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White Blood Cell Segmentation by Color-Space-Based K-Means Clustering

机译:基于颜色空间的K均值聚类的白细胞分割

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摘要

White blood cell (WBC) segmentation, which is important for cytometry, is a challenging issue because of the morphological diversity of WBCs and the complex and uncertain background of blood smear images. This paper proposes a novel method for the nucleus and cytoplasm segmentation of WBCs for cytometry. A color adjustment step was also introduced before segmentation. Color space decomposition and k-means clustering were combined for segmentation. A database including 300 microscopic blood smear images were used to evaluate the performance of our method. The proposed segmentation method achieves 95.7% and 91.3% overall accuracy for nucleus segmentation and cytoplasm segmentation, respectively. Experimental results demonstrate that the proposed method can segment WBCs effectively with high accuracy.
机译:白细胞(WBC)的分割对于细胞计数非常重要,由于WBC的形态多样性以及血液涂片图像的背景复杂且不确定,因此是一个具有挑战性的问题。本文提出了一种用于白细胞计数的细胞核和细胞质分割的新方法。在分割之前还引入了颜色调整步骤。色彩空间分解和k-均值聚类相结合进行分割。一个包含300个显微血液涂片图像的数据库用于评估我们方法的性能。提出的分割方法分别实现了95.7%和91.3%的整体准确度,用于细胞核分割和细胞质分割。实验结果表明,该方法能够有效,准确地分割白细胞。

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