starpu_trace_state_stats.py 13 KB

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  1. #!/usr/bin/python
  2. ##
  3. # StarPU --- Runtime system for heterogeneous multicore architectures.
  4. #
  5. # Copyright (C) 2016 INRIA
  6. #
  7. # StarPU is free software; you can redistribute it and/or modify
  8. # it under the terms of the GNU Lesser General Public License as published by
  9. # the Free Software Foundation; either version 2.1 of the License, or (at
  10. # your option) any later version.
  11. #
  12. # StarPU is distributed in the hope that it will be useful, but
  13. # WITHOUT ANY WARRANTY; without even the implied warranty of
  14. # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  15. #
  16. # See the GNU Lesser General Public License in COPYING.LGPL for more details.
  17. ##
  18. ##
  19. # This script parses the generated trace.rec file and reports statistics about
  20. # the number of different events/tasks and their durations. The report is
  21. # similar to the starpu_paje_state_stats.in script, except that this one
  22. # doesn't need R and pj_dump (from the pajeng repository), and it is also much
  23. # faster.
  24. ##
  25. import getopt
  26. import os
  27. import sys
  28. class Event():
  29. def __init__(self, type, name, category, start_time):
  30. self._type = type
  31. self._name = name
  32. self._category = category
  33. self._start_time = start_time
  34. class EventStats():
  35. def __init__(self, name, duration_time, category, count = 1):
  36. self._name = name
  37. self._duration_time = duration_time
  38. self._category = category
  39. self._count = count
  40. def aggregate(self, duration_time):
  41. self._duration_time += duration_time
  42. self._count += 1
  43. def show(self):
  44. if not self._name == None and not self._category == None:
  45. print("\"" + self._name + "\"," + str(self._count) + ",\"" + self._category + "\"," + str(round(self._duration_time, 6)))
  46. class Worker():
  47. def __init__(self, id):
  48. self._id = id
  49. self._events = []
  50. self._stats = []
  51. self._stack = []
  52. self._current_state = None
  53. def get_event_stats(self, name):
  54. for stat in self._stats:
  55. if stat._name == name:
  56. return stat
  57. return None
  58. def add_event(self, type, name, category, start_time):
  59. self._events.append(Event(type, name, category, start_time))
  60. def add_event_to_stats(self, curr_event):
  61. if curr_event._type == "PushState":
  62. self._stack.append(curr_event)
  63. return # Will look later to find a PopState event.
  64. elif curr_event._type == "PopState":
  65. if len(self._stack) == 0:
  66. sys.exit("ERROR: The trace is most likely corrupted "
  67. "because a PopState event has been found without "
  68. "a PushState!")
  69. next_event = curr_event
  70. curr_event = self._stack.pop()
  71. elif curr_event._type == "SetState":
  72. if self._current_state == None:
  73. # First SetState event found
  74. self._current_state = curr_event
  75. return
  76. saved_state = curr_event
  77. next_event = curr_event
  78. curr_event = self._current_state
  79. self._current_state = saved_state
  80. else:
  81. sys.exit("ERROR: Invalid event type!")
  82. # Compute duration with the next event.
  83. a = curr_event._start_time
  84. b = next_event._start_time
  85. # Add the event to the list of stats.
  86. for i in range(len(self._stats)):
  87. if self._stats[i]._name == curr_event._name:
  88. self._stats[i].aggregate(b - a)
  89. return
  90. self._stats.append(EventStats(curr_event._name, b - a,
  91. curr_event._category))
  92. def calc_stats(self, start_profiling_times, stop_profiling_times):
  93. num_events = len(self._events)
  94. use_start_stop = len(start_profiling_times) != 0
  95. for i in range(0, num_events):
  96. event = self._events[i]
  97. if i > 0 and self._events[i-1]._name == "Deinitializing":
  98. # Drop all events after the Deinitializing event is found
  99. # because they do not make sense.
  100. break
  101. if not use_start_stop:
  102. self.add_event_to_stats(event)
  103. continue
  104. # Check if the event is inbetween start/stop profiling events
  105. for t in range(len(start_profiling_times)):
  106. if (event._start_time > start_profiling_times[t] and
  107. event._start_time < stop_profiling_times[t]):
  108. self.add_event_to_stats(event)
  109. break
  110. if not use_start_stop:
  111. return
  112. # Special case for SetState events which need a next one for computing
  113. # the duration.
  114. curr_event = self._events[-1]
  115. if curr_event._type == "SetState":
  116. for i in range(len(start_profiling_times)):
  117. if (curr_event._start_time > start_profiling_times[i] and
  118. curr_event._start_time < stop_profiling_times[i]):
  119. curr_event = Event(curr_event._type, curr_event._name,
  120. curr_event._category,
  121. stop_profiling_times[i])
  122. self.add_event_to_stats(curr_event)
  123. def read_blocks(input_file):
  124. empty_lines = 0
  125. first_line = 1
  126. blocks = []
  127. for line in open(input_file):
  128. if first_line:
  129. blocks.append([])
  130. blocks[-1].append(line)
  131. first_line = 0
  132. # Check for empty lines
  133. if not line or line[0] == '\n':
  134. # If 1st one: new block
  135. if empty_lines == 0:
  136. blocks.append([])
  137. empty_lines += 1
  138. else:
  139. # Non empty line: add line in current(last) block
  140. empty_lines = 0
  141. blocks[-1].append(line)
  142. return blocks
  143. def read_field(field, index):
  144. return field[index+1:-1]
  145. def insert_worker_event(workers, prog_events, block):
  146. worker_id = -1
  147. name = None
  148. start_time = 0.0
  149. category = None
  150. for line in block:
  151. key = line[:2]
  152. value = read_field(line, 2)
  153. if key == "E:": # EventType
  154. event_type = value
  155. elif key == "C:": # Category
  156. category = value
  157. elif key == "W:": # WorkerId
  158. worker_id = int(value)
  159. elif key == "N:": # Name
  160. name = value
  161. elif key == "S:": # StartTime
  162. start_time = float(value)
  163. # Program events don't belong to workers, they are globals.
  164. if category == "Program":
  165. prog_events.append(Event(event_type, name, category, start_time))
  166. return
  167. for worker in workers:
  168. if worker._id == worker_id:
  169. worker.add_event(event_type, name, category, start_time)
  170. return
  171. worker = Worker(worker_id)
  172. worker.add_event(event_type, name, category, start_time)
  173. workers.append(worker)
  174. def calc_times(stats):
  175. tr = 0.0 # Runtime
  176. tt = 0.0 # Task
  177. ti = 0.0 # Idle
  178. ts = 0.0 # Scheduling
  179. for stat in stats:
  180. if stat._category == None:
  181. continue
  182. if stat._category == "Runtime":
  183. if stat._name == "Scheduling":
  184. # Scheduling time is part of runtime but we want to have
  185. # it separately.
  186. ts += stat._duration_time
  187. else:
  188. tr += stat._duration_time
  189. elif stat._category == "Task":
  190. tt += stat._duration_time
  191. elif stat._category == "Other":
  192. ti += stat._duration_time
  193. else:
  194. print("WARNING: Unknown category '" + stat._category + "'!")
  195. return ti, tr, tt, ts
  196. def save_times(ti, tr, tt, ts):
  197. f = open("times.csv", "w+")
  198. f.write("\"Time\",\"Duration\"\n")
  199. f.write("\"Runtime\"," + str(tr) + "\n")
  200. f.write("\"Task\"," + str(tt) + "\n")
  201. f.write("\"Idle\"," + str(ti) + "\n")
  202. f.write("\"Scheduling\"," + str(ts) + "\n")
  203. f.close()
  204. def calc_et(tt_1, tt_p):
  205. """ Compute the task efficiency (et). This measures the exploitation of
  206. data locality. """
  207. return tt_1 / tt_p
  208. def calc_es(tt_p, ts_p):
  209. """ Compute the scheduling efficiency (es). This measures time spent in
  210. the runtime scheduler. """
  211. return tt_p / (tt_p + ts_p)
  212. def calc_er(tt_p, tr_p, ts_p):
  213. """ Compute the runtime efficiency (er). This measures how the runtime
  214. overhead affects performance."""
  215. return (tt_p + ts_p) / (tt_p + tr_p + ts_p)
  216. def calc_ep(tt_p, tr_p, ti_p, ts_p):
  217. """ Compute the pipeline efficiency (et). This measures how much
  218. concurrency is available and how well it's exploited. """
  219. return (tt_p + tr_p + ts_p) / (tt_p + tr_p + ti_p + ts_p)
  220. def calc_e(et, er, ep, es):
  221. """ Compute the parallel efficiency. """
  222. return et * er * ep * es
  223. def save_efficiencies(e, ep, er, et, es):
  224. f = open("efficiencies.csv", "w+")
  225. f.write("\"Efficiency\",\"Value\"\n")
  226. f.write("\"Parallel\"," + str(e) + "\n")
  227. f.write("\"Task\"," + str(et) + "\n")
  228. f.write("\"Runtime\"," + str(er) + "\n")
  229. f.write("\"Scheduling\"," + str(es) + "\n")
  230. f.write("\"Pipeline\"," + str(ep) + "\n")
  231. f.close()
  232. def usage():
  233. print("USAGE:")
  234. print("starpu_trace_state_stats.py [ -te -s=<time> ] <trace.rec>")
  235. print("")
  236. print("OPTIONS:")
  237. print(" -t or --time Compute and dump times to times.csv")
  238. print("")
  239. print(" -e or --efficiency Compute and dump efficiencies to efficiencies.csv")
  240. print("")
  241. print(" -s or --seq_task_time Used to compute task efficiency between sequential and parallel times")
  242. print(" (if not set, task efficiency will be 1.0)")
  243. print("")
  244. print("EXAMPLES:")
  245. print("# Compute event statistics and report them to stdout:")
  246. print("python starpu_trace_state_stats.py trace.rec")
  247. print("")
  248. print("# Compute event stats, times and efficiencies:")
  249. print("python starpu_trace_state_stats.py -te trace.rec")
  250. print("")
  251. print("# Compute correct task efficiency with the sequential task time:")
  252. print("python starpu_trace_state_stats.py -s=60093.950614 trace.rec")
  253. def main():
  254. try:
  255. opts, args = getopt.getopt(sys.argv[1:], "hets:",
  256. ["help", "time", "efficiency", "seq_task_time="])
  257. except getopt.GetoptError as err:
  258. usage()
  259. sys.exit(1)
  260. dump_time = False
  261. dump_efficiency = False
  262. tt_1 = 0.0
  263. for o, a in opts:
  264. if o in ("-h", "--help"):
  265. usage()
  266. sys.exit()
  267. elif o in ("-t", "--time"):
  268. dump_time = True
  269. elif o in ("-e", "--efficiency"):
  270. dump_efficiency = True
  271. elif o in ("-s", "--seq_task_time"):
  272. tt_1 = float(a)
  273. if len(args) < 1:
  274. usage()
  275. sys.exit()
  276. recfile = args[0]
  277. if not os.path.isfile(recfile):
  278. sys.exit("File does not exist!")
  279. # Declare a list for all workers.
  280. workers = []
  281. # Declare a list for program events
  282. prog_events = []
  283. # Read the recutils file format per blocks.
  284. blocks = read_blocks(recfile)
  285. for block in blocks:
  286. if not len(block) == 0:
  287. first_line = block[0]
  288. if first_line[:2] == "E:":
  289. insert_worker_event(workers, prog_events, block)
  290. # Find allowed range times between start/stop profiling events.
  291. start_profiling_times = []
  292. stop_profiling_times = []
  293. for prog_event in prog_events:
  294. if prog_event._name == "start_profiling":
  295. start_profiling_times.append(prog_event._start_time)
  296. if prog_event._name == "stop_profiling":
  297. stop_profiling_times.append(prog_event._start_time)
  298. if len(start_profiling_times) != len(stop_profiling_times):
  299. sys.exit("Mismatch number of start/stop profiling events!")
  300. # Compute worker statistics.
  301. stats = []
  302. for worker in workers:
  303. worker.calc_stats(start_profiling_times, stop_profiling_times)
  304. for stat in worker._stats:
  305. found = False
  306. for s in stats:
  307. if stat._name == s._name:
  308. found = True
  309. break
  310. if not found == True:
  311. stats.append(EventStats(stat._name, 0.0, stat._category, 0))
  312. # Compute global statistics for all workers.
  313. for i in range(0, len(workers)):
  314. for stat in stats:
  315. s = workers[i].get_event_stats(stat._name)
  316. if not s == None:
  317. # A task might not be executed on all workers.
  318. stat._duration_time += s._duration_time
  319. stat._count += s._count
  320. # Output statistics.
  321. print("\"Name\",\"Count\",\"Type\",\"Duration\"")
  322. for stat in stats:
  323. stat.show()
  324. # Compute runtime, task, idle, scheduling times and dump them to times.csv
  325. ti_p = tr_p = tt_p = ts_p = 0.0
  326. if dump_time == True:
  327. ti_p, tr_p, tt_p, ts_p = calc_times(stats)
  328. save_times(ti_p, tr_p, tt_p, ts_p)
  329. # Compute runtime, task, idle efficiencies and dump them to
  330. # efficiencies.csv.
  331. if dump_efficiency == True or not tt_1 == 0.0:
  332. if dump_time == False:
  333. ti_p, tr_p, tt_p, ts_p = calc_times(stats)
  334. if tt_1 == 0.0:
  335. sys.stderr.write("WARNING: Task efficiency will be 1.0 because -s is not set!\n")
  336. tt_1 = tt_p
  337. # Compute efficiencies.
  338. et = round(calc_et(tt_1, tt_p), 6)
  339. es = round(calc_es(tt_p, ts_p), 6)
  340. er = round(calc_er(tt_p, tr_p, ts_p), 6)
  341. ep = round(calc_ep(tt_p, tr_p, ti_p, ts_p), 6)
  342. e = round(calc_e(et, er, ep, es), 6)
  343. save_efficiencies(e, ep, er, et, es)
  344. if __name__ == "__main__":
  345. main()