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Automated detection of circinate exudates in retina digital images using empirical mode decomposition and the entropy and uniformity of the intrinsic mode functions

机译:使用经验模式分解以及固有模式函数的熵和均匀性自动检测视网膜数字图像中的环状分泌物

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摘要

This work presents a new automated system to detect circinate exudates in retina digital images. It operates as follows: the true color image is converted to gray levels, and contrast-limited adaptive histogram equalization (CLAHE) is applied to it before undergoing empirical mode decomposition (EMD) as intrinsic mode functions (IMFs). The entropies and uniformities of the first two IMFs are then computed to form a feature vector that is fed to a support vector machine (SVM) for classification. The experimental results using a set of 45 images (23 normal images and 22 images with circinate exudates taken from the STARE database) and tenfold cross-validation indicate that the proposed approach outperforms previous works found in the literature, with perfect classification. In addition, the image processing time was <4 min, making the presented circinate exudate detection system fit for use in a clinical environment.
机译:这项工作提出了一个新的自动化系统,以检测视网膜数字图像中的环状分泌物。它的操作如下:将真彩色图像转换为灰度,并在进行作为固有模式函数(IMF)的经验模式分解(EMD)之前,先对其应用对比度限制的自适应直方图均衡(CLAHE)。然后计算前两个IMF的熵和均匀性,以形成特征向量,然后将其馈送到支持向量机(SVM)进行分类。使用一组45张图像(23张正常图像和22张包含从STARE数据库中获取的环状分泌物的图像)和十倍交叉验证的实验结果表明,所提出的方法具有优于文献的良好分类效果。此外,图像处理时间<4分钟,使本发明的环状分泌物检测系统适合在临床环境中使用。

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