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	* Add test-tokenizer-0 to do a few tokenizations - feel free to expand * Added option to convert-pth-to-ggml.py script to dump just the vocabulary * Added ./models/ggml-vocab.bin containing just LLaMA vocab data (used for tests) * Added utility to load vocabulary file from previous point (temporary implementation) * Avoid using std::string_view and drop back to C++11 (hope I didn't break something) * Rename gpt_vocab -> llama_vocab * All CMake binaries go into ./bin/ now
		
			
				
	
	
		
			361 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			361 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
#include "ggml.h"
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#include "utils.h"
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#include <cassert>
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#include <cinttypes>
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#include <cmath>
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#include <cstdio>
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#include <cstring>
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#include <fstream>
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#include <map>
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#include <string>
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#include <vector>
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#include <regex>
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// TODO: move somewhere else
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#define QK 32
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// default hparams (LLaMA76B)
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struct llama_hparams {
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    int32_t n_vocab = 32000;
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    int32_t n_ctx   = 512;   // this is provided as user input?
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    int32_t n_embd  = 4096;
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    int32_t n_mult  = 256;
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    int32_t n_head  = 32;
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    int32_t n_layer = 32;
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    int32_t n_rot   = 64;
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    int32_t f16     = 1;
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};
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// quantize a model
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bool llama_model_quantize(const std::string & fname_inp, const std::string & fname_out, int itype) {
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    ggml_type type = GGML_TYPE_Q4_1;
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    switch (itype) {
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        case 2: type = GGML_TYPE_Q4_0; break;
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        case 3: type = GGML_TYPE_Q4_1; break;
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        default: fprintf(stderr, "%s: invalid quantization type %d\n", __func__, itype); return 1;
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    };
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    if (type != GGML_TYPE_Q4_0 && type != GGML_TYPE_Q4_1) {
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        fprintf(stderr, "%s: invalid quantization type %d\n", __func__, type);
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        return false;
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    }
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    llama_vocab vocab;
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    printf("%s: loading model from '%s'\n", __func__, fname_inp.c_str());
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    auto finp = std::ifstream(fname_inp, std::ios::binary);
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    if (!finp) {
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        fprintf(stderr, "%s: failed to open '%s' for reading\n", __func__, fname_inp.c_str());
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        return false;
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    }
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    auto fout = std::ofstream(fname_out, std::ios::binary);
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    if (!fout) {
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        fprintf(stderr, "%s: failed to open '%s' for writing\n", __func__, fname_out.c_str());
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        return false;
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    }
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    // verify magic
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    {
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        uint32_t magic;
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        finp.read((char *) &magic, sizeof(magic));
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        if (magic == FILE_MAGIC_UNVERSIONED) {
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            fprintf(stderr, "%s: invalid model file '%s' (too old, regenerate your model files!)\n",
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                    __func__, fname_inp.c_str());
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            return false;
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        }
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        if (magic != FILE_MAGIC) {
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            fprintf(stderr, "%s: invalid model file '%s' (bad magic)\n", __func__, fname_inp.c_str());
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            return false;
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        }
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        fout.write((char *) &magic, sizeof(magic));
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        uint32_t format_version;
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        finp.read((char *) &format_version, sizeof(format_version));
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        if (format_version != FILE_VERSION) {
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            fprintf(stderr, "%s: invalid model file '%s' (unsupported format version %" PRIu32 ", expected %d)\n",
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                    __func__, fname_inp.c_str(), format_version, FILE_VERSION);
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            return false;
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        }
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        fout.write((char *) &format_version, sizeof(format_version));
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    }
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    llama_hparams hparams;
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    // load hparams
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    {
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        finp.read((char *) &hparams.n_vocab, sizeof(hparams.n_vocab));
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        //finp.read((char *) &hparams.n_ctx,   sizeof(hparams.n_ctx));
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        finp.read((char *) &hparams.n_embd,  sizeof(hparams.n_embd));
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        finp.read((char *) &hparams.n_mult,  sizeof(hparams.n_mult));
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        finp.read((char *) &hparams.n_head,  sizeof(hparams.n_head));
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        finp.read((char *) &hparams.n_layer, sizeof(hparams.n_layer));
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        finp.read((char *) &hparams.n_rot,   sizeof(hparams.n_rot));
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        finp.read((char *) &hparams.f16,     sizeof(hparams.f16));
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        printf("%s: n_vocab = %d\n", __func__, hparams.n_vocab);
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        printf("%s: n_ctx   = %d\n", __func__, hparams.n_ctx);
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        printf("%s: n_embd  = %d\n", __func__, hparams.n_embd);
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        printf("%s: n_mult  = %d\n", __func__, hparams.n_mult);
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        printf("%s: n_head  = %d\n", __func__, hparams.n_head);
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        printf("%s: n_layer = %d\n", __func__, hparams.n_layer);
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        printf("%s: f16     = %d\n", __func__, hparams.f16);
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        fout.write((char *) &hparams.n_vocab, sizeof(hparams.n_vocab));
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        //fout.write((char *) &hparams.n_ctx,   sizeof(hparams.n_ctx));
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        fout.write((char *) &hparams.n_embd,  sizeof(hparams.n_embd));
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        fout.write((char *) &hparams.n_mult,  sizeof(hparams.n_mult));
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        fout.write((char *) &hparams.n_head,  sizeof(hparams.n_head));
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        fout.write((char *) &hparams.n_layer, sizeof(hparams.n_layer));
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        fout.write((char *) &hparams.n_rot,   sizeof(hparams.n_rot));
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        fout.write((char *) &itype,           sizeof(hparams.f16));
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    }
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    // load vocab
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    {
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        const int32_t n_vocab = hparams.n_vocab;
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        if (n_vocab != hparams.n_vocab) {
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            fprintf(stderr, "%s: invalid model file '%s' (bad vocab size %d != %d)\n",
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                    __func__, fname_inp.c_str(), n_vocab, hparams.n_vocab);
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            return false;
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        }
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        std::string word;
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        for (int i = 0; i < n_vocab; i++) {
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            uint32_t len;
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            finp.read ((char *) &len, sizeof(len));
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            fout.write((char *) &len, sizeof(len));
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            word.resize(len);
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            finp.read ((char *) word.data(), len);
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            fout.write((char *) word.data(), len);
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            float score;
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            finp.read ((char *) &score, sizeof(score));
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            fout.write((char *) &score, sizeof(score));
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            vocab.token_to_id[word] = i;
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            vocab.id_to_token[i] = word;
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            vocab.score[i] = score;
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        }
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    }
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    // load weights
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    {
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        size_t total_size_org = 0;
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        size_t total_size_new = 0;
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        std::vector<float> work;
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        std::vector<uint8_t>     data_u8;
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        std::vector<ggml_fp16_t> data_f16;
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        std::vector<float>       data_f32;
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        std::vector<int64_t> hist_all(1 << 4, 0);
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        while (true) {
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            int32_t n_dims;
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            int32_t length;
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            int32_t ftype;
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            finp.read(reinterpret_cast<char *>(&n_dims), sizeof(n_dims));
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            finp.read(reinterpret_cast<char *>(&length), sizeof(length));
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            finp.read(reinterpret_cast<char *>(&ftype),  sizeof(ftype));
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            if (finp.eof()) {
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                break;
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            }
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            int32_t nelements = 1;
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            int32_t ne[2] = { 1, 1 };
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            for (int i = 0; i < n_dims; ++i) {
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                finp.read (reinterpret_cast<char *>(&ne[i]), sizeof(ne[i]));
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                nelements *= ne[i];
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            }
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            std::string name(length, 0);
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            finp.read (&name[0], length);
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            {
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                static const char * ftype_str[] = { "f32", "f16", "q4_0", "q4_1", };
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                printf("%48s - [%5d, %5d], type = %6s ", name.data(), ne[0], ne[1], ftype_str[ftype]);
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            }
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            // regexes of tensor names to be quantized
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            const std::vector<std::string> k_names = {
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                ".*weight",
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            };
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            bool quantize = false;
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            for (const auto & s : k_names) {
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                if (std::regex_match(name, std::regex(s))) {
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                    quantize = true;
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                    break;
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                }
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            }
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            // quantize only 2D tensors
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            quantize &= (n_dims == 2);
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            if (quantize) {
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                if (ftype != 0 && ftype != 1) {
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                    fprintf(stderr, "%s: unsupported ftype %d for integer quantization\n", __func__, ftype);
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                    return false;
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                }
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                if (ftype == 1) {
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                    data_f16.resize(nelements);
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                    finp.read(reinterpret_cast<char *>(data_f16.data()), nelements * sizeof(ggml_fp16_t));
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                    data_f32.resize(nelements);
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                    for (int i = 0; i < nelements; ++i) {
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                        data_f32[i] = ggml_fp16_to_fp32(data_f16[i]);
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                    }
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                } else {
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                    data_f32.resize(nelements);
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                    finp.read(reinterpret_cast<char *>(data_f32.data()), nelements * sizeof(float));
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                }
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                ftype = itype;
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            } else {
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                const int bpe = (ftype == 0) ? sizeof(float) : sizeof(uint16_t);
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                data_u8.resize(nelements*bpe);
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                finp.read(reinterpret_cast<char *>(data_u8.data()), nelements * bpe);
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            }
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            fout.write(reinterpret_cast<char *>(&n_dims), sizeof(n_dims));
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            fout.write(reinterpret_cast<char *>(&length), sizeof(length));
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            fout.write(reinterpret_cast<char *>(&ftype),  sizeof(ftype));
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            for (int i = 0; i < n_dims; ++i) {
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                fout.write(reinterpret_cast<char *>(&ne[i]), sizeof(ne[i]));
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            }
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            fout.write(&name[0], length);
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            if (quantize) {
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                printf("quantizing .. ");
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                work.resize(nelements); // for quantization
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                size_t cur_size = 0;
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                std::vector<int64_t> hist_cur(1 << 4, 0);
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                switch (type) {
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                    case GGML_TYPE_Q4_0:
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                        {
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                            cur_size = ggml_quantize_q4_0(data_f32.data(), work.data(), nelements, ne[0], QK, hist_cur.data());
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                        } break;
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                    case GGML_TYPE_Q4_1:
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                        {
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                            cur_size = ggml_quantize_q4_1(data_f32.data(), work.data(), nelements, ne[0], QK, hist_cur.data());
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                        } break;
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                    default:
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                        {
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                            fprintf(stderr, "%s: unsupported quantization type %d\n", __func__, type);
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                            return false;
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                        }
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                }
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                fout.write(reinterpret_cast<char *>(work.data()), cur_size);
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                total_size_new += cur_size;
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                printf("size = %8.2f MB -> %8.2f MB | hist: ", nelements * sizeof(float)/1024.0/1024.0, cur_size/1024.0/1024.0);
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                for (int i = 0; i < hist_cur.size(); ++i) {
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                    hist_all[i] += hist_cur[i];
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                }
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                for (int i = 0; i < hist_cur.size(); ++i) {
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                    printf("%5.3f ", hist_cur[i] / (float)nelements);
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                }
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                printf("\n");
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            } else {
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                printf("size = %8.3f MB\n", data_u8.size()/1024.0/1024.0);
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                fout.write(reinterpret_cast<char *>(data_u8.data()), data_u8.size());
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                total_size_new += data_u8.size();
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            }
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            total_size_org += nelements * sizeof(float);
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        }
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        printf("%s: model size  = %8.2f MB\n", __func__, total_size_org/1024.0/1024.0);
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        printf("%s: quant size  = %8.2f MB\n", __func__, total_size_new/1024.0/1024.0);
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        {
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            int64_t sum_all = 0;
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            for (int i = 0; i < hist_all.size(); ++i) {
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                sum_all += hist_all[i];
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            }
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            printf("%s: hist: ", __func__);
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            for (int i = 0; i < hist_all.size(); ++i) {
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                printf("%5.3f ", hist_all[i] / (float)sum_all);
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            }
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            printf("\n");
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        }
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    }
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    finp.close();
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    fout.close();
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    return true;
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}
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// usage:
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//  ./llama-quantize models/llama/ggml-model.bin models/llama/ggml-model-quant.bin type
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//
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int main(int argc, char ** argv) {
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    ggml_time_init();
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    if (argc != 4) {
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        fprintf(stderr, "usage: %s model-f32.bin model-quant.bin type\n", argv[0]);
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        fprintf(stderr, "  type = 2 - q4_0\n");
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        fprintf(stderr, "  type = 3 - q4_1\n");
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        return 1;
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    }
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    // needed to initialize f16 tables
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    {
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        struct ggml_init_params params = { 0, NULL };
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        struct ggml_context * ctx = ggml_init(params);
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        ggml_free(ctx);
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    }
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    const std::string fname_inp = argv[1];
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    const std::string fname_out = argv[2];
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    const int itype = atoi(argv[3]);
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    const int64_t t_main_start_us = ggml_time_us();
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    int64_t t_quantize_us = 0;
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    // load the model
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    {
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        const int64_t t_start_us = ggml_time_us();
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        if (!llama_model_quantize(fname_inp, fname_out, itype)) {
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            fprintf(stderr, "%s: failed to quantize model from '%s'\n", __func__, fname_inp.c_str());
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            return 1;
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        }
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        t_quantize_us = ggml_time_us() - t_start_us;
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    }
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    // report timing
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    {
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        const int64_t t_main_end_us = ggml_time_us();
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        printf("\n");
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        printf("%s: quantize time = %8.2f ms\n", __func__, t_quantize_us/1000.0f);
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        printf("%s:    total time = %8.2f ms\n", __func__, (t_main_end_us - t_main_start_us)/1000.0f);
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    }
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    return 0;
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}
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