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| import gradio as gr | |
| import tensorflow as tf | |
| import numpy as np | |
| # Load the model | |
| model = tf.keras.models.load_model('model.h5') | |
| # Define the class names | |
| class_names = { | |
| 0: 'Glioma', | |
| 1: 'Menin', | |
| 2: 'Tumor' | |
| } | |
| def classify_image(image): | |
| # Preprocess the image | |
| img_array = tf.image.resize(image, [200, 200]) | |
| img_array = tf.expand_dims(img_array, 0) / 255.0 | |
| # Make a prediction | |
| prediction = model.predict(img_array) | |
| predicted_class = tf.argmax(prediction[0], axis=-1) | |
| confidence = np.max(prediction[0]) | |
| return class_names[predicted_class.numpy()], confidence | |
| iface = gr.Interface( | |
| fn=classify_image, | |
| inputs="image", | |
| outputs=["text", "number"], | |
| examples=[ | |
| ['examples/0.jpg'], | |
| ['examples/1.jpg'], | |
| ['examples/2.jpg'], | |
| ]) | |
| iface.launch() | |