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e50d863
1
Parent(s):
2588365
Update app.py
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app.py
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import torch
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import transformers
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from transformers import BertTokenizer, BertForMaskedLM
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import gradio as gr
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import gradio as gr
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import torch
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import transformers
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from transformers import BertTokenizer, BertForMaskedLM
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device = torch.device('cpu')
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NUM_CLASSES=5
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model=BertForMaskedLM.from_pretrained("./")
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tokenizer=BertTokenizer.from_pretrained("./")
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def predict(text=None) -> dict:
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model.eval()
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inputs = tokenizer(str(text), return_tensors="pt")
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input_ids = inputs["input_ids"].to(device)
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attention_mask = inputs["attention_mask"].to(device)
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model.to(device)
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token_logits = model(input_ids, attention_mask=attention_mask).logits
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mask_token_index = torch.where(inputs["input_ids"] == tokenizer.mask_token_id)[1]
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mask_token_logits = token_logits[0, mask_token_index, :]
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top_5_tokens = torch.topk(mask_token_logits, NUM_CLASSES, dim=1).indices[0].tolist()
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score = torch.nn.functional.softmax(mask_token_logits)[0]
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top_5_score = torch.topk(score, NUM_CLASSES).values.tolist()
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return {tokenizer.decode([tok]): float(score) for tok, score in zip(top_5_tokens, top_5_score)}
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gr.Interface(fn=predict,
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inputs=gr.inputs.Textbox(lines=2, placeholder="Your Text… "),
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title="Mask Language Modeling",
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outputs=gr.outputs.Label(num_top_classes=NUM_CLASSES),
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description="Masked language modeling is the task of masking some of the words in a sentence and predicting which words should replace those masks",
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examples=['A Good Man Is Hard to Find [MASK].', 'Some stories have a [MASK] kind of message called a moral.'],
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interpretation='default').launch()
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