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Browse files- custom.py +94 -0
- hyperparams.yaml +68 -0
custom.py
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"""This lobe enables the integration of huggingface pretrained GPT2LMHeadModel model plus the expanding embedding layer for additional tokens like BOS, EOS and Speakers .
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Transformer from HuggingFace needs to be installed:
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https://huggingface.co/transformers/installation.html
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Authors
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* Pooneh Mousavi 2023
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"""
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import logging
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from torch import Tensor
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import torch
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import torch.nn as nn
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from speechbrain.lobes.models.huggingface_gpt import HuggingFaceGPT
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try:
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from transformers import GPT2LMHeadModel
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from transformers import GPT2Tokenizer
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except ImportError:
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MSG = "Please install transformers from HuggingFace to use GPT2\n"
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MSG += "E.G. run: pip install transformers"
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raise ImportError(MSG)
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logger = logging.getLogger(__name__)
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class HuggingFaceGPT_expanded(HuggingFaceGPT):
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"""This lobe enables the integration of HuggingFace pretrained GPT model.
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Source paper whisper:
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https://life-extension.github.io/2020/05/27/GPT%E6%8A%80%E6%9C%AF%E5%88%9D%E6%8E%A2/language-models.pdf
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Transformer from HuggingFace needs to be installed:
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https://huggingface.co/transformers/installation.html
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The model can be finetuned. It will download automatically the model from
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HuggingFace or use a local path.
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Arguments
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---------
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source : str
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HuggingFace hub name: e.g "gpt2"
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save_path : str
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Path (dir) of the downloaded model.
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freeze : bool (default: False)
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If True, the model is frozen. If False, the model will be trained
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alongside with the rest of the pipeline.
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Example
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-------
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>>> model_hub = "gpt2"
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>>> save_path = "savedir"
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>>> model = HuggingFaceGPT(model_hub, save_path)
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>>> tokens = torch.tensor([[1, 1]])
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>>> tokens_type = torch.tensor([[1, 1]])
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>>> attention_mask = torch.tensor([[1, 1]])
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>>> outputs = model(tokens, tokens_type, attention_mask)
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"""
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def __init__(
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self, *args, **kwrds
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) -> None:
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super().__init__( *args, **kwrds)
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# Load tokenizer and add special tokens
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self.tokenizer = GPT2Tokenizer.from_pretrained(kwrds['source'], pad_token=None)
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# # Add special tokens to the tokenizer and resize model embedding
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# Special tokens
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bos_token = "BOS"
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eos_token="EOS"
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system_token= "SPK_1"
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user_token= "SPK_2"
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additional_special_tokens= [
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system_token,
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user_token
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]
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attr_to_special_tokens={"bos_token": bos_token,
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"eos_token": eos_token,
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"additional_special_tokens": additional_special_tokens}
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self.add_special_tokens_(
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attr_to_special_tokens
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)
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def add_special_tokens_(self, attr_to_special_token,) -> None:
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orig_num_tokens = len(self.tokenizer.encoder)
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num_added_tokens = self.tokenizer.add_special_tokens(
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attr_to_special_token # type: ignore
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) # doesn't add if they are already there
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if num_added_tokens > 0:
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self.model.resize_token_embeddings(
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new_num_tokens=orig_num_tokens + num_added_tokens
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)
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hyperparams.yaml
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# ################################
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# Model: GPT2LMHeadModel + NLL
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# Authors:
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# Pooneh Mousavi 2023
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# ################################
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# URL for the gpt2 model
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gpt_hub: gpt2
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gpt_folder: gpt2_result/save/gpt_checkpoint
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# Special tokens
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bos_token: "BOS"
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eos_token: "EOS"
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system_token: "SPK_1"
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user_token: "SPK_2"
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tokenizer: !ref <gpt_hub>
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additional_special_tokens: [
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!ref <system_token>,
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!ref <user_token>
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]
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special_tokens: [
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!ref <bos_token>,
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!ref <eos_token>,
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!ref <system_token>,
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!ref <user_token>
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]
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attr_to_special_tokens:
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"bos_token": !ref <bos_token>
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"eos_token": !ref <eos_token>
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"additional_special_tokens": !ref <additional_special_tokens>
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# history_window, i.e. how many user-system exchanges consider as context.
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max_history: 5
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# decoder setting
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freeze_gptmodel: True
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num_beams: 3
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max_new_tokens: 50
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top_k: 45
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top_p: 0.9
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# gpt model
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model: !new:custom.HuggingFaceGPT_expanded
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source: !ref <gpt_hub>
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freeze: !ref <freeze_gptmodel>
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save_path: !ref <gpt_folder>
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max_new_tokens: !ref <max_new_tokens>
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num_beams: !ref <num_beams>
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top_k: !ref <top_k>
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top_p: !ref <top_p>
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# Masks
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padding_mask: !name:speechbrain.lobes.models.transformer.Transformer.get_key_padding_mask
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pretrainer: !new:speechbrain.utils.parameter_transfer.Pretrainer
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loadables:
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model: !ref <model>
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modules:
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model: !ref <model>
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