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Retinal Vessel Segmentation Using Matched Filter with Joint Relative Entropy

机译:使用联合相对熵的匹配滤波器对视网膜血管进行分割

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The matched filter is an effective method for the detection of retinal vessels when combined with other processing techniques. This paper presents a segmentation method to improve the extraction of retinal vessels based on the matched filter. The method combines a morphological approach to enhance retinal vessels before applying the matched filter and a modified joint relative entropy (MJRE) thresholding method to segment the matched filter response. The morphological approach is designed to suppress irregular bright regions and noise while preserving the information of vessel edges, and to improve the contrast of vessels, especially thin ones. The joint relative entropy thresholding is modified to provide an optimal threshold value for segmenting the retinal vessel tree properly. The proposed method is tested on the DRIVE dataset, yielding an average accuracy, specificity and sensitivity of 0.9546, 0.9742 and 0.7527 respectively. Experimental results demonstrate that the proposed method achieved better performance than the state-of-the-art methods.
机译:当与其他处理技术结合使用时,匹配的过滤器是检测视网膜血管的有效方法。本文提出了一种基于匹配滤波器的分割方法,以改善视网膜血管的提取。该方法结合了在应用匹配滤波器之前增强视网膜血管的形态学方法和改进的联合相对熵(MJRE)阈值化方法以分割匹配滤波器响应的方法。形态学方法旨在抑制不规则的明亮区域和噪声,同时保留血管边缘的信息,并改善血管的对比度,尤其是较薄的血管。修改关节相对熵阈值以提供最佳阈值,以正确分割视网膜血管树。该方法在DRIVE数据集上进行了测试,平均准确度,特异性和灵敏度分别为0.9546、0.9742和0.7527。实验结果表明,与现有技术相比,该方法具有更好的性能。

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