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Human Dendritic Cells Segmentation Based on K-Means and Active Contour

机译:基于K-Means和Active Contour的人树枝状细胞分割

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Dendritic cells play a fundamental role in the immune system. The analysis of these cells in vitro is a new evaluation technique of the effects of food contaminants on the immune responses. This analysis that remains purely visual is a laborious and time-consuming process. An automatic analysis of dendritic cells is suggested to analyze their morphological features and behavior. It can serve as an assessment tool for dendritic cells image analysis to facilitate the evaluation of toxic impact. The suggested method will help biological experts to avoid subjective analysis and to save time. In this paper, we propose an automated approach for segmentation of dendritic cells that could assist pathologists in their evaluation. First, after a preprocessing step, we use k-means clustering and mathematical morphology to detect the location of cells in microscopic images. Second, a region-based Chan-Vese active contour model is applied to get boundaries of the detected cells. Finally, a post processing stage based on shape information is used to improve the results in case of over-segmentation or subsegmentation in order to select only regions of interest. A segmentation accuracy of 99.44% on a real dataset demonstrates the effectiveness of the proposed approach and its suitability for automated identification of dendritic cells.
机译:树突状细胞在免疫系统中起着基本作用。体外分析这些细胞是食品污染物对免疫反应影响的新评价技术。这种分析仍然纯粹视觉是一种费力且耗时的过程。建议分析树突细胞的自动分析,分析它们的形态特征和行为。它可以作为树突状细胞图像分析的评估工具,以便于评估毒性影响。建议的方法将帮助生物专家避免主观分析并节省时间。在本文中,我们提出了一种自动化方法,用于分割树突细胞,可以帮助病理学家评估。首先,在预处理步骤之后,我们使用K-Means聚类和数学形态来检测微观图像中细胞的位置。其次,施加基于区域的Chan-VESE活性轮廓模型以获得检测到的细胞的边界。最后,基于形状信息的后处理阶段用于改善过分分割或子分割的结果,以便仅选择感兴趣的区域。真实数据集的99.44%的分割精度展示了所提出的方法的有效性及其适合于自动鉴定树突细胞的适用性。

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