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import gradio as gr | |
from tensorflow.keras.models import load_model | |
from tensorflow.keras.preprocessing import image | |
import numpy as np | |
from PIL import Image | |
model = load_model("Model_1.keras") | |
def predict_image(img): | |
img = img.resize((256, 256)) | |
img_array = np.array(img) / 255.0 | |
img_array = np.expand_dims(img_array, axis=0) | |
prediction = model.predict(img_array) | |
class_names = ["Fake","Real"] | |
predicted_class = np.argmax(prediction[0]) | |
confidence = prediction[0][predicted_class] | |
return f"Prediction: {class_names[predicted_class]} (Confidence: {confidence:.2f})" | |
interface = gr.Interface( | |
fn=predict_image, | |
inputs=gr.Image(type="pil"), | |
outputs="text", | |
title="Détection d'images générées par l'IA" | |
) | |
interface.launch("share=True") | |