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| __all__ = ['learn', 'classify_image', 'categories', 'image', 'label', 'examples', 'intf'] | |
| from fastai.vision.all import * | |
| import gradio as gr | |
| import timm | |
| import skimage | |
| # Some magic according to https://forums.fast.ai/t/lesson-2-official-topic/96033/376?page=17 | |
| def is_cat(x): | |
| return x[0].isupper() # Used by model | |
| import sys | |
| sys.modules["__main__"].is_cat = is_cat | |
| # Upload your model | |
| learn = load_learner('corgi-classifier.pkl') | |
| categories = learn.dls.vocab | |
| def classify_image(img): | |
| pred,idx,probs = learn.predict(img) | |
| return dict(zip(categories, map(float,probs))) | |
| image = gr.Image() | |
| label = gr.Label() | |
| # Upload your own images and link them | |
| examples = ['cardigan.jpg', 'pembroke.jpg'] | |
| title = "Corgi Breed Classifier" | |
| description = "A Corgie breed classifier to distinguish between Welsh Corgi Pembroke and Welsh Corgi Cardigan." | |
| interpretation='default' | |
| intf = gr.Interface( | |
| fn=classify_image, | |
| inputs=image, | |
| outputs=label, | |
| examples=examples, | |
| title=title, | |
| description=description, | |
| #interpretation=interpretation | |
| ) | |
| intf.launch() |