clip-impl.h 15 KB

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  1. #include "ggml.h"
  2. #include "gguf.h"
  3. #include "clip.h"
  4. #include <climits>
  5. #include <cstdarg>
  6. #include <cinttypes>
  7. #include <string>
  8. #include <map>
  9. #include <sstream>
  10. #include <vector>
  11. #include <memory>
  12. // Internal header for clip.cpp
  13. #define KEY_FTYPE "general.file_type"
  14. #define KEY_NAME "general.name"
  15. #define KEY_DESCRIPTION "general.description"
  16. #define KEY_MINICPMV_VERSION "clip.minicpmv_version"
  17. #define KEY_USE_GELU "clip.use_gelu"
  18. #define KEY_USE_SILU "clip.use_silu"
  19. #define KEY_N_EMBD "clip.vision.embedding_length"
  20. #define KEY_N_FF "clip.vision.feed_forward_length"
  21. #define KEY_N_BLOCK "clip.vision.block_count"
  22. #define KEY_N_HEAD "clip.vision.attention.head_count"
  23. #define KEY_LAYER_NORM_EPS "clip.vision.attention.layer_norm_epsilon"
  24. #define KEY_PROJ_DIM "clip.vision.projection_dim"
  25. #define KEY_IMAGE_SIZE "clip.vision.image_size"
  26. #define KEY_PATCH_SIZE "clip.vision.patch_size"
  27. #define KEY_IMAGE_MEAN "clip.vision.image_mean"
  28. #define KEY_IMAGE_STD "clip.vision.image_std"
  29. #define KEY_FEATURE_LAYER "clip.vision.feature_layer"
  30. #define KEY_PROJ_SCALE_FACTOR "clip.vision.projector.scale_factor"
  31. #define KEY_PROJ_TYPE "clip.projector_type"
  32. #define KEY_SPATIAL_MERGE_SIZE "clip.vision.spatial_merge_size"
  33. #define KEY_MM_PATCH_MERGE_TYPE "clip.vision.mm_patch_merge_type"
  34. #define KEY_IMAGE_GRID_PINPOINTS "clip.vision.image_grid_pinpoints"
  35. #define KEY_IMAGE_CROP_RESOLUTION "clip.vision.image_crop_resolution"
  36. #define KEY_WIN_ATTN_PATTERN "clip.vision.n_wa_pattern"
  37. #define KEY_ATTN_WINDOW_SIZE "clip.vision.window_size"
  38. //
  39. // tensor name constants
  40. //
  41. #define TN_POS_EMBD "v.position_embd.weight"
  42. #define TN_CLASS_EMBD "v.class_embd"
  43. #define TN_PATCH_EMBD "v.patch_embd.weight" // not rename tensor with ".0" postfix for backwrad compat
  44. #define TN_PATCH_EMBD_1 "v.patch_embd.weight.1"
  45. #define TN_PATCH_BIAS "v.patch_embd.bias"
  46. #define TN_ATTN_K "%s.blk.%d.attn_k.%s"
  47. #define TN_ATTN_Q "%s.blk.%d.attn_q.%s"
  48. #define TN_ATTN_V "%s.blk.%d.attn_v.%s"
  49. #define TN_ATTN_OUTPUT "%s.blk.%d.attn_out.%s"
  50. #define TN_ATTN_K_NORM "%s.blk.%d.attn_k_norm.%s"
  51. #define TN_ATTN_Q_NORM "%s.blk.%d.attn_q_norm.%s"
  52. #define TN_FFN_DOWN "%s.blk.%d.ffn_down.%s"
  53. #define TN_FFN_GATE "%s.blk.%d.ffn_gate.%s"
  54. #define TN_FFN_UP "%s.blk.%d.ffn_up.%s"
  55. #define TN_FFN_GATE "%s.blk.%d.ffn_gate.%s"
  56. #define TN_LN_1 "%s.blk.%d.ln1.%s" // layer norm
  57. #define TN_LN_2 "%s.blk.%d.ln2.%s" // layer norm
  58. #define TN_LS_1 "%s.blk.%d.ls1.%s" // layer scale
  59. #define TN_LS_2 "%s.blk.%d.ls2.%s" // layer scale
  60. #define TN_LN_PRE "%s.pre_ln.%s"
  61. #define TN_LN_POST "%s.post_ln.%s"
  62. #define TN_LLAVA_PROJ "mm.%d.%s"
  63. #define TN_MVLM_PROJ_MLP "mm.model.mlp.%d.%s"
  64. #define TN_MVLM_PROJ_BLOCK "mm.model.mb_block.%d.block.%d.%s"
  65. #define TN_MVLM_PROJ_PEG "mm.model.peg.%d.%s"
  66. #define TN_IMAGE_NEWLINE "model.image_newline"
  67. #define TN_MM_INP_NORM "mm.input_norm.weight"
  68. #define TN_MM_INP_PROJ "mm.input_projection.weight" // gemma3
  69. #define TN_MM_SOFT_EMB_N "mm.soft_emb_norm.weight" // gemma3
  70. #define TN_MM_PROJECTOR "mm.model.fc.weight" // idefics3
  71. #define TN_MM_PATCH_MERGER "mm.patch_merger.weight" // mistral small 3.1
  72. #define TN_TOK_IMG_BREAK "v.token_embd.img_break" // pixtral
  73. #define TN_TOK_GLM_BOI "adapter.boi" // glm-edge (these embeddings are not in text model)
  74. #define TN_TOK_GLM_EOI "adapter.eoi" // glm-edge (these embeddings are not in text model)
  75. // mimicpmv
  76. #define TN_MINICPMV_POS_EMBD_K "resampler.pos_embed_k"
  77. #define TN_MINICPMV_QUERY "resampler.query"
  78. #define TN_MINICPMV_PROJ "resampler.proj.weight"
  79. #define TN_MINICPMV_KV_PROJ "resampler.kv.weight"
  80. #define TN_MINICPMV_ATTN "resampler.attn.%s.%s"
  81. #define TN_MINICPMV_LN "resampler.ln_%s.%s"
  82. #define TN_GLM_ADAPER_CONV "adapter.conv.%s"
  83. #define TN_GLM_ADAPTER_LINEAR "adapter.linear.linear.%s"
  84. #define TN_GLM_ADAPTER_NORM_1 "adapter.linear.norm1.%s"
  85. #define TN_GLM_ADAPTER_D_H_2_4H "adapter.linear.dense_h_to_4h.%s"
  86. #define TN_GLM_ADAPTER_GATE "adapter.linear.gate.%s"
  87. #define TN_GLM_ADAPTER_D_4H_2_H "adapter.linear.dense_4h_to_h.%s"
  88. // align x to upper multiple of n
  89. #define CLIP_ALIGN(x, n) ((((x) + (n) - 1) / (n)) * (n))
  90. enum projector_type {
  91. PROJECTOR_TYPE_MLP,
  92. PROJECTOR_TYPE_MLP_NORM,
  93. PROJECTOR_TYPE_LDP,
  94. PROJECTOR_TYPE_LDPV2,
  95. PROJECTOR_TYPE_MINICPMV,
  96. PROJECTOR_TYPE_GLM_EDGE,
  97. PROJECTOR_TYPE_QWEN2VL,
  98. PROJECTOR_TYPE_GEMMA3,
  99. PROJECTOR_TYPE_IDEFICS3,
  100. PROJECTOR_TYPE_PIXTRAL,
  101. PROJECTOR_TYPE_QWEN25VL,
  102. PROJECTOR_TYPE_INTERNVL,
  103. PROJECTOR_TYPE_LLAMA4,
  104. PROJECTOR_TYPE_UNKNOWN,
  105. };
  106. static std::map<projector_type, std::string> PROJECTOR_TYPE_NAMES = {
  107. { PROJECTOR_TYPE_MLP, "mlp" },
  108. { PROJECTOR_TYPE_LDP, "ldp" },
  109. { PROJECTOR_TYPE_LDPV2, "ldpv2"},
  110. { PROJECTOR_TYPE_MINICPMV, "resampler"},
  111. { PROJECTOR_TYPE_GLM_EDGE, "adapter"},
  112. { PROJECTOR_TYPE_QWEN2VL, "qwen2vl_merger"},
  113. { PROJECTOR_TYPE_QWEN25VL, "qwen2.5vl_merger"},
  114. { PROJECTOR_TYPE_GEMMA3, "gemma3"},
  115. { PROJECTOR_TYPE_IDEFICS3, "idefics3"},
  116. { PROJECTOR_TYPE_PIXTRAL, "pixtral"},
  117. { PROJECTOR_TYPE_INTERNVL, "internvl"},
  118. { PROJECTOR_TYPE_LLAMA4, "llama4"},
  119. };
  120. static projector_type clip_projector_type_from_string(const std::string & str) {
  121. for (const auto & pair : PROJECTOR_TYPE_NAMES) {
  122. if (pair.second == str) {
  123. return pair.first;
  124. }
  125. }
  126. return PROJECTOR_TYPE_UNKNOWN;
  127. }
  128. // RGB uint8 image
  129. struct clip_image_u8 {
  130. int nx;
  131. int ny;
  132. std::vector<uint8_t> buf;
  133. };
  134. // RGB float32 image (NHWC)
  135. // Memory layout: RGBRGBRGB...
  136. struct clip_image_f32 {
  137. int nx;
  138. int ny;
  139. std::vector<float> buf;
  140. };
  141. //
  142. // logging
  143. //
  144. static void clip_log_callback_default(enum ggml_log_level level, const char * text, void * user_data) {
  145. (void) level;
  146. (void) user_data;
  147. fputs(text, stderr);
  148. fflush(stderr);
  149. }
  150. struct clip_logger_state {
  151. ggml_log_level verbosity_thold;
  152. ggml_log_callback log_callback;
  153. void * log_callback_user_data;
  154. };
  155. extern struct clip_logger_state g_logger_state;
  156. static void clip_log_internal_v(enum ggml_log_level level, const char * format, va_list args) {
  157. if (format == NULL) {
  158. return;
  159. }
  160. va_list args_copy;
  161. va_copy(args_copy, args);
  162. char buffer[128];
  163. int len = vsnprintf(buffer, 128, format, args);
  164. if (len < 128) {
  165. g_logger_state.log_callback(level, buffer, g_logger_state.log_callback_user_data);
  166. } else {
  167. char * buffer2 = (char *) calloc(len + 1, sizeof(char));
  168. vsnprintf(buffer2, len + 1, format, args_copy);
  169. buffer2[len] = 0;
  170. g_logger_state.log_callback(level, buffer2, g_logger_state.log_callback_user_data);
  171. free(buffer2);
  172. }
  173. va_end(args_copy);
  174. }
  175. static void clip_log_internal(enum ggml_log_level level, const char * format, ...) {
  176. va_list args;
  177. va_start(args, format);
  178. clip_log_internal_v(level, format, args);
  179. va_end(args);
  180. }
  181. #define LOG_TMPL(level, ...) \
  182. do { \
  183. if ((level) >= g_logger_state.verbosity_thold) { \
  184. clip_log_internal((level), __VA_ARGS__); \
  185. } \
  186. } while (0)
  187. #define LOG_INF(...) LOG_TMPL(GGML_LOG_LEVEL_INFO, __VA_ARGS__)
  188. #define LOG_WRN(...) LOG_TMPL(GGML_LOG_LEVEL_WARN, __VA_ARGS__)
  189. #define LOG_ERR(...) LOG_TMPL(GGML_LOG_LEVEL_ERROR, __VA_ARGS__)
  190. #define LOG_DBG(...) LOG_TMPL(GGML_LOG_LEVEL_DEBUG, __VA_ARGS__)
  191. #define LOG_CNT(...) LOG_TMPL(GGML_LOG_LEVEL_CONT, __VA_ARGS__)
  192. //
  193. // cpp wrappers
  194. //
  195. // wrapper for clip_image_size
  196. struct clip_image_size_deleter {
  197. void operator()(clip_image_size * val) { clip_image_size_free(val); }
  198. };
  199. typedef std::unique_ptr<clip_image_size, clip_image_size_deleter> clip_image_size_ptr;
  200. // wrapper for clip_image_u8
  201. struct clip_image_u8_deleter {
  202. void operator()(clip_image_u8 * val) { clip_image_u8_free(val); }
  203. };
  204. typedef std::unique_ptr<clip_image_u8, clip_image_u8_deleter> clip_image_u8_ptr;
  205. // wrapper for clip_image_f32
  206. struct clip_image_f32_deleter {
  207. void operator()(clip_image_f32 * val) { clip_image_f32_free(val); }
  208. };
  209. typedef std::unique_ptr<clip_image_f32, clip_image_f32_deleter> clip_image_f32_ptr;
  210. struct clip_image_u8_batch {
  211. std::vector<clip_image_u8_ptr> entries;
  212. };
  213. struct clip_image_f32_batch {
  214. std::vector<clip_image_f32_ptr> entries;
  215. // for llava-uhd style models, we need to know the grid size
  216. // note: entries.size() == grid_x * grid_y + 1 (one overview image)
  217. int grid_x = 0;
  218. int grid_y = 0;
  219. clip_image_f32_batch clone() const {
  220. clip_image_f32_batch new_batch;
  221. new_batch.entries.reserve(entries.size());
  222. for (const auto & entry : entries) {
  223. new_batch.entries.emplace_back(new clip_image_f32(*entry));
  224. }
  225. return new_batch;
  226. }
  227. };
  228. //
  229. // common utils
  230. //
  231. static std::string string_format(const char * fmt, ...) {
  232. va_list ap;
  233. va_list ap2;
  234. va_start(ap, fmt);
  235. va_copy(ap2, ap);
  236. int size = vsnprintf(NULL, 0, fmt, ap);
  237. GGML_ASSERT(size >= 0 && size < INT_MAX); // NOLINT
  238. std::vector<char> buf(size + 1);
  239. int size2 = vsnprintf(buf.data(), size + 1, fmt, ap2);
  240. GGML_ASSERT(size2 == size);
  241. va_end(ap2);
  242. va_end(ap);
  243. return std::string(buf.data(), buf.size());
  244. }
  245. static void string_replace_all(std::string & s, const std::string & search, const std::string & replace) {
  246. if (search.empty()) {
  247. return;
  248. }
  249. std::string builder;
  250. builder.reserve(s.length());
  251. size_t pos = 0;
  252. size_t last_pos = 0;
  253. while ((pos = s.find(search, last_pos)) != std::string::npos) {
  254. builder.append(s, last_pos, pos - last_pos);
  255. builder.append(replace);
  256. last_pos = pos + search.length();
  257. }
  258. builder.append(s, last_pos, std::string::npos);
  259. s = std::move(builder);
  260. }
  261. // split string by a `std::string delim` instead of `char delim`
  262. static std::vector<std::string> string_split_str(std::string s, const std::string & delimiter) {
  263. std::vector<std::string> tokens;
  264. size_t pos = 0;
  265. std::string token;
  266. while ((pos = s.find(delimiter)) != std::string::npos) {
  267. token = s.substr(0, pos);
  268. tokens.push_back(token);
  269. s.erase(0, pos + delimiter.length());
  270. }
  271. tokens.push_back(s);
  272. return tokens;
  273. }
  274. //
  275. // gguf utils
  276. //
  277. static std::string gguf_data_to_str(enum gguf_type type, const void * data, int i) {
  278. switch (type) {
  279. case GGUF_TYPE_UINT8: return std::to_string(((const uint8_t *)data)[i]);
  280. case GGUF_TYPE_INT8: return std::to_string(((const int8_t *)data)[i]);
  281. case GGUF_TYPE_UINT16: return std::to_string(((const uint16_t *)data)[i]);
  282. case GGUF_TYPE_INT16: return std::to_string(((const int16_t *)data)[i]);
  283. case GGUF_TYPE_UINT32: return std::to_string(((const uint32_t *)data)[i]);
  284. case GGUF_TYPE_INT32: return std::to_string(((const int32_t *)data)[i]);
  285. case GGUF_TYPE_UINT64: return std::to_string(((const uint64_t *)data)[i]);
  286. case GGUF_TYPE_INT64: return std::to_string(((const int64_t *)data)[i]);
  287. case GGUF_TYPE_FLOAT32: return std::to_string(((const float *)data)[i]);
  288. case GGUF_TYPE_FLOAT64: return std::to_string(((const double *)data)[i]);
  289. case GGUF_TYPE_BOOL: return ((const bool *)data)[i] ? "true" : "false";
  290. default: return string_format("unknown type %d", type);
  291. }
  292. }
  293. static std::string gguf_kv_to_str(const struct gguf_context * ctx_gguf, int i) {
  294. const enum gguf_type type = gguf_get_kv_type(ctx_gguf, i);
  295. switch (type) {
  296. case GGUF_TYPE_STRING:
  297. return gguf_get_val_str(ctx_gguf, i);
  298. case GGUF_TYPE_ARRAY:
  299. {
  300. const enum gguf_type arr_type = gguf_get_arr_type(ctx_gguf, i);
  301. int arr_n = gguf_get_arr_n(ctx_gguf, i);
  302. const void * data = arr_type == GGUF_TYPE_STRING ? nullptr : gguf_get_arr_data(ctx_gguf, i);
  303. std::stringstream ss;
  304. ss << "[";
  305. for (int j = 0; j < arr_n; j++) {
  306. if (arr_type == GGUF_TYPE_STRING) {
  307. std::string val = gguf_get_arr_str(ctx_gguf, i, j);
  308. // escape quotes
  309. string_replace_all(val, "\\", "\\\\");
  310. string_replace_all(val, "\"", "\\\"");
  311. ss << '"' << val << '"';
  312. } else if (arr_type == GGUF_TYPE_ARRAY) {
  313. ss << "???";
  314. } else {
  315. ss << gguf_data_to_str(arr_type, data, j);
  316. }
  317. if (j < arr_n - 1) {
  318. ss << ", ";
  319. }
  320. }
  321. ss << "]";
  322. return ss.str();
  323. }
  324. default:
  325. return gguf_data_to_str(type, gguf_get_val_data(ctx_gguf, i), 0);
  326. }
  327. }
  328. //
  329. // debugging
  330. //
  331. static void print_tensor_shape(ggml_tensor * t) {
  332. printf("%s.shape = [", t->name);
  333. for (int i = 0; i < ggml_n_dims(t); ++i) {
  334. printf("%" PRId64, t->ne[i]);
  335. if (i < ggml_n_dims(t) - 1) {
  336. printf(", ");
  337. }
  338. }
  339. printf("]\n");
  340. }
  341. static void print_tensor_data(ggml_tensor * t, uint8_t * data, int64_t n) {
  342. ggml_type type = t->type;
  343. int64_t * ne = t->ne;
  344. size_t * nb = t->nb;
  345. for (int64_t i3 = 0; i3 < ne[3]; i3++) {
  346. printf("%s.data: [\n", t->name);
  347. for (int64_t i2 = 0; i2 < ne[2]; i2++) {
  348. if (i2 == n && ne[2] > 2*n) {
  349. printf(" ..., \n");
  350. i2 = ne[2] - n;
  351. }
  352. printf(" [\n");
  353. for (int64_t i1 = 0; i1 < ne[1]; i1++) {
  354. if (i1 == n && ne[1] > 2*n) {
  355. printf(" ..., \n");
  356. i1 = ne[1] - n;
  357. }
  358. printf(" [");
  359. for (int64_t i0 = 0; i0 < ne[0]; i0++) {
  360. if (i0 == n && ne[0] > 2*n) {
  361. printf("..., ");
  362. i0 = ne[0] - n;
  363. }
  364. size_t i = i3 * nb[3] + i2 * nb[2] + i1 * nb[1] + i0 * nb[0];
  365. float v;
  366. if (type == GGML_TYPE_F16) {
  367. v = ggml_fp16_to_fp32(*(ggml_fp16_t *) &data[i]);
  368. } else if (type == GGML_TYPE_F32) {
  369. v = *(float *) &data[i];
  370. } else if (type == GGML_TYPE_I32) {
  371. v = (float) *(int32_t *) &data[i];
  372. } else if (type == GGML_TYPE_I16) {
  373. v = (float) *(int16_t *) &data[i];
  374. } else if (type == GGML_TYPE_I8) {
  375. v = (float) *(int8_t *) &data[i];
  376. } else {
  377. GGML_ABORT("fatal error");
  378. }
  379. printf("%8.4f", v);
  380. if (i0 < ne[0] - 1) printf(", ");
  381. }
  382. printf("],\n");
  383. }
  384. printf(" ],\n");
  385. }
  386. printf(" ]\n");
  387. }
  388. }
  389. //
  390. // API used internally with mtmd
  391. //
  392. projector_type clip_get_projector_type(const struct clip_ctx * ctx);