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| import gradio as gr | |
| from ultralytics import YOLO | |
| # Load model dari Hugging Face | |
| model = YOLO("https://huggingface.co/markgalih27/Land-Use-Classification/resolve/main/best%20(1).pt") | |
| # Daftar kelas sesuai model | |
| class_names = ['agricultural', 'airplane','beach', 'buildings', 'denseresidential', 'forest', 'freeway', 'harbor', 'mediumresidential', 'parkinglot', 'river', 'runway', 'sparseresidential'] | |
| def classify_image(image): | |
| results = model(image) # Jalankan model pada gambar | |
| probs = results[0].probs # Ambil hasil probabilitas | |
| # Prediksi kelas dengan probabilitas tertinggi | |
| top1_index = probs.top1 | |
| top1_label = class_names[top1_index] | |
| return f"Predicted Class: {top1_label}" | |
| demo = gr.Interface( | |
| fn=classify_image, | |
| inputs=gr.Image(type="pil"), | |
| outputs="text", | |
| title="Land Use Classify Demo" | |
| ) | |
| demo.launch(share=True) |