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import gradio as gr | |
import torch | |
from transformers import pipeline | |
model_ckpt = "HenryAI/KerasBERTv1" | |
fill_mask = pipeline("fill-mask", model=model_ckpt) | |
def cloze_task(text): | |
preds = fill_mask(text) | |
return preds[0]["sequence"] | |
[{'sequence': 'from tensorflow.keras import layers', 'score': 0.9447882771492004, 'token': 455, 'token_str': ' layers'}, {'sequence': 'from tensorflow.keras import optimizers', 'score': 0.010178953409194946, 'token': 9110, 'token_str': ' optimizers'}, {'sequence': 'from tensorflow.keras import regularizers', 'score': 0.008282472379505634, 'token': 14453, 'token_str': ' regularizers'}, {'sequence': 'from tensorflow.keras import losses', 'score': 0.004894345533102751, 'token': 3114, 'token_str': ' losses'}, {'sequence': 'from tensorflow.keras import Model', 'score': 0.003724579466506839, 'token': 2663, 'token_str': ' Model'}] | |
description="Let's see if BERT has learnt how to write Keras!" | |
title="Keras BERT v1", | |
interface = gr.Interface(fn= cloze_task, | |
title= title, description = description, | |
inputs=[gr.inputs.Textbox(lines=3)], | |
outputs=[gr.outputs.Textbox(label="Answer"),], | |
examples=[["from tensorflow.keras import <mask>"],], | |
enable_queue=True | |
) | |
interface.launch(debug=True) | |