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import torch | |
from transformers import AutoModelForImageClassification, AutoFeatureExtractor | |
import gradio as gr | |
model_id = f'rsadaphule/vit-base-patch16-224-finetuned-wildcats' | |
labels = ['AFRICAN LEOPARD', | |
'CARACAL', | |
'CHEETAH', | |
'CLOUDED LEOPARD', | |
'JAGUAR', | |
'LIONS', | |
'OCELOT', | |
'PUMA', | |
'SNOW LEOPARD', | |
'TIGER'] | |
def classify_image(image): | |
model = AutoModelForImageClassification.from_pretrained(model_id) | |
feature_extractor = AutoFeatureExtractor.from_pretrained(model_id) | |
inp = feature_extractor(image, return_tensors='pt') | |
outp = model(**inp) | |
pred = torch.nn.functional.softmax(outp.logits, dim=-1) | |
preds = pred[0].cpu().detach().numpy() | |
confidence = {label: float(preds[i]) for i, label in enumerate(labels)} | |
return confidence | |
interface = gr.Interface(fn=classify_image, | |
inputs='image', | |
examples=['cat1.jpg', 'cat2.jpg'], | |
outputs='label').launch(debug=True, share=True) |