The Multiscale Bowler-Hat Transform for Blood Vessel Enhancement in Retinal Images

September 16, 2017 Β· Declared Dead Β· πŸ› Pattern Recognition

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Authors Γ‡iğdem Sazak, Carl J. Nelson, Boguslaw Obara arXiv ID 1709.05495 Category cs.CV: Computer Vision Citations 71 Venue Pattern Recognition Last Checked 5 months ago
Abstract
Enhancement, followed by segmentation, quantification and modelling, of blood vessels in retinal images plays an essential role in computer-aid retinopathy diagnosis. In this paper, we introduce a new vessel enhancement method which is the bowler-hat transform based on mathematical morphology. The proposed method combines different structuring elements to detect innate features of vessel-like structures. We evaluate the proposed method qualitatively and quantitatively, and compare it with the existing, state-of-the-art methods using both synthetic and real datasets. Our results show that the proposed method achieves high-quality vessel-like structure enhancement in both synthetic examples and in clinically relevant retinal images, and is shown to be able to detect fine vessels while remaining robust at junctions.
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