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app.py
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import numpy as np
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import tensorflow as tf
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import gradio as gr
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from huggingface_hub import from_pretrained_keras
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model = from_pretrained_keras("keras-io/conv_autoencoder")
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examples = [
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['./example_0.jpeg'],
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['./example_1.jpeg'],
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['./example_2.jpeg'],
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['./example_3.jpeg'],
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['./example_4.jpeg']
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]
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def infer(original_image):
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image = tf.keras.utils.img_to_array(original_image)
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image = image.astype("float32") / 255.0
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image = np.reshape(image, (1, 28, 28, 1))
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output = model.predict(image)
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output = np.reshape(output, (28, 28, 1))
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output_image = tf.keras.preprocessing.image.array_to_img(output)
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return output_image
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iface = gr.Interface(
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fn = infer,
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title = "Image Denoising using Convolutional AutoEncoders",
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description = "Keras Implementation of a deep convolutional autoencoder for image denoising",
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inputs = gr.inputs.Image(image_mode='L', shape=(28, 28)),
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outputs = gr.outputs.Image(type = 'pil'),
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examples = examples,
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article = "Author: <a href=\"https://huggingface.co/Blazer007\">Vivek Rai</a>. Based on the keras example from <a href=\"https://keras.io/examples/vision/autoencoder/\">Santiago L. Valdarrama</a>",
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).launch(enable_queue=True, debug = True)
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