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Decision Support System for Detection of Diabetic Retinopathy Using Smartphones

机译:使用智能手机检测糖尿病视网膜病变的决策支持系统

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Certain retinal disorders, if not detected in time, can be serious enough to cause blindness in patients. This paper proposes a low-cost and portable smartphone-based decision support system for initial screening of diabetic retinopathy using sophisticated image analysis and machine learning techniques. It requires a smartphone to be attached to a direct hand-held ophthalmoscope. The phone is used to capture fundus images as seen through the direct ophthalmoscope. We deploy pattern recognition on the captured images to develop a classifier that distinguishes normal images from those with retinal abnormalities. The algorithm performance is characterized by testing on an existing database. We were able to diagnose conditions with an average sensitivity of 86%. Our system has been designed to be used by ophthalmologists, general practitioners, emergency room physicians, and other health care personnel alike. The emphasis of this paper is not only on devising a detection algorithm for diabetic retinopathy, but more so on the development and utility of a novel system for diagnosis. Through this mobile eye-examination system, we envision making the early screening of diabetic retinopathy accessible, especially to rural regions in developing countries, where dedicated ophthalmology centers are expensive, and to alleviate detection in early stages.
机译:某些视网膜障碍,如果未及时检测到,可能足以引起患者的失明。本文提出了一种低成本和便携式的基于智能手机的决策支持系统,用于使用复杂的图像分析和机器学习技术初始筛选糖尿病视网膜病变。它需要一个智能手机附在直接手持式眼镜镜上。手机用于捕获通过直接眼镜镜看的眼底图像。我们在捕获的图像上部署模式识别以开发一个分类器,该分类器将正常图像与具有视网膜异常的人区分开来。算法性能是在现有数据库上测试的特征。我们能够诊断平均敏感性为86%的条件。我们的系统旨在由眼科医生,全科医生,急诊室医生和其他医疗人员使用。本文的重点是不仅在设计糖尿病视网膜病变的检测算法,而且更为诊断新系统的开发和效用。通过这种移动眼科检查系统,预想早期筛查糖尿病视网膜病变,特别是发展中国家的农村地区,专门的眼科中心是昂贵的,并且在早期阶段缓解检测。

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