1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
669
670
671
672
673
674
675
676
677
678
679
680
681
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
724
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
821
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
872
873
874
875
876
877
878
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
911
912
913
914
915
916
917
918
919
920
921
922
923
924
925
926
927
928
929
930
931
932
933
934
935
936
937
938
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
956
957
958
959
960
961
962
963
964
965
966
967
968
969
970
971
972
973
974
975
976
977
978
979
980
981
982
983
984
985
986
987
988
989
990
991
992
993
994
995
996
997
998
999
1000
1001
1002
1003
1004
1005
1006
1007
1008
1009
1010
1011
1012
1013
1014
1015
1016
1017
1018
1019
1020
1021
1022
1023
1024
1025
1026
1027
1028
1029
1030
1031
1032
1033
1034
1035
1036
1037
1038
1039
1040
1041
1042
1043
1044
1045
1046
1047
1048
1049
1050
1051
1052
1053
1054
1055
1056
1057
1058
1059
1060
1061
1062
1063
1064
1065
1066
1067
1068
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
1079
1080
1081
1082
1083
1084
1085
1086
1087
1088
1089
1090
1091
1092
1093
1094
1095
1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
1108
1109
1110
1111
1112
1113
1114
1115
1116
1117
1118
1119
1120
1121
1122
1123
1124
1125
1126
1127
1128
1129
1130
1131
1132
1133
1134
1135
1136
1137
1138
1139
1140
1141
1142
1143
1144
1145
1146
1147
1148
1149
1150
1151
1152
1153
1154
1155
1156
1157
1158
1159
1160
1161
1162
1163
1164
1165
1166
|
/* SPDX-License-Identifier: GPL-2.0 */
/*
* BPF extensible scheduler class: Documentation/scheduler/sched-ext.rst
*
* Copyright (c) 2026 Meta Platforms, Inc. and affiliates.
* Copyright (c) 2026 Tejun Heo <tj@kernel.org>
*/
#include <linux/cacheinfo.h>
#include "internal.h"
#include "cid.h"
/*
* cid tables. The cid kfuncs are available whether the root scheduler is
* cid-form or cpu-form, the latter to allow gradual migration to cids, so every
* root builds a default mapping. Each root enable allocates a fresh set, builds
* it privately and publishes the __rcu globals below once the layout is final.
* Root disable unpublishes and RCU-frees the set. kfuncs may run before the
* tables are published and must check for NULL.
*/
u32 scx_nr_cid_shards;
s16 __rcu *scx_cid_to_cpu_tbl;
s16 __rcu *scx_cpu_to_cid_tbl;
s32 __rcu *scx_cid_to_shard;
s32 __rcu *scx_shard_node;
struct scx_cid_shard __rcu *scx_cid_shard_ranges;
struct scx_cid_topo __rcu *scx_cid_topo;
static struct scx_cid_tables *scx_cid_tables; /* used only during alloc/free */
#define SCX_CID_TOPO_NEG (struct scx_cid_topo) { \
.core_cid = -1, .core_idx = -1, .llc_cid = -1, .llc_idx = -1, \
.node_cid = -1, .node_idx = -1, .shard_cid = -1, .shard_idx = -1, \
}
/*
* Return @cpu's LLC shared_cpu_map. If cacheinfo isn't populated (offline or
* !present), record @cpu in @fallbacks and return its node mask instead - the
* worst that can happen is that the cpu's LLC becomes coarser than reality.
*/
static const struct cpumask *cpu_llc_mask(int cpu, struct cpumask *fallbacks)
{
struct cpu_cacheinfo *ci = get_cpu_cacheinfo(cpu);
if (!ci || !ci->info_list || !ci->num_leaves) {
cpumask_set_cpu(cpu, fallbacks);
return cpumask_of_node(cpu_to_node(cpu));
}
return &ci->info_list[ci->num_leaves - 1].shared_cpu_map;
}
/*
* Compute per-LLC shard layout. Each shard holds at most @shard_size cids, and
* in any case no more than SCX_CID_SHARD_MAX_CPUS. Cores are spread as evenly
* as possible across shards so cpu count is balanced: the first *@nr_large_p
* shards get (*@cores_per_shard_p + 1) cores, the rest get *@cores_per_shard_p.
*/
static void calc_shard_layout(const struct cpumask *llc_cpus, u32 shard_size,
u32 *cores_per_shard_p, u32 *nr_large_p)
{
u32 nr_cores = 0, nr_cpus = 0, nr_shards;
int cpu;
for_each_cpu(cpu, llc_cpus) {
nr_cpus++;
if (cpumask_first(topology_sibling_cpumask(cpu)) == cpu)
nr_cores++;
}
nr_shards = max_t(u32, 1, DIV_ROUND_UP(nr_cpus, shard_size));
nr_shards = max_t(u32, nr_shards,
DIV_ROUND_UP(nr_cpus, SCX_CID_SHARD_MAX_CPUS));
*cores_per_shard_p = nr_cores / nr_shards;
*nr_large_p = nr_cores % nr_shards;
}
static void scx_cid_tables_free(struct scx_cid_tables *tbls)
{
if (!tbls)
return;
kvfree(tbls->cid_to_cpu);
kvfree(tbls->cpu_to_cid);
kvfree(tbls->cid_to_shard);
kvfree(tbls->shard_node);
kvfree(tbls->shard_ranges);
kvfree(tbls->topo);
kfree(tbls);
}
static void scx_cid_tables_free_rcufn(struct rcu_head *rcu)
{
scx_cid_tables_free(container_of(rcu, struct scx_cid_tables, rcu));
}
static struct scx_cid_tables *scx_cid_alloc_tables(void)
{
u32 npossible = num_possible_cpus();
struct scx_cid_tables *tbls;
tbls = kzalloc_obj(*tbls, GFP_KERNEL);
if (!tbls)
return NULL;
tbls->cid_to_cpu = kvcalloc(npossible, sizeof(*tbls->cid_to_cpu), GFP_KERNEL);
tbls->cpu_to_cid = kvcalloc(nr_cpu_ids, sizeof(*tbls->cpu_to_cid), GFP_KERNEL);
tbls->cid_to_shard = kvcalloc(npossible, sizeof(*tbls->cid_to_shard), GFP_KERNEL);
tbls->shard_node = kvcalloc(npossible, sizeof(*tbls->shard_node), GFP_KERNEL);
tbls->shard_ranges = kvcalloc(npossible, sizeof(*tbls->shard_ranges), GFP_KERNEL);
tbls->topo = kvcalloc(npossible, sizeof(*tbls->topo), GFP_KERNEL);
if (!tbls->cid_to_cpu || !tbls->cpu_to_cid || !tbls->cid_to_shard ||
!tbls->shard_node || !tbls->shard_ranges || !tbls->topo) {
scx_cid_tables_free(tbls);
return NULL;
}
return tbls;
}
/**
* scx_cid_publish_tables - Publish the tables scx_cid_init() built
*
* Called after ops.init_cids() where the layout is final.
*/
void scx_cid_publish_tables(void)
{
struct scx_cid_tables *tbls = scx_cid_tables;
lockdep_assert_held(&scx_enable_mutex);
scx_nr_cid_shards = tbls->nr_shards;
rcu_assign_pointer(scx_cid_to_cpu_tbl, tbls->cid_to_cpu);
rcu_assign_pointer(scx_cpu_to_cid_tbl, tbls->cpu_to_cid);
rcu_assign_pointer(scx_cid_to_shard, tbls->cid_to_shard);
rcu_assign_pointer(scx_shard_node, tbls->shard_node);
rcu_assign_pointer(scx_cid_shard_ranges, tbls->shard_ranges);
rcu_assign_pointer(scx_cid_topo, tbls->topo);
}
/**
* scx_cid_retire_tables - Unpublish and retire the cid tables
*
* Called by root disable after the readers which dereference without NULL
* checks are drained, inside cpus_read_lock() to exclude the hotplug path.
*/
void scx_cid_retire_tables(void)
{
struct scx_cid_tables *tbls = scx_cid_tables;
lockdep_assert_held(&scx_enable_mutex);
lockdep_assert_cpus_held();
if (!tbls)
return;
scx_cid_tables = NULL;
RCU_INIT_POINTER(scx_cid_to_cpu_tbl, NULL);
RCU_INIT_POINTER(scx_cpu_to_cid_tbl, NULL);
RCU_INIT_POINTER(scx_cid_to_shard, NULL);
RCU_INIT_POINTER(scx_shard_node, NULL);
RCU_INIT_POINTER(scx_cid_shard_ranges, NULL);
RCU_INIT_POINTER(scx_cid_topo, NULL);
call_rcu(&tbls->rcu, scx_cid_tables_free_rcufn);
}
/**
* scx_cid_init - build the cid mapping
* @sch: the scx_sched being initialized; used as the scx_error() target
*
* Build a fresh table set. It becomes visible through scx_cid_publish_tables()
* and is retired by scx_cid_retire_tables() at disable.
*
* See "Topological CPU IDs" in cid.h for the model. Walk online cpus by
* intersection at each level (parent_scratch & this_level_mask), which keeps
* containment correct by construction and naturally splits a physical LLC
* straddling two NUMA nodes into two LLC units. The caller must hold
* cpus_read_lock.
*/
s32 scx_cid_init(struct scx_sched *sch)
{
cpumask_var_t to_walk __free(free_cpumask_var) = CPUMASK_VAR_NULL;
cpumask_var_t node_scratch __free(free_cpumask_var) = CPUMASK_VAR_NULL;
cpumask_var_t llc_scratch __free(free_cpumask_var) = CPUMASK_VAR_NULL;
cpumask_var_t core_scratch __free(free_cpumask_var) = CPUMASK_VAR_NULL;
cpumask_var_t llc_fallback __free(free_cpumask_var) = CPUMASK_VAR_NULL;
cpumask_var_t online_no_topo __free(free_cpumask_var) = CPUMASK_VAR_NULL;
struct scx_cid_tables *tbls;
u32 next_cid = 0;
s32 next_node_idx = 0, next_llc_idx = 0, next_core_idx = 0;
s32 next_shard_idx = 0;
u32 shard_size, max_cids;
u32 notopo_in_shard;
s32 notopo_shard_cid, notopo_shard_idx;
s32 cpu, cid, si;
/* CMASK_MAX_WORDS in cid.bpf.h covers NR_CPUS up to 8192 */
BUILD_BUG_ON(NR_CPUS > 8192);
lockdep_assert_cpus_held();
lockdep_assert_held(&scx_enable_mutex);
shard_size = sch->ops.cid_shard_size ?: SCX_CID_SHARD_SIZE_DFL;
max_cids = min_t(u32, shard_size, SCX_CID_SHARD_MAX_CPUS);
tbls = scx_cid_alloc_tables();
if (!tbls)
return -ENOMEM;
scx_cid_tables = tbls;
for (si = 0; si < num_possible_cpus(); si++)
tbls->shard_node[si] = NUMA_NO_NODE;
if (!zalloc_cpumask_var(&to_walk, GFP_KERNEL) ||
!zalloc_cpumask_var(&node_scratch, GFP_KERNEL) ||
!zalloc_cpumask_var(&llc_scratch, GFP_KERNEL) ||
!zalloc_cpumask_var(&core_scratch, GFP_KERNEL) ||
!zalloc_cpumask_var(&llc_fallback, GFP_KERNEL) ||
!zalloc_cpumask_var(&online_no_topo, GFP_KERNEL))
return -ENOMEM;
/* -1 sentinels for sparse-possible cpu id holes (0 is a valid cid) */
for (cpu = 0; cpu < nr_cpu_ids; cpu++)
tbls->cpu_to_cid[cpu] = -1;
cpumask_copy(to_walk, cpu_online_mask);
while (!cpumask_empty(to_walk)) {
s32 next_cpu = cpumask_first(to_walk);
s32 nid = cpu_to_node(next_cpu);
s32 node_cid = next_cid;
s32 node_idx;
/*
* No NUMA info: skip and let the tail loop assign a no-topo
* cid. cpumask_of_node(-1) is undefined.
*/
if (nid < 0) {
cpumask_clear_cpu(next_cpu, to_walk);
continue;
}
node_idx = next_node_idx++;
/* node_scratch = to_walk & this node */
cpumask_and(node_scratch, to_walk, cpumask_of_node(nid));
if (WARN_ON_ONCE(!cpumask_test_cpu(next_cpu, node_scratch)))
return -EINVAL;
while (!cpumask_empty(node_scratch)) {
s32 ncpu = cpumask_first(node_scratch);
const struct cpumask *llc_mask = cpu_llc_mask(ncpu, llc_fallback);
s32 llc_cid = next_cid;
s32 llc_idx = next_llc_idx++;
u32 cores_per_shard, nr_large;
u32 shard_local = 0, cores_in_shard = 0, cids_in_shard = 0;
s32 shard_cid, shard_idx;
/* llc_scratch = node_scratch & this llc */
cpumask_and(llc_scratch, node_scratch, llc_mask);
if (WARN_ON_ONCE(!cpumask_test_cpu(ncpu, llc_scratch)))
return -EINVAL;
calc_shard_layout(llc_scratch, shard_size, &cores_per_shard, &nr_large);
shard_cid = next_cid;
shard_idx = next_shard_idx++;
tbls->shard_node[shard_idx] = nid;
while (!cpumask_empty(llc_scratch)) {
s32 lcpu = cpumask_first(llc_scratch);
const struct cpumask *sib = topology_sibling_cpumask(lcpu);
s32 core_cid = next_cid;
s32 core_idx = next_core_idx++;
s32 ccpu;
u32 max_cores, cids_in_core;
/* core_scratch = llc_scratch & this core */
cpumask_and(core_scratch, llc_scratch, sib);
if (WARN_ON_ONCE(!cpumask_test_cpu(lcpu, core_scratch)))
return -EINVAL;
/*
* Advance to a new shard when either core or
* cid count reaches max. The latter bounds
* shard sizes under uneven SMT. Never start an
* empty shard.
*/
cids_in_core = cpumask_weight(core_scratch);
max_cores = cores_per_shard + (shard_local < nr_large ? 1 : 0);
if (cores_in_shard &&
(cores_in_shard >= max_cores ||
cids_in_shard + cids_in_core > max_cids)) {
shard_local++;
cores_in_shard = 0;
cids_in_shard = 0;
shard_cid = next_cid;
shard_idx = next_shard_idx++;
tbls->shard_node[shard_idx] = nid;
}
cores_in_shard++;
cids_in_shard += cids_in_core;
for_each_cpu(ccpu, core_scratch) {
s32 cid = next_cid++;
tbls->cid_to_cpu[cid] = ccpu;
tbls->cpu_to_cid[ccpu] = cid;
tbls->cid_to_shard[cid] = shard_idx;
tbls->topo[cid] = (struct scx_cid_topo){
.core_cid = core_cid,
.core_idx = core_idx,
.llc_cid = llc_cid,
.llc_idx = llc_idx,
.node_cid = node_cid,
.node_idx = node_idx,
.shard_cid = shard_cid,
.shard_idx = shard_idx,
};
cpumask_clear_cpu(ccpu, llc_scratch);
cpumask_clear_cpu(ccpu, node_scratch);
cpumask_clear_cpu(ccpu, to_walk);
}
}
}
}
/*
* No-topo section: any possible cpu without a cid - normally just the
* not-online ones. Pack into shards of up to min(@shard_size,
* SCX_CID_SHARD_MAX_CPUS) cids so that every cid has a valid shard
* assignment and the hard cap holds even with a large @shard_size.
* Collect any currently-online cpus that land here in @online_no_topo
* so we can warn about them at the end.
*/
notopo_in_shard = min_t(u32, shard_size, SCX_CID_SHARD_MAX_CPUS);
notopo_shard_cid = -1;
notopo_shard_idx = -1;
for_each_cpu(cpu, cpu_possible_mask) {
if (tbls->cpu_to_cid[cpu] != -1)
continue;
if (cpu_online(cpu))
cpumask_set_cpu(cpu, online_no_topo);
cid = next_cid++;
tbls->cid_to_cpu[cid] = cpu;
tbls->cpu_to_cid[cpu] = cid;
if (notopo_in_shard >= min_t(u32, shard_size, SCX_CID_SHARD_MAX_CPUS)) {
notopo_shard_cid = cid;
notopo_shard_idx = next_shard_idx++;
notopo_in_shard = 0;
}
notopo_in_shard++;
tbls->cid_to_shard[cid] = notopo_shard_idx;
tbls->topo[cid] = SCX_CID_TOPO_NEG;
tbls->topo[cid].shard_cid = notopo_shard_cid;
tbls->topo[cid].shard_idx = notopo_shard_idx;
}
if (!cpumask_empty(llc_fallback))
pr_warn("scx_cid: cpus without cacheinfo, using node mask as llc: %*pbl\n",
cpumask_pr_args(llc_fallback));
if (!cpumask_empty(online_no_topo))
pr_warn("scx_cid: online cpus with no usable topology: %*pbl\n",
cpumask_pr_args(online_no_topo));
/*
* Fill cid_shard_ranges[] from cid_to_shard[]. Shards are contiguous
* cid ranges by construction: base_cid is the first cid landing in a
* shard, nr_cids is the count.
*/
for (cid = 0; cid < next_cid; cid++) {
s32 sidx = tbls->cid_to_shard[cid];
if (tbls->shard_ranges[sidx].nr_cids == 0)
tbls->shard_ranges[sidx].base_cid = cid;
tbls->shard_ranges[sidx].nr_cids++;
}
tbls->nr_shards = next_shard_idx;
return 0;
}
/**
* scx_cmask_clear - Zero every bit in @m's active range
* @m: cmask to clear
*
* Storage past the active range is left as is.
*/
void scx_cmask_clear(struct scx_cmask *m)
{
u32 nr_words;
if (!m->nr_cids)
return;
nr_words = (m->base + m->nr_cids - 1) / 64 - m->base / 64 + 1;
memset(m->bits, 0, nr_words * sizeof(u64));
}
/**
* scx_cmask_fill - Set every bit in @m's active range
* @m: cmask to fill
*
* Counterpart to scx_cmask_clear(). Storage past the active range is left as is.
*/
void scx_cmask_fill(struct scx_cmask *m)
{
u32 nr_words, head_bits, tail_bits;
if (!m->nr_cids)
return;
nr_words = (m->base + m->nr_cids - 1) / 64 - m->base / 64 + 1;
memset(m->bits, 0xff, nr_words * sizeof(u64));
/* clear word-0 bits below base */
head_bits = m->base & 63;
if (head_bits)
m->bits[0] &= ~((1ULL << head_bits) - 1);
/* clear last-word bits at or past base + nr_cids */
tail_bits = (m->base + m->nr_cids) & 63;
if (tail_bits)
m->bits[nr_words - 1] &= (1ULL << tail_bits) - 1;
}
/*
* Return the index of the largest entry in @counts, or NUMA_NO_NODE if all
* entries are zero. Ties resolve to the lowest index.
*/
static s32 pick_max_node(const u32 *counts, u32 n)
{
s32 best = NUMA_NO_NODE;
u32 best_count = 0, i;
for (i = 0; i < n; i++) {
if (counts[i] > best_count) {
best_count = counts[i];
best = i;
}
}
return best;
}
__bpf_kfunc_start_defs();
/**
* scx_bpf_cid_override - Install an explicit cpu->cid mapping with shard info
* @cpu_to_cid__arena: array of nr_cpu_ids s32 entries (cid for each cpu)
* @cpu_to_cid_cnt: number of entries, must be nr_cpu_ids
* @shard_start__arena: array of first-cid-of-each-shard, one entry per shard
* @shard_start_cnt: number of shards
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
*
* May only be called from ops.init_cids() of the root scheduler. Replace the
* topology-probed cid mapping and shard layout with caller-provided ones. Each
* possible cpu must map to a unique cid in [0, num_possible_cpus()). The shard
* starts must be strictly increasing with the first entry 0 and all values <
* num_possible_cpus(). The last shard extends to num_possible_cpus() and no
* shard may span more than SCX_CID_SHARD_MAX_CPUS cids. Topo info
* (core/LLC/node) is cleared and the shard layout is set from the input. On
* invalid input, abort the scheduler.
*/
__bpf_kfunc void scx_bpf_cid_override(const s32 *cpu_to_cid__arena, u32 cpu_to_cid_cnt,
const s32 *shard_start__arena, u32 shard_start_cnt,
const struct bpf_prog_aux *aux)
{
cpumask_var_t seen __free(free_cpumask_var) = CPUMASK_VAR_NULL;
u32 *node_counts __free(kfree) = NULL;
s32 *cpu_to_cid __free(kfree) = NULL;
s32 *shard_start __free(kfree) = NULL;
u32 npossible = num_possible_cpus();
struct scx_cid_tables *tbls;
struct scx_sched *sch;
u32 nr_shards = shard_start_cnt;
bool alloced;
s32 cpu, cid, si;
/*
* GFP_KERNEL allocs must happen before the rcu read section. Snapshot
* the BPF-supplied arrays so a concurrent arena write can't change
* them between validation and use.
*
* The BPF-supplied counts size the snapshots and thus the arena reads.
* Gate the copies on the count bounds, reported below once @sch is
* available. The bounded reads, at most 32KB, stay within the guard
* region that arena fault recovery covers.
*/
alloced = zalloc_cpumask_var(&seen, GFP_KERNEL);
node_counts = kcalloc(nr_node_ids, sizeof(*node_counts), GFP_KERNEL);
if (cpu_to_cid_cnt == nr_cpu_ids)
cpu_to_cid = kmemdup(cpu_to_cid__arena, cpu_to_cid_cnt * sizeof(s32),
GFP_KERNEL);
if (nr_shards && nr_shards <= npossible)
shard_start = kmemdup(shard_start__arena, nr_shards * sizeof(s32),
GFP_KERNEL);
guard(rcu)();
sch = scx_prog_sched(aux);
if (unlikely(!sch))
return;
/* called from ops.init_cids(), so the tables exist and are unpublished */
lockdep_assert_held(&scx_enable_mutex);
tbls = scx_cid_tables;
if (cpu_to_cid_cnt != nr_cpu_ids) {
scx_error(sch, "scx_bpf_cid_override: cpu_to_cid expected %u entries, got %u",
nr_cpu_ids, cpu_to_cid_cnt);
return;
}
if (!nr_shards || nr_shards > npossible) {
scx_error(sch, "scx_bpf_cid_override: invalid shard_start count %u",
nr_shards);
return;
}
if (!alloced || !node_counts || !cpu_to_cid || !shard_start) {
scx_error(sch, "scx_bpf_cid_override: allocation failed");
return;
}
/* validate shard_start[]: starts at 0, strictly increasing, in range */
if (shard_start[0] != 0) {
scx_error(sch, "scx_bpf_cid_override: shard_start[0] must be 0, got %d",
shard_start[0]);
return;
}
for (si = 1; si < nr_shards; si++) {
if (shard_start[si] <= shard_start[si - 1]) {
scx_error(sch, "scx_bpf_cid_override: shard_start not increasing at [%d]",
si);
return;
}
if (shard_start[si] >= npossible) {
scx_error(sch, "scx_bpf_cid_override: shard_start[%d]=%d >= %u",
si, shard_start[si], npossible);
return;
}
if (shard_start[si] - shard_start[si - 1] > SCX_CID_SHARD_MAX_CPUS) {
scx_error(sch, "scx_bpf_cid_override: shard[%d] span %d exceeds max %d",
si - 1, shard_start[si] - shard_start[si - 1],
SCX_CID_SHARD_MAX_CPUS);
return;
}
}
if (npossible - shard_start[nr_shards - 1] > SCX_CID_SHARD_MAX_CPUS) {
scx_error(sch, "scx_bpf_cid_override: shard[%d] span %d exceeds max %d",
nr_shards - 1, npossible - shard_start[nr_shards - 1],
SCX_CID_SHARD_MAX_CPUS);
return;
}
/* validate first so that invalid input leaves the tables untouched */
for_each_possible_cpu(cpu) {
s32 c = cpu_to_cid[cpu];
if (!cid_valid(sch, c))
return;
if (cpumask_test_and_set_cpu(c, seen)) {
scx_error(sch, "cid %d assigned to multiple cpus", c);
return;
}
}
for_each_possible_cpu(cpu) {
s32 c = cpu_to_cid[cpu];
tbls->cpu_to_cid[cpu] = c;
tbls->cid_to_cpu[c] = cpu;
}
/*
* Derive shard_node[] by majority count: an overridden shard may
* span NUMA nodes, so assign each to the node that owns the most cpus.
*/
for (si = 0; si < nr_shards; si++) {
u32 end = (si + 1 < nr_shards) ? shard_start[si + 1] : npossible;
memset(node_counts, 0, nr_node_ids * sizeof(*node_counts));
for (cid = shard_start[si]; cid < end; cid++) {
s32 node = cpu_to_node(tbls->cid_to_cpu[cid]);
if (numa_valid_node(node))
node_counts[node]++;
}
tbls->shard_node[si] = pick_max_node(node_counts, nr_node_ids);
}
/*
* Invalidate stale topo info and install shard layout from
* @shard_start. Walk shards to derive shard_cid/shard_idx for each cid.
*/
si = 0;
for (cid = 0; cid < npossible; cid++) {
if (si + 1 < nr_shards && cid >= shard_start[si + 1])
si++;
tbls->cid_to_shard[cid] = si;
tbls->topo[cid] = SCX_CID_TOPO_NEG;
tbls->topo[cid].shard_cid = shard_start[si];
tbls->topo[cid].shard_idx = si;
}
/* Rebuild shard_ranges[] for the new layout. */
memset(tbls->shard_ranges, 0, npossible * sizeof(*tbls->shard_ranges));
for (si = 0; si < nr_shards; si++) {
u32 end = (si + 1 < nr_shards) ? shard_start[si + 1] : npossible;
tbls->shard_ranges[si].base_cid = shard_start[si];
tbls->shard_ranges[si].nr_cids = end - shard_start[si];
}
tbls->nr_shards = nr_shards;
}
/**
* scx_bpf_cid_to_cpu - Return the raw CPU id for @cid
* @cid: cid to look up
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
*
* Return the raw CPU id for @cid. Trigger scx_error() and return -EINVAL if
* @cid is invalid. The cid<->cpu mapping is static for the lifetime of the
* loaded scheduler, so the BPF side can cache the result to avoid repeated
* kfunc invocations.
*/
__bpf_kfunc s32 scx_bpf_cid_to_cpu(s32 cid, const struct bpf_prog_aux *aux)
{
struct scx_sched *sch;
guard(rcu)();
sch = scx_prog_sched(aux);
if (unlikely(!sch))
return -EINVAL;
return scx_cid_to_cpu(sch, cid);
}
/**
* scx_bpf_cpu_to_cid - Return the cid for @cpu
* @cpu: cpu to look up
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
*
* Return the cid for @cpu. Trigger scx_error() and return -EINVAL if @cpu is
* invalid. The cid<->cpu mapping is static for the lifetime of the loaded
* scheduler, so the BPF side can cache the result to avoid repeated kfunc
* invocations.
*/
__bpf_kfunc s32 scx_bpf_cpu_to_cid(s32 cpu, const struct bpf_prog_aux *aux)
{
struct scx_sched *sch;
guard(rcu)();
sch = scx_prog_sched(aux);
if (unlikely(!sch))
return -EINVAL;
return scx_cpu_to_cid(sch, cpu);
}
/*
* Set ops on cmasks. cmask_walk_op2() shares one walk across mutating
* (and/or/copy/andnot) and predicate (subset/intersects) two-cmask forms;
* cmask_walk_op1() does the same shape over a single cmask range. Every public
* entry passes a compile-time-constant @op; cmask_walk_op{1,2}() and
* cmask_word_op{1,2}() are __always_inline so the inner switch collapses to the
* selected op and cmask_op2_is_pred() folds the predicate early-exit out of
* mutating ops.
*
* Two-cmask ops only touch @dst bits inside the intersection of the two ranges;
* bits outside stay untouched. In particular, scx_cmask_copy() does NOT zero
* @dst bits that lie outside @src's range.
*
* Word accesses use READ_ONCE/WRITE_ONCE so a caller may read @src
* locklessly. Memory ordering against concurrent writers is the caller's
* responsibility.
*/
enum cmask_op2 {
/* mutating */
CMASK_OP2_AND,
CMASK_OP2_OR,
CMASK_OP2_COPY,
CMASK_OP2_ANDNOT,
/* predicates - short-circuit when the per-word result is true */
CMASK_OP2_SUBSET,
CMASK_OP2_INTERSECTS,
/*
* @a is a BPF-arena cmask. Words on @a use READ_ONCE/WRITE_ONCE since
* BPF may read/write concurrently. See scx_cmask_ref_or() / _copy().
*/
CMASK_OP2_REF_OR,
CMASK_OP2_REF_COPY,
};
static __always_inline bool cmask_op2_is_pred(const enum cmask_op2 op)
{
return op == CMASK_OP2_SUBSET || op == CMASK_OP2_INTERSECTS;
}
static __always_inline bool cmask_word_op2(u64 *av, const u64 *bp, u64 mask,
const enum cmask_op2 op)
{
switch (op) {
case CMASK_OP2_AND:
WRITE_ONCE(*av, *av & (~mask | READ_ONCE(*bp)));
return false;
case CMASK_OP2_OR:
WRITE_ONCE(*av, *av | (READ_ONCE(*bp) & mask));
return false;
case CMASK_OP2_COPY:
WRITE_ONCE(*av, (*av & ~mask) | (READ_ONCE(*bp) & mask));
return false;
case CMASK_OP2_ANDNOT:
WRITE_ONCE(*av, *av & ~(READ_ONCE(*bp) & mask));
return false;
case CMASK_OP2_SUBSET:
/* stop on the first bit in @sub not set in @super */
return (READ_ONCE(*bp) & ~READ_ONCE(*av)) & mask;
case CMASK_OP2_INTERSECTS:
return (READ_ONCE(*av) & READ_ONCE(*bp)) & mask;
case CMASK_OP2_REF_OR:
WRITE_ONCE(*av, READ_ONCE(*av) | (READ_ONCE(*bp) & mask));
return false;
case CMASK_OP2_REF_COPY:
WRITE_ONCE(*av, (READ_ONCE(*av) & ~mask) | (READ_ONCE(*bp) & mask));
return false;
}
unreachable();
}
/*
* Walk the intersection of [@a_base, @a_base + @a_nr_cids) with [@b_base,
* @b_base + @b_nr_cids) word by word, applying @op. Mutating ops walk all words
* and return false; predicates return true on the first word whose per-word
* test is true. Empty intersection returns false (matches "no bits to consider"
* for both mutate and predicate).
*
* Base/nr_cids are taken as parameters so callers with snapshotted bounds can
* drive the walk with values independent of the cmask's header.
*/
static __always_inline bool cmask_walk_op2(u64 *a_bits, u32 a_base, u32 a_nr_cids,
const u64 *b_bits, u32 b_base, u32 b_nr_cids,
const enum cmask_op2 op)
{
u32 lo = max(a_base, b_base);
u32 hi = min(a_base + a_nr_cids, b_base + b_nr_cids);
u32 a_word_off = a_base / 64;
u32 b_word_off = b_base / 64;
u32 lo_word = lo / 64;
u32 hi_word = (hi - 1) / 64;
u64 head_mask = GENMASK_U64(63, lo & 63);
u64 tail_mask = GENMASK_U64((hi - 1) & 63, 0);
u32 w;
if (lo >= hi)
return false;
if (lo_word == hi_word)
return cmask_word_op2(&a_bits[lo_word - a_word_off],
&b_bits[lo_word - b_word_off],
head_mask & tail_mask, op);
if (cmask_word_op2(&a_bits[lo_word - a_word_off],
&b_bits[lo_word - b_word_off], head_mask, op) &&
cmask_op2_is_pred(op))
return true;
for (w = lo_word + 1; w < hi_word; w++)
if (cmask_word_op2(&a_bits[w - a_word_off],
&b_bits[w - b_word_off], ~0ULL, op) &&
cmask_op2_is_pred(op))
return true;
return cmask_word_op2(&a_bits[hi_word - a_word_off],
&b_bits[hi_word - b_word_off], tail_mask, op);
}
enum cmask_op1 {
CMASK_OP1_ANY_SET,
};
static __always_inline bool cmask_word_op1(const u64 *ap, u64 mask,
const enum cmask_op1 op)
{
switch (op) {
case CMASK_OP1_ANY_SET:
return READ_ONCE(*ap) & mask;
}
unreachable();
}
/*
* Walk [@a_base, @a_base + @a_nr_cids) of @a_bits word by word, applying @op.
* Returns true on the first word whose per-word test is true; returns false if
* no word matches or the range is empty. All current op1s short-circuit on
* per-word true; if a non-predicate op1 lands here, add a cmask_op1_is_pred()
* guard analogous to cmask_op2_is_pred().
*/
static __always_inline bool cmask_walk_op1(const u64 *a_bits, u32 a_base,
u32 a_nr_cids,
const enum cmask_op1 op)
{
u32 lo = a_base;
u32 hi = a_base + a_nr_cids;
u32 a_word_off = a_base / 64;
u32 lo_word = lo / 64;
u32 hi_word = (hi - 1) / 64;
u64 head_mask = GENMASK_U64(63, lo & 63);
u64 tail_mask = GENMASK_U64((hi - 1) & 63, 0);
u32 w;
if (lo >= hi)
return false;
if (lo_word == hi_word)
return cmask_word_op1(&a_bits[lo_word - a_word_off],
head_mask & tail_mask, op);
if (cmask_word_op1(&a_bits[lo_word - a_word_off], head_mask, op))
return true;
for (w = lo_word + 1; w < hi_word; w++)
if (cmask_word_op1(&a_bits[w - a_word_off], ~0ULL, op))
return true;
return cmask_word_op1(&a_bits[hi_word - a_word_off], tail_mask, op);
}
void scx_cmask_and(struct scx_cmask *dst, const struct scx_cmask *src)
{
cmask_walk_op2(dst->bits, dst->base, dst->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_AND);
}
void scx_cmask_or(struct scx_cmask *dst, const struct scx_cmask *src)
{
cmask_walk_op2(dst->bits, dst->base, dst->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_OR);
}
void scx_cmask_copy(struct scx_cmask *dst, const struct scx_cmask *src)
{
cmask_walk_op2(dst->bits, dst->base, dst->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_COPY);
}
void scx_cmask_andnot(struct scx_cmask *dst, const struct scx_cmask *src)
{
cmask_walk_op2(dst->bits, dst->base, dst->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_ANDNOT);
}
/*
* Return true if @cm has any bit set in [@lo, @hi). Caller must ensure
* [@lo, @hi) is contained in @cm's range.
*/
static bool cmask_any_set_in_range(const struct scx_cmask *cm, u32 lo, u32 hi)
{
if (lo >= hi)
return false;
return cmask_walk_op1(&cm->bits[lo / 64 - cm->base / 64], lo, hi - lo,
CMASK_OP1_ANY_SET);
}
/**
* scx_cmask_subset - test whether @sub is a subset of @super
* @sub: cmask to test
* @super: cmask to test against
*
* Return true iff every set bit of @sub is also set in @super.
*/
bool scx_cmask_subset(const struct scx_cmask *sub, const struct scx_cmask *super)
{
u32 super_end = super->base + super->nr_cids;
u32 sub_end = sub->base + sub->nr_cids;
/*
* Set bits in @sub outside @super's range can't be in @super, so any
* such bit means not a subset. The walk below only visits words
* common to both ranges, so these need a separate scan.
*/
if (sub->base < super->base &&
cmask_any_set_in_range(sub, sub->base, min(super->base, sub_end)))
return false;
if (sub_end > super_end &&
cmask_any_set_in_range(sub, max(sub->base, super_end), sub_end))
return false;
return !cmask_walk_op2((u64 *)super->bits, super->base, super->nr_cids,
sub->bits, sub->base, sub->nr_cids, CMASK_OP2_SUBSET);
}
bool scx_cmask_intersects(const struct scx_cmask *a, const struct scx_cmask *b)
{
return cmask_walk_op2((u64 *)a->bits, a->base, a->nr_cids,
b->bits, b->base, b->nr_cids, CMASK_OP2_INTERSECTS);
}
/**
* scx_cmask_empty - Test whether @m has no bits set
* @m: cmask to test
*
* Return true iff @m's active range has no bits set.
*/
bool scx_cmask_empty(const struct scx_cmask *m)
{
return !cmask_any_set_in_range(m, m->base, m->base + m->nr_cids);
}
/**
* scx_bpf_cid_topo - Copy out per-cid topology info
* @cid: cid to look up
* @out__uninit: where to copy the topology info; fully written by this call
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
*
* Fill @out__uninit with the topology info for @cid. Trigger scx_error() if
* @cid is out of range. If @cid is valid but in the no-topo section, all fields
* are set to -1. All fields are also set to -1 when no cid tables have been
* published yet, which a program may observe while racing the root enable.
*/
__bpf_kfunc void scx_bpf_cid_topo(s32 cid, struct scx_cid_topo *out__uninit,
const struct bpf_prog_aux *aux)
{
struct scx_cid_topo *topo;
struct scx_sched *sch;
guard(rcu)();
sch = scx_prog_sched(aux);
topo = rcu_dereference(scx_cid_topo);
if (unlikely(!sch) || !cid_valid(sch, cid) || unlikely(!topo)) {
*out__uninit = SCX_CID_TOPO_NEG;
return;
}
*out__uninit = topo[cid];
}
__bpf_kfunc_end_defs();
BTF_KFUNCS_START(scx_kfunc_ids_init_cids)
BTF_ID_FLAGS(func, scx_bpf_cid_override, KF_IMPLICIT_ARGS | KF_SLEEPABLE)
BTF_KFUNCS_END(scx_kfunc_ids_init_cids)
static const struct btf_kfunc_id_set scx_kfunc_set_init_cids = {
.owner = THIS_MODULE,
.set = &scx_kfunc_ids_init_cids,
.filter = scx_kfunc_context_filter,
};
BTF_KFUNCS_START(scx_kfunc_ids_cid)
BTF_ID_FLAGS(func, scx_bpf_cid_to_cpu, KF_IMPLICIT_ARGS)
BTF_ID_FLAGS(func, scx_bpf_cpu_to_cid, KF_IMPLICIT_ARGS)
BTF_ID_FLAGS(func, scx_bpf_cid_topo, KF_IMPLICIT_ARGS)
BTF_KFUNCS_END(scx_kfunc_ids_cid)
static const struct btf_kfunc_id_set scx_kfunc_set_cid = {
.owner = THIS_MODULE,
.set = &scx_kfunc_ids_cid,
};
/**
* scx_cmask_ref_init - Bind a scx_cmask_ref to a BPF-arena cmask
* @sch: scheduler whose arena hosts @src
* @src: BPF-supplied cmask, rebased to its kernel address
* @ref: output ref
*
* Snapshot @src's @base, @nr_cids and @alloc_words. The snapshot is necessary
* because BPF may mutate the live header asynchronously.
*
* Return 0 on success, -EINVAL if the range is out of bounds or @alloc_words
* doesn't cover it.
*/
int scx_cmask_ref_init(struct scx_sched *sch, const struct scx_cmask *src,
struct scx_cmask_ref *ref)
{
u32 base, nr_cids, alloc_words, npossible = num_possible_cpus();
s32 *cid_to_shard;
base = READ_ONCE(src->base);
nr_cids = READ_ONCE(src->nr_cids);
alloc_words = READ_ONCE(src->alloc_words);
if (unlikely(base >= npossible || nr_cids > npossible - base ||
SCX_CMASK_NR_WORDS(nr_cids) > alloc_words))
return -EINVAL;
ref->sch = sch;
ref->src = (struct scx_cmask *)src;
ref->base = base;
ref->nr_cids = nr_cids;
cid_to_shard = rcu_dereference_all(scx_cid_to_shard);
ref->shard_first = cid_to_shard[base];
if (likely(nr_cids))
ref->shard_end = cid_to_shard[base + nr_cids - 1] + 1;
else
ref->shard_end = ref->shard_first;
return 0;
}
/**
* scx_cmask_ref_init_kern - Bind a scx_cmask_ref to a kernel-owned cmask
* @sch: scheduler the cmask belongs to
* @m: kernel address of the target cmask, storage sized for @nr_cids at @base
* @base: first cid of the active range
* @nr_cids: active range length
* @ref: output ref
*
* Like scx_cmask_ref_init() but the geometry is supplied by the caller, not
* read from @m's header, so a concurrent BPF write to the header can't steer
* later sizing or offsets. Rewrite the header from the trusted geometry and
* bind @ref to it.
*/
void scx_cmask_ref_init_kern(struct scx_sched *sch, struct scx_cmask *m,
u32 base, u32 nr_cids, struct scx_cmask_ref *ref)
{
s32 *cid_to_shard;
WRITE_ONCE(m->base, base);
WRITE_ONCE(m->nr_cids, nr_cids);
WRITE_ONCE(m->alloc_words, SCX_CMASK_NR_WORDS(nr_cids));
ref->sch = sch;
ref->src = m;
ref->base = base;
ref->nr_cids = nr_cids;
cid_to_shard = rcu_dereference_all(scx_cid_to_shard);
ref->shard_first = cid_to_shard[base];
if (likely(nr_cids))
ref->shard_end = cid_to_shard[base + nr_cids - 1] + 1;
else
ref->shard_end = ref->shard_first;
}
/**
* scx_cmask_ref_shard - Read one shard from @ref into @out
* @ref: validated ref
* @shard_idx: target shard, in [@ref->shard_first, @ref->shard_end)
* @out: output cmask whose @out->alloc_words must hold the shard
*
* Set @out to the intersection of @ref's range with @shard_idx's cid range,
* with bits[] read from @ref->src via READ_ONCE. Empty intersection sets
* @out->nr_cids to 0. scx_error()s on @ref's sched if @out can't hold the
* shard.
*/
void scx_cmask_ref_shard(const struct scx_cmask_ref *ref, s32 shard_idx,
struct scx_cmask *out)
{
const struct scx_cid_shard *shard =
&rcu_dereference_all(scx_cid_shard_ranges)[shard_idx];
u32 shard_base = shard->base_cid;
u32 shard_end = shard_base + shard->nr_cids;
u32 isect_base, isect_end, nr_words, src_off, wi;
u64 head_mask, tail_mask;
isect_base = max(ref->base, shard_base);
isect_end = min(ref->base + ref->nr_cids, shard_end);
if (isect_base >= isect_end) {
out->base = shard_base;
out->nr_cids = 0;
return;
}
nr_words = ((isect_end - 1) / 64) - (isect_base / 64) + 1;
if (nr_words > out->alloc_words) {
scx_error(ref->sch, "scx_cmask_ref_shard: out alloc_words=%u < %u for shard %d",
out->alloc_words, nr_words, shard_idx);
out->base = shard_base;
out->nr_cids = 0;
return;
}
out->base = isect_base;
out->nr_cids = isect_end - isect_base;
src_off = (isect_base / 64) - (ref->base / 64);
for (wi = 0; wi < nr_words; wi++)
out->bits[wi] = READ_ONCE(ref->src->bits[src_off + wi]);
head_mask = GENMASK_U64(63, isect_base & 63);
out->bits[0] &= head_mask;
tail_mask = GENMASK_U64((isect_end - 1) & 63, 0);
out->bits[nr_words - 1] &= tail_mask;
}
/**
* scx_cmask_ref_or - OR @src into the arena cmask referenced by @ref
* @ref: validated ref
* @src: stable kernel cmask
*
* Bits inside the intersection of @ref's snapshotted range with @src's range
* are OR'd into @ref->src and bits outside are left unchanged. Stores on
* @ref->src use WRITE_ONCE since BPF may read/write concurrently.
*/
void scx_cmask_ref_or(const struct scx_cmask_ref *ref, const struct scx_cmask *src)
{
cmask_walk_op2(ref->src->bits, ref->base, ref->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_REF_OR);
}
/**
* scx_cmask_ref_copy - Copy @src into the arena cmask referenced by @ref
* @ref: validated ref
* @src: stable kernel cmask
*
* Bits inside the intersection of @ref's snapshotted range with @src's range
* take @src's values and bits outside are left unchanged. Stores on @ref->src
* use WRITE_ONCE since BPF may read/write concurrently.
*/
void scx_cmask_ref_copy(const struct scx_cmask_ref *ref, const struct scx_cmask *src)
{
cmask_walk_op2(ref->src->bits, ref->base, ref->nr_cids,
src->bits, src->base, src->nr_cids, CMASK_OP2_REF_COPY);
}
/**
* scx_cmask_ref_from_cpumask - Populate @ref's arena cmask from a cpumask
* @ref: kern-bound ref, see scx_cmask_ref_init_kern()
* @cpumask: cpus to translate into cids
*
* Write @ref's active range one word at a time, setting each cid's bit when
* its cpu is in @cpumask. Offsets and length come from @ref's trusted geometry
* and stores use WRITE_ONCE since BPF may read concurrently, so the arena
* header is never read.
*/
void scx_cmask_ref_from_cpumask(const struct scx_cmask_ref *ref,
const struct cpumask *cpumask)
{
struct scx_cmask *m = ref->src;
u32 base = ref->base, nr_cids = ref->nr_cids;
u32 wi, nr_words;
if (!nr_cids)
return;
nr_words = (base + nr_cids - 1) / 64 - base / 64 + 1;
for (wi = 0; wi < nr_words; wi++) {
u32 word_first_cid = (base / 64 + wi) * 64;
u64 word = 0;
u32 bit;
for (bit = 0; bit < 64; bit++) {
u32 cid = word_first_cid + bit;
if (cid < base || cid >= base + nr_cids)
continue;
if (cpumask_test_cpu(__scx_cid_to_cpu(cid), cpumask))
word |= BIT_U64(bit);
}
WRITE_ONCE(m->bits[wi], word);
}
}
int scx_cid_kfunc_init(void)
{
return register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, &scx_kfunc_set_init_cids) ?:
register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, &scx_kfunc_set_cid) ?:
register_btf_kfunc_id_set(BPF_PROG_TYPE_TRACING, &scx_kfunc_set_cid) ?:
register_btf_kfunc_id_set(BPF_PROG_TYPE_SYSCALL, &scx_kfunc_set_cid);
}
|