Improving hard exudate detection in retinal images through a combination of local and contextual information

C. I. Sánchez, M. Niemeijer, M. Suttorp-Schulten, M. Abràmoff, B. Ginneken
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引用次数: 37

Abstract

Contextual information is of paramount importance in medical image understanding to detect and differentiate pathologies, especially when interpreting difficult cases. Current computer-aided detection (CAD) systems typically employ only local information to classify candidates, without taking into account global image information or the relation of a candidate with neighboring structures. In this work, we improve the detection of hard exudates in retinal images incorporating contextual information in the CAD system. The context is described by means of high-level contextual-based features based on the spatial relation with surrounding anatomical landmarks and similar lesions. Results show that a contextual CAD system for hard exudate detection is superior to an approach that uses only local information, with a significant increase of the figure of merit of the Free Receiver Operating Characteristic (FROC) curve from 0.840 to 0.945.
通过结合局部和上下文信息改进视网膜图像中的硬渗出物检测
上下文信息在医学图像理解中至关重要,以检测和区分病理,特别是在解释困难病例时。当前的计算机辅助检测(CAD)系统通常只使用局部信息对候选图像进行分类,而不考虑全局图像信息或候选图像与邻近结构的关系。在这项工作中,我们改进了在CAD系统中结合上下文信息的视网膜图像中硬渗出物的检测。上下文是通过基于与周围解剖标志和类似病变的空间关系的高级上下文特征来描述的。结果表明,基于上下文的硬渗出物检测CAD系统优于仅使用局部信息的方法,自由接收机工作特性(FROC)曲线的优点值从0.840显著增加到0.945。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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