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Layout-aware Subfigure Decomposition for Complex Figures in the Biomedical Literature | IEEE Conference Publication | IEEE Xplore

Layout-aware Subfigure Decomposition for Complex Figures in the Biomedical Literature


Abstract:

Published scientific figure is a valuable information resource, but often occur as composite images. The ImageCLEF meeting presented a shared evaluation in 2016 to use ma...Show More

Abstract:

Published scientific figure is a valuable information resource, but often occur as composite images. The ImageCLEF meeting presented a shared evaluation in 2016 to use machine learning to split these composite figures into components automatically. We adapted an existing high-performance object detection method to analyze the substructure of published biomedical figures by developing a novel multi-branch output convolution neural network to predict irregular panel layouts and provide augmented training data to drive learning. Our system has an accuracy of 86.8% on the 2016 ImageCLEF Medical dataset and 83.1% on a new dataset derived from open access papers from the INTACT database of molecular interactions.
Date of Conference: 12-17 May 2019
Date Added to IEEE Xplore: 17 April 2019
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Conference Location: Brighton, UK
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.

Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
Information Sciences Institute, Marina del Rey, California, U.S.A.
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