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A novel approach to automated cell counting for studying human corneal epithelial cells

机译:一种研究人体角膜上皮细胞的自动细胞计数的新方法

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A novel automated cell counting technique for cell sample images used to study the side-effects of lens cleaning solutions on human corneal epithelial cells is developed. The proposed multi-step approach integrates non-maximum suppression, seeded region growing, connected component analysis, and adaptive thresholding to produce segmentation and classification results that are robust to background illumination variation and clustering of cells. The proposed algorithm is computationally efficient, and experimental results show that the average detection rate of nucleated cells is greater than 90% with the proposed technique as opposed to the state-of-the-art level set method which gives an accuracy of less than 65%.
机译:开发了一种用于研究人角膜上皮细胞透镜清洁溶液侧效侧效应的细胞样本图像的新型自动细胞计数技术。所提出的多步骤方法集成了非最大抑制,种子区域生长,连接的分量分析和自适应阈值,以产生对背景照明变化和细胞聚类具有鲁棒的分段和分类结果。所提出的算法是计算效率的,实验结果表明,核细胞的平均检测率大于90%,所提出的技术与最先进的水平集合方法相比,该方法提供小于65的精度%。

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