compiler.h 19 KB

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  1. /* SPDX-License-Identifier: GPL-2.0 */
  2. #ifndef __LINUX_COMPILER_H
  3. #define __LINUX_COMPILER_H
  4. #ifndef __ASSEMBLY__
  5. #ifdef __CHECKER__
  6. # define __user __attribute__((noderef, address_space(1)))
  7. # define __kernel __attribute__((address_space(0)))
  8. # define __safe __attribute__((safe))
  9. # define __force __attribute__((force))
  10. # define __nocast __attribute__((nocast))
  11. # define __iomem __attribute__((noderef, address_space(2)))
  12. # define __must_hold(x) __attribute__((context(x,1,1)))
  13. # define __acquires(x) __attribute__((context(x,0,1)))
  14. # define __releases(x) __attribute__((context(x,1,0)))
  15. # define __acquire(x) __context__(x,1)
  16. # define __release(x) __context__(x,-1)
  17. # define __cond_lock(x,c) ((c) ? ({ __acquire(x); 1; }) : 0)
  18. # define __percpu __attribute__((noderef, address_space(3)))
  19. # define __rcu __attribute__((noderef, address_space(4)))
  20. # define __private __attribute__((noderef))
  21. extern void __chk_user_ptr(const volatile void __user *);
  22. extern void __chk_io_ptr(const volatile void __iomem *);
  23. # define ACCESS_PRIVATE(p, member) (*((typeof((p)->member) __force *) &(p)->member))
  24. #else /* __CHECKER__ */
  25. # ifdef STRUCTLEAK_PLUGIN
  26. # define __user __attribute__((user))
  27. # else
  28. # define __user
  29. # endif
  30. # define __kernel
  31. # define __safe
  32. # define __force
  33. # define __nocast
  34. # define __iomem
  35. # define __chk_user_ptr(x) (void)0
  36. # define __chk_io_ptr(x) (void)0
  37. # define __builtin_warning(x, y...) (1)
  38. # define __must_hold(x)
  39. # define __acquires(x)
  40. # define __releases(x)
  41. # define __acquire(x) (void)0
  42. # define __release(x) (void)0
  43. # define __cond_lock(x,c) (c)
  44. # define __percpu
  45. # define __rcu
  46. # define __private
  47. # define ACCESS_PRIVATE(p, member) ((p)->member)
  48. #endif /* __CHECKER__ */
  49. /* Indirect macros required for expanded argument pasting, eg. __LINE__. */
  50. #define ___PASTE(a,b) a##b
  51. #define __PASTE(a,b) ___PASTE(a,b)
  52. #ifdef __KERNEL__
  53. #ifdef __GNUC__
  54. #include <linux/compiler-gcc.h>
  55. #endif
  56. #if defined(CC_USING_HOTPATCH) && !defined(__CHECKER__)
  57. #define notrace __attribute__((hotpatch(0,0)))
  58. #else
  59. #define notrace __attribute__((no_instrument_function))
  60. #endif
  61. /* Intel compiler defines __GNUC__. So we will overwrite implementations
  62. * coming from above header files here
  63. */
  64. #ifdef __INTEL_COMPILER
  65. # include <linux/compiler-intel.h>
  66. #endif
  67. /* Clang compiler defines __GNUC__. So we will overwrite implementations
  68. * coming from above header files here
  69. */
  70. #ifdef __clang__
  71. #include <linux/compiler-clang.h>
  72. #endif
  73. /*
  74. * Generic compiler-dependent macros required for kernel
  75. * build go below this comment. Actual compiler/compiler version
  76. * specific implementations come from the above header files
  77. */
  78. struct ftrace_branch_data {
  79. const char *func;
  80. const char *file;
  81. unsigned line;
  82. union {
  83. struct {
  84. unsigned long correct;
  85. unsigned long incorrect;
  86. };
  87. struct {
  88. unsigned long miss;
  89. unsigned long hit;
  90. };
  91. unsigned long miss_hit[2];
  92. };
  93. };
  94. struct ftrace_likely_data {
  95. struct ftrace_branch_data data;
  96. unsigned long constant;
  97. };
  98. /*
  99. * Note: DISABLE_BRANCH_PROFILING can be used by special lowlevel code
  100. * to disable branch tracing on a per file basis.
  101. */
  102. #if defined(CONFIG_TRACE_BRANCH_PROFILING) \
  103. && !defined(DISABLE_BRANCH_PROFILING) && !defined(__CHECKER__)
  104. void ftrace_likely_update(struct ftrace_likely_data *f, int val,
  105. int expect, int is_constant);
  106. #define likely_notrace(x) __builtin_expect(!!(x), 1)
  107. #define unlikely_notrace(x) __builtin_expect(!!(x), 0)
  108. #define __branch_check__(x, expect, is_constant) ({ \
  109. int ______r; \
  110. static struct ftrace_likely_data \
  111. __attribute__((__aligned__(4))) \
  112. __attribute__((section("_ftrace_annotated_branch"))) \
  113. ______f = { \
  114. .data.func = __func__, \
  115. .data.file = __FILE__, \
  116. .data.line = __LINE__, \
  117. }; \
  118. ______r = __builtin_expect(!!(x), expect); \
  119. ftrace_likely_update(&______f, ______r, \
  120. expect, is_constant); \
  121. ______r; \
  122. })
  123. /*
  124. * Using __builtin_constant_p(x) to ignore cases where the return
  125. * value is always the same. This idea is taken from a similar patch
  126. * written by Daniel Walker.
  127. */
  128. # ifndef likely
  129. # define likely(x) (__branch_check__(x, 1, __builtin_constant_p(x)))
  130. # endif
  131. # ifndef unlikely
  132. # define unlikely(x) (__branch_check__(x, 0, __builtin_constant_p(x)))
  133. # endif
  134. #ifdef CONFIG_PROFILE_ALL_BRANCHES
  135. /*
  136. * "Define 'is'", Bill Clinton
  137. * "Define 'if'", Steven Rostedt
  138. */
  139. #define if(cond, ...) __trace_if( (cond , ## __VA_ARGS__) )
  140. #define __trace_if(cond) \
  141. if (__builtin_constant_p(!!(cond)) ? !!(cond) : \
  142. ({ \
  143. int ______r; \
  144. static struct ftrace_branch_data \
  145. __attribute__((__aligned__(4))) \
  146. __attribute__((section("_ftrace_branch"))) \
  147. ______f = { \
  148. .func = __func__, \
  149. .file = __FILE__, \
  150. .line = __LINE__, \
  151. }; \
  152. ______r = !!(cond); \
  153. ______f.miss_hit[______r]++; \
  154. ______r; \
  155. }))
  156. #endif /* CONFIG_PROFILE_ALL_BRANCHES */
  157. #else
  158. # define likely(x) __builtin_expect(!!(x), 1)
  159. # define unlikely(x) __builtin_expect(!!(x), 0)
  160. #endif
  161. /* Optimization barrier */
  162. #ifndef barrier
  163. # define barrier() __memory_barrier()
  164. #endif
  165. #ifndef barrier_data
  166. # define barrier_data(ptr) barrier()
  167. #endif
  168. /* Unreachable code */
  169. #ifdef CONFIG_STACK_VALIDATION
  170. /*
  171. * These macros help objtool understand GCC code flow for unreachable code.
  172. * The __COUNTER__ based labels are a hack to make each instance of the macros
  173. * unique, to convince GCC not to merge duplicate inline asm statements.
  174. */
  175. #define annotate_reachable() ({ \
  176. asm("%c0:\n\t" \
  177. ".pushsection .discard.reachable\n\t" \
  178. ".long %c0b - .\n\t" \
  179. ".popsection\n\t" : : "i" (__COUNTER__)); \
  180. })
  181. #define annotate_unreachable() ({ \
  182. asm("%c0:\n\t" \
  183. ".pushsection .discard.unreachable\n\t" \
  184. ".long %c0b - .\n\t" \
  185. ".popsection\n\t" : : "i" (__COUNTER__)); \
  186. })
  187. #define ASM_UNREACHABLE \
  188. "999:\n\t" \
  189. ".pushsection .discard.unreachable\n\t" \
  190. ".long 999b - .\n\t" \
  191. ".popsection\n\t"
  192. #else
  193. #define annotate_reachable()
  194. #define annotate_unreachable()
  195. #endif
  196. #ifndef ASM_UNREACHABLE
  197. # define ASM_UNREACHABLE
  198. #endif
  199. #ifndef unreachable
  200. # define unreachable() do { annotate_reachable(); do { } while (1); } while (0)
  201. #endif
  202. /*
  203. * KENTRY - kernel entry point
  204. * This can be used to annotate symbols (functions or data) that are used
  205. * without their linker symbol being referenced explicitly. For example,
  206. * interrupt vector handlers, or functions in the kernel image that are found
  207. * programatically.
  208. *
  209. * Not required for symbols exported with EXPORT_SYMBOL, or initcalls. Those
  210. * are handled in their own way (with KEEP() in linker scripts).
  211. *
  212. * KENTRY can be avoided if the symbols in question are marked as KEEP() in the
  213. * linker script. For example an architecture could KEEP() its entire
  214. * boot/exception vector code rather than annotate each function and data.
  215. */
  216. #ifndef KENTRY
  217. # define KENTRY(sym) \
  218. extern typeof(sym) sym; \
  219. static const unsigned long __kentry_##sym \
  220. __used \
  221. __attribute__((section("___kentry" "+" #sym ), used)) \
  222. = (unsigned long)&sym;
  223. #endif
  224. #ifndef RELOC_HIDE
  225. # define RELOC_HIDE(ptr, off) \
  226. ({ unsigned long __ptr; \
  227. __ptr = (unsigned long) (ptr); \
  228. (typeof(ptr)) (__ptr + (off)); })
  229. #endif
  230. #ifndef OPTIMIZER_HIDE_VAR
  231. #define OPTIMIZER_HIDE_VAR(var) barrier()
  232. #endif
  233. /* Not-quite-unique ID. */
  234. #ifndef __UNIQUE_ID
  235. # define __UNIQUE_ID(prefix) __PASTE(__PASTE(__UNIQUE_ID_, prefix), __LINE__)
  236. #endif
  237. #include <uapi/linux/types.h>
  238. #define __READ_ONCE_SIZE \
  239. ({ \
  240. switch (size) { \
  241. case 1: *(__u8 *)res = *(volatile __u8 *)p; break; \
  242. case 2: *(__u16 *)res = *(volatile __u16 *)p; break; \
  243. case 4: *(__u32 *)res = *(volatile __u32 *)p; break; \
  244. case 8: *(__u64 *)res = *(volatile __u64 *)p; break; \
  245. default: \
  246. barrier(); \
  247. __builtin_memcpy((void *)res, (const void *)p, size); \
  248. barrier(); \
  249. } \
  250. })
  251. static __always_inline
  252. void __read_once_size(const volatile void *p, void *res, int size)
  253. {
  254. __READ_ONCE_SIZE;
  255. }
  256. #ifdef CONFIG_KASAN
  257. /*
  258. * This function is not 'inline' because __no_sanitize_address confilcts
  259. * with inlining. Attempt to inline it may cause a build failure.
  260. * https://gcc.gnu.org/bugzilla/show_bug.cgi?id=67368
  261. * '__maybe_unused' allows us to avoid defined-but-not-used warnings.
  262. */
  263. static __no_sanitize_address __maybe_unused
  264. void __read_once_size_nocheck(const volatile void *p, void *res, int size)
  265. {
  266. __READ_ONCE_SIZE;
  267. }
  268. #else
  269. static __always_inline
  270. void __read_once_size_nocheck(const volatile void *p, void *res, int size)
  271. {
  272. __READ_ONCE_SIZE;
  273. }
  274. #endif
  275. static __always_inline void __write_once_size(volatile void *p, void *res, int size)
  276. {
  277. switch (size) {
  278. case 1: *(volatile __u8 *)p = *(__u8 *)res; break;
  279. case 2: *(volatile __u16 *)p = *(__u16 *)res; break;
  280. case 4: *(volatile __u32 *)p = *(__u32 *)res; break;
  281. case 8: *(volatile __u64 *)p = *(__u64 *)res; break;
  282. default:
  283. barrier();
  284. __builtin_memcpy((void *)p, (const void *)res, size);
  285. barrier();
  286. }
  287. }
  288. /*
  289. * Prevent the compiler from merging or refetching reads or writes. The
  290. * compiler is also forbidden from reordering successive instances of
  291. * READ_ONCE, WRITE_ONCE and ACCESS_ONCE (see below), but only when the
  292. * compiler is aware of some particular ordering. One way to make the
  293. * compiler aware of ordering is to put the two invocations of READ_ONCE,
  294. * WRITE_ONCE or ACCESS_ONCE() in different C statements.
  295. *
  296. * In contrast to ACCESS_ONCE these two macros will also work on aggregate
  297. * data types like structs or unions. If the size of the accessed data
  298. * type exceeds the word size of the machine (e.g., 32 bits or 64 bits)
  299. * READ_ONCE() and WRITE_ONCE() will fall back to memcpy(). There's at
  300. * least two memcpy()s: one for the __builtin_memcpy() and then one for
  301. * the macro doing the copy of variable - '__u' allocated on the stack.
  302. *
  303. * Their two major use cases are: (1) Mediating communication between
  304. * process-level code and irq/NMI handlers, all running on the same CPU,
  305. * and (2) Ensuring that the compiler does not fold, spindle, or otherwise
  306. * mutilate accesses that either do not require ordering or that interact
  307. * with an explicit memory barrier or atomic instruction that provides the
  308. * required ordering.
  309. */
  310. #define __READ_ONCE(x, check) \
  311. ({ \
  312. union { typeof(x) __val; char __c[1]; } __u; \
  313. if (check) \
  314. __read_once_size(&(x), __u.__c, sizeof(x)); \
  315. else \
  316. __read_once_size_nocheck(&(x), __u.__c, sizeof(x)); \
  317. __u.__val; \
  318. })
  319. #define READ_ONCE(x) __READ_ONCE(x, 1)
  320. /*
  321. * Use READ_ONCE_NOCHECK() instead of READ_ONCE() if you need
  322. * to hide memory access from KASAN.
  323. */
  324. #define READ_ONCE_NOCHECK(x) __READ_ONCE(x, 0)
  325. #define WRITE_ONCE(x, val) \
  326. ({ \
  327. union { typeof(x) __val; char __c[1]; } __u = \
  328. { .__val = (__force typeof(x)) (val) }; \
  329. __write_once_size(&(x), __u.__c, sizeof(x)); \
  330. __u.__val; \
  331. })
  332. #endif /* __KERNEL__ */
  333. #endif /* __ASSEMBLY__ */
  334. #ifdef __KERNEL__
  335. /*
  336. * Allow us to mark functions as 'deprecated' and have gcc emit a nice
  337. * warning for each use, in hopes of speeding the functions removal.
  338. * Usage is:
  339. * int __deprecated foo(void)
  340. */
  341. #ifndef __deprecated
  342. # define __deprecated /* unimplemented */
  343. #endif
  344. #ifdef MODULE
  345. #define __deprecated_for_modules __deprecated
  346. #else
  347. #define __deprecated_for_modules
  348. #endif
  349. #ifndef __must_check
  350. #define __must_check
  351. #endif
  352. #ifndef CONFIG_ENABLE_MUST_CHECK
  353. #undef __must_check
  354. #define __must_check
  355. #endif
  356. #ifndef CONFIG_ENABLE_WARN_DEPRECATED
  357. #undef __deprecated
  358. #undef __deprecated_for_modules
  359. #define __deprecated
  360. #define __deprecated_for_modules
  361. #endif
  362. #ifndef __malloc
  363. #define __malloc
  364. #endif
  365. /*
  366. * Allow us to avoid 'defined but not used' warnings on functions and data,
  367. * as well as force them to be emitted to the assembly file.
  368. *
  369. * As of gcc 3.4, static functions that are not marked with attribute((used))
  370. * may be elided from the assembly file. As of gcc 3.4, static data not so
  371. * marked will not be elided, but this may change in a future gcc version.
  372. *
  373. * NOTE: Because distributions shipped with a backported unit-at-a-time
  374. * compiler in gcc 3.3, we must define __used to be __attribute__((used))
  375. * for gcc >=3.3 instead of 3.4.
  376. *
  377. * In prior versions of gcc, such functions and data would be emitted, but
  378. * would be warned about except with attribute((unused)).
  379. *
  380. * Mark functions that are referenced only in inline assembly as __used so
  381. * the code is emitted even though it appears to be unreferenced.
  382. */
  383. #ifndef __used
  384. # define __used /* unimplemented */
  385. #endif
  386. #ifndef __maybe_unused
  387. # define __maybe_unused /* unimplemented */
  388. #endif
  389. #ifndef __always_unused
  390. # define __always_unused /* unimplemented */
  391. #endif
  392. #ifndef noinline
  393. #define noinline
  394. #endif
  395. /*
  396. * Rather then using noinline to prevent stack consumption, use
  397. * noinline_for_stack instead. For documentation reasons.
  398. */
  399. #define noinline_for_stack noinline
  400. #ifndef __always_inline
  401. #define __always_inline inline
  402. #endif
  403. #endif /* __KERNEL__ */
  404. /*
  405. * From the GCC manual:
  406. *
  407. * Many functions do not examine any values except their arguments,
  408. * and have no effects except the return value. Basically this is
  409. * just slightly more strict class than the `pure' attribute above,
  410. * since function is not allowed to read global memory.
  411. *
  412. * Note that a function that has pointer arguments and examines the
  413. * data pointed to must _not_ be declared `const'. Likewise, a
  414. * function that calls a non-`const' function usually must not be
  415. * `const'. It does not make sense for a `const' function to return
  416. * `void'.
  417. */
  418. #ifndef __attribute_const__
  419. # define __attribute_const__ /* unimplemented */
  420. #endif
  421. #ifndef __designated_init
  422. # define __designated_init
  423. #endif
  424. #ifndef __latent_entropy
  425. # define __latent_entropy
  426. #endif
  427. #ifndef __randomize_layout
  428. # define __randomize_layout __designated_init
  429. #endif
  430. #ifndef __no_randomize_layout
  431. # define __no_randomize_layout
  432. #endif
  433. #ifndef randomized_struct_fields_start
  434. # define randomized_struct_fields_start
  435. # define randomized_struct_fields_end
  436. #endif
  437. /*
  438. * Tell gcc if a function is cold. The compiler will assume any path
  439. * directly leading to the call is unlikely.
  440. */
  441. #ifndef __cold
  442. #define __cold
  443. #endif
  444. /* Simple shorthand for a section definition */
  445. #ifndef __section
  446. # define __section(S) __attribute__ ((__section__(#S)))
  447. #endif
  448. #ifndef __visible
  449. #define __visible
  450. #endif
  451. #ifndef __nostackprotector
  452. # define __nostackprotector
  453. #endif
  454. /*
  455. * Assume alignment of return value.
  456. */
  457. #ifndef __assume_aligned
  458. #define __assume_aligned(a, ...)
  459. #endif
  460. /* Are two types/vars the same type (ignoring qualifiers)? */
  461. #ifndef __same_type
  462. # define __same_type(a, b) __builtin_types_compatible_p(typeof(a), typeof(b))
  463. #endif
  464. /* Is this type a native word size -- useful for atomic operations */
  465. #ifndef __native_word
  466. # define __native_word(t) (sizeof(t) == sizeof(char) || sizeof(t) == sizeof(short) || sizeof(t) == sizeof(int) || sizeof(t) == sizeof(long))
  467. #endif
  468. /* Compile time object size, -1 for unknown */
  469. #ifndef __compiletime_object_size
  470. # define __compiletime_object_size(obj) -1
  471. #endif
  472. #ifndef __compiletime_warning
  473. # define __compiletime_warning(message)
  474. #endif
  475. #ifndef __compiletime_error
  476. # define __compiletime_error(message)
  477. /*
  478. * Sparse complains of variable sized arrays due to the temporary variable in
  479. * __compiletime_assert. Unfortunately we can't just expand it out to make
  480. * sparse see a constant array size without breaking compiletime_assert on old
  481. * versions of GCC (e.g. 4.2.4), so hide the array from sparse altogether.
  482. */
  483. # ifndef __CHECKER__
  484. # define __compiletime_error_fallback(condition) \
  485. do { ((void)sizeof(char[1 - 2 * condition])); } while (0)
  486. # endif
  487. #endif
  488. #ifndef __compiletime_error_fallback
  489. # define __compiletime_error_fallback(condition) do { } while (0)
  490. #endif
  491. #ifdef __OPTIMIZE__
  492. # define __compiletime_assert(condition, msg, prefix, suffix) \
  493. do { \
  494. bool __cond = !(condition); \
  495. extern void prefix ## suffix(void) __compiletime_error(msg); \
  496. if (__cond) \
  497. prefix ## suffix(); \
  498. __compiletime_error_fallback(__cond); \
  499. } while (0)
  500. #else
  501. # define __compiletime_assert(condition, msg, prefix, suffix) do { } while (0)
  502. #endif
  503. #define _compiletime_assert(condition, msg, prefix, suffix) \
  504. __compiletime_assert(condition, msg, prefix, suffix)
  505. /**
  506. * compiletime_assert - break build and emit msg if condition is false
  507. * @condition: a compile-time constant condition to check
  508. * @msg: a message to emit if condition is false
  509. *
  510. * In tradition of POSIX assert, this macro will break the build if the
  511. * supplied condition is *false*, emitting the supplied error message if the
  512. * compiler has support to do so.
  513. */
  514. #define compiletime_assert(condition, msg) \
  515. _compiletime_assert(condition, msg, __compiletime_assert_, __LINE__)
  516. #define compiletime_assert_atomic_type(t) \
  517. compiletime_assert(__native_word(t), \
  518. "Need native word sized stores/loads for atomicity.")
  519. /*
  520. * Prevent the compiler from merging or refetching accesses. The compiler
  521. * is also forbidden from reordering successive instances of ACCESS_ONCE(),
  522. * but only when the compiler is aware of some particular ordering. One way
  523. * to make the compiler aware of ordering is to put the two invocations of
  524. * ACCESS_ONCE() in different C statements.
  525. *
  526. * ACCESS_ONCE will only work on scalar types. For union types, ACCESS_ONCE
  527. * on a union member will work as long as the size of the member matches the
  528. * size of the union and the size is smaller than word size.
  529. *
  530. * The major use cases of ACCESS_ONCE used to be (1) Mediating communication
  531. * between process-level code and irq/NMI handlers, all running on the same CPU,
  532. * and (2) Ensuring that the compiler does not fold, spindle, or otherwise
  533. * mutilate accesses that either do not require ordering or that interact
  534. * with an explicit memory barrier or atomic instruction that provides the
  535. * required ordering.
  536. *
  537. * If possible use READ_ONCE()/WRITE_ONCE() instead.
  538. */
  539. #define __ACCESS_ONCE(x) ({ \
  540. __maybe_unused typeof(x) __var = (__force typeof(x)) 0; \
  541. (volatile typeof(x) *)&(x); })
  542. #define ACCESS_ONCE(x) (*__ACCESS_ONCE(x))
  543. /**
  544. * lockless_dereference() - safely load a pointer for later dereference
  545. * @p: The pointer to load
  546. *
  547. * Similar to rcu_dereference(), but for situations where the pointed-to
  548. * object's lifetime is managed by something other than RCU. That
  549. * "something other" might be reference counting or simple immortality.
  550. *
  551. * The seemingly unused variable ___typecheck_p validates that @p is
  552. * indeed a pointer type by using a pointer to typeof(*p) as the type.
  553. * Taking a pointer to typeof(*p) again is needed in case p is void *.
  554. */
  555. #define lockless_dereference(p) \
  556. ({ \
  557. typeof(p) _________p1 = READ_ONCE(p); \
  558. typeof(*(p)) *___typecheck_p __maybe_unused; \
  559. smp_read_barrier_depends(); /* Dependency order vs. p above. */ \
  560. (_________p1); \
  561. })
  562. #endif /* __LINUX_COMPILER_H */