cpumask.h 18 KB

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  1. #ifndef __LINUX_CPUMASK_H
  2. #define __LINUX_CPUMASK_H
  3. /*
  4. * Cpumasks provide a bitmap suitable for representing the
  5. * set of CPU's in a system, one bit position per CPU number.
  6. *
  7. * See detailed comments in the file linux/bitmap.h describing the
  8. * data type on which these cpumasks are based.
  9. *
  10. * For details of cpumask_scnprintf() and cpumask_parse_user(),
  11. * see bitmap_scnprintf() and bitmap_parse_user() in lib/bitmap.c.
  12. * For details of cpulist_scnprintf() and cpulist_parse(), see
  13. * bitmap_scnlistprintf() and bitmap_parselist(), also in bitmap.c.
  14. * For details of cpu_remap(), see bitmap_bitremap in lib/bitmap.c
  15. * For details of cpus_remap(), see bitmap_remap in lib/bitmap.c.
  16. * For details of cpus_onto(), see bitmap_onto in lib/bitmap.c.
  17. * For details of cpus_fold(), see bitmap_fold in lib/bitmap.c.
  18. *
  19. * . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
  20. * Note: The alternate operations with the suffix "_nr" are used
  21. * to limit the range of the loop to nr_cpu_ids instead of
  22. * NR_CPUS when NR_CPUS > 64 for performance reasons.
  23. * If NR_CPUS is <= 64 then most assembler bitmask
  24. * operators execute faster with a constant range, so
  25. * the operator will continue to use NR_CPUS.
  26. *
  27. * Another consideration is that nr_cpu_ids is initialized
  28. * to NR_CPUS and isn't lowered until the possible cpus are
  29. * discovered (including any disabled cpus). So early uses
  30. * will span the entire range of NR_CPUS.
  31. * . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
  32. *
  33. * The available cpumask operations are:
  34. *
  35. * void cpu_set(cpu, mask) turn on bit 'cpu' in mask
  36. * void cpu_clear(cpu, mask) turn off bit 'cpu' in mask
  37. * void cpus_setall(mask) set all bits
  38. * void cpus_clear(mask) clear all bits
  39. * int cpu_isset(cpu, mask) true iff bit 'cpu' set in mask
  40. * int cpu_test_and_set(cpu, mask) test and set bit 'cpu' in mask
  41. *
  42. * void cpus_and(dst, src1, src2) dst = src1 & src2 [intersection]
  43. * void cpus_or(dst, src1, src2) dst = src1 | src2 [union]
  44. * void cpus_xor(dst, src1, src2) dst = src1 ^ src2
  45. * void cpus_andnot(dst, src1, src2) dst = src1 & ~src2
  46. * void cpus_complement(dst, src) dst = ~src
  47. *
  48. * int cpus_equal(mask1, mask2) Does mask1 == mask2?
  49. * int cpus_intersects(mask1, mask2) Do mask1 and mask2 intersect?
  50. * int cpus_subset(mask1, mask2) Is mask1 a subset of mask2?
  51. * int cpus_empty(mask) Is mask empty (no bits sets)?
  52. * int cpus_full(mask) Is mask full (all bits sets)?
  53. * int cpus_weight(mask) Hamming weigh - number of set bits
  54. * int cpus_weight_nr(mask) Same using nr_cpu_ids instead of NR_CPUS
  55. *
  56. * void cpus_shift_right(dst, src, n) Shift right
  57. * void cpus_shift_left(dst, src, n) Shift left
  58. *
  59. * int first_cpu(mask) Number lowest set bit, or NR_CPUS
  60. * int next_cpu(cpu, mask) Next cpu past 'cpu', or NR_CPUS
  61. * int next_cpu_nr(cpu, mask) Next cpu past 'cpu', or nr_cpu_ids
  62. *
  63. * cpumask_t cpumask_of_cpu(cpu) Return cpumask with bit 'cpu' set
  64. *ifdef CONFIG_HAS_CPUMASK_OF_CPU
  65. * cpumask_of_cpu_ptr_declare(v) Declares cpumask_t *v
  66. * cpumask_of_cpu_ptr_next(v, cpu) Sets v = &cpumask_of_cpu_map[cpu]
  67. * cpumask_of_cpu_ptr(v, cpu) Combines above two operations
  68. *else
  69. * cpumask_of_cpu_ptr_declare(v) Declares cpumask_t _v and *v = &_v
  70. * cpumask_of_cpu_ptr_next(v, cpu) Sets _v = cpumask_of_cpu(cpu)
  71. * cpumask_of_cpu_ptr(v, cpu) Combines above two operations
  72. *endif
  73. * CPU_MASK_ALL Initializer - all bits set
  74. * CPU_MASK_NONE Initializer - no bits set
  75. * unsigned long *cpus_addr(mask) Array of unsigned long's in mask
  76. *
  77. * int cpumask_scnprintf(buf, len, mask) Format cpumask for printing
  78. * int cpumask_parse_user(ubuf, ulen, mask) Parse ascii string as cpumask
  79. * int cpulist_scnprintf(buf, len, mask) Format cpumask as list for printing
  80. * int cpulist_parse(buf, map) Parse ascii string as cpulist
  81. * int cpu_remap(oldbit, old, new) newbit = map(old, new)(oldbit)
  82. * void cpus_remap(dst, src, old, new) *dst = map(old, new)(src)
  83. * void cpus_onto(dst, orig, relmap) *dst = orig relative to relmap
  84. * void cpus_fold(dst, orig, sz) dst bits = orig bits mod sz
  85. *
  86. * for_each_cpu_mask(cpu, mask) for-loop cpu over mask using NR_CPUS
  87. * for_each_cpu_mask_nr(cpu, mask) for-loop cpu over mask using nr_cpu_ids
  88. *
  89. * int num_online_cpus() Number of online CPUs
  90. * int num_possible_cpus() Number of all possible CPUs
  91. * int num_present_cpus() Number of present CPUs
  92. *
  93. * int cpu_online(cpu) Is some cpu online?
  94. * int cpu_possible(cpu) Is some cpu possible?
  95. * int cpu_present(cpu) Is some cpu present (can schedule)?
  96. *
  97. * int any_online_cpu(mask) First online cpu in mask
  98. *
  99. * for_each_possible_cpu(cpu) for-loop cpu over cpu_possible_map
  100. * for_each_online_cpu(cpu) for-loop cpu over cpu_online_map
  101. * for_each_present_cpu(cpu) for-loop cpu over cpu_present_map
  102. *
  103. * Subtlety:
  104. * 1) The 'type-checked' form of cpu_isset() causes gcc (3.3.2, anyway)
  105. * to generate slightly worse code. Note for example the additional
  106. * 40 lines of assembly code compiling the "for each possible cpu"
  107. * loops buried in the disk_stat_read() macros calls when compiling
  108. * drivers/block/genhd.c (arch i386, CONFIG_SMP=y). So use a simple
  109. * one-line #define for cpu_isset(), instead of wrapping an inline
  110. * inside a macro, the way we do the other calls.
  111. */
  112. #include <linux/kernel.h>
  113. #include <linux/threads.h>
  114. #include <linux/bitmap.h>
  115. typedef struct { DECLARE_BITMAP(bits, NR_CPUS); } cpumask_t;
  116. extern cpumask_t _unused_cpumask_arg_;
  117. #define cpu_set(cpu, dst) __cpu_set((cpu), &(dst))
  118. static inline void __cpu_set(int cpu, volatile cpumask_t *dstp)
  119. {
  120. set_bit(cpu, dstp->bits);
  121. }
  122. #define cpu_clear(cpu, dst) __cpu_clear((cpu), &(dst))
  123. static inline void __cpu_clear(int cpu, volatile cpumask_t *dstp)
  124. {
  125. clear_bit(cpu, dstp->bits);
  126. }
  127. #define cpus_setall(dst) __cpus_setall(&(dst), NR_CPUS)
  128. static inline void __cpus_setall(cpumask_t *dstp, int nbits)
  129. {
  130. bitmap_fill(dstp->bits, nbits);
  131. }
  132. #define cpus_clear(dst) __cpus_clear(&(dst), NR_CPUS)
  133. static inline void __cpus_clear(cpumask_t *dstp, int nbits)
  134. {
  135. bitmap_zero(dstp->bits, nbits);
  136. }
  137. /* No static inline type checking - see Subtlety (1) above. */
  138. #define cpu_isset(cpu, cpumask) test_bit((cpu), (cpumask).bits)
  139. #define cpu_test_and_set(cpu, cpumask) __cpu_test_and_set((cpu), &(cpumask))
  140. static inline int __cpu_test_and_set(int cpu, cpumask_t *addr)
  141. {
  142. return test_and_set_bit(cpu, addr->bits);
  143. }
  144. #define cpus_and(dst, src1, src2) __cpus_and(&(dst), &(src1), &(src2), NR_CPUS)
  145. static inline void __cpus_and(cpumask_t *dstp, const cpumask_t *src1p,
  146. const cpumask_t *src2p, int nbits)
  147. {
  148. bitmap_and(dstp->bits, src1p->bits, src2p->bits, nbits);
  149. }
  150. #define cpus_or(dst, src1, src2) __cpus_or(&(dst), &(src1), &(src2), NR_CPUS)
  151. static inline void __cpus_or(cpumask_t *dstp, const cpumask_t *src1p,
  152. const cpumask_t *src2p, int nbits)
  153. {
  154. bitmap_or(dstp->bits, src1p->bits, src2p->bits, nbits);
  155. }
  156. #define cpus_xor(dst, src1, src2) __cpus_xor(&(dst), &(src1), &(src2), NR_CPUS)
  157. static inline void __cpus_xor(cpumask_t *dstp, const cpumask_t *src1p,
  158. const cpumask_t *src2p, int nbits)
  159. {
  160. bitmap_xor(dstp->bits, src1p->bits, src2p->bits, nbits);
  161. }
  162. #define cpus_andnot(dst, src1, src2) \
  163. __cpus_andnot(&(dst), &(src1), &(src2), NR_CPUS)
  164. static inline void __cpus_andnot(cpumask_t *dstp, const cpumask_t *src1p,
  165. const cpumask_t *src2p, int nbits)
  166. {
  167. bitmap_andnot(dstp->bits, src1p->bits, src2p->bits, nbits);
  168. }
  169. #define cpus_complement(dst, src) __cpus_complement(&(dst), &(src), NR_CPUS)
  170. static inline void __cpus_complement(cpumask_t *dstp,
  171. const cpumask_t *srcp, int nbits)
  172. {
  173. bitmap_complement(dstp->bits, srcp->bits, nbits);
  174. }
  175. #define cpus_equal(src1, src2) __cpus_equal(&(src1), &(src2), NR_CPUS)
  176. static inline int __cpus_equal(const cpumask_t *src1p,
  177. const cpumask_t *src2p, int nbits)
  178. {
  179. return bitmap_equal(src1p->bits, src2p->bits, nbits);
  180. }
  181. #define cpus_intersects(src1, src2) __cpus_intersects(&(src1), &(src2), NR_CPUS)
  182. static inline int __cpus_intersects(const cpumask_t *src1p,
  183. const cpumask_t *src2p, int nbits)
  184. {
  185. return bitmap_intersects(src1p->bits, src2p->bits, nbits);
  186. }
  187. #define cpus_subset(src1, src2) __cpus_subset(&(src1), &(src2), NR_CPUS)
  188. static inline int __cpus_subset(const cpumask_t *src1p,
  189. const cpumask_t *src2p, int nbits)
  190. {
  191. return bitmap_subset(src1p->bits, src2p->bits, nbits);
  192. }
  193. #define cpus_empty(src) __cpus_empty(&(src), NR_CPUS)
  194. static inline int __cpus_empty(const cpumask_t *srcp, int nbits)
  195. {
  196. return bitmap_empty(srcp->bits, nbits);
  197. }
  198. #define cpus_full(cpumask) __cpus_full(&(cpumask), NR_CPUS)
  199. static inline int __cpus_full(const cpumask_t *srcp, int nbits)
  200. {
  201. return bitmap_full(srcp->bits, nbits);
  202. }
  203. #define cpus_weight(cpumask) __cpus_weight(&(cpumask), NR_CPUS)
  204. static inline int __cpus_weight(const cpumask_t *srcp, int nbits)
  205. {
  206. return bitmap_weight(srcp->bits, nbits);
  207. }
  208. #define cpus_shift_right(dst, src, n) \
  209. __cpus_shift_right(&(dst), &(src), (n), NR_CPUS)
  210. static inline void __cpus_shift_right(cpumask_t *dstp,
  211. const cpumask_t *srcp, int n, int nbits)
  212. {
  213. bitmap_shift_right(dstp->bits, srcp->bits, n, nbits);
  214. }
  215. #define cpus_shift_left(dst, src, n) \
  216. __cpus_shift_left(&(dst), &(src), (n), NR_CPUS)
  217. static inline void __cpus_shift_left(cpumask_t *dstp,
  218. const cpumask_t *srcp, int n, int nbits)
  219. {
  220. bitmap_shift_left(dstp->bits, srcp->bits, n, nbits);
  221. }
  222. #ifdef CONFIG_HAVE_CPUMASK_OF_CPU_MAP
  223. extern cpumask_t *cpumask_of_cpu_map;
  224. #define cpumask_of_cpu(cpu) (cpumask_of_cpu_map[cpu])
  225. #define cpumask_of_cpu_ptr(v, cpu) \
  226. const cpumask_t *v = &cpumask_of_cpu(cpu)
  227. #define cpumask_of_cpu_ptr_declare(v) \
  228. const cpumask_t *v
  229. #define cpumask_of_cpu_ptr_next(v, cpu) \
  230. v = &cpumask_of_cpu(cpu)
  231. #else
  232. #define cpumask_of_cpu(cpu) \
  233. ({ \
  234. typeof(_unused_cpumask_arg_) m; \
  235. if (sizeof(m) == sizeof(unsigned long)) { \
  236. m.bits[0] = 1UL<<(cpu); \
  237. } else { \
  238. cpus_clear(m); \
  239. cpu_set((cpu), m); \
  240. } \
  241. m; \
  242. })
  243. #define cpumask_of_cpu_ptr(v, cpu) \
  244. cpumask_t _##v = cpumask_of_cpu(cpu); \
  245. const cpumask_t *v = &_##v
  246. #define cpumask_of_cpu_ptr_declare(v) \
  247. cpumask_t _##v; \
  248. const cpumask_t *v = &_##v
  249. #define cpumask_of_cpu_ptr_next(v, cpu) \
  250. _##v = cpumask_of_cpu(cpu)
  251. #endif
  252. #define CPU_MASK_LAST_WORD BITMAP_LAST_WORD_MASK(NR_CPUS)
  253. #if NR_CPUS <= BITS_PER_LONG
  254. #define CPU_MASK_ALL \
  255. (cpumask_t) { { \
  256. [BITS_TO_LONGS(NR_CPUS)-1] = CPU_MASK_LAST_WORD \
  257. } }
  258. #define CPU_MASK_ALL_PTR (&CPU_MASK_ALL)
  259. #else
  260. #define CPU_MASK_ALL \
  261. (cpumask_t) { { \
  262. [0 ... BITS_TO_LONGS(NR_CPUS)-2] = ~0UL, \
  263. [BITS_TO_LONGS(NR_CPUS)-1] = CPU_MASK_LAST_WORD \
  264. } }
  265. /* cpu_mask_all is in init/main.c */
  266. extern cpumask_t cpu_mask_all;
  267. #define CPU_MASK_ALL_PTR (&cpu_mask_all)
  268. #endif
  269. #define CPU_MASK_NONE \
  270. (cpumask_t) { { \
  271. [0 ... BITS_TO_LONGS(NR_CPUS)-1] = 0UL \
  272. } }
  273. #define CPU_MASK_CPU0 \
  274. (cpumask_t) { { \
  275. [0] = 1UL \
  276. } }
  277. #define cpus_addr(src) ((src).bits)
  278. #define cpumask_scnprintf(buf, len, src) \
  279. __cpumask_scnprintf((buf), (len), &(src), NR_CPUS)
  280. static inline int __cpumask_scnprintf(char *buf, int len,
  281. const cpumask_t *srcp, int nbits)
  282. {
  283. return bitmap_scnprintf(buf, len, srcp->bits, nbits);
  284. }
  285. #define cpumask_parse_user(ubuf, ulen, dst) \
  286. __cpumask_parse_user((ubuf), (ulen), &(dst), NR_CPUS)
  287. static inline int __cpumask_parse_user(const char __user *buf, int len,
  288. cpumask_t *dstp, int nbits)
  289. {
  290. return bitmap_parse_user(buf, len, dstp->bits, nbits);
  291. }
  292. #define cpulist_scnprintf(buf, len, src) \
  293. __cpulist_scnprintf((buf), (len), &(src), NR_CPUS)
  294. static inline int __cpulist_scnprintf(char *buf, int len,
  295. const cpumask_t *srcp, int nbits)
  296. {
  297. return bitmap_scnlistprintf(buf, len, srcp->bits, nbits);
  298. }
  299. #define cpulist_parse(buf, dst) __cpulist_parse((buf), &(dst), NR_CPUS)
  300. static inline int __cpulist_parse(const char *buf, cpumask_t *dstp, int nbits)
  301. {
  302. return bitmap_parselist(buf, dstp->bits, nbits);
  303. }
  304. #define cpu_remap(oldbit, old, new) \
  305. __cpu_remap((oldbit), &(old), &(new), NR_CPUS)
  306. static inline int __cpu_remap(int oldbit,
  307. const cpumask_t *oldp, const cpumask_t *newp, int nbits)
  308. {
  309. return bitmap_bitremap(oldbit, oldp->bits, newp->bits, nbits);
  310. }
  311. #define cpus_remap(dst, src, old, new) \
  312. __cpus_remap(&(dst), &(src), &(old), &(new), NR_CPUS)
  313. static inline void __cpus_remap(cpumask_t *dstp, const cpumask_t *srcp,
  314. const cpumask_t *oldp, const cpumask_t *newp, int nbits)
  315. {
  316. bitmap_remap(dstp->bits, srcp->bits, oldp->bits, newp->bits, nbits);
  317. }
  318. #define cpus_onto(dst, orig, relmap) \
  319. __cpus_onto(&(dst), &(orig), &(relmap), NR_CPUS)
  320. static inline void __cpus_onto(cpumask_t *dstp, const cpumask_t *origp,
  321. const cpumask_t *relmapp, int nbits)
  322. {
  323. bitmap_onto(dstp->bits, origp->bits, relmapp->bits, nbits);
  324. }
  325. #define cpus_fold(dst, orig, sz) \
  326. __cpus_fold(&(dst), &(orig), sz, NR_CPUS)
  327. static inline void __cpus_fold(cpumask_t *dstp, const cpumask_t *origp,
  328. int sz, int nbits)
  329. {
  330. bitmap_fold(dstp->bits, origp->bits, sz, nbits);
  331. }
  332. #if NR_CPUS == 1
  333. #define nr_cpu_ids 1
  334. #define first_cpu(src) ({ (void)(src); 0; })
  335. #define next_cpu(n, src) ({ (void)(src); 1; })
  336. #define any_online_cpu(mask) 0
  337. #define for_each_cpu_mask(cpu, mask) \
  338. for ((cpu) = 0; (cpu) < 1; (cpu)++, (void)mask)
  339. #else /* NR_CPUS > 1 */
  340. extern int nr_cpu_ids;
  341. int __first_cpu(const cpumask_t *srcp);
  342. int __next_cpu(int n, const cpumask_t *srcp);
  343. int __any_online_cpu(const cpumask_t *mask);
  344. #define first_cpu(src) __first_cpu(&(src))
  345. #define next_cpu(n, src) __next_cpu((n), &(src))
  346. #define any_online_cpu(mask) __any_online_cpu(&(mask))
  347. #define for_each_cpu_mask(cpu, mask) \
  348. for ((cpu) = -1; \
  349. (cpu) = next_cpu((cpu), (mask)), \
  350. (cpu) < NR_CPUS; )
  351. #endif
  352. #if NR_CPUS <= 64
  353. #define next_cpu_nr(n, src) next_cpu(n, src)
  354. #define cpus_weight_nr(cpumask) cpus_weight(cpumask)
  355. #define for_each_cpu_mask_nr(cpu, mask) for_each_cpu_mask(cpu, mask)
  356. #else /* NR_CPUS > 64 */
  357. int __next_cpu_nr(int n, const cpumask_t *srcp);
  358. #define next_cpu_nr(n, src) __next_cpu_nr((n), &(src))
  359. #define cpus_weight_nr(cpumask) __cpus_weight(&(cpumask), nr_cpu_ids)
  360. #define for_each_cpu_mask_nr(cpu, mask) \
  361. for ((cpu) = -1; \
  362. (cpu) = next_cpu_nr((cpu), (mask)), \
  363. (cpu) < nr_cpu_ids; )
  364. #endif /* NR_CPUS > 64 */
  365. /*
  366. * The following particular system cpumasks and operations manage
  367. * possible, present and online cpus. Each of them is a fixed size
  368. * bitmap of size NR_CPUS.
  369. *
  370. * #ifdef CONFIG_HOTPLUG_CPU
  371. * cpu_possible_map - has bit 'cpu' set iff cpu is populatable
  372. * cpu_present_map - has bit 'cpu' set iff cpu is populated
  373. * cpu_online_map - has bit 'cpu' set iff cpu available to scheduler
  374. * #else
  375. * cpu_possible_map - has bit 'cpu' set iff cpu is populated
  376. * cpu_present_map - copy of cpu_possible_map
  377. * cpu_online_map - has bit 'cpu' set iff cpu available to scheduler
  378. * #endif
  379. *
  380. * In either case, NR_CPUS is fixed at compile time, as the static
  381. * size of these bitmaps. The cpu_possible_map is fixed at boot
  382. * time, as the set of CPU id's that it is possible might ever
  383. * be plugged in at anytime during the life of that system boot.
  384. * The cpu_present_map is dynamic(*), representing which CPUs
  385. * are currently plugged in. And cpu_online_map is the dynamic
  386. * subset of cpu_present_map, indicating those CPUs available
  387. * for scheduling.
  388. *
  389. * If HOTPLUG is enabled, then cpu_possible_map is forced to have
  390. * all NR_CPUS bits set, otherwise it is just the set of CPUs that
  391. * ACPI reports present at boot.
  392. *
  393. * If HOTPLUG is enabled, then cpu_present_map varies dynamically,
  394. * depending on what ACPI reports as currently plugged in, otherwise
  395. * cpu_present_map is just a copy of cpu_possible_map.
  396. *
  397. * (*) Well, cpu_present_map is dynamic in the hotplug case. If not
  398. * hotplug, it's a copy of cpu_possible_map, hence fixed at boot.
  399. *
  400. * Subtleties:
  401. * 1) UP arch's (NR_CPUS == 1, CONFIG_SMP not defined) hardcode
  402. * assumption that their single CPU is online. The UP
  403. * cpu_{online,possible,present}_maps are placebos. Changing them
  404. * will have no useful affect on the following num_*_cpus()
  405. * and cpu_*() macros in the UP case. This ugliness is a UP
  406. * optimization - don't waste any instructions or memory references
  407. * asking if you're online or how many CPUs there are if there is
  408. * only one CPU.
  409. * 2) Most SMP arch's #define some of these maps to be some
  410. * other map specific to that arch. Therefore, the following
  411. * must be #define macros, not inlines. To see why, examine
  412. * the assembly code produced by the following. Note that
  413. * set1() writes phys_x_map, but set2() writes x_map:
  414. * int x_map, phys_x_map;
  415. * #define set1(a) x_map = a
  416. * inline void set2(int a) { x_map = a; }
  417. * #define x_map phys_x_map
  418. * main(){ set1(3); set2(5); }
  419. */
  420. extern cpumask_t cpu_possible_map;
  421. extern cpumask_t cpu_online_map;
  422. extern cpumask_t cpu_present_map;
  423. #if NR_CPUS > 1
  424. #define num_online_cpus() cpus_weight_nr(cpu_online_map)
  425. #define num_possible_cpus() cpus_weight_nr(cpu_possible_map)
  426. #define num_present_cpus() cpus_weight_nr(cpu_present_map)
  427. #define cpu_online(cpu) cpu_isset((cpu), cpu_online_map)
  428. #define cpu_possible(cpu) cpu_isset((cpu), cpu_possible_map)
  429. #define cpu_present(cpu) cpu_isset((cpu), cpu_present_map)
  430. #else
  431. #define num_online_cpus() 1
  432. #define num_possible_cpus() 1
  433. #define num_present_cpus() 1
  434. #define cpu_online(cpu) ((cpu) == 0)
  435. #define cpu_possible(cpu) ((cpu) == 0)
  436. #define cpu_present(cpu) ((cpu) == 0)
  437. #endif
  438. #define cpu_is_offline(cpu) unlikely(!cpu_online(cpu))
  439. #define for_each_possible_cpu(cpu) for_each_cpu_mask_nr((cpu), cpu_possible_map)
  440. #define for_each_online_cpu(cpu) for_each_cpu_mask_nr((cpu), cpu_online_map)
  441. #define for_each_present_cpu(cpu) for_each_cpu_mask_nr((cpu), cpu_present_map)
  442. #endif /* __LINUX_CPUMASK_H */