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https://git.adityakumar.xyz/llama.cpp.git
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cbef542879
- use f-strings where possible - drop first param of encode/decode functions since "utf-8" is the default
107 lines
3.2 KiB
Python
107 lines
3.2 KiB
Python
#!/usr/bin/env python3
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#
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# TODO: deduplicate GPT4All with convert-unversioned-ggml-to-ggml.py
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#
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# Original by https://github.com/eiz
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# https://github.com/ggerganov/llama.cpp/issues/324#issuecomment-1476227818
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import argparse
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import glob
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import os
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import struct
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import sys
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from sentencepiece import SentencePieceProcessor
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HPARAMS = keys = ["vocab_size", "dim", "multiple_of", "n_heads", "n_layers"]
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def parse_args():
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parser = argparse.ArgumentParser(description='Upgrade a GPT4All model to the current format')
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parser.add_argument('gpt4all_model', help='path to gpt4all-lora-quantized.bin')
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parser.add_argument('tokenizer_model', help='path to LLaMA tokenizer.model file')
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return parser.parse_args()
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def read_header(f_in):
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struct_fmt = "i" * (3 + len(HPARAMS))
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struct_size = struct.calcsize(struct_fmt)
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buf = f_in.read(struct_size)
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return struct.unpack(struct_fmt, buf)
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def write_header(f_out, header):
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(magic, vocab_size, dim, multiple_of, n_heads, n_layers, rot, ftype) = header
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if magic != 0x67676d6c:
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raise Exception('Invalid file magic. Must be an old style ggml file.')
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values = [
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0x67676d66, # magic: ggml in hex
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1, # file version
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vocab_size,
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dim,
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multiple_of,
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n_heads,
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n_layers,
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rot,
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ftype
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]
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f_out.write(struct.pack("i" * len(values), *values))
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def write_tokens(fout, tokenizer):
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for i in range(tokenizer.vocab_size()):
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if tokenizer.is_unknown(i):
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text = " \u2047 ".encode()
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elif tokenizer.is_control(i):
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text = b""
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elif tokenizer.is_byte(i):
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piece = tokenizer.id_to_piece(i)
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if len(piece) != 6:
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print(f"Invalid token: {piece}")
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sys.exit(1)
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byte_value = int(piece[3:-1], 16)
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text = struct.pack("B", byte_value)
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else:
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text = tokenizer.id_to_piece(i).replace("\u2581", " ").encode()
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fout.write(struct.pack("i", len(text)))
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fout.write(text)
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fout.write(struct.pack("f", tokenizer.get_score(i)))
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# TODO: GPT4All - add extra <pad> token
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text = "<pad>".encode()
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fout.write(struct.pack("i", len(text)))
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fout.write(text)
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fout.write(struct.pack("f", 0.0))
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def read_tokens(f_in, tokenizer):
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for i in range(tokenizer.vocab_size()):
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len_b = f_in.read(4)
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(length,) = struct.unpack("i", len_b)
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f_in.read(length)
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def copy_all_data(f_out, f_in):
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while True:
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buf = f_in.read(1024 * 1024)
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if not buf:
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break
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f_out.write(buf)
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def convert_one_file(path_in, tokenizer):
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path_tmp = f"{path_in}.tmp"
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path_orig= f"{path_in}.orig"
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print(f"converting {path_in}")
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with open(path_in, "rb") as f_in, open(path_tmp, "wb") as f_out:
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write_header(f_out, read_header(f_in))
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read_tokens(f_in, tokenizer)
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write_tokens(f_out, tokenizer)
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copy_all_data(f_out, f_in)
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os.rename(path_in, path_orig)
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os.rename(path_tmp, path_in)
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def main():
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args = parse_args()
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tokenizer = SentencePieceProcessor(args.tokenizer_model)
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convert_one_file(args.gpt4all_model, tokenizer)
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if __name__ == "__main__":
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main()
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