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| import gradio as gr | |
| import tensorflow as tf | |
| import numpy as np | |
| import os | |
| import tensorflow as tf | |
| import numpy as np | |
| from keras.models import load_model | |
| from tensorflow.keras.utils import load_img | |
| # Charger le modèle | |
| model = load_model('model_multi.h5') | |
| def format_decimal(value): | |
| decimal_value = format(value, ".2f") | |
| return decimal_value | |
| def detect(img): | |
| img = np.expand_dims(img, axis=0) | |
| img = img/255 | |
| prediction = model.predict(img)[0] | |
| # if prediction[0] <= 0.80: | |
| # return "Pneumonia Detected!" | |
| # return "Pneumonia Not Detected!" | |
| if format_decimal(prediction[0]) >= "0.5": | |
| return "Risque d'infection bactérienne" | |
| if format_decimal(prediction[1]) >= "0.5": | |
| return "Poumon sain" | |
| if format_decimal(prediction[2]) >= "0.5": | |
| return "Risque d'infection biologique" | |
| # result = detect(img) | |
| # print(result) | |
| os.system("tar -zxvf examples.tar.gz") | |
| examples = ['examples/n1.jpeg', 'examples/n2.jpeg', 'examples/n3.jpeg', 'examples/n4.jpeg', 'examples/n5.jpeg', | |
| 'examples/n6.jpeg', 'examples/n7.jpeg', 'examples/n8.jpeg', 'examples/p6.jpeg', 'examples/p7.jpeg',] | |
| input = gr.inputs.Image(shape=(100,100)) | |
| title = "PneumoDetect: Pneumonia Detection from Chest X-Rays" | |
| iface = gr.Interface(fn=detect, inputs=input, outputs="text",examples = examples, examples_per_page=20, title=title) | |
| iface.launch(inline=False) |