Paper
14 February 2015 Automatic identification of vessel crossovers in retinal images
L. Sánchez, N. Barreira, M. G. Penedo, B. Cancela
Author Affiliations +
Proceedings Volume 9445, Seventh International Conference on Machine Vision (ICMV 2014); 94451G (2015) https://doi.org/10.1117/12.2181376
Event: Seventh International Conference on Machine Vision (ICMV 2014), 2014, Milan, Italy
Abstract
Crossovers and bifurcations are interest points of the retinal vascular tree useful to diagnose diseases. Specifically, detecting these interest points and identifying which of them are crossings will give us the opportunity to search for arteriovenous nicking, this is, an alteration of the vessel tree where an artery is crossed by a vein and the former compresses the later. These formations are a clear indicative of hypertension, among other medical problems. There are several studies that have attempted to define an accurate and reliable method to detect and classify these relevant points. In this article, we propose a new method to identify crossovers. Our approach is based on segmenting the vascular tree and analyzing the surrounding area of each interest point. The minimal path between vessel points in this area is computed in order to identify the connected vessel segments and, as a result, to distinguish between bifurcations and crossovers. Our method was tested using retinographies from public databases DRIVE and VICAVR, obtaining an accuracy of 90%.
© (2015) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
L. Sánchez, N. Barreira, M. G. Penedo, and B. Cancela "Automatic identification of vessel crossovers in retinal images", Proc. SPIE 9445, Seventh International Conference on Machine Vision (ICMV 2014), 94451G (14 February 2015); https://doi.org/10.1117/12.2181376
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KEYWORDS
Image segmentation

Blood vessels

Databases

Retinal scanning

Arteries

Veins

Diagnostics

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