ggml-impl.h 17 KB

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  1. #pragma once
  2. // GGML internal header
  3. #include "ggml.h"
  4. #include <assert.h>
  5. #include <math.h>
  6. #include <stdlib.h> // load `stdlib.h` before other headers to work around MinGW bug: https://sourceforge.net/p/mingw-w64/bugs/192/
  7. #include <stdbool.h>
  8. #include <stdint.h>
  9. #include <string.h>
  10. #ifdef __ARM_FEATURE_SVE
  11. #include <arm_sve.h>
  12. #endif // __ARM_FEATURE_SVE
  13. #if defined(__ARM_NEON)
  14. // if YCM cannot find <arm_neon.h>, make a symbolic link to it, for example:
  15. //
  16. // $ ln -sfn /Library/Developer/CommandLineTools/usr/lib/clang/13.1.6/include/arm_neon.h ./src/
  17. //
  18. #include <arm_neon.h>
  19. #endif
  20. #if defined(__F16C__)
  21. #include <immintrin.h>
  22. #endif
  23. #ifdef __cplusplus
  24. extern "C" {
  25. #endif
  26. #undef MIN
  27. #undef MAX
  28. #define MIN(a, b) ((a) < (b) ? (a) : (b))
  29. #define MAX(a, b) ((a) > (b) ? (a) : (b))
  30. // required for mmap as gguf only guarantees 32-byte alignment
  31. #define TENSOR_ALIGNMENT 32
  32. // static_assert should be a #define, but if it's not,
  33. // fall back to the _Static_assert C11 keyword.
  34. // if C99 - static_assert is noop
  35. // ref: https://stackoverflow.com/a/53923785/4039976
  36. #ifndef __cplusplus
  37. #ifndef static_assert
  38. #if defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 201100L)
  39. #define static_assert(cond, msg) _Static_assert(cond, msg)
  40. #else
  41. #define static_assert(cond, msg) struct global_scope_noop_trick
  42. #endif
  43. #endif
  44. #endif
  45. static inline int ggml_up32(int n) {
  46. return (n + 31) & ~31;
  47. }
  48. //static inline int ggml_up64(int n) {
  49. // return (n + 63) & ~63;
  50. //}
  51. static inline int ggml_up(int n, int m) {
  52. // assert m is a power of 2
  53. GGML_ASSERT((m & (m - 1)) == 0);
  54. return (n + m - 1) & ~(m - 1);
  55. }
  56. //
  57. // logging
  58. //
  59. GGML_ATTRIBUTE_FORMAT(2, 3)
  60. void ggml_log_internal (enum ggml_log_level level, const char * format, ...);
  61. void ggml_log_callback_default(enum ggml_log_level level, const char * text, void * user_data);
  62. #define GGML_LOG(...) ggml_log_internal(GGML_LOG_LEVEL_NONE , __VA_ARGS__)
  63. #define GGML_LOG_INFO(...) ggml_log_internal(GGML_LOG_LEVEL_INFO , __VA_ARGS__)
  64. #define GGML_LOG_WARN(...) ggml_log_internal(GGML_LOG_LEVEL_WARN , __VA_ARGS__)
  65. #define GGML_LOG_ERROR(...) ggml_log_internal(GGML_LOG_LEVEL_ERROR, __VA_ARGS__)
  66. #define GGML_LOG_DEBUG(...) ggml_log_internal(GGML_LOG_LEVEL_DEBUG, __VA_ARGS__)
  67. #define GGML_LOG_CONT(...) ggml_log_internal(GGML_LOG_LEVEL_CONT , __VA_ARGS__)
  68. #define GGML_DEBUG 0
  69. #if (GGML_DEBUG >= 1)
  70. #define GGML_PRINT_DEBUG(...) GGML_LOG_DEBUG(__VA_ARGS__)
  71. #else
  72. #define GGML_PRINT_DEBUG(...)
  73. #endif
  74. #if (GGML_DEBUG >= 5)
  75. #define GGML_PRINT_DEBUG_5(...) GGML_LOG_DEBUG(__VA_ARGS__)
  76. #else
  77. #define GGML_PRINT_DEBUG_5(...)
  78. #endif
  79. #if (GGML_DEBUG >= 10)
  80. #define GGML_PRINT_DEBUG_10(...) GGML_LOG_DEBUG(__VA_ARGS__)
  81. #else
  82. #define GGML_PRINT_DEBUG_10(...)
  83. #endif
  84. // tensor params
  85. static void ggml_set_op_params(struct ggml_tensor * tensor, const void * params, size_t params_size) {
  86. GGML_ASSERT(tensor != NULL); // silence -Warray-bounds warnings
  87. assert(params_size <= GGML_MAX_OP_PARAMS);
  88. memcpy(tensor->op_params, params, params_size);
  89. }
  90. static int32_t ggml_get_op_params_i32(const struct ggml_tensor * tensor, uint32_t i) {
  91. assert(i < GGML_MAX_OP_PARAMS / sizeof(int32_t));
  92. return ((const int32_t *)(tensor->op_params))[i];
  93. }
  94. static float ggml_get_op_params_f32(const struct ggml_tensor * tensor, uint32_t i) {
  95. assert(i < GGML_MAX_OP_PARAMS / sizeof(float));
  96. return ((const float *)(tensor->op_params))[i];
  97. }
  98. static void ggml_set_op_params_i32(struct ggml_tensor * tensor, uint32_t i, int32_t value) {
  99. assert(i < GGML_MAX_OP_PARAMS / sizeof(int32_t));
  100. ((int32_t *)(tensor->op_params))[i] = value;
  101. }
  102. static void ggml_set_op_params_f32(struct ggml_tensor * tensor, uint32_t i, float value) {
  103. assert(i < GGML_MAX_OP_PARAMS / sizeof(float));
  104. ((float *)(tensor->op_params))[i] = value;
  105. }
  106. struct ggml_map_custom1_op_params {
  107. ggml_custom1_op_t fun;
  108. int n_tasks;
  109. void * userdata;
  110. };
  111. struct ggml_map_custom2_op_params {
  112. ggml_custom2_op_t fun;
  113. int n_tasks;
  114. void * userdata;
  115. };
  116. struct ggml_map_custom3_op_params {
  117. ggml_custom3_op_t fun;
  118. int n_tasks;
  119. void * userdata;
  120. };
  121. // bitset
  122. typedef uint32_t ggml_bitset_t;
  123. static_assert(sizeof(ggml_bitset_t) == 4, "bitset_t constants must be updated");
  124. #define BITSET_SHR 5 // log2(sizeof(ggml_bitset_t)*8)
  125. #define BITSET_MASK (sizeof(ggml_bitset_t)*8 - 1)
  126. static size_t ggml_bitset_size(size_t n) {
  127. return (n + BITSET_MASK) >> BITSET_SHR;
  128. }
  129. static inline bool ggml_bitset_get(const ggml_bitset_t * bitset, size_t i) {
  130. return !!(bitset[i >> BITSET_SHR] & (1u << (i & BITSET_MASK)));
  131. }
  132. static inline void ggml_bitset_set(ggml_bitset_t * bitset, size_t i) {
  133. bitset[i >> BITSET_SHR] |= (1u << (i & BITSET_MASK));
  134. }
  135. static inline void ggml_bitset_clear(ggml_bitset_t * bitset, size_t i) {
  136. bitset[i >> BITSET_SHR] &= ~(1u << (i & BITSET_MASK));
  137. }
  138. // hash set
  139. #define GGML_HASHSET_FULL ((size_t)-1)
  140. #define GGML_HASHSET_ALREADY_EXISTS ((size_t)-2)
  141. struct ggml_hash_set {
  142. size_t size;
  143. ggml_bitset_t * used; // whether or not the keys are in use i.e. set
  144. struct ggml_tensor ** keys; // actual tensors in the set, keys[i] is only defined if ggml_bitset_get(used, i)
  145. };
  146. struct ggml_hash_set ggml_hash_set_new(size_t size);
  147. void ggml_hash_set_free(struct ggml_hash_set * hash_set);
  148. // returns the minimum size for a hash set that can hold min_sz elements
  149. size_t ggml_hash_size(size_t min_sz);
  150. // remove all elements from the hash set
  151. void ggml_hash_set_reset(struct ggml_hash_set * hash_set);
  152. // returns true if key is in the hash set
  153. static bool ggml_hash_contains(const struct ggml_hash_set * hash_set, struct ggml_tensor * key);
  154. // returns GGML_HASHSET_FULL if table is full, otherwise the current index of the key or where it should be inserted
  155. static size_t ggml_hash_find(const struct ggml_hash_set * hash_set, const struct ggml_tensor * key);
  156. // returns GGML_HASHSET_ALREADY_EXISTS if key already exists, index otherwise, asserts if table is full
  157. static size_t ggml_hash_insert(struct ggml_hash_set * hash_set, struct ggml_tensor * key);
  158. // return index, asserts if table is full
  159. static size_t ggml_hash_find_or_insert(struct ggml_hash_set * hash_set, struct ggml_tensor * key);
  160. // hash function for ggml_tensor
  161. static inline size_t ggml_hash(const struct ggml_tensor * p) {
  162. // the last 4 bits are always zero due to alignment
  163. return (size_t)(uintptr_t)p >> 4;
  164. }
  165. static size_t ggml_hash_find(const struct ggml_hash_set * hash_set, const struct ggml_tensor * key) {
  166. size_t h = ggml_hash(key) % hash_set->size;
  167. // linear probing
  168. size_t i = h;
  169. while (ggml_bitset_get(hash_set->used, i) && hash_set->keys[i] != key) {
  170. i = (i + 1) % hash_set->size;
  171. if (i == h) {
  172. // visited all hash table entries -> not found
  173. return GGML_HASHSET_FULL;
  174. }
  175. }
  176. return i;
  177. }
  178. static bool ggml_hash_contains(const struct ggml_hash_set * hash_set, struct ggml_tensor * key) {
  179. size_t i = ggml_hash_find(hash_set, key);
  180. return i != GGML_HASHSET_FULL && ggml_bitset_get(hash_set->used, i);
  181. }
  182. static size_t ggml_hash_insert(struct ggml_hash_set * hash_set, struct ggml_tensor * key) {
  183. size_t h = ggml_hash(key) % hash_set->size;
  184. // linear probing
  185. size_t i = h;
  186. do {
  187. if (!ggml_bitset_get(hash_set->used, i)) {
  188. ggml_bitset_set(hash_set->used, i);
  189. hash_set->keys[i] = key;
  190. return i;
  191. }
  192. if (hash_set->keys[i] == key) {
  193. return GGML_HASHSET_ALREADY_EXISTS;
  194. }
  195. i = (i + 1) % hash_set->size;
  196. } while (i != h);
  197. // visited all hash table entries -> not found
  198. GGML_ABORT("fatal error");
  199. }
  200. static size_t ggml_hash_find_or_insert(struct ggml_hash_set * hash_set, struct ggml_tensor * key) {
  201. size_t h = ggml_hash(key) % hash_set->size;
  202. // linear probing
  203. size_t i = h;
  204. do {
  205. if (!ggml_bitset_get(hash_set->used, i)) {
  206. ggml_bitset_set(hash_set->used, i);
  207. hash_set->keys[i] = key;
  208. return i;
  209. }
  210. if (hash_set->keys[i] == key) {
  211. return i;
  212. }
  213. i = (i + 1) % hash_set->size;
  214. } while (i != h);
  215. // visited all hash table entries -> not found
  216. GGML_ABORT("fatal error");
  217. }
  218. // computation graph
  219. enum ggml_cgraph_eval_order {
  220. GGML_CGRAPH_EVAL_ORDER_LEFT_TO_RIGHT = 0,
  221. GGML_CGRAPH_EVAL_ORDER_RIGHT_TO_LEFT,
  222. GGML_CGRAPH_EVAL_ORDER_COUNT
  223. };
  224. struct ggml_cgraph {
  225. int size; // maximum number of nodes/leafs/grads/grad_accs
  226. int n_nodes; // number of nodes currently in use
  227. int n_leafs; // number of leafs currently in use
  228. struct ggml_tensor ** nodes; // tensors with data that can change if the graph is evaluated
  229. struct ggml_tensor ** grads; // the outputs of these tensors are the gradients of the nodes
  230. struct ggml_tensor ** grad_accs; // accumulators for node gradients
  231. struct ggml_tensor ** leafs; // tensors with constant data
  232. struct ggml_hash_set visited_hash_set;
  233. enum ggml_cgraph_eval_order order;
  234. };
  235. // returns a slice of cgraph with nodes [i0, i1)
  236. // the slice does not have leafs or gradients
  237. // if you need the gradients, get them from the original graph
  238. struct ggml_cgraph ggml_graph_view(struct ggml_cgraph * cgraph, int i0, int i1);
  239. // Memory allocation
  240. void * ggml_aligned_malloc(size_t size);
  241. void ggml_aligned_free(void * ptr, size_t size);
  242. // FP16 to FP32 conversion
  243. #if defined(__ARM_NEON)
  244. #ifdef _MSC_VER
  245. typedef uint16_t ggml_fp16_internal_t;
  246. #else
  247. typedef __fp16 ggml_fp16_internal_t;
  248. #endif
  249. #endif
  250. #if defined(__ARM_NEON) && !defined(_MSC_VER)
  251. #define GGML_COMPUTE_FP16_TO_FP32(x) ggml_compute_fp16_to_fp32(x)
  252. #define GGML_COMPUTE_FP32_TO_FP16(x) ggml_compute_fp32_to_fp16(x)
  253. #define GGML_FP16_TO_FP32(x) ggml_compute_fp16_to_fp32(x)
  254. static inline float ggml_compute_fp16_to_fp32(ggml_fp16_t h) {
  255. ggml_fp16_internal_t tmp;
  256. memcpy(&tmp, &h, sizeof(ggml_fp16_t));
  257. return (float)tmp;
  258. }
  259. static inline ggml_fp16_t ggml_compute_fp32_to_fp16(float f) {
  260. ggml_fp16_t res;
  261. ggml_fp16_internal_t tmp = f;
  262. memcpy(&res, &tmp, sizeof(ggml_fp16_t));
  263. return res;
  264. }
  265. #elif defined(__F16C__)
  266. #ifdef _MSC_VER
  267. #define GGML_COMPUTE_FP16_TO_FP32(x) _mm_cvtss_f32(_mm_cvtph_ps(_mm_cvtsi32_si128(x)))
  268. #define GGML_COMPUTE_FP32_TO_FP16(x) _mm_extract_epi16(_mm_cvtps_ph(_mm_set_ss(x), 0), 0)
  269. #else
  270. #define GGML_COMPUTE_FP16_TO_FP32(x) _cvtsh_ss(x)
  271. #define GGML_COMPUTE_FP32_TO_FP16(x) _cvtss_sh(x, 0)
  272. #endif
  273. #elif defined(__POWER9_VECTOR__)
  274. #define GGML_COMPUTE_FP16_TO_FP32(x) ggml_compute_fp16_to_fp32(x)
  275. #define GGML_COMPUTE_FP32_TO_FP16(x) ggml_compute_fp32_to_fp16(x)
  276. /* the inline asm below is about 12% faster than the lookup method */
  277. #define GGML_FP16_TO_FP32(x) GGML_COMPUTE_FP16_TO_FP32(x)
  278. #define GGML_FP32_TO_FP16(x) GGML_COMPUTE_FP32_TO_FP16(x)
  279. static inline float ggml_compute_fp16_to_fp32(ggml_fp16_t h) {
  280. register float f;
  281. register double d;
  282. __asm__(
  283. "mtfprd %0,%2\n"
  284. "xscvhpdp %0,%0\n"
  285. "frsp %1,%0\n" :
  286. /* temp */ "=d"(d),
  287. /* out */ "=f"(f):
  288. /* in */ "r"(h));
  289. return f;
  290. }
  291. static inline ggml_fp16_t ggml_compute_fp32_to_fp16(float f) {
  292. register double d;
  293. register ggml_fp16_t r;
  294. __asm__( /* xscvdphp can work on double or single precision */
  295. "xscvdphp %0,%2\n"
  296. "mffprd %1,%0\n" :
  297. /* temp */ "=d"(d),
  298. /* out */ "=r"(r):
  299. /* in */ "f"(f));
  300. return r;
  301. }
  302. #else
  303. // FP16 <-> FP32
  304. // ref: https://github.com/Maratyszcza/FP16
  305. static inline float fp32_from_bits(uint32_t w) {
  306. union {
  307. uint32_t as_bits;
  308. float as_value;
  309. } fp32;
  310. fp32.as_bits = w;
  311. return fp32.as_value;
  312. }
  313. static inline uint32_t fp32_to_bits(float f) {
  314. union {
  315. float as_value;
  316. uint32_t as_bits;
  317. } fp32;
  318. fp32.as_value = f;
  319. return fp32.as_bits;
  320. }
  321. static inline float ggml_compute_fp16_to_fp32(ggml_fp16_t h) {
  322. const uint32_t w = (uint32_t) h << 16;
  323. const uint32_t sign = w & UINT32_C(0x80000000);
  324. const uint32_t two_w = w + w;
  325. const uint32_t exp_offset = UINT32_C(0xE0) << 23;
  326. #if (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) || defined(__GNUC__) && !defined(__STRICT_ANSI__)) && (!defined(__cplusplus) || __cplusplus >= 201703L)
  327. const float exp_scale = 0x1.0p-112f;
  328. #else
  329. const float exp_scale = fp32_from_bits(UINT32_C(0x7800000));
  330. #endif
  331. const float normalized_value = fp32_from_bits((two_w >> 4) + exp_offset) * exp_scale;
  332. const uint32_t magic_mask = UINT32_C(126) << 23;
  333. const float magic_bias = 0.5f;
  334. const float denormalized_value = fp32_from_bits((two_w >> 17) | magic_mask) - magic_bias;
  335. const uint32_t denormalized_cutoff = UINT32_C(1) << 27;
  336. const uint32_t result = sign |
  337. (two_w < denormalized_cutoff ? fp32_to_bits(denormalized_value) : fp32_to_bits(normalized_value));
  338. return fp32_from_bits(result);
  339. }
  340. static inline ggml_fp16_t ggml_compute_fp32_to_fp16(float f) {
  341. #if (defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) || defined(__GNUC__) && !defined(__STRICT_ANSI__)) && (!defined(__cplusplus) || __cplusplus >= 201703L)
  342. const float scale_to_inf = 0x1.0p+112f;
  343. const float scale_to_zero = 0x1.0p-110f;
  344. #else
  345. const float scale_to_inf = fp32_from_bits(UINT32_C(0x77800000));
  346. const float scale_to_zero = fp32_from_bits(UINT32_C(0x08800000));
  347. #endif
  348. float base = (fabsf(f) * scale_to_inf) * scale_to_zero;
  349. const uint32_t w = fp32_to_bits(f);
  350. const uint32_t shl1_w = w + w;
  351. const uint32_t sign = w & UINT32_C(0x80000000);
  352. uint32_t bias = shl1_w & UINT32_C(0xFF000000);
  353. if (bias < UINT32_C(0x71000000)) {
  354. bias = UINT32_C(0x71000000);
  355. }
  356. base = fp32_from_bits((bias >> 1) + UINT32_C(0x07800000)) + base;
  357. const uint32_t bits = fp32_to_bits(base);
  358. const uint32_t exp_bits = (bits >> 13) & UINT32_C(0x00007C00);
  359. const uint32_t mantissa_bits = bits & UINT32_C(0x00000FFF);
  360. const uint32_t nonsign = exp_bits + mantissa_bits;
  361. return (sign >> 16) | (shl1_w > UINT32_C(0xFF000000) ? UINT16_C(0x7E00) : nonsign);
  362. }
  363. #define GGML_COMPUTE_FP16_TO_FP32(x) ggml_compute_fp16_to_fp32(x)
  364. #define GGML_COMPUTE_FP32_TO_FP16(x) ggml_compute_fp32_to_fp16(x)
  365. #endif // defined(__ARM_NEON) && (!defined(__MSC_VER)
  366. // precomputed f32 table for f16 (256 KB)
  367. // defined in ggml.c, initialized in ggml_init()
  368. GGML_API float ggml_table_f32_f16[1 << 16];
  369. // On ARM NEON, it's quicker to directly convert x -> x instead of calling into ggml_lookup_fp16_to_fp32,
  370. // so we define GGML_FP16_TO_FP32 and GGML_FP32_TO_FP16 elsewhere for NEON.
  371. // This is also true for POWER9.
  372. #if !defined(GGML_FP16_TO_FP32)
  373. inline static float ggml_lookup_fp16_to_fp32(ggml_fp16_t f) {
  374. uint16_t s;
  375. memcpy(&s, &f, sizeof(uint16_t));
  376. return ggml_table_f32_f16[s];
  377. }
  378. #define GGML_FP16_TO_FP32(x) ggml_lookup_fp16_to_fp32(x)
  379. #endif
  380. #if !defined(GGML_FP32_TO_FP16)
  381. #define GGML_FP32_TO_FP16(x) GGML_COMPUTE_FP32_TO_FP16(x)
  382. #endif
  383. /**
  384. * Converts brain16 to float32.
  385. *
  386. * The bfloat16 floating point format has the following structure:
  387. *
  388. * ┌sign
  389. * │
  390. * │ ┌exponent
  391. * │ │
  392. * │ │ ┌mantissa
  393. * │ │ │
  394. * │┌──┴───┐┌─┴───┐
  395. * 0b0000000000000000 brain16
  396. *
  397. * Since bf16 has the same number of exponent bits as a 32bit float,
  398. * encoding and decoding numbers becomes relatively straightforward.
  399. *
  400. * ┌sign
  401. * │
  402. * │ ┌exponent
  403. * │ │
  404. * │ │ ┌mantissa
  405. * │ │ │
  406. * │┌──┴───┐┌─┴───────────────────┐
  407. * 0b00000000000000000000000000000000 IEEE binary32
  408. *
  409. * For comparison, the standard fp16 format has fewer exponent bits.
  410. *
  411. * ┌sign
  412. * │
  413. * │ ┌exponent
  414. * │ │
  415. * │ │ ┌mantissa
  416. * │ │ │
  417. * │┌─┴─┐┌─┴──────┐
  418. * 0b0000000000000000 IEEE binary16
  419. *
  420. * @see IEEE 754-2008
  421. */
  422. static inline float ggml_compute_bf16_to_fp32(ggml_bf16_t h) {
  423. union {
  424. float f;
  425. uint32_t i;
  426. } u;
  427. u.i = (uint32_t)h.bits << 16;
  428. return u.f;
  429. }
  430. /**
  431. * Converts float32 to brain16.
  432. *
  433. * This is binary identical with Google Brain float conversion.
  434. * Floats shall round to nearest even, and NANs shall be quiet.
  435. * Subnormals aren't flushed to zero, except perhaps when used.
  436. * This code should vectorize nicely if using modern compilers.
  437. */
  438. static inline ggml_bf16_t ggml_compute_fp32_to_bf16(float s) {
  439. ggml_bf16_t h;
  440. union {
  441. float f;
  442. uint32_t i;
  443. } u;
  444. u.f = s;
  445. if ((u.i & 0x7fffffff) > 0x7f800000) { /* nan */
  446. h.bits = (u.i >> 16) | 64; /* force to quiet */
  447. return h;
  448. }
  449. h.bits = (u.i + (0x7fff + ((u.i >> 16) & 1))) >> 16;
  450. return h;
  451. }
  452. #define GGML_FP32_TO_BF16(x) ggml_compute_fp32_to_bf16(x)
  453. #define GGML_BF16_TO_FP32(x) ggml_compute_bf16_to_fp32(x)
  454. #ifdef __cplusplus
  455. }
  456. #endif