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Feature Selection Applied to Human Tear Film Classification

机译:适用于人撕膜分类的特征选择

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Dry eye is a common disease which affects a large portion of the population and harms their routine activities. Its diagnosis and monitoring require a battery of tests, each designed for different aspects. One of these clinical tests measures the quality of the tear film and is based on its appearance, which can be observed using the Doane interferometer. The manual process done by experts consists of classifying the interferometry images into one of the five categories considered. The variability existing in these images makes necessary the use of an automatic system for supporting dry eye diagnosis. In this research, a methodology to perform this classification automatically is presented. This methodology includes a color and texture analysis of the images, and also the use of feature selection methods to reduce image processing time. The effectiveness of the proposed methodology was demonstrated since it provides unbiased results with classification errors lower than 9%. Additionally, it saves time for experts and can work in real-time for clinical purposes.
机译:干眼症是一种常见的疾病,影响大部分人口并损害他们的常规活动。其诊断和监控需要电池的测试,每个测试都为不同的方面设计。其中一个临床试验测量撕裂膜的质量,基于其外观,可以使用DOANE干涉仪观察。专家完成的手动过程包括将干涉测量图像分类为所考虑的五个类别之一。这些图像中存在的可变性使得必要的使用自动系统来支持干眼诊断。在本研究中,提出了一种自动执行此分类的方法。该方法包括图像的颜色和纹理分析,以及使用特征选择方法来降低图像处理时间。拟议方法的有效性被证明,因为它提供了低于9%的分类误差的无偏见结果。此外,它还节省了专家的时间,可以实时工作以进行临床目的。

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