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| import requests | |
| import tensorflow as tf | |
| import gradio as gr | |
| inception_net = tf.keras.applications.MobileNetV2() # load the model | |
| # Download human-readable labels for ImageNet. | |
| response = requests.get("https://git.io/JJkYN") | |
| labels = response.text.split("\n") | |
| def classify_image(inp): | |
| inp = inp.reshape((-1, 224, 224, 3)) | |
| inp = tf.keras.applications.mobilenet_v2.preprocess_input(inp) | |
| prediction = inception_net.predict(inp).flatten() | |
| return {labels[i]: float(prediction[i]) for i in range(1000)} | |
| image = gr.Image(shape=(224, 224)) | |
| label = gr.Label(num_top_classes=3) | |
| title="Gradio Image Classifiction + interpretation Example" | |
| gr.Interface( | |
| fn=classify_image, inputs=image, outputs=label, interpretation="default",title=title | |
| ).launch() |