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| import gradio as gr | |
| from fastai.vision.all import * | |
| from huggingface_hub import from_pretrained_fastai | |
| def label_func(fn): return path/'masks1b-binary'/f'{fn.stem}.png' | |
| repo_id = "hugginglearners/kvasir-seg" | |
| learn = from_pretrained_fastai(repo_id) | |
| def predict(img): | |
| img = PILImage.create(img) | |
| pred, _, _ = learn.predict(img) | |
| return PILMask.create(pred*255) | |
| interface_options = { | |
| "title": "kvasir-seg fastai segmentation", | |
| "description": "Demonstration of segmentation of gastrointestinal polyp images. This app is for reference only. It should not be used for medical diagnosis. Model was trained on Kvasir SEG dataset (https://datasets.simula.no/kvasir-seg/)", | |
| "layout": "horizontal", | |
| "examples": [ | |
| "cju5eftctcdbj08712gdp989f.jpg", | |
| "cju42qet0lsq90871e50xbnuv.jpg", | |
| "cju8b0jr0r2oi0801jiquetd5.jpg" | |
| ], | |
| "allow_flagging": "never" | |
| } | |
| demo = gr.Interface( | |
| fn=predict, | |
| inputs=gr.Image(shape=(224, 224)), | |
| outputs=gr.Image(shape=(224, 224)), | |
| cache_examples=False, | |
| **interface_options, | |
| ) | |
| launch_options = { | |
| "enable_queue": True, | |
| "share": False, | |
| } | |
| demo.launch(**launch_options) |