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app.py
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app.py
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import gradio as gr
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import numpy as np
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import time
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def predict(x):
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return np.fliplr(x)
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def compress():
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time.sleep(1)
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return 'The model has been compressed successfully.'
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with gr.Blocks() as demo:
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with gr.Column():
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gr.Radio(["Image classification", "Object detection", "Semantic segmentation"], label="Tasks"),
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gr.Radio(["ResNet", "VGG", "MobileNet"], label="Models"),
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gr.Radio(["Weight quantization","Knowledge distillation","Network pruning", "Neural Architecture Search"],
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label="Compression methods"),
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gr.Radio(["Jetson Nano"], label="Deployments")
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compress_btn = gr.Button("compress")
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output_compress = gr.Textbox(lines=1, label="Model Compression Results", visible=False)
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with gr.Row():
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Original_config = gr.Dataframe(headers=["#Params.(M)", "FLOPs(G)"], datatype=[
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"str", "str"], row_count=1, value=[['63.8M','250G']], label="Original model config", visible=False)
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Compressed_config = gr.Dataframe(headers=["#Params.(M)", "FLOPs(G)"], datatype=[
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"str", "str"], row_count=1, value=[['34.6M','126G']],label="Compressed model config", visible=False)
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with gr.Row():
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input_predict = gr.Image(label="input")
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output_predict = gr.Image(label="output")
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predict_btn = gr.Button("predict")
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state = gr.State()
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compress_btn.click(fn=compress, inputs=None,
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outputs=output_compress, api_name="compress")
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compress_btn.click(lambda : (gr.Textbox.update(visible=True), "visible"), None, [output_compress, state])
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output_compress.change(lambda: (Original_config.update(visible=True), "visible"), None, [Original_config, state])
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output_compress.change(lambda: (Compressed_config.update(visible=True), "visible"), None, [Compressed_config, state])
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predict_btn.click(fn=predict, inputs=input_predict,
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outputs=output_predict, api_name="predict")
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demo.launch(share=True)
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