Kaldra commited on
Commit
757451d
1 Parent(s): a988c89

Add app,py

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  1. app.py +23 -0
app.py ADDED
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+ from PIL import Image
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+ import gradio as gr
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+ from transformers import ViTFeatureExtractor, ViTForImageClassification
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+ import torch
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+
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+ model = ViTForImageClassification.from_pretrained('sreeramajay/pollution')
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+ transforms = ViTFeatureExtractor.from_pretrained('sreeramajay/pollution')
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+
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+ def predict(image):
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+ labels = {0:"Air Pollution", 1: "Land Pollution" , 2: "Water Pollution"}
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+ inputs = transforms(image, return_tensors='pt')
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+ output = model(**inputs)
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+ probability = output.logits.softmax(1)
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+ values, indices = torch.topk(probability, k=3)
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+ return {labels[i.item()]: v.item() for i, v in zip(indices.numpy()[0], values.detach().numpy()[0])}
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+
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+
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+ gr.Interface(
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+ predict,
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+ inputs = gr.inputs.Image(type="pil", label="Chosen Image"),
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+ outputs = 'label',
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+ theme="seafoam",
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+ ).launch(debug=True)