percpu.h 25 KB

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  1. #ifndef __LINUX_PERCPU_H
  2. #define __LINUX_PERCPU_H
  3. #include <linux/mmdebug.h>
  4. #include <linux/preempt.h>
  5. #include <linux/smp.h>
  6. #include <linux/cpumask.h>
  7. #include <linux/pfn.h>
  8. #include <linux/init.h>
  9. #include <asm/percpu.h>
  10. /* enough to cover all DEFINE_PER_CPUs in modules */
  11. #ifdef CONFIG_MODULES
  12. #define PERCPU_MODULE_RESERVE (8 << 10)
  13. #else
  14. #define PERCPU_MODULE_RESERVE 0
  15. #endif
  16. #ifndef PERCPU_ENOUGH_ROOM
  17. #define PERCPU_ENOUGH_ROOM \
  18. (ALIGN(__per_cpu_end - __per_cpu_start, SMP_CACHE_BYTES) + \
  19. PERCPU_MODULE_RESERVE)
  20. #endif
  21. /*
  22. * Must be an lvalue. Since @var must be a simple identifier,
  23. * we force a syntax error here if it isn't.
  24. */
  25. #define get_cpu_var(var) (*({ \
  26. preempt_disable(); \
  27. &__get_cpu_var(var); }))
  28. /*
  29. * The weird & is necessary because sparse considers (void)(var) to be
  30. * a direct dereference of percpu variable (var).
  31. */
  32. #define put_cpu_var(var) do { \
  33. (void)&(var); \
  34. preempt_enable(); \
  35. } while (0)
  36. #define get_cpu_ptr(var) ({ \
  37. preempt_disable(); \
  38. this_cpu_ptr(var); })
  39. #define put_cpu_ptr(var) do { \
  40. (void)(var); \
  41. preempt_enable(); \
  42. } while (0)
  43. /* minimum unit size, also is the maximum supported allocation size */
  44. #define PCPU_MIN_UNIT_SIZE PFN_ALIGN(32 << 10)
  45. /*
  46. * Percpu allocator can serve percpu allocations before slab is
  47. * initialized which allows slab to depend on the percpu allocator.
  48. * The following two parameters decide how much resource to
  49. * preallocate for this. Keep PERCPU_DYNAMIC_RESERVE equal to or
  50. * larger than PERCPU_DYNAMIC_EARLY_SIZE.
  51. */
  52. #define PERCPU_DYNAMIC_EARLY_SLOTS 128
  53. #define PERCPU_DYNAMIC_EARLY_SIZE (12 << 10)
  54. /*
  55. * PERCPU_DYNAMIC_RESERVE indicates the amount of free area to piggy
  56. * back on the first chunk for dynamic percpu allocation if arch is
  57. * manually allocating and mapping it for faster access (as a part of
  58. * large page mapping for example).
  59. *
  60. * The following values give between one and two pages of free space
  61. * after typical minimal boot (2-way SMP, single disk and NIC) with
  62. * both defconfig and a distro config on x86_64 and 32. More
  63. * intelligent way to determine this would be nice.
  64. */
  65. #if BITS_PER_LONG > 32
  66. #define PERCPU_DYNAMIC_RESERVE (20 << 10)
  67. #else
  68. #define PERCPU_DYNAMIC_RESERVE (12 << 10)
  69. #endif
  70. extern void *pcpu_base_addr;
  71. extern const unsigned long *pcpu_unit_offsets;
  72. struct pcpu_group_info {
  73. int nr_units; /* aligned # of units */
  74. unsigned long base_offset; /* base address offset */
  75. unsigned int *cpu_map; /* unit->cpu map, empty
  76. * entries contain NR_CPUS */
  77. };
  78. struct pcpu_alloc_info {
  79. size_t static_size;
  80. size_t reserved_size;
  81. size_t dyn_size;
  82. size_t unit_size;
  83. size_t atom_size;
  84. size_t alloc_size;
  85. size_t __ai_size; /* internal, don't use */
  86. int nr_groups; /* 0 if grouping unnecessary */
  87. struct pcpu_group_info groups[];
  88. };
  89. enum pcpu_fc {
  90. PCPU_FC_AUTO,
  91. PCPU_FC_EMBED,
  92. PCPU_FC_PAGE,
  93. PCPU_FC_NR,
  94. };
  95. extern const char * const pcpu_fc_names[PCPU_FC_NR];
  96. extern enum pcpu_fc pcpu_chosen_fc;
  97. typedef void * (*pcpu_fc_alloc_fn_t)(unsigned int cpu, size_t size,
  98. size_t align);
  99. typedef void (*pcpu_fc_free_fn_t)(void *ptr, size_t size);
  100. typedef void (*pcpu_fc_populate_pte_fn_t)(unsigned long addr);
  101. typedef int (pcpu_fc_cpu_distance_fn_t)(unsigned int from, unsigned int to);
  102. extern struct pcpu_alloc_info * __init pcpu_alloc_alloc_info(int nr_groups,
  103. int nr_units);
  104. extern void __init pcpu_free_alloc_info(struct pcpu_alloc_info *ai);
  105. extern int __init pcpu_setup_first_chunk(const struct pcpu_alloc_info *ai,
  106. void *base_addr);
  107. #ifdef CONFIG_NEED_PER_CPU_EMBED_FIRST_CHUNK
  108. extern int __init pcpu_embed_first_chunk(size_t reserved_size, size_t dyn_size,
  109. size_t atom_size,
  110. pcpu_fc_cpu_distance_fn_t cpu_distance_fn,
  111. pcpu_fc_alloc_fn_t alloc_fn,
  112. pcpu_fc_free_fn_t free_fn);
  113. #endif
  114. #ifdef CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK
  115. extern int __init pcpu_page_first_chunk(size_t reserved_size,
  116. pcpu_fc_alloc_fn_t alloc_fn,
  117. pcpu_fc_free_fn_t free_fn,
  118. pcpu_fc_populate_pte_fn_t populate_pte_fn);
  119. #endif
  120. /*
  121. * Use this to get to a cpu's version of the per-cpu object
  122. * dynamically allocated. Non-atomic access to the current CPU's
  123. * version should probably be combined with get_cpu()/put_cpu().
  124. */
  125. #ifdef CONFIG_SMP
  126. #define per_cpu_ptr(ptr, cpu) SHIFT_PERCPU_PTR((ptr), per_cpu_offset((cpu)))
  127. #else
  128. #define per_cpu_ptr(ptr, cpu) ({ (void)(cpu); VERIFY_PERCPU_PTR((ptr)); })
  129. #endif
  130. extern void __percpu *__alloc_reserved_percpu(size_t size, size_t align);
  131. extern bool is_kernel_percpu_address(unsigned long addr);
  132. #if !defined(CONFIG_SMP) || !defined(CONFIG_HAVE_SETUP_PER_CPU_AREA)
  133. extern void __init setup_per_cpu_areas(void);
  134. #endif
  135. extern void __init percpu_init_late(void);
  136. extern void __percpu *__alloc_percpu(size_t size, size_t align);
  137. extern void free_percpu(void __percpu *__pdata);
  138. extern phys_addr_t per_cpu_ptr_to_phys(void *addr);
  139. #define alloc_percpu(type) \
  140. (typeof(type) __percpu *)__alloc_percpu(sizeof(type), __alignof__(type))
  141. /*
  142. * Branching function to split up a function into a set of functions that
  143. * are called for different scalar sizes of the objects handled.
  144. */
  145. extern void __bad_size_call_parameter(void);
  146. #define __pcpu_size_call_return(stem, variable) \
  147. ({ typeof(variable) pscr_ret__; \
  148. __verify_pcpu_ptr(&(variable)); \
  149. switch(sizeof(variable)) { \
  150. case 1: pscr_ret__ = stem##1(variable);break; \
  151. case 2: pscr_ret__ = stem##2(variable);break; \
  152. case 4: pscr_ret__ = stem##4(variable);break; \
  153. case 8: pscr_ret__ = stem##8(variable);break; \
  154. default: \
  155. __bad_size_call_parameter();break; \
  156. } \
  157. pscr_ret__; \
  158. })
  159. #define __pcpu_size_call_return2(stem, variable, ...) \
  160. ({ \
  161. typeof(variable) pscr2_ret__; \
  162. __verify_pcpu_ptr(&(variable)); \
  163. switch(sizeof(variable)) { \
  164. case 1: pscr2_ret__ = stem##1(variable, __VA_ARGS__); break; \
  165. case 2: pscr2_ret__ = stem##2(variable, __VA_ARGS__); break; \
  166. case 4: pscr2_ret__ = stem##4(variable, __VA_ARGS__); break; \
  167. case 8: pscr2_ret__ = stem##8(variable, __VA_ARGS__); break; \
  168. default: \
  169. __bad_size_call_parameter(); break; \
  170. } \
  171. pscr2_ret__; \
  172. })
  173. /*
  174. * Special handling for cmpxchg_double. cmpxchg_double is passed two
  175. * percpu variables. The first has to be aligned to a double word
  176. * boundary and the second has to follow directly thereafter.
  177. * We enforce this on all architectures even if they don't support
  178. * a double cmpxchg instruction, since it's a cheap requirement, and it
  179. * avoids breaking the requirement for architectures with the instruction.
  180. */
  181. #define __pcpu_double_call_return_bool(stem, pcp1, pcp2, ...) \
  182. ({ \
  183. bool pdcrb_ret__; \
  184. __verify_pcpu_ptr(&pcp1); \
  185. BUILD_BUG_ON(sizeof(pcp1) != sizeof(pcp2)); \
  186. VM_BUG_ON((unsigned long)(&pcp1) % (2 * sizeof(pcp1))); \
  187. VM_BUG_ON((unsigned long)(&pcp2) != \
  188. (unsigned long)(&pcp1) + sizeof(pcp1)); \
  189. switch(sizeof(pcp1)) { \
  190. case 1: pdcrb_ret__ = stem##1(pcp1, pcp2, __VA_ARGS__); break; \
  191. case 2: pdcrb_ret__ = stem##2(pcp1, pcp2, __VA_ARGS__); break; \
  192. case 4: pdcrb_ret__ = stem##4(pcp1, pcp2, __VA_ARGS__); break; \
  193. case 8: pdcrb_ret__ = stem##8(pcp1, pcp2, __VA_ARGS__); break; \
  194. default: \
  195. __bad_size_call_parameter(); break; \
  196. } \
  197. pdcrb_ret__; \
  198. })
  199. #define __pcpu_size_call(stem, variable, ...) \
  200. do { \
  201. __verify_pcpu_ptr(&(variable)); \
  202. switch(sizeof(variable)) { \
  203. case 1: stem##1(variable, __VA_ARGS__);break; \
  204. case 2: stem##2(variable, __VA_ARGS__);break; \
  205. case 4: stem##4(variable, __VA_ARGS__);break; \
  206. case 8: stem##8(variable, __VA_ARGS__);break; \
  207. default: \
  208. __bad_size_call_parameter();break; \
  209. } \
  210. } while (0)
  211. /*
  212. * this_cpu operations (C) 2008-2013 Christoph Lameter <cl@linux.com>
  213. *
  214. * Optimized manipulation for memory allocated through the per cpu
  215. * allocator or for addresses of per cpu variables.
  216. *
  217. * These operation guarantee exclusivity of access for other operations
  218. * on the *same* processor. The assumption is that per cpu data is only
  219. * accessed by a single processor instance (the current one).
  220. *
  221. * The first group is used for accesses that must be done in a
  222. * preemption safe way since we know that the context is not preempt
  223. * safe. Interrupts may occur. If the interrupt modifies the variable
  224. * too then RMW actions will not be reliable.
  225. *
  226. * The arch code can provide optimized functions in two ways:
  227. *
  228. * 1. Override the function completely. F.e. define this_cpu_add().
  229. * The arch must then ensure that the various scalar format passed
  230. * are handled correctly.
  231. *
  232. * 2. Provide functions for certain scalar sizes. F.e. provide
  233. * this_cpu_add_2() to provide per cpu atomic operations for 2 byte
  234. * sized RMW actions. If arch code does not provide operations for
  235. * a scalar size then the fallback in the generic code will be
  236. * used.
  237. */
  238. #define _this_cpu_generic_read(pcp) \
  239. ({ typeof(pcp) ret__; \
  240. preempt_disable(); \
  241. ret__ = *this_cpu_ptr(&(pcp)); \
  242. preempt_enable(); \
  243. ret__; \
  244. })
  245. #ifndef this_cpu_read
  246. # ifndef this_cpu_read_1
  247. # define this_cpu_read_1(pcp) _this_cpu_generic_read(pcp)
  248. # endif
  249. # ifndef this_cpu_read_2
  250. # define this_cpu_read_2(pcp) _this_cpu_generic_read(pcp)
  251. # endif
  252. # ifndef this_cpu_read_4
  253. # define this_cpu_read_4(pcp) _this_cpu_generic_read(pcp)
  254. # endif
  255. # ifndef this_cpu_read_8
  256. # define this_cpu_read_8(pcp) _this_cpu_generic_read(pcp)
  257. # endif
  258. # define this_cpu_read(pcp) __pcpu_size_call_return(this_cpu_read_, (pcp))
  259. #endif
  260. #define _this_cpu_generic_to_op(pcp, val, op) \
  261. do { \
  262. unsigned long flags; \
  263. raw_local_irq_save(flags); \
  264. *raw_cpu_ptr(&(pcp)) op val; \
  265. raw_local_irq_restore(flags); \
  266. } while (0)
  267. #ifndef this_cpu_write
  268. # ifndef this_cpu_write_1
  269. # define this_cpu_write_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
  270. # endif
  271. # ifndef this_cpu_write_2
  272. # define this_cpu_write_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
  273. # endif
  274. # ifndef this_cpu_write_4
  275. # define this_cpu_write_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
  276. # endif
  277. # ifndef this_cpu_write_8
  278. # define this_cpu_write_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
  279. # endif
  280. # define this_cpu_write(pcp, val) __pcpu_size_call(this_cpu_write_, (pcp), (val))
  281. #endif
  282. #ifndef this_cpu_add
  283. # ifndef this_cpu_add_1
  284. # define this_cpu_add_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
  285. # endif
  286. # ifndef this_cpu_add_2
  287. # define this_cpu_add_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
  288. # endif
  289. # ifndef this_cpu_add_4
  290. # define this_cpu_add_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
  291. # endif
  292. # ifndef this_cpu_add_8
  293. # define this_cpu_add_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
  294. # endif
  295. # define this_cpu_add(pcp, val) __pcpu_size_call(this_cpu_add_, (pcp), (val))
  296. #endif
  297. #ifndef this_cpu_sub
  298. # define this_cpu_sub(pcp, val) this_cpu_add((pcp), -(typeof(pcp))(val))
  299. #endif
  300. #ifndef this_cpu_inc
  301. # define this_cpu_inc(pcp) this_cpu_add((pcp), 1)
  302. #endif
  303. #ifndef this_cpu_dec
  304. # define this_cpu_dec(pcp) this_cpu_sub((pcp), 1)
  305. #endif
  306. #ifndef this_cpu_and
  307. # ifndef this_cpu_and_1
  308. # define this_cpu_and_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
  309. # endif
  310. # ifndef this_cpu_and_2
  311. # define this_cpu_and_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
  312. # endif
  313. # ifndef this_cpu_and_4
  314. # define this_cpu_and_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
  315. # endif
  316. # ifndef this_cpu_and_8
  317. # define this_cpu_and_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
  318. # endif
  319. # define this_cpu_and(pcp, val) __pcpu_size_call(this_cpu_and_, (pcp), (val))
  320. #endif
  321. #ifndef this_cpu_or
  322. # ifndef this_cpu_or_1
  323. # define this_cpu_or_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
  324. # endif
  325. # ifndef this_cpu_or_2
  326. # define this_cpu_or_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
  327. # endif
  328. # ifndef this_cpu_or_4
  329. # define this_cpu_or_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
  330. # endif
  331. # ifndef this_cpu_or_8
  332. # define this_cpu_or_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
  333. # endif
  334. # define this_cpu_or(pcp, val) __pcpu_size_call(this_cpu_or_, (pcp), (val))
  335. #endif
  336. #define _this_cpu_generic_add_return(pcp, val) \
  337. ({ \
  338. typeof(pcp) ret__; \
  339. unsigned long flags; \
  340. raw_local_irq_save(flags); \
  341. raw_cpu_add(pcp, val); \
  342. ret__ = raw_cpu_read(pcp); \
  343. raw_local_irq_restore(flags); \
  344. ret__; \
  345. })
  346. #ifndef this_cpu_add_return
  347. # ifndef this_cpu_add_return_1
  348. # define this_cpu_add_return_1(pcp, val) _this_cpu_generic_add_return(pcp, val)
  349. # endif
  350. # ifndef this_cpu_add_return_2
  351. # define this_cpu_add_return_2(pcp, val) _this_cpu_generic_add_return(pcp, val)
  352. # endif
  353. # ifndef this_cpu_add_return_4
  354. # define this_cpu_add_return_4(pcp, val) _this_cpu_generic_add_return(pcp, val)
  355. # endif
  356. # ifndef this_cpu_add_return_8
  357. # define this_cpu_add_return_8(pcp, val) _this_cpu_generic_add_return(pcp, val)
  358. # endif
  359. # define this_cpu_add_return(pcp, val) __pcpu_size_call_return2(this_cpu_add_return_, pcp, val)
  360. #endif
  361. #define this_cpu_sub_return(pcp, val) this_cpu_add_return(pcp, -(typeof(pcp))(val))
  362. #define this_cpu_inc_return(pcp) this_cpu_add_return(pcp, 1)
  363. #define this_cpu_dec_return(pcp) this_cpu_add_return(pcp, -1)
  364. #define _this_cpu_generic_xchg(pcp, nval) \
  365. ({ typeof(pcp) ret__; \
  366. unsigned long flags; \
  367. raw_local_irq_save(flags); \
  368. ret__ = raw_cpu_read(pcp); \
  369. raw_cpu_write(pcp, nval); \
  370. raw_local_irq_restore(flags); \
  371. ret__; \
  372. })
  373. #ifndef this_cpu_xchg
  374. # ifndef this_cpu_xchg_1
  375. # define this_cpu_xchg_1(pcp, nval) _this_cpu_generic_xchg(pcp, nval)
  376. # endif
  377. # ifndef this_cpu_xchg_2
  378. # define this_cpu_xchg_2(pcp, nval) _this_cpu_generic_xchg(pcp, nval)
  379. # endif
  380. # ifndef this_cpu_xchg_4
  381. # define this_cpu_xchg_4(pcp, nval) _this_cpu_generic_xchg(pcp, nval)
  382. # endif
  383. # ifndef this_cpu_xchg_8
  384. # define this_cpu_xchg_8(pcp, nval) _this_cpu_generic_xchg(pcp, nval)
  385. # endif
  386. # define this_cpu_xchg(pcp, nval) \
  387. __pcpu_size_call_return2(this_cpu_xchg_, (pcp), nval)
  388. #endif
  389. #define _this_cpu_generic_cmpxchg(pcp, oval, nval) \
  390. ({ \
  391. typeof(pcp) ret__; \
  392. unsigned long flags; \
  393. raw_local_irq_save(flags); \
  394. ret__ = raw_cpu_read(pcp); \
  395. if (ret__ == (oval)) \
  396. raw_cpu_write(pcp, nval); \
  397. raw_local_irq_restore(flags); \
  398. ret__; \
  399. })
  400. #ifndef this_cpu_cmpxchg
  401. # ifndef this_cpu_cmpxchg_1
  402. # define this_cpu_cmpxchg_1(pcp, oval, nval) _this_cpu_generic_cmpxchg(pcp, oval, nval)
  403. # endif
  404. # ifndef this_cpu_cmpxchg_2
  405. # define this_cpu_cmpxchg_2(pcp, oval, nval) _this_cpu_generic_cmpxchg(pcp, oval, nval)
  406. # endif
  407. # ifndef this_cpu_cmpxchg_4
  408. # define this_cpu_cmpxchg_4(pcp, oval, nval) _this_cpu_generic_cmpxchg(pcp, oval, nval)
  409. # endif
  410. # ifndef this_cpu_cmpxchg_8
  411. # define this_cpu_cmpxchg_8(pcp, oval, nval) _this_cpu_generic_cmpxchg(pcp, oval, nval)
  412. # endif
  413. # define this_cpu_cmpxchg(pcp, oval, nval) \
  414. __pcpu_size_call_return2(this_cpu_cmpxchg_, pcp, oval, nval)
  415. #endif
  416. /*
  417. * cmpxchg_double replaces two adjacent scalars at once. The first
  418. * two parameters are per cpu variables which have to be of the same
  419. * size. A truth value is returned to indicate success or failure
  420. * (since a double register result is difficult to handle). There is
  421. * very limited hardware support for these operations, so only certain
  422. * sizes may work.
  423. */
  424. #define _this_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  425. ({ \
  426. int ret__; \
  427. unsigned long flags; \
  428. raw_local_irq_save(flags); \
  429. ret__ = raw_cpu_generic_cmpxchg_double(pcp1, pcp2, \
  430. oval1, oval2, nval1, nval2); \
  431. raw_local_irq_restore(flags); \
  432. ret__; \
  433. })
  434. #ifndef this_cpu_cmpxchg_double
  435. # ifndef this_cpu_cmpxchg_double_1
  436. # define this_cpu_cmpxchg_double_1(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  437. _this_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  438. # endif
  439. # ifndef this_cpu_cmpxchg_double_2
  440. # define this_cpu_cmpxchg_double_2(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  441. _this_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  442. # endif
  443. # ifndef this_cpu_cmpxchg_double_4
  444. # define this_cpu_cmpxchg_double_4(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  445. _this_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  446. # endif
  447. # ifndef this_cpu_cmpxchg_double_8
  448. # define this_cpu_cmpxchg_double_8(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  449. _this_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  450. # endif
  451. # define this_cpu_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  452. __pcpu_double_call_return_bool(this_cpu_cmpxchg_double_, (pcp1), (pcp2), (oval1), (oval2), (nval1), (nval2))
  453. #endif
  454. /*
  455. * Generic percpu operations for contexts where we do not want to do
  456. * any checks for preemptiosn.
  457. *
  458. * If there is no other protection through preempt disable and/or
  459. * disabling interupts then one of these RMW operations can show unexpected
  460. * behavior because the execution thread was rescheduled on another processor
  461. * or an interrupt occurred and the same percpu variable was modified from
  462. * the interrupt context.
  463. */
  464. #ifndef raw_cpu_read
  465. # ifndef raw_cpu_read_1
  466. # define raw_cpu_read_1(pcp) (*raw_cpu_ptr(&(pcp)))
  467. # endif
  468. # ifndef raw_cpu_read_2
  469. # define raw_cpu_read_2(pcp) (*raw_cpu_ptr(&(pcp)))
  470. # endif
  471. # ifndef raw_cpu_read_4
  472. # define raw_cpu_read_4(pcp) (*raw_cpu_ptr(&(pcp)))
  473. # endif
  474. # ifndef raw_cpu_read_8
  475. # define raw_cpu_read_8(pcp) (*raw_cpu_ptr(&(pcp)))
  476. # endif
  477. # define raw_cpu_read(pcp) __pcpu_size_call_return(raw_cpu_read_, (pcp))
  478. #endif
  479. #define raw_cpu_generic_to_op(pcp, val, op) \
  480. do { \
  481. *raw_cpu_ptr(&(pcp)) op val; \
  482. } while (0)
  483. #ifndef raw_cpu_write
  484. # ifndef raw_cpu_write_1
  485. # define raw_cpu_write_1(pcp, val) raw_cpu_generic_to_op((pcp), (val), =)
  486. # endif
  487. # ifndef raw_cpu_write_2
  488. # define raw_cpu_write_2(pcp, val) raw_cpu_generic_to_op((pcp), (val), =)
  489. # endif
  490. # ifndef raw_cpu_write_4
  491. # define raw_cpu_write_4(pcp, val) raw_cpu_generic_to_op((pcp), (val), =)
  492. # endif
  493. # ifndef raw_cpu_write_8
  494. # define raw_cpu_write_8(pcp, val) raw_cpu_generic_to_op((pcp), (val), =)
  495. # endif
  496. # define raw_cpu_write(pcp, val) __pcpu_size_call(raw_cpu_write_, (pcp), (val))
  497. #endif
  498. #ifndef raw_cpu_add
  499. # ifndef raw_cpu_add_1
  500. # define raw_cpu_add_1(pcp, val) raw_cpu_generic_to_op((pcp), (val), +=)
  501. # endif
  502. # ifndef raw_cpu_add_2
  503. # define raw_cpu_add_2(pcp, val) raw_cpu_generic_to_op((pcp), (val), +=)
  504. # endif
  505. # ifndef raw_cpu_add_4
  506. # define raw_cpu_add_4(pcp, val) raw_cpu_generic_to_op((pcp), (val), +=)
  507. # endif
  508. # ifndef raw_cpu_add_8
  509. # define raw_cpu_add_8(pcp, val) raw_cpu_generic_to_op((pcp), (val), +=)
  510. # endif
  511. # define raw_cpu_add(pcp, val) __pcpu_size_call(raw_cpu_add_, (pcp), (val))
  512. #endif
  513. #ifndef raw_cpu_sub
  514. # define raw_cpu_sub(pcp, val) raw_cpu_add((pcp), -(val))
  515. #endif
  516. #ifndef raw_cpu_inc
  517. # define raw_cpu_inc(pcp) raw_cpu_add((pcp), 1)
  518. #endif
  519. #ifndef raw_cpu_dec
  520. # define raw_cpu_dec(pcp) raw_cpu_sub((pcp), 1)
  521. #endif
  522. #ifndef raw_cpu_and
  523. # ifndef raw_cpu_and_1
  524. # define raw_cpu_and_1(pcp, val) raw_cpu_generic_to_op((pcp), (val), &=)
  525. # endif
  526. # ifndef raw_cpu_and_2
  527. # define raw_cpu_and_2(pcp, val) raw_cpu_generic_to_op((pcp), (val), &=)
  528. # endif
  529. # ifndef raw_cpu_and_4
  530. # define raw_cpu_and_4(pcp, val) raw_cpu_generic_to_op((pcp), (val), &=)
  531. # endif
  532. # ifndef raw_cpu_and_8
  533. # define raw_cpu_and_8(pcp, val) raw_cpu_generic_to_op((pcp), (val), &=)
  534. # endif
  535. # define raw_cpu_and(pcp, val) __pcpu_size_call(raw_cpu_and_, (pcp), (val))
  536. #endif
  537. #ifndef raw_cpu_or
  538. # ifndef raw_cpu_or_1
  539. # define raw_cpu_or_1(pcp, val) raw_cpu_generic_to_op((pcp), (val), |=)
  540. # endif
  541. # ifndef raw_cpu_or_2
  542. # define raw_cpu_or_2(pcp, val) raw_cpu_generic_to_op((pcp), (val), |=)
  543. # endif
  544. # ifndef raw_cpu_or_4
  545. # define raw_cpu_or_4(pcp, val) raw_cpu_generic_to_op((pcp), (val), |=)
  546. # endif
  547. # ifndef raw_cpu_or_8
  548. # define raw_cpu_or_8(pcp, val) raw_cpu_generic_to_op((pcp), (val), |=)
  549. # endif
  550. # define raw_cpu_or(pcp, val) __pcpu_size_call(raw_cpu_or_, (pcp), (val))
  551. #endif
  552. #define raw_cpu_generic_add_return(pcp, val) \
  553. ({ \
  554. raw_cpu_add(pcp, val); \
  555. raw_cpu_read(pcp); \
  556. })
  557. #ifndef raw_cpu_add_return
  558. # ifndef raw_cpu_add_return_1
  559. # define raw_cpu_add_return_1(pcp, val) raw_cpu_generic_add_return(pcp, val)
  560. # endif
  561. # ifndef raw_cpu_add_return_2
  562. # define raw_cpu_add_return_2(pcp, val) raw_cpu_generic_add_return(pcp, val)
  563. # endif
  564. # ifndef raw_cpu_add_return_4
  565. # define raw_cpu_add_return_4(pcp, val) raw_cpu_generic_add_return(pcp, val)
  566. # endif
  567. # ifndef raw_cpu_add_return_8
  568. # define raw_cpu_add_return_8(pcp, val) raw_cpu_generic_add_return(pcp, val)
  569. # endif
  570. # define raw_cpu_add_return(pcp, val) \
  571. __pcpu_size_call_return2(raw_add_return_, pcp, val)
  572. #endif
  573. #define raw_cpu_sub_return(pcp, val) raw_cpu_add_return(pcp, -(typeof(pcp))(val))
  574. #define raw_cpu_inc_return(pcp) raw_cpu_add_return(pcp, 1)
  575. #define raw_cpu_dec_return(pcp) raw_cpu_add_return(pcp, -1)
  576. #define raw_cpu_generic_xchg(pcp, nval) \
  577. ({ typeof(pcp) ret__; \
  578. ret__ = raw_cpu_read(pcp); \
  579. raw_cpu_write(pcp, nval); \
  580. ret__; \
  581. })
  582. #ifndef raw_cpu_xchg
  583. # ifndef raw_cpu_xchg_1
  584. # define raw_cpu_xchg_1(pcp, nval) raw_cpu_generic_xchg(pcp, nval)
  585. # endif
  586. # ifndef raw_cpu_xchg_2
  587. # define raw_cpu_xchg_2(pcp, nval) raw_cpu_generic_xchg(pcp, nval)
  588. # endif
  589. # ifndef raw_cpu_xchg_4
  590. # define raw_cpu_xchg_4(pcp, nval) raw_cpu_generic_xchg(pcp, nval)
  591. # endif
  592. # ifndef raw_cpu_xchg_8
  593. # define raw_cpu_xchg_8(pcp, nval) raw_cpu_generic_xchg(pcp, nval)
  594. # endif
  595. # define raw_cpu_xchg(pcp, nval) \
  596. __pcpu_size_call_return2(raw_cpu_xchg_, (pcp), nval)
  597. #endif
  598. #define raw_cpu_generic_cmpxchg(pcp, oval, nval) \
  599. ({ \
  600. typeof(pcp) ret__; \
  601. ret__ = raw_cpu_read(pcp); \
  602. if (ret__ == (oval)) \
  603. raw_cpu_write(pcp, nval); \
  604. ret__; \
  605. })
  606. #ifndef raw_cpu_cmpxchg
  607. # ifndef raw_cpu_cmpxchg_1
  608. # define raw_cpu_cmpxchg_1(pcp, oval, nval) raw_cpu_generic_cmpxchg(pcp, oval, nval)
  609. # endif
  610. # ifndef raw_cpu_cmpxchg_2
  611. # define raw_cpu_cmpxchg_2(pcp, oval, nval) raw_cpu_generic_cmpxchg(pcp, oval, nval)
  612. # endif
  613. # ifndef raw_cpu_cmpxchg_4
  614. # define raw_cpu_cmpxchg_4(pcp, oval, nval) raw_cpu_generic_cmpxchg(pcp, oval, nval)
  615. # endif
  616. # ifndef raw_cpu_cmpxchg_8
  617. # define raw_cpu_cmpxchg_8(pcp, oval, nval) raw_cpu_generic_cmpxchg(pcp, oval, nval)
  618. # endif
  619. # define raw_cpu_cmpxchg(pcp, oval, nval) \
  620. __pcpu_size_call_return2(raw_cpu_cmpxchg_, pcp, oval, nval)
  621. #endif
  622. #define raw_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  623. ({ \
  624. int __ret = 0; \
  625. if (raw_cpu_read(pcp1) == (oval1) && \
  626. raw_cpu_read(pcp2) == (oval2)) { \
  627. raw_cpu_write(pcp1, (nval1)); \
  628. raw_cpu_write(pcp2, (nval2)); \
  629. __ret = 1; \
  630. } \
  631. (__ret); \
  632. })
  633. #ifndef raw_cpu_cmpxchg_double
  634. # ifndef raw_cpu_cmpxchg_double_1
  635. # define raw_cpu_cmpxchg_double_1(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  636. raw_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  637. # endif
  638. # ifndef raw_cpu_cmpxchg_double_2
  639. # define raw_cpu_cmpxchg_double_2(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  640. raw_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  641. # endif
  642. # ifndef raw_cpu_cmpxchg_double_4
  643. # define raw_cpu_cmpxchg_double_4(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  644. raw_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  645. # endif
  646. # ifndef raw_cpu_cmpxchg_double_8
  647. # define raw_cpu_cmpxchg_double_8(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  648. raw_cpu_generic_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2)
  649. # endif
  650. # define raw_cpu_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  651. __pcpu_double_call_return_bool(raw_cpu_cmpxchg_double_, (pcp1), (pcp2), (oval1), (oval2), (nval1), (nval2))
  652. #endif
  653. /*
  654. * Generic percpu operations for context that are safe from preemption/interrupts.
  655. * Checks will be added here soon.
  656. */
  657. #ifndef __this_cpu_read
  658. # define __this_cpu_read(pcp) __pcpu_size_call_return(raw_cpu_read_, (pcp))
  659. #endif
  660. #ifndef __this_cpu_write
  661. # define __this_cpu_write(pcp, val) __pcpu_size_call(raw_cpu_write_, (pcp), (val))
  662. #endif
  663. #ifndef __this_cpu_add
  664. # define __this_cpu_add(pcp, val) __pcpu_size_call(raw_cpu_add_, (pcp), (val))
  665. #endif
  666. #ifndef __this_cpu_sub
  667. # define __this_cpu_sub(pcp, val) __this_cpu_add((pcp), -(typeof(pcp))(val))
  668. #endif
  669. #ifndef __this_cpu_inc
  670. # define __this_cpu_inc(pcp) __this_cpu_add((pcp), 1)
  671. #endif
  672. #ifndef __this_cpu_dec
  673. # define __this_cpu_dec(pcp) __this_cpu_sub((pcp), 1)
  674. #endif
  675. #ifndef __this_cpu_and
  676. # define __this_cpu_and(pcp, val) __pcpu_size_call(raw_cpu_and_, (pcp), (val))
  677. #endif
  678. #ifndef __this_cpu_or
  679. # define __this_cpu_or(pcp, val) __pcpu_size_call(raw_cpu_or_, (pcp), (val))
  680. #endif
  681. #ifndef __this_cpu_add_return
  682. # define __this_cpu_add_return(pcp, val) \
  683. __pcpu_size_call_return2(raw_cpu_add_return_, pcp, val)
  684. #endif
  685. #define __this_cpu_sub_return(pcp, val) __this_cpu_add_return(pcp, -(typeof(pcp))(val))
  686. #define __this_cpu_inc_return(pcp) __this_cpu_add_return(pcp, 1)
  687. #define __this_cpu_dec_return(pcp) __this_cpu_add_return(pcp, -1)
  688. #ifndef __this_cpu_xchg
  689. # define __this_cpu_xchg(pcp, nval) \
  690. __pcpu_size_call_return2(raw_cpu_xchg_, (pcp), nval)
  691. #endif
  692. #ifndef __this_cpu_cmpxchg
  693. # define __this_cpu_cmpxchg(pcp, oval, nval) \
  694. __pcpu_size_call_return2(raw_cpu_cmpxchg_, pcp, oval, nval)
  695. #endif
  696. #ifndef __this_cpu_cmpxchg_double
  697. # define __this_cpu_cmpxchg_double(pcp1, pcp2, oval1, oval2, nval1, nval2) \
  698. __pcpu_double_call_return_bool(raw_cpu_cmpxchg_double_, (pcp1), (pcp2), (oval1), (oval2), (nval1), (nval2))
  699. #endif
  700. #endif /* __LINUX_PERCPU_H */