의 mapped swap 부분도 포함한다. `SwapPss`는 proportional swap share지만 underlying shmem object의 swapped page는 세지 않는다. `Locked`는 memory lock 여부, `THPeligible`은 현재 활성 크기 중 자연 정렬 THP를 할당할 수 있으면 1이다.
VMA kernel flag의 2글자 표현을 원문 순서대로 정리했다.
flag와 mnemonic은 kernel release마다 추가·삭제되거나 의미가 바뀔 수 있으므로 consumer는 대상 kernel version의 semantics를 따라야 한다. `smaps`는 `CONFIG_MMU`가 켜진 경우에만 존재한다.
`maps`와 `smaps` 읽기는 본질적으로 race가 있으며 single read call만 일관된 출력을 만들 수 있다. 부분 read 중 memory map이 바뀔 수 있지만 address는 뒤로 가지 않아 region이 중첩되지 않고, walk 전체 생애 동안 특정 virtual address에 mapping이 계속 있었다면 그에 대한 출력은 적어도 하나 제공된다.
완전한 snapshot은 아니지만 address ordering과 지속 mapping의 가시성은 유지한다.
pressure if the memory is clean. Please note that the printed value might
be lower than the real value due to optimizations used in the current
implementation. If this is not desirable please file a bug report.
"AnonHugePages" shows the amount of memory backed by transparent hugepage.
"ShmemPmdMapped" shows the amount of shared (shmem/tmpfs) memory backed by
huge pages.
"Shared_Hugetlb" and "Private_Hugetlb" show the amounts of memory backed by
hugetlbfs page which is *not* counted in "RSS" or "PSS" field for historical
reasons. And these are not included in {Shared,Private}_{Clean,Dirty} field.
"Swap" shows how much would-be-anonymous memory is also used, but out on swap.
For shmem mappings, "Swap" includes also the size of the mapped (and not
replaced by copy-on-write) part of the underlying shmem object out on swap.
"SwapPss" shows proportional swap share of this mapping. Unlike "Swap", this
does not take into account swapped out page of underlying shmem objects.
"Locked" indicates whether the mapping is locked in memory or not.
"THPeligible" indicates whether the mapping is eligible for allocating
naturally aligned THP pages of any currently enabled size. 1 if true, 0
otherwise.
"VmFlags" field deserves a separate description. This member represents the
kernel flags associated with the particular virtual memory area in two letter
encoded manner. The codes are the following:
== =============================================================
rd readable
wr writeable
ex executable
sh shared
mr may read
mw may write
me may execute
ms may share
gd stack segment growns down
pf pure PFN range
lo pages are locked in memory
io memory mapped I/O area
sr sequential read advise provided
rr random read advise provided
dc do not copy area on fork
de do not expand area on remapping
ac area is accountable
nr swap space is not reserved for the area
ht area uses huge tlb pages
sf synchronous page fault
ar architecture specific flag
wf wipe on fork
dd do not include area into core dump
sd soft dirty flag
mm mixed map area
hg huge page advise flag
nh no huge page advise flag
mg mergeable advise flag
bt arm64 BTI guarded page
mt arm64 MTE allocation tags are enabled
um userfaultfd missing tracking
uw userfaultfd wr-protect tracking
ui userfaultfd minor fault
ss shadow/guarded control stack page
sl sealed
lf lock on fault pages
dp always lazily freeable mapping
gu maybe contains guard regions (if not set, definitely doesn't)
== =============================================================
Note that there is no guarantee that every flag and associated mnemonic will
be present in all further kernel releases. Things get changed, the flags may
be vanished or the reverse -- new added. Interpretation of their meaning
might change in future as well. So each consumer of these flags has to
follow each specific kernel version for the exact semantic.
This file is only present if the CONFIG_MMU kernel configuration option is
enabled.
Note: reading /proc/PID/maps or /proc/PID/smaps is inherently racy (consistent
output can be achieved only in the single read call).
This typically manifests when doing partial reads of these files while the
memory map is being modified. Despite the races, we do provide the following
guarantees:
1) The mapped addresses never go backwards, which implies no two
regions will ever overlap.
2) If there is something at a given vaddr during the entirety of the
life of the smaps/maps walk, there will be some output for it.
`smaps_rollup`, `clear_refs`, pagemap, NUMA map
618-702`smaps_rollup`은 `smaps`의 동일 field를 process의 모든 mapping에 대해 합산한다. 추가 `Pss_Anon`, `Pss_File`, `Pss_Shmem`은 anonymous·file·shmem page의 proportional share다. 각 mapping type이 이미 명확한 `smaps`에서는 생략되며 rollup 결과를 smaps에서 계산할 수 있지만 비용이 훨씬 크다.
process page의 reference·soft-dirty·peak RSS 상태를 선택적으로 초기화한다.
`/proc/pid/pagemap`의 PFN은 `/proc/kpageflags`에서 page flag를, `/proc/kpagecount`에서 mapping 횟수를 찾는 데 쓴다. 자세한 bit layout은 `Documentation/admin-guide/mm/pagemap.rst`에 있다.
`numa_maps`는 mapping별 시작 address, NUMA policy, mapping detail을 한 줄에 표시한다. detail에는 file·stack·huge 같은 type, `mapped`, `anon`, `dirty`, `active`, `mapmax`, node별 `N0`, `N1` page count와 `kernelpagesize_kB`가 들어간다.
THP 같은 큰 allocation의 page별 mapping 수를 정밀 추적하지 않는 구성에서는 `mapmax`가 그 allocation의 page당 평균 mapping 수일 수 있다.
mapping 주소와 policy 뒤에 type·usage·locality 계수를 붙인다.
The /proc/PID/smaps_rollup file includes the same fields as /proc/PID/smaps,
but their values are the sums of the corresponding values for all mappings of
the process. Additionally, it contains these fields:
- Pss_Anon
- Pss_File
- Pss_Shmem
They represent the proportional shares of anonymous, file, and shmem pages, as
described for smaps above. These fields are omitted in smaps since each
mapping identifies the type (anon, file, or shmem) of all pages it contains.
Thus all information in smaps_rollup can be derived from smaps, but at a
significantly higher cost.
The /proc/PID/clear_refs is used to reset the PG_Referenced and ACCESSED/YOUNG
bits on both physical and virtual pages associated with a process, and the
soft-dirty bit on pte (see Documentation/admin-guide/mm/soft-dirty.rst
for details).
To clear the bits for all the pages associated with the process::
> echo 1 > /proc/PID/clear_refs
To clear the bits for the anonymous pages associated with the process::
> echo 2 > /proc/PID/clear_refs
To clear the bits for the file mapped pages associated with the process::
> echo 3 > /proc/PID/clear_refs
To clear the soft-dirty bit::
> echo 4 > /proc/PID/clear_refs
To reset the peak resident set size ("high water mark") to the process's
current value::
> echo 5 > /proc/PID/clear_refs
Any other value written to /proc/PID/clear_refs will have no effect.
The /proc/pid/pagemap gives the PFN, which can be used to find the pageflags
using /proc/kpageflags and number of times a page is mapped using
/proc/kpagecount. For detailed explanation, see
Documentation/admin-guide/mm/pagemap.rst.
The /proc/pid/numa_maps is an extension based on maps, showing the memory
locality and binding policy, as well as the memory usage (in pages) of
each mapping. The output follows a general format where mapping details get
summarized separated by blank spaces, one mapping per each file line::
address policy mapping details
00400000 default file=/usr/local/bin/app mapped=1 active=0 N3=1 kernelpagesize_kB=4
00600000 default file=/usr/local/bin/app anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206000000 default file=/lib64/ld-2.12.so mapped=26 mapmax=6 N0=24 N3=2 kernelpagesize_kB=4
320621f000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206220000 default file=/lib64/ld-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206221000 default anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206800000 default file=/lib64/libc-2.12.so mapped=59 mapmax=21 active=55 N0=41 N3=18 kernelpagesize_kB=4
320698b000 default file=/lib64/libc-2.12.so
3206b8a000 default file=/lib64/libc-2.12.so anon=2 dirty=2 N3=2 kernelpagesize_kB=4
3206b8e000 default file=/lib64/libc-2.12.so anon=1 dirty=1 N3=1 kernelpagesize_kB=4
3206b8f000 default anon=3 dirty=3 active=1 N3=3 kernelpagesize_kB=4
7f4dc10a2000 default anon=3 dirty=3 N3=3 kernelpagesize_kB=4
7f4dc10b4000 default anon=2 dirty=2 active=1 N3=2 kernelpagesize_kB=4
7f4dc1200000 default file=/anon_hugepage\040(deleted) huge anon=1 dirty=1 N3=1 kernelpagesize_kB=2048
7fff335f0000 default stack anon=3 dirty=3 N3=3 kernelpagesize_kB=4
7fff3369d000 default mapped=1 mapmax=35 active=0 N3=1 kernelpagesize_kB=4
Where:
"address" is the starting address for the mapping;
"policy" reports the NUMA memory policy set for the mapping (see Documentation/admin-guide/mm/numa_memory_policy.rst);
"mapping details" summarizes mapping data such as mapping type, page usage counters,
node locality page counters (N0 == node0, N1 == node1, ...) and the kernel page
size, in KB, that is backing the mapping up.
Note that some kernel configurations do not track the precise number of times
a page part of a larger allocation (e.g., THP) is mapped. In these
configurations, "mapmax" might corresponds to the average number of mappings
per page in such a larger allocation instead.
Kernel data entry와 interrupt 통계
703-829process entry와 마찬가지로 `/proc`의 kernel data file은 실행 중인 kernel 상태를 제공한다. 실제 존재 여부는 kernel configuration과 loaded module에 따라 달라진다.
Table 1-5를 관찰 영역별로 묶었다.
`loadavg`는 1·5·15분 load average, runnable/전체 process 수, 마지막 생성 PID를 표시한다. runnable과 total만 `/`로 구분하고 나머지는 space로 구분한다.
`/proc/interrupts`는 IRQ별로 각 CPU가 처리한 횟수, controller type과 device를 보여 준다. SMP 출력에는 `NMI`, `LOC`, `ERR`가 추가된다. `NMI`는 NMI watchdog lockup 검출용 non-maskable interrupt, `LOC`는 CPU별 local APIC interrupt, `ERR`는 CPU를 연결하는 IO-APIC bus 오류 수다. IO-APIC는 transmission을 자동 재시도한다.
2.6 계열에서는 모든 사용 중인 IRQ vector를 표시하도록 확장됐다. `THR`은 machine-check threshold, `TRM`은 CPU thermal threshold crossing, `SPU`는 source를 식별하기 전에 내려간 spurious interrupt다. `RES`, `CAL`, `TLB`는 CPU 사이 reschedule, call, TLB flush interrupt다.
platform과 SMP 여부에 따라 관련 있는 vector만 나타난다.
1.2 Kernel data
---------------
Similar to the process entries, the kernel data files give information about
the running kernel. The files used to obtain this information are contained in
/proc and are listed in Table 1-5. Not all of these will be present in your
system. It depends on the kernel configuration and the loaded modules, which
files are there, and which are missing.
.. table:: Table 1-5: Kernel info in /proc
============ ===============================================================
File Content
============ ===============================================================
allocinfo Memory allocations profiling information
apm Advanced power management info
bootconfig Kernel command line obtained from boot config,
and, if there were kernel parameters from the
boot loader, a "# Parameters from bootloader:"
line followed by a line containing those
parameters prefixed by "# ". (5.5)
buddyinfo Kernel memory allocator information (see text) (2.5)
bus Directory containing bus specific information
cmdline Kernel command line, both from bootloader and embedded
in the kernel image
cpuinfo Info about the CPU
devices Available devices (block and character)
dma Used DMS channels
filesystems Supported filesystems
driver Various drivers grouped here, currently rtc (2.4)
execdomains Execdomains, related to security (2.4)
fb Frame Buffer devices (2.4)
fs File system parameters, currently nfs/exports (2.4)
ide Directory containing info about the IDE subsystem
interrupts Interrupt usage
iomem Memory map (2.4)
ioports I/O port usage
irq Masks for irq to cpu affinity (2.4)(smp?)
isapnp ISA PnP (Plug&Play) Info (2.4)
kcore Kernel core image (can be ELF or A.OUT(deprecated in 2.4))
kmsg Kernel messages
ksyms Kernel symbol table
loadavg Load average of last 1, 5 & 15 minutes;
number of processes currently runnable (running or on ready queue);
total number of processes in system;
last pid created.
All fields are separated by one space except "number of
processes currently runnable" and "total number of processes
in system", which are separated by a slash ('/'). Example:
0.61 0.61 0.55 3/828 22084
locks Kernel locks
meminfo Memory info
misc Miscellaneous
modules List of loaded modules
mounts Mounted filesystems
net Networking info (see text)
pagetypeinfo Additional page allocator information (see text) (2.5)
partitions Table of partitions known to the system
pci Deprecated info of PCI bus (new way -> /proc/bus/pci/,
decoupled by lspci (2.4)
rtc Real time clock
scsi SCSI info (see text)
slabinfo Slab pool info
softirqs softirq usage
stat Overall statistics
swaps Swap space utilization
sys See chapter 2
sysvipc Info of SysVIPC Resources (msg, sem, shm) (2.4)
tty Info of tty drivers
uptime Wall clock since boot, combined idle time of all cpus
version Kernel version
video bttv info of video resources (2.4)
vmallocinfo Show vmalloced areas
============ ===============================================================
You can, for example, check which interrupts are currently in use and what
they are used for by looking in the file /proc/interrupts::
> cat /proc/interrupts
CPU0
0: 8728810 XT-PIC timer
1: 895 XT-PIC keyboard
2: 0 XT-PIC cascade
3: 531695 XT-PIC aha152x
4: 2014133 XT-PIC serial
5: 44401 XT-PIC pcnet_cs
8: 2 XT-PIC rtc
11: 8 XT-PIC i82365
12: 182918 XT-PIC PS/2 Mouse
13: 1 XT-PIC fpu
14: 1232265 XT-PIC ide0
15: 7 XT-PIC ide1
NMI: 0
In 2.4.* a couple of lines where added to this file LOC & ERR (this time is the
output of a SMP machine)::
> cat /proc/interrupts
CPU0 CPU1
0: 1243498 1214548 IO-APIC-edge timer
1: 8949 8958 IO-APIC-edge keyboard
2: 0 0 XT-PIC cascade
5: 11286 10161 IO-APIC-edge soundblaster
8: 1 0 IO-APIC-edge rtc
9: 27422 27407 IO-APIC-edge 3c503
12: 113645 113873 IO-APIC-edge PS/2 Mouse
13: 0 0 XT-PIC fpu
14: 22491 24012 IO-APIC-edge ide0
15: 2183 2415 IO-APIC-edge ide1
17: 30564 30414 IO-APIC-level eth0
18: 177 164 IO-APIC-level bttv
NMI: 2457961 2457959
LOC: 2457882 2457881
ERR: 2155
NMI is incremented in this case because every timer interrupt generates a NMI
(Non Maskable Interrupt) which is used by the NMI Watchdog to detect lockups.
LOC is the local interrupt counter of the internal APIC of every CPU.
ERR is incremented in the case of errors in the IO-APIC bus (the bus that
connects the CPUs in a SMP system. This means that an error has been detected,
the IO-APIC automatically retry the transmission, so it should not be a big
problem, but you should read the SMP-FAQ.
In 2.6.2* /proc/interrupts was expanded again. This time the goal was for
IRQ affinity와 proc subdirectory
830-916특수 IRQ vector는 관련 platform에서만 표시된다. 일부 threshold vector는 x86_64에 없고, 일부는 uniprocessor에서 숨겨진다. 문서 작성 당시 새 vector 표시는 i386과 x86_64가 지원했다.
`/proc/irq`에는 IRQ별 subdirectory와 `default_smp_affinity`, `prof_cpu_mask`가 있다. 각 IRQ의 `smp_affinity` bitmask는 처리 가능한 CPU를 지정한다. 예를 들어 1은 첫 CPU만, 5는 첫째와 셋째 CPU를 허용한다. 기본은 보통 `ffffffff`다. `smp_affinity_list`는 bitmask 대신 `1024-1031` 같은 CPU range를 받는다.
`default_smp_affinity`는 아직 allocate·activate되지 않아 `/proc/irq/N` directory가 없는 non-active IRQ에 적용된다. SMP의 `node` file은 device가 보고한 hardware NUMA node를 보여 주며 driver의 locality 선호는 포함하지 않는다. `prof_cpu_mask`는 system-wide profiler가 profile할 CPU를 정한다.
IO-APIC는 허용된 CPU 사이에서 보통 round-robin으로 IRQ를 route한다. 특별한 이유가 없다면 kernel default가 권장된다. `net`, `scsi`, `sys` directory의 존재와 내용도 networking·SCSI 등 kernel configuration에 따라 달라진다.
개별 IRQ, 미래 IRQ, profiler의 CPU mask를 각각 제어한다.
/proc/interrupts to display every IRQ vector in use by the system, not
just those considered 'most important'. The new vectors are:
THR
interrupt raised when a machine check threshold counter
(typically counting ECC corrected errors of memory or cache) exceeds
a configurable threshold. Only available on some systems.
TRM
a thermal event interrupt occurs when a temperature threshold
has been exceeded for the CPU. This interrupt may also be generated
when the temperature drops back to normal.
SPU
a spurious interrupt is some interrupt that was raised then lowered
by some IO device before it could be fully processed by the APIC. Hence
the APIC sees the interrupt but does not know what device it came from.
For this case the APIC will generate the interrupt with a IRQ vector
of 0xff. This might also be generated by chipset bugs.
RES, CAL, TLB
rescheduling, call and TLB flush interrupts are
sent from one CPU to another per the needs of the OS. Typically,
their statistics are used by kernel developers and interested users to
determine the occurrence of interrupts of the given type.
The above IRQ vectors are displayed only when relevant. For example,
the threshold vector does not exist on x86_64 platforms. Others are
suppressed when the system is a uniprocessor. As of this writing, only
i386 and x86_64 platforms support the new IRQ vector displays.
Of some interest is the introduction of the /proc/irq directory to 2.4.
It could be used to set IRQ to CPU affinity. This means that you can "hook" an
IRQ to only one CPU, or to exclude a CPU of handling IRQs. The contents of the
irq subdir is one subdir for each IRQ, and two files; default_smp_affinity and
prof_cpu_mask.
For example::
> ls /proc/irq/
0 10 12 14 16 18 2 4 6 8 prof_cpu_mask
1 11 13 15 17 19 3 5 7 9 default_smp_affinity
> ls /proc/irq/0/
smp_affinity
smp_affinity is a bitmask, in which you can specify which CPUs can handle the
IRQ. You can set it by doing::
> echo 1 > /proc/irq/10/smp_affinity
This means that only the first CPU will handle the IRQ, but you can also echo
5 which means that only the first and third CPU can handle the IRQ.
The contents of each smp_affinity file is the same by default::
> cat /proc/irq/0/smp_affinity
ffffffff
There is an alternate interface, smp_affinity_list which allows specifying
a CPU range instead of a bitmask::
> cat /proc/irq/0/smp_affinity_list
1024-1031
The default_smp_affinity mask applies to all non-active IRQs, which are the
IRQs which have not yet been allocated/activated, and hence which lack a
/proc/irq/[0-9]* directory.
The node file on an SMP system shows the node to which the device using the IRQ
reports itself as being attached. This hardware locality information does not
include information about any possible driver locality preference.
prof_cpu_mask specifies which CPUs are to be profiled by the system wide
profiler. Default value is ffffffff (all CPUs if there are only 32 of them).
The way IRQs are routed is handled by the IO-APIC, and it's Round Robin
between all the CPUs which are allowed to handle it. As usual the kernel has
more info than you and does a better job than you, so the defaults are the
best choice for almost everyone. [Note this applies only to those IO-APIC's
that support "Round Robin" interrupt distribution.]
There are three more important subdirectories in /proc: net, scsi, and sys.
The general rule is that the contents, or even the existence of these
directories, depend on your kernel configuration. If SCSI is not enabled, the
directory scsi may not exist. The same is true with the net, which is there
only when networking support is present in the running kernel.
Slab, buddy allocator, page type
917-982`slabinfo`는 page보다 큰 수준에서 흔한 kernel object를 관리하는 slab pool의 memory 사용량을 제공한다. network buffer나 directory cache 같은 object가 전용 pool을 갖는다.
`buddyinfo`는 node와 zone별로 order마다 사용할 수 있는 free block 수를 보여 줘 external fragmentation과 high-order allocation 실패를 진단한다. order N의 한 chunk는 `2^N * PAGE_SIZE`다.
`pagetypeinfo`는 page block order와 block당 page 수를 먼저 표시한 뒤 buddyinfo와 같은 free count를 `Unmovable`, `Reclaimable`, `Movable`, `Reserve`, `Isolate` migrate type별로 나누고, 마지막에 type별 page block 수를 보여 준다.
fragmentation 회피는 이동 가능성이 비슷한 page를 hugepage 크기 정도의 contiguous page block에 묶는다. 그러면 kernel이 한 block 안의 movable·reclaimable page를 회수해 high-order allocation을 만족시킬 수 있다.
`min_free_kbytes`가 적절하면 현재 할당 가능한 huge page 수를 추정할 수 있다. `Movable` block은 `mlock()`되지 않았다면 대체로 할당 가능하고, `Reclaimable` 일부도 filesystem metadata 회수 비용을 치르면 가능하다.
order별 free block과 migrate type 분포를 함께 본다.
The slabinfo file gives information about memory usage at the slab level.
Linux uses slab pools for memory management above page level in version 2.2.
Commonly used objects have their own slab pool (such as network buffers,
directory cache, and so on).
::
> cat /proc/buddyinfo
Node 0, zone DMA 0 4 5 4 4 3 ...
Node 0, zone Normal 1 0 0 1 101 8 ...
Node 0, zone HighMem 2 0 0 1 1 0 ...
External fragmentation is a problem under some workloads, and buddyinfo is a
useful tool for helping diagnose these problems. Buddyinfo will give you a
clue as to how big an area you can safely allocate, or why a previous
allocation failed.
Each column represents the number of pages of a certain order which are
available. In this case, there are 0 chunks of 2^0*PAGE_SIZE available in
ZONE_DMA, 4 chunks of 2^1*PAGE_SIZE in ZONE_DMA, 101 chunks of 2^4*PAGE_SIZE
available in ZONE_NORMAL, etc...
More information relevant to external fragmentation can be found in
pagetypeinfo::
> cat /proc/pagetypeinfo
Page block order: 9
Pages per block: 512
Free pages count per migrate type at order 0 1 2 3 4 5 6 7 8 9 10
Node 0, zone DMA, type Unmovable 0 0 0 1 1 1 1 1 1 1 0
Node 0, zone DMA, type Reclaimable 0 0 0 0 0 0 0 0 0 0 0
Node 0, zone DMA, type Movable 1 1 2 1 2 1 1 0 1 0 2
Node 0, zone DMA, type Reserve 0 0 0 0 0 0 0 0 0 1 0
Node 0, zone DMA, type Isolate 0 0 0 0 0 0 0 0 0 0 0
Node 0, zone DMA32, type Unmovable 103 54 77 1 1 1 11 8 7 1 9
Node 0, zone DMA32, type Reclaimable 0 0 2 1 0 0 0 0 1 0 0
Node 0, zone DMA32, type Movable 169 152 113 91 77 54 39 13 6 1 452
Node 0, zone DMA32, type Reserve 1 2 2 2 2 0 1 1 1 1 0
Node 0, zone DMA32, type Isolate 0 0 0 0 0 0 0 0 0 0 0
Number of blocks type Unmovable Reclaimable Movable Reserve Isolate
Node 0, zone DMA 2 0 5 1 0
Node 0, zone DMA32 41 6 967 2 0
Fragmentation avoidance in the kernel works by grouping pages of different
migrate types into the same contiguous regions of memory called page blocks.
A page block is typically the size of the default hugepage size, e.g. 2MB on
X86-64. By keeping pages grouped based on their ability to move, the kernel
can reclaim pages within a page block to satisfy a high-order allocation.
The pagetypinfo begins with information on the size of a page block. It
then gives the same type of information as buddyinfo except broken down
by migrate-type and finishes with details on how many page blocks of each
type exist.
If min_free_kbytes has been tuned correctly (recommendations made by hugeadm
from libhugetlbfs https://github.com/libhugetlbfs/libhugetlbfs/), one can
make an estimate of the likely number of huge pages that can be allocated
at a given point in time. All the "Movable" blocks should be allocatable
unless memory has been mlock()'d. Some of the Reclaimable blocks should
also be allocatable although a lot of filesystem metadata may have to be
reclaimed to achieve this.
`/proc/allocinfo`
983-1024`allocinfo`는 code base의 모든 allocation 위치를 source file, line number, loadable module, allocation caller function으로 식별하고 위치별 allocated byte와 call count를 보고한다. 첫 줄은 file version, 둘째 줄은 field header다.
version 2.0 이상에서는 call site 추가 정보를 `<key>:<value>` pair로 붙일 수 있다. 현재 지원 marker `accurate:no`는 tracking용 memory 할당 실패 때문에 absolute counter가 정확하지 않음을 뜻한다. 하지만 delta는 정확하므로 allocation size와 count 변화 추적에는 사용할 수 있다.
예시는 `/proc/allocinfo`의 header 뒤를 byte count 기준 역순 정렬해 `alloc_page_ext`, `alloc_slab_page`, readahead, hash, block request, folio, thread stack 등 큰 allocation site를 찾는다.
allocation 위치와 누적량 및 정확도 metadata를 한 줄에 담는다.
allocinfo
~~~~~~~~~
Provides information about memory allocations at all locations in the code
base. Each allocation in the code is identified by its source file, line
number, module (if originates from a loadable module) and the function calling
the allocation. The number of bytes allocated and number of calls at each
location are reported. The first line indicates the version of the file, the
second line is the header listing fields in the file.
If file version is 2.0 or higher then each line may contain additional
<key>:<value> pairs representing extra information about the call site.
For example if the counters are not accurate, the line will be appended with
"accurate:no" pair.
Supported markers in v2:
accurate:no
Absolute values of the counters in this line are not accurate
because of the failure to allocate memory to track some of the
allocations made at this location. Deltas in these counters are
accurate, therefore counters can be used to track allocation size
and count changes.
Example output.
::
> tail -n +3 /proc/allocinfo | sort -rn
127664128 31168 mm/page_ext.c:270 func:alloc_page_ext
56373248 4737 mm/slub.c:2259 func:alloc_slab_page
14880768 3633 mm/readahead.c:247 func:page_cache_ra_unbounded
14417920 3520 mm/mm_init.c:2530 func:alloc_large_system_hash
13377536 234 block/blk-mq.c:3421 func:blk_mq_alloc_rqs
11718656 2861 mm/filemap.c:1919 func:__filemap_get_folio
9192960 2800 kernel/fork.c:307 func:alloc_thread_stack_node
4206592 4 net/netfilter/nf_conntrack_core.c:2567 func:nf_ct_alloc_hashtable
4136960 1010 drivers/staging/ctagmod/ctagmod.c:20 [ctagmod] func:ctagmod_start
3940352 962 mm/memory.c:4214 func:alloc_anon_folio
2894464 22613 fs/kernfs/dir.c:615 func:__kernfs_new_node
...
`meminfo` 기본 memory 분포
1025-1110`/proc/meminfo`는 memory 분포와 사용량을 제공하지만 architecture와 build option에 따라 field가 다르고 일부 counter는 서로 겹친다. 겹치지 않는 counter 합도 전체 사용량과 일치하지 않을 수 있으며 workload에 따라 차이가 크다. TCP allocation처럼 subsystem 전용 정보는 `/proc/net/sockstat` 등에서 확인한다.
전체·가용·cache·swap과 active 상태의 기본 계수다.
`MemAvailable`은 `MemFree`, `SReclaimable`, file LRU 크기와 zone low watermark를 바탕으로 계산한다. system 작동에 필요한 page cache와 사용 중이라 실제로는 회수할 수 없는 slab 부분을 고려하므로 system마다 영향이 다르다.
출력에는 다음 계열의 계수가 함께 나타난다.
meminfo
~~~~~~~
Provides information about distribution and utilization of memory. This
varies by architecture and compile options. Some of the counters reported
here overlap. The memory reported by the non overlapping counters may not
add up to the overall memory usage and the difference for some workloads
can be substantial. In many cases there are other means to find out
additional memory using subsystem specific interfaces, for instance
/proc/net/sockstat for TCP memory allocations.
Example output. You may not have all of these fields.
::
> cat /proc/meminfo
MemTotal: 32858820 kB
MemFree: 21001236 kB
MemAvailable: 27214312 kB
Buffers: 581092 kB
Cached: 5587612 kB
SwapCached: 0 kB
Active: 3237152 kB
Inactive: 7586256 kB
Active(anon): 94064 kB
Inactive(anon): 4570616 kB
Active(file): 3143088 kB
Inactive(file): 3015640 kB
Unevictable: 0 kB
Mlocked: 0 kB
SwapTotal: 0 kB
SwapFree: 0 kB
Zswap: 1904 kB
Zswapped: 7792 kB
Dirty: 12 kB
Writeback: 0 kB
AnonPages: 4654780 kB
Mapped: 266244 kB
Shmem: 9976 kB
KReclaimable: 517708 kB
Slab: 660044 kB
SReclaimable: 517708 kB
SUnreclaim: 142336 kB
KernelStack: 11168 kB
PageTables: 20540 kB
SecPageTables: 0 kB
NFS_Unstable: 0 kB
Bounce: 0 kB
WritebackTmp: 0 kB
CommitLimit: 16429408 kB
Committed_AS: 7715148 kB
VmallocTotal: 34359738367 kB
VmallocUsed: 40444 kB
VmallocChunk: 0 kB
Percpu: 29312 kB
EarlyMemtestBad: 0 kB
HardwareCorrupted: 0 kB
AnonHugePages: 4149248 kB
ShmemHugePages: 0 kB
ShmemPmdMapped: 0 kB
FileHugePages: 0 kB
FilePmdMapped: 0 kB
CmaTotal: 0 kB
CmaFree: 0 kB
Unaccepted: 0 kB
Balloon: 0 kB
HugePages_Total: 0
HugePages_Free: 0
HugePages_Rsvd: 0
HugePages_Surp: 0
Hugepagesize: 2048 kB
Hugetlb: 0 kB
DirectMap4k: 401152 kB
DirectMap2M: 10008576 kB
DirectMap1G: 24117248 kB
MemTotal
Total usable RAM (i.e. physical RAM minus a few reserved
bits and the kernel binary code)
MemFree
Total free RAM. On highmem systems, the sum of LowFree+HighFree
MemAvailable
An estimate of how much memory is available for starting new
applications, without swapping. Calculated from MemFree,
SReclaimable, the size of the file LRU lists, and the low
`meminfo` 상세 field
1111-1277highmem/lowmem, swap과 disk write 상태를 설명한다.
`AnonPages`는 userspace page table에 mapping된 non-file-backed page, `Mapped`는 library 같은 mmap file, `Shmem`은 shmem·tmpfs 전체다. 큰 allocation을 정밀 추적하지 않는 구성에서는 한 page만 mapping돼도 allocation 전체를 mapped로 볼 수 있다.
회수 가능성 및 kernel metadata의 소비량이다.
`CommitLimit`은 strict overcommit mode 2에서 허용되는 총 allocation 한도다. 공식은 `([total RAM pages]-[total huge TLB pages])*overcommit_ratio/100+[total swap pages]`다. `Committed_AS`는 실제 touch 여부와 관계없이 process에 약속한 memory 합계다. strict mode에서는 이 값이 limit을 넘는 allocation을 거부해 성공한 allocation이 나중에 memory 부족으로 실패하지 않게 한다.
virtual allocator, hardware 상태와 huge-page 소비량이다.
watermarks in each zone.
The estimate takes into account that the system needs some
page cache to function well, and that not all reclaimable
slab will be reclaimable, due to items being in use. The
impact of those factors will vary from system to system.
Buffers
Relatively temporary storage for raw disk blocks
shouldn't get tremendously large (20MB or so)
Cached
In-memory cache for files read from the disk (the
pagecache) as well as tmpfs & shmem.
Doesn't include SwapCached.
SwapCached
Memory that once was swapped out, is swapped back in but
still also is in the swapfile (if memory is needed it
doesn't need to be swapped out AGAIN because it is already
in the swapfile. This saves I/O)
Active
Memory that has been used more recently and usually not
reclaimed unless absolutely necessary.
Inactive
Memory which has been less recently used. It is more
eligible to be reclaimed for other purposes
Unevictable
Memory allocated for userspace which cannot be reclaimed, such
as mlocked pages, ramfs backing pages, secret memfd pages etc.
Mlocked
Memory locked with mlock().
HighTotal, HighFree
Highmem is all memory above ~860MB of physical memory.
Highmem areas are for use by userspace programs, or
for the pagecache. The kernel must use tricks to access
this memory, making it slower to access than lowmem.
LowTotal, LowFree
Lowmem is memory which can be used for everything that
highmem can be used for, but it is also available for the
kernel's use for its own data structures. Among many
other things, it is where everything from the Slab is
allocated. Bad things happen when you're out of lowmem.
SwapTotal
total amount of swap space available
SwapFree
Memory which has been evicted from RAM, and is temporarily
on the disk
Zswap
Memory consumed by the zswap backend (compressed size)
Zswapped
Amount of anonymous memory stored in zswap (original size)
Dirty
Memory which is waiting to get written back to the disk
Writeback
Memory which is actively being written back to the disk
AnonPages
Non-file backed pages mapped into userspace page tables. Note that
some kernel configurations might consider all pages part of a
larger allocation (e.g., THP) as "mapped", as soon as a single
page is mapped.
Mapped
files which have been mmapped, such as libraries. Note that some
kernel configurations might consider all pages part of a larger
allocation (e.g., THP) as "mapped", as soon as a single page is
mapped.
Shmem
Total memory used by shared memory (shmem) and tmpfs
KReclaimable
Kernel allocations that the kernel will attempt to reclaim
under memory pressure. Includes SReclaimable (below), and other
direct allocations with a shrinker.
Slab
in-kernel data structures cache
SReclaimable
Part of Slab, that might be reclaimed, such as caches
SUnreclaim
Part of Slab, that cannot be reclaimed on memory pressure
KernelStack
Memory consumed by the kernel stacks of all tasks
PageTables
Memory consumed by userspace page tables
SecPageTables
Memory consumed by secondary page tables, this currently includes
KVM mmu and IOMMU allocations on x86 and arm64.
NFS_Unstable
Always zero. Previously counted pages which had been written to
the server, but has not been committed to stable storage.
Bounce
Always zero. Previously memory used for block device
"bounce buffers".
WritebackTmp
Always zero. Previously memory used by FUSE for temporary
writeback buffers.
CommitLimit
Based on the overcommit ratio ('vm.overcommit_ratio'),
this is the total amount of memory currently available to
be allocated on the system. This limit is only adhered to
if strict overcommit accounting is enabled (mode 2 in
'vm.overcommit_memory').
The CommitLimit is calculated with the following formula::
CommitLimit = ([total RAM pages] - [total huge TLB pages]) *
overcommit_ratio / 100 + [total swap pages]
For example, on a system with 1G of physical RAM and 7G
of swap with a `vm.overcommit_ratio` of 30 it would
yield a CommitLimit of 7.3G.
For more details, see the memory overcommit documentation
in mm/overcommit-accounting.
Committed_AS
The amount of memory presently allocated on the system.
The committed memory is a sum of all of the memory which
has been allocated by processes, even if it has not been
"used" by them as of yet. A process which malloc()'s 1G
of memory, but only touches 300M of it will show up as
using 1G. This 1G is memory which has been "committed" to
by the VM and can be used at any time by the allocating
application. With strict overcommit enabled on the system
(mode 2 in 'vm.overcommit_memory'), allocations which would
exceed the CommitLimit (detailed above) will not be permitted.
This is useful if one needs to guarantee that processes will
not fail due to lack of memory once that memory has been
successfully allocated.
VmallocTotal
total size of vmalloc virtual address space
VmallocUsed
amount of vmalloc area which is used
VmallocChunk
largest contiguous block of vmalloc area which is free
Percpu
Memory allocated to the percpu allocator used to back percpu
allocations. This stat excludes the cost of metadata.
EarlyMemtestBad
The amount of RAM/memory in kB, that was identified as corrupted
by early memtest. If memtest was not run, this field will not
be displayed at all. Size is never rounded down to 0 kB.
That means if 0 kB is reported, you can safely assume
there was at least one pass of memtest and none of the passes
found a single faulty byte of RAM.
HardwareCorrupted
The amount of RAM/memory in KB, the kernel identifies as
corrupted.
AnonHugePages
Non-file backed huge pages mapped into userspace page tables
ShmemHugePages
Memory used by shared memory (shmem) and tmpfs allocated
with huge pages
ShmemPmdMapped
Shared memory mapped into userspace with huge pages
FileHugePages
Memory used for filesystem data (page cache) allocated
with huge pages
FilePmdMapped
Page cache mapped into userspace with huge pages
CmaTotal
Memory reserved for the Contiguous Memory Allocator (CMA)
CmaFree
Free remaining memory in the CMA reserves
Unaccepted
Memory that has not been accepted by the guest
Balloon
Memory returned to Host by VM Balloon Drivers
HugePages_Total, HugePages_Free, HugePages_Rsvd, HugePages_Surp, Hugepagesize, Hugetlb
See Documentation/admin-guide/mm/hugetlbpage.rst.
DirectMap4k, DirectMap2M, DirectMap1G
Breakdown of page table sizes used in the kernel's
identity mapping of RAM
`vmallocinfo`와 `softirqs`
1278-1344`/proc/vmallocinfo`는 vmalloc/vmap area마다 virtual address 범위, byte 크기, 생성 caller와 area 종류별 option을 한 줄에 표시한다.
area backing과 allocation locality를 표시한다.
예시는 system hash, ACPI table, vDSO, cramfs, swapon, netfilter table과 module area의 range·size·caller·page·NUMA 분포를 보여 준다.
`/proc/softirqs`는 boot 이후 CPU별 softirq handler 처리 횟수를 `HI`, `TIMER`, `NET_TX`, `NET_RX`, `BLOCK`, `TASKLET`, `SCHED`, `HRTIMER`, `RCU` 종류별로 표시한다.
softirq 종류 하나에 각 online CPU의 누적 처리 횟수가 이어진다.
vmallocinfo
~~~~~~~~~~~
Provides information about vmalloced/vmaped areas. One line per area,
containing the virtual address range of the area, size in bytes,
caller information of the creator, and optional information depending
on the kind of area:
========== ===================================================
pages=nr number of pages
phys=addr if a physical address was specified
ioremap I/O mapping (ioremap() and friends)
vmalloc vmalloc() area
vmap vmap()ed pages
user VM_USERMAP area
vpages buffer for pages pointers was vmalloced (huge area)
N<node>=nr (Only on NUMA kernels)
Number of pages allocated on memory node <node>
========== ===================================================
::
> cat /proc/vmallocinfo
0xffffc20000000000-0xffffc20000201000 2101248 alloc_large_system_hash+0x204 ...
/0x2c0 pages=512 vmalloc N0=128 N1=128 N2=128 N3=128
0xffffc20000201000-0xffffc20000302000 1052672 alloc_large_system_hash+0x204 ...
/0x2c0 pages=256 vmalloc N0=64 N1=64 N2=64 N3=64
0xffffc20000302000-0xffffc20000304000 8192 acpi_tb_verify_table+0x21/0x4f...
phys=7fee8000 ioremap
0xffffc20000304000-0xffffc20000307000 12288 acpi_tb_verify_table+0x21/0x4f...
phys=7fee7000 ioremap
0xffffc2000031d000-0xffffc2000031f000 8192 init_vdso_vars+0x112/0x210
0xffffc2000031f000-0xffffc2000032b000 49152 cramfs_uncompress_init+0x2e ...
/0x80 pages=11 vmalloc N0=3 N1=3 N2=2 N3=3
0xffffc2000033a000-0xffffc2000033d000 12288 sys_swapon+0x640/0xac0 ...
pages=2 vmalloc N1=2
0xffffc20000347000-0xffffc2000034c000 20480 xt_alloc_table_info+0xfe ...
/0x130 [x_tables] pages=4 vmalloc N0=4
0xffffffffa0000000-0xffffffffa000f000 61440 sys_init_module+0xc27/0x1d00 ...
pages=14 vmalloc N2=14
0xffffffffa000f000-0xffffffffa0014000 20480 sys_init_module+0xc27/0x1d00 ...
pages=4 vmalloc N1=4
0xffffffffa0014000-0xffffffffa0017000 12288 sys_init_module+0xc27/0x1d00 ...
pages=2 vmalloc N1=2
0xffffffffa0017000-0xffffffffa0022000 45056 sys_init_module+0xc27/0x1d00 ...
pages=10 vmalloc N0=10
softirqs
~~~~~~~~
Provides counts of softirq handlers serviced since boot time, for each CPU.
::
> cat /proc/softirqs
CPU0 CPU1 CPU2 CPU3
HI: 0 0 0 0
TIMER: 27166 27120 27097 27034
NET_TX: 0 0 0 17
NET_RX: 42 0 0 39
BLOCK: 0 0 107 1121
TASKLET: 0 0 0 290
SCHED: 27035 26983 26971 26746
HRTIMER: 0 0 0 0
RCU: 1678 1769 2178 2250
`/proc/net` networking 정보
1345-1424IPv6 지원 kernel은 `/proc/net`에 `udp6`, `tcp6`, `raw6`, `igmp6`, `if_inet6`, `ipv6_route`, `rt6_stats`, `sockstat6`, `snmp6`를 제공해 socket, multicast membership, interface address, route와 SNMP 통계를 표시한다.
network protocol과 device·routing·socket 관찰 entry다.
`/proc/net/dev`는 interface별 receive와 transmit byte·packet·error·drop·FIFO·frame·compression·multicast·collision·carrier 통계를 보여 준다.
bonding interface는 `/proc/net/bond0/` 같은 자체 directory를 가지며 현재 slave, 각 slave link 상태와 link failure 횟수 등 bond별 정보를 제공한다.
한 interface 줄이 receive와 transmit 두 묶음으로 나뉜다.
1.3 Networking info in /proc/net
--------------------------------
The subdirectory /proc/net follows the usual pattern. Table 1-8 shows the
additional values you get for IP version 6 if you configure the kernel to
support this. Table 1-9 lists the files and their meaning.
.. table:: Table 1-8: IPv6 info in /proc/net
========== =====================================================
File Content
========== =====================================================
udp6 UDP sockets (IPv6)
tcp6 TCP sockets (IPv6)
raw6 Raw device statistics (IPv6)
igmp6 IP multicast addresses, which this host joined (IPv6)
if_inet6 List of IPv6 interface addresses
ipv6_route Kernel routing table for IPv6
rt6_stats Global IPv6 routing tables statistics
sockstat6 Socket statistics (IPv6)
snmp6 Snmp data (IPv6)
========== =====================================================
.. table:: Table 1-9: Network info in /proc/net
============= ================================================================
File Content
============= ================================================================
arp Kernel ARP table
dev network devices with statistics
dev_mcast the Layer2 multicast groups a device is listening too
(interface index, label, number of references, number of bound
addresses).
dev_stat network device status
ip_fwchains Firewall chain linkage
ip_fwnames Firewall chain names
ip_masq Directory containing the masquerading tables
ip_masquerade Major masquerading table
netstat Network statistics
raw raw device statistics
route Kernel routing table
rpc Directory containing rpc info
rt_cache Routing cache
snmp SNMP data
sockstat Socket statistics
softnet_stat Per-CPU incoming packets queues statistics of online CPUs
tcp TCP sockets
udp UDP sockets
unix UNIX domain sockets
wireless Wireless interface data (Wavelan etc)
igmp IP multicast addresses, which this host joined
psched Global packet scheduler parameters.
netlink List of PF_NETLINK sockets
ip_mr_vifs List of multicast virtual interfaces
ip_mr_cache List of multicast routing cache
============= ================================================================
You can use this information to see which network devices are available in
your system and how much traffic was routed over those devices::
> cat /proc/net/dev
Inter-|Receive |[...
face |bytes packets errs drop fifo frame compressed multicast|[...
lo: 908188 5596 0 0 0 0 0 0 [...
ppp0:15475140 20721 410 0 0 410 0 0 [...
eth0: 614530 7085 0 0 0 0 0 1 [...
...] Transmit
...] bytes packets errs drop fifo colls carrier compressed
...] 908188 5596 0 0 0 0 0 0
...] 1375103 17405 0 0 0 0 0 0
...] 1703981 5535 0 0 0 3 0 0
In addition, each Channel Bond interface has its own directory. For
example, the bond0 device will have a directory called /proc/net/bond0/.
It will contain information that is specific to that bond, such as the
current slaves of the bond, the link status of the slaves, and how
many times the slaves link has failed.
SCSI adapter와 device 정보
1425-1487SCSI 또는 ATA host adapter가 있으면 `/proc/scsi`에 adapter driver 이름의 subdirectory가 생기고 `/proc/scsi/scsi`는 인식된 device를 나열한다. 각 record는 host, channel, ID, LUN, vendor, model, revision, type과 ANSI SCSI revision을 제공한다.
driver directory에는 발견한 adapter마다 file이 하나씩 있다. controller 종류, IRQ, I/O address range와 driver별 상세 정보를 표시하므로 내용량은 adapter에 따라 다르다.
AIC7xxx 예시는 driver version과 compile option, adapter·BIOS·SEEPROM configuration, PCI MMIO base, IRQ, SCB 상태, interrupt count, transfer·queue flag 및 device별 queue depth를 보여 준다.
device별 statistics는 wide/narrow, synchronous transfer speed와 offset, current·goal·user transfer setting, total read/write transfer 횟수를 제공한다.
공통 device 목록과 driver별 adapter detail을 분리한다.
1.4 SCSI info
-------------
If you have a SCSI or ATA host adapter in your system, you'll find a
subdirectory named after the driver for this adapter in /proc/scsi.
You'll also see a list of all recognized SCSI devices in /proc/scsi::
>cat /proc/scsi/scsi
Attached devices:
Host: scsi0 Channel: 00 Id: 00 Lun: 00
Vendor: IBM Model: DGHS09U Rev: 03E0
Type: Direct-Access ANSI SCSI revision: 03
Host: scsi0 Channel: 00 Id: 06 Lun: 00
Vendor: PIONEER Model: CD-ROM DR-U06S Rev: 1.04
Type: CD-ROM ANSI SCSI revision: 02
The directory named after the driver has one file for each adapter found in
the system. These files contain information about the controller, including
the used IRQ and the IO address range. The amount of information shown is
dependent on the adapter you use. The example shows the output for an Adaptec
AHA-2940 SCSI adapter::
> cat /proc/scsi/aic7xxx/0
Adaptec AIC7xxx driver version: 5.1.19/3.2.4
Compile Options:
TCQ Enabled By Default : Disabled
AIC7XXX_PROC_STATS : Disabled
AIC7XXX_RESET_DELAY : 5
Adapter Configuration:
SCSI Adapter: Adaptec AHA-294X Ultra SCSI host adapter
Ultra Wide Controller
PCI MMAPed I/O Base: 0xeb001000
Adapter SEEPROM Config: SEEPROM found and used.
Adaptec SCSI BIOS: Enabled
IRQ: 10
SCBs: Active 0, Max Active 2,
Allocated 15, HW 16, Page 255
Interrupts: 160328
BIOS Control Word: 0x18b6
Adapter Control Word: 0x005b
Extended Translation: Enabled
Disconnect Enable Flags: 0xffff
Ultra Enable Flags: 0x0001
Tag Queue Enable Flags: 0x0000
Ordered Queue Tag Flags: 0x0000
Default Tag Queue Depth: 8
Tagged Queue By Device array for aic7xxx host instance 0:
{255,255,255,255,255,255,255,255,255,255,255,255,255,255,255,255}
Actual queue depth per device for aic7xxx host instance 0:
{1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}
Statistics:
(scsi0:0:0:0)
Device using Wide/Sync transfers at 40.0 MByte/sec, offset 8
Transinfo settings: current(12/8/1/0), goal(12/8/1/0), user(12/15/1/0)
Total transfers 160151 (74577 reads and 85574 writes)
(scsi0:0:6:0)
Device using Narrow/Sync transfers at 5.0 MByte/sec, offset 15
Transinfo settings: current(50/15/0/0), goal(50/15/0/0), user(50/15/0/0)
Total transfers 0 (0 reads and 0 writes)
Parallel port와 TTY
1488-1547`/proc/parport`는 parallel port 번호마다 subdirectory를 만든다. `autoprobe`는 획득한 IEEE-1284 device ID, `devices`는 port를 사용하는 driver 목록과 현재 사용자 `+`, `hardware`는 base address·IRQ·DMA, `irq`는 현재 IRQ를 보여 주며 새 IRQ 번호나 `none`을 써서 변경할 수 있다.
`/proc/tty`는 사용 가능하고 실제 사용 중인 TTY, driver와 line discipline 정보를 제공한다.
driver 등록과 line 사용 상태를 구분한다.
`/proc/tty/drivers`의 각 줄은 driver 이름, `/dev` prefix, major, minor range와 `pty:slave`, `pty:master`, `serial`, `system:console` 같은 type을 표시한다.
port별 probe, owner, hardware와 IRQ 설정이다.
1.5 Parallel port info in /proc/parport
---------------------------------------
The directory /proc/parport contains information about the parallel ports of
your system. It has one subdirectory for each port, named after the port
number (0,1,2,...).
These directories contain the four files shown in Table 1-10.
.. table:: Table 1-10: Files in /proc/parport
========= ====================================================================
File Content
========= ====================================================================
autoprobe Any IEEE-1284 device ID information that has been acquired.
devices list of the device drivers using that port. A + will appear by the
name of the device currently using the port (it might not appear
against any).
hardware Parallel port's base address, IRQ line and DMA channel.
irq IRQ that parport is using for that port. This is in a separate
file to allow you to alter it by writing a new value in (IRQ
number or none).
========= ====================================================================
1.6 TTY info in /proc/tty
-------------------------
Information about the available and actually used tty's can be found in the
directory /proc/tty. You'll find entries for drivers and line disciplines in
this directory, as shown in Table 1-11.
.. table:: Table 1-11: Files in /proc/tty
============= ==============================================
File Content
============= ==============================================
drivers list of drivers and their usage
ldiscs registered line disciplines
driver/serial usage statistic and status of single tty lines
============= ==============================================
To see which tty's are currently in use, you can simply look into the file
/proc/tty/drivers::
> cat /proc/tty/drivers
pty_slave /dev/pts 136 0-255 pty:slave
pty_master /dev/ptm 128 0-255 pty:master
pty_slave /dev/ttyp 3 0-255 pty:slave
pty_master /dev/pty 2 0-255 pty:master
serial /dev/cua 5 64-67 serial:callout
serial /dev/ttyS 4 64-67 serial
/dev/tty0 /dev/tty0 4 0 system:vtmaster
/dev/ptmx /dev/ptmx 5 2 system
/dev/console /dev/console 5 1 system:console
/dev/tty /dev/tty 5 0 system:/dev/tty
unknown /dev/tty 4 1-63 console
`/proc/stat` 누적 kernel 통계
1548-1622`/proc/stat`의 모든 값은 boot 이후 누적치다. 첫 `cpu` 행은 뒤의 모든 `cpuN`을 합산하며 시간 단위는 `USER_HZ`, 보통 1/100초다.
왼쪽에서 오른쪽 순서의 CPU work category다.
`iowait`는 신뢰할 수 있는 per-CPU 척도가 아니다. CPU 자체가 I/O를 기다리는 것이 아니고 다른 task를 실행할 수 있으며, multicore에서 대기 task는 특정 CPU에 있지 않고, 특정 조건에서는 `/proc/stat` 값이 감소할 수도 있다.
`intr`의 첫 값은 번호 없는 architecture-specific interrupt를 포함한 전체 처리 횟수이며 뒤는 번호별 count다. `ctxt`는 모든 CPU의 context switch, `btime`은 Unix epoch 기준 boot 시각, `processes`는 `fork()`·`clone()` 등을 포함해 생성된 process와 thread 수다.
`procs_running`은 실행 중이거나 실행 준비된 runnable thread 수, `procs_blocked`는 I/O 완료를 기다리며 block된 process 수다. `softirq`의 첫 값은 전체 softirq count이고 뒤는 종류별 count다.
CPU time과 event counter는 모두 boot 이후 누적값이다.
1.7 Miscellaneous kernel statistics in /proc/stat
-------------------------------------------------
Various pieces of information about kernel activity are available in the
/proc/stat file. All of the numbers reported in this file are aggregates
since the system first booted. For a quick look, simply cat the file::
> cat /proc/stat
cpu 237902850 368826709 106375398 1873517540 1135548 0 14507935 0 0 0
cpu0 60045249 91891769 26331539 468411416 495718 0 5739640 0 0 0
cpu1 59746288 91759249 26609887 468860630 312281 0 4384817 0 0 0
cpu2 59489247 92985423 26904446 467808813 171668 0 2268998 0 0 0
cpu3 58622065 92190267 26529524 468436680 155879 0 2114478 0 0 0
intr 8688370575 8 3373 0 0 0 0 0 0 1 40791 0 0 353317 0 0 0 0 224789828 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 190974333 41958554 123983334 43 0 224593 0 0 0 <more 0's deleted>
ctxt 22848221062
btime 1605316999
processes 746787147
procs_running 2
procs_blocked 0
softirq 12121874454 100099120 3938138295 127375644 2795979 187870761 0 173808342 3072582055 52608 224184354
The very first "cpu" line aggregates the numbers in all of the other "cpuN"
lines. These numbers identify the amount of time the CPU has spent performing
different kinds of work. Time units are in USER_HZ (typically hundredths of a
second). The meanings of the columns are as follows, from left to right:
- user: normal processes executing in user mode
- nice: niced processes executing in user mode
- system: processes executing in kernel mode
- idle: twiddling thumbs
- iowait: In a word, iowait stands for waiting for I/O to complete. But there
are several problems:
1. CPU will not wait for I/O to complete, iowait is the time that a task is
waiting for I/O to complete. When CPU goes into idle state for
outstanding task I/O, another task will be scheduled on this CPU.
2. In a multi-core CPU, the task waiting for I/O to complete is not running
on any CPU, so the iowait of each CPU is difficult to calculate.
3. The value of iowait field in /proc/stat will decrease in certain
conditions.
So, the iowait is not reliable by reading from /proc/stat.
- irq: servicing interrupts
- softirq: servicing softirqs
- steal: involuntary wait
- guest: running a normal guest
- guest_nice: running a niced guest
The "intr" line gives counts of interrupts serviced since boot time, for each
of the possible system interrupts. The first column is the total of all
interrupts serviced including unnumbered architecture specific interrupts;
each subsequent column is the total for that particular numbered interrupt.
Unnumbered interrupts are not shown, only summed into the total.
The "ctxt" line gives the total number of context switches across all CPUs.
The "btime" line gives the time at which the system booted, in seconds since
the Unix epoch.
The "processes" line gives the number of processes and threads created, which
includes (but is not limited to) those created by calls to the fork() and
clone() system calls.
The "procs_running" line gives the total number of threads that are
running or ready to run (i.e., the total number of runnable threads).
The "procs_blocked" line gives the number of processes currently blocked,
waiting for I/O to complete.
The "softirq" line gives counts of softirqs serviced since boot time, for each
of the possible system softirqs. The first column is the total of all
softirqs serviced; each subsequent column is the total for that particular
softirq.
Ext4, system console, 1장 요약
1623-1679mount된 ext4 filesystem은 device 이름을 딴 `/proc/fs/ext4/<devname>` directory를 가진다. `mb_groups`는 free block의 multiblock allocator buddy cache detail을 보여 준다.
`/proc/consoles`는 등록된 system console line을 표시한다. 각 줄은 device 이름, operation capability, flag와 `major:minor`를 제공한다.
operation 문자와 console 역할 flag를 구분한다.
1장의 결론은 procfs가 실행 중인 system의 process data와 kernel status를 hierarchy로 제공하며 정보 종류에 따라 directory가 구성돼 원하는 위치를 찾기 쉽게 한다는 것이다.
device identity와 사용할 수 있는 operation 및 역할을 한 줄에 합친다.
1.8 Ext4 file system parameters
-------------------------------
Information about mounted ext4 file systems can be found in
/proc/fs/ext4. Each mounted filesystem will have a directory in
/proc/fs/ext4 based on its device name (i.e., /proc/fs/ext4/hdc or
/proc/fs/ext4/sda9 or /proc/fs/ext4/dm-0). The files in each per-device
directory are shown in Table 1-12, below.
.. table:: Table 1-12: Files in /proc/fs/ext4/<devname>
============== ==========================================================
File Content
mb_groups details of multiblock allocator buddy cache of free blocks
============== ==========================================================
1.9 /proc/consoles
-------------------
Shows registered system console lines.
To see which character device lines are currently used for the system console
/dev/console, you may simply look into the file /proc/consoles::
> cat /proc/consoles
tty0 -WU (ECp) 4:7
ttyS0 -W- (Ep) 4:64
The columns are:
+--------------------+-------------------------------------------------------+
| device | name of the device |
+====================+=======================================================+
| operations | * R = can do read operations |
| | * W = can do write operations |
| | * U = can do unblank |
+--------------------+-------------------------------------------------------+
| flags | * E = it is enabled |
| | * C = it is preferred console |
| | * B = it is primary boot console |
| | * p = it is used for printk buffer |
| | * b = it is not a TTY but a Braille device |
| | * a = it is safe to use when cpu is offline |
+--------------------+-------------------------------------------------------+
| major:minor | major and minor number of the device separated by a |
| | colon |
+--------------------+-------------------------------------------------------+
Summary
-------
The /proc file system serves information about the running system. It not only
allows access to process data but also allows you to request the kernel status
by reading files in the hierarchy.
The directory structure of /proc reflects the types of information and makes
it easy, if not obvious, where to look for specific data.
`/proc/sys` runtime parameter
1680-1726`/proc/sys`는 정보를 읽을 뿐 아니라 kernel parameter를 runtime에 바꿀 수 있는 tree다. 잘 조정하면 system을 최적화할 수 있지만 crash도 일으킬 수 있으므로 production system에서 시험하지 말고 development machine에서 충분히 검증해야 한다.
값은 root 권한으로 새 값을 file에 `echo`해 바꾼다. boot 때 반복하려면 자체 boot script를 만들 수 있다.
일부 file은 system을 쉽게 교란하므로 조정 전에 documentation과 source를 모두 읽어야 한다. 오래된 kernel 계열 사이에는 entry 차이가 있을 수 있으며 현재 설명은 `Documentation/admin-guide/sysctl/`을 참고한다.
요약하면 kernel을 다시 compile하거나 reboot하지 않고도 특정 동작을 바꿀 수 있지만, `/proc/sys` write는 kernel default를 즉시 변경하므로 신중해야 한다.
runtime write 전에 의미와 복구 경로를 검증한다.
Chapter 2: Modifying System Parameters
======================================
In This Chapter
---------------
* Modifying kernel parameters by writing into files found in /proc/sys
* Exploring the files which modify certain parameters
* Review of the /proc/sys file tree
------------------------------------------------------------------------------
A very interesting part of /proc is the directory /proc/sys. This is not only
a source of information, it also allows you to change parameters within the
kernel. Be very careful when attempting this. You can optimize your system,
but you can also cause it to crash. Never alter kernel parameters on a
production system. Set up a development machine and test to make sure that
everything works the way you want it to. You may have no alternative but to
reboot the machine once an error has been made.
To change a value, simply echo the new value into the file.
You need to be root to do this. You can create your own boot script
to perform this every time your system boots.
The files in /proc/sys can be used to fine tune and monitor miscellaneous and
general things in the operation of the Linux kernel. Since some of the files
can inadvertently disrupt your system, it is advisable to read both
documentation and source before actually making adjustments. In any case, be
very careful when writing to any of these files. The entries in /proc may
change slightly between the 2.1.* and the 2.2 kernel, so if there is any doubt
review the kernel documentation in the directory linux/Documentation.
This chapter is heavily based on the documentation included in the pre 2.2
kernels, and became part of it in version 2.2.1 of the Linux kernel.
Please see: Documentation/admin-guide/sysctl/ directory for descriptions of
these entries.
Summary
-------
Certain aspects of kernel behavior can be modified at runtime, without the
need to recompile the kernel, or even to reboot the system. The files in the
/proc/sys tree can not only be read, but also modified. You can use the echo
command to write value into these files, thereby changing the default settings
of the kernel.
OOM killer score 조정과 조회
1727-1789`oom_adj`와 `oom_score_adj`는 out-of-memory 상황에서 죽일 process를 고르는 badness heuristic을 조정한다. 기본 score는 0(죽이지 않음)부터 1000(항상 선택)까지며 process의 현재 memory·swap 사용량이 허용 memory에서 차지하는 비율을 대략 나타낸다.
허용 memory는 OOM 문맥에 따라 cpuset의 mem node, mempolicy node, memory·swap controller limit 또는 system 전체 allocatable resource다.
`oom_score_adj`의 -1000부터 +1000 값을 기본 badness에 더한다. -1000은 해당 task의 OOM kill을 사실상 끄고, +500은 같은 resource를 공유하는 다른 task에 최소 50% 더 많은 memory를 허용한 것과 비슷하며 -500은 task 사용량의 약 50%를 score에서 할인한다.
호환용 `oom_adj` 범위는 -16부터 +15이며 -17은 OOM kill disable이다. 값은 `oom_score_adj`와 선형 변환된다. `CAP_SYS_RESOURCE` process가 마지막으로 설정한 값보다 더 낮추려면 다시 `CAP_SYS_RESOURCE`가 필요하다.
`oom_score`는 현재 OOM killer score를 보여 주며 `oom_score_adj`가 포함돼 export 범위는 실질적으로 0부터 2000이다.
기본 사용량 score와 userspace adjustment를 결합한다.
Chapter 3: Per-process Parameters
=================================
3.1 /proc/<pid>/oom_adj & /proc/<pid>/oom_score_adj- Adjust the oom-killer score
--------------------------------------------------------------------------------
These files can be used to adjust the badness heuristic used to select which
process gets killed in out of memory (oom) conditions.
The badness heuristic assigns a value to each candidate task ranging from 0
(never kill) to 1000 (always kill) to determine which process is targeted. The
units are roughly a proportion along that range of allowed memory the process
may allocate from based on an estimation of its current memory and swap use.
For example, if a task is using all allowed memory, its badness score will be
1000. If it is using half of its allowed memory, its score will be 500.
The amount of "allowed" memory depends on the context in which the oom killer
was called. If it is due to the memory assigned to the allocating task's cpuset
being exhausted, the allowed memory represents the set of mems assigned to that
cpuset. If it is due to a mempolicy's node(s) being exhausted, the allowed
memory represents the set of mempolicy nodes. If it is due to a memory
limit (or swap limit) being reached, the allowed memory is that configured
limit. Finally, if it is due to the entire system being out of memory, the
allowed memory represents all allocatable resources.
The value of /proc/<pid>/oom_score_adj is added to the badness score before it
is used to determine which task to kill. Acceptable values range from -1000
(OOM_SCORE_ADJ_MIN) to +1000 (OOM_SCORE_ADJ_MAX). This allows userspace to
polarize the preference for oom killing either by always preferring a certain
task or completely disabling it. The lowest possible value, -1000, is
equivalent to disabling oom killing entirely for that task since it will always
report a badness score of 0.
Consequently, it is very simple for userspace to define the amount of memory to
consider for each task. Setting a /proc/<pid>/oom_score_adj value of +500, for
example, is roughly equivalent to allowing the remainder of tasks sharing the
same system, cpuset, mempolicy, or memory controller resources to use at least
50% more memory. A value of -500, on the other hand, would be roughly
equivalent to discounting 50% of the task's allowed memory from being considered
as scoring against the task.
For backwards compatibility with previous kernels, /proc/<pid>/oom_adj may also
be used to tune the badness score. Its acceptable values range from -16
(OOM_ADJUST_MIN) to +15 (OOM_ADJUST_MAX) and a special value of -17
(OOM_DISABLE) to disable oom killing entirely for that task. Its value is
scaled linearly with /proc/<pid>/oom_score_adj.
The value of /proc/<pid>/oom_score_adj may be reduced no lower than the last
value set by a CAP_SYS_RESOURCE process. To reduce the value any lower
requires CAP_SYS_RESOURCE.
3.2 /proc/<pid>/oom_score - Display current oom-killer score
-------------------------------------------------------------
This file can be used to check the current score used by the oom-killer for
any given <pid>. Use it together with /proc/<pid>/oom_score_adj to tune which
process should be killed in an out-of-memory situation.
Please note that the exported value includes oom_score_adj so it is
effectively in range [0,2000].
`/proc/<pid>/io` accounting
1790-1892`/proc/<pid>/io`는 process별 I/O 통계를 제공한다.
system call byte와 실제 storage-layer byte를 구분한다.
`rchar`는 physical disk I/O가 실제로 필요했는지와 무관하다. `read_bytes`는 block-backed filesystem에서 실제 storage fetch를 더 정확히 반영한다. `write_bytes`는 page dirty 시점 계수이므로 writeout 전에도 증가한다.
truncate가 큰 부정확성 원인이다. 1MB를 쓴 뒤 file을 삭제하면 실제 writeout은 없지만 `write_bytes`에는 1MB가 기록된다. `cancelled_write_bytes`는 이처럼 자기 또는 다른 task에 account된 write를 dirty pagecache truncation으로 취소한 양을 별도 보존한다.
32-bit machine에서는 다른 process가 갱신 중인 64-bit counter를 읽어 중간값을 볼 수 있는 race가 있다. 추가 내용은 `Documentation/accounting`의 taskstats 문서를 따른다.
write 요청과 실제 storage write가 분리돼 취소량을 별도로 기록한다.
3.3 /proc/<pid>/io - Display the IO accounting fields
-------------------------------------------------------
This file contains IO statistics for each running process.
Example
~~~~~~~
::
test:/tmp # dd if=/dev/zero of=/tmp/test.dat &
[1] 3828
test:/tmp # cat /proc/3828/io
rchar: 323934931
wchar: 323929600
syscr: 632687
syscw: 632675
read_bytes: 0
write_bytes: 323932160
cancelled_write_bytes: 0
Description
~~~~~~~~~~~
rchar
^^^^^
I/O counter: chars read
The number of bytes which this task has caused to be read from storage. This
is simply the sum of bytes which this process passed to read() and pread().
It includes things like tty IO and it is unaffected by whether or not actual
physical disk IO was required (the read might have been satisfied from
pagecache).
wchar
^^^^^
I/O counter: chars written
The number of bytes which this task has caused, or shall cause to be written
to disk. Similar caveats apply here as with rchar.
syscr
^^^^^
I/O counter: read syscalls
Attempt to count the number of read I/O operations, i.e. syscalls like read()
and pread().
syscw
^^^^^
I/O counter: write syscalls
Attempt to count the number of write I/O operations, i.e. syscalls like
write() and pwrite().
read_bytes
^^^^^^^^^^
I/O counter: bytes read
Attempt to count the number of bytes which this process really did cause to
be fetched from the storage layer. Done at the submit_bio() level, so it is
accurate for block-backed filesystems. <please add status regarding NFS and
CIFS at a later time>
write_bytes
^^^^^^^^^^^
I/O counter: bytes written
Attempt to count the number of bytes which this process caused to be sent to
the storage layer. This is done at page-dirtying time.
cancelled_write_bytes
^^^^^^^^^^^^^^^^^^^^^
The big inaccuracy here is truncate. If a process writes 1MB to a file and
then deletes the file, it will in fact perform no writeout. But it will have
been accounted as having caused 1MB of write.
In other words: The number of bytes which this process caused to not happen,
by truncating pagecache. A task can cause "negative" IO too. If this task
truncates some dirty pagecache, some IO which another task has been accounted
for (in its write_bytes) will not be happening. We _could_ just subtract that
from the truncating task's write_bytes, but there is information loss in doing
that.
.. Note::
At its current implementation state, this is a bit racy on 32-bit machines:
if process A reads process B's /proc/pid/io while process B is updating one
of those 64-bit counters, process A could see an intermediate result.
More information about this can be found within the taskstats documentation in
Documentation/accounting.
`coredump_filter` bitmask
1893-1939일반적으로 core dump는 size limit 안에서 anonymous memory를 기록하지만 huge shared memory나 DAX를 빼거나 반대로 file-backed segment도 포함하고 싶을 수 있다. `/proc/<pid>/coredump_filter` bitmask가 dump할 memory type을 선택한다.
set된 bit에 해당하는 segment만 core에 기록한다.
framebuffer 같은 MMIO page는 절대 dump하지 않고 vDSO page는 mask와 관계없이 항상 dump한다. bit 0~4는 hugetlb나 DAX에 영향을 주지 않으며 각각 bit 5~6, 7~8만 적용된다.
기본값 `0x33`은 모든 anonymous segment, ELF header page, private hugetlb memory를 포함한다. 예를 들어 PID 1234의 shared segment를 빼려면 `0x31`을 쓴다.
새 process는 parent bitmask를 상속하므로 program 실행 전에 `/proc/self/coredump_filter`를 설정할 수 있다.
parent가 정한 mask를 child가 이어받아 dump 정책을 적용한다.
3.4 /proc/<pid>/coredump_filter - Core dump filtering settings
---------------------------------------------------------------
When a process is dumped, all anonymous memory is written to a core file as
long as the size of the core file isn't limited. But sometimes we don't want
to dump some memory segments, for example, huge shared memory or DAX.
Conversely, sometimes we want to save file-backed memory segments into a core
file, not only the individual files.
/proc/<pid>/coredump_filter allows you to customize which memory segments
will be dumped when the <pid> process is dumped. coredump_filter is a bitmask
of memory types. If a bit of the bitmask is set, memory segments of the
corresponding memory type are dumped, otherwise they are not dumped.
The following 9 memory types are supported:
- (bit 0) anonymous private memory
- (bit 1) anonymous shared memory
- (bit 2) file-backed private memory
- (bit 3) file-backed shared memory
- (bit 4) ELF header pages in file-backed private memory areas (it is
effective only if the bit 2 is cleared)
- (bit 5) hugetlb private memory
- (bit 6) hugetlb shared memory
- (bit 7) DAX private memory
- (bit 8) DAX shared memory
Note that MMIO pages such as frame buffer are never dumped and vDSO pages
are always dumped regardless of the bitmask status.
Note that bits 0-4 don't affect hugetlb or DAX memory. hugetlb memory is
only affected by bit 5-6, and DAX is only affected by bits 7-8.
The default value of coredump_filter is 0x33; this means all anonymous memory
segments, ELF header pages and hugetlb private memory are dumped.
If you don't want to dump all shared memory segments attached to pid 1234,
write 0x31 to the process's proc file::
$ echo 0x31 > /proc/1234/coredump_filter
When a new process is created, the process inherits the bitmask status from its
parent. It is useful to set up coredump_filter before the program runs.
For example::
$ echo 0x7 > /proc/self/coredump_filter
$ ./some_program
`mountinfo`, `comm`, child PID
1940-2005separator `-` 앞은 mount instance, 뒤는 filesystem·superblock 정보다.
parser는 모르는 optional field를 무시해야 한다. 현재 `shared:X`는 peer group X의 shared mount, `master:X`는 X의 slave, `propagate_from:X`는 process root 아래 가장 가까운 dominant peer에서 propagation을 받는 slave, `unbindable`은 bind 불가 mount다. immediate master이거나 같은 root 아래 dominant group이 없으면 `master:X`만 나타난다.
`/proc/<pid>/comm`과 task별 `comm`은 task의 짧은 command name을 읽고 자기 또는 sibling thread의 값을 설정한다. `TASK_COMM_LEN`은 NUL 포함 현재 16자로 더 긴 write는 truncate된다.
`children`은 `<pid>/<tid>` task의 1단계 child PID를 space-separated stream으로 빠르게 제공한다. descendant 전체는 child의 file을 재귀적으로 읽어야 한다. 빠르고 저렴한 interface라 종료 경쟁으로 child를 놓칠 수 있으므로 정확한 결과에는 대상 process를 stop 또는 freeze해야 한다.
각 task file은 직계 child만 반환한다.
3.5 /proc/<pid>/mountinfo - Information about mounts
--------------------------------------------------------
This file contains lines of the form::
36 35 98:0 /mnt1 /mnt2 rw,noatime master:1 - ext3 /dev/root rw,errors=continue
(1)(2)(3) (4) (5) (6) (n…m) (m+1)(m+2) (m+3) (m+4)
(1) mount ID: unique identifier of the mount (may be reused after umount)
(2) parent ID: ID of parent (or of self for the top of the mount tree)
(3) major:minor: value of st_dev for files on filesystem
(4) root: root of the mount within the filesystem
(5) mount point: mount point relative to the process's root
(6) mount options: per mount options
(n…m) optional fields: zero or more fields of the form "tag[:value]"
(m+1) separator: marks the end of the optional fields
(m+2) filesystem type: name of filesystem of the form "type[.subtype]"
(m+3) mount source: filesystem specific information or "none"
(m+4) super options: per super block options
Parsers should ignore all unrecognised optional fields. Currently the
possible optional fields are:
================ ==============================================================
shared:X mount is shared in peer group X
master:X mount is slave to peer group X
propagate_from:X mount is slave and receives propagation from peer group X [#]_
unbindable mount is unbindable
================ ==============================================================
.. [#] X is the closest dominant peer group under the process's root. If
X is the immediate master of the mount, or if there's no dominant peer
group under the same root, then only the "master:X" field is present
and not the "propagate_from:X" field.
For more information on mount propagation see:
Documentation/filesystems/sharedsubtree.rst
3.6 /proc/<pid>/comm & /proc/<pid>/task/<tid>/comm
--------------------------------------------------------
These files provide a method to access a task's comm value. It also allows for
a task to set its own or one of its thread siblings comm value. The comm value
is limited in size compared to the cmdline value, so writing anything longer
then the kernel's TASK_COMM_LEN (currently 16 chars, including the NUL
terminator) will result in a truncated comm value.
3.7 /proc/<pid>/task/<tid>/children - Information about task children
-------------------------------------------------------------------------
This file provides a fast way to retrieve first level children pids
of a task pointed by <pid>/<tid> pair. The format is a space separated
stream of pids.
Note the "first level" here -- if a child has its own children they will
not be listed here; one needs to read /proc/<children-pid>/task/<tid>/children
to obtain the descendants.
Since this interface is intended to be fast and cheap it doesn't
guarantee to provide precise results and some children might be
skipped, especially if they've exited right after we printed their
pids, so one needs to either stop or freeze processes being inspected
if precise results are needed.
`fdinfo`, eventfd, signalfd, epoll
2006-2076`/proc/<pid>/fdinfo/<fd>`는 열린 file 정보를 제공한다. 일반 file은 최소한 decimal current offset `pos`, octal `O_xxx` open mask `flags`, filesystem mount ID `mnt_id`, inode number `ino`를 가진다. 해당 FD의 모든 lock도 `lock:` record로 표시된다.
공통 field 뒤에 descriptor object 고유 상태가 붙는다.
epoll target record의 `pos`는 target file의 decimal offset이고 `ino`, `sdev`는 target inode와 device를 hex로 나타낸다. 자세한 event mask semantics는 `epoll(7)`을 따른다.
eventfd·fsnotify·signalfd·epoll 같은 special object도 공통 `pos/flags/mnt_id/ino` 뒤에 각 object별 정보를 제공한다.
공통 open-file state와 object-specific state를 함께 출력한다.
3.8 /proc/<pid>/fdinfo/<fd> - Information about opened file
---------------------------------------------------------------
This file provides information associated with an opened file. The regular
files have at least four fields -- 'pos', 'flags', 'mnt_id' and 'ino'.
The 'pos' represents the current offset of the opened file in decimal
form [see lseek(2) for details], 'flags' denotes the octal O_xxx mask the
file has been created with [see open(2) for details] and 'mnt_id' represents
mount ID of the file system containing the opened file [see 3.5
/proc/<pid>/mountinfo for details]. 'ino' represents the inode number of
the file.
A typical output is::
pos: 0
flags: 0100002
mnt_id: 19
ino: 63107
All locks associated with a file descriptor are shown in its fdinfo too::
lock: 1: FLOCK ADVISORY WRITE 359 00:13:11691 0 EOF
The files such as eventfd, fsnotify, signalfd, epoll among the regular pos/flags
pair provide additional information particular to the objects they represent.
Eventfd files
~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
eventfd-count: 5a
where 'eventfd-count' is hex value of a counter.
Signalfd files
~~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
sigmask: 0000000000000200
where 'sigmask' is hex value of the signal mask associated
with a file.
Epoll files
~~~~~~~~~~~
::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
tfd: 5 events: 1d data: ffffffffffffffff pos:0 ino:61af sdev:7
where 'tfd' is a target file descriptor number in decimal form,
'events' is events mask being watched and the 'data' is data
associated with a target [see epoll(7) for more details].
The 'pos' is current offset of the target file in decimal form
[see lseek(2)], 'ino' and 'sdev' are inode and device numbers
where target file resides, all in hex format.
Fsnotify, timerfd, DMA-BUF, VFIO fdinfo
2077-2176inotify record의 `wd`는 decimal watch descriptor, `ino`, `sdev`, `mask`, `ignored_mask`는 hex target inode·device·event mask다. exportfs 지원 kernel은 target path를 `fhandle-bytes`, `fhandle-type`, `f_handle` hex field로 encode한다. 지원이 없으면 handle을 출력하지 않고 mark가 아직 없으면 inotify 줄 자체를 생략한다.
fanotify의 `flags`, `event-flags`는 `fanotify_init` 값, `mnt_id`는 mount identifier, `mflags`는 event mask와 별도 추적하는 mark flag다. `ino`, `sdev`, `mask`, `ignored_mask`는 target과 event·ignore mask이며 모두 hex다. 첫 세 공통 줄은 필수이고 mark가 없으면 나머지는 생략될 수 있다.
각 kernel object가 fdinfo에 노출하는 runtime 상태다.
timerfd의 `ticks`는 발생한 expiration 수, `it_value`는 다음 expiration까지 남은 시간, `it_interval`은 반복 간격이다. `TIMER_ABSTIME`으로 설정했어도 `it_value`는 절대시각이 아니라 remaining time을 표시한다.
DMA-BUF `count`는 DMA buffer file count이며 `exp_name`은 exporter 이름이다. VFIO record는 해당 device의 긴 sysfs path를 제공한다.
kernel feature와 mark 존재 여부에 따라 optional field가 달라진다.
Fsnotify files
~~~~~~~~~~~~~~
For inotify files the format is the following::
pos: 0
flags: 02000000
mnt_id: 9
ino: 63107
inotify wd:3 ino:9e7e sdev:800013 mask:800afce ignored_mask:0 fhandle-bytes:8 fhandle-type:1 f_handle:7e9e0000640d1b6d
where 'wd' is a watch descriptor in decimal form, i.e. a target file
descriptor number, 'ino' and 'sdev' are inode and device where the
target file resides and the 'mask' is the mask of events, all in hex
form [see inotify(7) for more details].
If the kernel was built with exportfs support, the path to the target
file is encoded as a file handle. The file handle is provided by three
fields 'fhandle-bytes', 'fhandle-type' and 'f_handle', all in hex
format.
If the kernel is built without exportfs support the file handle won't be
printed out.
If there is no inotify mark attached yet the 'inotify' line will be omitted.
For fanotify files the format is::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
fanotify flags:10 event-flags:0
fanotify mnt_id:12 mflags:40 mask:38 ignored_mask:40000003
fanotify ino:4f969 sdev:800013 mflags:0 mask:3b ignored_mask:40000000 fhandle-bytes:8 fhandle-type:1 f_handle:69f90400c275b5b4
where fanotify 'flags' and 'event-flags' are values used in fanotify_init
call, 'mnt_id' is the mount point identifier, 'mflags' is the value of
flags associated with mark which are tracked separately from events
mask. 'ino' and 'sdev' are target inode and device, 'mask' is the events
mask and 'ignored_mask' is the mask of events which are to be ignored.
All are in hex format. Incorporation of 'mflags', 'mask' and 'ignored_mask'
provide information about flags and mask used in fanotify_mark
call [see fsnotify manpage for details].
While the first three lines are mandatory and always printed, the rest is
optional and may be omitted if no marks created yet.
Timerfd files
~~~~~~~~~~~~~
::
pos: 0
flags: 02
mnt_id: 9
ino: 63107
clockid: 0
ticks: 0
settime flags: 01
it_value: (0, 49406829)
it_interval: (1, 0)
where 'clockid' is the clock type and 'ticks' is the number of the timer expirations
that have occurred [see timerfd_create(2) for details]. 'settime flags' are
flags in octal form been used to setup the timer [see timerfd_settime(2) for
details]. 'it_value' is remaining time until the timer expiration.
'it_interval' is the interval for the timer. Note the timer might be set up
with TIMER_ABSTIME option which will be shown in 'settime flags', but 'it_value'
still exhibits timer's remaining time.
DMA Buffer files
~~~~~~~~~~~~~~~~
::
pos: 0
flags: 04002
mnt_id: 9
ino: 63107
size: 32768
count: 2
exp_name: system-heap
where 'size' is the size of the DMA buffer in bytes. 'count' is the file count of
the DMA buffer file. 'exp_name' is the name of the DMA buffer exporter.
VFIO Device files
~~~~~~~~~~~~~~~~~
::
pos: 0
flags: 02000002
mnt_id: 17
ino: 5122
vfio-device-syspath: /sys/devices/pci0000:e0/0000:e0:01.1/0000:e1:00.0/0000:e2:05.0/0000:e8:00.0
where 'vfio-device-syspath' is the sysfs path corresponding to the VFIO device
file.
`map_files`, timerslack, livepatch state
2177-2231`map_files` directory는 process가 유지하는 file-backed memory mapping을 symlink로 표현한다. link 이름은 `vm_area_struct::vm_start-vm_area_struct::vm_end` virtual address 범위다.
주 목적은 record가 많은 `maps`나 `smaps`를 parse하지 않고 mapped file 집합을 빠르게 얻는 것이다. 두 process의 mapping link를 `open(2)`하고 inode를 비교하면 어떤 anonymous memory area가 실제로 공유되는지도 알아낼 수 있다.
`timerslack_ns`는 normal timer를 합쳐 불필요한 wakeup을 줄이기 위해 지연할 수 있는 nanosecond 값이다. interactivity와 power consumption tradeoff를 조정한다. 0을 쓰면 default로 돌아가고 범위는 0부터 `ULLONG_MAX`다. 다른 task 값을 바꾸려면 `PTRACE_MODE_ATTACH_FSCREDS` 수준 권한이 필요하다.
`CONFIG_LIVEPATCH`에서 task가 transition 중 patch를 적용했는지 나타낸다.
enable transition에서 0은 아직 patch 전, 1은 patch 완료다. disable transition에서는 0이 이미 unpatch됨, 1이 아직 unpatch되지 않음을 뜻한다.
slack을 늘리면 wakeup을 합칠 여지가 커진다.
3.9 /proc/<pid>/map_files - Information about memory mapped files
---------------------------------------------------------------------
This directory contains symbolic links which represent memory mapped files
the process is maintaining. Example output::
| lr-------- 1 root root 64 Jan 27 11:24 333c600000-333c620000 -> /usr/lib64/ld-2.18.so
| lr-------- 1 root root 64 Jan 27 11:24 333c81f000-333c820000 -> /usr/lib64/ld-2.18.so
| lr-------- 1 root root 64 Jan 27 11:24 333c820000-333c821000 -> /usr/lib64/ld-2.18.so
| ...
| lr-------- 1 root root 64 Jan 27 11:24 35d0421000-35d0422000 -> /usr/lib64/libselinux.so.1
| lr-------- 1 root root 64 Jan 27 11:24 400000-41a000 -> /usr/bin/ls
The name of a link represents the virtual memory bounds of a mapping, i.e.
vm_area_struct::vm_start-vm_area_struct::vm_end.
The main purpose of the map_files is to retrieve a set of memory mapped
files in a fast way instead of parsing /proc/<pid>/maps or
/proc/<pid>/smaps, both of which contain many more records. At the same
time one can open(2) mappings from the listings of two processes and
comparing their inode numbers to figure out which anonymous memory areas
are actually shared.
3.10 /proc/<pid>/timerslack_ns - Task timerslack value
---------------------------------------------------------
This file provides the value of the task's timerslack value in nanoseconds.
This value specifies an amount of time that normal timers may be deferred
in order to coalesce timers and avoid unnecessary wakeups.
This allows a task's interactivity vs power consumption tradeoff to be
adjusted.
Writing 0 to the file will set the task's timerslack to the default value.
Valid values are from 0 - ULLONG_MAX
An application setting the value must have PTRACE_MODE_ATTACH_FSCREDS level
permissions on the task specified to change its timerslack_ns value.
3.11 /proc/<pid>/patch_state - Livepatch patch operation state
-----------------------------------------------------------------
When CONFIG_LIVEPATCH is enabled, this file displays the value of the
patch state for the task.
A value of '-1' indicates that no patch is in transition.
A value of '0' indicates that a patch is in transition and the task is
unpatched. If the patch is being enabled, then the task hasn't been
patched yet. If the patch is being disabled, then the task has already
been unpatched.
A value of '1' indicates that a patch is in transition and the task is
patched. If the patch is being enabled, then the task has already been
patched. If the patch is being disabled, then the task hasn't been
unpatched yet.
Architecture-specific task status
2232-2276`CONFIG_PROC_PID_ARCH_STATUS`가 켜지면 `/proc/<pid>/arch_status`가 architecture-specific task 상태를 표시한다. x86 예시 `AVX512_elapsed_ms`는 마지막 AVX512 사용 기록 뒤 지난 millisecond다.
기록은 task가 schedule-out될 때 best-effort로 이뤄진다. 값에는 task가 schedule-out 없이 CPU에서 실행한 시간과 마지막 schedule-out 이후 시간이 모두 영향을 준다. CPU isolation에서 runnable task가 하나면 첫 시간이 수초가 될 수 있고, time slice나 syscall 등 schedule-out 이유에 따라 둘째 시간도 임의로 길 수 있다.
따라서 이 값은 정밀하거나 권위 있는 AVX512 사용 증거가 아니다. application은 전체 scheduling 상황을 알아야 실제 user인지 판단할 수 있으며 정확한 정보에는 performance counter를 사용한다.
특별값 `-1`은 AVX512 사용 기록이 없다는 뜻이라 user일 가능성이 낮지만 workload와 scheduling 때문에 false negative일 수도 있다.
best-effort schedule-out 기록이라 실제 instruction 시점과 차이가 난다.
3.12 /proc/<pid>/arch_status - task architecture specific status
-------------------------------------------------------------------
When CONFIG_PROC_PID_ARCH_STATUS is enabled, this file displays the
architecture specific status of the task.
Example
~~~~~~~
::
$ cat /proc/6753/arch_status
AVX512_elapsed_ms: 8
Description
~~~~~~~~~~~
x86 specific entries
~~~~~~~~~~~~~~~~~~~~~
AVX512_elapsed_ms
^^^^^^^^^^^^^^^^^^
If AVX512 is supported on the machine, this entry shows the milliseconds
elapsed since the last time AVX512 usage was recorded. The recording
happens on a best effort basis when a task is scheduled out. This means
that the value depends on two factors:
1) The time which the task spent on the CPU without being scheduled
out. With CPU isolation and a single runnable task this can take
several seconds.
2) The time since the task was scheduled out last. Depending on the
reason for being scheduled out (time slice exhausted, syscall ...)
this can be arbitrary long time.
As a consequence the value cannot be considered precise and authoritative
information. The application which uses this information has to be aware
of the overall scenario on the system in order to determine whether a
task is a real AVX512 user or not. Precise information can be obtained
with performance counters.
A special value of '-1' indicates that no AVX512 usage was recorded, thus
the task is unlikely an AVX512 user, but depends on the workload and the
scheduling scenario, it also could be a false negative mentioned above.
Open FD symlink와 process KSM 통계
2277-2360`/proc/<pid>/fd`는 process가 유지하는 open file을 FD 번호 이름의 symlink로 표시한다. regular file, device, `socket:[inode]` 같은 target을 볼 수 있다. directory `stat()`의 `size` member에는 빠른 접근을 위해 process의 open file 수가 저장된다.
`CONFIG_KSM`이 켜지면 `ksm_stat`이 process의 KSM merge 상태를 제공한다.
scan metadata 비용과 실제 절감량 및 process opt-in 상태를 구분한다.
KSM은 동일 page를 합쳐 memory를 절약하지만 각 scan page의 간단한 reverse mapping 정보를 저장하는 `rmap_item` memory를 소비한다. 반복 검사해도 merge되지 않는 page는 비용만 만들 수 있으므로 `ksm_process_profit`이 순효과를 나타낸다.
자세한 KSM 동작은 `Documentation/admin-guide/mm/ksm.rst`를 따른다.
scan metadata 비용과 merge 절감량을 함께 계산한다.
3.13 /proc/<pid>/fd - List of symlinks to open files
-------------------------------------------------------
This directory contains symbolic links which represent open files
the process is maintaining. Example output::
lr-x------ 1 root root 64 Sep 20 17:53 0 -> /dev/null
l-wx------ 1 root root 64 Sep 20 17:53 1 -> /dev/null
lrwx------ 1 root root 64 Sep 20 17:53 10 -> 'socket:[12539]'
lrwx------ 1 root root 64 Sep 20 17:53 11 -> 'socket:[12540]'
lrwx------ 1 root root 64 Sep 20 17:53 12 -> 'socket:[12542]'
The number of open files for the process is stored in 'size' member
of stat() output for /proc/<pid>/fd for fast access.
-------------------------------------------------------
3.14 /proc/<pid/ksm_stat - Information about the process's ksm status
---------------------------------------------------------------------
When CONFIG_KSM is enabled, each process has this file which displays
the information of ksm merging status.
Example
~~~~~~~
::
/ # cat /proc/self/ksm_stat
ksm_rmap_items 0
ksm_zero_pages 0
ksm_merging_pages 0
ksm_process_profit 0
ksm_merge_any: no
ksm_mergeable: no
Description
~~~~~~~~~~~
ksm_rmap_items
^^^^^^^^^^^^^^
The number of ksm_rmap_item structures in use. The structure
ksm_rmap_item stores the reverse mapping information for virtual
addresses. KSM will generate a ksm_rmap_item for each ksm-scanned page of
the process.
ksm_zero_pages
^^^^^^^^^^^^^^
When /sys/kernel/mm/ksm/use_zero_pages is enabled, it represent how many
empty pages are merged with kernel zero pages by KSM.
ksm_merging_pages
^^^^^^^^^^^^^^^^^
It represents how many pages of this process are involved in KSM merging
(not including ksm_zero_pages). It is the same with what
/proc/<pid>/ksm_merging_pages shows.
ksm_process_profit
^^^^^^^^^^^^^^^^^^
The profit that KSM brings (Saved bytes). KSM can save memory by merging
identical pages, but also can consume additional memory, because it needs
to generate a number of rmap_items to save each scanned page's brief rmap
information. Some of these pages may be merged, but some may not be abled
to be merged after being checked several times, which are unprofitable
memory consumed.
ksm_merge_any
^^^^^^^^^^^^^
It specifies whether the process's 'mm is added by prctl() into the
candidate list of KSM or not, and if KSM scanning is fully enabled at
process level.
ksm_mergeable
^^^^^^^^^^^^^
It specifies whether any VMAs of the process''s mms are currently
applicable to KSM.
More information about KSM can be found in
Documentation/admin-guide/mm/ksm.rst.
Procfs mount option
2361-2412process 노출, 예외 group, top-level subset와 PID namespace를 구성한다.
`hidepid=off` 또는 0은 모두가 모든 process directory를 보는 classic default다. `hidepid=noaccess` 또는 1은 자기 directory만 접근하게 해 다른 user의 `cmdline`, `sched*`, `status`를 보호하고 argument에 노출된 민감 정보의 local 도청을 줄인다.
`hidepid=invisible` 또는 2는 mode 1에 더해 다른 user의 process directory를 숨긴다. `kill -0` 같은 다른 수단으로 PID 존재를 완전히 숨기지는 못하지만 `stat()`로 UID/GID와 privileged daemon·민감 program 실행 여부를 수집하기 어렵게 한다.
`hidepid=ptraceable` 또는 4는 caller가 ptrace할 수 있는 process directory만 procfs에 포함한다. `gid=` group은 hidepid가 막는 정보를 볼 수 있어 identd 같은 daemon을 넣을 수 있다. `subset=pid`는 task와 무관한 top-level file과 directory를 숨긴다.
`pidns=`는 `/proc/$pid/ns/pid` 같은 path 또는 `FSCONFIG_SET_FD`의 FD로 PID namespace를 정한다. 기본은 caller의 active PID namespace다. 기존 procfs instance의 namespace는 바꿀 수 없고 시도하면 `-EBUSY`다.
access denial과 directory invisibility 수준을 구분한다.
Chapter 4: Configuring procfs
=============================
4.1 Mount options
---------------------
The following mount options are supported:
========= ========================================================
hidepid= Set /proc/<pid>/ access mode.
gid= Set the group authorized to learn processes information.
subset= Show only the specified subset of procfs.
pidns= Specify a the namespace used by this procfs.
========= ========================================================
hidepid=off or hidepid=0 means classic mode - everybody may access all
/proc/<pid>/ directories (default).
hidepid=noaccess or hidepid=1 means users may not access any /proc/<pid>/
directories but their own. Sensitive files like cmdline, sched*, status are now
protected against other users. This makes it impossible to learn whether any
user runs specific program (given the program doesn't reveal itself by its
behaviour). As an additional bonus, as /proc/<pid>/cmdline is unaccessible for
other users, poorly written programs passing sensitive information via program
arguments are now protected against local eavesdroppers.
hidepid=invisible or hidepid=2 means hidepid=1 plus all /proc/<pid>/ will be
fully invisible to other users. It doesn't mean that it hides a fact whether a
process with a specific pid value exists (it can be learned by other means, e.g.
by "kill -0 $PID"), but it hides process's uid and gid, which may be learned by
stat()'ing /proc/<pid>/ otherwise. It greatly complicates an intruder's task of
gathering information about running processes, whether some daemon runs with
elevated privileges, whether other user runs some sensitive program, whether
other users run any program at all, etc.
hidepid=ptraceable or hidepid=4 means that procfs should only contain
/proc/<pid>/ directories that the caller can ptrace.
gid= defines a group authorized to learn processes information otherwise
prohibited by hidepid=. If you use some daemon like identd which needs to learn
information about processes information, just add identd to this group.
subset=pid hides all top level files and directories in the procfs that
are not related to tasks.
pidns= specifies a pid namespace (either as a string path to something like
`/proc/$pid/ns/pid`, or a file descriptor when using `FSCONFIG_SET_FD`) that
will be used by the procfs instance when translating pids. By default, procfs
will use the calling process's active pid namespace. Note that the pid
namespace of an existing procfs instance cannot be modified (attempting to do
so will give an `-EBUSY` error).
Procfs instance와 mount option 범위
2413-2454PID namespace 이전의 procfs는 system 전체에 하나뿐인 global filesystem이었다. PID namespace가 도입된 뒤에는 namespace마다 별도 procfs instance를 mount했지만, 과거 구현에서는 같은 namespace의 모든 mountpoint가 mount option을 공유했다.
따라서 `/proc`가 `hidepid=2`일 때 `/tmp/proc`를 `hidepid=1`로 새로 mount해도 두 mount 모두 `hidepid=2`로 보였다. 한 mount를 remount해 option을 바꾸면 같은 namespace의 모든 procfs mountpoint가 함께 바뀌었다. 이는 다른 filesystem과 다른 동작이었다.
새 동작은 각 procfs mount가 새 instance를 만들고 mount option이 자기 instance에만 적용된다. 같은 PID namespace에서도 `/proc`는 `hidepid=invisible`, `/tmp/proc`는 `hidepid=noaccess`처럼 서로 다른 filtering view를 동시에 제공할 수 있다.
namespace-wide 공유 option에서 mount instance별 option으로 바뀌었다.
Chapter 5: Filesystem behavior
==============================
Originally, before the advent of pid namespace, procfs was a global file
system. It means that there was only one procfs instance in the system.
When pid namespace was added, a separate procfs instance was mounted in
each pid namespace. So, procfs mount options are global among all
mountpoints within the same namespace::
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=2 0 0
# strace -e mount mount -o hidepid=1 -t proc proc /tmp/proc
mount("proc", "/tmp/proc", "proc", 0, "hidepid=1") = 0
+++ exited with 0 +++
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=2 0 0
proc /tmp/proc proc rw,relatime,hidepid=2 0 0
and only after remounting procfs mount options will change at all
mountpoints::
# mount -o remount,hidepid=1 -t proc proc /tmp/proc
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=1 0 0
proc /tmp/proc proc rw,relatime,hidepid=1 0 0
This behavior is different from the behavior of other filesystems.
The new procfs behavior is more like other filesystems. Each procfs mount
creates a new procfs instance. Mount options affect own procfs instance.
It means that it became possible to have several procfs instances
displaying tasks with different filtering options in one pid namespace::
# mount -o hidepid=invisible -t proc proc /proc
# mount -o hidepid=noaccess -t proc proc /tmp/proc
# grep ^proc /proc/mounts
proc /proc proc rw,relatime,hidepid=invisible 0 0
proc /tmp/proc proc rw,relatime,hidepid=noaccess 0 0
요약·해설
proc.rst:1-2454procfs는 실행 중인 kernel과 process의 내부 상태를 file hierarchy로 노출하는 pseudo filesystem이다. 이 문서는 `/proc/PID`의 permission과 identity·memory·I/O ABI, system-wide memory·IRQ·network 통계, `/proc/sys` runtime control, procfs mount option과 PID namespace별 instance 동작을 함께 설명한다.
숫자를 해석할 때는 단위와 정밀도에 주의해야 한다. `statm` RSS는 확장성을 위한 근사치일 수 있고, `maps/smaps` 부분 read에는 VMA 변경 race가 있으며, `iowait`는 신뢰할 수 있는 per-CPU 척도가 아니다. 반대로 source는 monotonic mapping address, 지속 VMA 출력, OOM score 범위처럼 consumer가 의존할 수 있는 계약도 명시한다.
표와 ABI field는 원문 이름을 그대로 유지하면서 한국어 의미를 구조화했다. `/proc` entry는 kernel configuration과 module에 따라 없을 수 있고 release마다 field·flag 의미가 바뀔 수 있으므로 parser는 optional·unknown field를 허용하고 대상 kernel version 문서를 기준으로 해야 한다.
process와 kernel 상태를 읽고 제한된 control file과 mount option으로 동작을 조정한다.