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Update app.py
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app.py
CHANGED
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@@ -48,11 +48,14 @@ model_vq = model_vq.to(device)
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def inference(raw_image, model_n, question):
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if model_n == 'Image Captioning':
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image = transform(raw_image).unsqueeze(0).to(device)
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with torch.no_grad():
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return 'caption: '+caption[0]
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else:
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@@ -61,7 +64,7 @@ def inference(raw_image, model_n, question):
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answer = model_vq(image_vq, question, train=False, inference='generate')
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return 'answer: '+answer[0]
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inputs = [gr.inputs.Image(type='pil'),gr.inputs.Radio(choices=['Image Captioning',"Visual Question Answering"], type="value", default="Image Captioning", label="Model"),"textbox"]
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outputs = gr.outputs.Textbox(label="Output")
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title = "BLIP"
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def inference(raw_image, model_n, question, strategy):
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if model_n == 'Image Captioning':
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image = transform(raw_image).unsqueeze(0).to(device)
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with torch.no_grad():
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if strategy == "beam search":
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caption = model.generate(image, sample=False, num_beams=3, max_length=20, min_length=5)
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else:
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caption = model.generate(image, sample=True, top_p=0.9, max_length=20, min_length=5)
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return 'caption: '+caption[0]
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else:
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answer = model_vq(image_vq, question, train=False, inference='generate')
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return 'answer: '+answer[0]
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inputs = [gr.inputs.Image(type='pil'),gr.inputs.Radio(choices=['Image Captioning',"Visual Question Answering"], type="value", default="Image Captioning", label="Model"),"textbox",gr.inputs.Radio(choices=['Beam search','Nucleus sampling'], type="value", default="Nucleus sampling", label="Strategy")]
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outputs = gr.outputs.Textbox(label="Output")
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title = "BLIP"
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