revert demo
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@ -12,11 +12,11 @@ from pathlib import Path
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def suffix(bs: int, ns: int, vs: int) -> str:
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def suffix(bs: int, ns: int, vs: int) -> str:
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return f"_bs={bs}_ns={ns}_vs={vs}"
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return f"_bs={bs}_ns={ns}_vs={vs}"
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def train(ouputdir: Path, blocksize: int, vocabsize: int, num_steps: int, gpu: bool = False) -> str:
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def train(filepath: str, ouputdir: Path, blocksize: int, vocabsize: int, num_steps: int, gpu: bool = False) -> str:
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from aitextgen.TokenDataset import TokenDataset
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# from aitextgen.TokenDataset import TokenDataset
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from transformers import GPT2Config
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# from transformers import GPT2Config
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# from aitextgen.utils import build_gpt2_config
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from aitextgen.utils import build_gpt2_config
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from aitextgen import aitextgen
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from aitextgen import aitextgen
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exts = ['.json', '.gz']
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exts = ['.json', '.gz']
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@ -32,27 +32,27 @@ def train(ouputdir: Path, blocksize: int, vocabsize: int, num_steps: int, gpu: b
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tok = str(files[1])
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tok = str(files[1])
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dat = str(files[0])
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dat = str(files[0])
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# config = build_gpt2_config(vocab_size=vocabsize, max_lenght=blocksize)
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config = build_gpt2_config(vocab_size=vocabsize, max_lenght=blocksize, dropout=0.0, n_embd=256, n_layer=8, n_head=8)
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config = GPT2Config(
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# config = GPT2Config(
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vocab_size=vocabsize,
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# vocab_size=vocabsize,
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n_positions=blocksize,
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# n_positions=blocksize,
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n_ctx=blocksize,
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# n_ctx=blocksize,
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resid_pdrop=0.0,
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# resid_pdrop=0.0,
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embd_pdrop=0.0,
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# embd_pdrop=0.0,
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attn_pdrop=0.0,
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# attn_pdrop=0.0,
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summary_first_dropout=0.0,
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# summary_first_dropout=0.0,
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bos_token_id=0,
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# bos_token_id=0,
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eos_token_id=0
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# eos_token_id=0
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)
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# )
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print(config)
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print(config)
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ai = aitextgen(tokenizer_file=tok, config=config)
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ai = aitextgen(config=config, tokenizer_file=tok, to_gpu=gpu)
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data = TokenDataset(dat, tokenizer_file=tok, block_size=blocksize, from_cache=True)
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# data = TokenDataset(dat, tokenizer_file=tok, block_size=blocksize, from_cache=True)
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ai.train(data, output_dir=str(ouputdir), batch_size=16, num_steps=num_steps, generate_every=1000, save_every=1000, num_workers=4, to_gpu=gpu)
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ai.train(filepath, output_dir=str(ouputdir), line_by_line=False, from_cache=False, learning_rate=1e-3, batch_size=256, num_steps=num_steps, generate_every=1000, save_every=1000, num_workers=4)
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return "Done!"
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return "Done!"
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@ -68,7 +68,7 @@ def encode(filepath: str, blocksize: int, vocabsize: int, ouputdir: Path, lineby
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else:
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else:
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return "text input is not valid"
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return "text input is not valid"
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from aitextgen.TokenDataset import TokenDataset
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# from aitextgen.TokenDataset import TokenDataset
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from aitextgen.tokenizers import train_tokenizer
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from aitextgen.tokenizers import train_tokenizer
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#NOTE: vocab_size is fixed since this is not yet in train_tokenizer
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#NOTE: vocab_size is fixed since this is not yet in train_tokenizer
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@ -79,20 +79,21 @@ def encode(filepath: str, blocksize: int, vocabsize: int, ouputdir: Path, lineby
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train_tokenizer(text, vocab_size=vocabsize, prefix=str(fn))
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train_tokenizer(text, vocab_size=vocabsize, prefix=str(fn))
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else:
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else:
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train_tokenizer(files=[str(x) for x in text], vocab_size=vocabsize, prefix=str(fn))
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train_tokenizer(files=[str(x) for x in text], vocab_size=vocabsize, prefix=str(fn))
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tok_fn = str(fn) + ".tokenizer.json"
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fnn = ouputdir / (f_path.name + f"_bs={blocksize}_ns={vocabsize}")
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# tok_fn = str(fn) + ".tokenizer.json"
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dataset_fn = str(fnn) + ".tar.gz"
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print(tok_fn)
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# fnn = ouputdir / (f_path.name + f"_bs={blocksize}_ns={vocabsize}")
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print(dataset_fn)
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# dataset_fn = str(fnn) + ".tar.gz"
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if type(text) is str:
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# print(tok_fn)
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data = TokenDataset(file_path=text, tokenizer_file=tok_fn, block_size=blocksize, line_by_line=linebyline)
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# print(dataset_fn)
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else:
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texts = [x.read_text() for x in text]
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# if type(text) is str:
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data = TokenDataset(texts=texts, tokenizer_file=tok_fn, block_size=blocksize, line_by_line=linebyline)
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# data = TokenDataset(file_path=text, tokenizer_file=tok_fn, block_size=blocksize, line_by_line=linebyline)
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data.save(cache_destination=dataset_fn)
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# else:
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# texts = [x.read_text() for x in text]
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# data = TokenDataset(texts=texts, tokenizer_file=tok_fn, block_size=blocksize, line_by_line=linebyline)
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# data.save(cache_destination=dataset_fn)
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return "encode success"
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return "encode success"
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@ -101,8 +102,8 @@ def main() -> int:
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p = argparse.ArgumentParser()
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p = argparse.ArgumentParser()
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p.add_argument("text", type=str, help="text file path to be tokenised and encoded")
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p.add_argument("text", type=str, help="text file path to be tokenised and encoded")
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p.add_argument("-b", "--blocksize", type=int, choices=[32, 64, 128, 256, 1024], default=64, help="block size, default=64 (corresponds to GPT-2 'max_lenght' config)")
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p.add_argument("-b", "--blocksize", type=int, choices=[32, 64, 128, 256, 1024], default=64, help="block size, default=64 (corresponds to GPT-2 'max_lenght' config)")
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p.add_argument("-s", "--numsteps", type=int, default=10000)
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p.add_argument("-s", "--numsteps", type=int, default=8000)
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p.add_argument("-v", "--vocabsize", type=int, default=1000)
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p.add_argument("-v", "--vocabsize", type=int, default=5000)
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p.add_argument("--ouputdir", type=str, default="data/tokens+models/")
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p.add_argument("--ouputdir", type=str, default="data/tokens+models/")
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p.add_argument("--gpu", action="store_true")
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p.add_argument("--gpu", action="store_true")
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p.add_argument("--line_by_line", action="store_true")
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p.add_argument("--line_by_line", action="store_true")
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