blob: fe5fbe590972a3e03e63ca2ec94aeffc707cf7fe [file] [log] [blame]
Jim Cownie5e8470a2013-09-27 10:38:44 +00001/*
2 * kmp_affinity.cpp -- affinity management
Jim Cownie5e8470a2013-09-27 10:38:44 +00003 */
4
Jim Cownie5e8470a2013-09-27 10:38:44 +00005//===----------------------------------------------------------------------===//
6//
7// The LLVM Compiler Infrastructure
8//
9// This file is dual licensed under the MIT and the University of Illinois Open
10// Source Licenses. See LICENSE.txt for details.
11//
12//===----------------------------------------------------------------------===//
13
Jim Cownie5e8470a2013-09-27 10:38:44 +000014#include "kmp.h"
Jonathan Peyton30419822017-05-12 18:01:32 +000015#include "kmp_affinity.h"
Jim Cownie5e8470a2013-09-27 10:38:44 +000016#include "kmp_i18n.h"
17#include "kmp_io.h"
18#include "kmp_str.h"
Jim Cownie4cc4bb42014-10-07 16:25:50 +000019#include "kmp_wrapper_getpid.h"
Jonathan Peyton17078362015-09-10 19:22:07 +000020
21// Store the real or imagined machine hierarchy here
22static hierarchy_info machine_hierarchy;
23
Jonathan Peyton30419822017-05-12 18:01:32 +000024void __kmp_cleanup_hierarchy() { machine_hierarchy.fini(); }
25
Jonathan Peyton17078362015-09-10 19:22:07 +000026void __kmp_get_hierarchy(kmp_uint32 nproc, kmp_bstate_t *thr_bar) {
Jonathan Peyton30419822017-05-12 18:01:32 +000027 kmp_uint32 depth;
28 // The test below is true if affinity is available, but set to "none". Need to
29 // init on first use of hierarchical barrier.
30 if (TCR_1(machine_hierarchy.uninitialized))
31 machine_hierarchy.init(NULL, nproc);
Jonathan Peyton17078362015-09-10 19:22:07 +000032
Jonathan Peyton30419822017-05-12 18:01:32 +000033 // Adjust the hierarchy in case num threads exceeds original
34 if (nproc > machine_hierarchy.base_num_threads)
35 machine_hierarchy.resize(nproc);
Jonathan Peyton7dee82e2015-11-09 16:24:53 +000036
Jonathan Peyton30419822017-05-12 18:01:32 +000037 depth = machine_hierarchy.depth;
38 KMP_DEBUG_ASSERT(depth > 0);
Jonathan Peyton17078362015-09-10 19:22:07 +000039
Jonathan Peyton30419822017-05-12 18:01:32 +000040 thr_bar->depth = depth;
41 thr_bar->base_leaf_kids = (kmp_uint8)machine_hierarchy.numPerLevel[0] - 1;
42 thr_bar->skip_per_level = machine_hierarchy.skipPerLevel;
Jonathan Peyton17078362015-09-10 19:22:07 +000043}
Jim Cownie5e8470a2013-09-27 10:38:44 +000044
Alp Toker763b9392014-02-28 09:42:41 +000045#if KMP_AFFINITY_SUPPORTED
Jim Cownie5e8470a2013-09-27 10:38:44 +000046
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000047bool KMPAffinity::picked_api = false;
48
Jonathan Peyton30419822017-05-12 18:01:32 +000049void *KMPAffinity::Mask::operator new(size_t n) { return __kmp_allocate(n); }
50void *KMPAffinity::Mask::operator new[](size_t n) { return __kmp_allocate(n); }
51void KMPAffinity::Mask::operator delete(void *p) { __kmp_free(p); }
52void KMPAffinity::Mask::operator delete[](void *p) { __kmp_free(p); }
53void *KMPAffinity::operator new(size_t n) { return __kmp_allocate(n); }
54void KMPAffinity::operator delete(void *p) { __kmp_free(p); }
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000055
56void KMPAffinity::pick_api() {
Jonathan Peyton30419822017-05-12 18:01:32 +000057 KMPAffinity *affinity_dispatch;
58 if (picked_api)
59 return;
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000060#if KMP_USE_HWLOC
Jonathan Peytone3e2aaf2017-05-31 20:35:22 +000061 // Only use Hwloc if affinity isn't explicitly disabled and
62 // user requests Hwloc topology method
63 if (__kmp_affinity_top_method == affinity_top_method_hwloc &&
64 __kmp_affinity_type != affinity_disabled) {
Jonathan Peyton30419822017-05-12 18:01:32 +000065 affinity_dispatch = new KMPHwlocAffinity();
66 } else
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000067#endif
Jonathan Peyton30419822017-05-12 18:01:32 +000068 {
69 affinity_dispatch = new KMPNativeAffinity();
70 }
71 __kmp_affinity_dispatch = affinity_dispatch;
72 picked_api = true;
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000073}
74
75void KMPAffinity::destroy_api() {
Jonathan Peyton30419822017-05-12 18:01:32 +000076 if (__kmp_affinity_dispatch != NULL) {
77 delete __kmp_affinity_dispatch;
78 __kmp_affinity_dispatch = NULL;
79 picked_api = false;
80 }
Jonathan Peyton1cdd87a2016-11-14 21:08:35 +000081}
82
Jim Cownie5e8470a2013-09-27 10:38:44 +000083// Print the affinity mask to the character array in a pretty format.
Jonathan Peyton30419822017-05-12 18:01:32 +000084char *__kmp_affinity_print_mask(char *buf, int buf_len,
85 kmp_affin_mask_t *mask) {
86 KMP_ASSERT(buf_len >= 40);
87 char *scan = buf;
88 char *end = buf + buf_len - 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +000089
Jonathan Peyton30419822017-05-12 18:01:32 +000090 // Find first element / check for empty set.
91 size_t i;
92 i = mask->begin();
93 if (i == mask->end()) {
94 KMP_SNPRINTF(scan, end - scan + 1, "{<empty>}");
95 while (*scan != '\0')
96 scan++;
Jim Cownie5e8470a2013-09-27 10:38:44 +000097 KMP_ASSERT(scan <= end);
98 return buf;
Jonathan Peyton30419822017-05-12 18:01:32 +000099 }
100
101 KMP_SNPRINTF(scan, end - scan + 1, "{%ld", (long)i);
102 while (*scan != '\0')
103 scan++;
104 i++;
105 for (; i != mask->end(); i = mask->next(i)) {
106 if (!KMP_CPU_ISSET(i, mask)) {
107 continue;
108 }
109
110 // Check for buffer overflow. A string of the form ",<n>" will have at most
111 // 10 characters, plus we want to leave room to print ",...}" if the set is
112 // too large to print for a total of 15 characters. We already left room for
113 // '\0' in setting end.
114 if (end - scan < 15) {
115 break;
116 }
117 KMP_SNPRINTF(scan, end - scan + 1, ",%-ld", (long)i);
118 while (*scan != '\0')
119 scan++;
120 }
121 if (i != mask->end()) {
122 KMP_SNPRINTF(scan, end - scan + 1, ",...");
123 while (*scan != '\0')
124 scan++;
125 }
126 KMP_SNPRINTF(scan, end - scan + 1, "}");
127 while (*scan != '\0')
128 scan++;
129 KMP_ASSERT(scan <= end);
130 return buf;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000131}
132
Jonathan Peyton30419822017-05-12 18:01:32 +0000133void __kmp_affinity_entire_machine_mask(kmp_affin_mask_t *mask) {
134 KMP_CPU_ZERO(mask);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000135
Jonathan Peyton30419822017-05-12 18:01:32 +0000136#if KMP_GROUP_AFFINITY
Jim Cownie5e8470a2013-09-27 10:38:44 +0000137
Jonathan Peyton30419822017-05-12 18:01:32 +0000138 if (__kmp_num_proc_groups > 1) {
139 int group;
140 KMP_DEBUG_ASSERT(__kmp_GetActiveProcessorCount != NULL);
141 for (group = 0; group < __kmp_num_proc_groups; group++) {
142 int i;
143 int num = __kmp_GetActiveProcessorCount(group);
144 for (i = 0; i < num; i++) {
145 KMP_CPU_SET(i + group * (CHAR_BIT * sizeof(DWORD_PTR)), mask);
146 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000147 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000148 } else
Jim Cownie5e8470a2013-09-27 10:38:44 +0000149
Jonathan Peyton30419822017-05-12 18:01:32 +0000150#endif /* KMP_GROUP_AFFINITY */
Jim Cownie5e8470a2013-09-27 10:38:44 +0000151
Jonathan Peyton30419822017-05-12 18:01:32 +0000152 {
153 int proc;
154 for (proc = 0; proc < __kmp_xproc; proc++) {
155 KMP_CPU_SET(proc, mask);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000156 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000157 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000158}
159
Jim Cownie5e8470a2013-09-27 10:38:44 +0000160// When sorting by labels, __kmp_affinity_assign_child_nums() must first be
161// called to renumber the labels from [0..n] and place them into the child_num
162// vector of the address object. This is done in case the labels used for
Alp Toker8f2d3f02014-02-24 10:40:15 +0000163// the children at one node of the hierarchy differ from those used for
Jim Cownie5e8470a2013-09-27 10:38:44 +0000164// another node at the same level. Example: suppose the machine has 2 nodes
165// with 2 packages each. The first node contains packages 601 and 602, and
166// second node contains packages 603 and 604. If we try to sort the table
167// for "scatter" affinity, the table will still be sorted 601, 602, 603, 604
168// because we are paying attention to the labels themselves, not the ordinal
169// child numbers. By using the child numbers in the sort, the result is
170// {0,0}=601, {0,1}=603, {1,0}=602, {1,1}=604.
Jonathan Peyton30419822017-05-12 18:01:32 +0000171static void __kmp_affinity_assign_child_nums(AddrUnsPair *address2os,
172 int numAddrs) {
173 KMP_DEBUG_ASSERT(numAddrs > 0);
174 int depth = address2os->first.depth;
175 unsigned *counts = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
176 unsigned *lastLabel = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
177 int labCt;
178 for (labCt = 0; labCt < depth; labCt++) {
179 address2os[0].first.childNums[labCt] = counts[labCt] = 0;
180 lastLabel[labCt] = address2os[0].first.labels[labCt];
181 }
182 int i;
183 for (i = 1; i < numAddrs; i++) {
Jim Cownie5e8470a2013-09-27 10:38:44 +0000184 for (labCt = 0; labCt < depth; labCt++) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000185 if (address2os[i].first.labels[labCt] != lastLabel[labCt]) {
186 int labCt2;
187 for (labCt2 = labCt + 1; labCt2 < depth; labCt2++) {
188 counts[labCt2] = 0;
189 lastLabel[labCt2] = address2os[i].first.labels[labCt2];
190 }
191 counts[labCt]++;
192 lastLabel[labCt] = address2os[i].first.labels[labCt];
193 break;
194 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000195 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000196 for (labCt = 0; labCt < depth; labCt++) {
197 address2os[i].first.childNums[labCt] = counts[labCt];
Jim Cownie5e8470a2013-09-27 10:38:44 +0000198 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000199 for (; labCt < (int)Address::maxDepth; labCt++) {
200 address2os[i].first.childNums[labCt] = 0;
201 }
202 }
203 __kmp_free(lastLabel);
204 __kmp_free(counts);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000205}
206
Jim Cownie5e8470a2013-09-27 10:38:44 +0000207// All of the __kmp_affinity_create_*_map() routines should set
208// __kmp_affinity_masks to a vector of affinity mask objects of length
Jonathan Peyton30419822017-05-12 18:01:32 +0000209// __kmp_affinity_num_masks, if __kmp_affinity_type != affinity_none, and return
210// the number of levels in the machine topology tree (zero if
Jim Cownie5e8470a2013-09-27 10:38:44 +0000211// __kmp_affinity_type == affinity_none).
212//
Jonathan Peyton30419822017-05-12 18:01:32 +0000213// All of the __kmp_affinity_create_*_map() routines should set
214// *__kmp_affin_fullMask to the affinity mask for the initialization thread.
215// They need to save and restore the mask, and it could be needed later, so
216// saving it is just an optimization to avoid calling kmp_get_system_affinity()
217// again.
Jonathan Peytonc5304aa2016-06-13 21:28:03 +0000218kmp_affin_mask_t *__kmp_affin_fullMask = NULL;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000219
220static int nCoresPerPkg, nPackages;
Andrey Churbanovf696c822015-01-27 16:55:43 +0000221static int __kmp_nThreadsPerCore;
222#ifndef KMP_DFLT_NTH_CORES
223static int __kmp_ncores;
224#endif
Jonathan Peytonfd7cc422016-06-21 15:54:38 +0000225static int *__kmp_pu_os_idx = NULL;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000226
Jim Cownie5e8470a2013-09-27 10:38:44 +0000227// __kmp_affinity_uniform_topology() doesn't work when called from
228// places which support arbitrarily many levels in the machine topology
229// map, i.e. the non-default cases in __kmp_affinity_create_cpuinfo_map()
230// __kmp_affinity_create_x2apicid_map().
Jonathan Peyton30419822017-05-12 18:01:32 +0000231inline static bool __kmp_affinity_uniform_topology() {
232 return __kmp_avail_proc == (__kmp_nThreadsPerCore * nCoresPerPkg * nPackages);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000233}
234
Jim Cownie5e8470a2013-09-27 10:38:44 +0000235// Print out the detailed machine topology map, i.e. the physical locations
236// of each OS proc.
Jonathan Peyton30419822017-05-12 18:01:32 +0000237static void __kmp_affinity_print_topology(AddrUnsPair *address2os, int len,
238 int depth, int pkgLevel,
239 int coreLevel, int threadLevel) {
240 int proc;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000241
Jonathan Peyton30419822017-05-12 18:01:32 +0000242 KMP_INFORM(OSProcToPhysicalThreadMap, "KMP_AFFINITY");
243 for (proc = 0; proc < len; proc++) {
244 int level;
245 kmp_str_buf_t buf;
246 __kmp_str_buf_init(&buf);
247 for (level = 0; level < depth; level++) {
248 if (level == threadLevel) {
249 __kmp_str_buf_print(&buf, "%s ", KMP_I18N_STR(Thread));
250 } else if (level == coreLevel) {
251 __kmp_str_buf_print(&buf, "%s ", KMP_I18N_STR(Core));
252 } else if (level == pkgLevel) {
253 __kmp_str_buf_print(&buf, "%s ", KMP_I18N_STR(Package));
254 } else if (level > pkgLevel) {
255 __kmp_str_buf_print(&buf, "%s_%d ", KMP_I18N_STR(Node),
256 level - pkgLevel - 1);
257 } else {
258 __kmp_str_buf_print(&buf, "L%d ", level);
259 }
260 __kmp_str_buf_print(&buf, "%d ", address2os[proc].first.labels[level]);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000261 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000262 KMP_INFORM(OSProcMapToPack, "KMP_AFFINITY", address2os[proc].second,
263 buf.str);
264 __kmp_str_buf_free(&buf);
265 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000266}
267
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000268#if KMP_USE_HWLOC
Jonathan Peyton202a24d2016-06-13 17:30:08 +0000269
Andrey Churbanova5868212017-11-30 11:51:47 +0000270static void __kmp_affinity_print_hwloc_tp(AddrUnsPair *addrP, int len,
271 int depth, int *levels) {
272 int proc;
273 kmp_str_buf_t buf;
274 __kmp_str_buf_init(&buf);
275 KMP_INFORM(OSProcToPhysicalThreadMap, "KMP_AFFINITY");
276 for (proc = 0; proc < len; proc++) {
277 __kmp_str_buf_print(&buf, "%s %d ", KMP_I18N_STR(Package),
278 addrP[proc].first.labels[0]);
279 if (depth > 1) {
280 int level = 1; // iterate over levels
281 int label = 1; // iterate over labels
282 if (__kmp_numa_detected)
283 // node level follows package
284 if (levels[level++] > 0)
285 __kmp_str_buf_print(&buf, "%s %d ", KMP_I18N_STR(Node),
286 addrP[proc].first.labels[label++]);
287 if (__kmp_tile_depth > 0)
288 // tile level follows node if any, or package
289 if (levels[level++] > 0)
290 __kmp_str_buf_print(&buf, "%s %d ", KMP_I18N_STR(Tile),
291 addrP[proc].first.labels[label++]);
292 if (levels[level++] > 0)
293 // core level follows
294 __kmp_str_buf_print(&buf, "%s %d ", KMP_I18N_STR(Core),
295 addrP[proc].first.labels[label++]);
296 if (levels[level++] > 0)
297 // thread level is the latest
298 __kmp_str_buf_print(&buf, "%s %d ", KMP_I18N_STR(Thread),
299 addrP[proc].first.labels[label++]);
300 KMP_DEBUG_ASSERT(label == depth);
301 }
302 KMP_INFORM(OSProcMapToPack, "KMP_AFFINITY", addrP[proc].second, buf.str);
303 __kmp_str_buf_clear(&buf);
304 }
305 __kmp_str_buf_free(&buf);
306}
307
308static int nNodePerPkg, nTilePerPkg, nTilePerNode, nCorePerNode, nCorePerTile;
309
Jonathan Peyton202a24d2016-06-13 17:30:08 +0000310// This function removes the topology levels that are radix 1 and don't offer
311// further information about the topology. The most common example is when you
312// have one thread context per core, we don't want the extra thread context
313// level if it offers no unique labels. So they are removed.
314// return value: the new depth of address2os
Andrey Churbanova5868212017-11-30 11:51:47 +0000315static int __kmp_affinity_remove_radix_one_levels(AddrUnsPair *addrP, int nTh,
316 int depth, int *levels) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000317 int level;
318 int i;
319 int radix1_detected;
Andrey Churbanova5868212017-11-30 11:51:47 +0000320 int new_depth = depth;
321 for (level = depth - 1; level > 0; --level) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000322 // Detect if this level is radix 1
323 radix1_detected = 1;
Andrey Churbanova5868212017-11-30 11:51:47 +0000324 for (i = 1; i < nTh; ++i) {
325 if (addrP[0].first.labels[level] != addrP[i].first.labels[level]) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000326 // There are differing label values for this level so it stays
327 radix1_detected = 0;
328 break;
329 }
Jonathan Peyton202a24d2016-06-13 17:30:08 +0000330 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000331 if (!radix1_detected)
332 continue;
333 // Radix 1 was detected
Andrey Churbanova5868212017-11-30 11:51:47 +0000334 --new_depth;
335 levels[level] = -1; // mark level as not present in address2os array
336 if (level == new_depth) {
337 // "turn off" deepest level, just decrement the depth that removes
338 // the level from address2os array
339 for (i = 0; i < nTh; ++i) {
340 addrP[i].first.depth--;
Jonathan Peyton30419822017-05-12 18:01:32 +0000341 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000342 } else {
343 // For other levels, we move labels over and also reduce the depth
344 int j;
345 for (j = level; j < new_depth; ++j) {
346 for (i = 0; i < nTh; ++i) {
347 addrP[i].first.labels[j] = addrP[i].first.labels[j + 1];
348 addrP[i].first.depth--;
Jonathan Peyton30419822017-05-12 18:01:32 +0000349 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000350 levels[j + 1] -= 1;
Jonathan Peyton30419822017-05-12 18:01:32 +0000351 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000352 }
353 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000354 return new_depth;
Jonathan Peyton202a24d2016-06-13 17:30:08 +0000355}
356
Jonathan Peyton30419822017-05-12 18:01:32 +0000357// Returns the number of objects of type 'type' below 'obj' within the topology
358// tree structure. e.g., if obj is a HWLOC_OBJ_PACKAGE object, and type is
359// HWLOC_OBJ_PU, then this will return the number of PU's under the SOCKET
360// object.
361static int __kmp_hwloc_get_nobjs_under_obj(hwloc_obj_t obj,
362 hwloc_obj_type_t type) {
363 int retval = 0;
364 hwloc_obj_t first;
365 for (first = hwloc_get_obj_below_by_type(__kmp_hwloc_topology, obj->type,
366 obj->logical_index, type, 0);
367 first != NULL &&
368 hwloc_get_ancestor_obj_by_type(__kmp_hwloc_topology, obj->type, first) ==
369 obj;
370 first = hwloc_get_next_obj_by_type(__kmp_hwloc_topology, first->type,
371 first)) {
372 ++retval;
373 }
374 return retval;
Jonathan Peyton202a24d2016-06-13 17:30:08 +0000375}
376
Andrey Churbanova5868212017-11-30 11:51:47 +0000377static int __kmp_hwloc_count_children_by_depth(hwloc_topology_t t,
378 hwloc_obj_t o, unsigned depth,
379 hwloc_obj_t *f) {
380 if (o->depth == depth) {
381 if (*f == NULL)
382 *f = o; // output first descendant found
383 return 1;
384 }
385 int sum = 0;
386 for (unsigned i = 0; i < o->arity; i++)
387 sum += __kmp_hwloc_count_children_by_depth(t, o->children[i], depth, f);
388 return sum; // will be 0 if no one found (as PU arity is 0)
389}
390
391static int __kmp_hwloc_count_children_by_type(hwloc_topology_t t, hwloc_obj_t o,
392 hwloc_obj_type_t type,
393 hwloc_obj_t *f) {
394 if (!hwloc_compare_types(o->type, type)) {
395 if (*f == NULL)
396 *f = o; // output first descendant found
397 return 1;
398 }
399 int sum = 0;
400 for (unsigned i = 0; i < o->arity; i++)
401 sum += __kmp_hwloc_count_children_by_type(t, o->children[i], type, f);
402 return sum; // will be 0 if no one found (as PU arity is 0)
403}
404
405static int __kmp_hwloc_process_obj_core_pu(AddrUnsPair *addrPair,
406 int &nActiveThreads,
407 int &num_active_cores,
408 hwloc_obj_t obj, int depth,
409 int *labels) {
410 hwloc_obj_t core = NULL;
411 hwloc_topology_t &tp = __kmp_hwloc_topology;
412 int NC = __kmp_hwloc_count_children_by_type(tp, obj, HWLOC_OBJ_CORE, &core);
413 for (int core_id = 0; core_id < NC; ++core_id, core = core->next_cousin) {
414 hwloc_obj_t pu = NULL;
415 KMP_DEBUG_ASSERT(core != NULL);
416 int num_active_threads = 0;
417 int NT = __kmp_hwloc_count_children_by_type(tp, core, HWLOC_OBJ_PU, &pu);
418 // int NT = core->arity; pu = core->first_child; // faster?
419 for (int pu_id = 0; pu_id < NT; ++pu_id, pu = pu->next_cousin) {
420 KMP_DEBUG_ASSERT(pu != NULL);
421 if (!KMP_CPU_ISSET(pu->os_index, __kmp_affin_fullMask))
422 continue; // skip inactive (inaccessible) unit
423 Address addr(depth + 2);
424 KA_TRACE(20, ("Hwloc inserting %d (%d) %d (%d) %d (%d) into address2os\n",
425 obj->os_index, obj->logical_index, core->os_index,
426 core->logical_index, pu->os_index, pu->logical_index));
427 for (int i = 0; i < depth; ++i)
428 addr.labels[i] = labels[i]; // package, etc.
429 addr.labels[depth] = core_id; // core
430 addr.labels[depth + 1] = pu_id; // pu
431 addrPair[nActiveThreads] = AddrUnsPair(addr, pu->os_index);
432 __kmp_pu_os_idx[nActiveThreads] = pu->os_index;
433 nActiveThreads++;
434 ++num_active_threads; // count active threads per core
435 }
436 if (num_active_threads) { // were there any active threads on the core?
437 ++__kmp_ncores; // count total active cores
438 ++num_active_cores; // count active cores per socket
439 if (num_active_threads > __kmp_nThreadsPerCore)
440 __kmp_nThreadsPerCore = num_active_threads; // calc maximum
441 }
442 }
443 return 0;
444}
445
446// Check if NUMA node detected below the package,
447// and if tile object is detected and return its depth
448static int __kmp_hwloc_check_numa() {
449 hwloc_topology_t &tp = __kmp_hwloc_topology;
450 hwloc_obj_t hT, hC, hL, hN, hS; // hwloc objects (pointers to)
451 int depth;
452
453 // Get some PU
454 hT = hwloc_get_obj_by_type(tp, HWLOC_OBJ_PU, 0);
455 if (hT == NULL) // something has gone wrong
456 return 1;
457
458 // check NUMA node below PACKAGE
459 hN = hwloc_get_ancestor_obj_by_type(tp, HWLOC_OBJ_NUMANODE, hT);
460 hS = hwloc_get_ancestor_obj_by_type(tp, HWLOC_OBJ_PACKAGE, hT);
461 KMP_DEBUG_ASSERT(hS != NULL);
462 if (hN != NULL && hN->depth > hS->depth) {
463 __kmp_numa_detected = TRUE; // socket includes node(s)
464 if (__kmp_affinity_gran == affinity_gran_node) {
465 __kmp_affinity_gran == affinity_gran_numa;
466 }
467 }
468
469 // check tile, get object by depth because of multiple caches possible
470 depth = hwloc_get_cache_type_depth(tp, 2, HWLOC_OBJ_CACHE_UNIFIED);
471 hL = hwloc_get_ancestor_obj_by_depth(tp, depth, hT);
472 hC = NULL; // not used, but reset it here just in case
473 if (hL != NULL &&
474 __kmp_hwloc_count_children_by_type(tp, hL, HWLOC_OBJ_CORE, &hC) > 1)
475 __kmp_tile_depth = depth; // tile consists of multiple cores
476 return 0;
477}
478
Jonathan Peyton30419822017-05-12 18:01:32 +0000479static int __kmp_affinity_create_hwloc_map(AddrUnsPair **address2os,
480 kmp_i18n_id_t *const msg_id) {
Andrey Churbanova5868212017-11-30 11:51:47 +0000481 hwloc_topology_t &tp = __kmp_hwloc_topology; // shortcut of a long name
Jonathan Peyton30419822017-05-12 18:01:32 +0000482 *address2os = NULL;
483 *msg_id = kmp_i18n_null;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000484
Jonathan Peyton30419822017-05-12 18:01:32 +0000485 // Save the affinity mask for the current thread.
486 kmp_affin_mask_t *oldMask;
487 KMP_CPU_ALLOC(oldMask);
488 __kmp_get_system_affinity(oldMask, TRUE);
Andrey Churbanova5868212017-11-30 11:51:47 +0000489 __kmp_hwloc_check_numa();
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000490
Jonathan Peyton30419822017-05-12 18:01:32 +0000491 if (!KMP_AFFINITY_CAPABLE()) {
492 // Hack to try and infer the machine topology using only the data
493 // available from cpuid on the current thread, and __kmp_xproc.
494 KMP_ASSERT(__kmp_affinity_type == affinity_none);
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000495
Jonathan Peyton30419822017-05-12 18:01:32 +0000496 nCoresPerPkg = __kmp_hwloc_get_nobjs_under_obj(
Andrey Churbanova5868212017-11-30 11:51:47 +0000497 hwloc_get_obj_by_type(tp, HWLOC_OBJ_PACKAGE, 0), HWLOC_OBJ_CORE);
Jonathan Peyton30419822017-05-12 18:01:32 +0000498 __kmp_nThreadsPerCore = __kmp_hwloc_get_nobjs_under_obj(
Andrey Churbanova5868212017-11-30 11:51:47 +0000499 hwloc_get_obj_by_type(tp, HWLOC_OBJ_CORE, 0), HWLOC_OBJ_PU);
Jonathan Peyton30419822017-05-12 18:01:32 +0000500 __kmp_ncores = __kmp_xproc / __kmp_nThreadsPerCore;
501 nPackages = (__kmp_xproc + nCoresPerPkg - 1) / nCoresPerPkg;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000502 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000503 KMP_INFORM(AffNotCapableUseLocCpuidL11, "KMP_AFFINITY");
504 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
505 if (__kmp_affinity_uniform_topology()) {
506 KMP_INFORM(Uniform, "KMP_AFFINITY");
507 } else {
508 KMP_INFORM(NonUniform, "KMP_AFFINITY");
509 }
510 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
511 __kmp_nThreadsPerCore, __kmp_ncores);
512 }
513 KMP_CPU_FREE(oldMask);
514 return 0;
515 }
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000516
Andrey Churbanova5868212017-11-30 11:51:47 +0000517 int depth = 3;
518 int levels[5] = {0, 1, 2, 3, 4}; // package, [node,] [tile,] core, thread
519 int labels[3] = {0}; // package [,node] [,tile] - head of lables array
520 if (__kmp_numa_detected)
521 ++depth;
522 if (__kmp_tile_depth)
523 ++depth;
524
Jonathan Peyton30419822017-05-12 18:01:32 +0000525 // Allocate the data structure to be returned.
526 AddrUnsPair *retval =
527 (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) * __kmp_avail_proc);
Andrey Churbanova5868212017-11-30 11:51:47 +0000528 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
Jonathan Peyton30419822017-05-12 18:01:32 +0000529 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000530
Jonathan Peyton30419822017-05-12 18:01:32 +0000531 // When affinity is off, this routine will still be called to set
532 // __kmp_ncores, as well as __kmp_nThreadsPerCore,
533 // nCoresPerPkg, & nPackages. Make sure all these vars are set
534 // correctly, and return if affinity is not enabled.
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000535
Andrey Churbanova5868212017-11-30 11:51:47 +0000536 hwloc_obj_t socket, node, tile;
Jonathan Peyton30419822017-05-12 18:01:32 +0000537 int nActiveThreads = 0;
Andrey Churbanova5868212017-11-30 11:51:47 +0000538 int socket_id = 0;
Jonathan Peyton30419822017-05-12 18:01:32 +0000539 // re-calculate globals to count only accessible resources
540 __kmp_ncores = nPackages = nCoresPerPkg = __kmp_nThreadsPerCore = 0;
Andrey Churbanova5868212017-11-30 11:51:47 +0000541 nNodePerPkg = nTilePerPkg = nTilePerNode = nCorePerNode = nCorePerTile = 0;
542 for (socket = hwloc_get_obj_by_type(tp, HWLOC_OBJ_PACKAGE, 0); socket != NULL;
543 socket = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PACKAGE, socket),
544 socket_id++) {
545 labels[0] = socket_id;
546 if (__kmp_numa_detected) {
547 int NN;
548 int n_active_nodes = 0;
549 node = NULL;
550 NN = __kmp_hwloc_count_children_by_type(tp, socket, HWLOC_OBJ_NUMANODE,
551 &node);
552 for (int node_id = 0; node_id < NN; ++node_id, node = node->next_cousin) {
553 labels[1] = node_id;
554 if (__kmp_tile_depth) {
555 // NUMA + tiles
556 int NT;
557 int n_active_tiles = 0;
558 tile = NULL;
559 NT = __kmp_hwloc_count_children_by_depth(tp, node, __kmp_tile_depth,
560 &tile);
561 for (int tl_id = 0; tl_id < NT; ++tl_id, tile = tile->next_cousin) {
562 labels[2] = tl_id;
563 int n_active_cores = 0;
564 __kmp_hwloc_process_obj_core_pu(retval, nActiveThreads,
565 n_active_cores, tile, 3, labels);
566 if (n_active_cores) { // were there any active cores on the socket?
567 ++n_active_tiles; // count active tiles per node
568 if (n_active_cores > nCorePerTile)
569 nCorePerTile = n_active_cores; // calc maximum
570 }
571 }
572 if (n_active_tiles) { // were there any active tiles on the socket?
573 ++n_active_nodes; // count active nodes per package
574 if (n_active_tiles > nTilePerNode)
575 nTilePerNode = n_active_tiles; // calc maximum
576 }
577 } else {
578 // NUMA, no tiles
579 int n_active_cores = 0;
580 __kmp_hwloc_process_obj_core_pu(retval, nActiveThreads,
581 n_active_cores, node, 2, labels);
582 if (n_active_cores) { // were there any active cores on the socket?
583 ++n_active_nodes; // count active nodes per package
584 if (n_active_cores > nCorePerNode)
585 nCorePerNode = n_active_cores; // calc maximum
586 }
587 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000588 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000589 if (n_active_nodes) { // were there any active nodes on the socket?
590 ++nPackages; // count total active packages
591 if (n_active_nodes > nNodePerPkg)
592 nNodePerPkg = n_active_nodes; // calc maximum
Jonathan Peyton30419822017-05-12 18:01:32 +0000593 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000594 } else {
595 if (__kmp_tile_depth) {
596 // no NUMA, tiles
597 int NT;
598 int n_active_tiles = 0;
599 tile = NULL;
600 NT = __kmp_hwloc_count_children_by_depth(tp, socket, __kmp_tile_depth,
601 &tile);
602 for (int tl_id = 0; tl_id < NT; ++tl_id, tile = tile->next_cousin) {
603 labels[1] = tl_id;
604 int n_active_cores = 0;
605 __kmp_hwloc_process_obj_core_pu(retval, nActiveThreads,
606 n_active_cores, tile, 2, labels);
607 if (n_active_cores) { // were there any active cores on the socket?
608 ++n_active_tiles; // count active tiles per package
609 if (n_active_cores > nCorePerTile)
610 nCorePerTile = n_active_cores; // calc maximum
611 }
612 }
613 if (n_active_tiles) { // were there any active tiles on the socket?
614 ++nPackages; // count total active packages
615 if (n_active_tiles > nTilePerPkg)
616 nTilePerPkg = n_active_tiles; // calc maximum
617 }
618 } else {
619 // no NUMA, no tiles
620 int n_active_cores = 0;
621 __kmp_hwloc_process_obj_core_pu(retval, nActiveThreads, n_active_cores,
622 socket, 1, labels);
623 if (n_active_cores) { // were there any active cores on the socket?
624 ++nPackages; // count total active packages
625 if (n_active_cores > nCoresPerPkg)
626 nCoresPerPkg = n_active_cores; // calc maximum
627 }
628 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000629 }
630 }
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000631
Jonathan Peyton30419822017-05-12 18:01:32 +0000632 // If there's only one thread context to bind to, return now.
633 KMP_DEBUG_ASSERT(nActiveThreads == __kmp_avail_proc);
634 KMP_ASSERT(nActiveThreads > 0);
635 if (nActiveThreads == 1) {
636 __kmp_ncores = nPackages = 1;
637 __kmp_nThreadsPerCore = nCoresPerPkg = 1;
638 if (__kmp_affinity_verbose) {
639 char buf[KMP_AFFIN_MASK_PRINT_LEN];
640 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
641
642 KMP_INFORM(AffUsingHwloc, "KMP_AFFINITY");
643 if (__kmp_affinity_respect_mask) {
644 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
645 } else {
646 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
647 }
648 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
649 KMP_INFORM(Uniform, "KMP_AFFINITY");
650 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
651 __kmp_nThreadsPerCore, __kmp_ncores);
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000652 }
653
654 if (__kmp_affinity_type == affinity_none) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000655 __kmp_free(retval);
656 KMP_CPU_FREE(oldMask);
657 return 0;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000658 }
659
Jonathan Peyton30419822017-05-12 18:01:32 +0000660 // Form an Address object which only includes the package level.
661 Address addr(1);
Andrey Churbanova5868212017-11-30 11:51:47 +0000662 addr.labels[0] = retval[0].first.labels[0];
Jonathan Peyton30419822017-05-12 18:01:32 +0000663 retval[0].first = addr;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000664
665 if (__kmp_affinity_gran_levels < 0) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000666 __kmp_affinity_gran_levels = 0;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000667 }
668
669 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000670 __kmp_affinity_print_topology(retval, 1, 1, 0, -1, -1);
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000671 }
672
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000673 *address2os = retval;
Jonathan Peyton30419822017-05-12 18:01:32 +0000674 KMP_CPU_FREE(oldMask);
675 return 1;
676 }
677
678 // Sort the table by physical Id.
679 qsort(retval, nActiveThreads, sizeof(*retval),
680 __kmp_affinity_cmp_Address_labels);
681
682 // Check to see if the machine topology is uniform
Andrey Churbanova5868212017-11-30 11:51:47 +0000683 int nPUs = nPackages * __kmp_nThreadsPerCore;
684 if (__kmp_numa_detected) {
685 if (__kmp_tile_depth) { // NUMA + tiles
686 nPUs *= (nNodePerPkg * nTilePerNode * nCorePerTile);
687 } else { // NUMA, no tiles
688 nPUs *= (nNodePerPkg * nCorePerNode);
689 }
690 } else {
691 if (__kmp_tile_depth) { // no NUMA, tiles
692 nPUs *= (nTilePerPkg * nCorePerTile);
693 } else { // no NUMA, no tiles
694 nPUs *= nCoresPerPkg;
695 }
696 }
697 unsigned uniform = (nPUs == nActiveThreads);
Jonathan Peyton30419822017-05-12 18:01:32 +0000698
699 // Print the machine topology summary.
700 if (__kmp_affinity_verbose) {
701 char mask[KMP_AFFIN_MASK_PRINT_LEN];
702 __kmp_affinity_print_mask(mask, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
Jonathan Peyton30419822017-05-12 18:01:32 +0000703 if (__kmp_affinity_respect_mask) {
704 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", mask);
705 } else {
706 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", mask);
707 }
708 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
709 if (uniform) {
710 KMP_INFORM(Uniform, "KMP_AFFINITY");
711 } else {
712 KMP_INFORM(NonUniform, "KMP_AFFINITY");
713 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000714 if (__kmp_numa_detected) {
715 if (__kmp_tile_depth) { // NUMA + tiles
716 KMP_INFORM(TopologyExtraNoTi, "KMP_AFFINITY", nPackages, nNodePerPkg,
717 nTilePerNode, nCorePerTile, __kmp_nThreadsPerCore,
718 __kmp_ncores);
719 } else { // NUMA, no tiles
720 KMP_INFORM(TopologyExtraNode, "KMP_AFFINITY", nPackages, nNodePerPkg,
721 nCorePerNode, __kmp_nThreadsPerCore, __kmp_ncores);
722 nPUs *= (nNodePerPkg * nCorePerNode);
723 }
724 } else {
725 if (__kmp_tile_depth) { // no NUMA, tiles
726 KMP_INFORM(TopologyExtraTile, "KMP_AFFINITY", nPackages, nTilePerPkg,
727 nCorePerTile, __kmp_nThreadsPerCore, __kmp_ncores);
728 } else { // no NUMA, no tiles
729 kmp_str_buf_t buf;
730 __kmp_str_buf_init(&buf);
731 __kmp_str_buf_print(&buf, "%d", nPackages);
732 KMP_INFORM(TopologyExtra, "KMP_AFFINITY", buf.str, nCoresPerPkg,
733 __kmp_nThreadsPerCore, __kmp_ncores);
734 __kmp_str_buf_free(&buf);
735 }
736 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000737 }
738
739 if (__kmp_affinity_type == affinity_none) {
740 __kmp_free(retval);
741 KMP_CPU_FREE(oldMask);
742 return 0;
743 }
744
Andrey Churbanova5868212017-11-30 11:51:47 +0000745 int depth_full = depth; // number of levels before compressing
Jonathan Peyton30419822017-05-12 18:01:32 +0000746 // Find any levels with radiix 1, and remove them from the map
747 // (except for the package level).
Andrey Churbanova5868212017-11-30 11:51:47 +0000748 depth = __kmp_affinity_remove_radix_one_levels(retval, nActiveThreads, depth,
749 levels);
750 KMP_DEBUG_ASSERT(__kmp_affinity_gran != affinity_gran_default);
Jonathan Peyton30419822017-05-12 18:01:32 +0000751 if (__kmp_affinity_gran_levels < 0) {
752 // Set the granularity level based on what levels are modeled
753 // in the machine topology map.
Andrey Churbanova5868212017-11-30 11:51:47 +0000754 __kmp_affinity_gran_levels = 0; // lowest level (e.g. fine)
755 if (__kmp_affinity_gran > affinity_gran_thread) {
756 for (int i = 1; i <= depth_full; ++i) {
757 if (__kmp_affinity_gran <= i) // only count deeper levels
758 break;
759 if (levels[depth_full - i] > 0)
760 __kmp_affinity_gran_levels++;
761 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000762 }
Andrey Churbanova5868212017-11-30 11:51:47 +0000763 if (__kmp_affinity_gran > affinity_gran_package)
764 __kmp_affinity_gran_levels++; // e.g. granularity = group
Jonathan Peyton30419822017-05-12 18:01:32 +0000765 }
766
Andrey Churbanova5868212017-11-30 11:51:47 +0000767 if (__kmp_affinity_verbose)
768 __kmp_affinity_print_hwloc_tp(retval, nActiveThreads, depth, levels);
Jonathan Peyton30419822017-05-12 18:01:32 +0000769
770 KMP_CPU_FREE(oldMask);
771 *address2os = retval;
772 return depth;
Jonathan Peyton01dcf362015-11-30 20:02:59 +0000773}
774#endif // KMP_USE_HWLOC
Jim Cownie5e8470a2013-09-27 10:38:44 +0000775
Jim Cownie5e8470a2013-09-27 10:38:44 +0000776// If we don't know how to retrieve the machine's processor topology, or
777// encounter an error in doing so, this routine is called to form a "flat"
778// mapping of os thread id's <-> processor id's.
Jonathan Peyton30419822017-05-12 18:01:32 +0000779static int __kmp_affinity_create_flat_map(AddrUnsPair **address2os,
780 kmp_i18n_id_t *const msg_id) {
781 *address2os = NULL;
782 *msg_id = kmp_i18n_null;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000783
Jonathan Peyton30419822017-05-12 18:01:32 +0000784 // Even if __kmp_affinity_type == affinity_none, this routine might still
785 // called to set __kmp_ncores, as well as
786 // __kmp_nThreadsPerCore, nCoresPerPkg, & nPackages.
787 if (!KMP_AFFINITY_CAPABLE()) {
788 KMP_ASSERT(__kmp_affinity_type == affinity_none);
789 __kmp_ncores = nPackages = __kmp_xproc;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000790 __kmp_nThreadsPerCore = nCoresPerPkg = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000791 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000792 KMP_INFORM(AffFlatTopology, "KMP_AFFINITY");
793 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
794 KMP_INFORM(Uniform, "KMP_AFFINITY");
795 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
796 __kmp_nThreadsPerCore, __kmp_ncores);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000797 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000798 return 0;
799 }
800
801 // When affinity is off, this routine will still be called to set
802 // __kmp_ncores, as well as __kmp_nThreadsPerCore, nCoresPerPkg, & nPackages.
803 // Make sure all these vars are set correctly, and return now if affinity is
804 // not enabled.
805 __kmp_ncores = nPackages = __kmp_avail_proc;
806 __kmp_nThreadsPerCore = nCoresPerPkg = 1;
807 if (__kmp_affinity_verbose) {
808 char buf[KMP_AFFIN_MASK_PRINT_LEN];
809 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
810 __kmp_affin_fullMask);
811
812 KMP_INFORM(AffCapableUseFlat, "KMP_AFFINITY");
813 if (__kmp_affinity_respect_mask) {
814 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
815 } else {
816 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000817 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000818 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
819 KMP_INFORM(Uniform, "KMP_AFFINITY");
820 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
821 __kmp_nThreadsPerCore, __kmp_ncores);
822 }
823 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
824 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
825 if (__kmp_affinity_type == affinity_none) {
Jim Cownie5e8470a2013-09-27 10:38:44 +0000826 int avail_ct = 0;
827 int i;
Jonathan Peytonc5304aa2016-06-13 21:28:03 +0000828 KMP_CPU_SET_ITERATE(i, __kmp_affin_fullMask) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000829 if (!KMP_CPU_ISSET(i, __kmp_affin_fullMask))
830 continue;
831 __kmp_pu_os_idx[avail_ct++] = i; // suppose indices are flat
Jim Cownie5e8470a2013-09-27 10:38:44 +0000832 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000833 return 0;
834 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000835
Jonathan Peyton30419822017-05-12 18:01:32 +0000836 // Contruct the data structure to be returned.
837 *address2os =
838 (AddrUnsPair *)__kmp_allocate(sizeof(**address2os) * __kmp_avail_proc);
839 int avail_ct = 0;
840 unsigned int i;
841 KMP_CPU_SET_ITERATE(i, __kmp_affin_fullMask) {
842 // Skip this proc if it is not included in the machine model.
843 if (!KMP_CPU_ISSET(i, __kmp_affin_fullMask)) {
844 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000845 }
Jonathan Peyton30419822017-05-12 18:01:32 +0000846 __kmp_pu_os_idx[avail_ct] = i; // suppose indices are flat
847 Address addr(1);
848 addr.labels[0] = i;
849 (*address2os)[avail_ct++] = AddrUnsPair(addr, i);
850 }
851 if (__kmp_affinity_verbose) {
852 KMP_INFORM(OSProcToPackage, "KMP_AFFINITY");
853 }
854
855 if (__kmp_affinity_gran_levels < 0) {
856 // Only the package level is modeled in the machine topology map,
857 // so the #levels of granularity is either 0 or 1.
858 if (__kmp_affinity_gran > affinity_gran_package) {
859 __kmp_affinity_gran_levels = 1;
860 } else {
861 __kmp_affinity_gran_levels = 0;
862 }
863 }
864 return 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000865}
866
Jonathan Peyton30419822017-05-12 18:01:32 +0000867#if KMP_GROUP_AFFINITY
Jim Cownie5e8470a2013-09-27 10:38:44 +0000868
Jonathan Peyton30419822017-05-12 18:01:32 +0000869// If multiple Windows* OS processor groups exist, we can create a 2-level
870// topology map with the groups at level 0 and the individual procs at level 1.
871// This facilitates letting the threads float among all procs in a group,
872// if granularity=group (the default when there are multiple groups).
873static int __kmp_affinity_create_proc_group_map(AddrUnsPair **address2os,
874 kmp_i18n_id_t *const msg_id) {
875 *address2os = NULL;
876 *msg_id = kmp_i18n_null;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000877
Jonathan Peyton58684992017-05-15 19:05:59 +0000878 // If we aren't affinity capable, then return now.
Jonathan Peyton30419822017-05-12 18:01:32 +0000879 // The flat mapping will be used.
Jonathan Peyton58684992017-05-15 19:05:59 +0000880 if (!KMP_AFFINITY_CAPABLE()) {
Jonathan Peyton30419822017-05-12 18:01:32 +0000881 // FIXME set *msg_id
882 return -1;
883 }
Jim Cownie5e8470a2013-09-27 10:38:44 +0000884
Jonathan Peyton30419822017-05-12 18:01:32 +0000885 // Contruct the data structure to be returned.
886 *address2os =
887 (AddrUnsPair *)__kmp_allocate(sizeof(**address2os) * __kmp_avail_proc);
888 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
889 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
890 int avail_ct = 0;
891 int i;
892 KMP_CPU_SET_ITERATE(i, __kmp_affin_fullMask) {
893 // Skip this proc if it is not included in the machine model.
894 if (!KMP_CPU_ISSET(i, __kmp_affin_fullMask)) {
895 continue;
896 }
897 __kmp_pu_os_idx[avail_ct] = i; // suppose indices are flat
898 Address addr(2);
899 addr.labels[0] = i / (CHAR_BIT * sizeof(DWORD_PTR));
900 addr.labels[1] = i % (CHAR_BIT * sizeof(DWORD_PTR));
901 (*address2os)[avail_ct++] = AddrUnsPair(addr, i);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000902
Jonathan Peyton30419822017-05-12 18:01:32 +0000903 if (__kmp_affinity_verbose) {
904 KMP_INFORM(AffOSProcToGroup, "KMP_AFFINITY", i, addr.labels[0],
905 addr.labels[1]);
906 }
907 }
908
909 if (__kmp_affinity_gran_levels < 0) {
910 if (__kmp_affinity_gran == affinity_gran_group) {
911 __kmp_affinity_gran_levels = 1;
912 } else if ((__kmp_affinity_gran == affinity_gran_fine) ||
913 (__kmp_affinity_gran == affinity_gran_thread)) {
914 __kmp_affinity_gran_levels = 0;
915 } else {
916 const char *gran_str = NULL;
917 if (__kmp_affinity_gran == affinity_gran_core) {
918 gran_str = "core";
919 } else if (__kmp_affinity_gran == affinity_gran_package) {
920 gran_str = "package";
921 } else if (__kmp_affinity_gran == affinity_gran_node) {
922 gran_str = "node";
923 } else {
924 KMP_ASSERT(0);
925 }
926
927 // Warning: can't use affinity granularity \"gran\" with group topology
928 // method, using "thread"
929 __kmp_affinity_gran_levels = 0;
930 }
931 }
932 return 2;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000933}
934
Jonathan Peyton30419822017-05-12 18:01:32 +0000935#endif /* KMP_GROUP_AFFINITY */
936
937#if KMP_ARCH_X86 || KMP_ARCH_X86_64
938
939static int __kmp_cpuid_mask_width(int count) {
940 int r = 0;
941
942 while ((1 << r) < count)
943 ++r;
944 return r;
945}
Jim Cownie5e8470a2013-09-27 10:38:44 +0000946
947class apicThreadInfo {
948public:
Jonathan Peyton30419822017-05-12 18:01:32 +0000949 unsigned osId; // param to __kmp_affinity_bind_thread
950 unsigned apicId; // from cpuid after binding
951 unsigned maxCoresPerPkg; // ""
952 unsigned maxThreadsPerPkg; // ""
953 unsigned pkgId; // inferred from above values
954 unsigned coreId; // ""
955 unsigned threadId; // ""
Jim Cownie5e8470a2013-09-27 10:38:44 +0000956};
957
Jonathan Peyton30419822017-05-12 18:01:32 +0000958static int __kmp_affinity_cmp_apicThreadInfo_os_id(const void *a,
959 const void *b) {
960 const apicThreadInfo *aa = (const apicThreadInfo *)a;
961 const apicThreadInfo *bb = (const apicThreadInfo *)b;
962 if (aa->osId < bb->osId)
963 return -1;
964 if (aa->osId > bb->osId)
965 return 1;
966 return 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000967}
968
Jonathan Peyton30419822017-05-12 18:01:32 +0000969static int __kmp_affinity_cmp_apicThreadInfo_phys_id(const void *a,
970 const void *b) {
971 const apicThreadInfo *aa = (const apicThreadInfo *)a;
972 const apicThreadInfo *bb = (const apicThreadInfo *)b;
973 if (aa->pkgId < bb->pkgId)
974 return -1;
975 if (aa->pkgId > bb->pkgId)
976 return 1;
977 if (aa->coreId < bb->coreId)
978 return -1;
979 if (aa->coreId > bb->coreId)
980 return 1;
981 if (aa->threadId < bb->threadId)
982 return -1;
983 if (aa->threadId > bb->threadId)
984 return 1;
985 return 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000986}
987
Jim Cownie5e8470a2013-09-27 10:38:44 +0000988// On IA-32 architecture and Intel(R) 64 architecture, we attempt to use
989// an algorithm which cycles through the available os threads, setting
990// the current thread's affinity mask to that thread, and then retrieves
991// the Apic Id for each thread context using the cpuid instruction.
Jonathan Peyton30419822017-05-12 18:01:32 +0000992static int __kmp_affinity_create_apicid_map(AddrUnsPair **address2os,
993 kmp_i18n_id_t *const msg_id) {
994 kmp_cpuid buf;
995 int rc;
996 *address2os = NULL;
997 *msg_id = kmp_i18n_null;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000998
Jonathan Peyton30419822017-05-12 18:01:32 +0000999 // Check if cpuid leaf 4 is supported.
1000 __kmp_x86_cpuid(0, 0, &buf);
1001 if (buf.eax < 4) {
1002 *msg_id = kmp_i18n_str_NoLeaf4Support;
1003 return -1;
1004 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001005
Jonathan Peyton30419822017-05-12 18:01:32 +00001006 // The algorithm used starts by setting the affinity to each available thread
1007 // and retrieving info from the cpuid instruction, so if we are not capable of
1008 // calling __kmp_get_system_affinity() and _kmp_get_system_affinity(), then we
1009 // need to do something else - use the defaults that we calculated from
1010 // issuing cpuid without binding to each proc.
1011 if (!KMP_AFFINITY_CAPABLE()) {
1012 // Hack to try and infer the machine topology using only the data
1013 // available from cpuid on the current thread, and __kmp_xproc.
1014 KMP_ASSERT(__kmp_affinity_type == affinity_none);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001015
Jonathan Peyton30419822017-05-12 18:01:32 +00001016 // Get an upper bound on the number of threads per package using cpuid(1).
1017 // On some OS/chps combinations where HT is supported by the chip but is
1018 // disabled, this value will be 2 on a single core chip. Usually, it will be
1019 // 2 if HT is enabled and 1 if HT is disabled.
1020 __kmp_x86_cpuid(1, 0, &buf);
1021 int maxThreadsPerPkg = (buf.ebx >> 16) & 0xff;
1022 if (maxThreadsPerPkg == 0) {
1023 maxThreadsPerPkg = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001024 }
1025
Jonathan Peyton30419822017-05-12 18:01:32 +00001026 // The num cores per pkg comes from cpuid(4). 1 must be added to the encoded
1027 // value.
Jim Cownie5e8470a2013-09-27 10:38:44 +00001028 //
Jonathan Peyton30419822017-05-12 18:01:32 +00001029 // The author of cpu_count.cpp treated this only an upper bound on the
1030 // number of cores, but I haven't seen any cases where it was greater than
1031 // the actual number of cores, so we will treat it as exact in this block of
1032 // code.
Jim Cownie5e8470a2013-09-27 10:38:44 +00001033 //
Jonathan Peyton30419822017-05-12 18:01:32 +00001034 // First, we need to check if cpuid(4) is supported on this chip. To see if
1035 // cpuid(n) is supported, issue cpuid(0) and check if eax has the value n or
1036 // greater.
1037 __kmp_x86_cpuid(0, 0, &buf);
1038 if (buf.eax >= 4) {
1039 __kmp_x86_cpuid(4, 0, &buf);
1040 nCoresPerPkg = ((buf.eax >> 26) & 0x3f) + 1;
1041 } else {
1042 nCoresPerPkg = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001043 }
1044
Jonathan Peyton30419822017-05-12 18:01:32 +00001045 // There is no way to reliably tell if HT is enabled without issuing the
1046 // cpuid instruction from every thread, can correlating the cpuid info, so
1047 // if the machine is not affinity capable, we assume that HT is off. We have
1048 // seen quite a few machines where maxThreadsPerPkg is 2, yet the machine
1049 // does not support HT.
Jim Cownie5e8470a2013-09-27 10:38:44 +00001050 //
Jonathan Peyton30419822017-05-12 18:01:32 +00001051 // - Older OSes are usually found on machines with older chips, which do not
1052 // support HT.
1053 // - The performance penalty for mistakenly identifying a machine as HT when
1054 // it isn't (which results in blocktime being incorrecly set to 0) is
1055 // greater than the penalty when for mistakenly identifying a machine as
1056 // being 1 thread/core when it is really HT enabled (which results in
1057 // blocktime being incorrectly set to a positive value).
1058 __kmp_ncores = __kmp_xproc;
1059 nPackages = (__kmp_xproc + nCoresPerPkg - 1) / nCoresPerPkg;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001060 __kmp_nThreadsPerCore = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001061 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001062 KMP_INFORM(AffNotCapableUseLocCpuid, "KMP_AFFINITY");
1063 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1064 if (__kmp_affinity_uniform_topology()) {
1065 KMP_INFORM(Uniform, "KMP_AFFINITY");
1066 } else {
1067 KMP_INFORM(NonUniform, "KMP_AFFINITY");
1068 }
1069 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
1070 __kmp_nThreadsPerCore, __kmp_ncores);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001071 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001072 return 0;
1073 }
1074
1075 // From here on, we can assume that it is safe to call
1076 // __kmp_get_system_affinity() and __kmp_set_system_affinity(), even if
1077 // __kmp_affinity_type = affinity_none.
1078
1079 // Save the affinity mask for the current thread.
1080 kmp_affin_mask_t *oldMask;
1081 KMP_CPU_ALLOC(oldMask);
1082 KMP_ASSERT(oldMask != NULL);
1083 __kmp_get_system_affinity(oldMask, TRUE);
1084
1085 // Run through each of the available contexts, binding the current thread
1086 // to it, and obtaining the pertinent information using the cpuid instr.
1087 //
1088 // The relevant information is:
1089 // - Apic Id: Bits 24:31 of ebx after issuing cpuid(1) - each thread context
1090 // has a uniqie Apic Id, which is of the form pkg# : core# : thread#.
1091 // - Max Threads Per Pkg: Bits 16:23 of ebx after issuing cpuid(1). The value
1092 // of this field determines the width of the core# + thread# fields in the
1093 // Apic Id. It is also an upper bound on the number of threads per
1094 // package, but it has been verified that situations happen were it is not
1095 // exact. In particular, on certain OS/chip combinations where Intel(R)
1096 // Hyper-Threading Technology is supported by the chip but has been
1097 // disabled, the value of this field will be 2 (for a single core chip).
1098 // On other OS/chip combinations supporting Intel(R) Hyper-Threading
1099 // Technology, the value of this field will be 1 when Intel(R)
1100 // Hyper-Threading Technology is disabled and 2 when it is enabled.
1101 // - Max Cores Per Pkg: Bits 26:31 of eax after issuing cpuid(4). The value
1102 // of this field (+1) determines the width of the core# field in the Apic
1103 // Id. The comments in "cpucount.cpp" say that this value is an upper
1104 // bound, but the IA-32 architecture manual says that it is exactly the
1105 // number of cores per package, and I haven't seen any case where it
1106 // wasn't.
1107 //
1108 // From this information, deduce the package Id, core Id, and thread Id,
1109 // and set the corresponding fields in the apicThreadInfo struct.
1110 unsigned i;
1111 apicThreadInfo *threadInfo = (apicThreadInfo *)__kmp_allocate(
1112 __kmp_avail_proc * sizeof(apicThreadInfo));
1113 unsigned nApics = 0;
1114 KMP_CPU_SET_ITERATE(i, __kmp_affin_fullMask) {
1115 // Skip this proc if it is not included in the machine model.
1116 if (!KMP_CPU_ISSET(i, __kmp_affin_fullMask)) {
1117 continue;
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00001118 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001119 KMP_DEBUG_ASSERT((int)nApics < __kmp_avail_proc);
1120
1121 __kmp_affinity_dispatch->bind_thread(i);
1122 threadInfo[nApics].osId = i;
1123
1124 // The apic id and max threads per pkg come from cpuid(1).
1125 __kmp_x86_cpuid(1, 0, &buf);
1126 if (((buf.edx >> 9) & 1) == 0) {
1127 __kmp_set_system_affinity(oldMask, TRUE);
1128 __kmp_free(threadInfo);
1129 KMP_CPU_FREE(oldMask);
1130 *msg_id = kmp_i18n_str_ApicNotPresent;
1131 return -1;
1132 }
1133 threadInfo[nApics].apicId = (buf.ebx >> 24) & 0xff;
1134 threadInfo[nApics].maxThreadsPerPkg = (buf.ebx >> 16) & 0xff;
1135 if (threadInfo[nApics].maxThreadsPerPkg == 0) {
1136 threadInfo[nApics].maxThreadsPerPkg = 1;
1137 }
1138
1139 // Max cores per pkg comes from cpuid(4). 1 must be added to the encoded
1140 // value.
1141 //
1142 // First, we need to check if cpuid(4) is supported on this chip. To see if
1143 // cpuid(n) is supported, issue cpuid(0) and check if eax has the value n
1144 // or greater.
1145 __kmp_x86_cpuid(0, 0, &buf);
1146 if (buf.eax >= 4) {
1147 __kmp_x86_cpuid(4, 0, &buf);
1148 threadInfo[nApics].maxCoresPerPkg = ((buf.eax >> 26) & 0x3f) + 1;
1149 } else {
1150 threadInfo[nApics].maxCoresPerPkg = 1;
1151 }
1152
1153 // Infer the pkgId / coreId / threadId using only the info obtained locally.
1154 int widthCT = __kmp_cpuid_mask_width(threadInfo[nApics].maxThreadsPerPkg);
1155 threadInfo[nApics].pkgId = threadInfo[nApics].apicId >> widthCT;
1156
1157 int widthC = __kmp_cpuid_mask_width(threadInfo[nApics].maxCoresPerPkg);
1158 int widthT = widthCT - widthC;
1159 if (widthT < 0) {
1160 // I've never seen this one happen, but I suppose it could, if the cpuid
1161 // instruction on a chip was really screwed up. Make sure to restore the
1162 // affinity mask before the tail call.
1163 __kmp_set_system_affinity(oldMask, TRUE);
1164 __kmp_free(threadInfo);
1165 KMP_CPU_FREE(oldMask);
1166 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
1167 return -1;
1168 }
1169
1170 int maskC = (1 << widthC) - 1;
1171 threadInfo[nApics].coreId = (threadInfo[nApics].apicId >> widthT) & maskC;
1172
1173 int maskT = (1 << widthT) - 1;
1174 threadInfo[nApics].threadId = threadInfo[nApics].apicId & maskT;
1175
1176 nApics++;
1177 }
1178
1179 // We've collected all the info we need.
1180 // Restore the old affinity mask for this thread.
1181 __kmp_set_system_affinity(oldMask, TRUE);
1182
1183 // If there's only one thread context to bind to, form an Address object
1184 // with depth 1 and return immediately (or, if affinity is off, set
1185 // address2os to NULL and return).
1186 //
1187 // If it is configured to omit the package level when there is only a single
1188 // package, the logic at the end of this routine won't work if there is only
1189 // a single thread - it would try to form an Address object with depth 0.
1190 KMP_ASSERT(nApics > 0);
1191 if (nApics == 1) {
1192 __kmp_ncores = nPackages = 1;
1193 __kmp_nThreadsPerCore = nCoresPerPkg = 1;
1194 if (__kmp_affinity_verbose) {
1195 char buf[KMP_AFFIN_MASK_PRINT_LEN];
1196 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
1197
1198 KMP_INFORM(AffUseGlobCpuid, "KMP_AFFINITY");
1199 if (__kmp_affinity_respect_mask) {
1200 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
1201 } else {
1202 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
1203 }
1204 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1205 KMP_INFORM(Uniform, "KMP_AFFINITY");
1206 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
1207 __kmp_nThreadsPerCore, __kmp_ncores);
1208 }
1209
Jim Cownie5e8470a2013-09-27 10:38:44 +00001210 if (__kmp_affinity_type == affinity_none) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001211 __kmp_free(threadInfo);
1212 KMP_CPU_FREE(oldMask);
1213 return 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001214 }
1215
Jonathan Peyton30419822017-05-12 18:01:32 +00001216 *address2os = (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair));
1217 Address addr(1);
1218 addr.labels[0] = threadInfo[0].pkgId;
1219 (*address2os)[0] = AddrUnsPair(addr, threadInfo[0].osId);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001220
1221 if (__kmp_affinity_gran_levels < 0) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001222 __kmp_affinity_gran_levels = 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001223 }
1224
1225 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001226 __kmp_affinity_print_topology(*address2os, 1, 1, 0, -1, -1);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001227 }
1228
1229 __kmp_free(threadInfo);
1230 KMP_CPU_FREE(oldMask);
Jonathan Peyton30419822017-05-12 18:01:32 +00001231 return 1;
1232 }
1233
1234 // Sort the threadInfo table by physical Id.
1235 qsort(threadInfo, nApics, sizeof(*threadInfo),
1236 __kmp_affinity_cmp_apicThreadInfo_phys_id);
1237
1238 // The table is now sorted by pkgId / coreId / threadId, but we really don't
1239 // know the radix of any of the fields. pkgId's may be sparsely assigned among
1240 // the chips on a system. Although coreId's are usually assigned
1241 // [0 .. coresPerPkg-1] and threadId's are usually assigned
1242 // [0..threadsPerCore-1], we don't want to make any such assumptions.
1243 //
1244 // For that matter, we don't know what coresPerPkg and threadsPerCore (or the
1245 // total # packages) are at this point - we want to determine that now. We
1246 // only have an upper bound on the first two figures.
1247 //
1248 // We also perform a consistency check at this point: the values returned by
1249 // the cpuid instruction for any thread bound to a given package had better
1250 // return the same info for maxThreadsPerPkg and maxCoresPerPkg.
1251 nPackages = 1;
1252 nCoresPerPkg = 1;
1253 __kmp_nThreadsPerCore = 1;
1254 unsigned nCores = 1;
1255
1256 unsigned pkgCt = 1; // to determine radii
1257 unsigned lastPkgId = threadInfo[0].pkgId;
1258 unsigned coreCt = 1;
1259 unsigned lastCoreId = threadInfo[0].coreId;
1260 unsigned threadCt = 1;
1261 unsigned lastThreadId = threadInfo[0].threadId;
1262
1263 // intra-pkg consist checks
1264 unsigned prevMaxCoresPerPkg = threadInfo[0].maxCoresPerPkg;
1265 unsigned prevMaxThreadsPerPkg = threadInfo[0].maxThreadsPerPkg;
1266
1267 for (i = 1; i < nApics; i++) {
1268 if (threadInfo[i].pkgId != lastPkgId) {
1269 nCores++;
1270 pkgCt++;
1271 lastPkgId = threadInfo[i].pkgId;
1272 if ((int)coreCt > nCoresPerPkg)
1273 nCoresPerPkg = coreCt;
1274 coreCt = 1;
1275 lastCoreId = threadInfo[i].coreId;
1276 if ((int)threadCt > __kmp_nThreadsPerCore)
1277 __kmp_nThreadsPerCore = threadCt;
1278 threadCt = 1;
1279 lastThreadId = threadInfo[i].threadId;
1280
1281 // This is a different package, so go on to the next iteration without
1282 // doing any consistency checks. Reset the consistency check vars, though.
1283 prevMaxCoresPerPkg = threadInfo[i].maxCoresPerPkg;
1284 prevMaxThreadsPerPkg = threadInfo[i].maxThreadsPerPkg;
1285 continue;
1286 }
1287
1288 if (threadInfo[i].coreId != lastCoreId) {
1289 nCores++;
1290 coreCt++;
1291 lastCoreId = threadInfo[i].coreId;
1292 if ((int)threadCt > __kmp_nThreadsPerCore)
1293 __kmp_nThreadsPerCore = threadCt;
1294 threadCt = 1;
1295 lastThreadId = threadInfo[i].threadId;
1296 } else if (threadInfo[i].threadId != lastThreadId) {
1297 threadCt++;
1298 lastThreadId = threadInfo[i].threadId;
1299 } else {
1300 __kmp_free(threadInfo);
1301 KMP_CPU_FREE(oldMask);
1302 *msg_id = kmp_i18n_str_LegacyApicIDsNotUnique;
1303 return -1;
1304 }
1305
1306 // Check to make certain that the maxCoresPerPkg and maxThreadsPerPkg
1307 // fields agree between all the threads bounds to a given package.
1308 if ((prevMaxCoresPerPkg != threadInfo[i].maxCoresPerPkg) ||
1309 (prevMaxThreadsPerPkg != threadInfo[i].maxThreadsPerPkg)) {
1310 __kmp_free(threadInfo);
1311 KMP_CPU_FREE(oldMask);
1312 *msg_id = kmp_i18n_str_InconsistentCpuidInfo;
1313 return -1;
1314 }
1315 }
1316 nPackages = pkgCt;
1317 if ((int)coreCt > nCoresPerPkg)
1318 nCoresPerPkg = coreCt;
1319 if ((int)threadCt > __kmp_nThreadsPerCore)
1320 __kmp_nThreadsPerCore = threadCt;
1321
1322 // When affinity is off, this routine will still be called to set
1323 // __kmp_ncores, as well as __kmp_nThreadsPerCore, nCoresPerPkg, & nPackages.
1324 // Make sure all these vars are set correctly, and return now if affinity is
1325 // not enabled.
1326 __kmp_ncores = nCores;
1327 if (__kmp_affinity_verbose) {
1328 char buf[KMP_AFFIN_MASK_PRINT_LEN];
1329 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
1330
1331 KMP_INFORM(AffUseGlobCpuid, "KMP_AFFINITY");
1332 if (__kmp_affinity_respect_mask) {
1333 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
1334 } else {
1335 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
1336 }
1337 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1338 if (__kmp_affinity_uniform_topology()) {
1339 KMP_INFORM(Uniform, "KMP_AFFINITY");
1340 } else {
1341 KMP_INFORM(NonUniform, "KMP_AFFINITY");
1342 }
1343 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
1344 __kmp_nThreadsPerCore, __kmp_ncores);
1345 }
1346 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
1347 KMP_DEBUG_ASSERT(nApics == __kmp_avail_proc);
1348 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
1349 for (i = 0; i < nApics; ++i) {
1350 __kmp_pu_os_idx[i] = threadInfo[i].osId;
1351 }
1352 if (__kmp_affinity_type == affinity_none) {
1353 __kmp_free(threadInfo);
1354 KMP_CPU_FREE(oldMask);
1355 return 0;
1356 }
1357
1358 // Now that we've determined the number of packages, the number of cores per
1359 // package, and the number of threads per core, we can construct the data
1360 // structure that is to be returned.
1361 int pkgLevel = 0;
1362 int coreLevel = (nCoresPerPkg <= 1) ? -1 : 1;
1363 int threadLevel =
1364 (__kmp_nThreadsPerCore <= 1) ? -1 : ((coreLevel >= 0) ? 2 : 1);
1365 unsigned depth = (pkgLevel >= 0) + (coreLevel >= 0) + (threadLevel >= 0);
1366
1367 KMP_ASSERT(depth > 0);
1368 *address2os = (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) * nApics);
1369
1370 for (i = 0; i < nApics; ++i) {
1371 Address addr(depth);
1372 unsigned os = threadInfo[i].osId;
1373 int d = 0;
1374
1375 if (pkgLevel >= 0) {
1376 addr.labels[d++] = threadInfo[i].pkgId;
1377 }
1378 if (coreLevel >= 0) {
1379 addr.labels[d++] = threadInfo[i].coreId;
1380 }
1381 if (threadLevel >= 0) {
1382 addr.labels[d++] = threadInfo[i].threadId;
1383 }
1384 (*address2os)[i] = AddrUnsPair(addr, os);
1385 }
1386
1387 if (__kmp_affinity_gran_levels < 0) {
1388 // Set the granularity level based on what levels are modeled in the machine
1389 // topology map.
1390 __kmp_affinity_gran_levels = 0;
1391 if ((threadLevel >= 0) && (__kmp_affinity_gran > affinity_gran_thread)) {
1392 __kmp_affinity_gran_levels++;
1393 }
1394 if ((coreLevel >= 0) && (__kmp_affinity_gran > affinity_gran_core)) {
1395 __kmp_affinity_gran_levels++;
1396 }
1397 if ((pkgLevel >= 0) && (__kmp_affinity_gran > affinity_gran_package)) {
1398 __kmp_affinity_gran_levels++;
1399 }
1400 }
1401
1402 if (__kmp_affinity_verbose) {
1403 __kmp_affinity_print_topology(*address2os, nApics, depth, pkgLevel,
1404 coreLevel, threadLevel);
1405 }
1406
1407 __kmp_free(threadInfo);
1408 KMP_CPU_FREE(oldMask);
1409 return depth;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001410}
1411
Jim Cownie5e8470a2013-09-27 10:38:44 +00001412// Intel(R) microarchitecture code name Nehalem, Dunnington and later
1413// architectures support a newer interface for specifying the x2APIC Ids,
1414// based on cpuid leaf 11.
Jonathan Peyton30419822017-05-12 18:01:32 +00001415static int __kmp_affinity_create_x2apicid_map(AddrUnsPair **address2os,
1416 kmp_i18n_id_t *const msg_id) {
1417 kmp_cpuid buf;
1418 *address2os = NULL;
1419 *msg_id = kmp_i18n_null;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001420
Jonathan Peyton30419822017-05-12 18:01:32 +00001421 // Check to see if cpuid leaf 11 is supported.
1422 __kmp_x86_cpuid(0, 0, &buf);
1423 if (buf.eax < 11) {
1424 *msg_id = kmp_i18n_str_NoLeaf11Support;
1425 return -1;
1426 }
1427 __kmp_x86_cpuid(11, 0, &buf);
1428 if (buf.ebx == 0) {
1429 *msg_id = kmp_i18n_str_NoLeaf11Support;
1430 return -1;
1431 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001432
Jonathan Peyton30419822017-05-12 18:01:32 +00001433 // Find the number of levels in the machine topology. While we're at it, get
1434 // the default values for __kmp_nThreadsPerCore & nCoresPerPkg. We will try to
1435 // get more accurate values later by explicitly counting them, but get
1436 // reasonable defaults now, in case we return early.
1437 int level;
1438 int threadLevel = -1;
1439 int coreLevel = -1;
1440 int pkgLevel = -1;
1441 __kmp_nThreadsPerCore = nCoresPerPkg = nPackages = 1;
1442
1443 for (level = 0;; level++) {
1444 if (level > 31) {
1445 // FIXME: Hack for DPD200163180
1446 //
1447 // If level is big then something went wrong -> exiting
1448 //
1449 // There could actually be 32 valid levels in the machine topology, but so
1450 // far, the only machine we have seen which does not exit this loop before
1451 // iteration 32 has fubar x2APIC settings.
1452 //
1453 // For now, just reject this case based upon loop trip count.
1454 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
1455 return -1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001456 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001457 __kmp_x86_cpuid(11, level, &buf);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001458 if (buf.ebx == 0) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001459 if (pkgLevel < 0) {
1460 // Will infer nPackages from __kmp_xproc
1461 pkgLevel = level;
1462 level++;
1463 }
1464 break;
1465 }
1466 int kind = (buf.ecx >> 8) & 0xff;
1467 if (kind == 1) {
1468 // SMT level
1469 threadLevel = level;
1470 coreLevel = -1;
1471 pkgLevel = -1;
1472 __kmp_nThreadsPerCore = buf.ebx & 0xffff;
1473 if (__kmp_nThreadsPerCore == 0) {
1474 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001475 return -1;
Jonathan Peyton30419822017-05-12 18:01:32 +00001476 }
1477 } else if (kind == 2) {
1478 // core level
1479 coreLevel = level;
1480 pkgLevel = -1;
1481 nCoresPerPkg = buf.ebx & 0xffff;
1482 if (nCoresPerPkg == 0) {
1483 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
1484 return -1;
1485 }
1486 } else {
1487 if (level <= 0) {
1488 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
1489 return -1;
1490 }
1491 if (pkgLevel >= 0) {
1492 continue;
1493 }
1494 pkgLevel = level;
1495 nPackages = buf.ebx & 0xffff;
1496 if (nPackages == 0) {
1497 *msg_id = kmp_i18n_str_InvalidCpuidInfo;
1498 return -1;
1499 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001500 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001501 }
1502 int depth = level;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001503
Jonathan Peyton30419822017-05-12 18:01:32 +00001504 // In the above loop, "level" was counted from the finest level (usually
1505 // thread) to the coarsest. The caller expects that we will place the labels
1506 // in (*address2os)[].first.labels[] in the inverse order, so we need to
1507 // invert the vars saying which level means what.
1508 if (threadLevel >= 0) {
1509 threadLevel = depth - threadLevel - 1;
1510 }
1511 if (coreLevel >= 0) {
1512 coreLevel = depth - coreLevel - 1;
1513 }
1514 KMP_DEBUG_ASSERT(pkgLevel >= 0);
1515 pkgLevel = depth - pkgLevel - 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001516
Jonathan Peyton30419822017-05-12 18:01:32 +00001517 // The algorithm used starts by setting the affinity to each available thread
1518 // and retrieving info from the cpuid instruction, so if we are not capable of
1519 // calling __kmp_get_system_affinity() and _kmp_get_system_affinity(), then we
1520 // need to do something else - use the defaults that we calculated from
1521 // issuing cpuid without binding to each proc.
1522 if (!KMP_AFFINITY_CAPABLE()) {
1523 // Hack to try and infer the machine topology using only the data
1524 // available from cpuid on the current thread, and __kmp_xproc.
1525 KMP_ASSERT(__kmp_affinity_type == affinity_none);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001526
Jonathan Peyton30419822017-05-12 18:01:32 +00001527 __kmp_ncores = __kmp_xproc / __kmp_nThreadsPerCore;
1528 nPackages = (__kmp_xproc + nCoresPerPkg - 1) / nCoresPerPkg;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001529 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001530 KMP_INFORM(AffNotCapableUseLocCpuidL11, "KMP_AFFINITY");
1531 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1532 if (__kmp_affinity_uniform_topology()) {
1533 KMP_INFORM(Uniform, "KMP_AFFINITY");
1534 } else {
1535 KMP_INFORM(NonUniform, "KMP_AFFINITY");
1536 }
1537 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
1538 __kmp_nThreadsPerCore, __kmp_ncores);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001539 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001540 return 0;
1541 }
1542
1543 // From here on, we can assume that it is safe to call
1544 // __kmp_get_system_affinity() and __kmp_set_system_affinity(), even if
1545 // __kmp_affinity_type = affinity_none.
1546
1547 // Save the affinity mask for the current thread.
1548 kmp_affin_mask_t *oldMask;
1549 KMP_CPU_ALLOC(oldMask);
1550 __kmp_get_system_affinity(oldMask, TRUE);
1551
1552 // Allocate the data structure to be returned.
1553 AddrUnsPair *retval =
1554 (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) * __kmp_avail_proc);
1555
1556 // Run through each of the available contexts, binding the current thread
1557 // to it, and obtaining the pertinent information using the cpuid instr.
1558 unsigned int proc;
1559 int nApics = 0;
1560 KMP_CPU_SET_ITERATE(proc, __kmp_affin_fullMask) {
1561 // Skip this proc if it is not included in the machine model.
1562 if (!KMP_CPU_ISSET(proc, __kmp_affin_fullMask)) {
1563 continue;
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00001564 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001565 KMP_DEBUG_ASSERT(nApics < __kmp_avail_proc);
1566
1567 __kmp_affinity_dispatch->bind_thread(proc);
1568
1569 // Extract labels for each level in the machine topology map from Apic ID.
1570 Address addr(depth);
1571 int prev_shift = 0;
1572
1573 for (level = 0; level < depth; level++) {
1574 __kmp_x86_cpuid(11, level, &buf);
1575 unsigned apicId = buf.edx;
1576 if (buf.ebx == 0) {
1577 if (level != depth - 1) {
1578 KMP_CPU_FREE(oldMask);
1579 *msg_id = kmp_i18n_str_InconsistentCpuidInfo;
1580 return -1;
1581 }
1582 addr.labels[depth - level - 1] = apicId >> prev_shift;
1583 level++;
1584 break;
1585 }
1586 int shift = buf.eax & 0x1f;
1587 int mask = (1 << shift) - 1;
1588 addr.labels[depth - level - 1] = (apicId & mask) >> prev_shift;
1589 prev_shift = shift;
1590 }
1591 if (level != depth) {
1592 KMP_CPU_FREE(oldMask);
1593 *msg_id = kmp_i18n_str_InconsistentCpuidInfo;
1594 return -1;
1595 }
1596
1597 retval[nApics] = AddrUnsPair(addr, proc);
1598 nApics++;
1599 }
1600
1601 // We've collected all the info we need.
1602 // Restore the old affinity mask for this thread.
1603 __kmp_set_system_affinity(oldMask, TRUE);
1604
1605 // If there's only one thread context to bind to, return now.
1606 KMP_ASSERT(nApics > 0);
1607 if (nApics == 1) {
1608 __kmp_ncores = nPackages = 1;
1609 __kmp_nThreadsPerCore = nCoresPerPkg = 1;
1610 if (__kmp_affinity_verbose) {
1611 char buf[KMP_AFFIN_MASK_PRINT_LEN];
1612 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
1613
1614 KMP_INFORM(AffUseGlobCpuidL11, "KMP_AFFINITY");
1615 if (__kmp_affinity_respect_mask) {
1616 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
1617 } else {
1618 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
1619 }
1620 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1621 KMP_INFORM(Uniform, "KMP_AFFINITY");
1622 KMP_INFORM(Topology, "KMP_AFFINITY", nPackages, nCoresPerPkg,
1623 __kmp_nThreadsPerCore, __kmp_ncores);
1624 }
1625
Jim Cownie5e8470a2013-09-27 10:38:44 +00001626 if (__kmp_affinity_type == affinity_none) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001627 __kmp_free(retval);
1628 KMP_CPU_FREE(oldMask);
1629 return 0;
1630 }
1631
1632 // Form an Address object which only includes the package level.
1633 Address addr(1);
1634 addr.labels[0] = retval[0].first.labels[pkgLevel];
1635 retval[0].first = addr;
1636
1637 if (__kmp_affinity_gran_levels < 0) {
1638 __kmp_affinity_gran_levels = 0;
1639 }
1640
1641 if (__kmp_affinity_verbose) {
1642 __kmp_affinity_print_topology(retval, 1, 1, 0, -1, -1);
1643 }
1644
1645 *address2os = retval;
1646 KMP_CPU_FREE(oldMask);
1647 return 1;
1648 }
1649
1650 // Sort the table by physical Id.
1651 qsort(retval, nApics, sizeof(*retval), __kmp_affinity_cmp_Address_labels);
1652
1653 // Find the radix at each of the levels.
1654 unsigned *totals = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
1655 unsigned *counts = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
1656 unsigned *maxCt = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
1657 unsigned *last = (unsigned *)__kmp_allocate(depth * sizeof(unsigned));
1658 for (level = 0; level < depth; level++) {
1659 totals[level] = 1;
1660 maxCt[level] = 1;
1661 counts[level] = 1;
1662 last[level] = retval[0].first.labels[level];
1663 }
1664
1665 // From here on, the iteration variable "level" runs from the finest level to
1666 // the coarsest, i.e. we iterate forward through
1667 // (*address2os)[].first.labels[] - in the previous loops, we iterated
1668 // backwards.
1669 for (proc = 1; (int)proc < nApics; proc++) {
1670 int level;
1671 for (level = 0; level < depth; level++) {
1672 if (retval[proc].first.labels[level] != last[level]) {
1673 int j;
1674 for (j = level + 1; j < depth; j++) {
1675 totals[j]++;
1676 counts[j] = 1;
1677 // The line below causes printing incorrect topology information in
1678 // case the max value for some level (maxCt[level]) is encountered
1679 // earlier than some less value while going through the array. For
1680 // example, let pkg0 has 4 cores and pkg1 has 2 cores. Then
1681 // maxCt[1] == 2
1682 // whereas it must be 4.
1683 // TODO!!! Check if it can be commented safely
1684 // maxCt[j] = 1;
1685 last[j] = retval[proc].first.labels[j];
1686 }
1687 totals[level]++;
1688 counts[level]++;
1689 if (counts[level] > maxCt[level]) {
1690 maxCt[level] = counts[level];
1691 }
1692 last[level] = retval[proc].first.labels[level];
1693 break;
1694 } else if (level == depth - 1) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00001695 __kmp_free(last);
1696 __kmp_free(maxCt);
1697 __kmp_free(counts);
1698 __kmp_free(totals);
1699 __kmp_free(retval);
1700 KMP_CPU_FREE(oldMask);
Jonathan Peyton30419822017-05-12 18:01:32 +00001701 *msg_id = kmp_i18n_str_x2ApicIDsNotUnique;
1702 return -1;
1703 }
1704 }
1705 }
1706
1707 // When affinity is off, this routine will still be called to set
1708 // __kmp_ncores, as well as __kmp_nThreadsPerCore, nCoresPerPkg, & nPackages.
1709 // Make sure all these vars are set correctly, and return if affinity is not
1710 // enabled.
1711 if (threadLevel >= 0) {
1712 __kmp_nThreadsPerCore = maxCt[threadLevel];
1713 } else {
1714 __kmp_nThreadsPerCore = 1;
1715 }
1716 nPackages = totals[pkgLevel];
1717
1718 if (coreLevel >= 0) {
1719 __kmp_ncores = totals[coreLevel];
1720 nCoresPerPkg = maxCt[coreLevel];
1721 } else {
1722 __kmp_ncores = nPackages;
1723 nCoresPerPkg = 1;
1724 }
1725
1726 // Check to see if the machine topology is uniform
1727 unsigned prod = maxCt[0];
1728 for (level = 1; level < depth; level++) {
1729 prod *= maxCt[level];
1730 }
1731 bool uniform = (prod == totals[level - 1]);
1732
1733 // Print the machine topology summary.
1734 if (__kmp_affinity_verbose) {
1735 char mask[KMP_AFFIN_MASK_PRINT_LEN];
1736 __kmp_affinity_print_mask(mask, KMP_AFFIN_MASK_PRINT_LEN, oldMask);
1737
1738 KMP_INFORM(AffUseGlobCpuidL11, "KMP_AFFINITY");
1739 if (__kmp_affinity_respect_mask) {
1740 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", mask);
1741 } else {
1742 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", mask);
1743 }
1744 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
1745 if (uniform) {
1746 KMP_INFORM(Uniform, "KMP_AFFINITY");
1747 } else {
1748 KMP_INFORM(NonUniform, "KMP_AFFINITY");
Jim Cownie5e8470a2013-09-27 10:38:44 +00001749 }
1750
Jonathan Peyton30419822017-05-12 18:01:32 +00001751 kmp_str_buf_t buf;
1752 __kmp_str_buf_init(&buf);
1753
1754 __kmp_str_buf_print(&buf, "%d", totals[0]);
1755 for (level = 1; level <= pkgLevel; level++) {
1756 __kmp_str_buf_print(&buf, " x %d", maxCt[level]);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001757 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001758 KMP_INFORM(TopologyExtra, "KMP_AFFINITY", buf.str, nCoresPerPkg,
1759 __kmp_nThreadsPerCore, __kmp_ncores);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001760
Jonathan Peyton30419822017-05-12 18:01:32 +00001761 __kmp_str_buf_free(&buf);
1762 }
1763 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
1764 KMP_DEBUG_ASSERT(nApics == __kmp_avail_proc);
1765 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
1766 for (proc = 0; (int)proc < nApics; ++proc) {
1767 __kmp_pu_os_idx[proc] = retval[proc].second;
1768 }
1769 if (__kmp_affinity_type == affinity_none) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00001770 __kmp_free(last);
1771 __kmp_free(maxCt);
1772 __kmp_free(counts);
1773 __kmp_free(totals);
Jonathan Peyton30419822017-05-12 18:01:32 +00001774 __kmp_free(retval);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001775 KMP_CPU_FREE(oldMask);
Jonathan Peyton30419822017-05-12 18:01:32 +00001776 return 0;
1777 }
1778
1779 // Find any levels with radiix 1, and remove them from the map
1780 // (except for the package level).
1781 int new_depth = 0;
1782 for (level = 0; level < depth; level++) {
1783 if ((maxCt[level] == 1) && (level != pkgLevel)) {
1784 continue;
1785 }
1786 new_depth++;
1787 }
1788
1789 // If we are removing any levels, allocate a new vector to return,
1790 // and copy the relevant information to it.
1791 if (new_depth != depth) {
1792 AddrUnsPair *new_retval =
1793 (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) * nApics);
1794 for (proc = 0; (int)proc < nApics; proc++) {
1795 Address addr(new_depth);
1796 new_retval[proc] = AddrUnsPair(addr, retval[proc].second);
1797 }
1798 int new_level = 0;
1799 int newPkgLevel = -1;
1800 int newCoreLevel = -1;
1801 int newThreadLevel = -1;
1802 int i;
1803 for (level = 0; level < depth; level++) {
1804 if ((maxCt[level] == 1) && (level != pkgLevel)) {
1805 // Remove this level. Never remove the package level
1806 continue;
1807 }
1808 if (level == pkgLevel) {
Andrey Churbanova5868212017-11-30 11:51:47 +00001809 newPkgLevel = new_level;
Jonathan Peyton30419822017-05-12 18:01:32 +00001810 }
1811 if (level == coreLevel) {
Andrey Churbanova5868212017-11-30 11:51:47 +00001812 newCoreLevel = new_level;
Jonathan Peyton30419822017-05-12 18:01:32 +00001813 }
1814 if (level == threadLevel) {
Andrey Churbanova5868212017-11-30 11:51:47 +00001815 newThreadLevel = new_level;
Jonathan Peyton30419822017-05-12 18:01:32 +00001816 }
1817 for (proc = 0; (int)proc < nApics; proc++) {
1818 new_retval[proc].first.labels[new_level] =
1819 retval[proc].first.labels[level];
1820 }
1821 new_level++;
1822 }
1823
1824 __kmp_free(retval);
1825 retval = new_retval;
1826 depth = new_depth;
1827 pkgLevel = newPkgLevel;
1828 coreLevel = newCoreLevel;
1829 threadLevel = newThreadLevel;
1830 }
1831
1832 if (__kmp_affinity_gran_levels < 0) {
1833 // Set the granularity level based on what levels are modeled
1834 // in the machine topology map.
1835 __kmp_affinity_gran_levels = 0;
1836 if ((threadLevel >= 0) && (__kmp_affinity_gran > affinity_gran_thread)) {
1837 __kmp_affinity_gran_levels++;
1838 }
1839 if ((coreLevel >= 0) && (__kmp_affinity_gran > affinity_gran_core)) {
1840 __kmp_affinity_gran_levels++;
1841 }
1842 if (__kmp_affinity_gran > affinity_gran_package) {
1843 __kmp_affinity_gran_levels++;
1844 }
1845 }
1846
1847 if (__kmp_affinity_verbose) {
1848 __kmp_affinity_print_topology(retval, nApics, depth, pkgLevel, coreLevel,
1849 threadLevel);
1850 }
1851
1852 __kmp_free(last);
1853 __kmp_free(maxCt);
1854 __kmp_free(counts);
1855 __kmp_free(totals);
1856 KMP_CPU_FREE(oldMask);
1857 *address2os = retval;
1858 return depth;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001859}
1860
Jonathan Peyton30419822017-05-12 18:01:32 +00001861#endif /* KMP_ARCH_X86 || KMP_ARCH_X86_64 */
Jim Cownie5e8470a2013-09-27 10:38:44 +00001862
Jonathan Peyton30419822017-05-12 18:01:32 +00001863#define osIdIndex 0
1864#define threadIdIndex 1
1865#define coreIdIndex 2
1866#define pkgIdIndex 3
1867#define nodeIdIndex 4
Jim Cownie5e8470a2013-09-27 10:38:44 +00001868
1869typedef unsigned *ProcCpuInfo;
1870static unsigned maxIndex = pkgIdIndex;
1871
Jonathan Peyton30419822017-05-12 18:01:32 +00001872static int __kmp_affinity_cmp_ProcCpuInfo_os_id(const void *a, const void *b) {
1873 const unsigned *aa = (const unsigned *)a;
1874 const unsigned *bb = (const unsigned *)b;
1875 if (aa[osIdIndex] < bb[osIdIndex])
1876 return -1;
1877 if (aa[osIdIndex] > bb[osIdIndex])
1878 return 1;
1879 return 0;
Jonathan Peytonbd3a7632017-09-27 20:36:27 +00001880}
Jim Cownie5e8470a2013-09-27 10:38:44 +00001881
Jonathan Peyton30419822017-05-12 18:01:32 +00001882static int __kmp_affinity_cmp_ProcCpuInfo_phys_id(const void *a,
1883 const void *b) {
1884 unsigned i;
Andrey Churbanov5ba90c72017-07-17 09:03:14 +00001885 const unsigned *aa = *(unsigned *const *)a;
1886 const unsigned *bb = *(unsigned *const *)b;
Jonathan Peyton30419822017-05-12 18:01:32 +00001887 for (i = maxIndex;; i--) {
1888 if (aa[i] < bb[i])
1889 return -1;
1890 if (aa[i] > bb[i])
1891 return 1;
1892 if (i == osIdIndex)
1893 break;
1894 }
1895 return 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001896}
1897
Jim Cownie5e8470a2013-09-27 10:38:44 +00001898// Parse /proc/cpuinfo (or an alternate file in the same format) to obtain the
1899// affinity map.
Jonathan Peyton30419822017-05-12 18:01:32 +00001900static int __kmp_affinity_create_cpuinfo_map(AddrUnsPair **address2os,
1901 int *line,
1902 kmp_i18n_id_t *const msg_id,
1903 FILE *f) {
1904 *address2os = NULL;
1905 *msg_id = kmp_i18n_null;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001906
Jonathan Peyton30419822017-05-12 18:01:32 +00001907 // Scan of the file, and count the number of "processor" (osId) fields,
1908 // and find the highest value of <n> for a node_<n> field.
1909 char buf[256];
1910 unsigned num_records = 0;
1911 while (!feof(f)) {
1912 buf[sizeof(buf) - 1] = 1;
1913 if (!fgets(buf, sizeof(buf), f)) {
1914 // Read errors presumably because of EOF
1915 break;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001916 }
1917
Jonathan Peyton30419822017-05-12 18:01:32 +00001918 char s1[] = "processor";
1919 if (strncmp(buf, s1, sizeof(s1) - 1) == 0) {
1920 num_records++;
1921 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001922 }
1923
Jonathan Peyton30419822017-05-12 18:01:32 +00001924 // FIXME - this will match "node_<n> <garbage>"
1925 unsigned level;
Andrey Churbanov5ba90c72017-07-17 09:03:14 +00001926 if (KMP_SSCANF(buf, "node_%u id", &level) == 1) {
Jonathan Peyton30419822017-05-12 18:01:32 +00001927 if (nodeIdIndex + level >= maxIndex) {
1928 maxIndex = nodeIdIndex + level;
1929 }
1930 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001931 }
Jonathan Peyton30419822017-05-12 18:01:32 +00001932 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001933
Jonathan Peyton30419822017-05-12 18:01:32 +00001934 // Check for empty file / no valid processor records, or too many. The number
1935 // of records can't exceed the number of valid bits in the affinity mask.
1936 if (num_records == 0) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00001937 *line = 0;
Jonathan Peyton30419822017-05-12 18:01:32 +00001938 *msg_id = kmp_i18n_str_NoProcRecords;
1939 return -1;
1940 }
1941 if (num_records > (unsigned)__kmp_xproc) {
1942 *line = 0;
1943 *msg_id = kmp_i18n_str_TooManyProcRecords;
1944 return -1;
1945 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001946
Jonathan Peyton30419822017-05-12 18:01:32 +00001947 // Set the file pointer back to the begginning, so that we can scan the file
1948 // again, this time performing a full parse of the data. Allocate a vector of
1949 // ProcCpuInfo object, where we will place the data. Adding an extra element
1950 // at the end allows us to remove a lot of extra checks for termination
1951 // conditions.
1952 if (fseek(f, 0, SEEK_SET) != 0) {
1953 *line = 0;
1954 *msg_id = kmp_i18n_str_CantRewindCpuinfo;
1955 return -1;
1956 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00001957
Jonathan Peyton30419822017-05-12 18:01:32 +00001958 // Allocate the array of records to store the proc info in. The dummy
1959 // element at the end makes the logic in filling them out easier to code.
1960 unsigned **threadInfo =
1961 (unsigned **)__kmp_allocate((num_records + 1) * sizeof(unsigned *));
1962 unsigned i;
1963 for (i = 0; i <= num_records; i++) {
1964 threadInfo[i] =
1965 (unsigned *)__kmp_allocate((maxIndex + 1) * sizeof(unsigned));
1966 }
1967
1968#define CLEANUP_THREAD_INFO \
1969 for (i = 0; i <= num_records; i++) { \
1970 __kmp_free(threadInfo[i]); \
1971 } \
1972 __kmp_free(threadInfo);
1973
1974 // A value of UINT_MAX means that we didn't find the field
1975 unsigned __index;
1976
1977#define INIT_PROC_INFO(p) \
1978 for (__index = 0; __index <= maxIndex; __index++) { \
1979 (p)[__index] = UINT_MAX; \
1980 }
1981
1982 for (i = 0; i <= num_records; i++) {
1983 INIT_PROC_INFO(threadInfo[i]);
1984 }
1985
1986 unsigned num_avail = 0;
1987 *line = 0;
1988 while (!feof(f)) {
1989 // Create an inner scoping level, so that all the goto targets at the end of
1990 // the loop appear in an outer scoping level. This avoids warnings about
1991 // jumping past an initialization to a target in the same block.
1992 {
1993 buf[sizeof(buf) - 1] = 1;
1994 bool long_line = false;
1995 if (!fgets(buf, sizeof(buf), f)) {
1996 // Read errors presumably because of EOF
1997 // If there is valid data in threadInfo[num_avail], then fake
1998 // a blank line in ensure that the last address gets parsed.
1999 bool valid = false;
2000 for (i = 0; i <= maxIndex; i++) {
2001 if (threadInfo[num_avail][i] != UINT_MAX) {
2002 valid = true;
2003 }
2004 }
2005 if (!valid) {
2006 break;
2007 }
2008 buf[0] = 0;
2009 } else if (!buf[sizeof(buf) - 1]) {
2010 // The line is longer than the buffer. Set a flag and don't
2011 // emit an error if we were going to ignore the line, anyway.
2012 long_line = true;
2013
2014#define CHECK_LINE \
2015 if (long_line) { \
2016 CLEANUP_THREAD_INFO; \
2017 *msg_id = kmp_i18n_str_LongLineCpuinfo; \
2018 return -1; \
2019 }
2020 }
2021 (*line)++;
2022
2023 char s1[] = "processor";
2024 if (strncmp(buf, s1, sizeof(s1) - 1) == 0) {
2025 CHECK_LINE;
2026 char *p = strchr(buf + sizeof(s1) - 1, ':');
2027 unsigned val;
2028 if ((p == NULL) || (KMP_SSCANF(p + 1, "%u\n", &val) != 1))
2029 goto no_val;
2030 if (threadInfo[num_avail][osIdIndex] != UINT_MAX)
2031 goto dup_field;
2032 threadInfo[num_avail][osIdIndex] = val;
Jim Cownie181b4bb2013-12-23 17:28:57 +00002033#if KMP_OS_LINUX && USE_SYSFS_INFO
Jonathan Peyton30419822017-05-12 18:01:32 +00002034 char path[256];
2035 KMP_SNPRINTF(
2036 path, sizeof(path),
2037 "/sys/devices/system/cpu/cpu%u/topology/physical_package_id",
2038 threadInfo[num_avail][osIdIndex]);
2039 __kmp_read_from_file(path, "%u", &threadInfo[num_avail][pkgIdIndex]);
Jim Cownie181b4bb2013-12-23 17:28:57 +00002040
Jonathan Peyton30419822017-05-12 18:01:32 +00002041 KMP_SNPRINTF(path, sizeof(path),
2042 "/sys/devices/system/cpu/cpu%u/topology/core_id",
2043 threadInfo[num_avail][osIdIndex]);
2044 __kmp_read_from_file(path, "%u", &threadInfo[num_avail][coreIdIndex]);
2045 continue;
Jim Cownie181b4bb2013-12-23 17:28:57 +00002046#else
Jonathan Peyton30419822017-05-12 18:01:32 +00002047 }
2048 char s2[] = "physical id";
2049 if (strncmp(buf, s2, sizeof(s2) - 1) == 0) {
2050 CHECK_LINE;
2051 char *p = strchr(buf + sizeof(s2) - 1, ':');
2052 unsigned val;
2053 if ((p == NULL) || (KMP_SSCANF(p + 1, "%u\n", &val) != 1))
2054 goto no_val;
2055 if (threadInfo[num_avail][pkgIdIndex] != UINT_MAX)
2056 goto dup_field;
2057 threadInfo[num_avail][pkgIdIndex] = val;
2058 continue;
2059 }
2060 char s3[] = "core id";
2061 if (strncmp(buf, s3, sizeof(s3) - 1) == 0) {
2062 CHECK_LINE;
2063 char *p = strchr(buf + sizeof(s3) - 1, ':');
2064 unsigned val;
2065 if ((p == NULL) || (KMP_SSCANF(p + 1, "%u\n", &val) != 1))
2066 goto no_val;
2067 if (threadInfo[num_avail][coreIdIndex] != UINT_MAX)
2068 goto dup_field;
2069 threadInfo[num_avail][coreIdIndex] = val;
2070 continue;
Jim Cownie181b4bb2013-12-23 17:28:57 +00002071#endif // KMP_OS_LINUX && USE_SYSFS_INFO
Jonathan Peyton30419822017-05-12 18:01:32 +00002072 }
2073 char s4[] = "thread id";
2074 if (strncmp(buf, s4, sizeof(s4) - 1) == 0) {
2075 CHECK_LINE;
2076 char *p = strchr(buf + sizeof(s4) - 1, ':');
2077 unsigned val;
2078 if ((p == NULL) || (KMP_SSCANF(p + 1, "%u\n", &val) != 1))
2079 goto no_val;
2080 if (threadInfo[num_avail][threadIdIndex] != UINT_MAX)
2081 goto dup_field;
2082 threadInfo[num_avail][threadIdIndex] = val;
2083 continue;
2084 }
2085 unsigned level;
Jonathan Peyton6a393f72017-09-05 15:43:58 +00002086 if (KMP_SSCANF(buf, "node_%u id", &level) == 1) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002087 CHECK_LINE;
2088 char *p = strchr(buf + sizeof(s4) - 1, ':');
2089 unsigned val;
2090 if ((p == NULL) || (KMP_SSCANF(p + 1, "%u\n", &val) != 1))
2091 goto no_val;
2092 KMP_ASSERT(nodeIdIndex + level <= maxIndex);
2093 if (threadInfo[num_avail][nodeIdIndex + level] != UINT_MAX)
2094 goto dup_field;
2095 threadInfo[num_avail][nodeIdIndex + level] = val;
2096 continue;
2097 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002098
Jonathan Peyton30419822017-05-12 18:01:32 +00002099 // We didn't recognize the leading token on the line. There are lots of
2100 // leading tokens that we don't recognize - if the line isn't empty, go on
2101 // to the next line.
2102 if ((*buf != 0) && (*buf != '\n')) {
2103 // If the line is longer than the buffer, read characters
2104 // until we find a newline.
2105 if (long_line) {
2106 int ch;
2107 while (((ch = fgetc(f)) != EOF) && (ch != '\n'))
2108 ;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002109 }
2110 continue;
Jonathan Peyton30419822017-05-12 18:01:32 +00002111 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002112
Jonathan Peyton30419822017-05-12 18:01:32 +00002113 // A newline has signalled the end of the processor record.
2114 // Check that there aren't too many procs specified.
2115 if ((int)num_avail == __kmp_xproc) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00002116 CLEANUP_THREAD_INFO;
Jonathan Peyton30419822017-05-12 18:01:32 +00002117 *msg_id = kmp_i18n_str_TooManyEntries;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002118 return -1;
Jonathan Peyton30419822017-05-12 18:01:32 +00002119 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002120
Jonathan Peyton30419822017-05-12 18:01:32 +00002121 // Check for missing fields. The osId field must be there, and we
2122 // currently require that the physical id field is specified, also.
2123 if (threadInfo[num_avail][osIdIndex] == UINT_MAX) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00002124 CLEANUP_THREAD_INFO;
Jonathan Peyton30419822017-05-12 18:01:32 +00002125 *msg_id = kmp_i18n_str_MissingProcField;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002126 return -1;
Jonathan Peyton30419822017-05-12 18:01:32 +00002127 }
2128 if (threadInfo[0][pkgIdIndex] == UINT_MAX) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00002129 CLEANUP_THREAD_INFO;
Jonathan Peyton30419822017-05-12 18:01:32 +00002130 *msg_id = kmp_i18n_str_MissingPhysicalIDField;
2131 return -1;
2132 }
2133
2134 // Skip this proc if it is not included in the machine model.
2135 if (!KMP_CPU_ISSET(threadInfo[num_avail][osIdIndex],
2136 __kmp_affin_fullMask)) {
2137 INIT_PROC_INFO(threadInfo[num_avail]);
2138 continue;
2139 }
2140
2141 // We have a successful parse of this proc's info.
2142 // Increment the counter, and prepare for the next proc.
2143 num_avail++;
2144 KMP_ASSERT(num_avail <= num_records);
2145 INIT_PROC_INFO(threadInfo[num_avail]);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002146 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002147 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002148
Jonathan Peyton30419822017-05-12 18:01:32 +00002149 no_val:
2150 CLEANUP_THREAD_INFO;
2151 *msg_id = kmp_i18n_str_MissingValCpuinfo;
2152 return -1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002153
Jonathan Peyton30419822017-05-12 18:01:32 +00002154 dup_field:
2155 CLEANUP_THREAD_INFO;
2156 *msg_id = kmp_i18n_str_DuplicateFieldCpuinfo;
2157 return -1;
2158 }
2159 *line = 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002160
Jonathan Peyton30419822017-05-12 18:01:32 +00002161#if KMP_MIC && REDUCE_TEAM_SIZE
2162 unsigned teamSize = 0;
2163#endif // KMP_MIC && REDUCE_TEAM_SIZE
Jim Cownie5e8470a2013-09-27 10:38:44 +00002164
Jonathan Peyton30419822017-05-12 18:01:32 +00002165 // check for num_records == __kmp_xproc ???
Jim Cownie5e8470a2013-09-27 10:38:44 +00002166
Jonathan Peyton30419822017-05-12 18:01:32 +00002167 // If there's only one thread context to bind to, form an Address object with
2168 // depth 1 and return immediately (or, if affinity is off, set address2os to
2169 // NULL and return).
2170 //
2171 // If it is configured to omit the package level when there is only a single
2172 // package, the logic at the end of this routine won't work if there is only a
2173 // single thread - it would try to form an Address object with depth 0.
2174 KMP_ASSERT(num_avail > 0);
2175 KMP_ASSERT(num_avail <= num_records);
2176 if (num_avail == 1) {
2177 __kmp_ncores = 1;
2178 __kmp_nThreadsPerCore = nCoresPerPkg = nPackages = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002179 if (__kmp_affinity_verbose) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002180 if (!KMP_AFFINITY_CAPABLE()) {
2181 KMP_INFORM(AffNotCapableUseCpuinfo, "KMP_AFFINITY");
2182 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
2183 KMP_INFORM(Uniform, "KMP_AFFINITY");
2184 } else {
2185 char buf[KMP_AFFIN_MASK_PRINT_LEN];
2186 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
2187 __kmp_affin_fullMask);
2188 KMP_INFORM(AffCapableUseCpuinfo, "KMP_AFFINITY");
2189 if (__kmp_affinity_respect_mask) {
2190 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
2191 } else {
2192 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002193 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002194 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
2195 KMP_INFORM(Uniform, "KMP_AFFINITY");
2196 }
2197 int index;
2198 kmp_str_buf_t buf;
2199 __kmp_str_buf_init(&buf);
2200 __kmp_str_buf_print(&buf, "1");
2201 for (index = maxIndex - 1; index > pkgIdIndex; index--) {
2202 __kmp_str_buf_print(&buf, " x 1");
2203 }
2204 KMP_INFORM(TopologyExtra, "KMP_AFFINITY", buf.str, 1, 1, 1);
2205 __kmp_str_buf_free(&buf);
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00002206 }
2207
Jim Cownie5e8470a2013-09-27 10:38:44 +00002208 if (__kmp_affinity_type == affinity_none) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002209 CLEANUP_THREAD_INFO;
2210 return 0;
2211 }
2212
2213 *address2os = (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair));
2214 Address addr(1);
2215 addr.labels[0] = threadInfo[0][pkgIdIndex];
2216 (*address2os)[0] = AddrUnsPair(addr, threadInfo[0][osIdIndex]);
2217
2218 if (__kmp_affinity_gran_levels < 0) {
2219 __kmp_affinity_gran_levels = 0;
2220 }
2221
2222 if (__kmp_affinity_verbose) {
2223 __kmp_affinity_print_topology(*address2os, 1, 1, 0, -1, -1);
2224 }
2225
2226 CLEANUP_THREAD_INFO;
2227 return 1;
2228 }
2229
2230 // Sort the threadInfo table by physical Id.
2231 qsort(threadInfo, num_avail, sizeof(*threadInfo),
2232 __kmp_affinity_cmp_ProcCpuInfo_phys_id);
2233
2234 // The table is now sorted by pkgId / coreId / threadId, but we really don't
2235 // know the radix of any of the fields. pkgId's may be sparsely assigned among
2236 // the chips on a system. Although coreId's are usually assigned
2237 // [0 .. coresPerPkg-1] and threadId's are usually assigned
2238 // [0..threadsPerCore-1], we don't want to make any such assumptions.
2239 //
2240 // For that matter, we don't know what coresPerPkg and threadsPerCore (or the
2241 // total # packages) are at this point - we want to determine that now. We
2242 // only have an upper bound on the first two figures.
2243 unsigned *counts =
2244 (unsigned *)__kmp_allocate((maxIndex + 1) * sizeof(unsigned));
2245 unsigned *maxCt =
2246 (unsigned *)__kmp_allocate((maxIndex + 1) * sizeof(unsigned));
2247 unsigned *totals =
2248 (unsigned *)__kmp_allocate((maxIndex + 1) * sizeof(unsigned));
2249 unsigned *lastId =
2250 (unsigned *)__kmp_allocate((maxIndex + 1) * sizeof(unsigned));
2251
2252 bool assign_thread_ids = false;
2253 unsigned threadIdCt;
2254 unsigned index;
2255
2256restart_radix_check:
2257 threadIdCt = 0;
2258
2259 // Initialize the counter arrays with data from threadInfo[0].
2260 if (assign_thread_ids) {
2261 if (threadInfo[0][threadIdIndex] == UINT_MAX) {
2262 threadInfo[0][threadIdIndex] = threadIdCt++;
2263 } else if (threadIdCt <= threadInfo[0][threadIdIndex]) {
2264 threadIdCt = threadInfo[0][threadIdIndex] + 1;
2265 }
2266 }
2267 for (index = 0; index <= maxIndex; index++) {
2268 counts[index] = 1;
2269 maxCt[index] = 1;
2270 totals[index] = 1;
2271 lastId[index] = threadInfo[0][index];
2272 ;
2273 }
2274
2275 // Run through the rest of the OS procs.
2276 for (i = 1; i < num_avail; i++) {
2277 // Find the most significant index whose id differs from the id for the
2278 // previous OS proc.
2279 for (index = maxIndex; index >= threadIdIndex; index--) {
2280 if (assign_thread_ids && (index == threadIdIndex)) {
2281 // Auto-assign the thread id field if it wasn't specified.
2282 if (threadInfo[i][threadIdIndex] == UINT_MAX) {
2283 threadInfo[i][threadIdIndex] = threadIdCt++;
2284 }
Jonathan Peyton642688b2017-06-01 16:46:36 +00002285 // Apparently the thread id field was specified for some entries and not
Jonathan Peyton30419822017-05-12 18:01:32 +00002286 // others. Start the thread id counter off at the next higher thread id.
2287 else if (threadIdCt <= threadInfo[i][threadIdIndex]) {
2288 threadIdCt = threadInfo[i][threadIdIndex] + 1;
2289 }
2290 }
2291 if (threadInfo[i][index] != lastId[index]) {
2292 // Run through all indices which are less significant, and reset the
2293 // counts to 1. At all levels up to and including index, we need to
2294 // increment the totals and record the last id.
2295 unsigned index2;
2296 for (index2 = threadIdIndex; index2 < index; index2++) {
2297 totals[index2]++;
2298 if (counts[index2] > maxCt[index2]) {
2299 maxCt[index2] = counts[index2];
2300 }
2301 counts[index2] = 1;
2302 lastId[index2] = threadInfo[i][index2];
2303 }
2304 counts[index]++;
2305 totals[index]++;
2306 lastId[index] = threadInfo[i][index];
2307
2308 if (assign_thread_ids && (index > threadIdIndex)) {
2309
2310#if KMP_MIC && REDUCE_TEAM_SIZE
2311 // The default team size is the total #threads in the machine
2312 // minus 1 thread for every core that has 3 or more threads.
2313 teamSize += (threadIdCt <= 2) ? (threadIdCt) : (threadIdCt - 1);
2314#endif // KMP_MIC && REDUCE_TEAM_SIZE
2315
2316 // Restart the thread counter, as we are on a new core.
2317 threadIdCt = 0;
2318
2319 // Auto-assign the thread id field if it wasn't specified.
2320 if (threadInfo[i][threadIdIndex] == UINT_MAX) {
2321 threadInfo[i][threadIdIndex] = threadIdCt++;
2322 }
2323
2324 // Aparrently the thread id field was specified for some entries and
2325 // not others. Start the thread id counter off at the next higher
2326 // thread id.
2327 else if (threadIdCt <= threadInfo[i][threadIdIndex]) {
2328 threadIdCt = threadInfo[i][threadIdIndex] + 1;
2329 }
2330 }
2331 break;
2332 }
2333 }
2334 if (index < threadIdIndex) {
2335 // If thread ids were specified, it is an error if they are not unique.
2336 // Also, check that we waven't already restarted the loop (to be safe -
2337 // shouldn't need to).
2338 if ((threadInfo[i][threadIdIndex] != UINT_MAX) || assign_thread_ids) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00002339 __kmp_free(lastId);
2340 __kmp_free(totals);
2341 __kmp_free(maxCt);
2342 __kmp_free(counts);
2343 CLEANUP_THREAD_INFO;
Jonathan Peyton30419822017-05-12 18:01:32 +00002344 *msg_id = kmp_i18n_str_PhysicalIDsNotUnique;
2345 return -1;
2346 }
2347
2348 // If the thread ids were not specified and we see entries entries that
2349 // are duplicates, start the loop over and assign the thread ids manually.
2350 assign_thread_ids = true;
2351 goto restart_radix_check;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002352 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002353 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002354
Jonathan Peyton30419822017-05-12 18:01:32 +00002355#if KMP_MIC && REDUCE_TEAM_SIZE
2356 // The default team size is the total #threads in the machine
2357 // minus 1 thread for every core that has 3 or more threads.
2358 teamSize += (threadIdCt <= 2) ? (threadIdCt) : (threadIdCt - 1);
2359#endif // KMP_MIC && REDUCE_TEAM_SIZE
2360
2361 for (index = threadIdIndex; index <= maxIndex; index++) {
2362 if (counts[index] > maxCt[index]) {
2363 maxCt[index] = counts[index];
Jim Cownie5e8470a2013-09-27 10:38:44 +00002364 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002365 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002366
Jonathan Peyton30419822017-05-12 18:01:32 +00002367 __kmp_nThreadsPerCore = maxCt[threadIdIndex];
2368 nCoresPerPkg = maxCt[coreIdIndex];
2369 nPackages = totals[pkgIdIndex];
2370
2371 // Check to see if the machine topology is uniform
2372 unsigned prod = totals[maxIndex];
2373 for (index = threadIdIndex; index < maxIndex; index++) {
2374 prod *= maxCt[index];
2375 }
2376 bool uniform = (prod == totals[threadIdIndex]);
2377
2378 // When affinity is off, this routine will still be called to set
2379 // __kmp_ncores, as well as __kmp_nThreadsPerCore, nCoresPerPkg, & nPackages.
2380 // Make sure all these vars are set correctly, and return now if affinity is
2381 // not enabled.
2382 __kmp_ncores = totals[coreIdIndex];
2383
2384 if (__kmp_affinity_verbose) {
2385 if (!KMP_AFFINITY_CAPABLE()) {
2386 KMP_INFORM(AffNotCapableUseCpuinfo, "KMP_AFFINITY");
2387 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
2388 if (uniform) {
2389 KMP_INFORM(Uniform, "KMP_AFFINITY");
2390 } else {
2391 KMP_INFORM(NonUniform, "KMP_AFFINITY");
2392 }
2393 } else {
2394 char buf[KMP_AFFIN_MASK_PRINT_LEN];
2395 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
2396 __kmp_affin_fullMask);
2397 KMP_INFORM(AffCapableUseCpuinfo, "KMP_AFFINITY");
2398 if (__kmp_affinity_respect_mask) {
2399 KMP_INFORM(InitOSProcSetRespect, "KMP_AFFINITY", buf);
2400 } else {
2401 KMP_INFORM(InitOSProcSetNotRespect, "KMP_AFFINITY", buf);
2402 }
2403 KMP_INFORM(AvailableOSProc, "KMP_AFFINITY", __kmp_avail_proc);
2404 if (uniform) {
2405 KMP_INFORM(Uniform, "KMP_AFFINITY");
2406 } else {
2407 KMP_INFORM(NonUniform, "KMP_AFFINITY");
2408 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002409 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002410 kmp_str_buf_t buf;
2411 __kmp_str_buf_init(&buf);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002412
Jonathan Peyton30419822017-05-12 18:01:32 +00002413 __kmp_str_buf_print(&buf, "%d", totals[maxIndex]);
2414 for (index = maxIndex - 1; index >= pkgIdIndex; index--) {
2415 __kmp_str_buf_print(&buf, " x %d", maxCt[index]);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002416 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002417 KMP_INFORM(TopologyExtra, "KMP_AFFINITY", buf.str, maxCt[coreIdIndex],
2418 maxCt[threadIdIndex], __kmp_ncores);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002419
Jonathan Peyton30419822017-05-12 18:01:32 +00002420 __kmp_str_buf_free(&buf);
2421 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002422
Jonathan Peyton30419822017-05-12 18:01:32 +00002423#if KMP_MIC && REDUCE_TEAM_SIZE
2424 // Set the default team size.
2425 if ((__kmp_dflt_team_nth == 0) && (teamSize > 0)) {
2426 __kmp_dflt_team_nth = teamSize;
2427 KA_TRACE(20, ("__kmp_affinity_create_cpuinfo_map: setting "
2428 "__kmp_dflt_team_nth = %d\n",
2429 __kmp_dflt_team_nth));
2430 }
2431#endif // KMP_MIC && REDUCE_TEAM_SIZE
Jim Cownie5e8470a2013-09-27 10:38:44 +00002432
Jonathan Peyton30419822017-05-12 18:01:32 +00002433 KMP_DEBUG_ASSERT(__kmp_pu_os_idx == NULL);
2434 KMP_DEBUG_ASSERT(num_avail == __kmp_avail_proc);
2435 __kmp_pu_os_idx = (int *)__kmp_allocate(sizeof(int) * __kmp_avail_proc);
2436 for (i = 0; i < num_avail; ++i) { // fill the os indices
2437 __kmp_pu_os_idx[i] = threadInfo[i][osIdIndex];
2438 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002439
Jonathan Peyton30419822017-05-12 18:01:32 +00002440 if (__kmp_affinity_type == affinity_none) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00002441 __kmp_free(lastId);
2442 __kmp_free(totals);
2443 __kmp_free(maxCt);
2444 __kmp_free(counts);
2445 CLEANUP_THREAD_INFO;
Jonathan Peyton30419822017-05-12 18:01:32 +00002446 return 0;
2447 }
2448
2449 // Count the number of levels which have more nodes at that level than at the
2450 // parent's level (with there being an implicit root node of the top level).
2451 // This is equivalent to saying that there is at least one node at this level
2452 // which has a sibling. These levels are in the map, and the package level is
2453 // always in the map.
2454 bool *inMap = (bool *)__kmp_allocate((maxIndex + 1) * sizeof(bool));
2455 int level = 0;
2456 for (index = threadIdIndex; index < maxIndex; index++) {
2457 KMP_ASSERT(totals[index] >= totals[index + 1]);
2458 inMap[index] = (totals[index] > totals[index + 1]);
2459 }
2460 inMap[maxIndex] = (totals[maxIndex] > 1);
2461 inMap[pkgIdIndex] = true;
2462
2463 int depth = 0;
2464 for (index = threadIdIndex; index <= maxIndex; index++) {
2465 if (inMap[index]) {
2466 depth++;
2467 }
2468 }
2469 KMP_ASSERT(depth > 0);
2470
2471 // Construct the data structure that is to be returned.
2472 *address2os = (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) * num_avail);
2473 int pkgLevel = -1;
2474 int coreLevel = -1;
2475 int threadLevel = -1;
2476
2477 for (i = 0; i < num_avail; ++i) {
2478 Address addr(depth);
2479 unsigned os = threadInfo[i][osIdIndex];
2480 int src_index;
2481 int dst_index = 0;
2482
2483 for (src_index = maxIndex; src_index >= threadIdIndex; src_index--) {
2484 if (!inMap[src_index]) {
2485 continue;
2486 }
2487 addr.labels[dst_index] = threadInfo[i][src_index];
2488 if (src_index == pkgIdIndex) {
2489 pkgLevel = dst_index;
2490 } else if (src_index == coreIdIndex) {
2491 coreLevel = dst_index;
2492 } else if (src_index == threadIdIndex) {
2493 threadLevel = dst_index;
2494 }
2495 dst_index++;
2496 }
2497 (*address2os)[i] = AddrUnsPair(addr, os);
2498 }
2499
2500 if (__kmp_affinity_gran_levels < 0) {
2501 // Set the granularity level based on what levels are modeled
2502 // in the machine topology map.
2503 unsigned src_index;
2504 __kmp_affinity_gran_levels = 0;
2505 for (src_index = threadIdIndex; src_index <= maxIndex; src_index++) {
2506 if (!inMap[src_index]) {
2507 continue;
2508 }
2509 switch (src_index) {
2510 case threadIdIndex:
2511 if (__kmp_affinity_gran > affinity_gran_thread) {
2512 __kmp_affinity_gran_levels++;
2513 }
2514
2515 break;
2516 case coreIdIndex:
2517 if (__kmp_affinity_gran > affinity_gran_core) {
2518 __kmp_affinity_gran_levels++;
2519 }
2520 break;
2521
2522 case pkgIdIndex:
2523 if (__kmp_affinity_gran > affinity_gran_package) {
2524 __kmp_affinity_gran_levels++;
2525 }
2526 break;
2527 }
2528 }
2529 }
2530
2531 if (__kmp_affinity_verbose) {
2532 __kmp_affinity_print_topology(*address2os, num_avail, depth, pkgLevel,
2533 coreLevel, threadLevel);
2534 }
2535
2536 __kmp_free(inMap);
2537 __kmp_free(lastId);
2538 __kmp_free(totals);
2539 __kmp_free(maxCt);
2540 __kmp_free(counts);
2541 CLEANUP_THREAD_INFO;
2542 return depth;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002543}
2544
Jim Cownie5e8470a2013-09-27 10:38:44 +00002545// Create and return a table of affinity masks, indexed by OS thread ID.
2546// This routine handles OR'ing together all the affinity masks of threads
2547// that are sufficiently close, if granularity > fine.
Jonathan Peyton30419822017-05-12 18:01:32 +00002548static kmp_affin_mask_t *__kmp_create_masks(unsigned *maxIndex,
2549 unsigned *numUnique,
2550 AddrUnsPair *address2os,
2551 unsigned numAddrs) {
2552 // First form a table of affinity masks in order of OS thread id.
2553 unsigned depth;
2554 unsigned maxOsId;
2555 unsigned i;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002556
Jonathan Peyton30419822017-05-12 18:01:32 +00002557 KMP_ASSERT(numAddrs > 0);
2558 depth = address2os[0].first.depth;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002559
Jonathan Peyton30419822017-05-12 18:01:32 +00002560 maxOsId = 0;
Andrey Churbanova5868212017-11-30 11:51:47 +00002561 for (i = numAddrs - 1;; --i) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002562 unsigned osId = address2os[i].second;
2563 if (osId > maxOsId) {
2564 maxOsId = osId;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002565 }
Andrey Churbanova5868212017-11-30 11:51:47 +00002566 if (i == 0)
2567 break;
Jonathan Peyton30419822017-05-12 18:01:32 +00002568 }
2569 kmp_affin_mask_t *osId2Mask;
2570 KMP_CPU_ALLOC_ARRAY(osId2Mask, (maxOsId + 1));
Jim Cownie5e8470a2013-09-27 10:38:44 +00002571
Jonathan Peyton30419822017-05-12 18:01:32 +00002572 // Sort the address2os table according to physical order. Doing so will put
2573 // all threads on the same core/package/node in consecutive locations.
2574 qsort(address2os, numAddrs, sizeof(*address2os),
2575 __kmp_affinity_cmp_Address_labels);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002576
Jonathan Peyton30419822017-05-12 18:01:32 +00002577 KMP_ASSERT(__kmp_affinity_gran_levels >= 0);
2578 if (__kmp_affinity_verbose && (__kmp_affinity_gran_levels > 0)) {
2579 KMP_INFORM(ThreadsMigrate, "KMP_AFFINITY", __kmp_affinity_gran_levels);
2580 }
2581 if (__kmp_affinity_gran_levels >= (int)depth) {
2582 if (__kmp_affinity_verbose ||
2583 (__kmp_affinity_warnings && (__kmp_affinity_type != affinity_none))) {
2584 KMP_WARNING(AffThreadsMayMigrate);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002585 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002586 }
2587
2588 // Run through the table, forming the masks for all threads on each core.
2589 // Threads on the same core will have identical "Address" objects, not
2590 // considering the last level, which must be the thread id. All threads on a
2591 // core will appear consecutively.
2592 unsigned unique = 0;
2593 unsigned j = 0; // index of 1st thread on core
2594 unsigned leader = 0;
2595 Address *leaderAddr = &(address2os[0].first);
2596 kmp_affin_mask_t *sum;
2597 KMP_CPU_ALLOC_ON_STACK(sum);
2598 KMP_CPU_ZERO(sum);
2599 KMP_CPU_SET(address2os[0].second, sum);
2600 for (i = 1; i < numAddrs; i++) {
2601 // If this thread is sufficiently close to the leader (within the
2602 // granularity setting), then set the bit for this os thread in the
2603 // affinity mask for this group, and go on to the next thread.
2604 if (leaderAddr->isClose(address2os[i].first, __kmp_affinity_gran_levels)) {
2605 KMP_CPU_SET(address2os[i].second, sum);
2606 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002607 }
2608
Jonathan Peyton30419822017-05-12 18:01:32 +00002609 // For every thread in this group, copy the mask to the thread's entry in
2610 // the osId2Mask table. Mark the first address as a leader.
Jim Cownie5e8470a2013-09-27 10:38:44 +00002611 for (; j < i; j++) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002612 unsigned osId = address2os[j].second;
2613 KMP_DEBUG_ASSERT(osId <= maxOsId);
2614 kmp_affin_mask_t *mask = KMP_CPU_INDEX(osId2Mask, osId);
2615 KMP_CPU_COPY(mask, sum);
2616 address2os[j].first.leader = (j == leader);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002617 }
2618 unique++;
2619
Jonathan Peyton30419822017-05-12 18:01:32 +00002620 // Start a new mask.
2621 leader = i;
2622 leaderAddr = &(address2os[i].first);
2623 KMP_CPU_ZERO(sum);
2624 KMP_CPU_SET(address2os[i].second, sum);
2625 }
2626
2627 // For every thread in last group, copy the mask to the thread's
2628 // entry in the osId2Mask table.
2629 for (; j < i; j++) {
2630 unsigned osId = address2os[j].second;
2631 KMP_DEBUG_ASSERT(osId <= maxOsId);
2632 kmp_affin_mask_t *mask = KMP_CPU_INDEX(osId2Mask, osId);
2633 KMP_CPU_COPY(mask, sum);
2634 address2os[j].first.leader = (j == leader);
2635 }
2636 unique++;
2637 KMP_CPU_FREE_FROM_STACK(sum);
2638
2639 *maxIndex = maxOsId;
2640 *numUnique = unique;
2641 return osId2Mask;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002642}
2643
Jim Cownie5e8470a2013-09-27 10:38:44 +00002644// Stuff for the affinity proclist parsers. It's easier to declare these vars
2645// as file-static than to try and pass them through the calling sequence of
2646// the recursive-descent OMP_PLACES parser.
Jim Cownie5e8470a2013-09-27 10:38:44 +00002647static kmp_affin_mask_t *newMasks;
2648static int numNewMasks;
2649static int nextNewMask;
2650
Jonathan Peyton30419822017-05-12 18:01:32 +00002651#define ADD_MASK(_mask) \
2652 { \
2653 if (nextNewMask >= numNewMasks) { \
2654 int i; \
2655 numNewMasks *= 2; \
2656 kmp_affin_mask_t *temp; \
2657 KMP_CPU_INTERNAL_ALLOC_ARRAY(temp, numNewMasks); \
2658 for (i = 0; i < numNewMasks / 2; i++) { \
2659 kmp_affin_mask_t *src = KMP_CPU_INDEX(newMasks, i); \
2660 kmp_affin_mask_t *dest = KMP_CPU_INDEX(temp, i); \
2661 KMP_CPU_COPY(dest, src); \
2662 } \
2663 KMP_CPU_INTERNAL_FREE_ARRAY(newMasks, numNewMasks / 2); \
2664 newMasks = temp; \
2665 } \
2666 KMP_CPU_COPY(KMP_CPU_INDEX(newMasks, nextNewMask), (_mask)); \
2667 nextNewMask++; \
2668 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002669
Jonathan Peyton30419822017-05-12 18:01:32 +00002670#define ADD_MASK_OSID(_osId, _osId2Mask, _maxOsId) \
2671 { \
2672 if (((_osId) > _maxOsId) || \
2673 (!KMP_CPU_ISSET((_osId), KMP_CPU_INDEX((_osId2Mask), (_osId))))) { \
2674 if (__kmp_affinity_verbose || \
2675 (__kmp_affinity_warnings && \
2676 (__kmp_affinity_type != affinity_none))) { \
2677 KMP_WARNING(AffIgnoreInvalidProcID, _osId); \
2678 } \
2679 } else { \
2680 ADD_MASK(KMP_CPU_INDEX(_osId2Mask, (_osId))); \
2681 } \
2682 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002683
Jim Cownie5e8470a2013-09-27 10:38:44 +00002684// Re-parse the proclist (for the explicit affinity type), and form the list
2685// of affinity newMasks indexed by gtid.
Jonathan Peyton30419822017-05-12 18:01:32 +00002686static void __kmp_affinity_process_proclist(kmp_affin_mask_t **out_masks,
2687 unsigned int *out_numMasks,
2688 const char *proclist,
2689 kmp_affin_mask_t *osId2Mask,
2690 int maxOsId) {
2691 int i;
2692 const char *scan = proclist;
2693 const char *next = proclist;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002694
Jonathan Peyton30419822017-05-12 18:01:32 +00002695 // We use malloc() for the temporary mask vector, so that we can use
2696 // realloc() to extend it.
2697 numNewMasks = 2;
2698 KMP_CPU_INTERNAL_ALLOC_ARRAY(newMasks, numNewMasks);
2699 nextNewMask = 0;
2700 kmp_affin_mask_t *sumMask;
2701 KMP_CPU_ALLOC(sumMask);
2702 int setSize = 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002703
Jonathan Peyton30419822017-05-12 18:01:32 +00002704 for (;;) {
2705 int start, end, stride;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002706
Jonathan Peyton30419822017-05-12 18:01:32 +00002707 SKIP_WS(scan);
2708 next = scan;
2709 if (*next == '\0') {
2710 break;
2711 }
2712
2713 if (*next == '{') {
2714 int num;
2715 setSize = 0;
2716 next++; // skip '{'
2717 SKIP_WS(next);
2718 scan = next;
2719
2720 // Read the first integer in the set.
2721 KMP_ASSERT2((*next >= '0') && (*next <= '9'), "bad proclist");
2722 SKIP_DIGITS(next);
2723 num = __kmp_str_to_int(scan, *next);
2724 KMP_ASSERT2(num >= 0, "bad explicit proc list");
2725
2726 // Copy the mask for that osId to the sum (union) mask.
2727 if ((num > maxOsId) ||
2728 (!KMP_CPU_ISSET(num, KMP_CPU_INDEX(osId2Mask, num)))) {
2729 if (__kmp_affinity_verbose ||
2730 (__kmp_affinity_warnings &&
2731 (__kmp_affinity_type != affinity_none))) {
2732 KMP_WARNING(AffIgnoreInvalidProcID, num);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002733 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002734 KMP_CPU_ZERO(sumMask);
2735 } else {
2736 KMP_CPU_COPY(sumMask, KMP_CPU_INDEX(osId2Mask, num));
2737 setSize = 1;
2738 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00002739
Jonathan Peyton30419822017-05-12 18:01:32 +00002740 for (;;) {
2741 // Check for end of set.
Jim Cownie5e8470a2013-09-27 10:38:44 +00002742 SKIP_WS(next);
Jonathan Peyton30419822017-05-12 18:01:32 +00002743 if (*next == '}') {
2744 next++; // skip '}'
2745 break;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002746 }
2747
Jim Cownie5e8470a2013-09-27 10:38:44 +00002748 // Skip optional comma.
Jim Cownie5e8470a2013-09-27 10:38:44 +00002749 if (*next == ',') {
Jonathan Peyton30419822017-05-12 18:01:32 +00002750 next++;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002751 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002752 SKIP_WS(next);
2753
2754 // Read the next integer in the set.
Jim Cownie5e8470a2013-09-27 10:38:44 +00002755 scan = next;
Jonathan Peyton30419822017-05-12 18:01:32 +00002756 KMP_ASSERT2((*next >= '0') && (*next <= '9'), "bad explicit proc list");
2757
2758 SKIP_DIGITS(next);
2759 num = __kmp_str_to_int(scan, *next);
2760 KMP_ASSERT2(num >= 0, "bad explicit proc list");
2761
2762 // Add the mask for that osId to the sum mask.
2763 if ((num > maxOsId) ||
2764 (!KMP_CPU_ISSET(num, KMP_CPU_INDEX(osId2Mask, num)))) {
2765 if (__kmp_affinity_verbose ||
2766 (__kmp_affinity_warnings &&
2767 (__kmp_affinity_type != affinity_none))) {
2768 KMP_WARNING(AffIgnoreInvalidProcID, num);
2769 }
2770 } else {
2771 KMP_CPU_UNION(sumMask, KMP_CPU_INDEX(osId2Mask, num));
2772 setSize++;
2773 }
2774 }
2775 if (setSize > 0) {
2776 ADD_MASK(sumMask);
2777 }
2778
2779 SKIP_WS(next);
2780 if (*next == ',') {
2781 next++;
2782 }
2783 scan = next;
2784 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002785 }
2786
Jonathan Peyton30419822017-05-12 18:01:32 +00002787 // Read the first integer.
2788 KMP_ASSERT2((*next >= '0') && (*next <= '9'), "bad explicit proc list");
2789 SKIP_DIGITS(next);
2790 start = __kmp_str_to_int(scan, *next);
2791 KMP_ASSERT2(start >= 0, "bad explicit proc list");
2792 SKIP_WS(next);
2793
2794 // If this isn't a range, then add a mask to the list and go on.
2795 if (*next != '-') {
2796 ADD_MASK_OSID(start, osId2Mask, maxOsId);
2797
2798 // Skip optional comma.
2799 if (*next == ',') {
2800 next++;
2801 }
2802 scan = next;
2803 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002804 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002805
2806 // This is a range. Skip over the '-' and read in the 2nd int.
2807 next++; // skip '-'
2808 SKIP_WS(next);
2809 scan = next;
2810 KMP_ASSERT2((*next >= '0') && (*next <= '9'), "bad explicit proc list");
2811 SKIP_DIGITS(next);
2812 end = __kmp_str_to_int(scan, *next);
2813 KMP_ASSERT2(end >= 0, "bad explicit proc list");
2814
2815 // Check for a stride parameter
2816 stride = 1;
2817 SKIP_WS(next);
2818 if (*next == ':') {
2819 // A stride is specified. Skip over the ':" and read the 3rd int.
2820 int sign = +1;
2821 next++; // skip ':'
2822 SKIP_WS(next);
2823 scan = next;
2824 if (*next == '-') {
2825 sign = -1;
2826 next++;
2827 SKIP_WS(next);
2828 scan = next;
2829 }
2830 KMP_ASSERT2((*next >= '0') && (*next <= '9'), "bad explicit proc list");
2831 SKIP_DIGITS(next);
2832 stride = __kmp_str_to_int(scan, *next);
2833 KMP_ASSERT2(stride >= 0, "bad explicit proc list");
2834 stride *= sign;
Jonathan Peyton01dcf362015-11-30 20:02:59 +00002835 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002836
2837 // Do some range checks.
2838 KMP_ASSERT2(stride != 0, "bad explicit proc list");
2839 if (stride > 0) {
2840 KMP_ASSERT2(start <= end, "bad explicit proc list");
2841 } else {
2842 KMP_ASSERT2(start >= end, "bad explicit proc list");
2843 }
2844 KMP_ASSERT2((end - start) / stride <= 65536, "bad explicit proc list");
2845
2846 // Add the mask for each OS proc # to the list.
2847 if (stride > 0) {
2848 do {
2849 ADD_MASK_OSID(start, osId2Mask, maxOsId);
2850 start += stride;
2851 } while (start <= end);
2852 } else {
2853 do {
2854 ADD_MASK_OSID(start, osId2Mask, maxOsId);
2855 start += stride;
2856 } while (start >= end);
2857 }
2858
2859 // Skip optional comma.
2860 SKIP_WS(next);
2861 if (*next == ',') {
2862 next++;
2863 }
2864 scan = next;
2865 }
2866
2867 *out_numMasks = nextNewMask;
2868 if (nextNewMask == 0) {
2869 *out_masks = NULL;
Jonathan Peyton01dcf362015-11-30 20:02:59 +00002870 KMP_CPU_INTERNAL_FREE_ARRAY(newMasks, numNewMasks);
Jonathan Peyton30419822017-05-12 18:01:32 +00002871 return;
2872 }
2873 KMP_CPU_ALLOC_ARRAY((*out_masks), nextNewMask);
2874 for (i = 0; i < nextNewMask; i++) {
2875 kmp_affin_mask_t *src = KMP_CPU_INDEX(newMasks, i);
2876 kmp_affin_mask_t *dest = KMP_CPU_INDEX((*out_masks), i);
2877 KMP_CPU_COPY(dest, src);
2878 }
2879 KMP_CPU_INTERNAL_FREE_ARRAY(newMasks, numNewMasks);
2880 KMP_CPU_FREE(sumMask);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002881}
2882
Jonathan Peyton30419822017-05-12 18:01:32 +00002883#if OMP_40_ENABLED
Jim Cownie5e8470a2013-09-27 10:38:44 +00002884
2885/*-----------------------------------------------------------------------------
Jim Cownie5e8470a2013-09-27 10:38:44 +00002886Re-parse the OMP_PLACES proc id list, forming the newMasks for the different
2887places. Again, Here is the grammar:
2888
2889place_list := place
2890place_list := place , place_list
2891place := num
2892place := place : num
2893place := place : num : signed
2894place := { subplacelist }
2895place := ! place // (lowest priority)
2896subplace_list := subplace
2897subplace_list := subplace , subplace_list
2898subplace := num
2899subplace := num : num
2900subplace := num : num : signed
2901signed := num
2902signed := + signed
2903signed := - signed
Jim Cownie5e8470a2013-09-27 10:38:44 +00002904-----------------------------------------------------------------------------*/
2905
Jonathan Peyton30419822017-05-12 18:01:32 +00002906static void __kmp_process_subplace_list(const char **scan,
2907 kmp_affin_mask_t *osId2Mask,
2908 int maxOsId, kmp_affin_mask_t *tempMask,
2909 int *setSize) {
2910 const char *next;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002911
Jonathan Peyton30419822017-05-12 18:01:32 +00002912 for (;;) {
2913 int start, count, stride, i;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002914
Jonathan Peyton30419822017-05-12 18:01:32 +00002915 // Read in the starting proc id
Jim Cownie5e8470a2013-09-27 10:38:44 +00002916 SKIP_WS(*scan);
Jonathan Peyton30419822017-05-12 18:01:32 +00002917 KMP_ASSERT2((**scan >= '0') && (**scan <= '9'), "bad explicit places list");
2918 next = *scan;
2919 SKIP_DIGITS(next);
2920 start = __kmp_str_to_int(*scan, *next);
2921 KMP_ASSERT(start >= 0);
2922 *scan = next;
2923
2924 // valid follow sets are ',' ':' and '}'
2925 SKIP_WS(*scan);
2926 if (**scan == '}' || **scan == ',') {
2927 if ((start > maxOsId) ||
2928 (!KMP_CPU_ISSET(start, KMP_CPU_INDEX(osId2Mask, start)))) {
2929 if (__kmp_affinity_verbose ||
2930 (__kmp_affinity_warnings &&
2931 (__kmp_affinity_type != affinity_none))) {
2932 KMP_WARNING(AffIgnoreInvalidProcID, start);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002933 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002934 } else {
2935 KMP_CPU_UNION(tempMask, KMP_CPU_INDEX(osId2Mask, start));
2936 (*setSize)++;
2937 }
2938 if (**scan == '}') {
2939 break;
2940 }
2941 (*scan)++; // skip ','
2942 continue;
2943 }
2944 KMP_ASSERT2(**scan == ':', "bad explicit places list");
2945 (*scan)++; // skip ':'
2946
2947 // Read count parameter
2948 SKIP_WS(*scan);
2949 KMP_ASSERT2((**scan >= '0') && (**scan <= '9'), "bad explicit places list");
2950 next = *scan;
2951 SKIP_DIGITS(next);
2952 count = __kmp_str_to_int(*scan, *next);
2953 KMP_ASSERT(count >= 0);
2954 *scan = next;
2955
2956 // valid follow sets are ',' ':' and '}'
2957 SKIP_WS(*scan);
2958 if (**scan == '}' || **scan == ',') {
2959 for (i = 0; i < count; i++) {
2960 if ((start > maxOsId) ||
2961 (!KMP_CPU_ISSET(start, KMP_CPU_INDEX(osId2Mask, start)))) {
2962 if (__kmp_affinity_verbose ||
2963 (__kmp_affinity_warnings &&
2964 (__kmp_affinity_type != affinity_none))) {
2965 KMP_WARNING(AffIgnoreInvalidProcID, start);
2966 }
2967 break; // don't proliferate warnings for large count
2968 } else {
2969 KMP_CPU_UNION(tempMask, KMP_CPU_INDEX(osId2Mask, start));
2970 start++;
2971 (*setSize)++;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002972 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002973 }
2974 if (**scan == '}') {
2975 break;
2976 }
2977 (*scan)++; // skip ','
2978 continue;
Jim Cownie4cc4bb42014-10-07 16:25:50 +00002979 }
Jonathan Peyton30419822017-05-12 18:01:32 +00002980 KMP_ASSERT2(**scan == ':', "bad explicit places list");
2981 (*scan)++; // skip ':'
Jim Cownie5e8470a2013-09-27 10:38:44 +00002982
Jonathan Peyton30419822017-05-12 18:01:32 +00002983 // Read stride parameter
2984 int sign = +1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002985 for (;;) {
Jonathan Peyton30419822017-05-12 18:01:32 +00002986 SKIP_WS(*scan);
2987 if (**scan == '+') {
2988 (*scan)++; // skip '+'
2989 continue;
2990 }
2991 if (**scan == '-') {
2992 sign *= -1;
2993 (*scan)++; // skip '-'
2994 continue;
2995 }
2996 break;
2997 }
2998 SKIP_WS(*scan);
2999 KMP_ASSERT2((**scan >= '0') && (**scan <= '9'), "bad explicit places list");
3000 next = *scan;
3001 SKIP_DIGITS(next);
3002 stride = __kmp_str_to_int(*scan, *next);
3003 KMP_ASSERT(stride >= 0);
3004 *scan = next;
3005 stride *= sign;
Jim Cownie5e8470a2013-09-27 10:38:44 +00003006
Jonathan Peyton30419822017-05-12 18:01:32 +00003007 // valid follow sets are ',' and '}'
3008 SKIP_WS(*scan);
3009 if (**scan == '}' || **scan == ',') {
3010 for (i = 0; i < count; i++) {
3011 if ((start > maxOsId) ||
3012 (!KMP_CPU_ISSET(start, KMP_CPU_INDEX(osId2Mask, start)))) {
3013 if (__kmp_affinity_verbose ||
3014 (__kmp_affinity_warnings &&
3015 (__kmp_affinity_type != affinity_none))) {
3016 KMP_WARNING(AffIgnoreInvalidProcID, start);
3017 }
3018 break; // don't proliferate warnings for large count
3019 } else {
3020 KMP_CPU_UNION(tempMask, KMP_CPU_INDEX(osId2Mask, start));
3021 start += stride;
3022 (*setSize)++;
Jim Cownie5e8470a2013-09-27 10:38:44 +00003023 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003024 }
3025 if (**scan == '}') {
3026 break;
3027 }
3028 (*scan)++; // skip ','
3029 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00003030 }
3031
Jonathan Peyton30419822017-05-12 18:01:32 +00003032 KMP_ASSERT2(0, "bad explicit places list");
3033 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00003034}
3035
Jonathan Peyton30419822017-05-12 18:01:32 +00003036static void __kmp_process_place(const char **scan, kmp_affin_mask_t *osId2Mask,
3037 int maxOsId, kmp_affin_mask_t *tempMask,
3038 int *setSize) {
3039 const char *next;
3040
3041 // valid follow sets are '{' '!' and num
3042 SKIP_WS(*scan);
3043 if (**scan == '{') {
3044 (*scan)++; // skip '{'
3045 __kmp_process_subplace_list(scan, osId2Mask, maxOsId, tempMask, setSize);
3046 KMP_ASSERT2(**scan == '}', "bad explicit places list");
3047 (*scan)++; // skip '}'
3048 } else if (**scan == '!') {
3049 (*scan)++; // skip '!'
3050 __kmp_process_place(scan, osId2Mask, maxOsId, tempMask, setSize);
3051 KMP_CPU_COMPLEMENT(maxOsId, tempMask);
3052 } else if ((**scan >= '0') && (**scan <= '9')) {
3053 next = *scan;
3054 SKIP_DIGITS(next);
3055 int num = __kmp_str_to_int(*scan, *next);
3056 KMP_ASSERT(num >= 0);
3057 if ((num > maxOsId) ||
3058 (!KMP_CPU_ISSET(num, KMP_CPU_INDEX(osId2Mask, num)))) {
3059 if (__kmp_affinity_verbose ||
3060 (__kmp_affinity_warnings && (__kmp_affinity_type != affinity_none))) {
3061 KMP_WARNING(AffIgnoreInvalidProcID, num);
3062 }
3063 } else {
3064 KMP_CPU_UNION(tempMask, KMP_CPU_INDEX(osId2Mask, num));
3065 (*setSize)++;
3066 }
3067 *scan = next; // skip num
3068 } else {
3069 KMP_ASSERT2(0, "bad explicit places list");
3070 }
3071}
3072
3073// static void
3074void __kmp_affinity_process_placelist(kmp_affin_mask_t **out_masks,
3075 unsigned int *out_numMasks,
3076 const char *placelist,
3077 kmp_affin_mask_t *osId2Mask,
3078 int maxOsId) {
3079 int i, j, count, stride, sign;
3080 const char *scan = placelist;
3081 const char *next = placelist;
3082
3083 numNewMasks = 2;
3084 KMP_CPU_INTERNAL_ALLOC_ARRAY(newMasks, numNewMasks);
3085 nextNewMask = 0;
3086
3087 // tempMask is modified based on the previous or initial
3088 // place to form the current place
3089 // previousMask contains the previous place
3090 kmp_affin_mask_t *tempMask;
3091 kmp_affin_mask_t *previousMask;
3092 KMP_CPU_ALLOC(tempMask);
3093 KMP_CPU_ZERO(tempMask);
3094 KMP_CPU_ALLOC(previousMask);
3095 KMP_CPU_ZERO(previousMask);
3096 int setSize = 0;
3097
3098 for (;;) {
3099 __kmp_process_place(&scan, osId2Mask, maxOsId, tempMask, &setSize);
3100
3101 // valid follow sets are ',' ':' and EOL
3102 SKIP_WS(scan);
3103 if (*scan == '\0' || *scan == ',') {
3104 if (setSize > 0) {
3105 ADD_MASK(tempMask);
3106 }
3107 KMP_CPU_ZERO(tempMask);
3108 setSize = 0;
3109 if (*scan == '\0') {
3110 break;
3111 }
3112 scan++; // skip ','
3113 continue;
3114 }
3115
3116 KMP_ASSERT2(*scan == ':', "bad explicit places list");
3117 scan++; // skip ':'
3118
3119 // Read count parameter
3120 SKIP_WS(scan);
3121 KMP_ASSERT2((*scan >= '0') && (*scan <= '9'), "bad explicit places list");
3122 next = scan;
3123 SKIP_DIGITS(next);
3124 count = __kmp_str_to_int(scan, *next);
3125 KMP_ASSERT(count >= 0);
3126 scan = next;
3127
3128 // valid follow sets are ',' ':' and EOL
3129 SKIP_WS(scan);
3130 if (*scan == '\0' || *scan == ',') {
3131 stride = +1;
3132 } else {
3133 KMP_ASSERT2(*scan == ':', "bad explicit places list");
3134 scan++; // skip ':'
3135
3136 // Read stride parameter
3137 sign = +1;
3138 for (;;) {
3139 SKIP_WS(scan);
3140 if (*scan == '+') {
3141 scan++; // skip '+'
3142 continue;
3143 }
3144 if (*scan == '-') {
3145 sign *= -1;
3146 scan++; // skip '-'
3147 continue;
3148 }
3149 break;
3150 }
3151 SKIP_WS(scan);
3152 KMP_ASSERT2((*scan >= '0') && (*scan <= '9'), "bad explicit places list");
3153 next = scan;
3154 SKIP_DIGITS(next);
3155 stride = __kmp_str_to_int(scan, *next);
3156 KMP_DEBUG_ASSERT(stride >= 0);
3157 scan = next;
3158 stride *= sign;
3159 }
3160
3161 // Add places determined by initial_place : count : stride
3162 for (i = 0; i < count; i++) {
3163 if (setSize == 0) {
3164 break;
3165 }
3166 // Add the current place, then build the next place (tempMask) from that
3167 KMP_CPU_COPY(previousMask, tempMask);
3168 ADD_MASK(previousMask);
3169 KMP_CPU_ZERO(tempMask);
3170 setSize = 0;
3171 KMP_CPU_SET_ITERATE(j, previousMask) {
3172 if (!KMP_CPU_ISSET(j, previousMask)) {
3173 continue;
3174 }
3175 if ((j + stride > maxOsId) || (j + stride < 0) ||
3176 (!KMP_CPU_ISSET(j, __kmp_affin_fullMask)) ||
3177 (!KMP_CPU_ISSET(j + stride,
3178 KMP_CPU_INDEX(osId2Mask, j + stride)))) {
3179 if ((__kmp_affinity_verbose ||
3180 (__kmp_affinity_warnings &&
3181 (__kmp_affinity_type != affinity_none))) &&
3182 i < count - 1) {
3183 KMP_WARNING(AffIgnoreInvalidProcID, j + stride);
3184 }
3185 continue;
3186 }
3187 KMP_CPU_SET(j + stride, tempMask);
3188 setSize++;
3189 }
3190 }
3191 KMP_CPU_ZERO(tempMask);
3192 setSize = 0;
3193
3194 // valid follow sets are ',' and EOL
3195 SKIP_WS(scan);
3196 if (*scan == '\0') {
3197 break;
3198 }
3199 if (*scan == ',') {
3200 scan++; // skip ','
3201 continue;
3202 }
3203
3204 KMP_ASSERT2(0, "bad explicit places list");
3205 }
3206
3207 *out_numMasks = nextNewMask;
3208 if (nextNewMask == 0) {
3209 *out_masks = NULL;
3210 KMP_CPU_INTERNAL_FREE_ARRAY(newMasks, numNewMasks);
3211 return;
3212 }
3213 KMP_CPU_ALLOC_ARRAY((*out_masks), nextNewMask);
3214 KMP_CPU_FREE(tempMask);
3215 KMP_CPU_FREE(previousMask);
3216 for (i = 0; i < nextNewMask; i++) {
3217 kmp_affin_mask_t *src = KMP_CPU_INDEX(newMasks, i);
3218 kmp_affin_mask_t *dest = KMP_CPU_INDEX((*out_masks), i);
3219 KMP_CPU_COPY(dest, src);
3220 }
3221 KMP_CPU_INTERNAL_FREE_ARRAY(newMasks, numNewMasks);
3222}
3223
3224#endif /* OMP_40_ENABLED */
Jim Cownie5e8470a2013-09-27 10:38:44 +00003225
3226#undef ADD_MASK
3227#undef ADD_MASK_OSID
3228
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003229#if KMP_USE_HWLOC
Jonathan Peyton30419822017-05-12 18:01:32 +00003230static int __kmp_hwloc_skip_PUs_obj(hwloc_topology_t t, hwloc_obj_t o) {
3231 // skip PUs descendants of the object o
3232 int skipped = 0;
3233 hwloc_obj_t hT = NULL;
3234 int N = __kmp_hwloc_count_children_by_type(t, o, HWLOC_OBJ_PU, &hT);
3235 for (int i = 0; i < N; ++i) {
3236 KMP_DEBUG_ASSERT(hT);
3237 unsigned idx = hT->os_index;
3238 if (KMP_CPU_ISSET(idx, __kmp_affin_fullMask)) {
3239 KMP_CPU_CLR(idx, __kmp_affin_fullMask);
3240 KC_TRACE(200, ("KMP_HW_SUBSET: skipped proc %d\n", idx));
3241 ++skipped;
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003242 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003243 hT = hwloc_get_next_obj_by_type(t, HWLOC_OBJ_PU, hT);
3244 }
3245 return skipped; // count number of skipped units
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003246}
3247
Jonathan Peyton30419822017-05-12 18:01:32 +00003248static int __kmp_hwloc_obj_has_PUs(hwloc_topology_t t, hwloc_obj_t o) {
3249 // check if obj has PUs present in fullMask
3250 hwloc_obj_t hT = NULL;
3251 int N = __kmp_hwloc_count_children_by_type(t, o, HWLOC_OBJ_PU, &hT);
3252 for (int i = 0; i < N; ++i) {
3253 KMP_DEBUG_ASSERT(hT);
3254 unsigned idx = hT->os_index;
3255 if (KMP_CPU_ISSET(idx, __kmp_affin_fullMask))
3256 return 1; // found PU
3257 hT = hwloc_get_next_obj_by_type(t, HWLOC_OBJ_PU, hT);
3258 }
3259 return 0; // no PUs found
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003260}
3261#endif // KMP_USE_HWLOC
3262
Jonathan Peyton30419822017-05-12 18:01:32 +00003263static void __kmp_apply_thread_places(AddrUnsPair **pAddr, int depth) {
3264 AddrUnsPair *newAddr;
3265 if (__kmp_hws_requested == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003266 goto _exit; // no topology limiting actions requested, exit
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003267#if KMP_USE_HWLOC
Jonathan Peyton30419822017-05-12 18:01:32 +00003268 if (__kmp_affinity_dispatch->get_api_type() == KMPAffinity::HWLOC) {
3269 // Number of subobjects calculated dynamically, this works fine for
3270 // any non-uniform topology.
3271 // L2 cache objects are determined by depth, other objects - by type.
3272 hwloc_topology_t tp = __kmp_hwloc_topology;
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003273 int nS = 0, nN = 0, nL = 0, nC = 0,
3274 nT = 0; // logical index including skipped
3275 int nCr = 0, nTr = 0; // number of requested units
3276 int nPkg = 0, nCo = 0, n_new = 0, n_old = 0, nCpP = 0, nTpC = 0; // counters
Jonathan Peyton30419822017-05-12 18:01:32 +00003277 hwloc_obj_t hT, hC, hL, hN, hS; // hwloc objects (pointers to)
3278 int L2depth, idx;
Jonathan Peytondd4aa9b2015-10-08 17:55:54 +00003279
Jonathan Peyton30419822017-05-12 18:01:32 +00003280 // check support of extensions ----------------------------------
3281 int numa_support = 0, tile_support = 0;
3282 if (__kmp_pu_os_idx)
3283 hT = hwloc_get_pu_obj_by_os_index(tp,
3284 __kmp_pu_os_idx[__kmp_avail_proc - 1]);
3285 else
3286 hT = hwloc_get_obj_by_type(tp, HWLOC_OBJ_PU, __kmp_avail_proc - 1);
3287 if (hT == NULL) { // something's gone wrong
3288 KMP_WARNING(AffHWSubsetUnsupported);
3289 goto _exit;
3290 }
3291 // check NUMA node
3292 hN = hwloc_get_ancestor_obj_by_type(tp, HWLOC_OBJ_NUMANODE, hT);
3293 hS = hwloc_get_ancestor_obj_by_type(tp, HWLOC_OBJ_PACKAGE, hT);
3294 if (hN != NULL && hN->depth > hS->depth) {
3295 numa_support = 1; // 1 in case socket includes node(s)
3296 } else if (__kmp_hws_node.num > 0) {
3297 // don't support sockets inside NUMA node (no such HW found for testing)
3298 KMP_WARNING(AffHWSubsetUnsupported);
3299 goto _exit;
3300 }
3301 // check L2 cahce, get object by depth because of multiple caches
3302 L2depth = hwloc_get_cache_type_depth(tp, 2, HWLOC_OBJ_CACHE_UNIFIED);
3303 hL = hwloc_get_ancestor_obj_by_depth(tp, L2depth, hT);
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003304 if (hL != NULL &&
3305 __kmp_hwloc_count_children_by_type(tp, hL, HWLOC_OBJ_CORE, &hC) > 1) {
Jonathan Peyton30419822017-05-12 18:01:32 +00003306 tile_support = 1; // no sense to count L2 if it includes single core
3307 } else if (__kmp_hws_tile.num > 0) {
3308 if (__kmp_hws_core.num == 0) {
3309 __kmp_hws_core = __kmp_hws_tile; // replace L2 with core
3310 __kmp_hws_tile.num = 0;
3311 } else {
3312 // L2 and core are both requested, but represent same object
3313 KMP_WARNING(AffHWSubsetInvalid);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003314 goto _exit;
3315 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003316 }
3317 // end of check of extensions -----------------------------------
3318
3319 // fill in unset items, validate settings -----------------------
3320 if (__kmp_hws_socket.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003321 __kmp_hws_socket.num = nPackages; // use all available sockets
Jonathan Peyton30419822017-05-12 18:01:32 +00003322 if (__kmp_hws_socket.offset >= nPackages) {
3323 KMP_WARNING(AffHWSubsetManySockets);
3324 goto _exit;
3325 }
3326 if (numa_support) {
Andrey Churbanova5868212017-11-30 11:51:47 +00003327 hN = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003328 int NN = __kmp_hwloc_count_children_by_type(tp, hS, HWLOC_OBJ_NUMANODE,
3329 &hN); // num nodes in socket
3330 if (__kmp_hws_node.num == 0)
3331 __kmp_hws_node.num = NN; // use all available nodes
3332 if (__kmp_hws_node.offset >= NN) {
3333 KMP_WARNING(AffHWSubsetManyNodes);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003334 goto _exit;
3335 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003336 if (tile_support) {
3337 // get num tiles in node
3338 int NL = __kmp_hwloc_count_children_by_depth(tp, hN, L2depth, &hL);
3339 if (__kmp_hws_tile.num == 0) {
3340 __kmp_hws_tile.num = NL + 1;
3341 } // use all available tiles, some node may have more tiles, thus +1
3342 if (__kmp_hws_tile.offset >= NL) {
3343 KMP_WARNING(AffHWSubsetManyTiles);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003344 goto _exit;
3345 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003346 int NC = __kmp_hwloc_count_children_by_type(tp, hL, HWLOC_OBJ_CORE,
3347 &hC); // num cores in tile
3348 if (__kmp_hws_core.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003349 __kmp_hws_core.num = NC; // use all available cores
Jonathan Peyton30419822017-05-12 18:01:32 +00003350 if (__kmp_hws_core.offset >= NC) {
3351 KMP_WARNING(AffHWSubsetManyCores);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003352 goto _exit;
Jonathan Peyton30419822017-05-12 18:01:32 +00003353 }
3354 } else { // tile_support
3355 int NC = __kmp_hwloc_count_children_by_type(tp, hN, HWLOC_OBJ_CORE,
3356 &hC); // num cores in node
3357 if (__kmp_hws_core.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003358 __kmp_hws_core.num = NC; // use all available cores
Jonathan Peyton30419822017-05-12 18:01:32 +00003359 if (__kmp_hws_core.offset >= NC) {
3360 KMP_WARNING(AffHWSubsetManyCores);
3361 goto _exit;
3362 }
3363 } // tile_support
3364 } else { // numa_support
3365 if (tile_support) {
3366 // get num tiles in socket
3367 int NL = __kmp_hwloc_count_children_by_depth(tp, hS, L2depth, &hL);
3368 if (__kmp_hws_tile.num == 0)
3369 __kmp_hws_tile.num = NL; // use all available tiles
3370 if (__kmp_hws_tile.offset >= NL) {
3371 KMP_WARNING(AffHWSubsetManyTiles);
3372 goto _exit;
3373 }
3374 int NC = __kmp_hwloc_count_children_by_type(tp, hL, HWLOC_OBJ_CORE,
3375 &hC); // num cores in tile
3376 if (__kmp_hws_core.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003377 __kmp_hws_core.num = NC; // use all available cores
Jonathan Peyton30419822017-05-12 18:01:32 +00003378 if (__kmp_hws_core.offset >= NC) {
3379 KMP_WARNING(AffHWSubsetManyCores);
3380 goto _exit;
3381 }
3382 } else { // tile_support
3383 int NC = __kmp_hwloc_count_children_by_type(tp, hS, HWLOC_OBJ_CORE,
3384 &hC); // num cores in socket
3385 if (__kmp_hws_core.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003386 __kmp_hws_core.num = NC; // use all available cores
Jonathan Peyton30419822017-05-12 18:01:32 +00003387 if (__kmp_hws_core.offset >= NC) {
3388 KMP_WARNING(AffHWSubsetManyCores);
3389 goto _exit;
3390 }
3391 } // tile_support
3392 }
3393 if (__kmp_hws_proc.num == 0)
3394 __kmp_hws_proc.num = __kmp_nThreadsPerCore; // use all available procs
3395 if (__kmp_hws_proc.offset >= __kmp_nThreadsPerCore) {
3396 KMP_WARNING(AffHWSubsetManyProcs);
3397 goto _exit;
3398 }
3399 // end of validation --------------------------------------------
3400
3401 if (pAddr) // pAddr is NULL in case of affinity_none
3402 newAddr = (AddrUnsPair *)__kmp_allocate(sizeof(AddrUnsPair) *
3403 __kmp_avail_proc); // max size
3404 // main loop to form HW subset ----------------------------------
3405 hS = NULL;
3406 int NP = hwloc_get_nbobjs_by_type(tp, HWLOC_OBJ_PACKAGE);
3407 for (int s = 0; s < NP; ++s) {
3408 // Check Socket -----------------------------------------------
3409 hS = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PACKAGE, hS);
3410 if (!__kmp_hwloc_obj_has_PUs(tp, hS))
3411 continue; // skip socket if all PUs are out of fullMask
3412 ++nS; // only count objects those have PUs in affinity mask
3413 if (nS <= __kmp_hws_socket.offset ||
3414 nS > __kmp_hws_socket.num + __kmp_hws_socket.offset) {
3415 n_old += __kmp_hwloc_skip_PUs_obj(tp, hS); // skip socket
3416 continue; // move to next socket
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003417 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003418 nCr = 0; // count number of cores per socket
3419 // socket requested, go down the topology tree
3420 // check 4 cases: (+NUMA+Tile), (+NUMA-Tile), (-NUMA+Tile), (-NUMA-Tile)
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003421 if (numa_support) {
Jonathan Peyton30419822017-05-12 18:01:32 +00003422 nN = 0;
3423 hN = NULL;
3424 // num nodes in current socket
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003425 int NN =
3426 __kmp_hwloc_count_children_by_type(tp, hS, HWLOC_OBJ_NUMANODE, &hN);
Jonathan Peyton30419822017-05-12 18:01:32 +00003427 for (int n = 0; n < NN; ++n) {
3428 // Check NUMA Node ----------------------------------------
3429 if (!__kmp_hwloc_obj_has_PUs(tp, hN)) {
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003430 hN = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_NUMANODE, hN);
Jonathan Peyton30419822017-05-12 18:01:32 +00003431 continue; // skip node if all PUs are out of fullMask
3432 }
3433 ++nN;
3434 if (nN <= __kmp_hws_node.offset ||
3435 nN > __kmp_hws_node.num + __kmp_hws_node.offset) {
3436 // skip node as not requested
3437 n_old += __kmp_hwloc_skip_PUs_obj(tp, hN); // skip node
3438 hN = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_NUMANODE, hN);
3439 continue; // move to next node
3440 }
3441 // node requested, go down the topology tree
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003442 if (tile_support) {
3443 nL = 0;
3444 hL = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003445 int NL = __kmp_hwloc_count_children_by_depth(tp, hN, L2depth, &hL);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003446 for (int l = 0; l < NL; ++l) {
3447 // Check L2 (tile) ------------------------------------
3448 if (!__kmp_hwloc_obj_has_PUs(tp, hL)) {
3449 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3450 continue; // skip tile if all PUs are out of fullMask
3451 }
3452 ++nL;
3453 if (nL <= __kmp_hws_tile.offset ||
3454 nL > __kmp_hws_tile.num + __kmp_hws_tile.offset) {
3455 // skip tile as not requested
3456 n_old += __kmp_hwloc_skip_PUs_obj(tp, hL); // skip tile
3457 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3458 continue; // move to next tile
3459 }
3460 // tile requested, go down the topology tree
3461 nC = 0;
3462 hC = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003463 // num cores in current tile
3464 int NC = __kmp_hwloc_count_children_by_type(tp, hL,
3465 HWLOC_OBJ_CORE, &hC);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003466 for (int c = 0; c < NC; ++c) {
3467 // Check Core ---------------------------------------
3468 if (!__kmp_hwloc_obj_has_PUs(tp, hC)) {
3469 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3470 continue; // skip core if all PUs are out of fullMask
3471 }
3472 ++nC;
3473 if (nC <= __kmp_hws_core.offset ||
3474 nC > __kmp_hws_core.num + __kmp_hws_core.offset) {
3475 // skip node as not requested
3476 n_old += __kmp_hwloc_skip_PUs_obj(tp, hC); // skip core
3477 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3478 continue; // move to next node
3479 }
3480 // core requested, go down to PUs
3481 nT = 0;
3482 nTr = 0;
3483 hT = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003484 // num procs in current core
3485 int NT = __kmp_hwloc_count_children_by_type(tp, hC,
3486 HWLOC_OBJ_PU, &hT);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003487 for (int t = 0; t < NT; ++t) {
3488 // Check PU ---------------------------------------
3489 idx = hT->os_index;
3490 if (!KMP_CPU_ISSET(idx, __kmp_affin_fullMask)) {
3491 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3492 continue; // skip PU if not in fullMask
3493 }
3494 ++nT;
3495 if (nT <= __kmp_hws_proc.offset ||
3496 nT > __kmp_hws_proc.num + __kmp_hws_proc.offset) {
3497 // skip PU
3498 KMP_CPU_CLR(idx, __kmp_affin_fullMask);
3499 ++n_old;
3500 KC_TRACE(200, ("KMP_HW_SUBSET: skipped proc %d\n", idx));
3501 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3502 continue; // move to next node
3503 }
3504 ++nTr;
3505 if (pAddr) // collect requested thread's data
3506 newAddr[n_new] = (*pAddr)[n_old];
3507 ++n_new;
3508 ++n_old;
3509 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3510 } // threads loop
3511 if (nTr > 0) {
3512 ++nCr; // num cores per socket
3513 ++nCo; // total num cores
3514 if (nTr > nTpC)
3515 nTpC = nTr; // calc max threads per core
3516 }
3517 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3518 } // cores loop
3519 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3520 } // tiles loop
3521 } else { // tile_support
3522 // no tiles, check cores
3523 nC = 0;
3524 hC = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003525 // num cores in current node
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003526 int NC =
3527 __kmp_hwloc_count_children_by_type(tp, hN, HWLOC_OBJ_CORE, &hC);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003528 for (int c = 0; c < NC; ++c) {
Jonathan Peyton30419822017-05-12 18:01:32 +00003529 // Check Core ---------------------------------------
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003530 if (!__kmp_hwloc_obj_has_PUs(tp, hC)) {
3531 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3532 continue; // skip core if all PUs are out of fullMask
3533 }
3534 ++nC;
3535 if (nC <= __kmp_hws_core.offset ||
3536 nC > __kmp_hws_core.num + __kmp_hws_core.offset) {
3537 // skip node as not requested
3538 n_old += __kmp_hwloc_skip_PUs_obj(tp, hC); // skip core
3539 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3540 continue; // move to next node
3541 }
3542 // core requested, go down to PUs
3543 nT = 0;
3544 nTr = 0;
3545 hT = NULL;
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003546 int NT =
3547 __kmp_hwloc_count_children_by_type(tp, hC, HWLOC_OBJ_PU, &hT);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003548 for (int t = 0; t < NT; ++t) {
3549 // Check PU ---------------------------------------
3550 idx = hT->os_index;
3551 if (!KMP_CPU_ISSET(idx, __kmp_affin_fullMask)) {
3552 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3553 continue; // skip PU if not in fullMask
3554 }
3555 ++nT;
3556 if (nT <= __kmp_hws_proc.offset ||
3557 nT > __kmp_hws_proc.num + __kmp_hws_proc.offset) {
3558 // skip PU
3559 KMP_CPU_CLR(idx, __kmp_affin_fullMask);
3560 ++n_old;
3561 KC_TRACE(200, ("KMP_HW_SUBSET: skipped proc %d\n", idx));
3562 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3563 continue; // move to next node
3564 }
3565 ++nTr;
3566 if (pAddr) // collect requested thread's data
3567 newAddr[n_new] = (*pAddr)[n_old];
3568 ++n_new;
3569 ++n_old;
3570 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3571 } // threads loop
3572 if (nTr > 0) {
3573 ++nCr; // num cores per socket
3574 ++nCo; // total num cores
3575 if (nTr > nTpC)
3576 nTpC = nTr; // calc max threads per core
3577 }
3578 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3579 } // cores loop
3580 } // tiles support
Jonathan Peyton30419822017-05-12 18:01:32 +00003581 hN = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_NUMANODE, hN);
3582 } // nodes loop
3583 } else { // numa_support
3584 // no NUMA support
3585 if (tile_support) {
3586 nL = 0;
3587 hL = NULL;
3588 // num tiles in current socket
3589 int NL = __kmp_hwloc_count_children_by_depth(tp, hS, L2depth, &hL);
3590 for (int l = 0; l < NL; ++l) {
3591 // Check L2 (tile) ------------------------------------
3592 if (!__kmp_hwloc_obj_has_PUs(tp, hL)) {
3593 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3594 continue; // skip tile if all PUs are out of fullMask
3595 }
3596 ++nL;
3597 if (nL <= __kmp_hws_tile.offset ||
3598 nL > __kmp_hws_tile.num + __kmp_hws_tile.offset) {
3599 // skip tile as not requested
3600 n_old += __kmp_hwloc_skip_PUs_obj(tp, hL); // skip tile
3601 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3602 continue; // move to next tile
3603 }
3604 // tile requested, go down the topology tree
3605 nC = 0;
3606 hC = NULL;
3607 // num cores per tile
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003608 int NC =
3609 __kmp_hwloc_count_children_by_type(tp, hL, HWLOC_OBJ_CORE, &hC);
Jonathan Peyton30419822017-05-12 18:01:32 +00003610 for (int c = 0; c < NC; ++c) {
3611 // Check Core ---------------------------------------
3612 if (!__kmp_hwloc_obj_has_PUs(tp, hC)) {
3613 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3614 continue; // skip core if all PUs are out of fullMask
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003615 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003616 ++nC;
3617 if (nC <= __kmp_hws_core.offset ||
3618 nC > __kmp_hws_core.num + __kmp_hws_core.offset) {
3619 // skip node as not requested
3620 n_old += __kmp_hwloc_skip_PUs_obj(tp, hC); // skip core
3621 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3622 continue; // move to next node
3623 }
3624 // core requested, go down to PUs
3625 nT = 0;
3626 nTr = 0;
3627 hT = NULL;
3628 // num procs per core
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003629 int NT =
3630 __kmp_hwloc_count_children_by_type(tp, hC, HWLOC_OBJ_PU, &hT);
Jonathan Peyton30419822017-05-12 18:01:32 +00003631 for (int t = 0; t < NT; ++t) {
3632 // Check PU ---------------------------------------
3633 idx = hT->os_index;
3634 if (!KMP_CPU_ISSET(idx, __kmp_affin_fullMask)) {
3635 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3636 continue; // skip PU if not in fullMask
3637 }
3638 ++nT;
3639 if (nT <= __kmp_hws_proc.offset ||
3640 nT > __kmp_hws_proc.num + __kmp_hws_proc.offset) {
3641 // skip PU
3642 KMP_CPU_CLR(idx, __kmp_affin_fullMask);
3643 ++n_old;
3644 KC_TRACE(200, ("KMP_HW_SUBSET: skipped proc %d\n", idx));
3645 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3646 continue; // move to next node
3647 }
3648 ++nTr;
3649 if (pAddr) // collect requested thread's data
3650 newAddr[n_new] = (*pAddr)[n_old];
3651 ++n_new;
3652 ++n_old;
3653 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3654 } // threads loop
3655 if (nTr > 0) {
3656 ++nCr; // num cores per socket
3657 ++nCo; // total num cores
3658 if (nTr > nTpC)
3659 nTpC = nTr; // calc max threads per core
3660 }
3661 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3662 } // cores loop
3663 hL = hwloc_get_next_obj_by_depth(tp, L2depth, hL);
3664 } // tiles loop
3665 } else { // tile_support
3666 // no tiles, check cores
3667 nC = 0;
3668 hC = NULL;
3669 // num cores in socket
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003670 int NC =
3671 __kmp_hwloc_count_children_by_type(tp, hS, HWLOC_OBJ_CORE, &hC);
Jonathan Peyton30419822017-05-12 18:01:32 +00003672 for (int c = 0; c < NC; ++c) {
3673 // Check Core -------------------------------------------
3674 if (!__kmp_hwloc_obj_has_PUs(tp, hC)) {
3675 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3676 continue; // skip core if all PUs are out of fullMask
3677 }
3678 ++nC;
3679 if (nC <= __kmp_hws_core.offset ||
3680 nC > __kmp_hws_core.num + __kmp_hws_core.offset) {
3681 // skip node as not requested
3682 n_old += __kmp_hwloc_skip_PUs_obj(tp, hC); // skip core
3683 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3684 continue; // move to next node
3685 }
3686 // core requested, go down to PUs
3687 nT = 0;
3688 nTr = 0;
3689 hT = NULL;
3690 // num procs per core
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003691 int NT =
3692 __kmp_hwloc_count_children_by_type(tp, hC, HWLOC_OBJ_PU, &hT);
Jonathan Peyton30419822017-05-12 18:01:32 +00003693 for (int t = 0; t < NT; ++t) {
3694 // Check PU ---------------------------------------
3695 idx = hT->os_index;
3696 if (!KMP_CPU_ISSET(idx, __kmp_affin_fullMask)) {
3697 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3698 continue; // skip PU if not in fullMask
3699 }
3700 ++nT;
3701 if (nT <= __kmp_hws_proc.offset ||
3702 nT > __kmp_hws_proc.num + __kmp_hws_proc.offset) {
3703 // skip PU
3704 KMP_CPU_CLR(idx, __kmp_affin_fullMask);
3705 ++n_old;
3706 KC_TRACE(200, ("KMP_HW_SUBSET: skipped proc %d\n", idx));
3707 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3708 continue; // move to next node
3709 }
3710 ++nTr;
3711 if (pAddr) // collect requested thread's data
3712 newAddr[n_new] = (*pAddr)[n_old];
3713 ++n_new;
3714 ++n_old;
3715 hT = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_PU, hT);
3716 } // threads loop
3717 if (nTr > 0) {
3718 ++nCr; // num cores per socket
3719 ++nCo; // total num cores
3720 if (nTr > nTpC)
3721 nTpC = nTr; // calc max threads per core
3722 }
3723 hC = hwloc_get_next_obj_by_type(tp, HWLOC_OBJ_CORE, hC);
3724 } // cores loop
3725 } // tiles support
3726 } // numa_support
3727 if (nCr > 0) { // found cores?
3728 ++nPkg; // num sockets
3729 if (nCr > nCpP)
3730 nCpP = nCr; // calc max cores per socket
3731 }
3732 } // sockets loop
3733
3734 // check the subset is valid
3735 KMP_DEBUG_ASSERT(n_old == __kmp_avail_proc);
3736 KMP_DEBUG_ASSERT(nPkg > 0);
3737 KMP_DEBUG_ASSERT(nCpP > 0);
3738 KMP_DEBUG_ASSERT(nTpC > 0);
3739 KMP_DEBUG_ASSERT(nCo > 0);
3740 KMP_DEBUG_ASSERT(nPkg <= nPackages);
3741 KMP_DEBUG_ASSERT(nCpP <= nCoresPerPkg);
3742 KMP_DEBUG_ASSERT(nTpC <= __kmp_nThreadsPerCore);
3743 KMP_DEBUG_ASSERT(nCo <= __kmp_ncores);
3744
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003745 nPackages = nPkg; // correct num sockets
3746 nCoresPerPkg = nCpP; // correct num cores per socket
Jonathan Peyton30419822017-05-12 18:01:32 +00003747 __kmp_nThreadsPerCore = nTpC; // correct num threads per core
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003748 __kmp_avail_proc = n_new; // correct num procs
3749 __kmp_ncores = nCo; // correct num cores
Jonathan Peyton30419822017-05-12 18:01:32 +00003750 // hwloc topology method end
3751 } else
3752#endif // KMP_USE_HWLOC
3753 {
3754 int n_old = 0, n_new = 0, proc_num = 0;
3755 if (__kmp_hws_node.num > 0 || __kmp_hws_tile.num > 0) {
3756 KMP_WARNING(AffHWSubsetNoHWLOC);
3757 goto _exit;
3758 }
3759 if (__kmp_hws_socket.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003760 __kmp_hws_socket.num = nPackages; // use all available sockets
Jonathan Peyton30419822017-05-12 18:01:32 +00003761 if (__kmp_hws_core.num == 0)
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003762 __kmp_hws_core.num = nCoresPerPkg; // use all available cores
3763 if (__kmp_hws_proc.num == 0 || __kmp_hws_proc.num > __kmp_nThreadsPerCore)
Jonathan Peyton30419822017-05-12 18:01:32 +00003764 __kmp_hws_proc.num = __kmp_nThreadsPerCore; // use all HW contexts
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003765 if (!__kmp_affinity_uniform_topology()) {
3766 KMP_WARNING(AffHWSubsetNonUniform);
Jonathan Peyton30419822017-05-12 18:01:32 +00003767 goto _exit; // don't support non-uniform topology
3768 }
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003769 if (depth > 3) {
3770 KMP_WARNING(AffHWSubsetNonThreeLevel);
Jonathan Peyton30419822017-05-12 18:01:32 +00003771 goto _exit; // don't support not-3-level topology
3772 }
3773 if (__kmp_hws_socket.offset + __kmp_hws_socket.num > nPackages) {
3774 KMP_WARNING(AffHWSubsetManySockets);
3775 goto _exit;
3776 }
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003777 if (__kmp_hws_core.offset + __kmp_hws_core.num > nCoresPerPkg) {
3778 KMP_WARNING(AffHWSubsetManyCores);
Jonathan Peyton30419822017-05-12 18:01:32 +00003779 goto _exit;
3780 }
3781 // Form the requested subset
3782 if (pAddr) // pAddr is NULL in case of affinity_none
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003783 newAddr = (AddrUnsPair *)__kmp_allocate(
3784 sizeof(AddrUnsPair) * __kmp_hws_socket.num * __kmp_hws_core.num *
3785 __kmp_hws_proc.num);
Jonathan Peyton30419822017-05-12 18:01:32 +00003786 for (int i = 0; i < nPackages; ++i) {
3787 if (i < __kmp_hws_socket.offset ||
3788 i >= __kmp_hws_socket.offset + __kmp_hws_socket.num) {
3789 // skip not-requested socket
3790 n_old += nCoresPerPkg * __kmp_nThreadsPerCore;
3791 if (__kmp_pu_os_idx != NULL) {
3792 // walk through skipped socket
3793 for (int j = 0; j < nCoresPerPkg; ++j) {
3794 for (int k = 0; k < __kmp_nThreadsPerCore; ++k) {
3795 KMP_CPU_CLR(__kmp_pu_os_idx[proc_num], __kmp_affin_fullMask);
3796 ++proc_num;
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00003797 }
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003798 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003799 }
3800 } else {
3801 // walk through requested socket
3802 for (int j = 0; j < nCoresPerPkg; ++j) {
3803 if (j < __kmp_hws_core.offset ||
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003804 j >= __kmp_hws_core.offset +
3805 __kmp_hws_core.num) { // skip not-requested core
3806 n_old += __kmp_nThreadsPerCore;
3807 if (__kmp_pu_os_idx != NULL) {
3808 for (int k = 0; k < __kmp_nThreadsPerCore; ++k) {
3809 KMP_CPU_CLR(__kmp_pu_os_idx[proc_num], __kmp_affin_fullMask);
3810 ++proc_num;
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003811 }
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003812 }
3813 } else {
Jonathan Peyton30419822017-05-12 18:01:32 +00003814 // walk through requested core
3815 for (int k = 0; k < __kmp_nThreadsPerCore; ++k) {
3816 if (k < __kmp_hws_proc.num) {
3817 if (pAddr) // collect requested thread's data
3818 newAddr[n_new] = (*pAddr)[n_old];
3819 n_new++;
3820 } else {
3821 if (__kmp_pu_os_idx != NULL)
3822 KMP_CPU_CLR(__kmp_pu_os_idx[proc_num], __kmp_affin_fullMask);
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003823 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003824 n_old++;
3825 ++proc_num;
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00003826 }
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003827 }
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00003828 }
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003829 }
Andrey Churbanov4a9a8922017-04-13 17:15:07 +00003830 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003831 KMP_DEBUG_ASSERT(n_old == nPackages * nCoresPerPkg * __kmp_nThreadsPerCore);
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003832 KMP_DEBUG_ASSERT(n_new ==
3833 __kmp_hws_socket.num * __kmp_hws_core.num *
3834 __kmp_hws_proc.num);
3835 nPackages = __kmp_hws_socket.num; // correct nPackages
3836 nCoresPerPkg = __kmp_hws_core.num; // correct nCoresPerPkg
Jonathan Peyton30419822017-05-12 18:01:32 +00003837 __kmp_nThreadsPerCore = __kmp_hws_proc.num; // correct __kmp_nThreadsPerCore
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003838 __kmp_avail_proc = n_new; // correct avail_proc
Jonathan Peyton30419822017-05-12 18:01:32 +00003839 __kmp_ncores = nPackages * __kmp_hws_core.num; // correct ncores
3840 } // non-hwloc topology method
3841 if (pAddr) {
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003842 __kmp_free(*pAddr);
3843 *pAddr = newAddr; // replace old topology with new one
Jonathan Peyton30419822017-05-12 18:01:32 +00003844 }
3845 if (__kmp_affinity_verbose) {
3846 char m[KMP_AFFIN_MASK_PRINT_LEN];
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003847 __kmp_affinity_print_mask(m, KMP_AFFIN_MASK_PRINT_LEN,
3848 __kmp_affin_fullMask);
Jonathan Peyton30419822017-05-12 18:01:32 +00003849 if (__kmp_affinity_respect_mask) {
3850 KMP_INFORM(InitOSProcSetRespect, "KMP_HW_SUBSET", m);
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00003851 } else {
Jonathan Peyton30419822017-05-12 18:01:32 +00003852 KMP_INFORM(InitOSProcSetNotRespect, "KMP_HW_SUBSET", m);
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00003853 }
Jonathan Peyton30419822017-05-12 18:01:32 +00003854 KMP_INFORM(AvailableOSProc, "KMP_HW_SUBSET", __kmp_avail_proc);
3855 kmp_str_buf_t buf;
3856 __kmp_str_buf_init(&buf);
3857 __kmp_str_buf_print(&buf, "%d", nPackages);
3858 KMP_INFORM(TopologyExtra, "KMP_HW_SUBSET", buf.str, nCoresPerPkg,
3859 __kmp_nThreadsPerCore, __kmp_ncores);
3860 __kmp_str_buf_free(&buf);
3861 }
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003862_exit:
Jonathan Peyton30419822017-05-12 18:01:32 +00003863 if (__kmp_pu_os_idx != NULL) {
3864 __kmp_free(__kmp_pu_os_idx);
3865 __kmp_pu_os_idx = NULL;
3866 }
3867}
3868
3869// This function figures out the deepest level at which there is at least one
3870// cluster/core with more than one processing unit bound to it.
3871static int __kmp_affinity_find_core_level(const AddrUnsPair *address2os,
3872 int nprocs, int bottom_level) {
3873 int core_level = 0;
3874
3875 for (int i = 0; i < nprocs; i++) {
3876 for (int j = bottom_level; j > 0; j--) {
3877 if (address2os[i].first.labels[j] > 0) {
3878 if (core_level < (j - 1)) {
3879 core_level = j - 1;
3880 }
3881 }
3882 }
3883 }
3884 return core_level;
3885}
3886
3887// This function counts number of clusters/cores at given level.
3888static int __kmp_affinity_compute_ncores(const AddrUnsPair *address2os,
3889 int nprocs, int bottom_level,
3890 int core_level) {
3891 int ncores = 0;
3892 int i, j;
3893
3894 j = bottom_level;
3895 for (i = 0; i < nprocs; i++) {
3896 for (j = bottom_level; j > core_level; j--) {
3897 if ((i + 1) < nprocs) {
3898 if (address2os[i + 1].first.labels[j] > 0) {
3899 break;
3900 }
3901 }
3902 }
3903 if (j == core_level) {
3904 ncores++;
3905 }
3906 }
3907 if (j > core_level) {
3908 // In case of ( nprocs < __kmp_avail_proc ) we may end too deep and miss one
3909 // core. May occur when called from __kmp_affinity_find_core().
3910 ncores++;
3911 }
3912 return ncores;
3913}
3914
3915// This function finds to which cluster/core given processing unit is bound.
3916static int __kmp_affinity_find_core(const AddrUnsPair *address2os, int proc,
3917 int bottom_level, int core_level) {
3918 return __kmp_affinity_compute_ncores(address2os, proc + 1, bottom_level,
Andrey Churbanovc47afcd2017-07-03 11:24:08 +00003919 core_level) -
3920 1;
Jonathan Peyton30419822017-05-12 18:01:32 +00003921}
3922
3923// This function finds maximal number of processing units bound to a
3924// cluster/core at given level.
3925static int __kmp_affinity_max_proc_per_core(const AddrUnsPair *address2os,
3926 int nprocs, int bottom_level,
3927 int core_level) {
3928 int maxprocpercore = 0;
3929
3930 if (core_level < bottom_level) {
3931 for (int i = 0; i < nprocs; i++) {
3932 int percore = address2os[i].first.labels[core_level + 1] + 1;
3933
3934 if (percore > maxprocpercore) {
3935 maxprocpercore = percore;
3936 }
3937 }
3938 } else {
3939 maxprocpercore = 1;
3940 }
3941 return maxprocpercore;
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00003942}
Jim Cownie5e8470a2013-09-27 10:38:44 +00003943
3944static AddrUnsPair *address2os = NULL;
Jonathan Peyton30419822017-05-12 18:01:32 +00003945static int *procarr = NULL;
3946static int __kmp_aff_depth = 0;
Jim Cownie5e8470a2013-09-27 10:38:44 +00003947
Jonathan Peyton30419822017-05-12 18:01:32 +00003948#define KMP_EXIT_AFF_NONE \
3949 KMP_ASSERT(__kmp_affinity_type == affinity_none); \
3950 KMP_ASSERT(address2os == NULL); \
3951 __kmp_apply_thread_places(NULL, 0); \
3952 return;
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00003953
Jonathan Peyton30419822017-05-12 18:01:32 +00003954static int __kmp_affinity_cmp_Address_child_num(const void *a, const void *b) {
Andrey Churbanov5ba90c72017-07-17 09:03:14 +00003955 const Address *aa = &(((const AddrUnsPair *)a)->first);
3956 const Address *bb = &(((const AddrUnsPair *)b)->first);
Jonathan Peyton30419822017-05-12 18:01:32 +00003957 unsigned depth = aa->depth;
3958 unsigned i;
3959 KMP_DEBUG_ASSERT(depth == bb->depth);
3960 KMP_DEBUG_ASSERT((unsigned)__kmp_affinity_compact <= depth);
3961 KMP_DEBUG_ASSERT(__kmp_affinity_compact >= 0);
3962 for (i = 0; i < (unsigned)__kmp_affinity_compact; i++) {
3963 int j = depth - i - 1;
3964 if (aa->childNums[j] < bb->childNums[j])
3965 return -1;
3966 if (aa->childNums[j] > bb->childNums[j])
3967 return 1;
3968 }
3969 for (; i < depth; i++) {
3970 int j = i - __kmp_affinity_compact;
3971 if (aa->childNums[j] < bb->childNums[j])
3972 return -1;
3973 if (aa->childNums[j] > bb->childNums[j])
3974 return 1;
3975 }
3976 return 0;
Jonathan Peytone6abe522016-09-02 20:54:58 +00003977}
3978
Jonathan Peyton30419822017-05-12 18:01:32 +00003979static void __kmp_aux_affinity_initialize(void) {
3980 if (__kmp_affinity_masks != NULL) {
3981 KMP_ASSERT(__kmp_affin_fullMask != NULL);
3982 return;
3983 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00003984
Jonathan Peyton30419822017-05-12 18:01:32 +00003985 // Create the "full" mask - this defines all of the processors that we
3986 // consider to be in the machine model. If respect is set, then it is the
3987 // initialization thread's affinity mask. Otherwise, it is all processors that
3988 // we know about on the machine.
3989 if (__kmp_affin_fullMask == NULL) {
3990 KMP_CPU_ALLOC(__kmp_affin_fullMask);
3991 }
3992 if (KMP_AFFINITY_CAPABLE()) {
3993 if (__kmp_affinity_respect_mask) {
3994 __kmp_get_system_affinity(__kmp_affin_fullMask, TRUE);
Jim Cownie5e8470a2013-09-27 10:38:44 +00003995
Jonathan Peyton30419822017-05-12 18:01:32 +00003996 // Count the number of available processors.
3997 unsigned i;
3998 __kmp_avail_proc = 0;
3999 KMP_CPU_SET_ITERATE(i, __kmp_affin_fullMask) {
4000 if (!KMP_CPU_ISSET(i, __kmp_affin_fullMask)) {
4001 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004002 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004003 __kmp_avail_proc++;
4004 }
4005 if (__kmp_avail_proc > __kmp_xproc) {
4006 if (__kmp_affinity_verbose ||
4007 (__kmp_affinity_warnings &&
4008 (__kmp_affinity_type != affinity_none))) {
4009 KMP_WARNING(ErrorInitializeAffinity);
Jim Cownie5e8470a2013-09-27 10:38:44 +00004010 }
4011 __kmp_affinity_type = affinity_none;
Andrey Churbanov1f037e42015-03-10 09:15:26 +00004012 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +00004013 return;
Jonathan Peyton30419822017-05-12 18:01:32 +00004014 }
4015 } else {
4016 __kmp_affinity_entire_machine_mask(__kmp_affin_fullMask);
4017 __kmp_avail_proc = __kmp_xproc;
4018 }
4019 }
4020
Jonathan Peyton64249502017-11-29 22:27:18 +00004021 if (__kmp_affinity_gran == affinity_gran_tile &&
4022 // check if user's request is valid
4023 __kmp_affinity_dispatch->get_api_type() == KMPAffinity::NATIVE_OS) {
4024 KMP_WARNING(AffTilesNoHWLOC, "KMP_AFFINITY");
4025 __kmp_affinity_gran = affinity_gran_package;
4026 }
4027
Jonathan Peyton30419822017-05-12 18:01:32 +00004028 int depth = -1;
4029 kmp_i18n_id_t msg_id = kmp_i18n_null;
4030
4031 // For backward compatibility, setting KMP_CPUINFO_FILE =>
4032 // KMP_TOPOLOGY_METHOD=cpuinfo
4033 if ((__kmp_cpuinfo_file != NULL) &&
4034 (__kmp_affinity_top_method == affinity_top_method_all)) {
4035 __kmp_affinity_top_method = affinity_top_method_cpuinfo;
4036 }
4037
4038 if (__kmp_affinity_top_method == affinity_top_method_all) {
4039 // In the default code path, errors are not fatal - we just try using
4040 // another method. We only emit a warning message if affinity is on, or the
4041 // verbose flag is set, an the nowarnings flag was not set.
4042 const char *file_name = NULL;
4043 int line = 0;
4044#if KMP_USE_HWLOC
4045 if (depth < 0 &&
4046 __kmp_affinity_dispatch->get_api_type() == KMPAffinity::HWLOC) {
4047 if (__kmp_affinity_verbose) {
4048 KMP_INFORM(AffUsingHwloc, "KMP_AFFINITY");
4049 }
4050 if (!__kmp_hwloc_error) {
4051 depth = __kmp_affinity_create_hwloc_map(&address2os, &msg_id);
4052 if (depth == 0) {
4053 KMP_EXIT_AFF_NONE;
4054 } else if (depth < 0 && __kmp_affinity_verbose) {
4055 KMP_INFORM(AffIgnoringHwloc, "KMP_AFFINITY");
4056 }
4057 } else if (__kmp_affinity_verbose) {
4058 KMP_INFORM(AffIgnoringHwloc, "KMP_AFFINITY");
4059 }
4060 }
4061#endif
4062
4063#if KMP_ARCH_X86 || KMP_ARCH_X86_64
4064
4065 if (depth < 0) {
4066 if (__kmp_affinity_verbose) {
4067 KMP_INFORM(AffInfoStr, "KMP_AFFINITY", KMP_I18N_STR(Decodingx2APIC));
4068 }
4069
4070 file_name = NULL;
4071 depth = __kmp_affinity_create_x2apicid_map(&address2os, &msg_id);
4072 if (depth == 0) {
4073 KMP_EXIT_AFF_NONE;
4074 }
4075
4076 if (depth < 0) {
4077 if (__kmp_affinity_verbose) {
4078 if (msg_id != kmp_i18n_null) {
4079 KMP_INFORM(AffInfoStrStr, "KMP_AFFINITY",
4080 __kmp_i18n_catgets(msg_id),
4081 KMP_I18N_STR(DecodingLegacyAPIC));
4082 } else {
4083 KMP_INFORM(AffInfoStr, "KMP_AFFINITY",
4084 KMP_I18N_STR(DecodingLegacyAPIC));
4085 }
4086 }
4087
4088 file_name = NULL;
4089 depth = __kmp_affinity_create_apicid_map(&address2os, &msg_id);
4090 if (depth == 0) {
4091 KMP_EXIT_AFF_NONE;
4092 }
4093 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004094 }
4095
Jonathan Peyton30419822017-05-12 18:01:32 +00004096#endif /* KMP_ARCH_X86 || KMP_ARCH_X86_64 */
Jim Cownie5e8470a2013-09-27 10:38:44 +00004097
Jonathan Peyton30419822017-05-12 18:01:32 +00004098#if KMP_OS_LINUX
Jim Cownie5e8470a2013-09-27 10:38:44 +00004099
Jonathan Peyton30419822017-05-12 18:01:32 +00004100 if (depth < 0) {
4101 if (__kmp_affinity_verbose) {
4102 if (msg_id != kmp_i18n_null) {
4103 KMP_INFORM(AffStrParseFilename, "KMP_AFFINITY",
4104 __kmp_i18n_catgets(msg_id), "/proc/cpuinfo");
Jim Cownie5e8470a2013-09-27 10:38:44 +00004105 } else {
Jonathan Peyton30419822017-05-12 18:01:32 +00004106 KMP_INFORM(AffParseFilename, "KMP_AFFINITY", "/proc/cpuinfo");
Jim Cownie5e8470a2013-09-27 10:38:44 +00004107 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004108 }
4109
4110 FILE *f = fopen("/proc/cpuinfo", "r");
4111 if (f == NULL) {
4112 msg_id = kmp_i18n_str_CantOpenCpuinfo;
4113 } else {
4114 file_name = "/proc/cpuinfo";
4115 depth =
4116 __kmp_affinity_create_cpuinfo_map(&address2os, &line, &msg_id, f);
4117 fclose(f);
4118 if (depth == 0) {
4119 KMP_EXIT_AFF_NONE;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004120 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004121 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004122 }
4123
Jonathan Peyton30419822017-05-12 18:01:32 +00004124#endif /* KMP_OS_LINUX */
4125
4126#if KMP_GROUP_AFFINITY
4127
4128 if ((depth < 0) && (__kmp_num_proc_groups > 1)) {
4129 if (__kmp_affinity_verbose) {
4130 KMP_INFORM(AffWindowsProcGroupMap, "KMP_AFFINITY");
4131 }
4132
4133 depth = __kmp_affinity_create_proc_group_map(&address2os, &msg_id);
4134 KMP_ASSERT(depth != 0);
4135 }
4136
4137#endif /* KMP_GROUP_AFFINITY */
4138
4139 if (depth < 0) {
4140 if (__kmp_affinity_verbose && (msg_id != kmp_i18n_null)) {
4141 if (file_name == NULL) {
4142 KMP_INFORM(UsingFlatOS, __kmp_i18n_catgets(msg_id));
4143 } else if (line == 0) {
4144 KMP_INFORM(UsingFlatOSFile, file_name, __kmp_i18n_catgets(msg_id));
4145 } else {
4146 KMP_INFORM(UsingFlatOSFileLine, file_name, line,
4147 __kmp_i18n_catgets(msg_id));
4148 }
4149 }
4150 // FIXME - print msg if msg_id = kmp_i18n_null ???
4151
4152 file_name = "";
4153 depth = __kmp_affinity_create_flat_map(&address2os, &msg_id);
4154 if (depth == 0) {
4155 KMP_EXIT_AFF_NONE;
4156 }
4157 KMP_ASSERT(depth > 0);
4158 KMP_ASSERT(address2os != NULL);
4159 }
4160 }
4161
Andrey Churbanova5868212017-11-30 11:51:47 +00004162#if KMP_USE_HWLOC
4163 else if (__kmp_affinity_top_method == affinity_top_method_hwloc) {
4164 KMP_ASSERT(__kmp_affinity_dispatch->get_api_type() == KMPAffinity::HWLOC);
4165 if (__kmp_affinity_verbose) {
4166 KMP_INFORM(AffUsingHwloc, "KMP_AFFINITY");
4167 }
4168 depth = __kmp_affinity_create_hwloc_map(&address2os, &msg_id);
4169 if (depth == 0) {
4170 KMP_EXIT_AFF_NONE;
4171 }
4172 }
4173#endif // KMP_USE_HWLOC
4174
Jonathan Peyton30419822017-05-12 18:01:32 +00004175// If the user has specified that a paricular topology discovery method is to be
4176// used, then we abort if that method fails. The exception is group affinity,
4177// which might have been implicitly set.
4178
4179#if KMP_ARCH_X86 || KMP_ARCH_X86_64
4180
4181 else if (__kmp_affinity_top_method == affinity_top_method_x2apicid) {
4182 if (__kmp_affinity_verbose) {
4183 KMP_INFORM(AffInfoStr, "KMP_AFFINITY", KMP_I18N_STR(Decodingx2APIC));
4184 }
4185
4186 depth = __kmp_affinity_create_x2apicid_map(&address2os, &msg_id);
4187 if (depth == 0) {
4188 KMP_EXIT_AFF_NONE;
4189 }
4190 if (depth < 0) {
4191 KMP_ASSERT(msg_id != kmp_i18n_null);
4192 KMP_FATAL(MsgExiting, __kmp_i18n_catgets(msg_id));
4193 }
4194 } else if (__kmp_affinity_top_method == affinity_top_method_apicid) {
4195 if (__kmp_affinity_verbose) {
4196 KMP_INFORM(AffInfoStr, "KMP_AFFINITY", KMP_I18N_STR(DecodingLegacyAPIC));
4197 }
4198
4199 depth = __kmp_affinity_create_apicid_map(&address2os, &msg_id);
4200 if (depth == 0) {
4201 KMP_EXIT_AFF_NONE;
4202 }
4203 if (depth < 0) {
4204 KMP_ASSERT(msg_id != kmp_i18n_null);
4205 KMP_FATAL(MsgExiting, __kmp_i18n_catgets(msg_id));
4206 }
4207 }
4208
4209#endif /* KMP_ARCH_X86 || KMP_ARCH_X86_64 */
4210
4211 else if (__kmp_affinity_top_method == affinity_top_method_cpuinfo) {
4212 const char *filename;
4213 if (__kmp_cpuinfo_file != NULL) {
4214 filename = __kmp_cpuinfo_file;
4215 } else {
4216 filename = "/proc/cpuinfo";
4217 }
4218
4219 if (__kmp_affinity_verbose) {
4220 KMP_INFORM(AffParseFilename, "KMP_AFFINITY", filename);
4221 }
4222
4223 FILE *f = fopen(filename, "r");
4224 if (f == NULL) {
4225 int code = errno;
4226 if (__kmp_cpuinfo_file != NULL) {
Jonathan Peyton6a393f72017-09-05 15:43:58 +00004227 __kmp_fatal(KMP_MSG(CantOpenFileForReading, filename), KMP_ERR(code),
4228 KMP_HNT(NameComesFrom_CPUINFO_FILE), __kmp_msg_null);
Jonathan Peyton30419822017-05-12 18:01:32 +00004229 } else {
Jonathan Peyton6a393f72017-09-05 15:43:58 +00004230 __kmp_fatal(KMP_MSG(CantOpenFileForReading, filename), KMP_ERR(code),
4231 __kmp_msg_null);
Jonathan Peyton30419822017-05-12 18:01:32 +00004232 }
4233 }
4234 int line = 0;
4235 depth = __kmp_affinity_create_cpuinfo_map(&address2os, &line, &msg_id, f);
4236 fclose(f);
4237 if (depth < 0) {
4238 KMP_ASSERT(msg_id != kmp_i18n_null);
4239 if (line > 0) {
4240 KMP_FATAL(FileLineMsgExiting, filename, line,
4241 __kmp_i18n_catgets(msg_id));
4242 } else {
4243 KMP_FATAL(FileMsgExiting, filename, __kmp_i18n_catgets(msg_id));
4244 }
4245 }
4246 if (__kmp_affinity_type == affinity_none) {
4247 KMP_ASSERT(depth == 0);
4248 KMP_EXIT_AFF_NONE;
4249 }
4250 }
4251
4252#if KMP_GROUP_AFFINITY
4253
4254 else if (__kmp_affinity_top_method == affinity_top_method_group) {
4255 if (__kmp_affinity_verbose) {
4256 KMP_INFORM(AffWindowsProcGroupMap, "KMP_AFFINITY");
4257 }
4258
4259 depth = __kmp_affinity_create_proc_group_map(&address2os, &msg_id);
4260 KMP_ASSERT(depth != 0);
4261 if (depth < 0) {
4262 KMP_ASSERT(msg_id != kmp_i18n_null);
4263 KMP_FATAL(MsgExiting, __kmp_i18n_catgets(msg_id));
4264 }
4265 }
4266
4267#endif /* KMP_GROUP_AFFINITY */
4268
4269 else if (__kmp_affinity_top_method == affinity_top_method_flat) {
4270 if (__kmp_affinity_verbose) {
4271 KMP_INFORM(AffUsingFlatOS, "KMP_AFFINITY");
4272 }
4273
4274 depth = __kmp_affinity_create_flat_map(&address2os, &msg_id);
4275 if (depth == 0) {
4276 KMP_EXIT_AFF_NONE;
4277 }
4278 // should not fail
4279 KMP_ASSERT(depth > 0);
4280 KMP_ASSERT(address2os != NULL);
4281 }
4282
Jonathan Peyton30419822017-05-12 18:01:32 +00004283 if (address2os == NULL) {
4284 if (KMP_AFFINITY_CAPABLE() &&
4285 (__kmp_affinity_verbose ||
4286 (__kmp_affinity_warnings && (__kmp_affinity_type != affinity_none)))) {
4287 KMP_WARNING(ErrorInitializeAffinity);
4288 }
4289 __kmp_affinity_type = affinity_none;
4290 KMP_AFFINITY_DISABLE();
4291 return;
4292 }
4293
Andrey Churbanova5868212017-11-30 11:51:47 +00004294 if (__kmp_affinity_gran == affinity_gran_tile
4295#if KMP_USE_HWLOC
4296 && __kmp_tile_depth == 0
4297#endif
4298 ) {
Jonathan Peyton64249502017-11-29 22:27:18 +00004299 // tiles requested but not detected, warn user on this
4300 KMP_WARNING(AffTilesNoTiles, "KMP_AFFINITY");
4301 }
4302
Jonathan Peyton30419822017-05-12 18:01:32 +00004303 __kmp_apply_thread_places(&address2os, depth);
4304
4305 // Create the table of masks, indexed by thread Id.
4306 unsigned maxIndex;
4307 unsigned numUnique;
4308 kmp_affin_mask_t *osId2Mask =
4309 __kmp_create_masks(&maxIndex, &numUnique, address2os, __kmp_avail_proc);
4310 if (__kmp_affinity_gran_levels == 0) {
4311 KMP_DEBUG_ASSERT((int)numUnique == __kmp_avail_proc);
4312 }
4313
4314 // Set the childNums vector in all Address objects. This must be done before
4315 // we can sort using __kmp_affinity_cmp_Address_child_num(), which takes into
4316 // account the setting of __kmp_affinity_compact.
4317 __kmp_affinity_assign_child_nums(address2os, __kmp_avail_proc);
4318
4319 switch (__kmp_affinity_type) {
4320
4321 case affinity_explicit:
4322 KMP_DEBUG_ASSERT(__kmp_affinity_proclist != NULL);
4323#if OMP_40_ENABLED
4324 if (__kmp_nested_proc_bind.bind_types[0] == proc_bind_intel)
4325#endif
4326 {
4327 __kmp_affinity_process_proclist(
4328 &__kmp_affinity_masks, &__kmp_affinity_num_masks,
4329 __kmp_affinity_proclist, osId2Mask, maxIndex);
4330 }
4331#if OMP_40_ENABLED
4332 else {
4333 __kmp_affinity_process_placelist(
4334 &__kmp_affinity_masks, &__kmp_affinity_num_masks,
4335 __kmp_affinity_proclist, osId2Mask, maxIndex);
4336 }
4337#endif
4338 if (__kmp_affinity_num_masks == 0) {
4339 if (__kmp_affinity_verbose ||
4340 (__kmp_affinity_warnings && (__kmp_affinity_type != affinity_none))) {
4341 KMP_WARNING(AffNoValidProcID);
4342 }
4343 __kmp_affinity_type = affinity_none;
4344 return;
4345 }
4346 break;
4347
4348 // The other affinity types rely on sorting the Addresses according to some
4349 // permutation of the machine topology tree. Set __kmp_affinity_compact and
4350 // __kmp_affinity_offset appropriately, then jump to a common code fragment
4351 // to do the sort and create the array of affinity masks.
4352
4353 case affinity_logical:
4354 __kmp_affinity_compact = 0;
4355 if (__kmp_affinity_offset) {
4356 __kmp_affinity_offset =
4357 __kmp_nThreadsPerCore * __kmp_affinity_offset % __kmp_avail_proc;
4358 }
4359 goto sortAddresses;
4360
4361 case affinity_physical:
4362 if (__kmp_nThreadsPerCore > 1) {
4363 __kmp_affinity_compact = 1;
4364 if (__kmp_affinity_compact >= depth) {
4365 __kmp_affinity_compact = 0;
4366 }
4367 } else {
4368 __kmp_affinity_compact = 0;
4369 }
4370 if (__kmp_affinity_offset) {
4371 __kmp_affinity_offset =
4372 __kmp_nThreadsPerCore * __kmp_affinity_offset % __kmp_avail_proc;
4373 }
4374 goto sortAddresses;
4375
4376 case affinity_scatter:
4377 if (__kmp_affinity_compact >= depth) {
4378 __kmp_affinity_compact = 0;
4379 } else {
4380 __kmp_affinity_compact = depth - 1 - __kmp_affinity_compact;
4381 }
4382 goto sortAddresses;
4383
4384 case affinity_compact:
4385 if (__kmp_affinity_compact >= depth) {
4386 __kmp_affinity_compact = depth - 1;
4387 }
4388 goto sortAddresses;
4389
4390 case affinity_balanced:
4391 if (depth <= 1) {
4392 if (__kmp_affinity_verbose || __kmp_affinity_warnings) {
4393 KMP_WARNING(AffBalancedNotAvail, "KMP_AFFINITY");
4394 }
4395 __kmp_affinity_type = affinity_none;
4396 return;
4397 } else if (__kmp_affinity_uniform_topology()) {
4398 break;
4399 } else { // Non-uniform topology
4400
4401 // Save the depth for further usage
4402 __kmp_aff_depth = depth;
4403
4404 int core_level = __kmp_affinity_find_core_level(
4405 address2os, __kmp_avail_proc, depth - 1);
4406 int ncores = __kmp_affinity_compute_ncores(address2os, __kmp_avail_proc,
4407 depth - 1, core_level);
4408 int maxprocpercore = __kmp_affinity_max_proc_per_core(
4409 address2os, __kmp_avail_proc, depth - 1, core_level);
4410
4411 int nproc = ncores * maxprocpercore;
4412 if ((nproc < 2) || (nproc < __kmp_avail_proc)) {
4413 if (__kmp_affinity_verbose || __kmp_affinity_warnings) {
4414 KMP_WARNING(AffBalancedNotAvail, "KMP_AFFINITY");
4415 }
4416 __kmp_affinity_type = affinity_none;
4417 return;
4418 }
4419
4420 procarr = (int *)__kmp_allocate(sizeof(int) * nproc);
4421 for (int i = 0; i < nproc; i++) {
4422 procarr[i] = -1;
4423 }
4424
4425 int lastcore = -1;
4426 int inlastcore = 0;
4427 for (int i = 0; i < __kmp_avail_proc; i++) {
4428 int proc = address2os[i].second;
4429 int core =
4430 __kmp_affinity_find_core(address2os, i, depth - 1, core_level);
4431
4432 if (core == lastcore) {
4433 inlastcore++;
4434 } else {
4435 inlastcore = 0;
4436 }
4437 lastcore = core;
4438
4439 procarr[core * maxprocpercore + inlastcore] = proc;
4440 }
4441
4442 break;
4443 }
4444
4445 sortAddresses:
4446 // Allocate the gtid->affinity mask table.
4447 if (__kmp_affinity_dups) {
4448 __kmp_affinity_num_masks = __kmp_avail_proc;
4449 } else {
4450 __kmp_affinity_num_masks = numUnique;
4451 }
4452
4453#if OMP_40_ENABLED
4454 if ((__kmp_nested_proc_bind.bind_types[0] != proc_bind_intel) &&
4455 (__kmp_affinity_num_places > 0) &&
4456 ((unsigned)__kmp_affinity_num_places < __kmp_affinity_num_masks)) {
4457 __kmp_affinity_num_masks = __kmp_affinity_num_places;
4458 }
4459#endif
4460
4461 KMP_CPU_ALLOC_ARRAY(__kmp_affinity_masks, __kmp_affinity_num_masks);
4462
4463 // Sort the address2os table according to the current setting of
4464 // __kmp_affinity_compact, then fill out __kmp_affinity_masks.
4465 qsort(address2os, __kmp_avail_proc, sizeof(*address2os),
4466 __kmp_affinity_cmp_Address_child_num);
4467 {
4468 int i;
4469 unsigned j;
4470 for (i = 0, j = 0; i < __kmp_avail_proc; i++) {
4471 if ((!__kmp_affinity_dups) && (!address2os[i].first.leader)) {
4472 continue;
4473 }
4474 unsigned osId = address2os[i].second;
4475 kmp_affin_mask_t *src = KMP_CPU_INDEX(osId2Mask, osId);
4476 kmp_affin_mask_t *dest = KMP_CPU_INDEX(__kmp_affinity_masks, j);
4477 KMP_ASSERT(KMP_CPU_ISSET(osId, src));
4478 KMP_CPU_COPY(dest, src);
4479 if (++j >= __kmp_affinity_num_masks) {
4480 break;
4481 }
4482 }
4483 KMP_DEBUG_ASSERT(j == __kmp_affinity_num_masks);
4484 }
4485 break;
4486
4487 default:
4488 KMP_ASSERT2(0, "Unexpected affinity setting");
4489 }
4490
4491 KMP_CPU_FREE_ARRAY(osId2Mask, maxIndex + 1);
4492 machine_hierarchy.init(address2os, __kmp_avail_proc);
Jim Cownie5e8470a2013-09-27 10:38:44 +00004493}
Jonathan Peytonfd7cc422016-06-21 15:54:38 +00004494#undef KMP_EXIT_AFF_NONE
Jim Cownie5e8470a2013-09-27 10:38:44 +00004495
Jonathan Peyton30419822017-05-12 18:01:32 +00004496void __kmp_affinity_initialize(void) {
4497 // Much of the code above was written assumming that if a machine was not
4498 // affinity capable, then __kmp_affinity_type == affinity_none. We now
4499 // explicitly represent this as __kmp_affinity_type == affinity_disabled.
4500 // There are too many checks for __kmp_affinity_type == affinity_none
4501 // in this code. Instead of trying to change them all, check if
4502 // __kmp_affinity_type == affinity_disabled, and if so, slam it with
4503 // affinity_none, call the real initialization routine, then restore
4504 // __kmp_affinity_type to affinity_disabled.
4505 int disabled = (__kmp_affinity_type == affinity_disabled);
4506 if (!KMP_AFFINITY_CAPABLE()) {
4507 KMP_ASSERT(disabled);
4508 }
4509 if (disabled) {
4510 __kmp_affinity_type = affinity_none;
4511 }
4512 __kmp_aux_affinity_initialize();
4513 if (disabled) {
4514 __kmp_affinity_type = affinity_disabled;
4515 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004516}
4517
Jonathan Peyton30419822017-05-12 18:01:32 +00004518void __kmp_affinity_uninitialize(void) {
4519 if (__kmp_affinity_masks != NULL) {
4520 KMP_CPU_FREE_ARRAY(__kmp_affinity_masks, __kmp_affinity_num_masks);
4521 __kmp_affinity_masks = NULL;
4522 }
4523 if (__kmp_affin_fullMask != NULL) {
4524 KMP_CPU_FREE(__kmp_affin_fullMask);
4525 __kmp_affin_fullMask = NULL;
4526 }
4527 __kmp_affinity_num_masks = 0;
4528 __kmp_affinity_type = affinity_default;
4529#if OMP_40_ENABLED
4530 __kmp_affinity_num_places = 0;
4531#endif
4532 if (__kmp_affinity_proclist != NULL) {
4533 __kmp_free(__kmp_affinity_proclist);
4534 __kmp_affinity_proclist = NULL;
4535 }
4536 if (address2os != NULL) {
4537 __kmp_free(address2os);
4538 address2os = NULL;
4539 }
4540 if (procarr != NULL) {
4541 __kmp_free(procarr);
4542 procarr = NULL;
4543 }
4544#if KMP_USE_HWLOC
4545 if (__kmp_hwloc_topology != NULL) {
4546 hwloc_topology_destroy(__kmp_hwloc_topology);
4547 __kmp_hwloc_topology = NULL;
4548 }
4549#endif
4550 KMPAffinity::destroy_api();
Jim Cownie5e8470a2013-09-27 10:38:44 +00004551}
4552
Jonathan Peyton30419822017-05-12 18:01:32 +00004553void __kmp_affinity_set_init_mask(int gtid, int isa_root) {
4554 if (!KMP_AFFINITY_CAPABLE()) {
4555 return;
4556 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004557
Jonathan Peyton30419822017-05-12 18:01:32 +00004558 kmp_info_t *th = (kmp_info_t *)TCR_SYNC_PTR(__kmp_threads[gtid]);
4559 if (th->th.th_affin_mask == NULL) {
4560 KMP_CPU_ALLOC(th->th.th_affin_mask);
4561 } else {
4562 KMP_CPU_ZERO(th->th.th_affin_mask);
4563 }
4564
4565 // Copy the thread mask to the kmp_info_t strucuture. If
4566 // __kmp_affinity_type == affinity_none, copy the "full" mask, i.e. one that
4567 // has all of the OS proc ids set, or if __kmp_affinity_respect_mask is set,
4568 // then the full mask is the same as the mask of the initialization thread.
4569 kmp_affin_mask_t *mask;
4570 int i;
4571
4572#if OMP_40_ENABLED
4573 if (__kmp_nested_proc_bind.bind_types[0] == proc_bind_intel)
4574#endif
4575 {
4576 if ((__kmp_affinity_type == affinity_none) ||
4577 (__kmp_affinity_type == affinity_balanced)) {
4578#if KMP_GROUP_AFFINITY
4579 if (__kmp_num_proc_groups > 1) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00004580 return;
Jonathan Peyton30419822017-05-12 18:01:32 +00004581 }
4582#endif
4583 KMP_ASSERT(__kmp_affin_fullMask != NULL);
4584 i = KMP_PLACE_ALL;
4585 mask = __kmp_affin_fullMask;
4586 } else {
4587 KMP_DEBUG_ASSERT(__kmp_affinity_num_masks > 0);
4588 i = (gtid + __kmp_affinity_offset) % __kmp_affinity_num_masks;
4589 mask = KMP_CPU_INDEX(__kmp_affinity_masks, i);
Jim Cownie5e8470a2013-09-27 10:38:44 +00004590 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004591 }
4592#if OMP_40_ENABLED
4593 else {
4594 if ((!isa_root) ||
4595 (__kmp_nested_proc_bind.bind_types[0] == proc_bind_false)) {
4596#if KMP_GROUP_AFFINITY
4597 if (__kmp_num_proc_groups > 1) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00004598 return;
Jonathan Peyton30419822017-05-12 18:01:32 +00004599 }
4600#endif
4601 KMP_ASSERT(__kmp_affin_fullMask != NULL);
4602 i = KMP_PLACE_ALL;
4603 mask = __kmp_affin_fullMask;
4604 } else {
4605 // int i = some hash function or just a counter that doesn't
4606 // always start at 0. Use gtid for now.
4607 KMP_DEBUG_ASSERT(__kmp_affinity_num_masks > 0);
4608 i = (gtid + __kmp_affinity_offset) % __kmp_affinity_num_masks;
4609 mask = KMP_CPU_INDEX(__kmp_affinity_masks, i);
Jim Cownie5e8470a2013-09-27 10:38:44 +00004610 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004611 }
4612#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +00004613
Jonathan Peyton30419822017-05-12 18:01:32 +00004614#if OMP_40_ENABLED
4615 th->th.th_current_place = i;
4616 if (isa_root) {
4617 th->th.th_new_place = i;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004618 th->th.th_first_place = 0;
4619 th->th.th_last_place = __kmp_affinity_num_masks - 1;
Jonathan Peyton30419822017-05-12 18:01:32 +00004620 }
Jim Cownie4cc4bb42014-10-07 16:25:50 +00004621
Jonathan Peyton30419822017-05-12 18:01:32 +00004622 if (i == KMP_PLACE_ALL) {
4623 KA_TRACE(100, ("__kmp_affinity_set_init_mask: binding T#%d to all places\n",
4624 gtid));
4625 } else {
4626 KA_TRACE(100, ("__kmp_affinity_set_init_mask: binding T#%d to place %d\n",
4627 gtid, i));
4628 }
4629#else
4630 if (i == -1) {
4631 KA_TRACE(
4632 100,
4633 ("__kmp_affinity_set_init_mask: binding T#%d to __kmp_affin_fullMask\n",
4634 gtid));
4635 } else {
4636 KA_TRACE(100, ("__kmp_affinity_set_init_mask: binding T#%d to mask %d\n",
4637 gtid, i));
4638 }
4639#endif /* OMP_40_ENABLED */
Jim Cownie5e8470a2013-09-27 10:38:44 +00004640
Jonathan Peyton30419822017-05-12 18:01:32 +00004641 KMP_CPU_COPY(th->th.th_affin_mask, mask);
Jim Cownie5e8470a2013-09-27 10:38:44 +00004642
Jonathan Peyton30419822017-05-12 18:01:32 +00004643 if (__kmp_affinity_verbose) {
4644 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4645 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4646 th->th.th_affin_mask);
4647 KMP_INFORM(BoundToOSProcSet, "KMP_AFFINITY", (kmp_int32)getpid(),
4648 __kmp_gettid(), gtid, buf);
4649 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004650
Jonathan Peyton30419822017-05-12 18:01:32 +00004651#if KMP_OS_WINDOWS
4652 // On Windows* OS, the process affinity mask might have changed. If the user
4653 // didn't request affinity and this call fails, just continue silently.
4654 // See CQ171393.
4655 if (__kmp_affinity_type == affinity_none) {
4656 __kmp_set_system_affinity(th->th.th_affin_mask, FALSE);
4657 } else
Jonathan Peyton7c465a52016-09-12 19:02:53 +00004658#endif
Jonathan Peyton30419822017-05-12 18:01:32 +00004659 __kmp_set_system_affinity(th->th.th_affin_mask, TRUE);
Jonathan Peyton7c465a52016-09-12 19:02:53 +00004660}
4661
Jonathan Peyton30419822017-05-12 18:01:32 +00004662#if OMP_40_ENABLED
Jim Cownie5e8470a2013-09-27 10:38:44 +00004663
Jonathan Peyton30419822017-05-12 18:01:32 +00004664void __kmp_affinity_set_place(int gtid) {
4665 int retval;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004666
Jonathan Peyton30419822017-05-12 18:01:32 +00004667 if (!KMP_AFFINITY_CAPABLE()) {
4668 return;
4669 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004670
Jonathan Peyton30419822017-05-12 18:01:32 +00004671 kmp_info_t *th = (kmp_info_t *)TCR_SYNC_PTR(__kmp_threads[gtid]);
4672
4673 KA_TRACE(100, ("__kmp_affinity_set_place: binding T#%d to place %d (current "
4674 "place = %d)\n",
4675 gtid, th->th.th_new_place, th->th.th_current_place));
4676
4677 // Check that the new place is within this thread's partition.
4678 KMP_DEBUG_ASSERT(th->th.th_affin_mask != NULL);
4679 KMP_ASSERT(th->th.th_new_place >= 0);
4680 KMP_ASSERT((unsigned)th->th.th_new_place <= __kmp_affinity_num_masks);
4681 if (th->th.th_first_place <= th->th.th_last_place) {
4682 KMP_ASSERT((th->th.th_new_place >= th->th.th_first_place) &&
4683 (th->th.th_new_place <= th->th.th_last_place));
4684 } else {
4685 KMP_ASSERT((th->th.th_new_place <= th->th.th_first_place) ||
4686 (th->th.th_new_place >= th->th.th_last_place));
4687 }
4688
4689 // Copy the thread mask to the kmp_info_t strucuture,
4690 // and set this thread's affinity.
4691 kmp_affin_mask_t *mask =
4692 KMP_CPU_INDEX(__kmp_affinity_masks, th->th.th_new_place);
4693 KMP_CPU_COPY(th->th.th_affin_mask, mask);
4694 th->th.th_current_place = th->th.th_new_place;
4695
4696 if (__kmp_affinity_verbose) {
4697 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4698 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4699 th->th.th_affin_mask);
4700 KMP_INFORM(BoundToOSProcSet, "OMP_PROC_BIND", (kmp_int32)getpid(),
4701 __kmp_gettid(), gtid, buf);
4702 }
4703 __kmp_set_system_affinity(th->th.th_affin_mask, TRUE);
4704}
4705
4706#endif /* OMP_40_ENABLED */
4707
4708int __kmp_aux_set_affinity(void **mask) {
4709 int gtid;
4710 kmp_info_t *th;
4711 int retval;
4712
4713 if (!KMP_AFFINITY_CAPABLE()) {
4714 return -1;
4715 }
4716
4717 gtid = __kmp_entry_gtid();
4718 KA_TRACE(1000, ; {
4719 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4720 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4721 (kmp_affin_mask_t *)(*mask));
4722 __kmp_debug_printf(
4723 "kmp_set_affinity: setting affinity mask for thread %d = %s\n", gtid,
4724 buf);
4725 });
4726
4727 if (__kmp_env_consistency_check) {
4728 if ((mask == NULL) || (*mask == NULL)) {
4729 KMP_FATAL(AffinityInvalidMask, "kmp_set_affinity");
4730 } else {
4731 unsigned proc;
4732 int num_procs = 0;
4733
4734 KMP_CPU_SET_ITERATE(proc, ((kmp_affin_mask_t *)(*mask))) {
4735 if (!KMP_CPU_ISSET(proc, __kmp_affin_fullMask)) {
4736 KMP_FATAL(AffinityInvalidMask, "kmp_set_affinity");
Jim Cownie5e8470a2013-09-27 10:38:44 +00004737 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004738 if (!KMP_CPU_ISSET(proc, (kmp_affin_mask_t *)(*mask))) {
4739 continue;
4740 }
4741 num_procs++;
4742 }
4743 if (num_procs == 0) {
4744 KMP_FATAL(AffinityInvalidMask, "kmp_set_affinity");
4745 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004746
Jonathan Peyton30419822017-05-12 18:01:32 +00004747#if KMP_GROUP_AFFINITY
4748 if (__kmp_get_proc_group((kmp_affin_mask_t *)(*mask)) < 0) {
4749 KMP_FATAL(AffinityInvalidMask, "kmp_set_affinity");
4750 }
4751#endif /* KMP_GROUP_AFFINITY */
Jim Cownie5e8470a2013-09-27 10:38:44 +00004752 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004753 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004754
Jonathan Peyton30419822017-05-12 18:01:32 +00004755 th = __kmp_threads[gtid];
4756 KMP_DEBUG_ASSERT(th->th.th_affin_mask != NULL);
4757 retval = __kmp_set_system_affinity((kmp_affin_mask_t *)(*mask), FALSE);
4758 if (retval == 0) {
4759 KMP_CPU_COPY(th->th.th_affin_mask, (kmp_affin_mask_t *)(*mask));
4760 }
4761
4762#if OMP_40_ENABLED
4763 th->th.th_current_place = KMP_PLACE_UNDEFINED;
4764 th->th.th_new_place = KMP_PLACE_UNDEFINED;
4765 th->th.th_first_place = 0;
4766 th->th.th_last_place = __kmp_affinity_num_masks - 1;
4767
4768 // Turn off 4.0 affinity for the current tread at this parallel level.
4769 th->th.th_current_task->td_icvs.proc_bind = proc_bind_false;
4770#endif
4771
4772 return retval;
4773}
4774
4775int __kmp_aux_get_affinity(void **mask) {
4776 int gtid;
4777 int retval;
4778 kmp_info_t *th;
4779
4780 if (!KMP_AFFINITY_CAPABLE()) {
4781 return -1;
4782 }
4783
4784 gtid = __kmp_entry_gtid();
4785 th = __kmp_threads[gtid];
4786 KMP_DEBUG_ASSERT(th->th.th_affin_mask != NULL);
4787
4788 KA_TRACE(1000, ; {
4789 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4790 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4791 th->th.th_affin_mask);
4792 __kmp_printf("kmp_get_affinity: stored affinity mask for thread %d = %s\n",
4793 gtid, buf);
4794 });
4795
4796 if (__kmp_env_consistency_check) {
4797 if ((mask == NULL) || (*mask == NULL)) {
4798 KMP_FATAL(AffinityInvalidMask, "kmp_get_affinity");
4799 }
4800 }
4801
4802#if !KMP_OS_WINDOWS
4803
4804 retval = __kmp_get_system_affinity((kmp_affin_mask_t *)(*mask), FALSE);
4805 KA_TRACE(1000, ; {
4806 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4807 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4808 (kmp_affin_mask_t *)(*mask));
4809 __kmp_printf("kmp_get_affinity: system affinity mask for thread %d = %s\n",
4810 gtid, buf);
4811 });
4812 return retval;
4813
4814#else
4815
4816 KMP_CPU_COPY((kmp_affin_mask_t *)(*mask), th->th.th_affin_mask);
4817 return 0;
4818
4819#endif /* KMP_OS_WINDOWS */
4820}
4821
4822int __kmp_aux_get_affinity_max_proc() {
4823 if (!KMP_AFFINITY_CAPABLE()) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00004824 return 0;
Jonathan Peyton30419822017-05-12 18:01:32 +00004825 }
4826#if KMP_GROUP_AFFINITY
4827 if (__kmp_num_proc_groups > 1) {
4828 return (int)(__kmp_num_proc_groups * sizeof(DWORD_PTR) * CHAR_BIT);
4829 }
4830#endif
4831 return __kmp_xproc;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004832}
4833
Jonathan Peyton30419822017-05-12 18:01:32 +00004834int __kmp_aux_set_affinity_mask_proc(int proc, void **mask) {
4835 int retval;
Jim Cownie5e8470a2013-09-27 10:38:44 +00004836
Jonathan Peyton30419822017-05-12 18:01:32 +00004837 if (!KMP_AFFINITY_CAPABLE()) {
4838 return -1;
4839 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004840
Jonathan Peyton30419822017-05-12 18:01:32 +00004841 KA_TRACE(1000, ; {
4842 int gtid = __kmp_entry_gtid();
4843 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4844 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4845 (kmp_affin_mask_t *)(*mask));
4846 __kmp_debug_printf("kmp_set_affinity_mask_proc: setting proc %d in "
4847 "affinity mask for thread %d = %s\n",
4848 proc, gtid, buf);
4849 });
4850
4851 if (__kmp_env_consistency_check) {
4852 if ((mask == NULL) || (*mask == NULL)) {
4853 KMP_FATAL(AffinityInvalidMask, "kmp_set_affinity_mask_proc");
Jim Cownie5e8470a2013-09-27 10:38:44 +00004854 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004855 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004856
Jonathan Peyton30419822017-05-12 18:01:32 +00004857 if ((proc < 0) || (proc >= __kmp_aux_get_affinity_max_proc())) {
4858 return -1;
4859 }
4860 if (!KMP_CPU_ISSET(proc, __kmp_affin_fullMask)) {
4861 return -2;
4862 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004863
Jonathan Peyton30419822017-05-12 18:01:32 +00004864 KMP_CPU_SET(proc, (kmp_affin_mask_t *)(*mask));
4865 return 0;
4866}
4867
4868int __kmp_aux_unset_affinity_mask_proc(int proc, void **mask) {
4869 int retval;
4870
4871 if (!KMP_AFFINITY_CAPABLE()) {
4872 return -1;
4873 }
4874
4875 KA_TRACE(1000, ; {
4876 int gtid = __kmp_entry_gtid();
4877 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4878 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4879 (kmp_affin_mask_t *)(*mask));
4880 __kmp_debug_printf("kmp_unset_affinity_mask_proc: unsetting proc %d in "
4881 "affinity mask for thread %d = %s\n",
4882 proc, gtid, buf);
4883 });
4884
4885 if (__kmp_env_consistency_check) {
4886 if ((mask == NULL) || (*mask == NULL)) {
4887 KMP_FATAL(AffinityInvalidMask, "kmp_unset_affinity_mask_proc");
Jim Cownie5e8470a2013-09-27 10:38:44 +00004888 }
Jonathan Peyton30419822017-05-12 18:01:32 +00004889 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004890
Jonathan Peyton30419822017-05-12 18:01:32 +00004891 if ((proc < 0) || (proc >= __kmp_aux_get_affinity_max_proc())) {
4892 return -1;
4893 }
4894 if (!KMP_CPU_ISSET(proc, __kmp_affin_fullMask)) {
4895 return -2;
4896 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00004897
Jonathan Peyton30419822017-05-12 18:01:32 +00004898 KMP_CPU_CLR(proc, (kmp_affin_mask_t *)(*mask));
4899 return 0;
4900}
4901
4902int __kmp_aux_get_affinity_mask_proc(int proc, void **mask) {
4903 int retval;
4904
4905 if (!KMP_AFFINITY_CAPABLE()) {
4906 return -1;
4907 }
4908
4909 KA_TRACE(1000, ; {
4910 int gtid = __kmp_entry_gtid();
4911 char buf[KMP_AFFIN_MASK_PRINT_LEN];
4912 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN,
4913 (kmp_affin_mask_t *)(*mask));
4914 __kmp_debug_printf("kmp_get_affinity_mask_proc: getting proc %d in "
4915 "affinity mask for thread %d = %s\n",
4916 proc, gtid, buf);
4917 });
4918
4919 if (__kmp_env_consistency_check) {
4920 if ((mask == NULL) || (*mask == NULL)) {
4921 KMP_FATAL(AffinityInvalidMask, "kmp_get_affinity_mask_proc");
4922 }
4923 }
4924
4925 if ((proc < 0) || (proc >= __kmp_aux_get_affinity_max_proc())) {
4926 return -1;
4927 }
4928 if (!KMP_CPU_ISSET(proc, __kmp_affin_fullMask)) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00004929 return 0;
Jonathan Peyton30419822017-05-12 18:01:32 +00004930 }
4931
4932 return KMP_CPU_ISSET(proc, (kmp_affin_mask_t *)(*mask));
Jim Cownie5e8470a2013-09-27 10:38:44 +00004933}
4934
Jim Cownie5e8470a2013-09-27 10:38:44 +00004935// Dynamic affinity settings - Affinity balanced
Jonathan Peyton30419822017-05-12 18:01:32 +00004936void __kmp_balanced_affinity(int tid, int nthreads) {
4937 bool fine_gran = true;
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00004938
Jonathan Peyton30419822017-05-12 18:01:32 +00004939 switch (__kmp_affinity_gran) {
4940 case affinity_gran_fine:
4941 case affinity_gran_thread:
4942 break;
4943 case affinity_gran_core:
4944 if (__kmp_nThreadsPerCore > 1) {
4945 fine_gran = false;
4946 }
4947 break;
4948 case affinity_gran_package:
4949 if (nCoresPerPkg > 1) {
4950 fine_gran = false;
4951 }
4952 break;
4953 default:
4954 fine_gran = false;
4955 }
4956
4957 if (__kmp_affinity_uniform_topology()) {
4958 int coreID;
4959 int threadID;
4960 // Number of hyper threads per core in HT machine
4961 int __kmp_nth_per_core = __kmp_avail_proc / __kmp_ncores;
4962 // Number of cores
4963 int ncores = __kmp_ncores;
4964 if ((nPackages > 1) && (__kmp_nth_per_core <= 1)) {
4965 __kmp_nth_per_core = __kmp_avail_proc / nPackages;
4966 ncores = nPackages;
4967 }
4968 // How many threads will be bound to each core
4969 int chunk = nthreads / ncores;
4970 // How many cores will have an additional thread bound to it - "big cores"
4971 int big_cores = nthreads % ncores;
4972 // Number of threads on the big cores
4973 int big_nth = (chunk + 1) * big_cores;
4974 if (tid < big_nth) {
4975 coreID = tid / (chunk + 1);
4976 threadID = (tid % (chunk + 1)) % __kmp_nth_per_core;
4977 } else { // tid >= big_nth
4978 coreID = (tid - big_cores) / chunk;
4979 threadID = ((tid - big_cores) % chunk) % __kmp_nth_per_core;
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00004980 }
4981
Jonathan Peyton30419822017-05-12 18:01:32 +00004982 KMP_DEBUG_ASSERT2(KMP_AFFINITY_CAPABLE(),
4983 "Illegal set affinity operation when not capable");
4984
4985 kmp_affin_mask_t *mask;
4986 KMP_CPU_ALLOC_ON_STACK(mask);
4987 KMP_CPU_ZERO(mask);
4988
4989 if (fine_gran) {
4990 int osID = address2os[coreID * __kmp_nth_per_core + threadID].second;
4991 KMP_CPU_SET(osID, mask);
4992 } else {
4993 for (int i = 0; i < __kmp_nth_per_core; i++) {
4994 int osID;
4995 osID = address2os[coreID * __kmp_nth_per_core + i].second;
4996 KMP_CPU_SET(osID, mask);
4997 }
4998 }
4999 if (__kmp_affinity_verbose) {
5000 char buf[KMP_AFFIN_MASK_PRINT_LEN];
5001 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, mask);
5002 KMP_INFORM(BoundToOSProcSet, "KMP_AFFINITY", (kmp_int32)getpid(),
5003 __kmp_gettid(), tid, buf);
5004 }
5005 __kmp_set_system_affinity(mask, TRUE);
5006 KMP_CPU_FREE_FROM_STACK(mask);
5007 } else { // Non-uniform topology
5008
5009 kmp_affin_mask_t *mask;
5010 KMP_CPU_ALLOC_ON_STACK(mask);
5011 KMP_CPU_ZERO(mask);
5012
5013 int core_level = __kmp_affinity_find_core_level(
5014 address2os, __kmp_avail_proc, __kmp_aff_depth - 1);
5015 int ncores = __kmp_affinity_compute_ncores(address2os, __kmp_avail_proc,
5016 __kmp_aff_depth - 1, core_level);
5017 int nth_per_core = __kmp_affinity_max_proc_per_core(
5018 address2os, __kmp_avail_proc, __kmp_aff_depth - 1, core_level);
5019
5020 // For performance gain consider the special case nthreads ==
5021 // __kmp_avail_proc
5022 if (nthreads == __kmp_avail_proc) {
5023 if (fine_gran) {
5024 int osID = address2os[tid].second;
5025 KMP_CPU_SET(osID, mask);
5026 } else {
5027 int core = __kmp_affinity_find_core(address2os, tid,
5028 __kmp_aff_depth - 1, core_level);
5029 for (int i = 0; i < __kmp_avail_proc; i++) {
5030 int osID = address2os[i].second;
5031 if (__kmp_affinity_find_core(address2os, i, __kmp_aff_depth - 1,
5032 core_level) == core) {
5033 KMP_CPU_SET(osID, mask);
5034 }
Paul Osmialowskiecbe2ea2016-07-29 20:55:03 +00005035 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005036 }
5037 } else if (nthreads <= ncores) {
5038
5039 int core = 0;
5040 for (int i = 0; i < ncores; i++) {
5041 // Check if this core from procarr[] is in the mask
5042 int in_mask = 0;
5043 for (int j = 0; j < nth_per_core; j++) {
5044 if (procarr[i * nth_per_core + j] != -1) {
5045 in_mask = 1;
5046 break;
5047 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005048 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005049 if (in_mask) {
5050 if (tid == core) {
5051 for (int j = 0; j < nth_per_core; j++) {
5052 int osID = procarr[i * nth_per_core + j];
5053 if (osID != -1) {
5054 KMP_CPU_SET(osID, mask);
5055 // For fine granularity it is enough to set the first available
5056 // osID for this core
5057 if (fine_gran) {
5058 break;
5059 }
5060 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005061 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005062 break;
5063 } else {
5064 core++;
5065 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005066 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005067 }
5068 } else { // nthreads > ncores
5069 // Array to save the number of processors at each core
5070 int *nproc_at_core = (int *)KMP_ALLOCA(sizeof(int) * ncores);
5071 // Array to save the number of cores with "x" available processors;
5072 int *ncores_with_x_procs =
5073 (int *)KMP_ALLOCA(sizeof(int) * (nth_per_core + 1));
5074 // Array to save the number of cores with # procs from x to nth_per_core
5075 int *ncores_with_x_to_max_procs =
5076 (int *)KMP_ALLOCA(sizeof(int) * (nth_per_core + 1));
5077
5078 for (int i = 0; i <= nth_per_core; i++) {
5079 ncores_with_x_procs[i] = 0;
5080 ncores_with_x_to_max_procs[i] = 0;
5081 }
5082
5083 for (int i = 0; i < ncores; i++) {
5084 int cnt = 0;
5085 for (int j = 0; j < nth_per_core; j++) {
5086 if (procarr[i * nth_per_core + j] != -1) {
5087 cnt++;
5088 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005089 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005090 nproc_at_core[i] = cnt;
5091 ncores_with_x_procs[cnt]++;
5092 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005093
Jonathan Peyton30419822017-05-12 18:01:32 +00005094 for (int i = 0; i <= nth_per_core; i++) {
5095 for (int j = i; j <= nth_per_core; j++) {
5096 ncores_with_x_to_max_procs[i] += ncores_with_x_procs[j];
5097 }
5098 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005099
Jonathan Peyton30419822017-05-12 18:01:32 +00005100 // Max number of processors
5101 int nproc = nth_per_core * ncores;
5102 // An array to keep number of threads per each context
5103 int *newarr = (int *)__kmp_allocate(sizeof(int) * nproc);
5104 for (int i = 0; i < nproc; i++) {
5105 newarr[i] = 0;
5106 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005107
Jonathan Peyton30419822017-05-12 18:01:32 +00005108 int nth = nthreads;
5109 int flag = 0;
5110 while (nth > 0) {
5111 for (int j = 1; j <= nth_per_core; j++) {
5112 int cnt = ncores_with_x_to_max_procs[j];
5113 for (int i = 0; i < ncores; i++) {
5114 // Skip the core with 0 processors
5115 if (nproc_at_core[i] == 0) {
5116 continue;
Jim Cownie5e8470a2013-09-27 10:38:44 +00005117 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005118 for (int k = 0; k < nth_per_core; k++) {
5119 if (procarr[i * nth_per_core + k] != -1) {
5120 if (newarr[i * nth_per_core + k] == 0) {
5121 newarr[i * nth_per_core + k] = 1;
5122 cnt--;
5123 nth--;
5124 break;
5125 } else {
5126 if (flag != 0) {
5127 newarr[i * nth_per_core + k]++;
5128 cnt--;
5129 nth--;
Jim Cownie5e8470a2013-09-27 10:38:44 +00005130 break;
Jonathan Peyton30419822017-05-12 18:01:32 +00005131 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005132 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005133 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005134 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005135 if (cnt == 0 || nth == 0) {
5136 break;
5137 }
5138 }
5139 if (nth == 0) {
5140 break;
5141 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005142 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005143 flag = 1;
5144 }
5145 int sum = 0;
5146 for (int i = 0; i < nproc; i++) {
5147 sum += newarr[i];
5148 if (sum > tid) {
5149 if (fine_gran) {
5150 int osID = procarr[i];
5151 KMP_CPU_SET(osID, mask);
5152 } else {
5153 int coreID = i / nth_per_core;
5154 for (int ii = 0; ii < nth_per_core; ii++) {
5155 int osID = procarr[coreID * nth_per_core + ii];
5156 if (osID != -1) {
5157 KMP_CPU_SET(osID, mask);
5158 }
5159 }
5160 }
5161 break;
Jim Cownie5e8470a2013-09-27 10:38:44 +00005162 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005163 }
5164 __kmp_free(newarr);
Jim Cownie5e8470a2013-09-27 10:38:44 +00005165 }
Jonathan Peyton30419822017-05-12 18:01:32 +00005166
5167 if (__kmp_affinity_verbose) {
5168 char buf[KMP_AFFIN_MASK_PRINT_LEN];
5169 __kmp_affinity_print_mask(buf, KMP_AFFIN_MASK_PRINT_LEN, mask);
5170 KMP_INFORM(BoundToOSProcSet, "KMP_AFFINITY", (kmp_int32)getpid(),
5171 __kmp_gettid(), tid, buf);
5172 }
5173 __kmp_set_system_affinity(mask, TRUE);
5174 KMP_CPU_FREE_FROM_STACK(mask);
5175 }
Jim Cownie5e8470a2013-09-27 10:38:44 +00005176}
5177
Jonathan Peyton3076fa42016-01-12 17:21:55 +00005178#if KMP_OS_LINUX
5179// We don't need this entry for Windows because
5180// there is GetProcessAffinityMask() api
5181//
5182// The intended usage is indicated by these steps:
5183// 1) The user gets the current affinity mask
5184// 2) Then sets the affinity by calling this function
5185// 3) Error check the return value
5186// 4) Use non-OpenMP parallelization
5187// 5) Reset the affinity to what was stored in step 1)
5188#ifdef __cplusplus
5189extern "C"
5190#endif
Jonathan Peyton30419822017-05-12 18:01:32 +00005191 int
5192 kmp_set_thread_affinity_mask_initial()
Jonathan Peyton3076fa42016-01-12 17:21:55 +00005193// the function returns 0 on success,
5194// -1 if we cannot bind thread
5195// >0 (errno) if an error happened during binding
5196{
Jonathan Peyton30419822017-05-12 18:01:32 +00005197 int gtid = __kmp_get_gtid();
5198 if (gtid < 0) {
5199 // Do not touch non-omp threads
5200 KA_TRACE(30, ("kmp_set_thread_affinity_mask_initial: "
5201 "non-omp thread, returning\n"));
5202 return -1;
5203 }
5204 if (!KMP_AFFINITY_CAPABLE() || !__kmp_init_middle) {
5205 KA_TRACE(30, ("kmp_set_thread_affinity_mask_initial: "
5206 "affinity not initialized, returning\n"));
5207 return -1;
5208 }
5209 KA_TRACE(30, ("kmp_set_thread_affinity_mask_initial: "
5210 "set full mask for thread %d\n",
5211 gtid));
5212 KMP_DEBUG_ASSERT(__kmp_affin_fullMask != NULL);
5213 return __kmp_set_system_affinity(__kmp_affin_fullMask, FALSE);
Jonathan Peyton3076fa42016-01-12 17:21:55 +00005214}
5215#endif
5216
Alp Toker763b9392014-02-28 09:42:41 +00005217#endif // KMP_AFFINITY_SUPPORTED