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#pragma once |
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#include <string> |
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#include <map> |
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#include <vector> |
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#include <random> |
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#include <thread> |
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#define COMMON_SAMPLE_RATE 16000 |
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struct gpt_params { |
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int32_t seed = -1; |
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int32_t n_threads = std::min(4, (int32_t) std::thread::hardware_concurrency()); |
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int32_t n_predict = 200; |
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int32_t n_parallel = 1; |
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int32_t n_batch = 8; |
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int32_t n_ctx = 2048; |
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int32_t n_gpu_layers = 0; |
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bool ignore_eos = false; |
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int32_t top_k = 40; |
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float top_p = 0.9f; |
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float temp = 0.9f; |
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int32_t repeat_last_n = 64; |
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float repeat_penalty = 1.00f; |
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std::string model = "models/gpt-2-117M/ggml-model.bin"; |
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std::string prompt = ""; |
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std::string token_test = ""; |
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bool interactive = false; |
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int32_t interactive_port = -1; |
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}; |
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bool gpt_params_parse(int argc, char ** argv, gpt_params & params); |
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void gpt_print_usage(int argc, char ** argv, const gpt_params & params); |
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std::string gpt_random_prompt(std::mt19937 & rng); |
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std::string trim(const std::string & s); |
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std::string replace( |
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const std::string & s, |
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const std::string & from, |
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const std::string & to); |
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struct gpt_vocab { |
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using id = int32_t; |
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using token = std::string; |
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std::map<token, id> token_to_id; |
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std::map<id, token> id_to_token; |
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std::vector<std::string> special_tokens; |
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void add_special_token(const std::string & token); |
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}; |
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std::map<std::string, int32_t> json_parse(const std::string & fname); |
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std::string convert_to_utf8(const std::wstring & input); |
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std::wstring convert_to_wstring(const std::string & input); |
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void gpt_split_words(std::string str, std::vector<std::string>& words); |
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std::vector<gpt_vocab::id> gpt_tokenize(const gpt_vocab & vocab, const std::string & text); |
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void test_gpt_tokenizer(gpt_vocab & vocab, const std::string & fpath_test); |
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bool gpt_vocab_init(const std::string & fname, gpt_vocab & vocab); |
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gpt_vocab::id gpt_sample_top_k_top_p( |
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const gpt_vocab & vocab, |
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const float * logits, |
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int top_k, |
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double top_p, |
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double temp, |
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std::mt19937 & rng); |
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gpt_vocab::id gpt_sample_top_k_top_p_repeat( |
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const gpt_vocab & vocab, |
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const float * logits, |
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const int32_t * last_n_tokens_data, |
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size_t last_n_tokens_data_size, |
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int top_k, |
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double top_p, |
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double temp, |
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int repeat_last_n, |
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float repeat_penalty, |
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std::mt19937 & rng); |
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bool read_wav( |
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const std::string & fname, |
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std::vector<float> & pcmf32, |
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std::vector<std::vector<float>> & pcmf32s, |
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bool stereo); |
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void high_pass_filter( |
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std::vector<float> & data, |
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float cutoff, |
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float sample_rate); |
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bool vad_simple( |
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std::vector<float> & pcmf32, |
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int sample_rate, |
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int last_ms, |
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float vad_thold, |
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float freq_thold, |
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bool verbose); |
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float similarity(const std::string & s0, const std::string & s1); |
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struct sam_params { |
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int32_t seed = -1; |
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int32_t n_threads = std::min(4, (int32_t) std::thread::hardware_concurrency()); |
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std::string model = "models/sam-vit-b/ggml-model-f16.bin"; |
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std::string fname_inp = "img.jpg"; |
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std::string fname_out = "img.out"; |
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}; |
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bool sam_params_parse(int argc, char ** argv, sam_params & params); |
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void sam_print_usage(int argc, char ** argv, const sam_params & params); |
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