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A novel algorithm of dorsal hand vein image segmentation by integrating matched filter and local binary fitting level set model

机译:结合匹配滤波器和局部二值拟合水平集模型的手背静脉图像分割新算法

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The performance of dorsal hand vein image segmentation is limited due to low contrast and intensity inhomogeneity. In this paper, a novel method is proposed by integrating matched filter and local binary fitting level set model with the aim of overcoming the fault or incomplete segmentation in dorsal hand vein image. Following is the main work and contributions of this paper. First, 12-direction matched filters are adopted to enhance the vein patterns. Then, the local binary fitting level set model is introduced to segment the image enhanced by the first step. Third, a spurious vascular removal solution is presented to reduce the interference of metacarpal bones. 380 dorsal hand vein images collected from 69 subjects are used to evaluate the performance of the proposed algorithm. Compared with 5 existing vein segmentation methods, the proposed method achieves superior accuracy and shows great potential in image segmentation.
机译:由于低对比度和强度不均匀性,手背静脉图像分割的性能受到限制。为了克服手背静脉图像分割中的缺陷或不完全分割问题,提出了一种将匹配滤波器和局部二值拟合水平集模型相结合的方法。以下是本文的主要工作和贡献。首先,采用12个方向匹配滤波器来增强静脉模式。然后,引入局部二值拟合水平集模型对第一步增强后的图像进行分割。第三,提出了一种伪血管切除方案,以减少掌骨的干扰。从69名受试者采集380张手背静脉图像,对该算法的性能进行评估。与现有的5种静脉分割方法相比,该方法具有更高的准确率,在图像分割中显示出巨大的潜力。

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