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Update app.py
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app.py
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@@ -11,7 +11,7 @@ from engine import inference
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model_trained = VisionEncoderDecoderModel.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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model_trained.load_state_dict(torch.load('model_trained.pth',map_location=torch.device('cpu')))
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image_processor = ViTImageProcessor.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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tokenizer = GPT2TokenizerFast.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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@@ -38,12 +38,12 @@ prefix_length = 10
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model = ClipCaptionModel(prefix_length)
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model.load_state_dict(torch.load('model.h5',map_location=torch.device('cpu')))
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model = model.eval()
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coco_model = ClipCaptionModel(prefix_length)
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coco_model.load_state_dict(torch.load('COCO_model.h5',map_location=torch.device('cpu')))
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# model = model.eval()
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model_trained = VisionEncoderDecoderModel.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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model_trained.load_state_dict(torch.load('model_trained.pth',map_location=torch.device('cpu')),strict=False)
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image_processor = ViTImageProcessor.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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tokenizer = GPT2TokenizerFast.from_pretrained("nlpconnect/vit-gpt2-image-captioning")
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model = ClipCaptionModel(prefix_length)
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model.load_state_dict(torch.load('model.h5',map_location=torch.device('cpu')),strict=False)
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model = model.eval()
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coco_model = ClipCaptionModel(prefix_length)
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coco_model.load_state_dict(torch.load('COCO_model.h5',map_location=torch.device('cpu')),strict=False)
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# model = model.eval()
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