common.cpp 47 KB

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  1. #include "common.h"
  2. #include "build-info.h"
  3. #include "llama.h"
  4. #include <algorithm>
  5. #include <cassert>
  6. #include <cmath>
  7. #include <cstring>
  8. #include <ctime>
  9. #include <fstream>
  10. #include <iterator>
  11. #include <iostream>
  12. #include <regex>
  13. #include <sstream>
  14. #include <string>
  15. #include <unordered_set>
  16. #include <vector>
  17. #include <cinttypes>
  18. #if defined(__APPLE__) && defined(__MACH__)
  19. #include <sys/types.h>
  20. #include <sys/sysctl.h>
  21. #endif
  22. #if defined(_WIN32)
  23. #define WIN32_LEAN_AND_MEAN
  24. #define NOMINMAX
  25. #include <codecvt>
  26. #include <locale>
  27. #include <windows.h>
  28. #include <fcntl.h>
  29. #include <io.h>
  30. #else
  31. #include <sys/ioctl.h>
  32. #include <sys/stat.h>
  33. #include <unistd.h>
  34. #endif
  35. #if defined(_MSC_VER)
  36. #pragma warning(disable: 4244 4267) // possible loss of data
  37. #endif
  38. int32_t get_num_physical_cores() {
  39. #ifdef __linux__
  40. // enumerate the set of thread siblings, num entries is num cores
  41. std::unordered_set<std::string> siblings;
  42. for (uint32_t cpu=0; cpu < UINT32_MAX; ++cpu) {
  43. std::ifstream thread_siblings("/sys/devices/system/cpu"
  44. + std::to_string(cpu) + "/topology/thread_siblings");
  45. if (!thread_siblings.is_open()) {
  46. break; // no more cpus
  47. }
  48. std::string line;
  49. if (std::getline(thread_siblings, line)) {
  50. siblings.insert(line);
  51. }
  52. }
  53. if (siblings.size() > 0) {
  54. return static_cast<int32_t>(siblings.size());
  55. }
  56. #elif defined(__APPLE__) && defined(__MACH__)
  57. int32_t num_physical_cores;
  58. size_t len = sizeof(num_physical_cores);
  59. int result = sysctlbyname("hw.perflevel0.physicalcpu", &num_physical_cores, &len, NULL, 0);
  60. if (result == 0) {
  61. return num_physical_cores;
  62. }
  63. result = sysctlbyname("hw.physicalcpu", &num_physical_cores, &len, NULL, 0);
  64. if (result == 0) {
  65. return num_physical_cores;
  66. }
  67. #elif defined(_WIN32)
  68. //TODO: Implement
  69. #endif
  70. unsigned int n_threads = std::thread::hardware_concurrency();
  71. return n_threads > 0 ? (n_threads <= 4 ? n_threads : n_threads / 2) : 4;
  72. }
  73. void process_escapes(std::string& input) {
  74. std::size_t input_len = input.length();
  75. std::size_t output_idx = 0;
  76. for (std::size_t input_idx = 0; input_idx < input_len; ++input_idx) {
  77. if (input[input_idx] == '\\' && input_idx + 1 < input_len) {
  78. switch (input[++input_idx]) {
  79. case 'n': input[output_idx++] = '\n'; break;
  80. case 'r': input[output_idx++] = '\r'; break;
  81. case 't': input[output_idx++] = '\t'; break;
  82. case '\'': input[output_idx++] = '\''; break;
  83. case '\"': input[output_idx++] = '\"'; break;
  84. case '\\': input[output_idx++] = '\\'; break;
  85. default: input[output_idx++] = '\\';
  86. input[output_idx++] = input[input_idx]; break;
  87. }
  88. } else {
  89. input[output_idx++] = input[input_idx];
  90. }
  91. }
  92. input.resize(output_idx);
  93. }
  94. bool gpt_params_parse(int argc, char ** argv, gpt_params & params) {
  95. bool invalid_param = false;
  96. std::string arg;
  97. gpt_params default_params;
  98. const std::string arg_prefix = "--";
  99. for (int i = 1; i < argc; i++) {
  100. arg = argv[i];
  101. if (arg.compare(0, arg_prefix.size(), arg_prefix) == 0) {
  102. std::replace(arg.begin(), arg.end(), '_', '-');
  103. }
  104. if (arg == "-s" || arg == "--seed") {
  105. if (++i >= argc) {
  106. invalid_param = true;
  107. break;
  108. }
  109. params.seed = std::stoul(argv[i]);
  110. } else if (arg == "-t" || arg == "--threads") {
  111. if (++i >= argc) {
  112. invalid_param = true;
  113. break;
  114. }
  115. params.n_threads = std::stoi(argv[i]);
  116. if (params.n_threads <= 0) {
  117. params.n_threads = std::thread::hardware_concurrency();
  118. }
  119. } else if (arg == "-p" || arg == "--prompt") {
  120. if (++i >= argc) {
  121. invalid_param = true;
  122. break;
  123. }
  124. params.prompt = argv[i];
  125. } else if (arg == "-e" || arg == "--escape") {
  126. params.escape = true;
  127. } else if (arg == "--prompt-cache") {
  128. if (++i >= argc) {
  129. invalid_param = true;
  130. break;
  131. }
  132. params.path_prompt_cache = argv[i];
  133. } else if (arg == "--prompt-cache-all") {
  134. params.prompt_cache_all = true;
  135. } else if (arg == "--prompt-cache-ro") {
  136. params.prompt_cache_ro = true;
  137. } else if (arg == "-f" || arg == "--file") {
  138. if (++i >= argc) {
  139. invalid_param = true;
  140. break;
  141. }
  142. std::ifstream file(argv[i]);
  143. if (!file) {
  144. fprintf(stderr, "error: failed to open file '%s'\n", argv[i]);
  145. invalid_param = true;
  146. break;
  147. }
  148. std::copy(std::istreambuf_iterator<char>(file), std::istreambuf_iterator<char>(), back_inserter(params.prompt));
  149. if (params.prompt.back() == '\n') {
  150. params.prompt.pop_back();
  151. }
  152. } else if (arg == "-n" || arg == "--n-predict") {
  153. if (++i >= argc) {
  154. invalid_param = true;
  155. break;
  156. }
  157. params.n_predict = std::stoi(argv[i]);
  158. } else if (arg == "--top-k") {
  159. if (++i >= argc) {
  160. invalid_param = true;
  161. break;
  162. }
  163. params.top_k = std::stoi(argv[i]);
  164. } else if (arg == "-c" || arg == "--ctx-size") {
  165. if (++i >= argc) {
  166. invalid_param = true;
  167. break;
  168. }
  169. params.n_ctx = std::stoi(argv[i]);
  170. } else if (arg == "--rope-freq-base") {
  171. if (++i >= argc) {
  172. invalid_param = true;
  173. break;
  174. }
  175. params.rope_freq_base = std::stof(argv[i]);
  176. } else if (arg == "--rope-freq-scale") {
  177. if (++i >= argc) {
  178. invalid_param = true;
  179. break;
  180. }
  181. params.rope_freq_scale = std::stof(argv[i]);
  182. } else if (arg == "--rope-scale") {
  183. if (++i >= argc) {
  184. invalid_param = true;
  185. break;
  186. }
  187. params.rope_freq_scale = 1.0f/std::stof(argv[i]);
  188. } else if (arg == "--memory-f32") {
  189. params.memory_f16 = false;
  190. } else if (arg == "--top-p") {
  191. if (++i >= argc) {
  192. invalid_param = true;
  193. break;
  194. }
  195. params.top_p = std::stof(argv[i]);
  196. } else if (arg == "--temp") {
  197. if (++i >= argc) {
  198. invalid_param = true;
  199. break;
  200. }
  201. params.temp = std::stof(argv[i]);
  202. } else if (arg == "--tfs") {
  203. if (++i >= argc) {
  204. invalid_param = true;
  205. break;
  206. }
  207. params.tfs_z = std::stof(argv[i]);
  208. } else if (arg == "--typical") {
  209. if (++i >= argc) {
  210. invalid_param = true;
  211. break;
  212. }
  213. params.typical_p = std::stof(argv[i]);
  214. } else if (arg == "--repeat-last-n") {
  215. if (++i >= argc) {
  216. invalid_param = true;
  217. break;
  218. }
  219. params.repeat_last_n = std::stoi(argv[i]);
  220. } else if (arg == "--repeat-penalty") {
  221. if (++i >= argc) {
  222. invalid_param = true;
  223. break;
  224. }
  225. params.repeat_penalty = std::stof(argv[i]);
  226. } else if (arg == "--frequency-penalty") {
  227. if (++i >= argc) {
  228. invalid_param = true;
  229. break;
  230. }
  231. params.frequency_penalty = std::stof(argv[i]);
  232. } else if (arg == "--presence-penalty") {
  233. if (++i >= argc) {
  234. invalid_param = true;
  235. break;
  236. }
  237. params.presence_penalty = std::stof(argv[i]);
  238. } else if (arg == "--mirostat") {
  239. if (++i >= argc) {
  240. invalid_param = true;
  241. break;
  242. }
  243. params.mirostat = std::stoi(argv[i]);
  244. } else if (arg == "--mirostat-lr") {
  245. if (++i >= argc) {
  246. invalid_param = true;
  247. break;
  248. }
  249. params.mirostat_eta = std::stof(argv[i]);
  250. } else if (arg == "--mirostat-ent") {
  251. if (++i >= argc) {
  252. invalid_param = true;
  253. break;
  254. }
  255. params.mirostat_tau = std::stof(argv[i]);
  256. } else if (arg == "--cfg-negative-prompt") {
  257. if (++i >= argc) {
  258. invalid_param = true;
  259. break;
  260. }
  261. params.cfg_negative_prompt = argv[i];
  262. } else if (arg == "--cfg-negative-prompt-file") {
  263. if (++i >= argc) {
  264. invalid_param = true;
  265. break;
  266. }
  267. std::ifstream file(argv[i]);
  268. if (!file) {
  269. fprintf(stderr, "error: failed to open file '%s'\n", argv[i]);
  270. invalid_param = true;
  271. break;
  272. }
  273. std::copy(std::istreambuf_iterator<char>(file), std::istreambuf_iterator<char>(), back_inserter(params.cfg_negative_prompt));
  274. if (params.cfg_negative_prompt.back() == '\n') {
  275. params.cfg_negative_prompt.pop_back();
  276. }
  277. } else if (arg == "--cfg-scale") {
  278. if (++i >= argc) {
  279. invalid_param = true;
  280. break;
  281. }
  282. params.cfg_scale = std::stof(argv[i]);
  283. } else if (arg == "-b" || arg == "--batch-size") {
  284. if (++i >= argc) {
  285. invalid_param = true;
  286. break;
  287. }
  288. params.n_batch = std::stoi(argv[i]);
  289. } else if (arg == "--keep") {
  290. if (++i >= argc) {
  291. invalid_param = true;
  292. break;
  293. }
  294. params.n_keep = std::stoi(argv[i]);
  295. } else if (arg == "--chunks") {
  296. if (++i >= argc) {
  297. invalid_param = true;
  298. break;
  299. }
  300. params.n_chunks = std::stoi(argv[i]);
  301. } else if (arg == "-m" || arg == "--model") {
  302. if (++i >= argc) {
  303. invalid_param = true;
  304. break;
  305. }
  306. params.model = argv[i];
  307. } else if (arg == "-a" || arg == "--alias") {
  308. if (++i >= argc) {
  309. invalid_param = true;
  310. break;
  311. }
  312. params.model_alias = argv[i];
  313. } else if (arg == "--lora") {
  314. if (++i >= argc) {
  315. invalid_param = true;
  316. break;
  317. }
  318. params.lora_adapter = argv[i];
  319. params.use_mmap = false;
  320. } else if (arg == "--lora-base") {
  321. if (++i >= argc) {
  322. invalid_param = true;
  323. break;
  324. }
  325. params.lora_base = argv[i];
  326. } else if (arg == "-i" || arg == "--interactive") {
  327. params.interactive = true;
  328. } else if (arg == "--embedding") {
  329. params.embedding = true;
  330. } else if (arg == "--interactive-first") {
  331. params.interactive_first = true;
  332. } else if (arg == "-ins" || arg == "--instruct") {
  333. params.instruct = true;
  334. } else if (arg == "--multiline-input") {
  335. params.multiline_input = true;
  336. } else if (arg == "--simple-io") {
  337. params.simple_io = true;
  338. } else if (arg == "--color") {
  339. params.use_color = true;
  340. } else if (arg == "--mlock") {
  341. params.use_mlock = true;
  342. } else if (arg == "--gpu-layers" || arg == "-ngl" || arg == "--n-gpu-layers") {
  343. if (++i >= argc) {
  344. invalid_param = true;
  345. break;
  346. }
  347. #ifdef LLAMA_SUPPORTS_GPU_OFFLOAD
  348. params.n_gpu_layers = std::stoi(argv[i]);
  349. #else
  350. fprintf(stderr, "warning: not compiled with GPU offload support, --n-gpu-layers option will be ignored\n");
  351. fprintf(stderr, "warning: see main README.md for information on enabling GPU BLAS support\n");
  352. #endif
  353. } else if (arg == "--main-gpu" || arg == "-mg") {
  354. if (++i >= argc) {
  355. invalid_param = true;
  356. break;
  357. }
  358. #ifdef GGML_USE_CUBLAS
  359. params.main_gpu = std::stoi(argv[i]);
  360. #else
  361. fprintf(stderr, "warning: llama.cpp was compiled without cuBLAS. It is not possible to set a main GPU.\n");
  362. #endif
  363. } else if (arg == "--tensor-split" || arg == "-ts") {
  364. if (++i >= argc) {
  365. invalid_param = true;
  366. break;
  367. }
  368. #ifdef GGML_USE_CUBLAS
  369. std::string arg_next = argv[i];
  370. // split string by , and /
  371. const std::regex regex{R"([,/]+)"};
  372. std::sregex_token_iterator it{arg_next.begin(), arg_next.end(), regex, -1};
  373. std::vector<std::string> split_arg{it, {}};
  374. GGML_ASSERT(split_arg.size() <= LLAMA_MAX_DEVICES);
  375. for (size_t i = 0; i < LLAMA_MAX_DEVICES; ++i) {
  376. if (i < split_arg.size()) {
  377. params.tensor_split[i] = std::stof(split_arg[i]);
  378. } else {
  379. params.tensor_split[i] = 0.0f;
  380. }
  381. }
  382. #else
  383. fprintf(stderr, "warning: llama.cpp was compiled without cuBLAS. It is not possible to set a tensor split.\n");
  384. #endif // GGML_USE_CUBLAS
  385. } else if (arg == "--no-mul-mat-q" || arg == "-nommq") {
  386. #ifdef GGML_USE_CUBLAS
  387. params.mul_mat_q = false;
  388. #else
  389. fprintf(stderr, "warning: llama.cpp was compiled without cuBLAS. Disabling mul_mat_q kernels has no effect.\n");
  390. #endif // GGML_USE_CUBLAS
  391. } else if (arg == "--low-vram" || arg == "-lv") {
  392. #ifdef GGML_USE_CUBLAS
  393. params.low_vram = true;
  394. #else
  395. fprintf(stderr, "warning: llama.cpp was compiled without cuBLAS. It is not possible to set lower vram usage.\n");
  396. #endif // GGML_USE_CUBLAS
  397. } else if (arg == "--no-mmap") {
  398. params.use_mmap = false;
  399. } else if (arg == "--mtest") {
  400. params.mem_test = true;
  401. } else if (arg == "--numa") {
  402. params.numa = true;
  403. } else if (arg == "--export") {
  404. params.export_cgraph = true;
  405. } else if (arg == "--verbose-prompt") {
  406. params.verbose_prompt = true;
  407. } else if (arg == "-r" || arg == "--reverse-prompt") {
  408. if (++i >= argc) {
  409. invalid_param = true;
  410. break;
  411. }
  412. params.antiprompt.push_back(argv[i]);
  413. } else if (arg == "-ld" || arg == "--logdir") {
  414. if (++i >= argc) {
  415. invalid_param = true;
  416. break;
  417. }
  418. params.logdir = argv[i];
  419. if (params.logdir.back() != DIRECTORY_SEPARATOR) {
  420. params.logdir += DIRECTORY_SEPARATOR;
  421. }
  422. } else if (arg == "--perplexity") {
  423. params.perplexity = true;
  424. } else if (arg == "--ppl-stride") {
  425. if (++i >= argc) {
  426. invalid_param = true;
  427. break;
  428. }
  429. params.ppl_stride = std::stoi(argv[i]);
  430. } else if (arg == "--ppl-output-type") {
  431. if (++i >= argc) {
  432. invalid_param = true;
  433. break;
  434. }
  435. params.ppl_output_type = std::stoi(argv[i]);
  436. } else if (arg == "--hellaswag") {
  437. params.hellaswag = true;
  438. } else if (arg == "--hellaswag-tasks") {
  439. if (++i >= argc) {
  440. invalid_param = true;
  441. break;
  442. }
  443. params.hellaswag_tasks = std::stoi(argv[i]);
  444. } else if (arg == "--ignore-eos") {
  445. params.ignore_eos = true;
  446. } else if (arg == "--no-penalize-nl") {
  447. params.penalize_nl = false;
  448. } else if (arg == "-l" || arg == "--logit-bias") {
  449. if (++i >= argc) {
  450. invalid_param = true;
  451. break;
  452. }
  453. std::stringstream ss(argv[i]);
  454. llama_token key;
  455. char sign;
  456. std::string value_str;
  457. try {
  458. if (ss >> key && ss >> sign && std::getline(ss, value_str) && (sign == '+' || sign == '-')) {
  459. params.logit_bias[key] = std::stof(value_str) * ((sign == '-') ? -1.0f : 1.0f);
  460. } else {
  461. throw std::exception();
  462. }
  463. } catch (const std::exception&) {
  464. invalid_param = true;
  465. break;
  466. }
  467. } else if (arg == "-h" || arg == "--help") {
  468. gpt_print_usage(argc, argv, default_params);
  469. exit(0);
  470. } else if (arg == "--random-prompt") {
  471. params.random_prompt = true;
  472. } else if (arg == "--in-prefix-bos") {
  473. params.input_prefix_bos = true;
  474. } else if (arg == "--in-prefix") {
  475. if (++i >= argc) {
  476. invalid_param = true;
  477. break;
  478. }
  479. params.input_prefix = argv[i];
  480. } else if (arg == "--in-suffix") {
  481. if (++i >= argc) {
  482. invalid_param = true;
  483. break;
  484. }
  485. params.input_suffix = argv[i];
  486. } else if (arg == "--grammar") {
  487. if (++i >= argc) {
  488. invalid_param = true;
  489. break;
  490. }
  491. params.grammar = argv[i];
  492. } else if (arg == "--grammar-file") {
  493. if (++i >= argc) {
  494. invalid_param = true;
  495. break;
  496. }
  497. std::ifstream file(argv[i]);
  498. if (!file) {
  499. fprintf(stderr, "error: failed to open file '%s'\n", argv[i]);
  500. invalid_param = true;
  501. break;
  502. }
  503. std::copy(
  504. std::istreambuf_iterator<char>(file),
  505. std::istreambuf_iterator<char>(),
  506. std::back_inserter(params.grammar)
  507. );
  508. } else {
  509. fprintf(stderr, "error: unknown argument: %s\n", arg.c_str());
  510. gpt_print_usage(argc, argv, default_params);
  511. exit(1);
  512. }
  513. }
  514. if (invalid_param) {
  515. fprintf(stderr, "error: invalid parameter for argument: %s\n", arg.c_str());
  516. gpt_print_usage(argc, argv, default_params);
  517. exit(1);
  518. }
  519. if (params.prompt_cache_all &&
  520. (params.interactive || params.interactive_first ||
  521. params.instruct)) {
  522. fprintf(stderr, "error: --prompt-cache-all not supported in interactive mode yet\n");
  523. gpt_print_usage(argc, argv, default_params);
  524. exit(1);
  525. }
  526. if (params.escape) {
  527. process_escapes(params.prompt);
  528. process_escapes(params.input_prefix);
  529. process_escapes(params.input_suffix);
  530. }
  531. return true;
  532. }
  533. void gpt_print_usage(int /*argc*/, char ** argv, const gpt_params & params) {
  534. fprintf(stdout, "usage: %s [options]\n", argv[0]);
  535. fprintf(stdout, "\n");
  536. fprintf(stdout, "options:\n");
  537. fprintf(stdout, " -h, --help show this help message and exit\n");
  538. fprintf(stdout, " -i, --interactive run in interactive mode\n");
  539. fprintf(stdout, " --interactive-first run in interactive mode and wait for input right away\n");
  540. fprintf(stdout, " -ins, --instruct run in instruction mode (use with Alpaca models)\n");
  541. fprintf(stdout, " --multiline-input allows you to write or paste multiple lines without ending each in '\\'\n");
  542. fprintf(stdout, " -r PROMPT, --reverse-prompt PROMPT\n");
  543. fprintf(stdout, " halt generation at PROMPT, return control in interactive mode\n");
  544. fprintf(stdout, " (can be specified more than once for multiple prompts).\n");
  545. fprintf(stdout, " --color colorise output to distinguish prompt and user input from generations\n");
  546. fprintf(stdout, " -s SEED, --seed SEED RNG seed (default: -1, use random seed for < 0)\n");
  547. fprintf(stdout, " -t N, --threads N number of threads to use during computation (default: %d)\n", params.n_threads);
  548. fprintf(stdout, " -p PROMPT, --prompt PROMPT\n");
  549. fprintf(stdout, " prompt to start generation with (default: empty)\n");
  550. fprintf(stdout, " -e, --escape process prompt escapes sequences (\\n, \\r, \\t, \\', \\\", \\\\)\n");
  551. fprintf(stdout, " --prompt-cache FNAME file to cache prompt state for faster startup (default: none)\n");
  552. fprintf(stdout, " --prompt-cache-all if specified, saves user input and generations to cache as well.\n");
  553. fprintf(stdout, " not supported with --interactive or other interactive options\n");
  554. fprintf(stdout, " --prompt-cache-ro if specified, uses the prompt cache but does not update it.\n");
  555. fprintf(stdout, " --random-prompt start with a randomized prompt.\n");
  556. fprintf(stdout, " --in-prefix-bos prefix BOS to user inputs, preceding the `--in-prefix` string\n");
  557. fprintf(stdout, " --in-prefix STRING string to prefix user inputs with (default: empty)\n");
  558. fprintf(stdout, " --in-suffix STRING string to suffix after user inputs with (default: empty)\n");
  559. fprintf(stdout, " -f FNAME, --file FNAME\n");
  560. fprintf(stdout, " prompt file to start generation.\n");
  561. fprintf(stdout, " -n N, --n-predict N number of tokens to predict (default: %d, -1 = infinity, -2 = until context filled)\n", params.n_predict);
  562. fprintf(stdout, " -c N, --ctx-size N size of the prompt context (default: %d)\n", params.n_ctx);
  563. fprintf(stdout, " -b N, --batch-size N batch size for prompt processing (default: %d)\n", params.n_batch);
  564. fprintf(stdout, " --top-k N top-k sampling (default: %d, 0 = disabled)\n", params.top_k);
  565. fprintf(stdout, " --top-p N top-p sampling (default: %.1f, 1.0 = disabled)\n", (double)params.top_p);
  566. fprintf(stdout, " --tfs N tail free sampling, parameter z (default: %.1f, 1.0 = disabled)\n", (double)params.tfs_z);
  567. fprintf(stdout, " --typical N locally typical sampling, parameter p (default: %.1f, 1.0 = disabled)\n", (double)params.typical_p);
  568. fprintf(stdout, " --repeat-last-n N last n tokens to consider for penalize (default: %d, 0 = disabled, -1 = ctx_size)\n", params.repeat_last_n);
  569. fprintf(stdout, " --repeat-penalty N penalize repeat sequence of tokens (default: %.1f, 1.0 = disabled)\n", (double)params.repeat_penalty);
  570. fprintf(stdout, " --presence-penalty N repeat alpha presence penalty (default: %.1f, 0.0 = disabled)\n", (double)params.presence_penalty);
  571. fprintf(stdout, " --frequency-penalty N repeat alpha frequency penalty (default: %.1f, 0.0 = disabled)\n", (double)params.frequency_penalty);
  572. fprintf(stdout, " --mirostat N use Mirostat sampling.\n");
  573. fprintf(stdout, " Top K, Nucleus, Tail Free and Locally Typical samplers are ignored if used.\n");
  574. fprintf(stdout, " (default: %d, 0 = disabled, 1 = Mirostat, 2 = Mirostat 2.0)\n", params.mirostat);
  575. fprintf(stdout, " --mirostat-lr N Mirostat learning rate, parameter eta (default: %.1f)\n", (double)params.mirostat_eta);
  576. fprintf(stdout, " --mirostat-ent N Mirostat target entropy, parameter tau (default: %.1f)\n", (double)params.mirostat_tau);
  577. fprintf(stdout, " -l TOKEN_ID(+/-)BIAS, --logit-bias TOKEN_ID(+/-)BIAS\n");
  578. fprintf(stdout, " modifies the likelihood of token appearing in the completion,\n");
  579. fprintf(stdout, " i.e. `--logit-bias 15043+1` to increase likelihood of token ' Hello',\n");
  580. fprintf(stdout, " or `--logit-bias 15043-1` to decrease likelihood of token ' Hello'\n");
  581. fprintf(stdout, " --grammar GRAMMAR BNF-like grammar to constrain generations (see samples in grammars/ dir)\n");
  582. fprintf(stdout, " --grammar-file FNAME file to read grammar from\n");
  583. fprintf(stdout, " --cfg-negative-prompt PROMPT\n");
  584. fprintf(stdout, " negative prompt to use for guidance. (default: empty)\n");
  585. fprintf(stdout, " --cfg-negative-prompt-file FNAME\n");
  586. fprintf(stdout, " negative prompt file to use for guidance. (default: empty)\n");
  587. fprintf(stdout, " --cfg-scale N strength of guidance (default: %f, 1.0 = disable)\n", params.cfg_scale);
  588. fprintf(stdout, " --rope-scale N RoPE context linear scaling factor, inverse of --rope-freq-scale (default: %g)\n", 1.0f/params.rope_freq_scale);
  589. fprintf(stdout, " --rope-freq-base N RoPE base frequency, used by NTK-aware scaling (default: %.1f)\n", params.rope_freq_base);
  590. fprintf(stdout, " --rope-freq-scale N RoPE frequency linear scaling factor, inverse of --rope-scale (default: %g)\n", params.rope_freq_scale);
  591. fprintf(stdout, " --ignore-eos ignore end of stream token and continue generating (implies --logit-bias 2-inf)\n");
  592. fprintf(stdout, " --no-penalize-nl do not penalize newline token\n");
  593. fprintf(stdout, " --memory-f32 use f32 instead of f16 for memory key+value (default: disabled)\n");
  594. fprintf(stdout, " not recommended: doubles context memory required and no measurable increase in quality\n");
  595. fprintf(stdout, " --temp N temperature (default: %.1f)\n", (double)params.temp);
  596. fprintf(stdout, " --perplexity compute perplexity over each ctx window of the prompt\n");
  597. fprintf(stdout, " --hellaswag compute HellaSwag score over random tasks from datafile supplied with -f\n");
  598. fprintf(stdout, " --hellaswag-tasks N number of tasks to use when computing the HellaSwag score (default: %zu)\n", params.hellaswag_tasks);
  599. fprintf(stdout, " --keep N number of tokens to keep from the initial prompt (default: %d, -1 = all)\n", params.n_keep);
  600. fprintf(stdout, " --chunks N max number of chunks to process (default: %d, -1 = all)\n", params.n_chunks);
  601. if (llama_mlock_supported()) {
  602. fprintf(stdout, " --mlock force system to keep model in RAM rather than swapping or compressing\n");
  603. }
  604. if (llama_mmap_supported()) {
  605. fprintf(stdout, " --no-mmap do not memory-map model (slower load but may reduce pageouts if not using mlock)\n");
  606. }
  607. fprintf(stdout, " --numa attempt optimizations that help on some NUMA systems\n");
  608. fprintf(stdout, " if run without this previously, it is recommended to drop the system page cache before using this\n");
  609. fprintf(stdout, " see https://github.com/ggerganov/llama.cpp/issues/1437\n");
  610. #ifdef LLAMA_SUPPORTS_GPU_OFFLOAD
  611. fprintf(stdout, " -ngl N, --n-gpu-layers N\n");
  612. fprintf(stdout, " number of layers to store in VRAM\n");
  613. fprintf(stdout, " -ts SPLIT --tensor-split SPLIT\n");
  614. fprintf(stdout, " how to split tensors across multiple GPUs, comma-separated list of proportions, e.g. 3,1\n");
  615. fprintf(stdout, " -mg i, --main-gpu i the GPU to use for scratch and small tensors\n");
  616. fprintf(stdout, " -lv, --low-vram don't allocate VRAM scratch buffer\n");
  617. #ifdef GGML_USE_CUBLAS
  618. fprintf(stdout, " -nommq, --no-mul-mat-q\n");
  619. fprintf(stdout, " use " GGML_CUBLAS_NAME " instead of custom mul_mat_q " GGML_CUDA_NAME " kernels.\n");
  620. fprintf(stdout, " Not recommended since this is both slower and uses more VRAM.\n");
  621. #endif // GGML_USE_CUBLAS
  622. #endif
  623. fprintf(stdout, " --mtest compute maximum memory usage\n");
  624. fprintf(stdout, " --export export the computation graph to 'llama.ggml'\n");
  625. fprintf(stdout, " --verbose-prompt print prompt before generation\n");
  626. fprintf(stderr, " --simple-io use basic IO for better compatibility in subprocesses and limited consoles\n");
  627. fprintf(stdout, " --lora FNAME apply LoRA adapter (implies --no-mmap)\n");
  628. fprintf(stdout, " --lora-base FNAME optional model to use as a base for the layers modified by the LoRA adapter\n");
  629. fprintf(stdout, " -m FNAME, --model FNAME\n");
  630. fprintf(stdout, " model path (default: %s)\n", params.model.c_str());
  631. fprintf(stdout, " -ld LOGDIR, --logdir LOGDIR\n");
  632. fprintf(stdout, " path under which to save YAML logs (no logging if unset)\n");
  633. fprintf(stdout, "\n");
  634. }
  635. std::string gpt_random_prompt(std::mt19937 & rng) {
  636. const int r = rng() % 10;
  637. switch (r) {
  638. case 0: return "So";
  639. case 1: return "Once upon a time";
  640. case 2: return "When";
  641. case 3: return "The";
  642. case 4: return "After";
  643. case 5: return "If";
  644. case 6: return "import";
  645. case 7: return "He";
  646. case 8: return "She";
  647. case 9: return "They";
  648. default: return "To";
  649. }
  650. return "The";
  651. }
  652. //
  653. // Model utils
  654. //
  655. struct llama_context_params llama_context_params_from_gpt_params(const gpt_params & params) {
  656. auto lparams = llama_context_default_params();
  657. lparams.n_ctx = params.n_ctx;
  658. lparams.n_batch = params.n_batch;
  659. lparams.n_gpu_layers = params.n_gpu_layers;
  660. lparams.main_gpu = params.main_gpu;
  661. lparams.tensor_split = params.tensor_split;
  662. lparams.low_vram = params.low_vram;
  663. lparams.mul_mat_q = params.mul_mat_q;
  664. lparams.seed = params.seed;
  665. lparams.f16_kv = params.memory_f16;
  666. lparams.use_mmap = params.use_mmap;
  667. lparams.use_mlock = params.use_mlock;
  668. lparams.logits_all = params.perplexity;
  669. lparams.embedding = params.embedding;
  670. lparams.rope_freq_base = params.rope_freq_base;
  671. lparams.rope_freq_scale = params.rope_freq_scale;
  672. return lparams;
  673. }
  674. std::tuple<struct llama_model *, struct llama_context *> llama_init_from_gpt_params(gpt_params & params) {
  675. auto lparams = llama_context_params_from_gpt_params(params);
  676. llama_model * model = llama_load_model_from_file(params.model.c_str(), lparams);
  677. if (model == NULL) {
  678. fprintf(stderr, "%s: error: failed to load model '%s'\n", __func__, params.model.c_str());
  679. return std::make_tuple(nullptr, nullptr);
  680. }
  681. llama_context * lctx = llama_new_context_with_model(model, lparams);
  682. if (lctx == NULL) {
  683. fprintf(stderr, "%s: error: failed to create context with model '%s'\n", __func__, params.model.c_str());
  684. llama_free_model(model);
  685. return std::make_tuple(nullptr, nullptr);
  686. }
  687. if (!params.lora_adapter.empty()) {
  688. int err = llama_model_apply_lora_from_file(model,
  689. params.lora_adapter.c_str(),
  690. params.lora_base.empty() ? NULL : params.lora_base.c_str(),
  691. params.n_threads);
  692. if (err != 0) {
  693. fprintf(stderr, "%s: error: failed to apply lora adapter\n", __func__);
  694. llama_free(lctx);
  695. llama_free_model(model);
  696. return std::make_tuple(nullptr, nullptr);
  697. }
  698. }
  699. if (params.ignore_eos) {
  700. params.logit_bias[llama_token_eos(lctx)] = -INFINITY;
  701. }
  702. return std::make_tuple(model, lctx);
  703. }
  704. //
  705. // Vocab utils
  706. //
  707. std::vector<llama_token> llama_tokenize(
  708. struct llama_context * ctx,
  709. const std::string & text,
  710. bool add_bos) {
  711. // upper limit for the number of tokens
  712. int n_tokens = text.length() + add_bos;
  713. std::vector<llama_token> result(n_tokens);
  714. n_tokens = llama_tokenize(ctx, text.c_str(), result.data(), result.size(), add_bos);
  715. if (n_tokens < 0) {
  716. result.resize(-n_tokens);
  717. int check = llama_tokenize(ctx, text.c_str(), result.data(), result.size(), add_bos);
  718. GGML_ASSERT(check == -n_tokens);
  719. } else {
  720. result.resize(n_tokens);
  721. }
  722. return result;
  723. }
  724. std::string llama_token_to_piece(const struct llama_context * ctx, llama_token token) {
  725. std::vector<char> result(8, 0);
  726. const int n_tokens = llama_token_to_piece(ctx, token, result.data(), result.size());
  727. if (n_tokens < 0) {
  728. result.resize(-n_tokens);
  729. int check = llama_token_to_piece(ctx, token, result.data(), result.size());
  730. GGML_ASSERT(check == -n_tokens);
  731. } else {
  732. result.resize(n_tokens);
  733. }
  734. return std::string(result.data(), result.size());
  735. }
  736. std::string llama_detokenize_spm(llama_context * ctx, const std::vector<llama_token> & tokens) {
  737. const llama_token bos_id = llama_token_bos(ctx);
  738. std::string piece;
  739. std::string result;
  740. for (size_t i = 0; i < tokens.size(); ++i) {
  741. piece = llama_token_to_piece(ctx, tokens[i]);
  742. // remove the leading space of the first non-BOS token
  743. if (((tokens[0] == bos_id && i == 1) || (tokens[0] != bos_id && i == 0)) && piece[0] == ' ') {
  744. piece = piece.substr(1);
  745. }
  746. result += piece;
  747. }
  748. return result;
  749. }
  750. std::string llama_detokenize_bpe(llama_context * ctx, const std::vector<llama_token> & tokens) {
  751. std::string piece;
  752. std::string result;
  753. for (size_t i = 0; i < tokens.size(); ++i) {
  754. piece = llama_token_to_piece(ctx, tokens[i]);
  755. result += piece;
  756. }
  757. return result;
  758. }
  759. // returns true if successful, false otherwise
  760. bool create_directory_with_parents(const std::string & path) {
  761. #ifdef _WIN32
  762. std::wstring_convert<std::codecvt_utf8<wchar_t>> converter;
  763. std::wstring wpath = converter.from_bytes(path);
  764. // if the path already exists, check whether it's a directory
  765. const DWORD attributes = GetFileAttributesW(wpath.c_str());
  766. if ((attributes != INVALID_FILE_ATTRIBUTES) && (attributes & FILE_ATTRIBUTE_DIRECTORY)) {
  767. return true;
  768. }
  769. size_t pos_slash = 0;
  770. // process path from front to back, procedurally creating directories
  771. while ((pos_slash = path.find('\\', pos_slash)) != std::string::npos) {
  772. const std::wstring subpath = wpath.substr(0, pos_slash);
  773. const wchar_t * test = subpath.c_str();
  774. const bool success = CreateDirectoryW(test, NULL);
  775. if (!success) {
  776. const DWORD error = GetLastError();
  777. // if the path already exists, ensure that it's a directory
  778. if (error == ERROR_ALREADY_EXISTS) {
  779. const DWORD attributes = GetFileAttributesW(subpath.c_str());
  780. if (attributes == INVALID_FILE_ATTRIBUTES || !(attributes & FILE_ATTRIBUTE_DIRECTORY)) {
  781. return false;
  782. }
  783. } else {
  784. return false;
  785. }
  786. }
  787. pos_slash += 1;
  788. }
  789. return true;
  790. #else
  791. // if the path already exists, check whether it's a directory
  792. struct stat info;
  793. if (stat(path.c_str(), &info) == 0) {
  794. return S_ISDIR(info.st_mode);
  795. }
  796. size_t pos_slash = 1; // skip leading slashes for directory creation
  797. // process path from front to back, procedurally creating directories
  798. while ((pos_slash = path.find('/', pos_slash)) != std::string::npos) {
  799. const std::string subpath = path.substr(0, pos_slash);
  800. struct stat info;
  801. // if the path already exists, ensure that it's a directory
  802. if (stat(subpath.c_str(), &info) == 0) {
  803. if (!S_ISDIR(info.st_mode)) {
  804. return false;
  805. }
  806. } else {
  807. // create parent directories
  808. const int ret = mkdir(subpath.c_str(), 0755);
  809. if (ret != 0) {
  810. return false;
  811. }
  812. }
  813. pos_slash += 1;
  814. }
  815. return true;
  816. #endif // _WIN32
  817. }
  818. void dump_vector_float_yaml(FILE * stream, const char * prop_name, const std::vector<float> & data) {
  819. if (data.empty()) {
  820. fprintf(stream, "%s:\n", prop_name);
  821. return;
  822. }
  823. fprintf(stream, "%s: [", prop_name);
  824. for (size_t i = 0; i < data.size() - 1; ++i) {
  825. fprintf(stream, "%e, ", data[i]);
  826. }
  827. fprintf(stream, "%e]\n", data.back());
  828. }
  829. void dump_vector_int_yaml(FILE * stream, const char * prop_name, const std::vector<int> & data) {
  830. if (data.empty()) {
  831. fprintf(stream, "%s:\n", prop_name);
  832. return;
  833. }
  834. fprintf(stream, "%s: [", prop_name);
  835. for (size_t i = 0; i < data.size() - 1; ++i) {
  836. fprintf(stream, "%d, ", data[i]);
  837. }
  838. fprintf(stream, "%d]\n", data.back());
  839. }
  840. void dump_string_yaml_multiline(FILE * stream, const char * prop_name, const char * data) {
  841. std::string data_str(data == NULL ? "" : data);
  842. if (data_str.empty()) {
  843. fprintf(stream, "%s:\n", prop_name);
  844. return;
  845. }
  846. size_t pos_start = 0;
  847. size_t pos_found = 0;
  848. if (!data_str.empty() && (std::isspace(data_str[0]) || std::isspace(data_str.back()))) {
  849. data_str = std::regex_replace(data_str, std::regex("\n"), "\\n");
  850. data_str = std::regex_replace(data_str, std::regex("\""), "\\\"");
  851. data_str = "\"" + data_str + "\"";
  852. fprintf(stream, "%s: %s\n", prop_name, data_str.c_str());
  853. return;
  854. }
  855. if (data_str.find('\n') == std::string::npos) {
  856. fprintf(stream, "%s: %s\n", prop_name, data_str.c_str());
  857. return;
  858. }
  859. fprintf(stream, "%s: |\n", prop_name);
  860. while ((pos_found = data_str.find('\n', pos_start)) != std::string::npos) {
  861. fprintf(stream, " %s\n", data_str.substr(pos_start, pos_found-pos_start).c_str());
  862. pos_start = pos_found + 1;
  863. }
  864. }
  865. std::string get_sortable_timestamp() {
  866. using clock = std::chrono::system_clock;
  867. const clock::time_point current_time = clock::now();
  868. const time_t as_time_t = clock::to_time_t(current_time);
  869. char timestamp_no_ns[100];
  870. std::strftime(timestamp_no_ns, 100, "%Y_%m_%d-%H_%M_%S", std::localtime(&as_time_t));
  871. const int64_t ns = std::chrono::duration_cast<std::chrono::nanoseconds>(
  872. current_time.time_since_epoch() % 1000000000).count();
  873. char timestamp_ns[11];
  874. snprintf(timestamp_ns, 11, "%09" PRId64, ns);
  875. return std::string(timestamp_no_ns) + "." + std::string(timestamp_ns);
  876. }
  877. void dump_non_result_info_yaml(FILE * stream, const gpt_params & params, const llama_context * lctx,
  878. const std::string & timestamp, const std::vector<int> & prompt_tokens, const char * model_desc) {
  879. fprintf(stream, "build_commit: %s\n", BUILD_COMMIT);
  880. fprintf(stream, "build_number: %d\n", BUILD_NUMBER);
  881. fprintf(stream, "cpu_has_arm_fma: %s\n", ggml_cpu_has_arm_fma() ? "true" : "false");
  882. fprintf(stream, "cpu_has_avx: %s\n", ggml_cpu_has_avx() ? "true" : "false");
  883. fprintf(stream, "cpu_has_avx2: %s\n", ggml_cpu_has_avx2() ? "true" : "false");
  884. fprintf(stream, "cpu_has_avx512: %s\n", ggml_cpu_has_avx512() ? "true" : "false");
  885. fprintf(stream, "cpu_has_avx512_vbmi: %s\n", ggml_cpu_has_avx512_vbmi() ? "true" : "false");
  886. fprintf(stream, "cpu_has_avx512_vnni: %s\n", ggml_cpu_has_avx512_vnni() ? "true" : "false");
  887. fprintf(stream, "cpu_has_blas: %s\n", ggml_cpu_has_blas() ? "true" : "false");
  888. fprintf(stream, "cpu_has_cublas: %s\n", ggml_cpu_has_cublas() ? "true" : "false");
  889. fprintf(stream, "cpu_has_clblast: %s\n", ggml_cpu_has_clblast() ? "true" : "false");
  890. fprintf(stream, "cpu_has_fma: %s\n", ggml_cpu_has_fma() ? "true" : "false");
  891. fprintf(stream, "cpu_has_gpublas: %s\n", ggml_cpu_has_gpublas() ? "true" : "false");
  892. fprintf(stream, "cpu_has_neon: %s\n", ggml_cpu_has_neon() ? "true" : "false");
  893. fprintf(stream, "cpu_has_f16c: %s\n", ggml_cpu_has_f16c() ? "true" : "false");
  894. fprintf(stream, "cpu_has_fp16_va: %s\n", ggml_cpu_has_fp16_va() ? "true" : "false");
  895. fprintf(stream, "cpu_has_wasm_simd: %s\n", ggml_cpu_has_wasm_simd() ? "true" : "false");
  896. fprintf(stream, "cpu_has_blas: %s\n", ggml_cpu_has_blas() ? "true" : "false");
  897. fprintf(stream, "cpu_has_sse3: %s\n", ggml_cpu_has_sse3() ? "true" : "false");
  898. fprintf(stream, "cpu_has_vsx: %s\n", ggml_cpu_has_vsx() ? "true" : "false");
  899. #ifdef NDEBUG
  900. fprintf(stream, "debug: false\n");
  901. #else
  902. fprintf(stream, "debug: true\n");
  903. #endif // NDEBUG
  904. fprintf(stream, "model_desc: %s\n", model_desc);
  905. fprintf(stream, "n_vocab: %d # output size of the final layer, 32001 for some models\n", llama_n_vocab(lctx));
  906. #ifdef __OPTIMIZE__
  907. fprintf(stream, "optimize: true\n");
  908. #else
  909. fprintf(stream, "optimize: false\n");
  910. #endif // __OPTIMIZE__
  911. fprintf(stream, "time: %s\n", timestamp.c_str());
  912. fprintf(stream, "\n");
  913. fprintf(stream, "###############\n");
  914. fprintf(stream, "# User Inputs #\n");
  915. fprintf(stream, "###############\n");
  916. fprintf(stream, "\n");
  917. fprintf(stream, "alias: %s # default: unknown\n", params.model_alias.c_str());
  918. fprintf(stream, "batch_size: %d # default: 512\n", params.n_batch);
  919. dump_string_yaml_multiline(stream, "cfg_negative_prompt", params.cfg_negative_prompt.c_str());
  920. fprintf(stream, "cfg_scale: %f # default: 1.0\n", params.cfg_scale);
  921. fprintf(stream, "chunks: %d # default: -1 (unlimited)\n", params.n_chunks);
  922. fprintf(stream, "color: %s # default: false\n", params.use_color ? "true" : "false");
  923. fprintf(stream, "ctx_size: %d # default: 512\n", params.n_ctx);
  924. fprintf(stream, "escape: %s # default: false\n", params.escape ? "true" : "false");
  925. fprintf(stream, "export: %s # default: false\n", params.export_cgraph ? "true" : "false");
  926. fprintf(stream, "file: # never logged, see prompt instead. Can still be specified for input.\n");
  927. fprintf(stream, "frequency_penalty: %f # default: 0.0 \n", params.frequency_penalty);
  928. dump_string_yaml_multiline(stream, "grammar", params.grammar.c_str());
  929. fprintf(stream, "grammar-file: # never logged, see grammar instead. Can still be specified for input.\n");
  930. fprintf(stream, "hellaswag: %s # default: false\n", params.hellaswag ? "true" : "false");
  931. fprintf(stream, "hellaswag_tasks: %ld # default: 400\n", params.hellaswag_tasks);
  932. const auto logit_bias_eos = params.logit_bias.find(llama_token_eos(lctx));
  933. const bool ignore_eos = logit_bias_eos != params.logit_bias.end() && logit_bias_eos->second == -INFINITY;
  934. fprintf(stream, "ignore_eos: %s # default: false\n", ignore_eos ? "true" : "false");
  935. dump_string_yaml_multiline(stream, "in_prefix", params.input_prefix.c_str());
  936. fprintf(stream, "in_prefix_bos: %s # default: false\n", params.input_prefix_bos ? "true" : "false");
  937. dump_string_yaml_multiline(stream, "in_suffix", params.input_prefix.c_str());
  938. fprintf(stream, "instruct: %s # default: false\n", params.instruct ? "true" : "false");
  939. fprintf(stream, "interactive: %s # default: false\n", params.interactive ? "true" : "false");
  940. fprintf(stream, "interactive_first: %s # default: false\n", params.interactive_first ? "true" : "false");
  941. fprintf(stream, "keep: %d # default: 0\n", params.n_keep);
  942. fprintf(stream, "logdir: %s # default: unset (no logging)\n", params.logdir.c_str());
  943. fprintf(stream, "logit_bias:\n");
  944. for (std::pair<llama_token, float> lb : params.logit_bias) {
  945. if (ignore_eos && lb.first == logit_bias_eos->first) {
  946. continue;
  947. }
  948. fprintf(stream, " %d: %f", lb.first, lb.second);
  949. }
  950. fprintf(stream, "lora: %s\n", params.lora_adapter.c_str());
  951. fprintf(stream, "lora_base: %s\n", params.lora_base.c_str());
  952. fprintf(stream, "low_vram: %s # default: false\n", params.low_vram ? "true" : "false");
  953. fprintf(stream, "main_gpu: %d # default: 0\n", params.main_gpu);
  954. fprintf(stream, "memory_f32: %s # default: false\n", !params.memory_f16 ? "true" : "false");
  955. fprintf(stream, "mirostat: %d # default: 0 (disabled)\n", params.mirostat);
  956. fprintf(stream, "mirostat_ent: %f # default: 5.0\n", params.mirostat_tau);
  957. fprintf(stream, "mirostat_lr: %f # default: 0.1\n", params.mirostat_eta);
  958. fprintf(stream, "mlock: %s # default: false\n", params.use_mlock ? "true" : "false");
  959. fprintf(stream, "model: %s # default: models/7B/ggml-model.bin\n", params.model.c_str());
  960. fprintf(stream, "mtest: %s # default: false\n", params.mem_test ? "true" : "false");
  961. fprintf(stream, "multiline_input: %s # default: false\n", params.multiline_input ? "true" : "false");
  962. fprintf(stream, "n_gpu_layers: %d # default: 0\n", params.n_gpu_layers);
  963. fprintf(stream, "n_predict: %d # default: -1 (unlimited)\n", params.n_predict);
  964. fprintf(stream, "n_probs: %d # only used by server binary, default: 0\n", params.n_probs);
  965. fprintf(stream, "no_mmap: %s # default: false\n", !params.use_mmap ? "true" : "false");
  966. fprintf(stream, "no_mul_mat_q: %s # default: false\n", !params.mul_mat_q ? "true" : "false");
  967. fprintf(stream, "no_penalize_nl: %s # default: false\n", !params.penalize_nl ? "true" : "false");
  968. fprintf(stream, "numa: %s # default: false\n", params.numa ? "true" : "false");
  969. fprintf(stream, "ppl_output_type: %d # default: 0\n", params.ppl_output_type);
  970. fprintf(stream, "ppl_stride: %d # default: 0\n", params.ppl_stride);
  971. fprintf(stream, "presence_penalty: %f # default: 0.0\n", params.presence_penalty);
  972. dump_string_yaml_multiline(stream, "prompt", params.prompt.c_str());
  973. fprintf(stream, "prompt_cache: %s\n", params.path_prompt_cache.c_str());
  974. fprintf(stream, "prompt_cache_all: %s # default: false\n", params.prompt_cache_all ? "true" : "false");
  975. fprintf(stream, "prompt_cache_ro: %s # default: false\n", params.prompt_cache_ro ? "true" : "false");
  976. dump_vector_int_yaml(stream, "prompt_tokens", prompt_tokens);
  977. fprintf(stream, "random_prompt: %s # default: false\n", params.random_prompt ? "true" : "false");
  978. fprintf(stream, "repeat_penalty: %f # default: 1.1\n", params.repeat_penalty);
  979. fprintf(stream, "reverse_prompt:\n");
  980. for (std::string ap : params.antiprompt) {
  981. size_t pos = 0;
  982. while ((pos = ap.find('\n', pos)) != std::string::npos) {
  983. ap.replace(pos, 1, "\\n");
  984. pos += 1;
  985. }
  986. fprintf(stream, " - %s\n", ap.c_str());
  987. }
  988. fprintf(stream, "rope_freq_base: %f # default: 10000.0\n", params.rope_freq_base);
  989. fprintf(stream, "rope_freq_scale: %f # default: 1.0\n", params.rope_freq_scale);
  990. fprintf(stream, "seed: %d # default: -1 (random seed)\n", params.seed);
  991. fprintf(stream, "simple_io: %s # default: false\n", params.simple_io ? "true" : "false");
  992. fprintf(stream, "temp: %f # default: 0.8\n", params.temp);
  993. const std::vector<float> tensor_split_vector(params.tensor_split, params.tensor_split + LLAMA_MAX_DEVICES);
  994. dump_vector_float_yaml(stream, "tensor_split", tensor_split_vector);
  995. fprintf(stream, "tfs: %f # default: 1.0\n", params.tfs_z);
  996. fprintf(stream, "threads: %d # default: %d\n", params.n_threads, std::thread::hardware_concurrency());
  997. fprintf(stream, "top_k: %d # default: 40\n", params.top_k);
  998. fprintf(stream, "top_p: %f # default: 0.95\n", params.top_p);
  999. fprintf(stream, "typical_p: %f # default: 1.0\n", params.typical_p);
  1000. fprintf(stream, "verbose_prompt: %s # default: false\n", params.verbose_prompt ? "true" : "false");
  1001. }