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Improved Detection of the Central Reflex in Retinal Vessels Using a Generalized Dual-Gaussian Model and Robust Hypothesis Testing

机译:使用广义双高斯模型和稳健的假设检验改善视网膜血管中央反射的检测

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This updates an earlier publication by the authors describing a robust framework for detecting vasculature in noisy retinal fundus images. We improved the handling of the ``central reflex'''' phenomenon in which a vessel has a ``hollow'''' appearance. This is particularly pronounced in dual-wavelength images acquired at 570 and 600 nm for retinal oximetry. It is prominent in the 600 nm images that are sensitive to the blood oxygen content. Improved segmentation of these vessels is needed to improve oximetry. We show that the use of a generalized dual-Gaussian model for the vessel intensity profile instead of the Gaussian yields a significant improvement. Our method can account for variations in the strength of the central reflex, the relative contrast, width, orientation, scale, and imaging noise. It also enables the classification of regular and central reflex vessels. The proposed method yielded a sensitivity of 72% compared to 38% by the algorithm of Can , and 60% by the robust detection based on a single-Gaussian model. The specificity for the methods were 95%, 97%, and 98%, respectively.
机译:这更新了作者的早期出版物,该出版物描述了一种用于检测嘈杂的视网膜眼底图像中脉管系统的强大框架。我们改进了对容器出现``空心''外观的``中央反射''现象的处理。这在视网膜血氧测定法中在570和600 nm处采集的双波长图像中尤为明显。它在对血氧含量敏感的600 nm图像中很显眼。需要改善这些血管的分割以改善血氧饱和度。我们表明,使用广义双重高斯模型代替血管高斯分布可以得到明显的改善。我们的方法可以解决中央反射强度,相对对比度,宽度,方向,比例和成像噪声的变化。它还可以对常规和中央反射性血管进行分类。所提出的方法的灵敏度为72%,而Can算法为38%,基于单高斯模型的鲁棒检测为60%。该方法的特异性分别为95%,97%和98%。

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