configuration.texi 15 KB

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  1. @c -*-texinfo-*-
  2. @c This file is part of the StarPU Handbook.
  3. @c Copyright (C) 2009--2011 Universit@'e de Bordeaux 1
  4. @c Copyright (C) 2010, 2011, 2012 Centre National de la Recherche Scientifique
  5. @c Copyright (C) 2011, 2012 Institut National de Recherche en Informatique et Automatique
  6. @c See the file starpu.texi for copying conditions.
  7. @menu
  8. * Compilation configuration::
  9. * Execution configuration through environment variables::
  10. @end menu
  11. @node Compilation configuration
  12. @section Compilation configuration
  13. The following arguments can be given to the @code{configure} script.
  14. @menu
  15. * Common configuration::
  16. * Configuring workers::
  17. * Advanced configuration::
  18. @end menu
  19. @node Common configuration
  20. @subsection Common configuration
  21. @table @code
  22. @item --enable-debug
  23. Enable debugging messages.
  24. @item --enable-fast
  25. Disable assertion checks, which saves computation time.
  26. @item --enable-verbose
  27. Increase the verbosity of the debugging messages. This can be disabled
  28. at runtime by setting the environment variable @code{STARPU_SILENT} to
  29. any value.
  30. @smallexample
  31. % STARPU_SILENT=1 ./vector_scal
  32. @end smallexample
  33. @item --enable-coverage
  34. Enable flags for the @code{gcov} coverage tool.
  35. @end table
  36. @node Configuring workers
  37. @subsection Configuring workers
  38. @table @code
  39. @item --enable-maxcpus=@var{count}
  40. Use at most @var{count} CPU cores. This information is then
  41. available as the @code{STARPU_MAXCPUS} macro.
  42. @item --disable-cpu
  43. Disable the use of CPUs of the machine. Only GPUs etc. will be used.
  44. @item --enable-maxcudadev=@var{count}
  45. Use at most @var{count} CUDA devices. This information is then
  46. available as the @code{STARPU_MAXCUDADEVS} macro.
  47. @item --disable-cuda
  48. Disable the use of CUDA, even if a valid CUDA installation was detected.
  49. @item --with-cuda-dir=@var{prefix}
  50. Search for CUDA under @var{prefix}, which should notably contain
  51. @file{include/cuda.h}.
  52. @item --with-cuda-include-dir=@var{dir}
  53. Search for CUDA headers under @var{dir}, which should
  54. notably contain @code{cuda.h}. This defaults to @code{/include} appended to the
  55. value given to @code{--with-cuda-dir}.
  56. @item --with-cuda-lib-dir=@var{dir}
  57. Search for CUDA libraries under @var{dir}, which should notably contain
  58. the CUDA shared libraries---e.g., @file{libcuda.so}. This defaults to
  59. @code{/lib} appended to the value given to @code{--with-cuda-dir}.
  60. @item --disable-cuda-memcpy-peer
  61. Explicitly disable peer transfers when using CUDA 4.0.
  62. @item --enable-maxopencldev=@var{count}
  63. Use at most @var{count} OpenCL devices. This information is then
  64. available as the @code{STARPU_MAXOPENCLDEVS} macro.
  65. @item --disable-opencl
  66. Disable the use of OpenCL, even if the SDK is detected.
  67. @item --with-opencl-dir=@var{prefix}
  68. Search for an OpenCL implementation under @var{prefix}, which should
  69. notably contain @file{include/CL/cl.h} (or @file{include/OpenCL/cl.h} on
  70. Mac OS).
  71. @item --with-opencl-include-dir=@var{dir}
  72. Search for OpenCL headers under @var{dir}, which should notably contain
  73. @file{CL/cl.h} (or @file{OpenCL/cl.h} on Mac OS). This defaults to
  74. @code{/include} appended to the value given to @code{--with-opencl-dir}.
  75. @item --with-opencl-lib-dir=@var{dir}
  76. Search for an OpenCL library under @var{dir}, which should notably
  77. contain the OpenCL shared libraries---e.g. @file{libOpenCL.so}. This defaults to
  78. @code{/lib} appended to the value given to @code{--with-opencl-dir}.
  79. @item --enable-gordon
  80. Enable the use of the Gordon runtime for Cell SPUs.
  81. @c TODO: rather default to enabled when detected
  82. @item --with-gordon-dir=@var{prefix}
  83. Search for the Gordon SDK under @var{prefix}.
  84. @item --enable-maximplementations=@var{count}
  85. Allow for at most @var{count} codelet implementations for the same
  86. target device. This information is then available as the
  87. @code{STARPU_MAXIMPLEMENTATIONS} macro.
  88. @end table
  89. @node Advanced configuration
  90. @subsection Advanced configuration
  91. @table @code
  92. @item --enable-perf-debug
  93. Enable performance debugging through gprof.
  94. @item --enable-model-debug
  95. Enable performance model debugging.
  96. @item --enable-stats
  97. @c see ../../src/datawizard/datastats.c
  98. Enable gathering of memory transfer statistics.
  99. @item --enable-maxbuffers
  100. Define the maximum number of buffers that tasks will be able to take
  101. as parameters, then available as the @code{STARPU_NMAXBUFS} macro.
  102. @item --enable-allocation-cache
  103. Enable the use of a data allocation cache to avoid the cost of it with
  104. CUDA. Still experimental.
  105. @item --enable-opengl-render
  106. Enable the use of OpenGL for the rendering of some examples.
  107. @c TODO: rather default to enabled when detected
  108. @item --enable-blas-lib
  109. Specify the blas library to be used by some of the examples. The
  110. library has to be 'atlas' or 'goto'.
  111. @item --disable-starpufft
  112. Disable the build of libstarpufft, even if fftw or cuFFT is available.
  113. @item --with-magma=@var{prefix}
  114. Search for MAGMA under @var{prefix}. @var{prefix} should notably
  115. contain @file{include/magmablas.h}.
  116. @item --with-fxt=@var{prefix}
  117. Search for FxT under @var{prefix}.
  118. @url{http://savannah.nongnu.org/projects/fkt, FxT} is used to generate
  119. traces of scheduling events, which can then be rendered them using ViTE
  120. (@pxref{Off-line, off-line performance feedback}). @var{prefix} should
  121. notably contain @code{include/fxt/fxt.h}.
  122. @item --with-perf-model-dir=@var{dir}
  123. Store performance models under @var{dir}, instead of the current user's
  124. home.
  125. @item --with-mpicc=@var{path}
  126. Use the @command{mpicc} compiler at @var{path}, for starpumpi
  127. (@pxref{StarPU MPI support}).
  128. @item --with-goto-dir=@var{prefix}
  129. Search for GotoBLAS under @var{prefix}.
  130. @item --with-atlas-dir=@var{prefix}
  131. Search for ATLAS under @var{prefix}, which should notably contain
  132. @file{include/cblas.h}.
  133. @item --with-mkl-cflags=@var{cflags}
  134. Use @var{cflags} to compile code that uses the MKL library.
  135. @item --with-mkl-ldflags=@var{ldflags}
  136. Use @var{ldflags} when linking code that uses the MKL library. Note
  137. that the
  138. @url{http://software.intel.com/en-us/articles/intel-mkl-link-line-advisor/,
  139. MKL website} provides a script to determine the linking flags.
  140. @item --disable-gcc-extensions
  141. Disable the GCC plug-in (@pxref{C Extensions}). By default, it is
  142. enabled when the GCC compiler provides a plug-in support.
  143. @item --disable-socl
  144. Disable the SOCL extension (@pxref{SOCL OpenCL Extensions}). By
  145. default, it is enabled when an OpenCL implementation is found.
  146. @item --disable-starpu-top
  147. Disable the StarPU-Top interface (@pxref{starpu-top}). By default, it
  148. is enabled when the required dependencies are found.
  149. @end table
  150. @node Execution configuration through environment variables
  151. @section Execution configuration through environment variables
  152. @menu
  153. * Workers:: Configuring workers
  154. * Scheduling:: Configuring the Scheduling engine
  155. * Misc:: Miscellaneous and debug
  156. @end menu
  157. Note: the values given in @code{starpu_conf} structure passed when
  158. calling @code{starpu_init} will override the values of the environment
  159. variables.
  160. @node Workers
  161. @subsection Configuring workers
  162. @menu
  163. * STARPU_NCPUS:: Number of CPU workers
  164. * STARPU_NCUDA:: Number of CUDA workers
  165. * STARPU_NOPENCL:: Number of OpenCL workers
  166. * STARPU_NGORDON:: Number of SPU workers (Cell)
  167. * STARPU_WORKERS_CPUID:: Bind workers to specific CPUs
  168. * STARPU_WORKERS_CUDAID:: Select specific CUDA devices
  169. * STARPU_WORKERS_OPENCLID:: Select specific OpenCL devices
  170. @end menu
  171. @node STARPU_NCPUS
  172. @subsubsection @code{STARPU_NCPUS} -- Number of CPU workers
  173. Specify the number of CPU workers (thus not including workers dedicated to control acceleratores). Note that by default, StarPU will not allocate
  174. more CPU workers than there are physical CPUs, and that some CPUs are used to control
  175. the accelerators.
  176. @node STARPU_NCUDA
  177. @subsubsection @code{STARPU_NCUDA} -- Number of CUDA workers
  178. Specify the number of CUDA devices that StarPU can use. If
  179. @code{STARPU_NCUDA} is lower than the number of physical devices, it is
  180. possible to select which CUDA devices should be used by the means of the
  181. @code{STARPU_WORKERS_CUDAID} environment variable. By default, StarPU will
  182. create as many CUDA workers as there are CUDA devices.
  183. @node STARPU_NOPENCL
  184. @subsubsection @code{STARPU_NOPENCL} -- Number of OpenCL workers
  185. OpenCL equivalent of the @code{STARPU_NCUDA} environment variable.
  186. @node STARPU_NGORDON
  187. @subsubsection @code{STARPU_NGORDON} -- Number of SPU workers (Cell)
  188. Specify the number of SPUs that StarPU can use.
  189. @node STARPU_WORKERS_CPUID
  190. @subsubsection @code{STARPU_WORKERS_CPUID} -- Bind workers to specific CPUs
  191. Passing an array of integers (starting from 0) in @code{STARPU_WORKERS_CPUID}
  192. specifies on which logical CPU the different workers should be
  193. bound. For instance, if @code{STARPU_WORKERS_CPUID = "0 1 4 5"}, the first
  194. worker will be bound to logical CPU #0, the second CPU worker will be bound to
  195. logical CPU #1 and so on. Note that the logical ordering of the CPUs is either
  196. determined by the OS, or provided by the @code{hwloc} library in case it is
  197. available.
  198. Note that the first workers correspond to the CUDA workers, then come the
  199. OpenCL and the SPU, and finally the CPU workers. For example if
  200. we have @code{STARPU_NCUDA=1}, @code{STARPU_NOPENCL=1}, @code{STARPU_NCPUS=2}
  201. and @code{STARPU_WORKERS_CPUID = "0 2 1 3"}, the CUDA device will be controlled
  202. by logical CPU #0, the OpenCL device will be controlled by logical CPU #2, and
  203. the logical CPUs #1 and #3 will be used by the CPU workers.
  204. If the number of workers is larger than the array given in
  205. @code{STARPU_WORKERS_CPUID}, the workers are bound to the logical CPUs in a
  206. round-robin fashion: if @code{STARPU_WORKERS_CPUID = "0 1"}, the first and the
  207. third (resp. second and fourth) workers will be put on CPU #0 (resp. CPU #1).
  208. This variable is ignored if the @code{use_explicit_workers_bindid} flag of the
  209. @code{starpu_conf} structure passed to @code{starpu_init} is set.
  210. @node STARPU_WORKERS_CUDAID
  211. @subsubsection @code{STARPU_WORKERS_CUDAID} -- Select specific CUDA devices
  212. Similarly to the @code{STARPU_WORKERS_CPUID} environment variable, it is
  213. possible to select which CUDA devices should be used by StarPU. On a machine
  214. equipped with 4 GPUs, setting @code{STARPU_WORKERS_CUDAID = "1 3"} and
  215. @code{STARPU_NCUDA=2} specifies that 2 CUDA workers should be created, and that
  216. they should use CUDA devices #1 and #3 (the logical ordering of the devices is
  217. the one reported by CUDA).
  218. This variable is ignored if the @code{use_explicit_workers_cuda_gpuid} flag of
  219. the @code{starpu_conf} structure passed to @code{starpu_init} is set.
  220. @node STARPU_WORKERS_OPENCLID
  221. @subsubsection @code{STARPU_WORKERS_OPENCLID} -- Select specific OpenCL devices
  222. OpenCL equivalent of the @code{STARPU_WORKERS_CUDAID} environment variable.
  223. This variable is ignored if the @code{use_explicit_workers_opencl_gpuid} flag of
  224. the @code{starpu_conf} structure passed to @code{starpu_init} is set.
  225. @node Scheduling
  226. @subsection Configuring the Scheduling engine
  227. @menu
  228. * STARPU_SCHED:: Scheduling policy
  229. * STARPU_CALIBRATE:: Calibrate performance models
  230. * STARPU_PREFETCH:: Use data prefetch
  231. * STARPU_SCHED_ALPHA:: Computation factor
  232. * STARPU_SCHED_BETA:: Communication factor
  233. @end menu
  234. @node STARPU_SCHED
  235. @subsubsection @code{STARPU_SCHED} -- Scheduling policy
  236. Choose between the different scheduling policies proposed by StarPU: work
  237. random, stealing, greedy, with performance models, etc.
  238. Use @code{STARPU_SCHED=help} to get the list of available schedulers.
  239. @node STARPU_CALIBRATE
  240. @subsubsection @code{STARPU_CALIBRATE} -- Calibrate performance models
  241. If this variable is set to 1, the performance models are calibrated during
  242. the execution. If it is set to 2, the previous values are dropped to restart
  243. calibration from scratch. Setting this variable to 0 disable calibration, this
  244. is the default behaviour.
  245. Note: this currently only applies to @code{dm}, @code{dmda} and @code{heft} scheduling policies.
  246. @node STARPU_PREFETCH
  247. @subsubsection @code{STARPU_PREFETCH} -- Use data prefetch
  248. This variable indicates whether data prefetching should be enabled (0 means
  249. that it is disabled). If prefetching is enabled, when a task is scheduled to be
  250. executed e.g. on a GPU, StarPU will request an asynchronous transfer in
  251. advance, so that data is already present on the GPU when the task starts. As a
  252. result, computation and data transfers are overlapped.
  253. Note that prefetching is enabled by default in StarPU.
  254. @node STARPU_SCHED_ALPHA
  255. @subsubsection @code{STARPU_SCHED_ALPHA} -- Computation factor
  256. To estimate the cost of a task StarPU takes into account the estimated
  257. computation time (obtained thanks to performance models). The alpha factor is
  258. the coefficient to be applied to it before adding it to the communication part.
  259. @node STARPU_SCHED_BETA
  260. @subsubsection @code{STARPU_SCHED_BETA} -- Communication factor
  261. To estimate the cost of a task StarPU takes into account the estimated
  262. data transfer time (obtained thanks to performance models). The beta factor is
  263. the coefficient to be applied to it before adding it to the computation part.
  264. @node Misc
  265. @subsection Miscellaneous and debug
  266. @menu
  267. * STARPU_SILENT:: Disable verbose mode
  268. * STARPU_LOGFILENAME:: Select debug file name
  269. * STARPU_FXT_PREFIX:: FxT trace location
  270. * STARPU_LIMIT_GPU_MEM:: Restrict memory size on the GPUs
  271. * STARPU_GENERATE_TRACE:: Generate a Paje trace when StarPU is shut down
  272. @end menu
  273. @node STARPU_SILENT
  274. @subsubsection @code{STARPU_SILENT} -- Disable verbose mode
  275. This variable allows to disable verbose mode at runtime when StarPU
  276. has been configured with the option @code{--enable-verbose}.
  277. @node STARPU_LOGFILENAME
  278. @subsubsection @code{STARPU_LOGFILENAME} -- Select debug file name
  279. This variable specifies in which file the debugging output should be saved to.
  280. @node STARPU_FXT_PREFIX
  281. @subsubsection @code{STARPU_FXT_PREFIX} -- FxT trace location
  282. This variable specifies in which directory to save the trace generated if FxT is enabled. It needs to have a trailing '/' character.
  283. @node STARPU_LIMIT_GPU_MEM
  284. @subsubsection @code{STARPU_LIMIT_GPU_MEM} -- Restrict memory size on the GPUs
  285. This variable specifies the maximum number of megabytes that should be
  286. available to the application on each GPUs. In case this value is smaller than
  287. the size of the memory of a GPU, StarPU pre-allocates a buffer to waste memory
  288. on the device. This variable is intended to be used for experimental purposes
  289. as it emulates devices that have a limited amount of memory.
  290. @node STARPU_GENERATE_TRACE
  291. @subsubsection @code{STARPU_GENERATE_TRACE} -- Generate a Paje trace when StarPU is shut down
  292. When set to 1, this variable indicates that StarPU should automatically
  293. generate a Paje trace when starpu_shutdown is called.