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Integrating adaptive neuro-fuzzy inference system and local binary pattern operator for robust retinal blood vessels segmentation

机译:集成自适应神经模糊推理系统和局部二进制模式算子,实现可靠的视网膜血管分割

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摘要

Automatic extraction of blood vessels is an important step in computer-aided diagnosis in ophthalmology. The blood vessels have different widths, orientations, and structures. Therefore, the extracting of the proper feature vector is a critical step especially in the classifier-based vessel segmentation methods. In this paper, a new multi-scale rotation-invariant local binary pattern operator is employed to extract efficient feature vector for different types of vessels in the retinal images. To estimate the vesselness value of each pixel, the obtained multi-scale feature vector is applied to an adaptive neuro-fuzzy inference system. Then by applying proper top-hat transform, thresholding, and length filtering, the thick and thin vessels are highlighted separately. The performance of the proposed method is measured on the publicly available DRIVE and STARE databases. The average accuracy 0.942 along with true positive rate (TPR) 0.752 and false positive rate (FPR) 0.041 is very close to the manual segmentation rates obtained by the second observer. The proposed method is also compared with several state-of-the-art methods. The proposed method shows higher average TPR in the same range of FPR and accuracy.
机译:自动提取血管是眼科计算机辅助诊断中的重要步骤。血管具有不同的宽度,方向和结构。因此,正确特征向量的提取是关键步骤,尤其是在基于分类器的血管分割方法中。本文采用了一种新的多尺度旋转不变局部二进制模式算子来提取视网膜图像中不同类型血管的有效特征向量。为了估计每个像素的血管度值,将获得的多尺度特征向量应用于自适应神经模糊推理系统。然后,通过应用适当的礼帽变换,阈值化和长度滤波,分别对粗细血管进行突出显示。在公开可用的DRIVE和STARE数据库中测量了所提出方法的性能。平均准确度0.942加上真实阳性率(TPR)0.752和错误阳性率(FPR)0.041,非常接近第二位观察者获得的手动分割率。还将所提出的方法与几种最新方法进行了比较。所提出的方法在相同的FPR和精度范围内显示出更高的平均TPR。

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