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Model: shibing624/code-autocomplete-gpt2-base Source: Original Platform
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README.md
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README.md
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---
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language:
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- en
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tags:
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- code
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- autocomplete
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- pytorch
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- en
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license: "apache-2.0"
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---
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# GPT2 for Code AutoComplete Model
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code-autocomplete, a code completion plugin for Python.
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**code-autocomplete** can automatically complete the code of lines and blocks with GPT2.
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## Usage
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Open source repo:[code-autocomplete](https://github.com/shibing624/code-autocomplete),support GPT2 model, usage:
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```python
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from autocomplete.gpt2_coder import GPT2Coder
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m = GPT2Coder("shibing624/code-autocomplete-gpt2-base")
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print(m.generate('import torch.nn as')[0])
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```
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Also, use huggingface/transformers:
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*Please use 'GPT2' related functions to load this model!*
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```python
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import os
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import torch
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from transformers import GPT2Tokenizer, GPT2LMHeadModel
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os.environ["KMP_DUPLICATE_LIB_OK"] = "TRUE"
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device = torch.device("cuda" if torch.cuda.is_available() else "cpu")
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tokenizer = GPT2Tokenizer.from_pretrained("shibing624/code-autocomplete-gpt2-base")
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model = GPT2LMHeadModel.from_pretrained("shibing624/code-autocomplete-gpt2-base")
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model.to(device)
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prompts = [
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"""from torch import nn
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class LSTM(Module):
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def __init__(self, *,
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n_tokens: int,
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embedding_size: int,
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hidden_size: int,
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n_layers: int):""",
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"""import numpy as np
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import torch
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import torch.nn as""",
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"import java.util.ArrayList",
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"def factorial(n):",
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]
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for prompt in prompts:
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input_ids = tokenizer.encode(prompt, add_special_tokens=False, return_tensors='pt').to(device)
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outputs = model.generate(input_ids=input_ids,
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max_length=64 + len(prompt),
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temperature=1.0,
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top_k=50,
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top_p=0.95,
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repetition_penalty=1.0,
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do_sample=True,
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num_return_sequences=1,
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length_penalty=2.0,
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early_stopping=True)
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decoded = tokenizer.decode(outputs[0], skip_special_tokens=True)
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print(decoded)
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print("=" * 20)
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```
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output:
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```shell
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from torch import nn
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class LSTM(Module):
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def __init__(self, *,
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n_tokens: int,
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embedding_size: int,
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hidden_size: int,
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n_layers: int):
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self.embedding_size = embedding_size
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====================
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import numpy as np
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import torch
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import torch.nn as nn
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import torch.nn.functional as F
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```
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Model files:
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```
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code-autocomplete-gpt2-base
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├── config.json
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├── merges.txt
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├── pytorch_model.bin
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├── special_tokens_map.json
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├── tokenizer_config.json
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└── vocab.json
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```
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### Train data
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#### pytorch_awesome projects source code
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download [code-autocomplete](https://github.com/shibing624/code-autocomplete),
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```shell
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cd autocomplete
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python create_dataset.py
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```
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If you want train code-autocomplete GPT2 model,refer [https://github.com/shibing624/code-autocomplete/blob/main/autocomplete/gpt2_coder.py](https://github.com/shibing624/code-autocomplete/blob/main/autocomplete/gpt2_coder.py)
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### About GPT2
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Test the whole generation capabilities here: https://transformer.huggingface.co/doc/gpt2-large
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Pretrained model on English language using a causal language modeling (CLM) objective. It was introduced in
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[this paper](https://d4mucfpksywv.cloudfront.net/better-language-models/language_models_are_unsupervised_multitask_learners.pdf)
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and first released at [this page](https://openai.com/blog/better-language-models/).
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Disclaimer: The team releasing GPT-2 also wrote a
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[model card](https://github.com/openai/gpt-2/blob/master/model_card.md) for their model. Content from this model card
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has been written by the Hugging Face team to complete the information they provided and give specific examples of bias.
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## Citation
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```latex
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@misc{code-autocomplete,
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author = {Xu Ming},
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title = {code-autocomplete: Code AutoComplete with GPT model},
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year = {2022},
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publisher = {GitHub},
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journal = {GitHub repository},
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url = {https://github.com/shibing624/code-autocomplete},
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}
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```
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