ftrace.rst 139 KB

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  1. ========================
  2. ftrace - Function Tracer
  3. ========================
  4. Copyright 2008 Red Hat Inc.
  5. :Author: Steven Rostedt <srostedt@redhat.com>
  6. :License: The GNU Free Documentation License, Version 1.2
  7. (dual licensed under the GPL v2)
  8. :Original Reviewers: Elias Oltmanns, Randy Dunlap, Andrew Morton,
  9. John Kacur, and David Teigland.
  10. - Written for: 2.6.28-rc2
  11. - Updated for: 3.10
  12. - Updated for: 4.13 - Copyright 2017 VMware Inc. Steven Rostedt
  13. - Converted to rst format - Changbin Du <changbin.du@intel.com>
  14. Introduction
  15. ------------
  16. Ftrace is an internal tracer designed to help out developers and
  17. designers of systems to find what is going on inside the kernel.
  18. It can be used for debugging or analyzing latencies and
  19. performance issues that take place outside of user-space.
  20. Although ftrace is typically considered the function tracer, it
  21. is really a framework of several assorted tracing utilities.
  22. There's latency tracing to examine what occurs between interrupts
  23. disabled and enabled, as well as for preemption and from a time
  24. a task is woken to the task is actually scheduled in.
  25. One of the most common uses of ftrace is the event tracing.
  26. Throughout the kernel is hundreds of static event points that
  27. can be enabled via the tracefs file system to see what is
  28. going on in certain parts of the kernel.
  29. See events.rst for more information.
  30. Implementation Details
  31. ----------------------
  32. See Documentation/trace/ftrace-design.rst for details for arch porters and such.
  33. The File System
  34. ---------------
  35. Ftrace uses the tracefs file system to hold the control files as
  36. well as the files to display output.
  37. When tracefs is configured into the kernel (which selecting any ftrace
  38. option will do) the directory /sys/kernel/tracing will be created. To mount
  39. this directory, you can add to your /etc/fstab file::
  40. tracefs /sys/kernel/tracing tracefs defaults 0 0
  41. Or you can mount it at run time with::
  42. mount -t tracefs nodev /sys/kernel/tracing
  43. For quicker access to that directory you may want to make a soft link to
  44. it::
  45. ln -s /sys/kernel/tracing /tracing
  46. .. attention::
  47. Before 4.1, all ftrace tracing control files were within the debugfs
  48. file system, which is typically located at /sys/kernel/debug/tracing.
  49. For backward compatibility, when mounting the debugfs file system,
  50. the tracefs file system will be automatically mounted at:
  51. /sys/kernel/debug/tracing
  52. All files located in the tracefs file system will be located in that
  53. debugfs file system directory as well.
  54. .. attention::
  55. Any selected ftrace option will also create the tracefs file system.
  56. The rest of the document will assume that you are in the ftrace directory
  57. (cd /sys/kernel/tracing) and will only concentrate on the files within that
  58. directory and not distract from the content with the extended
  59. "/sys/kernel/tracing" path name.
  60. That's it! (assuming that you have ftrace configured into your kernel)
  61. After mounting tracefs you will have access to the control and output files
  62. of ftrace. Here is a list of some of the key files:
  63. Note: all time values are in microseconds.
  64. current_tracer:
  65. This is used to set or display the current tracer
  66. that is configured. Changing the current tracer clears
  67. the ring buffer content as well as the "snapshot" buffer.
  68. available_tracers:
  69. This holds the different types of tracers that
  70. have been compiled into the kernel. The
  71. tracers listed here can be configured by
  72. echoing their name into current_tracer.
  73. tracing_on:
  74. This sets or displays whether writing to the trace
  75. ring buffer is enabled. Echo 0 into this file to disable
  76. the tracer or 1 to enable it. Note, this only disables
  77. writing to the ring buffer, the tracing overhead may
  78. still be occurring.
  79. The kernel function tracing_off() can be used within the
  80. kernel to disable writing to the ring buffer, which will
  81. set this file to "0". User space can re-enable tracing by
  82. echoing "1" into the file.
  83. Note, the function and event trigger "traceoff" will also
  84. set this file to zero and stop tracing. Which can also
  85. be re-enabled by user space using this file.
  86. trace:
  87. This file holds the output of the trace in a human
  88. readable format (described below). Opening this file for
  89. writing with the O_TRUNC flag clears the ring buffer content.
  90. Note, this file is not a consumer. If tracing is off
  91. (no tracer running, or tracing_on is zero), it will produce
  92. the same output each time it is read. When tracing is on,
  93. it may produce inconsistent results as it tries to read
  94. the entire buffer without consuming it.
  95. trace_pipe:
  96. The output is the same as the "trace" file but this
  97. file is meant to be streamed with live tracing.
  98. Reads from this file will block until new data is
  99. retrieved. Unlike the "trace" file, this file is a
  100. consumer. This means reading from this file causes
  101. sequential reads to display more current data. Once
  102. data is read from this file, it is consumed, and
  103. will not be read again with a sequential read. The
  104. "trace" file is static, and if the tracer is not
  105. adding more data, it will display the same
  106. information every time it is read.
  107. trace_options:
  108. This file lets the user control the amount of data
  109. that is displayed in one of the above output
  110. files. Options also exist to modify how a tracer
  111. or events work (stack traces, timestamps, etc).
  112. options:
  113. This is a directory that has a file for every available
  114. trace option (also in trace_options). Options may also be set
  115. or cleared by writing a "1" or "0" respectively into the
  116. corresponding file with the option name.
  117. tracing_max_latency:
  118. Some of the tracers record the max latency.
  119. For example, the maximum time that interrupts are disabled.
  120. The maximum time is saved in this file. The max trace will also be
  121. stored, and displayed by "trace". A new max trace will only be
  122. recorded if the latency is greater than the value in this file
  123. (in microseconds).
  124. By echoing in a time into this file, no latency will be recorded
  125. unless it is greater than the time in this file.
  126. tracing_thresh:
  127. Some latency tracers will record a trace whenever the
  128. latency is greater than the number in this file.
  129. Only active when the file contains a number greater than 0.
  130. (in microseconds)
  131. buffer_percent:
  132. This is the watermark for how much the ring buffer needs to be filled
  133. before a waiter is woken up. That is, if an application calls a
  134. blocking read syscall on one of the per_cpu trace_pipe_raw files, it
  135. will block until the given amount of data specified by buffer_percent
  136. is in the ring buffer before it wakes the reader up. This also
  137. controls how the splice system calls are blocked on this file::
  138. 0 - means to wake up as soon as there is any data in the ring buffer.
  139. 50 - means to wake up when roughly half of the ring buffer sub-buffers
  140. are full.
  141. 100 - means to block until the ring buffer is totally full and is
  142. about to start overwriting the older data.
  143. buffer_size_kb:
  144. This sets or displays the number of kilobytes each CPU
  145. buffer holds. By default, the trace buffers are the same size
  146. for each CPU. The displayed number is the size of the
  147. CPU buffer and not total size of all buffers. The
  148. trace buffers are allocated in pages (blocks of memory
  149. that the kernel uses for allocation, usually 4 KB in size).
  150. A few extra pages may be allocated to accommodate buffer management
  151. meta-data. If the last page allocated has room for more bytes
  152. than requested, the rest of the page will be used,
  153. making the actual allocation bigger than requested or shown.
  154. ( Note, the size may not be a multiple of the page size
  155. due to buffer management meta-data. )
  156. Buffer sizes for individual CPUs may vary
  157. (see "per_cpu/cpu0/buffer_size_kb" below), and if they do
  158. this file will show "X".
  159. buffer_total_size_kb:
  160. This displays the total combined size of all the trace buffers.
  161. buffer_subbuf_size_kb:
  162. This sets or displays the sub buffer size. The ring buffer is broken up
  163. into several same size "sub buffers". An event can not be bigger than
  164. the size of the sub buffer. Normally, the sub buffer is the size of the
  165. architecture's page (4K on x86). The sub buffer also contains meta data
  166. at the start which also limits the size of an event. That means when
  167. the sub buffer is a page size, no event can be larger than the page
  168. size minus the sub buffer meta data.
  169. Note, the buffer_subbuf_size_kb is a way for the user to specify the
  170. minimum size of the subbuffer. The kernel may make it bigger due to the
  171. implementation details, or simply fail the operation if the kernel can
  172. not handle the request.
  173. Changing the sub buffer size allows for events to be larger than the
  174. page size.
  175. Note: When changing the sub-buffer size, tracing is stopped and any
  176. data in the ring buffer and the snapshot buffer will be discarded.
  177. free_buffer:
  178. If a process is performing tracing, and the ring buffer should be
  179. shrunk "freed" when the process is finished, even if it were to be
  180. killed by a signal, this file can be used for that purpose. On close
  181. of this file, the ring buffer will be resized to its minimum size.
  182. Having a process that is tracing also open this file, when the process
  183. exits its file descriptor for this file will be closed, and in doing so,
  184. the ring buffer will be "freed".
  185. It may also stop tracing if disable_on_free option is set.
  186. tracing_cpumask:
  187. This is a mask that lets the user only trace on specified CPUs.
  188. The format is a hex string representing the CPUs.
  189. set_ftrace_filter:
  190. When dynamic ftrace is configured in (see the
  191. section below "dynamic ftrace"), the code is dynamically
  192. modified (code text rewrite) to disable calling of the
  193. function profiler (mcount). This lets tracing be configured
  194. in with practically no overhead in performance. This also
  195. has a side effect of enabling or disabling specific functions
  196. to be traced. Echoing names of functions into this file
  197. will limit the trace to only those functions.
  198. This influences the tracers "function" and "function_graph"
  199. and thus also function profiling (see "function_profile_enabled").
  200. The functions listed in "available_filter_functions" are what
  201. can be written into this file.
  202. This interface also allows for commands to be used. See the
  203. "Filter commands" section for more details.
  204. As a speed up, since processing strings can be quite expensive
  205. and requires a check of all functions registered to tracing, instead
  206. an index can be written into this file. A number (starting with "1")
  207. written will instead select the same corresponding at the line position
  208. of the "available_filter_functions" file.
  209. set_ftrace_notrace:
  210. This has an effect opposite to that of
  211. set_ftrace_filter. Any function that is added here will not
  212. be traced. If a function exists in both set_ftrace_filter
  213. and set_ftrace_notrace, the function will _not_ be traced.
  214. set_ftrace_pid:
  215. Have the function tracer only trace the threads whose PID are
  216. listed in this file.
  217. If the "function-fork" option is set, then when a task whose
  218. PID is listed in this file forks, the child's PID will
  219. automatically be added to this file, and the child will be
  220. traced by the function tracer as well. This option will also
  221. cause PIDs of tasks that exit to be removed from the file.
  222. set_ftrace_notrace_pid:
  223. Have the function tracer ignore threads whose PID are listed in
  224. this file.
  225. If the "function-fork" option is set, then when a task whose
  226. PID is listed in this file forks, the child's PID will
  227. automatically be added to this file, and the child will not be
  228. traced by the function tracer as well. This option will also
  229. cause PIDs of tasks that exit to be removed from the file.
  230. If a PID is in both this file and "set_ftrace_pid", then this
  231. file takes precedence, and the thread will not be traced.
  232. set_event_pid:
  233. Have the events only trace a task with a PID listed in this file.
  234. Note, sched_switch and sched_wake_up will also trace events
  235. listed in this file.
  236. To have the PIDs of children of tasks with their PID in this file
  237. added on fork, enable the "event-fork" option. That option will also
  238. cause the PIDs of tasks to be removed from this file when the task
  239. exits.
  240. set_event_notrace_pid:
  241. Have the events not trace a task with a PID listed in this file.
  242. Note, sched_switch and sched_wakeup will trace threads not listed
  243. in this file, even if a thread's PID is in the file if the
  244. sched_switch or sched_wakeup events also trace a thread that should
  245. be traced.
  246. To have the PIDs of children of tasks with their PID in this file
  247. added on fork, enable the "event-fork" option. That option will also
  248. cause the PIDs of tasks to be removed from this file when the task
  249. exits.
  250. set_graph_function:
  251. Functions listed in this file will cause the function graph
  252. tracer to only trace these functions and the functions that
  253. they call. (See the section "dynamic ftrace" for more details).
  254. Note, set_ftrace_filter and set_ftrace_notrace still affects
  255. what functions are being traced.
  256. set_graph_notrace:
  257. Similar to set_graph_function, but will disable function graph
  258. tracing when the function is hit until it exits the function.
  259. This makes it possible to ignore tracing functions that are called
  260. by a specific function.
  261. available_filter_functions:
  262. This lists the functions that ftrace has processed and can trace.
  263. These are the function names that you can pass to
  264. "set_ftrace_filter", "set_ftrace_notrace",
  265. "set_graph_function", or "set_graph_notrace".
  266. (See the section "dynamic ftrace" below for more details.)
  267. available_filter_functions_addrs:
  268. Similar to available_filter_functions, but with address displayed
  269. for each function. The displayed address is the patch-site address
  270. and can differ from /proc/kallsyms address.
  271. dyn_ftrace_total_info:
  272. This file is for debugging purposes. The number of functions that
  273. have been converted to nops and are available to be traced.
  274. enabled_functions:
  275. This file is more for debugging ftrace, but can also be useful
  276. in seeing if any function has a callback attached to it.
  277. Not only does the trace infrastructure use ftrace function
  278. trace utility, but other subsystems might too. This file
  279. displays all functions that have a callback attached to them
  280. as well as the number of callbacks that have been attached.
  281. Note, a callback may also call multiple functions which will
  282. not be listed in this count.
  283. If the callback registered to be traced by a function with
  284. the "save regs" attribute (thus even more overhead), a 'R'
  285. will be displayed on the same line as the function that
  286. is returning registers.
  287. If the callback registered to be traced by a function with
  288. the "ip modify" attribute (thus the regs->ip can be changed),
  289. an 'I' will be displayed on the same line as the function that
  290. can be overridden.
  291. If a non ftrace trampoline is attached (BPF) a 'D' will be displayed.
  292. Note, normal ftrace trampolines can also be attached, but only one
  293. "direct" trampoline can be attached to a given function at a time.
  294. Some architectures can not call direct trampolines, but instead have
  295. the ftrace ops function located above the function entry point. In
  296. such cases an 'O' will be displayed.
  297. If a function had either the "ip modify" or a "direct" call attached to
  298. it in the past, a 'M' will be shown. This flag is never cleared. It is
  299. used to know if a function was every modified by the ftrace infrastructure,
  300. and can be used for debugging.
  301. If the architecture supports it, it will also show what callback
  302. is being directly called by the function. If the count is greater
  303. than 1 it most likely will be ftrace_ops_list_func().
  304. If the callback of a function jumps to a trampoline that is
  305. specific to the callback and which is not the standard trampoline,
  306. its address will be printed as well as the function that the
  307. trampoline calls.
  308. touched_functions:
  309. This file contains all the functions that ever had a function callback
  310. to it via the ftrace infrastructure. It has the same format as
  311. enabled_functions but shows all functions that have every been
  312. traced.
  313. To see any function that has every been modified by "ip modify" or a
  314. direct trampoline, one can perform the following command:
  315. grep ' M ' /sys/kernel/tracing/touched_functions
  316. function_profile_enabled:
  317. When set it will enable all functions with either the function
  318. tracer, or if configured, the function graph tracer. It will
  319. keep a histogram of the number of functions that were called
  320. and if the function graph tracer was configured, it will also keep
  321. track of the time spent in those functions. The histogram
  322. content can be displayed in the files:
  323. trace_stat/function<cpu> ( function0, function1, etc).
  324. trace_stat:
  325. A directory that holds different tracing stats.
  326. kprobe_events:
  327. Enable dynamic trace points. See kprobetrace.rst.
  328. kprobe_profile:
  329. Dynamic trace points stats. See kprobetrace.rst.
  330. max_graph_depth:
  331. Used with the function graph tracer. This is the max depth
  332. it will trace into a function. Setting this to a value of
  333. one will show only the first kernel function that is called
  334. from user space.
  335. printk_formats:
  336. This is for tools that read the raw format files. If an event in
  337. the ring buffer references a string, only a pointer to the string
  338. is recorded into the buffer and not the string itself. This prevents
  339. tools from knowing what that string was. This file displays the string
  340. and address for the string allowing tools to map the pointers to what
  341. the strings were.
  342. saved_cmdlines:
  343. Only the pid of the task is recorded in a trace event unless
  344. the event specifically saves the task comm as well. Ftrace
  345. makes a cache of pid mappings to comms to try to display
  346. comms for events. If a pid for a comm is not listed, then
  347. "<...>" is displayed in the output.
  348. If the option "record-cmd" is set to "0", then comms of tasks
  349. will not be saved during recording. By default, it is enabled.
  350. saved_cmdlines_size:
  351. By default, 128 comms are saved (see "saved_cmdlines" above). To
  352. increase or decrease the amount of comms that are cached, echo
  353. the number of comms to cache into this file.
  354. saved_tgids:
  355. If the option "record-tgid" is set, on each scheduling context switch
  356. the Task Group ID of a task is saved in a table mapping the PID of
  357. the thread to its TGID. By default, the "record-tgid" option is
  358. disabled.
  359. snapshot:
  360. This displays the "snapshot" buffer and also lets the user
  361. take a snapshot of the current running trace.
  362. See the "Snapshot" section below for more details.
  363. stack_max_size:
  364. When the stack tracer is activated, this will display the
  365. maximum stack size it has encountered.
  366. See the "Stack Trace" section below.
  367. stack_trace:
  368. This displays the stack back trace of the largest stack
  369. that was encountered when the stack tracer is activated.
  370. See the "Stack Trace" section below.
  371. stack_trace_filter:
  372. This is similar to "set_ftrace_filter" but it limits what
  373. functions the stack tracer will check.
  374. trace_clock:
  375. Whenever an event is recorded into the ring buffer, a
  376. "timestamp" is added. This stamp comes from a specified
  377. clock. By default, ftrace uses the "local" clock. This
  378. clock is very fast and strictly per cpu, but on some
  379. systems it may not be monotonic with respect to other
  380. CPUs. In other words, the local clocks may not be in sync
  381. with local clocks on other CPUs.
  382. Usual clocks for tracing::
  383. # cat trace_clock
  384. [local] global counter x86-tsc
  385. The clock with the square brackets around it is the one in effect.
  386. local:
  387. Default clock, but may not be in sync across CPUs
  388. global:
  389. This clock is in sync with all CPUs but may
  390. be a bit slower than the local clock.
  391. counter:
  392. This is not a clock at all, but literally an atomic
  393. counter. It counts up one by one, but is in sync
  394. with all CPUs. This is useful when you need to
  395. know exactly the order events occurred with respect to
  396. each other on different CPUs.
  397. uptime:
  398. This uses the jiffies counter and the time stamp
  399. is relative to the time since boot up.
  400. perf:
  401. This makes ftrace use the same clock that perf uses.
  402. Eventually perf will be able to read ftrace buffers
  403. and this will help out in interleaving the data.
  404. x86-tsc:
  405. Architectures may define their own clocks. For
  406. example, x86 uses its own TSC cycle clock here.
  407. ppc-tb:
  408. This uses the powerpc timebase register value.
  409. This is in sync across CPUs and can also be used
  410. to correlate events across hypervisor/guest if
  411. tb_offset is known.
  412. mono:
  413. This uses the fast monotonic clock (CLOCK_MONOTONIC)
  414. which is monotonic and is subject to NTP rate adjustments.
  415. mono_raw:
  416. This is the raw monotonic clock (CLOCK_MONOTONIC_RAW)
  417. which is monotonic but is not subject to any rate adjustments
  418. and ticks at the same rate as the hardware clocksource.
  419. boot:
  420. This is the boot clock (CLOCK_BOOTTIME) and is based on the
  421. fast monotonic clock, but also accounts for time spent in
  422. suspend. Since the clock access is designed for use in
  423. tracing in the suspend path, some side effects are possible
  424. if clock is accessed after the suspend time is accounted before
  425. the fast mono clock is updated. In this case, the clock update
  426. appears to happen slightly sooner than it normally would have.
  427. Also on 32-bit systems, it's possible that the 64-bit boot offset
  428. sees a partial update. These effects are rare and post
  429. processing should be able to handle them. See comments in the
  430. ktime_get_boot_fast_ns() function for more information.
  431. tai:
  432. This is the tai clock (CLOCK_TAI) and is derived from the wall-
  433. clock time. However, this clock does not experience
  434. discontinuities and backwards jumps caused by NTP inserting leap
  435. seconds. Since the clock access is designed for use in tracing,
  436. side effects are possible. The clock access may yield wrong
  437. readouts in case the internal TAI offset is updated e.g., caused
  438. by setting the system time or using adjtimex() with an offset.
  439. These effects are rare and post processing should be able to
  440. handle them. See comments in the ktime_get_tai_fast_ns()
  441. function for more information.
  442. To set a clock, simply echo the clock name into this file::
  443. # echo global > trace_clock
  444. Setting a clock clears the ring buffer content as well as the
  445. "snapshot" buffer.
  446. trace_marker:
  447. This is a very useful file for synchronizing user space
  448. with events happening in the kernel. Writing strings into
  449. this file will be written into the ftrace buffer.
  450. It is useful in applications to open this file at the start
  451. of the application and just reference the file descriptor
  452. for the file::
  453. void trace_write(const char *fmt, ...)
  454. {
  455. va_list ap;
  456. char buf[256];
  457. int n;
  458. if (trace_fd < 0)
  459. return;
  460. va_start(ap, fmt);
  461. n = vsnprintf(buf, 256, fmt, ap);
  462. va_end(ap);
  463. write(trace_fd, buf, n);
  464. }
  465. start::
  466. trace_fd = open("trace_marker", O_WRONLY);
  467. Note: Writing into the trace_marker file can also initiate triggers
  468. that are written into /sys/kernel/tracing/events/ftrace/print/trigger
  469. See "Event triggers" in Documentation/trace/events.rst and an
  470. example in Documentation/trace/histogram.rst (Section 3.)
  471. trace_marker_raw:
  472. This is similar to trace_marker above, but is meant for binary data
  473. to be written to it, where a tool can be used to parse the data
  474. from trace_pipe_raw.
  475. uprobe_events:
  476. Add dynamic tracepoints in programs.
  477. See uprobetracer.rst
  478. uprobe_profile:
  479. Uprobe statistics. See uprobetrace.txt
  480. instances:
  481. This is a way to make multiple trace buffers where different
  482. events can be recorded in different buffers.
  483. See "Instances" section below.
  484. events:
  485. This is the trace event directory. It holds event tracepoints
  486. (also known as static tracepoints) that have been compiled
  487. into the kernel. It shows what event tracepoints exist
  488. and how they are grouped by system. There are "enable"
  489. files at various levels that can enable the tracepoints
  490. when a "1" is written to them.
  491. See events.rst for more information.
  492. set_event:
  493. By echoing in the event into this file, will enable that event.
  494. See events.rst for more information.
  495. available_events:
  496. A list of events that can be enabled in tracing.
  497. See events.rst for more information.
  498. timestamp_mode:
  499. Certain tracers may change the timestamp mode used when
  500. logging trace events into the event buffer. Events with
  501. different modes can coexist within a buffer but the mode in
  502. effect when an event is logged determines which timestamp mode
  503. is used for that event. The default timestamp mode is
  504. 'delta'.
  505. Usual timestamp modes for tracing:
  506. # cat timestamp_mode
  507. [delta] absolute
  508. The timestamp mode with the square brackets around it is the
  509. one in effect.
  510. delta: Default timestamp mode - timestamp is a delta against
  511. a per-buffer timestamp.
  512. absolute: The timestamp is a full timestamp, not a delta
  513. against some other value. As such it takes up more
  514. space and is less efficient.
  515. hwlat_detector:
  516. Directory for the Hardware Latency Detector.
  517. See "Hardware Latency Detector" section below.
  518. per_cpu:
  519. This is a directory that contains the trace per_cpu information.
  520. per_cpu/cpu0/buffer_size_kb:
  521. The ftrace buffer is defined per_cpu. That is, there's a separate
  522. buffer for each CPU to allow writes to be done atomically,
  523. and free from cache bouncing. These buffers may have different
  524. size buffers. This file is similar to the buffer_size_kb
  525. file, but it only displays or sets the buffer size for the
  526. specific CPU. (here cpu0).
  527. per_cpu/cpu0/trace:
  528. This is similar to the "trace" file, but it will only display
  529. the data specific for the CPU. If written to, it only clears
  530. the specific CPU buffer.
  531. per_cpu/cpu0/trace_pipe
  532. This is similar to the "trace_pipe" file, and is a consuming
  533. read, but it will only display (and consume) the data specific
  534. for the CPU.
  535. per_cpu/cpu0/trace_pipe_raw
  536. For tools that can parse the ftrace ring buffer binary format,
  537. the trace_pipe_raw file can be used to extract the data
  538. from the ring buffer directly. With the use of the splice()
  539. system call, the buffer data can be quickly transferred to
  540. a file or to the network where a server is collecting the
  541. data.
  542. Like trace_pipe, this is a consuming reader, where multiple
  543. reads will always produce different data.
  544. per_cpu/cpu0/snapshot:
  545. This is similar to the main "snapshot" file, but will only
  546. snapshot the current CPU (if supported). It only displays
  547. the content of the snapshot for a given CPU, and if
  548. written to, only clears this CPU buffer.
  549. per_cpu/cpu0/snapshot_raw:
  550. Similar to the trace_pipe_raw, but will read the binary format
  551. from the snapshot buffer for the given CPU.
  552. per_cpu/cpu0/stats:
  553. This displays certain stats about the ring buffer:
  554. entries:
  555. The number of events that are still in the buffer.
  556. overrun:
  557. The number of lost events due to overwriting when
  558. the buffer was full.
  559. commit overrun:
  560. Should always be zero.
  561. This gets set if so many events happened within a nested
  562. event (ring buffer is re-entrant), that it fills the
  563. buffer and starts dropping events.
  564. bytes:
  565. Bytes actually read (not overwritten).
  566. oldest event ts:
  567. The oldest timestamp in the buffer
  568. now ts:
  569. The current timestamp
  570. dropped events:
  571. Events lost due to overwrite option being off.
  572. read events:
  573. The number of events read.
  574. The Tracers
  575. -----------
  576. Here is the list of current tracers that may be configured.
  577. "function"
  578. Function call tracer to trace all kernel functions.
  579. "function_graph"
  580. Similar to the function tracer except that the
  581. function tracer probes the functions on their entry
  582. whereas the function graph tracer traces on both entry
  583. and exit of the functions. It then provides the ability
  584. to draw a graph of function calls similar to C code
  585. source.
  586. "blk"
  587. The block tracer. The tracer used by the blktrace user
  588. application.
  589. "hwlat"
  590. The Hardware Latency tracer is used to detect if the hardware
  591. produces any latency. See "Hardware Latency Detector" section
  592. below.
  593. "irqsoff"
  594. Traces the areas that disable interrupts and saves
  595. the trace with the longest max latency.
  596. See tracing_max_latency. When a new max is recorded,
  597. it replaces the old trace. It is best to view this
  598. trace with the latency-format option enabled, which
  599. happens automatically when the tracer is selected.
  600. "preemptoff"
  601. Similar to irqsoff but traces and records the amount of
  602. time for which preemption is disabled.
  603. "preemptirqsoff"
  604. Similar to irqsoff and preemptoff, but traces and
  605. records the largest time for which irqs and/or preemption
  606. is disabled.
  607. "wakeup"
  608. Traces and records the max latency that it takes for
  609. the highest priority task to get scheduled after
  610. it has been woken up.
  611. Traces all tasks as an average developer would expect.
  612. "wakeup_rt"
  613. Traces and records the max latency that it takes for just
  614. RT tasks (as the current "wakeup" does). This is useful
  615. for those interested in wake up timings of RT tasks.
  616. "wakeup_dl"
  617. Traces and records the max latency that it takes for
  618. a SCHED_DEADLINE task to be woken (as the "wakeup" and
  619. "wakeup_rt" does).
  620. "mmiotrace"
  621. A special tracer that is used to trace binary module.
  622. It will trace all the calls that a module makes to the
  623. hardware. Everything it writes and reads from the I/O
  624. as well.
  625. "branch"
  626. This tracer can be configured when tracing likely/unlikely
  627. calls within the kernel. It will trace when a likely and
  628. unlikely branch is hit and if it was correct in its prediction
  629. of being correct.
  630. "nop"
  631. This is the "trace nothing" tracer. To remove all
  632. tracers from tracing simply echo "nop" into
  633. current_tracer.
  634. Error conditions
  635. ----------------
  636. For most ftrace commands, failure modes are obvious and communicated
  637. using standard return codes.
  638. For other more involved commands, extended error information may be
  639. available via the tracing/error_log file. For the commands that
  640. support it, reading the tracing/error_log file after an error will
  641. display more detailed information about what went wrong, if
  642. information is available. The tracing/error_log file is a circular
  643. error log displaying a small number (currently, 8) of ftrace errors
  644. for the last (8) failed commands.
  645. The extended error information and usage takes the form shown in
  646. this example::
  647. # echo xxx > /sys/kernel/tracing/events/sched/sched_wakeup/trigger
  648. echo: write error: Invalid argument
  649. # cat /sys/kernel/tracing/error_log
  650. [ 5348.887237] location: error: Couldn't yyy: zzz
  651. Command: xxx
  652. ^
  653. [ 7517.023364] location: error: Bad rrr: sss
  654. Command: ppp qqq
  655. ^
  656. To clear the error log, echo the empty string into it::
  657. # echo > /sys/kernel/tracing/error_log
  658. Examples of using the tracer
  659. ----------------------------
  660. Here are typical examples of using the tracers when controlling
  661. them only with the tracefs interface (without using any
  662. user-land utilities).
  663. Output format:
  664. --------------
  665. Here is an example of the output format of the file "trace"::
  666. # tracer: function
  667. #
  668. # entries-in-buffer/entries-written: 140080/250280 #P:4
  669. #
  670. # _-----=> irqs-off
  671. # / _----=> need-resched
  672. # | / _---=> hardirq/softirq
  673. # || / _--=> preempt-depth
  674. # ||| / delay
  675. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  676. # | | | |||| | |
  677. bash-1977 [000] .... 17284.993652: sys_close <-system_call_fastpath
  678. bash-1977 [000] .... 17284.993653: __close_fd <-sys_close
  679. bash-1977 [000] .... 17284.993653: _raw_spin_lock <-__close_fd
  680. sshd-1974 [003] .... 17284.993653: __srcu_read_unlock <-fsnotify
  681. bash-1977 [000] .... 17284.993654: add_preempt_count <-_raw_spin_lock
  682. bash-1977 [000] ...1 17284.993655: _raw_spin_unlock <-__close_fd
  683. bash-1977 [000] ...1 17284.993656: sub_preempt_count <-_raw_spin_unlock
  684. bash-1977 [000] .... 17284.993657: filp_close <-__close_fd
  685. bash-1977 [000] .... 17284.993657: dnotify_flush <-filp_close
  686. sshd-1974 [003] .... 17284.993658: sys_select <-system_call_fastpath
  687. ....
  688. A header is printed with the tracer name that is represented by
  689. the trace. In this case the tracer is "function". Then it shows the
  690. number of events in the buffer as well as the total number of entries
  691. that were written. The difference is the number of entries that were
  692. lost due to the buffer filling up (250280 - 140080 = 110200 events
  693. lost).
  694. The header explains the content of the events. Task name "bash", the task
  695. PID "1977", the CPU that it was running on "000", the latency format
  696. (explained below), the timestamp in <secs>.<usecs> format, the
  697. function name that was traced "sys_close" and the parent function that
  698. called this function "system_call_fastpath". The timestamp is the time
  699. at which the function was entered.
  700. Latency trace format
  701. --------------------
  702. When the latency-format option is enabled or when one of the latency
  703. tracers is set, the trace file gives somewhat more information to see
  704. why a latency happened. Here is a typical trace::
  705. # tracer: irqsoff
  706. #
  707. # irqsoff latency trace v1.1.5 on 3.8.0-test+
  708. # --------------------------------------------------------------------
  709. # latency: 259 us, #4/4, CPU#2 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  710. # -----------------
  711. # | task: ps-6143 (uid:0 nice:0 policy:0 rt_prio:0)
  712. # -----------------
  713. # => started at: __lock_task_sighand
  714. # => ended at: _raw_spin_unlock_irqrestore
  715. #
  716. #
  717. # _------=> CPU#
  718. # / _-----=> irqs-off
  719. # | / _----=> need-resched
  720. # || / _---=> hardirq/softirq
  721. # ||| / _--=> preempt-depth
  722. # |||| / delay
  723. # cmd pid ||||| time | caller
  724. # \ / ||||| \ | /
  725. ps-6143 2d... 0us!: trace_hardirqs_off <-__lock_task_sighand
  726. ps-6143 2d..1 259us+: trace_hardirqs_on <-_raw_spin_unlock_irqrestore
  727. ps-6143 2d..1 263us+: time_hardirqs_on <-_raw_spin_unlock_irqrestore
  728. ps-6143 2d..1 306us : <stack trace>
  729. => trace_hardirqs_on_caller
  730. => trace_hardirqs_on
  731. => _raw_spin_unlock_irqrestore
  732. => do_task_stat
  733. => proc_tgid_stat
  734. => proc_single_show
  735. => seq_read
  736. => vfs_read
  737. => sys_read
  738. => system_call_fastpath
  739. This shows that the current tracer is "irqsoff" tracing the time
  740. for which interrupts were disabled. It gives the trace version (which
  741. never changes) and the version of the kernel upon which this was executed on
  742. (3.8). Then it displays the max latency in microseconds (259 us). The number
  743. of trace entries displayed and the total number (both are four: #4/4).
  744. VP, KP, SP, and HP are always zero and are reserved for later use.
  745. #P is the number of online CPUs (#P:4).
  746. The task is the process that was running when the latency
  747. occurred. (ps pid: 6143).
  748. The start and stop (the functions in which the interrupts were
  749. disabled and enabled respectively) that caused the latencies:
  750. - __lock_task_sighand is where the interrupts were disabled.
  751. - _raw_spin_unlock_irqrestore is where they were enabled again.
  752. The next lines after the header are the trace itself. The header
  753. explains which is which.
  754. cmd: The name of the process in the trace.
  755. pid: The PID of that process.
  756. CPU#: The CPU which the process was running on.
  757. irqs-off: 'd' interrupts are disabled. '.' otherwise.
  758. .. caution:: If the architecture does not support a way to
  759. read the irq flags variable, an 'X' will always
  760. be printed here.
  761. need-resched:
  762. - 'N' both TIF_NEED_RESCHED and PREEMPT_NEED_RESCHED is set,
  763. - 'n' only TIF_NEED_RESCHED is set,
  764. - 'p' only PREEMPT_NEED_RESCHED is set,
  765. - '.' otherwise.
  766. hardirq/softirq:
  767. - 'Z' - NMI occurred inside a hardirq
  768. - 'z' - NMI is running
  769. - 'H' - hard irq occurred inside a softirq.
  770. - 'h' - hard irq is running
  771. - 's' - soft irq is running
  772. - '.' - normal context.
  773. preempt-depth: The level of preempt_disabled
  774. The above is mostly meaningful for kernel developers.
  775. time:
  776. When the latency-format option is enabled, the trace file
  777. output includes a timestamp relative to the start of the
  778. trace. This differs from the output when latency-format
  779. is disabled, which includes an absolute timestamp.
  780. delay:
  781. This is just to help catch your eye a bit better. And
  782. needs to be fixed to be only relative to the same CPU.
  783. The marks are determined by the difference between this
  784. current trace and the next trace.
  785. - '$' - greater than 1 second
  786. - '@' - greater than 100 millisecond
  787. - '*' - greater than 10 millisecond
  788. - '#' - greater than 1000 microsecond
  789. - '!' - greater than 100 microsecond
  790. - '+' - greater than 10 microsecond
  791. - ' ' - less than or equal to 10 microsecond.
  792. The rest is the same as the 'trace' file.
  793. Note, the latency tracers will usually end with a back trace
  794. to easily find where the latency occurred.
  795. trace_options
  796. -------------
  797. The trace_options file (or the options directory) is used to control
  798. what gets printed in the trace output, or manipulate the tracers.
  799. To see what is available, simply cat the file::
  800. cat trace_options
  801. print-parent
  802. nosym-offset
  803. nosym-addr
  804. noverbose
  805. noraw
  806. nohex
  807. nobin
  808. noblock
  809. nofields
  810. trace_printk
  811. annotate
  812. nouserstacktrace
  813. nosym-userobj
  814. noprintk-msg-only
  815. context-info
  816. nolatency-format
  817. record-cmd
  818. norecord-tgid
  819. overwrite
  820. nodisable_on_free
  821. irq-info
  822. markers
  823. noevent-fork
  824. function-trace
  825. nofunction-fork
  826. nodisplay-graph
  827. nostacktrace
  828. nobranch
  829. To disable one of the options, echo in the option prepended with
  830. "no"::
  831. echo noprint-parent > trace_options
  832. To enable an option, leave off the "no"::
  833. echo sym-offset > trace_options
  834. Here are the available options:
  835. print-parent
  836. On function traces, display the calling (parent)
  837. function as well as the function being traced.
  838. ::
  839. print-parent:
  840. bash-4000 [01] 1477.606694: simple_strtoul <-kstrtoul
  841. noprint-parent:
  842. bash-4000 [01] 1477.606694: simple_strtoul
  843. sym-offset
  844. Display not only the function name, but also the
  845. offset in the function. For example, instead of
  846. seeing just "ktime_get", you will see
  847. "ktime_get+0xb/0x20".
  848. ::
  849. sym-offset:
  850. bash-4000 [01] 1477.606694: simple_strtoul+0x6/0xa0
  851. sym-addr
  852. This will also display the function address as well
  853. as the function name.
  854. ::
  855. sym-addr:
  856. bash-4000 [01] 1477.606694: simple_strtoul <c0339346>
  857. verbose
  858. This deals with the trace file when the
  859. latency-format option is enabled.
  860. ::
  861. bash 4000 1 0 00000000 00010a95 [58127d26] 1720.415ms \
  862. (+0.000ms): simple_strtoul (kstrtoul)
  863. raw
  864. This will display raw numbers. This option is best for
  865. use with user applications that can translate the raw
  866. numbers better than having it done in the kernel.
  867. hex
  868. Similar to raw, but the numbers will be in a hexadecimal format.
  869. bin
  870. This will print out the formats in raw binary.
  871. block
  872. When set, reading trace_pipe will not block when polled.
  873. fields
  874. Print the fields as described by their types. This is a better
  875. option than using hex, bin or raw, as it gives a better parsing
  876. of the content of the event.
  877. trace_printk
  878. Can disable trace_printk() from writing into the buffer.
  879. trace_printk_dest
  880. Set to have trace_printk() and similar internal tracing functions
  881. write into this instance. Note, only one trace instance can have
  882. this set. By setting this flag, it clears the trace_printk_dest flag
  883. of the instance that had it set previously. By default, the top
  884. level trace has this set, and will get it set again if another
  885. instance has it set then clears it.
  886. This flag cannot be cleared by the top level instance, as it is the
  887. default instance. The only way the top level instance has this flag
  888. cleared, is by it being set in another instance.
  889. annotate
  890. It is sometimes confusing when the CPU buffers are full
  891. and one CPU buffer had a lot of events recently, thus
  892. a shorter time frame, were another CPU may have only had
  893. a few events, which lets it have older events. When
  894. the trace is reported, it shows the oldest events first,
  895. and it may look like only one CPU ran (the one with the
  896. oldest events). When the annotate option is set, it will
  897. display when a new CPU buffer started::
  898. <idle>-0 [001] dNs4 21169.031481: wake_up_idle_cpu <-add_timer_on
  899. <idle>-0 [001] dNs4 21169.031482: _raw_spin_unlock_irqrestore <-add_timer_on
  900. <idle>-0 [001] .Ns4 21169.031484: sub_preempt_count <-_raw_spin_unlock_irqrestore
  901. ##### CPU 2 buffer started ####
  902. <idle>-0 [002] .N.1 21169.031484: rcu_idle_exit <-cpu_idle
  903. <idle>-0 [001] .Ns3 21169.031484: _raw_spin_unlock <-clocksource_watchdog
  904. <idle>-0 [001] .Ns3 21169.031485: sub_preempt_count <-_raw_spin_unlock
  905. userstacktrace
  906. This option changes the trace. It records a
  907. stacktrace of the current user space thread after
  908. each trace event.
  909. sym-userobj
  910. when user stacktrace are enabled, look up which
  911. object the address belongs to, and print a
  912. relative address. This is especially useful when
  913. ASLR is on, otherwise you don't get a chance to
  914. resolve the address to object/file/line after
  915. the app is no longer running
  916. The lookup is performed when you read
  917. trace,trace_pipe. Example::
  918. a.out-1623 [000] 40874.465068: /root/a.out[+0x480] <-/root/a.out[+0
  919. x494] <- /root/a.out[+0x4a8] <- /lib/libc-2.7.so[+0x1e1a6]
  920. printk-msg-only
  921. When set, trace_printk()s will only show the format
  922. and not their parameters (if trace_bprintk() or
  923. trace_bputs() was used to save the trace_printk()).
  924. context-info
  925. Show only the event data. Hides the comm, PID,
  926. timestamp, CPU, and other useful data.
  927. latency-format
  928. This option changes the trace output. When it is enabled,
  929. the trace displays additional information about the
  930. latency, as described in "Latency trace format".
  931. pause-on-trace
  932. When set, opening the trace file for read, will pause
  933. writing to the ring buffer (as if tracing_on was set to zero).
  934. This simulates the original behavior of the trace file.
  935. When the file is closed, tracing will be enabled again.
  936. hash-ptr
  937. When set, "%p" in the event printk format displays the
  938. hashed pointer value instead of real address.
  939. This will be useful if you want to find out which hashed
  940. value is corresponding to the real value in trace log.
  941. record-cmd
  942. When any event or tracer is enabled, a hook is enabled
  943. in the sched_switch trace point to fill comm cache
  944. with mapped pids and comms. But this may cause some
  945. overhead, and if you only care about pids, and not the
  946. name of the task, disabling this option can lower the
  947. impact of tracing. See "saved_cmdlines".
  948. record-tgid
  949. When any event or tracer is enabled, a hook is enabled
  950. in the sched_switch trace point to fill the cache of
  951. mapped Thread Group IDs (TGID) mapping to pids. See
  952. "saved_tgids".
  953. overwrite
  954. This controls what happens when the trace buffer is
  955. full. If "1" (default), the oldest events are
  956. discarded and overwritten. If "0", then the newest
  957. events are discarded.
  958. (see per_cpu/cpu0/stats for overrun and dropped)
  959. disable_on_free
  960. When the free_buffer is closed, tracing will
  961. stop (tracing_on set to 0).
  962. irq-info
  963. Shows the interrupt, preempt count, need resched data.
  964. When disabled, the trace looks like::
  965. # tracer: function
  966. #
  967. # entries-in-buffer/entries-written: 144405/9452052 #P:4
  968. #
  969. # TASK-PID CPU# TIMESTAMP FUNCTION
  970. # | | | | |
  971. <idle>-0 [002] 23636.756054: ttwu_do_activate.constprop.89 <-try_to_wake_up
  972. <idle>-0 [002] 23636.756054: activate_task <-ttwu_do_activate.constprop.89
  973. <idle>-0 [002] 23636.756055: enqueue_task <-activate_task
  974. markers
  975. When set, the trace_marker is writable (only by root).
  976. When disabled, the trace_marker will error with EINVAL
  977. on write.
  978. event-fork
  979. When set, tasks with PIDs listed in set_event_pid will have
  980. the PIDs of their children added to set_event_pid when those
  981. tasks fork. Also, when tasks with PIDs in set_event_pid exit,
  982. their PIDs will be removed from the file.
  983. This affects PIDs listed in set_event_notrace_pid as well.
  984. function-trace
  985. The latency tracers will enable function tracing
  986. if this option is enabled (default it is). When
  987. it is disabled, the latency tracers do not trace
  988. functions. This keeps the overhead of the tracer down
  989. when performing latency tests.
  990. function-fork
  991. When set, tasks with PIDs listed in set_ftrace_pid will
  992. have the PIDs of their children added to set_ftrace_pid
  993. when those tasks fork. Also, when tasks with PIDs in
  994. set_ftrace_pid exit, their PIDs will be removed from the
  995. file.
  996. This affects PIDs in set_ftrace_notrace_pid as well.
  997. display-graph
  998. When set, the latency tracers (irqsoff, wakeup, etc) will
  999. use function graph tracing instead of function tracing.
  1000. stacktrace
  1001. When set, a stack trace is recorded after any trace event
  1002. is recorded.
  1003. branch
  1004. Enable branch tracing with the tracer. This enables branch
  1005. tracer along with the currently set tracer. Enabling this
  1006. with the "nop" tracer is the same as just enabling the
  1007. "branch" tracer.
  1008. .. tip:: Some tracers have their own options. They only appear in this
  1009. file when the tracer is active. They always appear in the
  1010. options directory.
  1011. Here are the per tracer options:
  1012. Options for function tracer:
  1013. func_stack_trace
  1014. When set, a stack trace is recorded after every
  1015. function that is recorded. NOTE! Limit the functions
  1016. that are recorded before enabling this, with
  1017. "set_ftrace_filter" otherwise the system performance
  1018. will be critically degraded. Remember to disable
  1019. this option before clearing the function filter.
  1020. Options for function_graph tracer:
  1021. Since the function_graph tracer has a slightly different output
  1022. it has its own options to control what is displayed.
  1023. funcgraph-overrun
  1024. When set, the "overrun" of the graph stack is
  1025. displayed after each function traced. The
  1026. overrun, is when the stack depth of the calls
  1027. is greater than what is reserved for each task.
  1028. Each task has a fixed array of functions to
  1029. trace in the call graph. If the depth of the
  1030. calls exceeds that, the function is not traced.
  1031. The overrun is the number of functions missed
  1032. due to exceeding this array.
  1033. funcgraph-cpu
  1034. When set, the CPU number of the CPU where the trace
  1035. occurred is displayed.
  1036. funcgraph-overhead
  1037. When set, if the function takes longer than
  1038. A certain amount, then a delay marker is
  1039. displayed. See "delay" above, under the
  1040. header description.
  1041. funcgraph-proc
  1042. Unlike other tracers, the process' command line
  1043. is not displayed by default, but instead only
  1044. when a task is traced in and out during a context
  1045. switch. Enabling this options has the command
  1046. of each process displayed at every line.
  1047. funcgraph-duration
  1048. At the end of each function (the return)
  1049. the duration of the amount of time in the
  1050. function is displayed in microseconds.
  1051. funcgraph-abstime
  1052. When set, the timestamp is displayed at each line.
  1053. funcgraph-irqs
  1054. When disabled, functions that happen inside an
  1055. interrupt will not be traced.
  1056. funcgraph-tail
  1057. When set, the return event will include the function
  1058. that it represents. By default this is off, and
  1059. only a closing curly bracket "}" is displayed for
  1060. the return of a function.
  1061. funcgraph-retval
  1062. When set, the return value of each traced function
  1063. will be printed after an equal sign "=". By default
  1064. this is off.
  1065. funcgraph-retval-hex
  1066. When set, the return value will always be printed
  1067. in hexadecimal format. If the option is not set and
  1068. the return value is an error code, it will be printed
  1069. in signed decimal format; otherwise it will also be
  1070. printed in hexadecimal format. By default, this option
  1071. is off.
  1072. sleep-time
  1073. When running function graph tracer, to include
  1074. the time a task schedules out in its function.
  1075. When enabled, it will account time the task has been
  1076. scheduled out as part of the function call.
  1077. graph-time
  1078. When running function profiler with function graph tracer,
  1079. to include the time to call nested functions. When this is
  1080. not set, the time reported for the function will only
  1081. include the time the function itself executed for, not the
  1082. time for functions that it called.
  1083. Options for blk tracer:
  1084. blk_classic
  1085. Shows a more minimalistic output.
  1086. irqsoff
  1087. -------
  1088. When interrupts are disabled, the CPU can not react to any other
  1089. external event (besides NMIs and SMIs). This prevents the timer
  1090. interrupt from triggering or the mouse interrupt from letting
  1091. the kernel know of a new mouse event. The result is a latency
  1092. with the reaction time.
  1093. The irqsoff tracer tracks the time for which interrupts are
  1094. disabled. When a new maximum latency is hit, the tracer saves
  1095. the trace leading up to that latency point so that every time a
  1096. new maximum is reached, the old saved trace is discarded and the
  1097. new trace is saved.
  1098. To reset the maximum, echo 0 into tracing_max_latency. Here is
  1099. an example::
  1100. # echo 0 > options/function-trace
  1101. # echo irqsoff > current_tracer
  1102. # echo 1 > tracing_on
  1103. # echo 0 > tracing_max_latency
  1104. # ls -ltr
  1105. [...]
  1106. # echo 0 > tracing_on
  1107. # cat trace
  1108. # tracer: irqsoff
  1109. #
  1110. # irqsoff latency trace v1.1.5 on 3.8.0-test+
  1111. # --------------------------------------------------------------------
  1112. # latency: 16 us, #4/4, CPU#0 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1113. # -----------------
  1114. # | task: swapper/0-0 (uid:0 nice:0 policy:0 rt_prio:0)
  1115. # -----------------
  1116. # => started at: run_timer_softirq
  1117. # => ended at: run_timer_softirq
  1118. #
  1119. #
  1120. # _------=> CPU#
  1121. # / _-----=> irqs-off
  1122. # | / _----=> need-resched
  1123. # || / _---=> hardirq/softirq
  1124. # ||| / _--=> preempt-depth
  1125. # |||| / delay
  1126. # cmd pid ||||| time | caller
  1127. # \ / ||||| \ | /
  1128. <idle>-0 0d.s2 0us+: _raw_spin_lock_irq <-run_timer_softirq
  1129. <idle>-0 0dNs3 17us : _raw_spin_unlock_irq <-run_timer_softirq
  1130. <idle>-0 0dNs3 17us+: trace_hardirqs_on <-run_timer_softirq
  1131. <idle>-0 0dNs3 25us : <stack trace>
  1132. => _raw_spin_unlock_irq
  1133. => run_timer_softirq
  1134. => __do_softirq
  1135. => call_softirq
  1136. => do_softirq
  1137. => irq_exit
  1138. => smp_apic_timer_interrupt
  1139. => apic_timer_interrupt
  1140. => rcu_idle_exit
  1141. => cpu_idle
  1142. => rest_init
  1143. => start_kernel
  1144. => x86_64_start_reservations
  1145. => x86_64_start_kernel
  1146. Here we see that we had a latency of 16 microseconds (which is
  1147. very good). The _raw_spin_lock_irq in run_timer_softirq disabled
  1148. interrupts. The difference between the 16 and the displayed
  1149. timestamp 25us occurred because the clock was incremented
  1150. between the time of recording the max latency and the time of
  1151. recording the function that had that latency.
  1152. Note the above example had function-trace not set. If we set
  1153. function-trace, we get a much larger output::
  1154. with echo 1 > options/function-trace
  1155. # tracer: irqsoff
  1156. #
  1157. # irqsoff latency trace v1.1.5 on 3.8.0-test+
  1158. # --------------------------------------------------------------------
  1159. # latency: 71 us, #168/168, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1160. # -----------------
  1161. # | task: bash-2042 (uid:0 nice:0 policy:0 rt_prio:0)
  1162. # -----------------
  1163. # => started at: ata_scsi_queuecmd
  1164. # => ended at: ata_scsi_queuecmd
  1165. #
  1166. #
  1167. # _------=> CPU#
  1168. # / _-----=> irqs-off
  1169. # | / _----=> need-resched
  1170. # || / _---=> hardirq/softirq
  1171. # ||| / _--=> preempt-depth
  1172. # |||| / delay
  1173. # cmd pid ||||| time | caller
  1174. # \ / ||||| \ | /
  1175. bash-2042 3d... 0us : _raw_spin_lock_irqsave <-ata_scsi_queuecmd
  1176. bash-2042 3d... 0us : add_preempt_count <-_raw_spin_lock_irqsave
  1177. bash-2042 3d..1 1us : ata_scsi_find_dev <-ata_scsi_queuecmd
  1178. bash-2042 3d..1 1us : __ata_scsi_find_dev <-ata_scsi_find_dev
  1179. bash-2042 3d..1 2us : ata_find_dev.part.14 <-__ata_scsi_find_dev
  1180. bash-2042 3d..1 2us : ata_qc_new_init <-__ata_scsi_queuecmd
  1181. bash-2042 3d..1 3us : ata_sg_init <-__ata_scsi_queuecmd
  1182. bash-2042 3d..1 4us : ata_scsi_rw_xlat <-__ata_scsi_queuecmd
  1183. bash-2042 3d..1 4us : ata_build_rw_tf <-ata_scsi_rw_xlat
  1184. [...]
  1185. bash-2042 3d..1 67us : delay_tsc <-__delay
  1186. bash-2042 3d..1 67us : add_preempt_count <-delay_tsc
  1187. bash-2042 3d..2 67us : sub_preempt_count <-delay_tsc
  1188. bash-2042 3d..1 67us : add_preempt_count <-delay_tsc
  1189. bash-2042 3d..2 68us : sub_preempt_count <-delay_tsc
  1190. bash-2042 3d..1 68us+: ata_bmdma_start <-ata_bmdma_qc_issue
  1191. bash-2042 3d..1 71us : _raw_spin_unlock_irqrestore <-ata_scsi_queuecmd
  1192. bash-2042 3d..1 71us : _raw_spin_unlock_irqrestore <-ata_scsi_queuecmd
  1193. bash-2042 3d..1 72us+: trace_hardirqs_on <-ata_scsi_queuecmd
  1194. bash-2042 3d..1 120us : <stack trace>
  1195. => _raw_spin_unlock_irqrestore
  1196. => ata_scsi_queuecmd
  1197. => scsi_dispatch_cmd
  1198. => scsi_request_fn
  1199. => __blk_run_queue_uncond
  1200. => __blk_run_queue
  1201. => blk_queue_bio
  1202. => submit_bio_noacct
  1203. => submit_bio
  1204. => submit_bh
  1205. => __ext3_get_inode_loc
  1206. => ext3_iget
  1207. => ext3_lookup
  1208. => lookup_real
  1209. => __lookup_hash
  1210. => walk_component
  1211. => lookup_last
  1212. => path_lookupat
  1213. => filename_lookup
  1214. => user_path_at_empty
  1215. => user_path_at
  1216. => vfs_fstatat
  1217. => vfs_stat
  1218. => sys_newstat
  1219. => system_call_fastpath
  1220. Here we traced a 71 microsecond latency. But we also see all the
  1221. functions that were called during that time. Note that by
  1222. enabling function tracing, we incur an added overhead. This
  1223. overhead may extend the latency times. But nevertheless, this
  1224. trace has provided some very helpful debugging information.
  1225. If we prefer function graph output instead of function, we can set
  1226. display-graph option::
  1227. with echo 1 > options/display-graph
  1228. # tracer: irqsoff
  1229. #
  1230. # irqsoff latency trace v1.1.5 on 4.20.0-rc6+
  1231. # --------------------------------------------------------------------
  1232. # latency: 3751 us, #274/274, CPU#0 | (M:desktop VP:0, KP:0, SP:0 HP:0 #P:4)
  1233. # -----------------
  1234. # | task: bash-1507 (uid:0 nice:0 policy:0 rt_prio:0)
  1235. # -----------------
  1236. # => started at: free_debug_processing
  1237. # => ended at: return_to_handler
  1238. #
  1239. #
  1240. # _-----=> irqs-off
  1241. # / _----=> need-resched
  1242. # | / _---=> hardirq/softirq
  1243. # || / _--=> preempt-depth
  1244. # ||| /
  1245. # REL TIME CPU TASK/PID |||| DURATION FUNCTION CALLS
  1246. # | | | | |||| | | | | | |
  1247. 0 us | 0) bash-1507 | d... | 0.000 us | _raw_spin_lock_irqsave();
  1248. 0 us | 0) bash-1507 | d..1 | 0.378 us | do_raw_spin_trylock();
  1249. 1 us | 0) bash-1507 | d..2 | | set_track() {
  1250. 2 us | 0) bash-1507 | d..2 | | save_stack_trace() {
  1251. 2 us | 0) bash-1507 | d..2 | | __save_stack_trace() {
  1252. 3 us | 0) bash-1507 | d..2 | | __unwind_start() {
  1253. 3 us | 0) bash-1507 | d..2 | | get_stack_info() {
  1254. 3 us | 0) bash-1507 | d..2 | 0.351 us | in_task_stack();
  1255. 4 us | 0) bash-1507 | d..2 | 1.107 us | }
  1256. [...]
  1257. 3750 us | 0) bash-1507 | d..1 | 0.516 us | do_raw_spin_unlock();
  1258. 3750 us | 0) bash-1507 | d..1 | 0.000 us | _raw_spin_unlock_irqrestore();
  1259. 3764 us | 0) bash-1507 | d..1 | 0.000 us | tracer_hardirqs_on();
  1260. bash-1507 0d..1 3792us : <stack trace>
  1261. => free_debug_processing
  1262. => __slab_free
  1263. => kmem_cache_free
  1264. => vm_area_free
  1265. => remove_vma
  1266. => exit_mmap
  1267. => mmput
  1268. => begin_new_exec
  1269. => load_elf_binary
  1270. => search_binary_handler
  1271. => __do_execve_file.isra.32
  1272. => __x64_sys_execve
  1273. => do_syscall_64
  1274. => entry_SYSCALL_64_after_hwframe
  1275. preemptoff
  1276. ----------
  1277. When preemption is disabled, we may be able to receive
  1278. interrupts but the task cannot be preempted and a higher
  1279. priority task must wait for preemption to be enabled again
  1280. before it can preempt a lower priority task.
  1281. The preemptoff tracer traces the places that disable preemption.
  1282. Like the irqsoff tracer, it records the maximum latency for
  1283. which preemption was disabled. The control of preemptoff tracer
  1284. is much like the irqsoff tracer.
  1285. ::
  1286. # echo 0 > options/function-trace
  1287. # echo preemptoff > current_tracer
  1288. # echo 1 > tracing_on
  1289. # echo 0 > tracing_max_latency
  1290. # ls -ltr
  1291. [...]
  1292. # echo 0 > tracing_on
  1293. # cat trace
  1294. # tracer: preemptoff
  1295. #
  1296. # preemptoff latency trace v1.1.5 on 3.8.0-test+
  1297. # --------------------------------------------------------------------
  1298. # latency: 46 us, #4/4, CPU#1 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1299. # -----------------
  1300. # | task: sshd-1991 (uid:0 nice:0 policy:0 rt_prio:0)
  1301. # -----------------
  1302. # => started at: do_IRQ
  1303. # => ended at: do_IRQ
  1304. #
  1305. #
  1306. # _------=> CPU#
  1307. # / _-----=> irqs-off
  1308. # | / _----=> need-resched
  1309. # || / _---=> hardirq/softirq
  1310. # ||| / _--=> preempt-depth
  1311. # |||| / delay
  1312. # cmd pid ||||| time | caller
  1313. # \ / ||||| \ | /
  1314. sshd-1991 1d.h. 0us+: irq_enter <-do_IRQ
  1315. sshd-1991 1d..1 46us : irq_exit <-do_IRQ
  1316. sshd-1991 1d..1 47us+: trace_preempt_on <-do_IRQ
  1317. sshd-1991 1d..1 52us : <stack trace>
  1318. => sub_preempt_count
  1319. => irq_exit
  1320. => do_IRQ
  1321. => ret_from_intr
  1322. This has some more changes. Preemption was disabled when an
  1323. interrupt came in (notice the 'h'), and was enabled on exit.
  1324. But we also see that interrupts have been disabled when entering
  1325. the preempt off section and leaving it (the 'd'). We do not know if
  1326. interrupts were enabled in the mean time or shortly after this
  1327. was over.
  1328. ::
  1329. # tracer: preemptoff
  1330. #
  1331. # preemptoff latency trace v1.1.5 on 3.8.0-test+
  1332. # --------------------------------------------------------------------
  1333. # latency: 83 us, #241/241, CPU#1 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1334. # -----------------
  1335. # | task: bash-1994 (uid:0 nice:0 policy:0 rt_prio:0)
  1336. # -----------------
  1337. # => started at: wake_up_new_task
  1338. # => ended at: task_rq_unlock
  1339. #
  1340. #
  1341. # _------=> CPU#
  1342. # / _-----=> irqs-off
  1343. # | / _----=> need-resched
  1344. # || / _---=> hardirq/softirq
  1345. # ||| / _--=> preempt-depth
  1346. # |||| / delay
  1347. # cmd pid ||||| time | caller
  1348. # \ / ||||| \ | /
  1349. bash-1994 1d..1 0us : _raw_spin_lock_irqsave <-wake_up_new_task
  1350. bash-1994 1d..1 0us : select_task_rq_fair <-select_task_rq
  1351. bash-1994 1d..1 1us : __rcu_read_lock <-select_task_rq_fair
  1352. bash-1994 1d..1 1us : source_load <-select_task_rq_fair
  1353. bash-1994 1d..1 1us : source_load <-select_task_rq_fair
  1354. [...]
  1355. bash-1994 1d..1 12us : irq_enter <-smp_apic_timer_interrupt
  1356. bash-1994 1d..1 12us : rcu_irq_enter <-irq_enter
  1357. bash-1994 1d..1 13us : add_preempt_count <-irq_enter
  1358. bash-1994 1d.h1 13us : exit_idle <-smp_apic_timer_interrupt
  1359. bash-1994 1d.h1 13us : hrtimer_interrupt <-smp_apic_timer_interrupt
  1360. bash-1994 1d.h1 13us : _raw_spin_lock <-hrtimer_interrupt
  1361. bash-1994 1d.h1 14us : add_preempt_count <-_raw_spin_lock
  1362. bash-1994 1d.h2 14us : ktime_get_update_offsets <-hrtimer_interrupt
  1363. [...]
  1364. bash-1994 1d.h1 35us : lapic_next_event <-clockevents_program_event
  1365. bash-1994 1d.h1 35us : irq_exit <-smp_apic_timer_interrupt
  1366. bash-1994 1d.h1 36us : sub_preempt_count <-irq_exit
  1367. bash-1994 1d..2 36us : do_softirq <-irq_exit
  1368. bash-1994 1d..2 36us : __do_softirq <-call_softirq
  1369. bash-1994 1d..2 36us : __local_bh_disable <-__do_softirq
  1370. bash-1994 1d.s2 37us : add_preempt_count <-_raw_spin_lock_irq
  1371. bash-1994 1d.s3 38us : _raw_spin_unlock <-run_timer_softirq
  1372. bash-1994 1d.s3 39us : sub_preempt_count <-_raw_spin_unlock
  1373. bash-1994 1d.s2 39us : call_timer_fn <-run_timer_softirq
  1374. [...]
  1375. bash-1994 1dNs2 81us : cpu_needs_another_gp <-rcu_process_callbacks
  1376. bash-1994 1dNs2 82us : __local_bh_enable <-__do_softirq
  1377. bash-1994 1dNs2 82us : sub_preempt_count <-__local_bh_enable
  1378. bash-1994 1dN.2 82us : idle_cpu <-irq_exit
  1379. bash-1994 1dN.2 83us : rcu_irq_exit <-irq_exit
  1380. bash-1994 1dN.2 83us : sub_preempt_count <-irq_exit
  1381. bash-1994 1.N.1 84us : _raw_spin_unlock_irqrestore <-task_rq_unlock
  1382. bash-1994 1.N.1 84us+: trace_preempt_on <-task_rq_unlock
  1383. bash-1994 1.N.1 104us : <stack trace>
  1384. => sub_preempt_count
  1385. => _raw_spin_unlock_irqrestore
  1386. => task_rq_unlock
  1387. => wake_up_new_task
  1388. => do_fork
  1389. => sys_clone
  1390. => stub_clone
  1391. The above is an example of the preemptoff trace with
  1392. function-trace set. Here we see that interrupts were not disabled
  1393. the entire time. The irq_enter code lets us know that we entered
  1394. an interrupt 'h'. Before that, the functions being traced still
  1395. show that it is not in an interrupt, but we can see from the
  1396. functions themselves that this is not the case.
  1397. preemptirqsoff
  1398. --------------
  1399. Knowing the locations that have interrupts disabled or
  1400. preemption disabled for the longest times is helpful. But
  1401. sometimes we would like to know when either preemption and/or
  1402. interrupts are disabled.
  1403. Consider the following code::
  1404. local_irq_disable();
  1405. call_function_with_irqs_off();
  1406. preempt_disable();
  1407. call_function_with_irqs_and_preemption_off();
  1408. local_irq_enable();
  1409. call_function_with_preemption_off();
  1410. preempt_enable();
  1411. The irqsoff tracer will record the total length of
  1412. call_function_with_irqs_off() and
  1413. call_function_with_irqs_and_preemption_off().
  1414. The preemptoff tracer will record the total length of
  1415. call_function_with_irqs_and_preemption_off() and
  1416. call_function_with_preemption_off().
  1417. But neither will trace the time that interrupts and/or
  1418. preemption is disabled. This total time is the time that we can
  1419. not schedule. To record this time, use the preemptirqsoff
  1420. tracer.
  1421. Again, using this trace is much like the irqsoff and preemptoff
  1422. tracers.
  1423. ::
  1424. # echo 0 > options/function-trace
  1425. # echo preemptirqsoff > current_tracer
  1426. # echo 1 > tracing_on
  1427. # echo 0 > tracing_max_latency
  1428. # ls -ltr
  1429. [...]
  1430. # echo 0 > tracing_on
  1431. # cat trace
  1432. # tracer: preemptirqsoff
  1433. #
  1434. # preemptirqsoff latency trace v1.1.5 on 3.8.0-test+
  1435. # --------------------------------------------------------------------
  1436. # latency: 100 us, #4/4, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1437. # -----------------
  1438. # | task: ls-2230 (uid:0 nice:0 policy:0 rt_prio:0)
  1439. # -----------------
  1440. # => started at: ata_scsi_queuecmd
  1441. # => ended at: ata_scsi_queuecmd
  1442. #
  1443. #
  1444. # _------=> CPU#
  1445. # / _-----=> irqs-off
  1446. # | / _----=> need-resched
  1447. # || / _---=> hardirq/softirq
  1448. # ||| / _--=> preempt-depth
  1449. # |||| / delay
  1450. # cmd pid ||||| time | caller
  1451. # \ / ||||| \ | /
  1452. ls-2230 3d... 0us+: _raw_spin_lock_irqsave <-ata_scsi_queuecmd
  1453. ls-2230 3...1 100us : _raw_spin_unlock_irqrestore <-ata_scsi_queuecmd
  1454. ls-2230 3...1 101us+: trace_preempt_on <-ata_scsi_queuecmd
  1455. ls-2230 3...1 111us : <stack trace>
  1456. => sub_preempt_count
  1457. => _raw_spin_unlock_irqrestore
  1458. => ata_scsi_queuecmd
  1459. => scsi_dispatch_cmd
  1460. => scsi_request_fn
  1461. => __blk_run_queue_uncond
  1462. => __blk_run_queue
  1463. => blk_queue_bio
  1464. => submit_bio_noacct
  1465. => submit_bio
  1466. => submit_bh
  1467. => ext3_bread
  1468. => ext3_dir_bread
  1469. => htree_dirblock_to_tree
  1470. => ext3_htree_fill_tree
  1471. => ext3_readdir
  1472. => vfs_readdir
  1473. => sys_getdents
  1474. => system_call_fastpath
  1475. The trace_hardirqs_off_thunk is called from assembly on x86 when
  1476. interrupts are disabled in the assembly code. Without the
  1477. function tracing, we do not know if interrupts were enabled
  1478. within the preemption points. We do see that it started with
  1479. preemption enabled.
  1480. Here is a trace with function-trace set::
  1481. # tracer: preemptirqsoff
  1482. #
  1483. # preemptirqsoff latency trace v1.1.5 on 3.8.0-test+
  1484. # --------------------------------------------------------------------
  1485. # latency: 161 us, #339/339, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1486. # -----------------
  1487. # | task: ls-2269 (uid:0 nice:0 policy:0 rt_prio:0)
  1488. # -----------------
  1489. # => started at: schedule
  1490. # => ended at: mutex_unlock
  1491. #
  1492. #
  1493. # _------=> CPU#
  1494. # / _-----=> irqs-off
  1495. # | / _----=> need-resched
  1496. # || / _---=> hardirq/softirq
  1497. # ||| / _--=> preempt-depth
  1498. # |||| / delay
  1499. # cmd pid ||||| time | caller
  1500. # \ / ||||| \ | /
  1501. kworker/-59 3...1 0us : __schedule <-schedule
  1502. kworker/-59 3d..1 0us : rcu_preempt_qs <-rcu_note_context_switch
  1503. kworker/-59 3d..1 1us : add_preempt_count <-_raw_spin_lock_irq
  1504. kworker/-59 3d..2 1us : deactivate_task <-__schedule
  1505. kworker/-59 3d..2 1us : dequeue_task <-deactivate_task
  1506. kworker/-59 3d..2 2us : update_rq_clock <-dequeue_task
  1507. kworker/-59 3d..2 2us : dequeue_task_fair <-dequeue_task
  1508. kworker/-59 3d..2 2us : update_curr <-dequeue_task_fair
  1509. kworker/-59 3d..2 2us : update_min_vruntime <-update_curr
  1510. kworker/-59 3d..2 3us : cpuacct_charge <-update_curr
  1511. kworker/-59 3d..2 3us : __rcu_read_lock <-cpuacct_charge
  1512. kworker/-59 3d..2 3us : __rcu_read_unlock <-cpuacct_charge
  1513. kworker/-59 3d..2 3us : update_cfs_rq_blocked_load <-dequeue_task_fair
  1514. kworker/-59 3d..2 4us : clear_buddies <-dequeue_task_fair
  1515. kworker/-59 3d..2 4us : account_entity_dequeue <-dequeue_task_fair
  1516. kworker/-59 3d..2 4us : update_min_vruntime <-dequeue_task_fair
  1517. kworker/-59 3d..2 4us : update_cfs_shares <-dequeue_task_fair
  1518. kworker/-59 3d..2 5us : hrtick_update <-dequeue_task_fair
  1519. kworker/-59 3d..2 5us : wq_worker_sleeping <-__schedule
  1520. kworker/-59 3d..2 5us : kthread_data <-wq_worker_sleeping
  1521. kworker/-59 3d..2 5us : put_prev_task_fair <-__schedule
  1522. kworker/-59 3d..2 6us : pick_next_task_fair <-pick_next_task
  1523. kworker/-59 3d..2 6us : clear_buddies <-pick_next_task_fair
  1524. kworker/-59 3d..2 6us : set_next_entity <-pick_next_task_fair
  1525. kworker/-59 3d..2 6us : update_stats_wait_end <-set_next_entity
  1526. ls-2269 3d..2 7us : finish_task_switch <-__schedule
  1527. ls-2269 3d..2 7us : _raw_spin_unlock_irq <-finish_task_switch
  1528. ls-2269 3d..2 8us : do_IRQ <-ret_from_intr
  1529. ls-2269 3d..2 8us : irq_enter <-do_IRQ
  1530. ls-2269 3d..2 8us : rcu_irq_enter <-irq_enter
  1531. ls-2269 3d..2 9us : add_preempt_count <-irq_enter
  1532. ls-2269 3d.h2 9us : exit_idle <-do_IRQ
  1533. [...]
  1534. ls-2269 3d.h3 20us : sub_preempt_count <-_raw_spin_unlock
  1535. ls-2269 3d.h2 20us : irq_exit <-do_IRQ
  1536. ls-2269 3d.h2 21us : sub_preempt_count <-irq_exit
  1537. ls-2269 3d..3 21us : do_softirq <-irq_exit
  1538. ls-2269 3d..3 21us : __do_softirq <-call_softirq
  1539. ls-2269 3d..3 21us+: __local_bh_disable <-__do_softirq
  1540. ls-2269 3d.s4 29us : sub_preempt_count <-_local_bh_enable_ip
  1541. ls-2269 3d.s5 29us : sub_preempt_count <-_local_bh_enable_ip
  1542. ls-2269 3d.s5 31us : do_IRQ <-ret_from_intr
  1543. ls-2269 3d.s5 31us : irq_enter <-do_IRQ
  1544. ls-2269 3d.s5 31us : rcu_irq_enter <-irq_enter
  1545. [...]
  1546. ls-2269 3d.s5 31us : rcu_irq_enter <-irq_enter
  1547. ls-2269 3d.s5 32us : add_preempt_count <-irq_enter
  1548. ls-2269 3d.H5 32us : exit_idle <-do_IRQ
  1549. ls-2269 3d.H5 32us : handle_irq <-do_IRQ
  1550. ls-2269 3d.H5 32us : irq_to_desc <-handle_irq
  1551. ls-2269 3d.H5 33us : handle_fasteoi_irq <-handle_irq
  1552. [...]
  1553. ls-2269 3d.s5 158us : _raw_spin_unlock_irqrestore <-rtl8139_poll
  1554. ls-2269 3d.s3 158us : net_rps_action_and_irq_enable.isra.65 <-net_rx_action
  1555. ls-2269 3d.s3 159us : __local_bh_enable <-__do_softirq
  1556. ls-2269 3d.s3 159us : sub_preempt_count <-__local_bh_enable
  1557. ls-2269 3d..3 159us : idle_cpu <-irq_exit
  1558. ls-2269 3d..3 159us : rcu_irq_exit <-irq_exit
  1559. ls-2269 3d..3 160us : sub_preempt_count <-irq_exit
  1560. ls-2269 3d... 161us : __mutex_unlock_slowpath <-mutex_unlock
  1561. ls-2269 3d... 162us+: trace_hardirqs_on <-mutex_unlock
  1562. ls-2269 3d... 186us : <stack trace>
  1563. => __mutex_unlock_slowpath
  1564. => mutex_unlock
  1565. => process_output
  1566. => n_tty_write
  1567. => tty_write
  1568. => vfs_write
  1569. => sys_write
  1570. => system_call_fastpath
  1571. This is an interesting trace. It started with kworker running and
  1572. scheduling out and ls taking over. But as soon as ls released the
  1573. rq lock and enabled interrupts (but not preemption) an interrupt
  1574. triggered. When the interrupt finished, it started running softirqs.
  1575. But while the softirq was running, another interrupt triggered.
  1576. When an interrupt is running inside a softirq, the annotation is 'H'.
  1577. wakeup
  1578. ------
  1579. One common case that people are interested in tracing is the
  1580. time it takes for a task that is woken to actually wake up.
  1581. Now for non Real-Time tasks, this can be arbitrary. But tracing
  1582. it nonetheless can be interesting.
  1583. Without function tracing::
  1584. # echo 0 > options/function-trace
  1585. # echo wakeup > current_tracer
  1586. # echo 1 > tracing_on
  1587. # echo 0 > tracing_max_latency
  1588. # chrt -f 5 sleep 1
  1589. # echo 0 > tracing_on
  1590. # cat trace
  1591. # tracer: wakeup
  1592. #
  1593. # wakeup latency trace v1.1.5 on 3.8.0-test+
  1594. # --------------------------------------------------------------------
  1595. # latency: 15 us, #4/4, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1596. # -----------------
  1597. # | task: kworker/3:1H-312 (uid:0 nice:-20 policy:0 rt_prio:0)
  1598. # -----------------
  1599. #
  1600. # _------=> CPU#
  1601. # / _-----=> irqs-off
  1602. # | / _----=> need-resched
  1603. # || / _---=> hardirq/softirq
  1604. # ||| / _--=> preempt-depth
  1605. # |||| / delay
  1606. # cmd pid ||||| time | caller
  1607. # \ / ||||| \ | /
  1608. <idle>-0 3dNs7 0us : 0:120:R + [003] 312:100:R kworker/3:1H
  1609. <idle>-0 3dNs7 1us+: ttwu_do_activate.constprop.87 <-try_to_wake_up
  1610. <idle>-0 3d..3 15us : __schedule <-schedule
  1611. <idle>-0 3d..3 15us : 0:120:R ==> [003] 312:100:R kworker/3:1H
  1612. The tracer only traces the highest priority task in the system
  1613. to avoid tracing the normal circumstances. Here we see that
  1614. the kworker with a nice priority of -20 (not very nice), took
  1615. just 15 microseconds from the time it woke up, to the time it
  1616. ran.
  1617. Non Real-Time tasks are not that interesting. A more interesting
  1618. trace is to concentrate only on Real-Time tasks.
  1619. wakeup_rt
  1620. ---------
  1621. In a Real-Time environment it is very important to know the
  1622. wakeup time it takes for the highest priority task that is woken
  1623. up to the time that it executes. This is also known as "schedule
  1624. latency". I stress the point that this is about RT tasks. It is
  1625. also important to know the scheduling latency of non-RT tasks,
  1626. but the average schedule latency is better for non-RT tasks.
  1627. Tools like LatencyTop are more appropriate for such
  1628. measurements.
  1629. Real-Time environments are interested in the worst case latency.
  1630. That is the longest latency it takes for something to happen,
  1631. and not the average. We can have a very fast scheduler that may
  1632. only have a large latency once in a while, but that would not
  1633. work well with Real-Time tasks. The wakeup_rt tracer was designed
  1634. to record the worst case wakeups of RT tasks. Non-RT tasks are
  1635. not recorded because the tracer only records one worst case and
  1636. tracing non-RT tasks that are unpredictable will overwrite the
  1637. worst case latency of RT tasks (just run the normal wakeup
  1638. tracer for a while to see that effect).
  1639. Since this tracer only deals with RT tasks, we will run this
  1640. slightly differently than we did with the previous tracers.
  1641. Instead of performing an 'ls', we will run 'sleep 1' under
  1642. 'chrt' which changes the priority of the task.
  1643. ::
  1644. # echo 0 > options/function-trace
  1645. # echo wakeup_rt > current_tracer
  1646. # echo 1 > tracing_on
  1647. # echo 0 > tracing_max_latency
  1648. # chrt -f 5 sleep 1
  1649. # echo 0 > tracing_on
  1650. # cat trace
  1651. # tracer: wakeup
  1652. #
  1653. # tracer: wakeup_rt
  1654. #
  1655. # wakeup_rt latency trace v1.1.5 on 3.8.0-test+
  1656. # --------------------------------------------------------------------
  1657. # latency: 5 us, #4/4, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1658. # -----------------
  1659. # | task: sleep-2389 (uid:0 nice:0 policy:1 rt_prio:5)
  1660. # -----------------
  1661. #
  1662. # _------=> CPU#
  1663. # / _-----=> irqs-off
  1664. # | / _----=> need-resched
  1665. # || / _---=> hardirq/softirq
  1666. # ||| / _--=> preempt-depth
  1667. # |||| / delay
  1668. # cmd pid ||||| time | caller
  1669. # \ / ||||| \ | /
  1670. <idle>-0 3d.h4 0us : 0:120:R + [003] 2389: 94:R sleep
  1671. <idle>-0 3d.h4 1us+: ttwu_do_activate.constprop.87 <-try_to_wake_up
  1672. <idle>-0 3d..3 5us : __schedule <-schedule
  1673. <idle>-0 3d..3 5us : 0:120:R ==> [003] 2389: 94:R sleep
  1674. Running this on an idle system, we see that it only took 5 microseconds
  1675. to perform the task switch. Note, since the trace point in the schedule
  1676. is before the actual "switch", we stop the tracing when the recorded task
  1677. is about to schedule in. This may change if we add a new marker at the
  1678. end of the scheduler.
  1679. Notice that the recorded task is 'sleep' with the PID of 2389
  1680. and it has an rt_prio of 5. This priority is user-space priority
  1681. and not the internal kernel priority. The policy is 1 for
  1682. SCHED_FIFO and 2 for SCHED_RR.
  1683. Note, that the trace data shows the internal priority (99 - rtprio).
  1684. ::
  1685. <idle>-0 3d..3 5us : 0:120:R ==> [003] 2389: 94:R sleep
  1686. The 0:120:R means idle was running with a nice priority of 0 (120 - 120)
  1687. and in the running state 'R'. The sleep task was scheduled in with
  1688. 2389: 94:R. That is the priority is the kernel rtprio (99 - 5 = 94)
  1689. and it too is in the running state.
  1690. Doing the same with chrt -r 5 and function-trace set.
  1691. ::
  1692. echo 1 > options/function-trace
  1693. # tracer: wakeup_rt
  1694. #
  1695. # wakeup_rt latency trace v1.1.5 on 3.8.0-test+
  1696. # --------------------------------------------------------------------
  1697. # latency: 29 us, #85/85, CPU#3 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1698. # -----------------
  1699. # | task: sleep-2448 (uid:0 nice:0 policy:1 rt_prio:5)
  1700. # -----------------
  1701. #
  1702. # _------=> CPU#
  1703. # / _-----=> irqs-off
  1704. # | / _----=> need-resched
  1705. # || / _---=> hardirq/softirq
  1706. # ||| / _--=> preempt-depth
  1707. # |||| / delay
  1708. # cmd pid ||||| time | caller
  1709. # \ / ||||| \ | /
  1710. <idle>-0 3d.h4 1us+: 0:120:R + [003] 2448: 94:R sleep
  1711. <idle>-0 3d.h4 2us : ttwu_do_activate.constprop.87 <-try_to_wake_up
  1712. <idle>-0 3d.h3 3us : check_preempt_curr <-ttwu_do_wakeup
  1713. <idle>-0 3d.h3 3us : resched_curr <-check_preempt_curr
  1714. <idle>-0 3dNh3 4us : task_woken_rt <-ttwu_do_wakeup
  1715. <idle>-0 3dNh3 4us : _raw_spin_unlock <-try_to_wake_up
  1716. <idle>-0 3dNh3 4us : sub_preempt_count <-_raw_spin_unlock
  1717. <idle>-0 3dNh2 5us : ttwu_stat <-try_to_wake_up
  1718. <idle>-0 3dNh2 5us : _raw_spin_unlock_irqrestore <-try_to_wake_up
  1719. <idle>-0 3dNh2 6us : sub_preempt_count <-_raw_spin_unlock_irqrestore
  1720. <idle>-0 3dNh1 6us : _raw_spin_lock <-__run_hrtimer
  1721. <idle>-0 3dNh1 6us : add_preempt_count <-_raw_spin_lock
  1722. <idle>-0 3dNh2 7us : _raw_spin_unlock <-hrtimer_interrupt
  1723. <idle>-0 3dNh2 7us : sub_preempt_count <-_raw_spin_unlock
  1724. <idle>-0 3dNh1 7us : tick_program_event <-hrtimer_interrupt
  1725. <idle>-0 3dNh1 7us : clockevents_program_event <-tick_program_event
  1726. <idle>-0 3dNh1 8us : ktime_get <-clockevents_program_event
  1727. <idle>-0 3dNh1 8us : lapic_next_event <-clockevents_program_event
  1728. <idle>-0 3dNh1 8us : irq_exit <-smp_apic_timer_interrupt
  1729. <idle>-0 3dNh1 9us : sub_preempt_count <-irq_exit
  1730. <idle>-0 3dN.2 9us : idle_cpu <-irq_exit
  1731. <idle>-0 3dN.2 9us : rcu_irq_exit <-irq_exit
  1732. <idle>-0 3dN.2 10us : rcu_eqs_enter_common.isra.45 <-rcu_irq_exit
  1733. <idle>-0 3dN.2 10us : sub_preempt_count <-irq_exit
  1734. <idle>-0 3.N.1 11us : rcu_idle_exit <-cpu_idle
  1735. <idle>-0 3dN.1 11us : rcu_eqs_exit_common.isra.43 <-rcu_idle_exit
  1736. <idle>-0 3.N.1 11us : tick_nohz_idle_exit <-cpu_idle
  1737. <idle>-0 3dN.1 12us : menu_hrtimer_cancel <-tick_nohz_idle_exit
  1738. <idle>-0 3dN.1 12us : ktime_get <-tick_nohz_idle_exit
  1739. <idle>-0 3dN.1 12us : tick_do_update_jiffies64 <-tick_nohz_idle_exit
  1740. <idle>-0 3dN.1 13us : cpu_load_update_nohz <-tick_nohz_idle_exit
  1741. <idle>-0 3dN.1 13us : _raw_spin_lock <-cpu_load_update_nohz
  1742. <idle>-0 3dN.1 13us : add_preempt_count <-_raw_spin_lock
  1743. <idle>-0 3dN.2 13us : __cpu_load_update <-cpu_load_update_nohz
  1744. <idle>-0 3dN.2 14us : sched_avg_update <-__cpu_load_update
  1745. <idle>-0 3dN.2 14us : _raw_spin_unlock <-cpu_load_update_nohz
  1746. <idle>-0 3dN.2 14us : sub_preempt_count <-_raw_spin_unlock
  1747. <idle>-0 3dN.1 15us : calc_load_nohz_stop <-tick_nohz_idle_exit
  1748. <idle>-0 3dN.1 15us : touch_softlockup_watchdog <-tick_nohz_idle_exit
  1749. <idle>-0 3dN.1 15us : hrtimer_cancel <-tick_nohz_idle_exit
  1750. <idle>-0 3dN.1 15us : hrtimer_try_to_cancel <-hrtimer_cancel
  1751. <idle>-0 3dN.1 16us : lock_hrtimer_base.isra.18 <-hrtimer_try_to_cancel
  1752. <idle>-0 3dN.1 16us : _raw_spin_lock_irqsave <-lock_hrtimer_base.isra.18
  1753. <idle>-0 3dN.1 16us : add_preempt_count <-_raw_spin_lock_irqsave
  1754. <idle>-0 3dN.2 17us : __remove_hrtimer <-remove_hrtimer.part.16
  1755. <idle>-0 3dN.2 17us : hrtimer_force_reprogram <-__remove_hrtimer
  1756. <idle>-0 3dN.2 17us : tick_program_event <-hrtimer_force_reprogram
  1757. <idle>-0 3dN.2 18us : clockevents_program_event <-tick_program_event
  1758. <idle>-0 3dN.2 18us : ktime_get <-clockevents_program_event
  1759. <idle>-0 3dN.2 18us : lapic_next_event <-clockevents_program_event
  1760. <idle>-0 3dN.2 19us : _raw_spin_unlock_irqrestore <-hrtimer_try_to_cancel
  1761. <idle>-0 3dN.2 19us : sub_preempt_count <-_raw_spin_unlock_irqrestore
  1762. <idle>-0 3dN.1 19us : hrtimer_forward <-tick_nohz_idle_exit
  1763. <idle>-0 3dN.1 20us : ktime_add_safe <-hrtimer_forward
  1764. <idle>-0 3dN.1 20us : ktime_add_safe <-hrtimer_forward
  1765. <idle>-0 3dN.1 20us : hrtimer_start_range_ns <-hrtimer_start_expires.constprop.11
  1766. <idle>-0 3dN.1 20us : __hrtimer_start_range_ns <-hrtimer_start_range_ns
  1767. <idle>-0 3dN.1 21us : lock_hrtimer_base.isra.18 <-__hrtimer_start_range_ns
  1768. <idle>-0 3dN.1 21us : _raw_spin_lock_irqsave <-lock_hrtimer_base.isra.18
  1769. <idle>-0 3dN.1 21us : add_preempt_count <-_raw_spin_lock_irqsave
  1770. <idle>-0 3dN.2 22us : ktime_add_safe <-__hrtimer_start_range_ns
  1771. <idle>-0 3dN.2 22us : enqueue_hrtimer <-__hrtimer_start_range_ns
  1772. <idle>-0 3dN.2 22us : tick_program_event <-__hrtimer_start_range_ns
  1773. <idle>-0 3dN.2 23us : clockevents_program_event <-tick_program_event
  1774. <idle>-0 3dN.2 23us : ktime_get <-clockevents_program_event
  1775. <idle>-0 3dN.2 23us : lapic_next_event <-clockevents_program_event
  1776. <idle>-0 3dN.2 24us : _raw_spin_unlock_irqrestore <-__hrtimer_start_range_ns
  1777. <idle>-0 3dN.2 24us : sub_preempt_count <-_raw_spin_unlock_irqrestore
  1778. <idle>-0 3dN.1 24us : account_idle_ticks <-tick_nohz_idle_exit
  1779. <idle>-0 3dN.1 24us : account_idle_time <-account_idle_ticks
  1780. <idle>-0 3.N.1 25us : sub_preempt_count <-cpu_idle
  1781. <idle>-0 3.N.. 25us : schedule <-cpu_idle
  1782. <idle>-0 3.N.. 25us : __schedule <-preempt_schedule
  1783. <idle>-0 3.N.. 26us : add_preempt_count <-__schedule
  1784. <idle>-0 3.N.1 26us : rcu_note_context_switch <-__schedule
  1785. <idle>-0 3.N.1 26us : rcu_sched_qs <-rcu_note_context_switch
  1786. <idle>-0 3dN.1 27us : rcu_preempt_qs <-rcu_note_context_switch
  1787. <idle>-0 3.N.1 27us : _raw_spin_lock_irq <-__schedule
  1788. <idle>-0 3dN.1 27us : add_preempt_count <-_raw_spin_lock_irq
  1789. <idle>-0 3dN.2 28us : put_prev_task_idle <-__schedule
  1790. <idle>-0 3dN.2 28us : pick_next_task_stop <-pick_next_task
  1791. <idle>-0 3dN.2 28us : pick_next_task_rt <-pick_next_task
  1792. <idle>-0 3dN.2 29us : dequeue_pushable_task <-pick_next_task_rt
  1793. <idle>-0 3d..3 29us : __schedule <-preempt_schedule
  1794. <idle>-0 3d..3 30us : 0:120:R ==> [003] 2448: 94:R sleep
  1795. This isn't that big of a trace, even with function tracing enabled,
  1796. so I included the entire trace.
  1797. The interrupt went off while when the system was idle. Somewhere
  1798. before task_woken_rt() was called, the NEED_RESCHED flag was set,
  1799. this is indicated by the first occurrence of the 'N' flag.
  1800. Latency tracing and events
  1801. --------------------------
  1802. As function tracing can induce a much larger latency, but without
  1803. seeing what happens within the latency it is hard to know what
  1804. caused it. There is a middle ground, and that is with enabling
  1805. events.
  1806. ::
  1807. # echo 0 > options/function-trace
  1808. # echo wakeup_rt > current_tracer
  1809. # echo 1 > events/enable
  1810. # echo 1 > tracing_on
  1811. # echo 0 > tracing_max_latency
  1812. # chrt -f 5 sleep 1
  1813. # echo 0 > tracing_on
  1814. # cat trace
  1815. # tracer: wakeup_rt
  1816. #
  1817. # wakeup_rt latency trace v1.1.5 on 3.8.0-test+
  1818. # --------------------------------------------------------------------
  1819. # latency: 6 us, #12/12, CPU#2 | (M:preempt VP:0, KP:0, SP:0 HP:0 #P:4)
  1820. # -----------------
  1821. # | task: sleep-5882 (uid:0 nice:0 policy:1 rt_prio:5)
  1822. # -----------------
  1823. #
  1824. # _------=> CPU#
  1825. # / _-----=> irqs-off
  1826. # | / _----=> need-resched
  1827. # || / _---=> hardirq/softirq
  1828. # ||| / _--=> preempt-depth
  1829. # |||| / delay
  1830. # cmd pid ||||| time | caller
  1831. # \ / ||||| \ | /
  1832. <idle>-0 2d.h4 0us : 0:120:R + [002] 5882: 94:R sleep
  1833. <idle>-0 2d.h4 0us : ttwu_do_activate.constprop.87 <-try_to_wake_up
  1834. <idle>-0 2d.h4 1us : sched_wakeup: comm=sleep pid=5882 prio=94 success=1 target_cpu=002
  1835. <idle>-0 2dNh2 1us : hrtimer_expire_exit: hrtimer=ffff88007796feb8
  1836. <idle>-0 2.N.2 2us : power_end: cpu_id=2
  1837. <idle>-0 2.N.2 3us : cpu_idle: state=4294967295 cpu_id=2
  1838. <idle>-0 2dN.3 4us : hrtimer_cancel: hrtimer=ffff88007d50d5e0
  1839. <idle>-0 2dN.3 4us : hrtimer_start: hrtimer=ffff88007d50d5e0 function=tick_sched_timer expires=34311211000000 softexpires=34311211000000
  1840. <idle>-0 2.N.2 5us : rcu_utilization: Start context switch
  1841. <idle>-0 2.N.2 5us : rcu_utilization: End context switch
  1842. <idle>-0 2d..3 6us : __schedule <-schedule
  1843. <idle>-0 2d..3 6us : 0:120:R ==> [002] 5882: 94:R sleep
  1844. Hardware Latency Detector
  1845. -------------------------
  1846. The hardware latency detector is executed by enabling the "hwlat" tracer.
  1847. NOTE, this tracer will affect the performance of the system as it will
  1848. periodically make a CPU constantly busy with interrupts disabled.
  1849. ::
  1850. # echo hwlat > current_tracer
  1851. # sleep 100
  1852. # cat trace
  1853. # tracer: hwlat
  1854. #
  1855. # entries-in-buffer/entries-written: 13/13 #P:8
  1856. #
  1857. # _-----=> irqs-off
  1858. # / _----=> need-resched
  1859. # | / _---=> hardirq/softirq
  1860. # || / _--=> preempt-depth
  1861. # ||| / delay
  1862. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  1863. # | | | |||| | |
  1864. <...>-1729 [001] d... 678.473449: #1 inner/outer(us): 11/12 ts:1581527483.343962693 count:6
  1865. <...>-1729 [004] d... 689.556542: #2 inner/outer(us): 16/9 ts:1581527494.889008092 count:1
  1866. <...>-1729 [005] d... 714.756290: #3 inner/outer(us): 16/16 ts:1581527519.678961629 count:5
  1867. <...>-1729 [001] d... 718.788247: #4 inner/outer(us): 9/17 ts:1581527523.889012713 count:1
  1868. <...>-1729 [002] d... 719.796341: #5 inner/outer(us): 13/9 ts:1581527524.912872606 count:1
  1869. <...>-1729 [006] d... 844.787091: #6 inner/outer(us): 9/12 ts:1581527649.889048502 count:2
  1870. <...>-1729 [003] d... 849.827033: #7 inner/outer(us): 18/9 ts:1581527654.889013793 count:1
  1871. <...>-1729 [007] d... 853.859002: #8 inner/outer(us): 9/12 ts:1581527658.889065736 count:1
  1872. <...>-1729 [001] d... 855.874978: #9 inner/outer(us): 9/11 ts:1581527660.861991877 count:1
  1873. <...>-1729 [001] d... 863.938932: #10 inner/outer(us): 9/11 ts:1581527668.970010500 count:1 nmi-total:7 nmi-count:1
  1874. <...>-1729 [007] d... 878.050780: #11 inner/outer(us): 9/12 ts:1581527683.385002600 count:1 nmi-total:5 nmi-count:1
  1875. <...>-1729 [007] d... 886.114702: #12 inner/outer(us): 9/12 ts:1581527691.385001600 count:1
  1876. The above output is somewhat the same in the header. All events will have
  1877. interrupts disabled 'd'. Under the FUNCTION title there is:
  1878. #1
  1879. This is the count of events recorded that were greater than the
  1880. tracing_threshold (See below).
  1881. inner/outer(us): 11/11
  1882. This shows two numbers as "inner latency" and "outer latency". The test
  1883. runs in a loop checking a timestamp twice. The latency detected within
  1884. the two timestamps is the "inner latency" and the latency detected
  1885. after the previous timestamp and the next timestamp in the loop is
  1886. the "outer latency".
  1887. ts:1581527483.343962693
  1888. The absolute timestamp that the first latency was recorded in the window.
  1889. count:6
  1890. The number of times a latency was detected during the window.
  1891. nmi-total:7 nmi-count:1
  1892. On architectures that support it, if an NMI comes in during the
  1893. test, the time spent in NMI is reported in "nmi-total" (in
  1894. microseconds).
  1895. All architectures that have NMIs will show the "nmi-count" if an
  1896. NMI comes in during the test.
  1897. hwlat files:
  1898. tracing_threshold
  1899. This gets automatically set to "10" to represent 10
  1900. microseconds. This is the threshold of latency that
  1901. needs to be detected before the trace will be recorded.
  1902. Note, when hwlat tracer is finished (another tracer is
  1903. written into "current_tracer"), the original value for
  1904. tracing_threshold is placed back into this file.
  1905. hwlat_detector/width
  1906. The length of time the test runs with interrupts disabled.
  1907. hwlat_detector/window
  1908. The length of time of the window which the test
  1909. runs. That is, the test will run for "width"
  1910. microseconds per "window" microseconds
  1911. tracing_cpumask
  1912. When the test is started. A kernel thread is created that
  1913. runs the test. This thread will alternate between CPUs
  1914. listed in the tracing_cpumask between each period
  1915. (one "window"). To limit the test to specific CPUs
  1916. set the mask in this file to only the CPUs that the test
  1917. should run on.
  1918. function
  1919. --------
  1920. This tracer is the function tracer. Enabling the function tracer
  1921. can be done from the debug file system. Make sure the
  1922. ftrace_enabled is set; otherwise this tracer is a nop.
  1923. See the "ftrace_enabled" section below.
  1924. ::
  1925. # sysctl kernel.ftrace_enabled=1
  1926. # echo function > current_tracer
  1927. # echo 1 > tracing_on
  1928. # usleep 1
  1929. # echo 0 > tracing_on
  1930. # cat trace
  1931. # tracer: function
  1932. #
  1933. # entries-in-buffer/entries-written: 24799/24799 #P:4
  1934. #
  1935. # _-----=> irqs-off
  1936. # / _----=> need-resched
  1937. # | / _---=> hardirq/softirq
  1938. # || / _--=> preempt-depth
  1939. # ||| / delay
  1940. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  1941. # | | | |||| | |
  1942. bash-1994 [002] .... 3082.063030: mutex_unlock <-rb_simple_write
  1943. bash-1994 [002] .... 3082.063031: __mutex_unlock_slowpath <-mutex_unlock
  1944. bash-1994 [002] .... 3082.063031: __fsnotify_parent <-fsnotify_modify
  1945. bash-1994 [002] .... 3082.063032: fsnotify <-fsnotify_modify
  1946. bash-1994 [002] .... 3082.063032: __srcu_read_lock <-fsnotify
  1947. bash-1994 [002] .... 3082.063032: add_preempt_count <-__srcu_read_lock
  1948. bash-1994 [002] ...1 3082.063032: sub_preempt_count <-__srcu_read_lock
  1949. bash-1994 [002] .... 3082.063033: __srcu_read_unlock <-fsnotify
  1950. [...]
  1951. Note: function tracer uses ring buffers to store the above
  1952. entries. The newest data may overwrite the oldest data.
  1953. Sometimes using echo to stop the trace is not sufficient because
  1954. the tracing could have overwritten the data that you wanted to
  1955. record. For this reason, it is sometimes better to disable
  1956. tracing directly from a program. This allows you to stop the
  1957. tracing at the point that you hit the part that you are
  1958. interested in. To disable the tracing directly from a C program,
  1959. something like following code snippet can be used::
  1960. int trace_fd;
  1961. [...]
  1962. int main(int argc, char *argv[]) {
  1963. [...]
  1964. trace_fd = open(tracing_file("tracing_on"), O_WRONLY);
  1965. [...]
  1966. if (condition_hit()) {
  1967. write(trace_fd, "0", 1);
  1968. }
  1969. [...]
  1970. }
  1971. Single thread tracing
  1972. ---------------------
  1973. By writing into set_ftrace_pid you can trace a
  1974. single thread. For example::
  1975. # cat set_ftrace_pid
  1976. no pid
  1977. # echo 3111 > set_ftrace_pid
  1978. # cat set_ftrace_pid
  1979. 3111
  1980. # echo function > current_tracer
  1981. # cat trace | head
  1982. # tracer: function
  1983. #
  1984. # TASK-PID CPU# TIMESTAMP FUNCTION
  1985. # | | | | |
  1986. yum-updatesd-3111 [003] 1637.254676: finish_task_switch <-thread_return
  1987. yum-updatesd-3111 [003] 1637.254681: hrtimer_cancel <-schedule_hrtimeout_range
  1988. yum-updatesd-3111 [003] 1637.254682: hrtimer_try_to_cancel <-hrtimer_cancel
  1989. yum-updatesd-3111 [003] 1637.254683: lock_hrtimer_base <-hrtimer_try_to_cancel
  1990. yum-updatesd-3111 [003] 1637.254685: fget_light <-do_sys_poll
  1991. yum-updatesd-3111 [003] 1637.254686: pipe_poll <-do_sys_poll
  1992. # echo > set_ftrace_pid
  1993. # cat trace |head
  1994. # tracer: function
  1995. #
  1996. # TASK-PID CPU# TIMESTAMP FUNCTION
  1997. # | | | | |
  1998. ##### CPU 3 buffer started ####
  1999. yum-updatesd-3111 [003] 1701.957688: free_poll_entry <-poll_freewait
  2000. yum-updatesd-3111 [003] 1701.957689: remove_wait_queue <-free_poll_entry
  2001. yum-updatesd-3111 [003] 1701.957691: fput <-free_poll_entry
  2002. yum-updatesd-3111 [003] 1701.957692: audit_syscall_exit <-sysret_audit
  2003. yum-updatesd-3111 [003] 1701.957693: path_put <-audit_syscall_exit
  2004. If you want to trace a function when executing, you could use
  2005. something like this simple program.
  2006. ::
  2007. #include <stdio.h>
  2008. #include <stdlib.h>
  2009. #include <sys/types.h>
  2010. #include <sys/stat.h>
  2011. #include <fcntl.h>
  2012. #include <unistd.h>
  2013. #include <string.h>
  2014. #define _STR(x) #x
  2015. #define STR(x) _STR(x)
  2016. #define MAX_PATH 256
  2017. const char *find_tracefs(void)
  2018. {
  2019. static char tracefs[MAX_PATH+1];
  2020. static int tracefs_found;
  2021. char type[100];
  2022. FILE *fp;
  2023. if (tracefs_found)
  2024. return tracefs;
  2025. if ((fp = fopen("/proc/mounts","r")) == NULL) {
  2026. perror("/proc/mounts");
  2027. return NULL;
  2028. }
  2029. while (fscanf(fp, "%*s %"
  2030. STR(MAX_PATH)
  2031. "s %99s %*s %*d %*d\n",
  2032. tracefs, type) == 2) {
  2033. if (strcmp(type, "tracefs") == 0)
  2034. break;
  2035. }
  2036. fclose(fp);
  2037. if (strcmp(type, "tracefs") != 0) {
  2038. fprintf(stderr, "tracefs not mounted");
  2039. return NULL;
  2040. }
  2041. strcat(tracefs, "/tracing/");
  2042. tracefs_found = 1;
  2043. return tracefs;
  2044. }
  2045. const char *tracing_file(const char *file_name)
  2046. {
  2047. static char trace_file[MAX_PATH+1];
  2048. snprintf(trace_file, MAX_PATH, "%s/%s", find_tracefs(), file_name);
  2049. return trace_file;
  2050. }
  2051. int main (int argc, char **argv)
  2052. {
  2053. if (argc < 1)
  2054. exit(-1);
  2055. if (fork() > 0) {
  2056. int fd, ffd;
  2057. char line[64];
  2058. int s;
  2059. ffd = open(tracing_file("current_tracer"), O_WRONLY);
  2060. if (ffd < 0)
  2061. exit(-1);
  2062. write(ffd, "nop", 3);
  2063. fd = open(tracing_file("set_ftrace_pid"), O_WRONLY);
  2064. s = sprintf(line, "%d\n", getpid());
  2065. write(fd, line, s);
  2066. write(ffd, "function", 8);
  2067. close(fd);
  2068. close(ffd);
  2069. execvp(argv[1], argv+1);
  2070. }
  2071. return 0;
  2072. }
  2073. Or this simple script!
  2074. ::
  2075. #!/bin/bash
  2076. tracefs=`sed -ne 's/^tracefs \(.*\) tracefs.*/\1/p' /proc/mounts`
  2077. echo 0 > $tracefs/tracing_on
  2078. echo $$ > $tracefs/set_ftrace_pid
  2079. echo function > $tracefs/current_tracer
  2080. echo 1 > $tracefs/tracing_on
  2081. exec "$@"
  2082. function graph tracer
  2083. ---------------------------
  2084. This tracer is similar to the function tracer except that it
  2085. probes a function on its entry and its exit. This is done by
  2086. using a dynamically allocated stack of return addresses in each
  2087. task_struct. On function entry the tracer overwrites the return
  2088. address of each function traced to set a custom probe. Thus the
  2089. original return address is stored on the stack of return address
  2090. in the task_struct.
  2091. Probing on both ends of a function leads to special features
  2092. such as:
  2093. - measure of a function's time execution
  2094. - having a reliable call stack to draw function calls graph
  2095. This tracer is useful in several situations:
  2096. - you want to find the reason of a strange kernel behavior and
  2097. need to see what happens in detail on any areas (or specific
  2098. ones).
  2099. - you are experiencing weird latencies but it's difficult to
  2100. find its origin.
  2101. - you want to find quickly which path is taken by a specific
  2102. function
  2103. - you just want to peek inside a working kernel and want to see
  2104. what happens there.
  2105. ::
  2106. # tracer: function_graph
  2107. #
  2108. # CPU DURATION FUNCTION CALLS
  2109. # | | | | | | |
  2110. 0) | sys_open() {
  2111. 0) | do_sys_open() {
  2112. 0) | getname() {
  2113. 0) | kmem_cache_alloc() {
  2114. 0) 1.382 us | __might_sleep();
  2115. 0) 2.478 us | }
  2116. 0) | strncpy_from_user() {
  2117. 0) | might_fault() {
  2118. 0) 1.389 us | __might_sleep();
  2119. 0) 2.553 us | }
  2120. 0) 3.807 us | }
  2121. 0) 7.876 us | }
  2122. 0) | alloc_fd() {
  2123. 0) 0.668 us | _spin_lock();
  2124. 0) 0.570 us | expand_files();
  2125. 0) 0.586 us | _spin_unlock();
  2126. There are several columns that can be dynamically
  2127. enabled/disabled. You can use every combination of options you
  2128. want, depending on your needs.
  2129. - The cpu number on which the function executed is default
  2130. enabled. It is sometimes better to only trace one cpu (see
  2131. tracing_cpumask file) or you might sometimes see unordered
  2132. function calls while cpu tracing switch.
  2133. - hide: echo nofuncgraph-cpu > trace_options
  2134. - show: echo funcgraph-cpu > trace_options
  2135. - The duration (function's time of execution) is displayed on
  2136. the closing bracket line of a function or on the same line
  2137. than the current function in case of a leaf one. It is default
  2138. enabled.
  2139. - hide: echo nofuncgraph-duration > trace_options
  2140. - show: echo funcgraph-duration > trace_options
  2141. - The overhead field precedes the duration field in case of
  2142. reached duration thresholds.
  2143. - hide: echo nofuncgraph-overhead > trace_options
  2144. - show: echo funcgraph-overhead > trace_options
  2145. - depends on: funcgraph-duration
  2146. ie::
  2147. 3) # 1837.709 us | } /* __switch_to */
  2148. 3) | finish_task_switch() {
  2149. 3) 0.313 us | _raw_spin_unlock_irq();
  2150. 3) 3.177 us | }
  2151. 3) # 1889.063 us | } /* __schedule */
  2152. 3) ! 140.417 us | } /* __schedule */
  2153. 3) # 2034.948 us | } /* schedule */
  2154. 3) * 33998.59 us | } /* schedule_preempt_disabled */
  2155. [...]
  2156. 1) 0.260 us | msecs_to_jiffies();
  2157. 1) 0.313 us | __rcu_read_unlock();
  2158. 1) + 61.770 us | }
  2159. 1) + 64.479 us | }
  2160. 1) 0.313 us | rcu_bh_qs();
  2161. 1) 0.313 us | __local_bh_enable();
  2162. 1) ! 217.240 us | }
  2163. 1) 0.365 us | idle_cpu();
  2164. 1) | rcu_irq_exit() {
  2165. 1) 0.417 us | rcu_eqs_enter_common.isra.47();
  2166. 1) 3.125 us | }
  2167. 1) ! 227.812 us | }
  2168. 1) ! 457.395 us | }
  2169. 1) @ 119760.2 us | }
  2170. [...]
  2171. 2) | handle_IPI() {
  2172. 1) 6.979 us | }
  2173. 2) 0.417 us | scheduler_ipi();
  2174. 1) 9.791 us | }
  2175. 1) + 12.917 us | }
  2176. 2) 3.490 us | }
  2177. 1) + 15.729 us | }
  2178. 1) + 18.542 us | }
  2179. 2) $ 3594274 us | }
  2180. Flags::
  2181. + means that the function exceeded 10 usecs.
  2182. ! means that the function exceeded 100 usecs.
  2183. # means that the function exceeded 1000 usecs.
  2184. * means that the function exceeded 10 msecs.
  2185. @ means that the function exceeded 100 msecs.
  2186. $ means that the function exceeded 1 sec.
  2187. - The task/pid field displays the thread cmdline and pid which
  2188. executed the function. It is default disabled.
  2189. - hide: echo nofuncgraph-proc > trace_options
  2190. - show: echo funcgraph-proc > trace_options
  2191. ie::
  2192. # tracer: function_graph
  2193. #
  2194. # CPU TASK/PID DURATION FUNCTION CALLS
  2195. # | | | | | | | | |
  2196. 0) sh-4802 | | d_free() {
  2197. 0) sh-4802 | | call_rcu() {
  2198. 0) sh-4802 | | __call_rcu() {
  2199. 0) sh-4802 | 0.616 us | rcu_process_gp_end();
  2200. 0) sh-4802 | 0.586 us | check_for_new_grace_period();
  2201. 0) sh-4802 | 2.899 us | }
  2202. 0) sh-4802 | 4.040 us | }
  2203. 0) sh-4802 | 5.151 us | }
  2204. 0) sh-4802 | + 49.370 us | }
  2205. - The absolute time field is an absolute timestamp given by the
  2206. system clock since it started. A snapshot of this time is
  2207. given on each entry/exit of functions
  2208. - hide: echo nofuncgraph-abstime > trace_options
  2209. - show: echo funcgraph-abstime > trace_options
  2210. ie::
  2211. #
  2212. # TIME CPU DURATION FUNCTION CALLS
  2213. # | | | | | | | |
  2214. 360.774522 | 1) 0.541 us | }
  2215. 360.774522 | 1) 4.663 us | }
  2216. 360.774523 | 1) 0.541 us | __wake_up_bit();
  2217. 360.774524 | 1) 6.796 us | }
  2218. 360.774524 | 1) 7.952 us | }
  2219. 360.774525 | 1) 9.063 us | }
  2220. 360.774525 | 1) 0.615 us | journal_mark_dirty();
  2221. 360.774527 | 1) 0.578 us | __brelse();
  2222. 360.774528 | 1) | reiserfs_prepare_for_journal() {
  2223. 360.774528 | 1) | unlock_buffer() {
  2224. 360.774529 | 1) | wake_up_bit() {
  2225. 360.774529 | 1) | bit_waitqueue() {
  2226. 360.774530 | 1) 0.594 us | __phys_addr();
  2227. The function name is always displayed after the closing bracket
  2228. for a function if the start of that function is not in the
  2229. trace buffer.
  2230. Display of the function name after the closing bracket may be
  2231. enabled for functions whose start is in the trace buffer,
  2232. allowing easier searching with grep for function durations.
  2233. It is default disabled.
  2234. - hide: echo nofuncgraph-tail > trace_options
  2235. - show: echo funcgraph-tail > trace_options
  2236. Example with nofuncgraph-tail (default)::
  2237. 0) | putname() {
  2238. 0) | kmem_cache_free() {
  2239. 0) 0.518 us | __phys_addr();
  2240. 0) 1.757 us | }
  2241. 0) 2.861 us | }
  2242. Example with funcgraph-tail::
  2243. 0) | putname() {
  2244. 0) | kmem_cache_free() {
  2245. 0) 0.518 us | __phys_addr();
  2246. 0) 1.757 us | } /* kmem_cache_free() */
  2247. 0) 2.861 us | } /* putname() */
  2248. The return value of each traced function can be displayed after
  2249. an equal sign "=". When encountering system call failures, it
  2250. can be very helpful to quickly locate the function that first
  2251. returns an error code.
  2252. - hide: echo nofuncgraph-retval > trace_options
  2253. - show: echo funcgraph-retval > trace_options
  2254. Example with funcgraph-retval::
  2255. 1) | cgroup_migrate() {
  2256. 1) 0.651 us | cgroup_migrate_add_task(); /* = 0xffff93fcfd346c00 */
  2257. 1) | cgroup_migrate_execute() {
  2258. 1) | cpu_cgroup_can_attach() {
  2259. 1) | cgroup_taskset_first() {
  2260. 1) 0.732 us | cgroup_taskset_next(); /* = 0xffff93fc8fb20000 */
  2261. 1) 1.232 us | } /* cgroup_taskset_first = 0xffff93fc8fb20000 */
  2262. 1) 0.380 us | sched_rt_can_attach(); /* = 0x0 */
  2263. 1) 2.335 us | } /* cpu_cgroup_can_attach = -22 */
  2264. 1) 4.369 us | } /* cgroup_migrate_execute = -22 */
  2265. 1) 7.143 us | } /* cgroup_migrate = -22 */
  2266. The above example shows that the function cpu_cgroup_can_attach
  2267. returned the error code -22 firstly, then we can read the code
  2268. of this function to get the root cause.
  2269. When the option funcgraph-retval-hex is not set, the return value can
  2270. be displayed in a smart way. Specifically, if it is an error code,
  2271. it will be printed in signed decimal format, otherwise it will
  2272. printed in hexadecimal format.
  2273. - smart: echo nofuncgraph-retval-hex > trace_options
  2274. - hexadecimal: echo funcgraph-retval-hex > trace_options
  2275. Example with funcgraph-retval-hex::
  2276. 1) | cgroup_migrate() {
  2277. 1) 0.651 us | cgroup_migrate_add_task(); /* = 0xffff93fcfd346c00 */
  2278. 1) | cgroup_migrate_execute() {
  2279. 1) | cpu_cgroup_can_attach() {
  2280. 1) | cgroup_taskset_first() {
  2281. 1) 0.732 us | cgroup_taskset_next(); /* = 0xffff93fc8fb20000 */
  2282. 1) 1.232 us | } /* cgroup_taskset_first = 0xffff93fc8fb20000 */
  2283. 1) 0.380 us | sched_rt_can_attach(); /* = 0x0 */
  2284. 1) 2.335 us | } /* cpu_cgroup_can_attach = 0xffffffea */
  2285. 1) 4.369 us | } /* cgroup_migrate_execute = 0xffffffea */
  2286. 1) 7.143 us | } /* cgroup_migrate = 0xffffffea */
  2287. At present, there are some limitations when using the funcgraph-retval
  2288. option, and these limitations will be eliminated in the future:
  2289. - Even if the function return type is void, a return value will still
  2290. be printed, and you can just ignore it.
  2291. - Even if return values are stored in multiple registers, only the
  2292. value contained in the first register will be recorded and printed.
  2293. To illustrate, in the x86 architecture, eax and edx are used to store
  2294. a 64-bit return value, with the lower 32 bits saved in eax and the
  2295. upper 32 bits saved in edx. However, only the value stored in eax
  2296. will be recorded and printed.
  2297. - In certain procedure call standards, such as arm64's AAPCS64, when a
  2298. type is smaller than a GPR, it is the responsibility of the consumer
  2299. to perform the narrowing, and the upper bits may contain UNKNOWN values.
  2300. Therefore, it is advisable to check the code for such cases. For instance,
  2301. when using a u8 in a 64-bit GPR, bits [63:8] may contain arbitrary values,
  2302. especially when larger types are truncated, whether explicitly or implicitly.
  2303. Here are some specific cases to illustrate this point:
  2304. **Case One**:
  2305. The function narrow_to_u8 is defined as follows::
  2306. u8 narrow_to_u8(u64 val)
  2307. {
  2308. // implicitly truncated
  2309. return val;
  2310. }
  2311. It may be compiled to::
  2312. narrow_to_u8:
  2313. < ... ftrace instrumentation ... >
  2314. RET
  2315. If you pass 0x123456789abcdef to this function and want to narrow it,
  2316. it may be recorded as 0x123456789abcdef instead of 0xef.
  2317. **Case Two**:
  2318. The function error_if_not_4g_aligned is defined as follows::
  2319. int error_if_not_4g_aligned(u64 val)
  2320. {
  2321. if (val & GENMASK(31, 0))
  2322. return -EINVAL;
  2323. return 0;
  2324. }
  2325. It could be compiled to::
  2326. error_if_not_4g_aligned:
  2327. CBNZ w0, .Lnot_aligned
  2328. RET // bits [31:0] are zero, bits
  2329. // [63:32] are UNKNOWN
  2330. .Lnot_aligned:
  2331. MOV x0, #-EINVAL
  2332. RET
  2333. When passing 0x2_0000_0000 to it, the return value may be recorded as
  2334. 0x2_0000_0000 instead of 0.
  2335. You can put some comments on specific functions by using
  2336. trace_printk() For example, if you want to put a comment inside
  2337. the __might_sleep() function, you just have to include
  2338. <linux/ftrace.h> and call trace_printk() inside __might_sleep()::
  2339. trace_printk("I'm a comment!\n")
  2340. will produce::
  2341. 1) | __might_sleep() {
  2342. 1) | /* I'm a comment! */
  2343. 1) 1.449 us | }
  2344. You might find other useful features for this tracer in the
  2345. following "dynamic ftrace" section such as tracing only specific
  2346. functions or tasks.
  2347. dynamic ftrace
  2348. --------------
  2349. If CONFIG_DYNAMIC_FTRACE is set, the system will run with
  2350. virtually no overhead when function tracing is disabled. The way
  2351. this works is the mcount function call (placed at the start of
  2352. every kernel function, produced by the -pg switch in gcc),
  2353. starts of pointing to a simple return. (Enabling FTRACE will
  2354. include the -pg switch in the compiling of the kernel.)
  2355. At compile time every C file object is run through the
  2356. recordmcount program (located in the scripts directory). This
  2357. program will parse the ELF headers in the C object to find all
  2358. the locations in the .text section that call mcount. Starting
  2359. with gcc version 4.6, the -mfentry has been added for x86, which
  2360. calls "__fentry__" instead of "mcount". Which is called before
  2361. the creation of the stack frame.
  2362. Note, not all sections are traced. They may be prevented by either
  2363. a notrace, or blocked another way and all inline functions are not
  2364. traced. Check the "available_filter_functions" file to see what functions
  2365. can be traced.
  2366. A section called "__mcount_loc" is created that holds
  2367. references to all the mcount/fentry call sites in the .text section.
  2368. The recordmcount program re-links this section back into the
  2369. original object. The final linking stage of the kernel will add all these
  2370. references into a single table.
  2371. On boot up, before SMP is initialized, the dynamic ftrace code
  2372. scans this table and updates all the locations into nops. It
  2373. also records the locations, which are added to the
  2374. available_filter_functions list. Modules are processed as they
  2375. are loaded and before they are executed. When a module is
  2376. unloaded, it also removes its functions from the ftrace function
  2377. list. This is automatic in the module unload code, and the
  2378. module author does not need to worry about it.
  2379. When tracing is enabled, the process of modifying the function
  2380. tracepoints is dependent on architecture. The old method is to use
  2381. kstop_machine to prevent races with the CPUs executing code being
  2382. modified (which can cause the CPU to do undesirable things, especially
  2383. if the modified code crosses cache (or page) boundaries), and the nops are
  2384. patched back to calls. But this time, they do not call mcount
  2385. (which is just a function stub). They now call into the ftrace
  2386. infrastructure.
  2387. The new method of modifying the function tracepoints is to place
  2388. a breakpoint at the location to be modified, sync all CPUs, modify
  2389. the rest of the instruction not covered by the breakpoint. Sync
  2390. all CPUs again, and then remove the breakpoint with the finished
  2391. version to the ftrace call site.
  2392. Some archs do not even need to monkey around with the synchronization,
  2393. and can just slap the new code on top of the old without any
  2394. problems with other CPUs executing it at the same time.
  2395. One special side-effect to the recording of the functions being
  2396. traced is that we can now selectively choose which functions we
  2397. wish to trace and which ones we want the mcount calls to remain
  2398. as nops.
  2399. Two files are used, one for enabling and one for disabling the
  2400. tracing of specified functions. They are:
  2401. set_ftrace_filter
  2402. and
  2403. set_ftrace_notrace
  2404. A list of available functions that you can add to these files is
  2405. listed in:
  2406. available_filter_functions
  2407. ::
  2408. # cat available_filter_functions
  2409. put_prev_task_idle
  2410. kmem_cache_create
  2411. pick_next_task_rt
  2412. cpus_read_lock
  2413. pick_next_task_fair
  2414. mutex_lock
  2415. [...]
  2416. If I am only interested in sys_nanosleep and hrtimer_interrupt::
  2417. # echo sys_nanosleep hrtimer_interrupt > set_ftrace_filter
  2418. # echo function > current_tracer
  2419. # echo 1 > tracing_on
  2420. # usleep 1
  2421. # echo 0 > tracing_on
  2422. # cat trace
  2423. # tracer: function
  2424. #
  2425. # entries-in-buffer/entries-written: 5/5 #P:4
  2426. #
  2427. # _-----=> irqs-off
  2428. # / _----=> need-resched
  2429. # | / _---=> hardirq/softirq
  2430. # || / _--=> preempt-depth
  2431. # ||| / delay
  2432. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2433. # | | | |||| | |
  2434. usleep-2665 [001] .... 4186.475355: sys_nanosleep <-system_call_fastpath
  2435. <idle>-0 [001] d.h1 4186.475409: hrtimer_interrupt <-smp_apic_timer_interrupt
  2436. usleep-2665 [001] d.h1 4186.475426: hrtimer_interrupt <-smp_apic_timer_interrupt
  2437. <idle>-0 [003] d.h1 4186.475426: hrtimer_interrupt <-smp_apic_timer_interrupt
  2438. <idle>-0 [002] d.h1 4186.475427: hrtimer_interrupt <-smp_apic_timer_interrupt
  2439. To see which functions are being traced, you can cat the file:
  2440. ::
  2441. # cat set_ftrace_filter
  2442. hrtimer_interrupt
  2443. sys_nanosleep
  2444. Perhaps this is not enough. The filters also allow glob(7) matching.
  2445. ``<match>*``
  2446. will match functions that begin with <match>
  2447. ``*<match>``
  2448. will match functions that end with <match>
  2449. ``*<match>*``
  2450. will match functions that have <match> in it
  2451. ``<match1>*<match2>``
  2452. will match functions that begin with <match1> and end with <match2>
  2453. .. note::
  2454. It is better to use quotes to enclose the wild cards,
  2455. otherwise the shell may expand the parameters into names
  2456. of files in the local directory.
  2457. ::
  2458. # echo 'hrtimer_*' > set_ftrace_filter
  2459. Produces::
  2460. # tracer: function
  2461. #
  2462. # entries-in-buffer/entries-written: 897/897 #P:4
  2463. #
  2464. # _-----=> irqs-off
  2465. # / _----=> need-resched
  2466. # | / _---=> hardirq/softirq
  2467. # || / _--=> preempt-depth
  2468. # ||| / delay
  2469. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2470. # | | | |||| | |
  2471. <idle>-0 [003] dN.1 4228.547803: hrtimer_cancel <-tick_nohz_idle_exit
  2472. <idle>-0 [003] dN.1 4228.547804: hrtimer_try_to_cancel <-hrtimer_cancel
  2473. <idle>-0 [003] dN.2 4228.547805: hrtimer_force_reprogram <-__remove_hrtimer
  2474. <idle>-0 [003] dN.1 4228.547805: hrtimer_forward <-tick_nohz_idle_exit
  2475. <idle>-0 [003] dN.1 4228.547805: hrtimer_start_range_ns <-hrtimer_start_expires.constprop.11
  2476. <idle>-0 [003] d..1 4228.547858: hrtimer_get_next_event <-get_next_timer_interrupt
  2477. <idle>-0 [003] d..1 4228.547859: hrtimer_start <-__tick_nohz_idle_enter
  2478. <idle>-0 [003] d..2 4228.547860: hrtimer_force_reprogram <-__rem
  2479. Notice that we lost the sys_nanosleep.
  2480. ::
  2481. # cat set_ftrace_filter
  2482. hrtimer_run_queues
  2483. hrtimer_run_pending
  2484. hrtimer_init
  2485. hrtimer_cancel
  2486. hrtimer_try_to_cancel
  2487. hrtimer_forward
  2488. hrtimer_start
  2489. hrtimer_reprogram
  2490. hrtimer_force_reprogram
  2491. hrtimer_get_next_event
  2492. hrtimer_interrupt
  2493. hrtimer_nanosleep
  2494. hrtimer_wakeup
  2495. hrtimer_get_remaining
  2496. hrtimer_get_res
  2497. hrtimer_init_sleeper
  2498. This is because the '>' and '>>' act just like they do in bash.
  2499. To rewrite the filters, use '>'
  2500. To append to the filters, use '>>'
  2501. To clear out a filter so that all functions will be recorded
  2502. again::
  2503. # echo > set_ftrace_filter
  2504. # cat set_ftrace_filter
  2505. #
  2506. Again, now we want to append.
  2507. ::
  2508. # echo sys_nanosleep > set_ftrace_filter
  2509. # cat set_ftrace_filter
  2510. sys_nanosleep
  2511. # echo 'hrtimer_*' >> set_ftrace_filter
  2512. # cat set_ftrace_filter
  2513. hrtimer_run_queues
  2514. hrtimer_run_pending
  2515. hrtimer_init
  2516. hrtimer_cancel
  2517. hrtimer_try_to_cancel
  2518. hrtimer_forward
  2519. hrtimer_start
  2520. hrtimer_reprogram
  2521. hrtimer_force_reprogram
  2522. hrtimer_get_next_event
  2523. hrtimer_interrupt
  2524. sys_nanosleep
  2525. hrtimer_nanosleep
  2526. hrtimer_wakeup
  2527. hrtimer_get_remaining
  2528. hrtimer_get_res
  2529. hrtimer_init_sleeper
  2530. The set_ftrace_notrace prevents those functions from being
  2531. traced.
  2532. ::
  2533. # echo '*preempt*' '*lock*' > set_ftrace_notrace
  2534. Produces::
  2535. # tracer: function
  2536. #
  2537. # entries-in-buffer/entries-written: 39608/39608 #P:4
  2538. #
  2539. # _-----=> irqs-off
  2540. # / _----=> need-resched
  2541. # | / _---=> hardirq/softirq
  2542. # || / _--=> preempt-depth
  2543. # ||| / delay
  2544. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2545. # | | | |||| | |
  2546. bash-1994 [000] .... 4342.324896: file_ra_state_init <-do_dentry_open
  2547. bash-1994 [000] .... 4342.324897: open_check_o_direct <-do_last
  2548. bash-1994 [000] .... 4342.324897: ima_file_check <-do_last
  2549. bash-1994 [000] .... 4342.324898: process_measurement <-ima_file_check
  2550. bash-1994 [000] .... 4342.324898: ima_get_action <-process_measurement
  2551. bash-1994 [000] .... 4342.324898: ima_match_policy <-ima_get_action
  2552. bash-1994 [000] .... 4342.324899: do_truncate <-do_last
  2553. bash-1994 [000] .... 4342.324899: setattr_should_drop_suidgid <-do_truncate
  2554. bash-1994 [000] .... 4342.324899: notify_change <-do_truncate
  2555. bash-1994 [000] .... 4342.324900: current_fs_time <-notify_change
  2556. bash-1994 [000] .... 4342.324900: current_kernel_time <-current_fs_time
  2557. bash-1994 [000] .... 4342.324900: timespec_trunc <-current_fs_time
  2558. We can see that there's no more lock or preempt tracing.
  2559. Selecting function filters via index
  2560. ------------------------------------
  2561. Because processing of strings is expensive (the address of the function
  2562. needs to be looked up before comparing to the string being passed in),
  2563. an index can be used as well to enable functions. This is useful in the
  2564. case of setting thousands of specific functions at a time. By passing
  2565. in a list of numbers, no string processing will occur. Instead, the function
  2566. at the specific location in the internal array (which corresponds to the
  2567. functions in the "available_filter_functions" file), is selected.
  2568. ::
  2569. # echo 1 > set_ftrace_filter
  2570. Will select the first function listed in "available_filter_functions"
  2571. ::
  2572. # head -1 available_filter_functions
  2573. trace_initcall_finish_cb
  2574. # cat set_ftrace_filter
  2575. trace_initcall_finish_cb
  2576. # head -50 available_filter_functions | tail -1
  2577. x86_pmu_commit_txn
  2578. # echo 1 50 > set_ftrace_filter
  2579. # cat set_ftrace_filter
  2580. trace_initcall_finish_cb
  2581. x86_pmu_commit_txn
  2582. Dynamic ftrace with the function graph tracer
  2583. ---------------------------------------------
  2584. Although what has been explained above concerns both the
  2585. function tracer and the function-graph-tracer, there are some
  2586. special features only available in the function-graph tracer.
  2587. If you want to trace only one function and all of its children,
  2588. you just have to echo its name into set_graph_function::
  2589. echo __do_fault > set_graph_function
  2590. will produce the following "expanded" trace of the __do_fault()
  2591. function::
  2592. 0) | __do_fault() {
  2593. 0) | filemap_fault() {
  2594. 0) | find_lock_page() {
  2595. 0) 0.804 us | find_get_page();
  2596. 0) | __might_sleep() {
  2597. 0) 1.329 us | }
  2598. 0) 3.904 us | }
  2599. 0) 4.979 us | }
  2600. 0) 0.653 us | _spin_lock();
  2601. 0) 0.578 us | page_add_file_rmap();
  2602. 0) 0.525 us | native_set_pte_at();
  2603. 0) 0.585 us | _spin_unlock();
  2604. 0) | unlock_page() {
  2605. 0) 0.541 us | page_waitqueue();
  2606. 0) 0.639 us | __wake_up_bit();
  2607. 0) 2.786 us | }
  2608. 0) + 14.237 us | }
  2609. 0) | __do_fault() {
  2610. 0) | filemap_fault() {
  2611. 0) | find_lock_page() {
  2612. 0) 0.698 us | find_get_page();
  2613. 0) | __might_sleep() {
  2614. 0) 1.412 us | }
  2615. 0) 3.950 us | }
  2616. 0) 5.098 us | }
  2617. 0) 0.631 us | _spin_lock();
  2618. 0) 0.571 us | page_add_file_rmap();
  2619. 0) 0.526 us | native_set_pte_at();
  2620. 0) 0.586 us | _spin_unlock();
  2621. 0) | unlock_page() {
  2622. 0) 0.533 us | page_waitqueue();
  2623. 0) 0.638 us | __wake_up_bit();
  2624. 0) 2.793 us | }
  2625. 0) + 14.012 us | }
  2626. You can also expand several functions at once::
  2627. echo sys_open > set_graph_function
  2628. echo sys_close >> set_graph_function
  2629. Now if you want to go back to trace all functions you can clear
  2630. this special filter via::
  2631. echo > set_graph_function
  2632. ftrace_enabled
  2633. --------------
  2634. Note, the proc sysctl ftrace_enable is a big on/off switch for the
  2635. function tracer. By default it is enabled (when function tracing is
  2636. enabled in the kernel). If it is disabled, all function tracing is
  2637. disabled. This includes not only the function tracers for ftrace, but
  2638. also for any other uses (perf, kprobes, stack tracing, profiling, etc). It
  2639. cannot be disabled if there is a callback with FTRACE_OPS_FL_PERMANENT set
  2640. registered.
  2641. Please disable this with care.
  2642. This can be disable (and enabled) with::
  2643. sysctl kernel.ftrace_enabled=0
  2644. sysctl kernel.ftrace_enabled=1
  2645. or
  2646. echo 0 > /proc/sys/kernel/ftrace_enabled
  2647. echo 1 > /proc/sys/kernel/ftrace_enabled
  2648. Filter commands
  2649. ---------------
  2650. A few commands are supported by the set_ftrace_filter interface.
  2651. Trace commands have the following format::
  2652. <function>:<command>:<parameter>
  2653. The following commands are supported:
  2654. - mod:
  2655. This command enables function filtering per module. The
  2656. parameter defines the module. For example, if only the write*
  2657. functions in the ext3 module are desired, run:
  2658. echo 'write*:mod:ext3' > set_ftrace_filter
  2659. This command interacts with the filter in the same way as
  2660. filtering based on function names. Thus, adding more functions
  2661. in a different module is accomplished by appending (>>) to the
  2662. filter file. Remove specific module functions by prepending
  2663. '!'::
  2664. echo '!writeback*:mod:ext3' >> set_ftrace_filter
  2665. Mod command supports module globbing. Disable tracing for all
  2666. functions except a specific module::
  2667. echo '!*:mod:!ext3' >> set_ftrace_filter
  2668. Disable tracing for all modules, but still trace kernel::
  2669. echo '!*:mod:*' >> set_ftrace_filter
  2670. Enable filter only for kernel::
  2671. echo '*write*:mod:!*' >> set_ftrace_filter
  2672. Enable filter for module globbing::
  2673. echo '*write*:mod:*snd*' >> set_ftrace_filter
  2674. - traceon/traceoff:
  2675. These commands turn tracing on and off when the specified
  2676. functions are hit. The parameter determines how many times the
  2677. tracing system is turned on and off. If unspecified, there is
  2678. no limit. For example, to disable tracing when a schedule bug
  2679. is hit the first 5 times, run::
  2680. echo '__schedule_bug:traceoff:5' > set_ftrace_filter
  2681. To always disable tracing when __schedule_bug is hit::
  2682. echo '__schedule_bug:traceoff' > set_ftrace_filter
  2683. These commands are cumulative whether or not they are appended
  2684. to set_ftrace_filter. To remove a command, prepend it by '!'
  2685. and drop the parameter::
  2686. echo '!__schedule_bug:traceoff:0' > set_ftrace_filter
  2687. The above removes the traceoff command for __schedule_bug
  2688. that have a counter. To remove commands without counters::
  2689. echo '!__schedule_bug:traceoff' > set_ftrace_filter
  2690. - snapshot:
  2691. Will cause a snapshot to be triggered when the function is hit.
  2692. ::
  2693. echo 'native_flush_tlb_others:snapshot' > set_ftrace_filter
  2694. To only snapshot once:
  2695. ::
  2696. echo 'native_flush_tlb_others:snapshot:1' > set_ftrace_filter
  2697. To remove the above commands::
  2698. echo '!native_flush_tlb_others:snapshot' > set_ftrace_filter
  2699. echo '!native_flush_tlb_others:snapshot:0' > set_ftrace_filter
  2700. - enable_event/disable_event:
  2701. These commands can enable or disable a trace event. Note, because
  2702. function tracing callbacks are very sensitive, when these commands
  2703. are registered, the trace point is activated, but disabled in
  2704. a "soft" mode. That is, the tracepoint will be called, but
  2705. just will not be traced. The event tracepoint stays in this mode
  2706. as long as there's a command that triggers it.
  2707. ::
  2708. echo 'try_to_wake_up:enable_event:sched:sched_switch:2' > \
  2709. set_ftrace_filter
  2710. The format is::
  2711. <function>:enable_event:<system>:<event>[:count]
  2712. <function>:disable_event:<system>:<event>[:count]
  2713. To remove the events commands::
  2714. echo '!try_to_wake_up:enable_event:sched:sched_switch:0' > \
  2715. set_ftrace_filter
  2716. echo '!schedule:disable_event:sched:sched_switch' > \
  2717. set_ftrace_filter
  2718. - dump:
  2719. When the function is hit, it will dump the contents of the ftrace
  2720. ring buffer to the console. This is useful if you need to debug
  2721. something, and want to dump the trace when a certain function
  2722. is hit. Perhaps it's a function that is called before a triple
  2723. fault happens and does not allow you to get a regular dump.
  2724. - cpudump:
  2725. When the function is hit, it will dump the contents of the ftrace
  2726. ring buffer for the current CPU to the console. Unlike the "dump"
  2727. command, it only prints out the contents of the ring buffer for the
  2728. CPU that executed the function that triggered the dump.
  2729. - stacktrace:
  2730. When the function is hit, a stack trace is recorded.
  2731. trace_pipe
  2732. ----------
  2733. The trace_pipe outputs the same content as the trace file, but
  2734. the effect on the tracing is different. Every read from
  2735. trace_pipe is consumed. This means that subsequent reads will be
  2736. different. The trace is live.
  2737. ::
  2738. # echo function > current_tracer
  2739. # cat trace_pipe > /tmp/trace.out &
  2740. [1] 4153
  2741. # echo 1 > tracing_on
  2742. # usleep 1
  2743. # echo 0 > tracing_on
  2744. # cat trace
  2745. # tracer: function
  2746. #
  2747. # entries-in-buffer/entries-written: 0/0 #P:4
  2748. #
  2749. # _-----=> irqs-off
  2750. # / _----=> need-resched
  2751. # | / _---=> hardirq/softirq
  2752. # || / _--=> preempt-depth
  2753. # ||| / delay
  2754. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2755. # | | | |||| | |
  2756. #
  2757. # cat /tmp/trace.out
  2758. bash-1994 [000] .... 5281.568961: mutex_unlock <-rb_simple_write
  2759. bash-1994 [000] .... 5281.568963: __mutex_unlock_slowpath <-mutex_unlock
  2760. bash-1994 [000] .... 5281.568963: __fsnotify_parent <-fsnotify_modify
  2761. bash-1994 [000] .... 5281.568964: fsnotify <-fsnotify_modify
  2762. bash-1994 [000] .... 5281.568964: __srcu_read_lock <-fsnotify
  2763. bash-1994 [000] .... 5281.568964: add_preempt_count <-__srcu_read_lock
  2764. bash-1994 [000] ...1 5281.568965: sub_preempt_count <-__srcu_read_lock
  2765. bash-1994 [000] .... 5281.568965: __srcu_read_unlock <-fsnotify
  2766. bash-1994 [000] .... 5281.568967: sys_dup2 <-system_call_fastpath
  2767. Note, reading the trace_pipe file will block until more input is
  2768. added. This is contrary to the trace file. If any process opened
  2769. the trace file for reading, it will actually disable tracing and
  2770. prevent new entries from being added. The trace_pipe file does
  2771. not have this limitation.
  2772. trace entries
  2773. -------------
  2774. Having too much or not enough data can be troublesome in
  2775. diagnosing an issue in the kernel. The file buffer_size_kb is
  2776. used to modify the size of the internal trace buffers. The
  2777. number listed is the number of entries that can be recorded per
  2778. CPU. To know the full size, multiply the number of possible CPUs
  2779. with the number of entries.
  2780. ::
  2781. # cat buffer_size_kb
  2782. 1408 (units kilobytes)
  2783. Or simply read buffer_total_size_kb
  2784. ::
  2785. # cat buffer_total_size_kb
  2786. 5632
  2787. To modify the buffer, simple echo in a number (in 1024 byte segments).
  2788. ::
  2789. # echo 10000 > buffer_size_kb
  2790. # cat buffer_size_kb
  2791. 10000 (units kilobytes)
  2792. It will try to allocate as much as possible. If you allocate too
  2793. much, it can cause Out-Of-Memory to trigger.
  2794. ::
  2795. # echo 1000000000000 > buffer_size_kb
  2796. -bash: echo: write error: Cannot allocate memory
  2797. # cat buffer_size_kb
  2798. 85
  2799. The per_cpu buffers can be changed individually as well:
  2800. ::
  2801. # echo 10000 > per_cpu/cpu0/buffer_size_kb
  2802. # echo 100 > per_cpu/cpu1/buffer_size_kb
  2803. When the per_cpu buffers are not the same, the buffer_size_kb
  2804. at the top level will just show an X
  2805. ::
  2806. # cat buffer_size_kb
  2807. X
  2808. This is where the buffer_total_size_kb is useful:
  2809. ::
  2810. # cat buffer_total_size_kb
  2811. 12916
  2812. Writing to the top level buffer_size_kb will reset all the buffers
  2813. to be the same again.
  2814. Snapshot
  2815. --------
  2816. CONFIG_TRACER_SNAPSHOT makes a generic snapshot feature
  2817. available to all non latency tracers. (Latency tracers which
  2818. record max latency, such as "irqsoff" or "wakeup", can't use
  2819. this feature, since those are already using the snapshot
  2820. mechanism internally.)
  2821. Snapshot preserves a current trace buffer at a particular point
  2822. in time without stopping tracing. Ftrace swaps the current
  2823. buffer with a spare buffer, and tracing continues in the new
  2824. current (=previous spare) buffer.
  2825. The following tracefs files in "tracing" are related to this
  2826. feature:
  2827. snapshot:
  2828. This is used to take a snapshot and to read the output
  2829. of the snapshot. Echo 1 into this file to allocate a
  2830. spare buffer and to take a snapshot (swap), then read
  2831. the snapshot from this file in the same format as
  2832. "trace" (described above in the section "The File
  2833. System"). Both reads snapshot and tracing are executable
  2834. in parallel. When the spare buffer is allocated, echoing
  2835. 0 frees it, and echoing else (positive) values clear the
  2836. snapshot contents.
  2837. More details are shown in the table below.
  2838. +--------------+------------+------------+------------+
  2839. |status\\input | 0 | 1 | else |
  2840. +==============+============+============+============+
  2841. |not allocated |(do nothing)| alloc+swap |(do nothing)|
  2842. +--------------+------------+------------+------------+
  2843. |allocated | free | swap | clear |
  2844. +--------------+------------+------------+------------+
  2845. Here is an example of using the snapshot feature.
  2846. ::
  2847. # echo 1 > events/sched/enable
  2848. # echo 1 > snapshot
  2849. # cat snapshot
  2850. # tracer: nop
  2851. #
  2852. # entries-in-buffer/entries-written: 71/71 #P:8
  2853. #
  2854. # _-----=> irqs-off
  2855. # / _----=> need-resched
  2856. # | / _---=> hardirq/softirq
  2857. # || / _--=> preempt-depth
  2858. # ||| / delay
  2859. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2860. # | | | |||| | |
  2861. <idle>-0 [005] d... 2440.603828: sched_switch: prev_comm=swapper/5 prev_pid=0 prev_prio=120 prev_state=R ==> next_comm=snapshot-test-2 next_pid=2242 next_prio=120
  2862. sleep-2242 [005] d... 2440.603846: sched_switch: prev_comm=snapshot-test-2 prev_pid=2242 prev_prio=120 prev_state=R ==> next_comm=kworker/5:1 next_pid=60 next_prio=120
  2863. [...]
  2864. <idle>-0 [002] d... 2440.707230: sched_switch: prev_comm=swapper/2 prev_pid=0 prev_prio=120 prev_state=R ==> next_comm=snapshot-test-2 next_pid=2229 next_prio=120
  2865. # cat trace
  2866. # tracer: nop
  2867. #
  2868. # entries-in-buffer/entries-written: 77/77 #P:8
  2869. #
  2870. # _-----=> irqs-off
  2871. # / _----=> need-resched
  2872. # | / _---=> hardirq/softirq
  2873. # || / _--=> preempt-depth
  2874. # ||| / delay
  2875. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2876. # | | | |||| | |
  2877. <idle>-0 [007] d... 2440.707395: sched_switch: prev_comm=swapper/7 prev_pid=0 prev_prio=120 prev_state=R ==> next_comm=snapshot-test-2 next_pid=2243 next_prio=120
  2878. snapshot-test-2-2229 [002] d... 2440.707438: sched_switch: prev_comm=snapshot-test-2 prev_pid=2229 prev_prio=120 prev_state=S ==> next_comm=swapper/2 next_pid=0 next_prio=120
  2879. [...]
  2880. If you try to use this snapshot feature when current tracer is
  2881. one of the latency tracers, you will get the following results.
  2882. ::
  2883. # echo wakeup > current_tracer
  2884. # echo 1 > snapshot
  2885. bash: echo: write error: Device or resource busy
  2886. # cat snapshot
  2887. cat: snapshot: Device or resource busy
  2888. Instances
  2889. ---------
  2890. In the tracefs tracing directory, there is a directory called "instances".
  2891. This directory can have new directories created inside of it using
  2892. mkdir, and removing directories with rmdir. The directory created
  2893. with mkdir in this directory will already contain files and other
  2894. directories after it is created.
  2895. ::
  2896. # mkdir instances/foo
  2897. # ls instances/foo
  2898. buffer_size_kb buffer_total_size_kb events free_buffer per_cpu
  2899. set_event snapshot trace trace_clock trace_marker trace_options
  2900. trace_pipe tracing_on
  2901. As you can see, the new directory looks similar to the tracing directory
  2902. itself. In fact, it is very similar, except that the buffer and
  2903. events are agnostic from the main directory, or from any other
  2904. instances that are created.
  2905. The files in the new directory work just like the files with the
  2906. same name in the tracing directory except the buffer that is used
  2907. is a separate and new buffer. The files affect that buffer but do not
  2908. affect the main buffer with the exception of trace_options. Currently,
  2909. the trace_options affect all instances and the top level buffer
  2910. the same, but this may change in future releases. That is, options
  2911. may become specific to the instance they reside in.
  2912. Notice that none of the function tracer files are there, nor is
  2913. current_tracer and available_tracers. This is because the buffers
  2914. can currently only have events enabled for them.
  2915. ::
  2916. # mkdir instances/foo
  2917. # mkdir instances/bar
  2918. # mkdir instances/zoot
  2919. # echo 100000 > buffer_size_kb
  2920. # echo 1000 > instances/foo/buffer_size_kb
  2921. # echo 5000 > instances/bar/per_cpu/cpu1/buffer_size_kb
  2922. # echo function > current_trace
  2923. # echo 1 > instances/foo/events/sched/sched_wakeup/enable
  2924. # echo 1 > instances/foo/events/sched/sched_wakeup_new/enable
  2925. # echo 1 > instances/foo/events/sched/sched_switch/enable
  2926. # echo 1 > instances/bar/events/irq/enable
  2927. # echo 1 > instances/zoot/events/syscalls/enable
  2928. # cat trace_pipe
  2929. CPU:2 [LOST 11745 EVENTS]
  2930. bash-2044 [002] .... 10594.481032: _raw_spin_lock_irqsave <-get_page_from_freelist
  2931. bash-2044 [002] d... 10594.481032: add_preempt_count <-_raw_spin_lock_irqsave
  2932. bash-2044 [002] d..1 10594.481032: __rmqueue <-get_page_from_freelist
  2933. bash-2044 [002] d..1 10594.481033: _raw_spin_unlock <-get_page_from_freelist
  2934. bash-2044 [002] d..1 10594.481033: sub_preempt_count <-_raw_spin_unlock
  2935. bash-2044 [002] d... 10594.481033: get_pageblock_flags_group <-get_pageblock_migratetype
  2936. bash-2044 [002] d... 10594.481034: __mod_zone_page_state <-get_page_from_freelist
  2937. bash-2044 [002] d... 10594.481034: zone_statistics <-get_page_from_freelist
  2938. bash-2044 [002] d... 10594.481034: __inc_zone_state <-zone_statistics
  2939. bash-2044 [002] d... 10594.481034: __inc_zone_state <-zone_statistics
  2940. bash-2044 [002] .... 10594.481035: arch_dup_task_struct <-copy_process
  2941. [...]
  2942. # cat instances/foo/trace_pipe
  2943. bash-1998 [000] d..4 136.676759: sched_wakeup: comm=kworker/0:1 pid=59 prio=120 success=1 target_cpu=000
  2944. bash-1998 [000] dN.4 136.676760: sched_wakeup: comm=bash pid=1998 prio=120 success=1 target_cpu=000
  2945. <idle>-0 [003] d.h3 136.676906: sched_wakeup: comm=rcu_preempt pid=9 prio=120 success=1 target_cpu=003
  2946. <idle>-0 [003] d..3 136.676909: sched_switch: prev_comm=swapper/3 prev_pid=0 prev_prio=120 prev_state=R ==> next_comm=rcu_preempt next_pid=9 next_prio=120
  2947. rcu_preempt-9 [003] d..3 136.676916: sched_switch: prev_comm=rcu_preempt prev_pid=9 prev_prio=120 prev_state=S ==> next_comm=swapper/3 next_pid=0 next_prio=120
  2948. bash-1998 [000] d..4 136.677014: sched_wakeup: comm=kworker/0:1 pid=59 prio=120 success=1 target_cpu=000
  2949. bash-1998 [000] dN.4 136.677016: sched_wakeup: comm=bash pid=1998 prio=120 success=1 target_cpu=000
  2950. bash-1998 [000] d..3 136.677018: sched_switch: prev_comm=bash prev_pid=1998 prev_prio=120 prev_state=R+ ==> next_comm=kworker/0:1 next_pid=59 next_prio=120
  2951. kworker/0:1-59 [000] d..4 136.677022: sched_wakeup: comm=sshd pid=1995 prio=120 success=1 target_cpu=001
  2952. kworker/0:1-59 [000] d..3 136.677025: sched_switch: prev_comm=kworker/0:1 prev_pid=59 prev_prio=120 prev_state=S ==> next_comm=bash next_pid=1998 next_prio=120
  2953. [...]
  2954. # cat instances/bar/trace_pipe
  2955. migration/1-14 [001] d.h3 138.732674: softirq_raise: vec=3 [action=NET_RX]
  2956. <idle>-0 [001] dNh3 138.732725: softirq_raise: vec=3 [action=NET_RX]
  2957. bash-1998 [000] d.h1 138.733101: softirq_raise: vec=1 [action=TIMER]
  2958. bash-1998 [000] d.h1 138.733102: softirq_raise: vec=9 [action=RCU]
  2959. bash-1998 [000] ..s2 138.733105: softirq_entry: vec=1 [action=TIMER]
  2960. bash-1998 [000] ..s2 138.733106: softirq_exit: vec=1 [action=TIMER]
  2961. bash-1998 [000] ..s2 138.733106: softirq_entry: vec=9 [action=RCU]
  2962. bash-1998 [000] ..s2 138.733109: softirq_exit: vec=9 [action=RCU]
  2963. sshd-1995 [001] d.h1 138.733278: irq_handler_entry: irq=21 name=uhci_hcd:usb4
  2964. sshd-1995 [001] d.h1 138.733280: irq_handler_exit: irq=21 ret=unhandled
  2965. sshd-1995 [001] d.h1 138.733281: irq_handler_entry: irq=21 name=eth0
  2966. sshd-1995 [001] d.h1 138.733283: irq_handler_exit: irq=21 ret=handled
  2967. [...]
  2968. # cat instances/zoot/trace
  2969. # tracer: nop
  2970. #
  2971. # entries-in-buffer/entries-written: 18996/18996 #P:4
  2972. #
  2973. # _-----=> irqs-off
  2974. # / _----=> need-resched
  2975. # | / _---=> hardirq/softirq
  2976. # || / _--=> preempt-depth
  2977. # ||| / delay
  2978. # TASK-PID CPU# |||| TIMESTAMP FUNCTION
  2979. # | | | |||| | |
  2980. bash-1998 [000] d... 140.733501: sys_write -> 0x2
  2981. bash-1998 [000] d... 140.733504: sys_dup2(oldfd: a, newfd: 1)
  2982. bash-1998 [000] d... 140.733506: sys_dup2 -> 0x1
  2983. bash-1998 [000] d... 140.733508: sys_fcntl(fd: a, cmd: 1, arg: 0)
  2984. bash-1998 [000] d... 140.733509: sys_fcntl -> 0x1
  2985. bash-1998 [000] d... 140.733510: sys_close(fd: a)
  2986. bash-1998 [000] d... 140.733510: sys_close -> 0x0
  2987. bash-1998 [000] d... 140.733514: sys_rt_sigprocmask(how: 0, nset: 0, oset: 6e2768, sigsetsize: 8)
  2988. bash-1998 [000] d... 140.733515: sys_rt_sigprocmask -> 0x0
  2989. bash-1998 [000] d... 140.733516: sys_rt_sigaction(sig: 2, act: 7fff718846f0, oact: 7fff71884650, sigsetsize: 8)
  2990. bash-1998 [000] d... 140.733516: sys_rt_sigaction -> 0x0
  2991. You can see that the trace of the top most trace buffer shows only
  2992. the function tracing. The foo instance displays wakeups and task
  2993. switches.
  2994. To remove the instances, simply delete their directories:
  2995. ::
  2996. # rmdir instances/foo
  2997. # rmdir instances/bar
  2998. # rmdir instances/zoot
  2999. Note, if a process has a trace file open in one of the instance
  3000. directories, the rmdir will fail with EBUSY.
  3001. Stack trace
  3002. -----------
  3003. Since the kernel has a fixed sized stack, it is important not to
  3004. waste it in functions. A kernel developer must be conscious of
  3005. what they allocate on the stack. If they add too much, the system
  3006. can be in danger of a stack overflow, and corruption will occur,
  3007. usually leading to a system panic.
  3008. There are some tools that check this, usually with interrupts
  3009. periodically checking usage. But if you can perform a check
  3010. at every function call that will become very useful. As ftrace provides
  3011. a function tracer, it makes it convenient to check the stack size
  3012. at every function call. This is enabled via the stack tracer.
  3013. CONFIG_STACK_TRACER enables the ftrace stack tracing functionality.
  3014. To enable it, write a '1' into /proc/sys/kernel/stack_tracer_enabled.
  3015. ::
  3016. # echo 1 > /proc/sys/kernel/stack_tracer_enabled
  3017. You can also enable it from the kernel command line to trace
  3018. the stack size of the kernel during boot up, by adding "stacktrace"
  3019. to the kernel command line parameter.
  3020. After running it for a few minutes, the output looks like:
  3021. ::
  3022. # cat stack_max_size
  3023. 2928
  3024. # cat stack_trace
  3025. Depth Size Location (18 entries)
  3026. ----- ---- --------
  3027. 0) 2928 224 update_sd_lb_stats+0xbc/0x4ac
  3028. 1) 2704 160 find_busiest_group+0x31/0x1f1
  3029. 2) 2544 256 load_balance+0xd9/0x662
  3030. 3) 2288 80 idle_balance+0xbb/0x130
  3031. 4) 2208 128 __schedule+0x26e/0x5b9
  3032. 5) 2080 16 schedule+0x64/0x66
  3033. 6) 2064 128 schedule_timeout+0x34/0xe0
  3034. 7) 1936 112 wait_for_common+0x97/0xf1
  3035. 8) 1824 16 wait_for_completion+0x1d/0x1f
  3036. 9) 1808 128 flush_work+0xfe/0x119
  3037. 10) 1680 16 tty_flush_to_ldisc+0x1e/0x20
  3038. 11) 1664 48 input_available_p+0x1d/0x5c
  3039. 12) 1616 48 n_tty_poll+0x6d/0x134
  3040. 13) 1568 64 tty_poll+0x64/0x7f
  3041. 14) 1504 880 do_select+0x31e/0x511
  3042. 15) 624 400 core_sys_select+0x177/0x216
  3043. 16) 224 96 sys_select+0x91/0xb9
  3044. 17) 128 128 system_call_fastpath+0x16/0x1b
  3045. Note, if -mfentry is being used by gcc, functions get traced before
  3046. they set up the stack frame. This means that leaf level functions
  3047. are not tested by the stack tracer when -mfentry is used.
  3048. Currently, -mfentry is used by gcc 4.6.0 and above on x86 only.
  3049. More
  3050. ----
  3051. More details can be found in the source code, in the `kernel/trace/*.c` files.