眼底图像场自动检测与质量评价

Gajendra J. Katuwal, J. Kerekes, R. Ramchandran, Christye Sisson, N. Rao
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引用次数: 11

摘要

眼底图像是许多视网膜疾病的重要诊断工具。有时捕获的图像质量较低,不能用于需要重复图像采集的诊断。因此,在图像采集过程中,有一个自动评估眼底图像质量的系统是非常有效的。我们开发了一种基于视网膜血管固有对称性来评估眼底图像质量的自动方法。我们从单幅眼底图像的单独质量评估和三幅不同视场眼底图像的综合质量评估两种方式来解决质量评估问题。该方法还利用视盘位置和两个局部窗口的强度信息检测眼底图像的场和侧。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic fundus image field detection and quality assessment
Fundus images are an important diagnostic tool for many retinal diseases. Sometimes the images captured are of low quality and cannot be used for diagnosis requiring repeat image acquisition. So, it is efficient to have an automatic system to assess the quality of the fundus image during the time of image capture. We have developed an automatic approach to assess the quality of the acquired fundus image based upon the inherent symmetry of retinal vessels. We approach the problem of quality assessment in two ways-individual quality assessment of a single fundus image and comprehensive quality assessment of a set of three fundus images of different fields of an eye. Our method also detects the field and side of the fundus image using the position of optic disc and the intensity information in two local windows.
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