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首页> 外文期刊>Computational and mathematical methods in medicine >Segmentation and Tracking of Lymphocytes Based on Modified Active Contour Models in Phase Contrast Microscopy Images
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Segmentation and Tracking of Lymphocytes Based on Modified Active Contour Models in Phase Contrast Microscopy Images

机译:基于变性显微镜图像修饰活性轮廓模型的淋巴细胞分割和跟踪

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摘要

The paper proposes an improved active contour model for segmenting and tracking accurate boundaries of the single lymphocyte in phase-contrast microscopic images. Active contour models have been widely used in object segmentation and tracking. However, current external-force-inspired methods are weak at handling low-contrast edges and suffer from initialization sensitivity. In order to segment low-contrast boundaries, we combine the region information of the object, extracted by morphology gray-scale reconstruction, and the edge information, extracted by the Laplacian of Gaussian filter, to obtain an improved feature map to compute the external force field for the evolution of active contours. To alleviate initial location sensitivity, we set the initial contour close to the real boundaries by performing morphological image processing. The proposed method was tested on live lymphocyte images acquired through the phase-contrast microscope from the blood samples of mice, and comparative experimental results showed the advantages of the proposed method in terms of the accuracy and the speed. Tracking experiments showed that the proposed method can accurately segment and track lymphocyte boundaries in microscopic images over time even in the presence of low-contrast edges, which will provide a good prerequisite for the quantitative analysis of lymphocyte morphology and motility.
机译:本文提出了一种改进的激活轮廓模型,用于在相位对比微观图像中单淋巴​​细胞的分段和跟踪单淋巴细胞的准确边界。主动轮廓模型已广泛用于对象分割和跟踪。然而,当前的外部力激发方法在处理低对比度边缘并且遭受初始化灵敏度的弱点。为了对低对比度边界进行分段,我们将物体的区域信息组合,由形态学灰度重构提取,以及由高斯滤波器的拉普拉斯提取的边缘信息,以获得改进的特征图来计算外力用于活跃轮廓的演变的领域。为了减轻初始定位灵敏度,我们通过执行形态图像处理将近距离界限的初始轮廓设置。所提出的方法在通过小鼠血液样本通过相位造影显微镜获取的活淋巴细胞图像上测试,比较实验结果在准确性和速度方面表现出提出的方法的优点。跟踪实验表明,即使在低对比度边缘存在下,所提出的方法也可以在微观图像中准确地分段和跟踪微观图像中的淋巴细胞边界,这将为淋巴细胞形态和运动的定量分析提供良好的先决条件。

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