mem.h 14 KB

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  1. /*
  2. * Copyright (c) Yann Collet, Facebook, Inc.
  3. * All rights reserved.
  4. *
  5. * This source code is licensed under both the BSD-style license (found in the
  6. * LICENSE file in the root directory of this source tree) and the GPLv2 (found
  7. * in the COPYING file in the root directory of this source tree).
  8. * You may select, at your option, one of the above-listed licenses.
  9. */
  10. #ifndef MEM_H_MODULE
  11. #define MEM_H_MODULE
  12. #if defined (__cplusplus)
  13. extern "C" {
  14. #endif
  15. /*-****************************************
  16. * Dependencies
  17. ******************************************/
  18. #include <stddef.h> /* size_t, ptrdiff_t */
  19. #include "compiler.h" /* __has_builtin */
  20. #include "debug.h" /* DEBUG_STATIC_ASSERT */
  21. #include "zstd_deps.h" /* ZSTD_memcpy */
  22. /*-****************************************
  23. * Compiler specifics
  24. ******************************************/
  25. #if defined(_MSC_VER) /* Visual Studio */
  26. # include <stdlib.h> /* _byteswap_ulong */
  27. # include <intrin.h> /* _byteswap_* */
  28. #endif
  29. #if defined(__GNUC__)
  30. # define MEM_STATIC static __inline __attribute__((unused))
  31. #elif defined (__cplusplus) || (defined (__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) /* C99 */)
  32. # define MEM_STATIC static inline
  33. #elif defined(_MSC_VER)
  34. # define MEM_STATIC static __inline
  35. #else
  36. # define MEM_STATIC static /* this version may generate warnings for unused static functions; disable the relevant warning */
  37. #endif
  38. /*-**************************************************************
  39. * Basic Types
  40. *****************************************************************/
  41. #if !defined (__VMS) && (defined (__cplusplus) || (defined (__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) /* C99 */) )
  42. # if defined(_AIX)
  43. # include <inttypes.h>
  44. # else
  45. # include <stdint.h> /* intptr_t */
  46. # endif
  47. typedef uint8_t BYTE;
  48. typedef uint8_t U8;
  49. typedef int8_t S8;
  50. typedef uint16_t U16;
  51. typedef int16_t S16;
  52. typedef uint32_t U32;
  53. typedef int32_t S32;
  54. typedef uint64_t U64;
  55. typedef int64_t S64;
  56. #else
  57. # include <limits.h>
  58. #if CHAR_BIT != 8
  59. # error "this implementation requires char to be exactly 8-bit type"
  60. #endif
  61. typedef unsigned char BYTE;
  62. typedef unsigned char U8;
  63. typedef signed char S8;
  64. #if USHRT_MAX != 65535
  65. # error "this implementation requires short to be exactly 16-bit type"
  66. #endif
  67. typedef unsigned short U16;
  68. typedef signed short S16;
  69. #if UINT_MAX != 4294967295
  70. # error "this implementation requires int to be exactly 32-bit type"
  71. #endif
  72. typedef unsigned int U32;
  73. typedef signed int S32;
  74. /* note : there are no limits defined for long long type in C90.
  75. * limits exist in C99, however, in such case, <stdint.h> is preferred */
  76. typedef unsigned long long U64;
  77. typedef signed long long S64;
  78. #endif
  79. /*-**************************************************************
  80. * Memory I/O API
  81. *****************************************************************/
  82. /*=== Static platform detection ===*/
  83. MEM_STATIC unsigned MEM_32bits(void);
  84. MEM_STATIC unsigned MEM_64bits(void);
  85. MEM_STATIC unsigned MEM_isLittleEndian(void);
  86. /*=== Native unaligned read/write ===*/
  87. MEM_STATIC U16 MEM_read16(const void* memPtr);
  88. MEM_STATIC U32 MEM_read32(const void* memPtr);
  89. MEM_STATIC U64 MEM_read64(const void* memPtr);
  90. MEM_STATIC size_t MEM_readST(const void* memPtr);
  91. MEM_STATIC void MEM_write16(void* memPtr, U16 value);
  92. MEM_STATIC void MEM_write32(void* memPtr, U32 value);
  93. MEM_STATIC void MEM_write64(void* memPtr, U64 value);
  94. /*=== Little endian unaligned read/write ===*/
  95. MEM_STATIC U16 MEM_readLE16(const void* memPtr);
  96. MEM_STATIC U32 MEM_readLE24(const void* memPtr);
  97. MEM_STATIC U32 MEM_readLE32(const void* memPtr);
  98. MEM_STATIC U64 MEM_readLE64(const void* memPtr);
  99. MEM_STATIC size_t MEM_readLEST(const void* memPtr);
  100. MEM_STATIC void MEM_writeLE16(void* memPtr, U16 val);
  101. MEM_STATIC void MEM_writeLE24(void* memPtr, U32 val);
  102. MEM_STATIC void MEM_writeLE32(void* memPtr, U32 val32);
  103. MEM_STATIC void MEM_writeLE64(void* memPtr, U64 val64);
  104. MEM_STATIC void MEM_writeLEST(void* memPtr, size_t val);
  105. /*=== Big endian unaligned read/write ===*/
  106. MEM_STATIC U32 MEM_readBE32(const void* memPtr);
  107. MEM_STATIC U64 MEM_readBE64(const void* memPtr);
  108. MEM_STATIC size_t MEM_readBEST(const void* memPtr);
  109. MEM_STATIC void MEM_writeBE32(void* memPtr, U32 val32);
  110. MEM_STATIC void MEM_writeBE64(void* memPtr, U64 val64);
  111. MEM_STATIC void MEM_writeBEST(void* memPtr, size_t val);
  112. /*=== Byteswap ===*/
  113. MEM_STATIC U32 MEM_swap32(U32 in);
  114. MEM_STATIC U64 MEM_swap64(U64 in);
  115. MEM_STATIC size_t MEM_swapST(size_t in);
  116. /*-**************************************************************
  117. * Memory I/O Implementation
  118. *****************************************************************/
  119. /* MEM_FORCE_MEMORY_ACCESS :
  120. * By default, access to unaligned memory is controlled by `memcpy()`, which is safe and portable.
  121. * Unfortunately, on some target/compiler combinations, the generated assembly is sub-optimal.
  122. * The below switch allow to select different access method for improved performance.
  123. * Method 0 (default) : use `memcpy()`. Safe and portable.
  124. * Method 1 : `__packed` statement. It depends on compiler extension (i.e., not portable).
  125. * This method is safe if your compiler supports it, and *generally* as fast or faster than `memcpy`.
  126. * Method 2 : direct access. This method is portable but violate C standard.
  127. * It can generate buggy code on targets depending on alignment.
  128. * In some circumstances, it's the only known way to get the most performance (i.e. GCC + ARMv6)
  129. * See http://fastcompression.blogspot.fr/2015/08/accessing-unaligned-memory.html for details.
  130. * Prefer these methods in priority order (0 > 1 > 2)
  131. */
  132. #ifndef MEM_FORCE_MEMORY_ACCESS /* can be defined externally, on command line for example */
  133. # if defined(__INTEL_COMPILER) || defined(__GNUC__) || defined(__ICCARM__)
  134. # define MEM_FORCE_MEMORY_ACCESS 1
  135. # endif
  136. #endif
  137. MEM_STATIC unsigned MEM_32bits(void) { return sizeof(size_t)==4; }
  138. MEM_STATIC unsigned MEM_64bits(void) { return sizeof(size_t)==8; }
  139. MEM_STATIC unsigned MEM_isLittleEndian(void)
  140. {
  141. #if defined(__BYTE_ORDER__) && defined(__ORDER_LITTLE_ENDIAN__) && (__BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__)
  142. return 1;
  143. #elif defined(__BYTE_ORDER__) && defined(__ORDER_BIG_ENDIAN__) && (__BYTE_ORDER__ == __ORDER_BIG_ENDIAN__)
  144. return 0;
  145. #elif defined(__clang__) && __LITTLE_ENDIAN__
  146. return 1;
  147. #elif defined(__clang__) && __BIG_ENDIAN__
  148. return 0;
  149. #elif defined(_MSC_VER) && (_M_AMD64 || _M_IX86)
  150. return 1;
  151. #elif defined(__DMC__) && defined(_M_IX86)
  152. return 1;
  153. #else
  154. const union { U32 u; BYTE c[4]; } one = { 1 }; /* don't use static : performance detrimental */
  155. return one.c[0];
  156. #endif
  157. }
  158. #if defined(MEM_FORCE_MEMORY_ACCESS) && (MEM_FORCE_MEMORY_ACCESS==2)
  159. /* violates C standard, by lying on structure alignment.
  160. Only use if no other choice to achieve best performance on target platform */
  161. MEM_STATIC U16 MEM_read16(const void* memPtr) { return *(const U16*) memPtr; }
  162. MEM_STATIC U32 MEM_read32(const void* memPtr) { return *(const U32*) memPtr; }
  163. MEM_STATIC U64 MEM_read64(const void* memPtr) { return *(const U64*) memPtr; }
  164. MEM_STATIC size_t MEM_readST(const void* memPtr) { return *(const size_t*) memPtr; }
  165. MEM_STATIC void MEM_write16(void* memPtr, U16 value) { *(U16*)memPtr = value; }
  166. MEM_STATIC void MEM_write32(void* memPtr, U32 value) { *(U32*)memPtr = value; }
  167. MEM_STATIC void MEM_write64(void* memPtr, U64 value) { *(U64*)memPtr = value; }
  168. #elif defined(MEM_FORCE_MEMORY_ACCESS) && (MEM_FORCE_MEMORY_ACCESS==1)
  169. /* __pack instructions are safer, but compiler specific, hence potentially problematic for some compilers */
  170. /* currently only defined for gcc and icc */
  171. #if defined(_MSC_VER) || (defined(__INTEL_COMPILER) && defined(WIN32))
  172. __pragma( pack(push, 1) )
  173. typedef struct { U16 v; } unalign16;
  174. typedef struct { U32 v; } unalign32;
  175. typedef struct { U64 v; } unalign64;
  176. typedef struct { size_t v; } unalignArch;
  177. __pragma( pack(pop) )
  178. #else
  179. typedef struct { U16 v; } __attribute__((packed)) unalign16;
  180. typedef struct { U32 v; } __attribute__((packed)) unalign32;
  181. typedef struct { U64 v; } __attribute__((packed)) unalign64;
  182. typedef struct { size_t v; } __attribute__((packed)) unalignArch;
  183. #endif
  184. MEM_STATIC U16 MEM_read16(const void* ptr) { return ((const unalign16*)ptr)->v; }
  185. MEM_STATIC U32 MEM_read32(const void* ptr) { return ((const unalign32*)ptr)->v; }
  186. MEM_STATIC U64 MEM_read64(const void* ptr) { return ((const unalign64*)ptr)->v; }
  187. MEM_STATIC size_t MEM_readST(const void* ptr) { return ((const unalignArch*)ptr)->v; }
  188. MEM_STATIC void MEM_write16(void* memPtr, U16 value) { ((unalign16*)memPtr)->v = value; }
  189. MEM_STATIC void MEM_write32(void* memPtr, U32 value) { ((unalign32*)memPtr)->v = value; }
  190. MEM_STATIC void MEM_write64(void* memPtr, U64 value) { ((unalign64*)memPtr)->v = value; }
  191. #else
  192. /* default method, safe and standard.
  193. can sometimes prove slower */
  194. MEM_STATIC U16 MEM_read16(const void* memPtr)
  195. {
  196. U16 val; ZSTD_memcpy(&val, memPtr, sizeof(val)); return val;
  197. }
  198. MEM_STATIC U32 MEM_read32(const void* memPtr)
  199. {
  200. U32 val; ZSTD_memcpy(&val, memPtr, sizeof(val)); return val;
  201. }
  202. MEM_STATIC U64 MEM_read64(const void* memPtr)
  203. {
  204. U64 val; ZSTD_memcpy(&val, memPtr, sizeof(val)); return val;
  205. }
  206. MEM_STATIC size_t MEM_readST(const void* memPtr)
  207. {
  208. size_t val; ZSTD_memcpy(&val, memPtr, sizeof(val)); return val;
  209. }
  210. MEM_STATIC void MEM_write16(void* memPtr, U16 value)
  211. {
  212. ZSTD_memcpy(memPtr, &value, sizeof(value));
  213. }
  214. MEM_STATIC void MEM_write32(void* memPtr, U32 value)
  215. {
  216. ZSTD_memcpy(memPtr, &value, sizeof(value));
  217. }
  218. MEM_STATIC void MEM_write64(void* memPtr, U64 value)
  219. {
  220. ZSTD_memcpy(memPtr, &value, sizeof(value));
  221. }
  222. #endif /* MEM_FORCE_MEMORY_ACCESS */
  223. MEM_STATIC U32 MEM_swap32(U32 in)
  224. {
  225. #if defined(_MSC_VER) /* Visual Studio */
  226. return _byteswap_ulong(in);
  227. #elif (defined (__GNUC__) && (__GNUC__ * 100 + __GNUC_MINOR__ >= 403)) \
  228. || (defined(__clang__) && __has_builtin(__builtin_bswap32))
  229. return __builtin_bswap32(in);
  230. #else
  231. return ((in << 24) & 0xff000000 ) |
  232. ((in << 8) & 0x00ff0000 ) |
  233. ((in >> 8) & 0x0000ff00 ) |
  234. ((in >> 24) & 0x000000ff );
  235. #endif
  236. }
  237. MEM_STATIC U64 MEM_swap64(U64 in)
  238. {
  239. #if defined(_MSC_VER) /* Visual Studio */
  240. return _byteswap_uint64(in);
  241. #elif (defined (__GNUC__) && (__GNUC__ * 100 + __GNUC_MINOR__ >= 403)) \
  242. || (defined(__clang__) && __has_builtin(__builtin_bswap64))
  243. return __builtin_bswap64(in);
  244. #else
  245. return ((in << 56) & 0xff00000000000000ULL) |
  246. ((in << 40) & 0x00ff000000000000ULL) |
  247. ((in << 24) & 0x0000ff0000000000ULL) |
  248. ((in << 8) & 0x000000ff00000000ULL) |
  249. ((in >> 8) & 0x00000000ff000000ULL) |
  250. ((in >> 24) & 0x0000000000ff0000ULL) |
  251. ((in >> 40) & 0x000000000000ff00ULL) |
  252. ((in >> 56) & 0x00000000000000ffULL);
  253. #endif
  254. }
  255. MEM_STATIC size_t MEM_swapST(size_t in)
  256. {
  257. if (MEM_32bits())
  258. return (size_t)MEM_swap32((U32)in);
  259. else
  260. return (size_t)MEM_swap64((U64)in);
  261. }
  262. /*=== Little endian r/w ===*/
  263. MEM_STATIC U16 MEM_readLE16(const void* memPtr)
  264. {
  265. if (MEM_isLittleEndian())
  266. return MEM_read16(memPtr);
  267. else {
  268. const BYTE* p = (const BYTE*)memPtr;
  269. return (U16)(p[0] + (p[1]<<8));
  270. }
  271. }
  272. MEM_STATIC void MEM_writeLE16(void* memPtr, U16 val)
  273. {
  274. if (MEM_isLittleEndian()) {
  275. MEM_write16(memPtr, val);
  276. } else {
  277. BYTE* p = (BYTE*)memPtr;
  278. p[0] = (BYTE)val;
  279. p[1] = (BYTE)(val>>8);
  280. }
  281. }
  282. MEM_STATIC U32 MEM_readLE24(const void* memPtr)
  283. {
  284. return (U32)MEM_readLE16(memPtr) + ((U32)(((const BYTE*)memPtr)[2]) << 16);
  285. }
  286. MEM_STATIC void MEM_writeLE24(void* memPtr, U32 val)
  287. {
  288. MEM_writeLE16(memPtr, (U16)val);
  289. ((BYTE*)memPtr)[2] = (BYTE)(val>>16);
  290. }
  291. MEM_STATIC U32 MEM_readLE32(const void* memPtr)
  292. {
  293. if (MEM_isLittleEndian())
  294. return MEM_read32(memPtr);
  295. else
  296. return MEM_swap32(MEM_read32(memPtr));
  297. }
  298. MEM_STATIC void MEM_writeLE32(void* memPtr, U32 val32)
  299. {
  300. if (MEM_isLittleEndian())
  301. MEM_write32(memPtr, val32);
  302. else
  303. MEM_write32(memPtr, MEM_swap32(val32));
  304. }
  305. MEM_STATIC U64 MEM_readLE64(const void* memPtr)
  306. {
  307. if (MEM_isLittleEndian())
  308. return MEM_read64(memPtr);
  309. else
  310. return MEM_swap64(MEM_read64(memPtr));
  311. }
  312. MEM_STATIC void MEM_writeLE64(void* memPtr, U64 val64)
  313. {
  314. if (MEM_isLittleEndian())
  315. MEM_write64(memPtr, val64);
  316. else
  317. MEM_write64(memPtr, MEM_swap64(val64));
  318. }
  319. MEM_STATIC size_t MEM_readLEST(const void* memPtr)
  320. {
  321. if (MEM_32bits())
  322. return (size_t)MEM_readLE32(memPtr);
  323. else
  324. return (size_t)MEM_readLE64(memPtr);
  325. }
  326. MEM_STATIC void MEM_writeLEST(void* memPtr, size_t val)
  327. {
  328. if (MEM_32bits())
  329. MEM_writeLE32(memPtr, (U32)val);
  330. else
  331. MEM_writeLE64(memPtr, (U64)val);
  332. }
  333. /*=== Big endian r/w ===*/
  334. MEM_STATIC U32 MEM_readBE32(const void* memPtr)
  335. {
  336. if (MEM_isLittleEndian())
  337. return MEM_swap32(MEM_read32(memPtr));
  338. else
  339. return MEM_read32(memPtr);
  340. }
  341. MEM_STATIC void MEM_writeBE32(void* memPtr, U32 val32)
  342. {
  343. if (MEM_isLittleEndian())
  344. MEM_write32(memPtr, MEM_swap32(val32));
  345. else
  346. MEM_write32(memPtr, val32);
  347. }
  348. MEM_STATIC U64 MEM_readBE64(const void* memPtr)
  349. {
  350. if (MEM_isLittleEndian())
  351. return MEM_swap64(MEM_read64(memPtr));
  352. else
  353. return MEM_read64(memPtr);
  354. }
  355. MEM_STATIC void MEM_writeBE64(void* memPtr, U64 val64)
  356. {
  357. if (MEM_isLittleEndian())
  358. MEM_write64(memPtr, MEM_swap64(val64));
  359. else
  360. MEM_write64(memPtr, val64);
  361. }
  362. MEM_STATIC size_t MEM_readBEST(const void* memPtr)
  363. {
  364. if (MEM_32bits())
  365. return (size_t)MEM_readBE32(memPtr);
  366. else
  367. return (size_t)MEM_readBE64(memPtr);
  368. }
  369. MEM_STATIC void MEM_writeBEST(void* memPtr, size_t val)
  370. {
  371. if (MEM_32bits())
  372. MEM_writeBE32(memPtr, (U32)val);
  373. else
  374. MEM_writeBE64(memPtr, (U64)val);
  375. }
  376. /* code only tested on 32 and 64 bits systems */
  377. MEM_STATIC void MEM_check(void) { DEBUG_STATIC_ASSERT((sizeof(size_t)==4) || (sizeof(size_t)==8)); }
  378. #if defined (__cplusplus)
  379. }
  380. #endif
  381. #endif /* MEM_H_MODULE */