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from fastai.vision.all import * | |
import gradio as gr | |
learn = load_learner('petClassify.pkl') | |
labels = learn.dls.vocab | |
def predict(img): | |
img = PILImage.create(img) | |
pred, idx, probs = learn.predict(img) | |
return {labels[i] : float(probs[i]) for i in range(len(labels))} | |
# print(predict('licensed-image.jpeg')) | |
title = "Pet classifier" | |
description = "Oxford pets classifier based on fine tuned resnet 50" | |
article = "Plaintext" | |
enable_queue = True | |
interpretation= 'default' | |
examples = ['licensed-image.jpeg'] | |
gr.Interface(fn=predict, inputs=gr.inputs.Image(shape=(512, 512)), outputs=gr.outputs.Label(num_top_classes=3), | |
description=description, title=title, article=article, | |
examples=examples, interpretation=interpretation | |
).launch(share=False) |