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White Blood Cell Detection and Segmentation from Fluorescent Images with an Improved Algorithm using K-means Clustering and Morphological Operators

机译:利用K-means聚类和形态运算符的改进算法从荧光图像中检测白细胞和分割

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Cell detection is the most basic and essential step for the analysis of cells. There are enormous types of blood disorders that can be identified by analyzing blood cells. There are several approaches used for this purpose. However, every method has their pros and cons. Improvement of segmentation of cells can increase the performance of cell classification and cell counting in later stages. The main concern of our paper is to segment the white blood cells from fluorescent images using K-means Clustering and Morphological Operators. We detect the cluster with WBC and refine the result depending on the presence of nucleus in the segmented cells. Non-WBCs are the cells without a nucleus and smaller in size. Presence of nucleus in a cell can be an indicator of WBC. We segment nucleus in cells and calculate the average area of the nucleus. We then refine the segmentation result based on the presence and size of the nucleus. Our analysis on WBCs demonstrates a comparison with ground truth values. We achieved our result with sensitivity of 96.4932% and precision of 9S.3584%. Our algorithm and analysis of results outperform state of the art method in several aspects.
机译:细胞检测是细胞分析的最基本和必不可少的步骤。通过分析血细胞可以识别出多种类型的血液疾病。有几种方法用于此目的。但是,每种方法都有其优缺点。细胞分割的改善可以在以后的阶段提高细胞分类和细胞计数的性能。我们论文的主要关注点是使用K均值聚类和形态运算符从荧光图像中分割白细胞。我们用WBC检测簇,并根据分段细胞中细胞核的存在来优化结果。非WBC是没有核且尺寸较小的细胞。细胞核的存在可能是白细胞的指标。我们在细胞中分割细胞核,并计算细胞核的平均面积。然后,我们根据原子核的存在和大小来细化分割结果。我们对白细胞的分析证明了与基本真值的比较。我们以96.4932%的灵敏度和9S.3584%的精度实现了我们的结果。我们的算法和结果分析在几个方面都优于最新方法。

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