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  1. CONFIG_RCU_TRACE debugfs Files and Formats
  2. The rcutree implementation of RCU provides debugfs trace output that
  3. summarizes counters and state. This information is useful for debugging
  4. RCU itself, and can sometimes also help to debug abuses of RCU.
  5. The following sections describe the debugfs files and formats.
  6. Hierarchical RCU debugfs Files and Formats
  7. This implementation of RCU provides three debugfs files under the
  8. top-level directory RCU: rcu/rcudata (which displays fields in struct
  9. rcu_data), rcu/rcugp (which displays grace-period counters), and
  10. rcu/rcuhier (which displays the struct rcu_node hierarchy).
  11. The output of "cat rcu/rcudata" looks as follows:
  12. rcu_sched:
  13. 0 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=10951/1 dn=0 df=1101 of=0 ri=36 ql=0 b=10
  14. 1 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=16117/1 dn=0 df=1015 of=0 ri=0 ql=0 b=10
  15. 2 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=1445/1 dn=0 df=1839 of=0 ri=0 ql=0 b=10
  16. 3 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=6681/1 dn=0 df=1545 of=0 ri=0 ql=0 b=10
  17. 4 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=1003/1 dn=0 df=1992 of=0 ri=0 ql=0 b=10
  18. 5 c=17829 g=17830 pq=1 pqc=17829 qp=1 dt=3887/1 dn=0 df=3331 of=0 ri=4 ql=2 b=10
  19. 6 c=17829 g=17829 pq=1 pqc=17829 qp=0 dt=859/1 dn=0 df=3224 of=0 ri=0 ql=0 b=10
  20. 7 c=17829 g=17830 pq=0 pqc=17829 qp=1 dt=3761/1 dn=0 df=1818 of=0 ri=0 ql=2 b=10
  21. rcu_bh:
  22. 0 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=10951/1 dn=0 df=0 of=0 ri=0 ql=0 b=10
  23. 1 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=16117/1 dn=0 df=13 of=0 ri=0 ql=0 b=10
  24. 2 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=1445/1 dn=0 df=15 of=0 ri=0 ql=0 b=10
  25. 3 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=6681/1 dn=0 df=9 of=0 ri=0 ql=0 b=10
  26. 4 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=1003/1 dn=0 df=15 of=0 ri=0 ql=0 b=10
  27. 5 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=3887/1 dn=0 df=15 of=0 ri=0 ql=0 b=10
  28. 6 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=859/1 dn=0 df=15 of=0 ri=0 ql=0 b=10
  29. 7 c=-275 g=-275 pq=1 pqc=-275 qp=0 dt=3761/1 dn=0 df=15 of=0 ri=0 ql=0 b=10
  30. The first section lists the rcu_data structures for rcu_sched, the second
  31. for rcu_bh. Note that CONFIG_TREE_PREEMPT_RCU kernels will have an
  32. additional section for rcu_preempt. Each section has one line per CPU,
  33. or eight for this 8-CPU system. The fields are as follows:
  34. o The number at the beginning of each line is the CPU number.
  35. CPUs numbers followed by an exclamation mark are offline,
  36. but have been online at least once since boot. There will be
  37. no output for CPUs that have never been online, which can be
  38. a good thing in the surprisingly common case where NR_CPUS is
  39. substantially larger than the number of actual CPUs.
  40. o "c" is the count of grace periods that this CPU believes have
  41. completed. CPUs in dynticks idle mode may lag quite a ways
  42. behind, for example, CPU 4 under "rcu_sched" above, which has
  43. slept through the past 25 RCU grace periods. It is not unusual
  44. to see CPUs lagging by thousands of grace periods.
  45. o "g" is the count of grace periods that this CPU believes have
  46. started. Again, CPUs in dynticks idle mode may lag behind.
  47. If the "c" and "g" values are equal, this CPU has already
  48. reported a quiescent state for the last RCU grace period that
  49. it is aware of, otherwise, the CPU believes that it owes RCU a
  50. quiescent state.
  51. o "pq" indicates that this CPU has passed through a quiescent state
  52. for the current grace period. It is possible for "pq" to be
  53. "1" and "c" different than "g", which indicates that although
  54. the CPU has passed through a quiescent state, either (1) this
  55. CPU has not yet reported that fact, (2) some other CPU has not
  56. yet reported for this grace period, or (3) both.
  57. o "pqc" indicates which grace period the last-observed quiescent
  58. state for this CPU corresponds to. This is important for handling
  59. the race between CPU 0 reporting an extended dynticks-idle
  60. quiescent state for CPU 1 and CPU 1 suddenly waking up and
  61. reporting its own quiescent state. If CPU 1 was the last CPU
  62. for the current grace period, then the CPU that loses this race
  63. will attempt to incorrectly mark CPU 1 as having checked in for
  64. the next grace period!
  65. o "qp" indicates that RCU still expects a quiescent state from
  66. this CPU.
  67. o "dt" is the current value of the dyntick counter that is incremented
  68. when entering or leaving dynticks idle state, either by the
  69. scheduler or by irq. The number after the "/" is the interrupt
  70. nesting depth when in dyntick-idle state, or one greater than
  71. the interrupt-nesting depth otherwise.
  72. This field is displayed only for CONFIG_NO_HZ kernels.
  73. o "dn" is the current value of the dyntick counter that is incremented
  74. when entering or leaving dynticks idle state via NMI. If both
  75. the "dt" and "dn" values are even, then this CPU is in dynticks
  76. idle mode and may be ignored by RCU. If either of these two
  77. counters is odd, then RCU must be alert to the possibility of
  78. an RCU read-side critical section running on this CPU.
  79. This field is displayed only for CONFIG_NO_HZ kernels.
  80. o "df" is the number of times that some other CPU has forced a
  81. quiescent state on behalf of this CPU due to this CPU being in
  82. dynticks-idle state.
  83. This field is displayed only for CONFIG_NO_HZ kernels.
  84. o "of" is the number of times that some other CPU has forced a
  85. quiescent state on behalf of this CPU due to this CPU being
  86. offline. In a perfect world, this might neve happen, but it
  87. turns out that offlining and onlining a CPU can take several grace
  88. periods, and so there is likely to be an extended period of time
  89. when RCU believes that the CPU is online when it really is not.
  90. Please note that erring in the other direction (RCU believing a
  91. CPU is offline when it is really alive and kicking) is a fatal
  92. error, so it makes sense to err conservatively.
  93. o "ri" is the number of times that RCU has seen fit to send a
  94. reschedule IPI to this CPU in order to get it to report a
  95. quiescent state.
  96. o "ql" is the number of RCU callbacks currently residing on
  97. this CPU. This is the total number of callbacks, regardless
  98. of what state they are in (new, waiting for grace period to
  99. start, waiting for grace period to end, ready to invoke).
  100. o "b" is the batch limit for this CPU. If more than this number
  101. of RCU callbacks is ready to invoke, then the remainder will
  102. be deferred.
  103. o "ci" is the number of RCU callbacks that have been invoked for
  104. this CPU. Note that ci+ql is the number of callbacks that have
  105. been registered in absence of CPU-hotplug activity.
  106. o "co" is the number of RCU callbacks that have been orphaned due to
  107. this CPU going offline.
  108. o "ca" is the number of RCU callbacks that have been adopted due to
  109. other CPUs going offline. Note that ci+co-ca+ql is the number of
  110. RCU callbacks registered on this CPU.
  111. There is also an rcu/rcudata.csv file with the same information in
  112. comma-separated-variable spreadsheet format.
  113. The output of "cat rcu/rcugp" looks as follows:
  114. rcu_sched: completed=33062 gpnum=33063
  115. rcu_bh: completed=464 gpnum=464
  116. Again, this output is for both "rcu_sched" and "rcu_bh". Note that
  117. kernels built with CONFIG_TREE_PREEMPT_RCU will have an additional
  118. "rcu_preempt" line. The fields are taken from the rcu_state structure,
  119. and are as follows:
  120. o "completed" is the number of grace periods that have completed.
  121. It is comparable to the "c" field from rcu/rcudata in that a
  122. CPU whose "c" field matches the value of "completed" is aware
  123. that the corresponding RCU grace period has completed.
  124. o "gpnum" is the number of grace periods that have started. It is
  125. comparable to the "g" field from rcu/rcudata in that a CPU
  126. whose "g" field matches the value of "gpnum" is aware that the
  127. corresponding RCU grace period has started.
  128. If these two fields are equal (as they are for "rcu_bh" above),
  129. then there is no grace period in progress, in other words, RCU
  130. is idle. On the other hand, if the two fields differ (as they
  131. do for "rcu_sched" above), then an RCU grace period is in progress.
  132. The output of "cat rcu/rcuhier" looks as follows, with very long lines:
  133. c=6902 g=6903 s=2 jfq=3 j=72c7 nfqs=13142/nfqsng=0(13142) fqlh=6 oqlen=0
  134. 1/1 .>. 0:127 ^0
  135. 3/3 .>. 0:35 ^0 0/0 .>. 36:71 ^1 0/0 .>. 72:107 ^2 0/0 .>. 108:127 ^3
  136. 3/3f .>. 0:5 ^0 2/3 .>. 6:11 ^1 0/0 .>. 12:17 ^2 0/0 .>. 18:23 ^3 0/0 .>. 24:29 ^4 0/0 .>. 30:35 ^5 0/0 .>. 36:41 ^0 0/0 .>. 42:47 ^1 0/0 .>. 48:53 ^2 0/0 .>. 54:59 ^3 0/0 .>. 60:65 ^4 0/0 .>. 66:71 ^5 0/0 .>. 72:77 ^0 0/0 .>. 78:83 ^1 0/0 .>. 84:89 ^2 0/0 .>. 90:95 ^3 0/0 .>. 96:101 ^4 0/0 .>. 102:107 ^5 0/0 .>. 108:113 ^0 0/0 .>. 114:119 ^1 0/0 .>. 120:125 ^2 0/0 .>. 126:127 ^3
  137. rcu_bh:
  138. c=-226 g=-226 s=1 jfq=-5701 j=72c7 nfqs=88/nfqsng=0(88) fqlh=0 oqlen=0
  139. 0/1 .>. 0:127 ^0
  140. 0/3 .>. 0:35 ^0 0/0 .>. 36:71 ^1 0/0 .>. 72:107 ^2 0/0 .>. 108:127 ^3
  141. 0/3f .>. 0:5 ^0 0/3 .>. 6:11 ^1 0/0 .>. 12:17 ^2 0/0 .>. 18:23 ^3 0/0 .>. 24:29 ^4 0/0 .>. 30:35 ^5 0/0 .>. 36:41 ^0 0/0 .>. 42:47 ^1 0/0 .>. 48:53 ^2 0/0 .>. 54:59 ^3 0/0 .>. 60:65 ^4 0/0 .>. 66:71 ^5 0/0 .>. 72:77 ^0 0/0 .>. 78:83 ^1 0/0 .>. 84:89 ^2 0/0 .>. 90:95 ^3 0/0 .>. 96:101 ^4 0/0 .>. 102:107 ^5 0/0 .>. 108:113 ^0 0/0 .>. 114:119 ^1 0/0 .>. 120:125 ^2 0/0 .>. 126:127 ^3
  142. This is once again split into "rcu_sched" and "rcu_bh" portions,
  143. and CONFIG_TREE_PREEMPT_RCU kernels will again have an additional
  144. "rcu_preempt" section. The fields are as follows:
  145. o "c" is exactly the same as "completed" under rcu/rcugp.
  146. o "g" is exactly the same as "gpnum" under rcu/rcugp.
  147. o "s" is the "signaled" state that drives force_quiescent_state()'s
  148. state machine.
  149. o "jfq" is the number of jiffies remaining for this grace period
  150. before force_quiescent_state() is invoked to help push things
  151. along. Note that CPUs in dyntick-idle mode throughout the grace
  152. period will not report on their own, but rather must be check by
  153. some other CPU via force_quiescent_state().
  154. o "j" is the low-order four hex digits of the jiffies counter.
  155. Yes, Paul did run into a number of problems that turned out to
  156. be due to the jiffies counter no longer counting. Why do you ask?
  157. o "nfqs" is the number of calls to force_quiescent_state() since
  158. boot.
  159. o "nfqsng" is the number of useless calls to force_quiescent_state(),
  160. where there wasn't actually a grace period active. This can
  161. happen due to races. The number in parentheses is the difference
  162. between "nfqs" and "nfqsng", or the number of times that
  163. force_quiescent_state() actually did some real work.
  164. o "fqlh" is the number of calls to force_quiescent_state() that
  165. exited immediately (without even being counted in nfqs above)
  166. due to contention on ->fqslock.
  167. o "oqlen" is the number of callbacks on the "orphan" callback
  168. list. RCU callbacks are placed on this list by CPUs going
  169. offline, and are "adopted" either by the CPU helping the outgoing
  170. CPU or by the next rcu_barrier*() call, whichever comes first.
  171. o Each element of the form "1/1 0:127 ^0" represents one struct
  172. rcu_node. Each line represents one level of the hierarchy, from
  173. root to leaves. It is best to think of the rcu_data structures
  174. as forming yet another level after the leaves. Note that there
  175. might be either one, two, or three levels of rcu_node structures,
  176. depending on the relationship between CONFIG_RCU_FANOUT and
  177. CONFIG_NR_CPUS.
  178. o The numbers separated by the "/" are the qsmask followed
  179. by the qsmaskinit. The qsmask will have one bit
  180. set for each entity in the next lower level that
  181. has not yet checked in for the current grace period.
  182. The qsmaskinit will have one bit for each entity that is
  183. currently expected to check in during each grace period.
  184. The value of qsmaskinit is assigned to that of qsmask
  185. at the beginning of each grace period.
  186. For example, for "rcu_sched", the qsmask of the first
  187. entry of the lowest level is 0x14, meaning that we
  188. are still waiting for CPUs 2 and 4 to check in for the
  189. current grace period.
  190. o The characters separated by the ">" indicate the state
  191. of the blocked-tasks lists. A "T" preceding the ">"
  192. indicates that at least one task blocked in an RCU
  193. read-side critical section blocks the current grace
  194. period, while a "." preceding the ">" indicates otherwise.
  195. The character following the ">" indicates similarly for
  196. the next grace period. A "T" should appear in this
  197. field only for rcu-preempt.
  198. o The numbers separated by the ":" are the range of CPUs
  199. served by this struct rcu_node. This can be helpful
  200. in working out how the hierarchy is wired together.
  201. For example, the first entry at the lowest level shows
  202. "0:5", indicating that it covers CPUs 0 through 5.
  203. o The number after the "^" indicates the bit in the
  204. next higher level rcu_node structure that this
  205. rcu_node structure corresponds to.
  206. For example, the first entry at the lowest level shows
  207. "^0", indicating that it corresponds to bit zero in
  208. the first entry at the middle level.
  209. The output of "cat rcu/rcu_pending" looks as follows:
  210. rcu_sched:
  211. 0 np=255892 qsp=53936 rpq=85 cbr=0 cng=14417 gpc=10033 gps=24320 nf=6445 nn=146741
  212. 1 np=261224 qsp=54638 rpq=33 cbr=0 cng=25723 gpc=16310 gps=2849 nf=5912 nn=155792
  213. 2 np=237496 qsp=49664 rpq=23 cbr=0 cng=2762 gpc=45478 gps=1762 nf=1201 nn=136629
  214. 3 np=236249 qsp=48766 rpq=98 cbr=0 cng=286 gpc=48049 gps=1218 nf=207 nn=137723
  215. 4 np=221310 qsp=46850 rpq=7 cbr=0 cng=26 gpc=43161 gps=4634 nf=3529 nn=123110
  216. 5 np=237332 qsp=48449 rpq=9 cbr=0 cng=54 gpc=47920 gps=3252 nf=201 nn=137456
  217. 6 np=219995 qsp=46718 rpq=12 cbr=0 cng=50 gpc=42098 gps=6093 nf=4202 nn=120834
  218. 7 np=249893 qsp=49390 rpq=42 cbr=0 cng=72 gpc=38400 gps=17102 nf=41 nn=144888
  219. rcu_bh:
  220. 0 np=146741 qsp=1419 rpq=6 cbr=0 cng=6 gpc=0 gps=0 nf=2 nn=145314
  221. 1 np=155792 qsp=12597 rpq=3 cbr=0 cng=0 gpc=4 gps=8 nf=3 nn=143180
  222. 2 np=136629 qsp=18680 rpq=1 cbr=0 cng=0 gpc=7 gps=6 nf=0 nn=117936
  223. 3 np=137723 qsp=2843 rpq=0 cbr=0 cng=0 gpc=10 gps=7 nf=0 nn=134863
  224. 4 np=123110 qsp=12433 rpq=0 cbr=0 cng=0 gpc=4 gps=2 nf=0 nn=110671
  225. 5 np=137456 qsp=4210 rpq=1 cbr=0 cng=0 gpc=6 gps=5 nf=0 nn=133235
  226. 6 np=120834 qsp=9902 rpq=2 cbr=0 cng=0 gpc=6 gps=3 nf=2 nn=110921
  227. 7 np=144888 qsp=26336 rpq=0 cbr=0 cng=0 gpc=8 gps=2 nf=0 nn=118542
  228. As always, this is once again split into "rcu_sched" and "rcu_bh"
  229. portions, with CONFIG_TREE_PREEMPT_RCU kernels having an additional
  230. "rcu_preempt" section. The fields are as follows:
  231. o "np" is the number of times that __rcu_pending() has been invoked
  232. for the corresponding flavor of RCU.
  233. o "qsp" is the number of times that the RCU was waiting for a
  234. quiescent state from this CPU.
  235. o "rpq" is the number of times that the CPU had passed through
  236. a quiescent state, but not yet reported it to RCU.
  237. o "cbr" is the number of times that this CPU had RCU callbacks
  238. that had passed through a grace period, and were thus ready
  239. to be invoked.
  240. o "cng" is the number of times that this CPU needed another
  241. grace period while RCU was idle.
  242. o "gpc" is the number of times that an old grace period had
  243. completed, but this CPU was not yet aware of it.
  244. o "gps" is the number of times that a new grace period had started,
  245. but this CPU was not yet aware of it.
  246. o "nf" is the number of times that this CPU suspected that the
  247. current grace period had run for too long, and thus needed to
  248. be forced.
  249. Please note that "forcing" consists of sending resched IPIs
  250. to holdout CPUs. If that CPU really still is in an old RCU
  251. read-side critical section, then we really do have to wait for it.
  252. The assumption behing "forcing" is that the CPU is not still in
  253. an old RCU read-side critical section, but has not yet responded
  254. for some other reason.
  255. o "nn" is the number of times that this CPU needed nothing. Alert
  256. readers will note that the rcu "nn" number for a given CPU very
  257. closely matches the rcu_bh "np" number for that same CPU. This
  258. is due to short-circuit evaluation in rcu_pending().