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White blood cell nuclei segmentation using level set methods and geometric active contours

机译:使用水平集方法和几何活动轮廓线进行白细胞核分割

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摘要

A new method for segmenting white blood cells nuclei in microscopic images is presented. Challenges to accurate segmentation include intra-class variation of the nuclei cell boundaries, non-uniform illumination, and changes in the cell topology due to its orientation and stage of maturity. In this research, level set methods and geometric active contours are used to segment the nucleus of white blood cells from the cytoplasm and the cell wall. Level set methods use morphological operations to estimate an initial cell boundary and are fully automated. Geometric active contours are less computationally complex and adapt better to the curve topology of the cell boundary than parametric active contours, which have been previously used for white blood cell segmentation. Segmentation performance is compared with other segmentation methods using the Berkeley benchmark database and the proposed method is shown to be superior using various indices.
机译:提出了一种在显微图像中分割白细胞核的新方法。精确分割的挑战包括细胞核边界的类内变化,照射不均匀以及由于其方向和成熟阶段而引起的细胞拓扑变化。在这项研究中,使用水平集方法和几何活动轮廓从细胞质和细胞壁中分割出白细胞的核。水平集方法使用形态学运算来估计初始细胞边界,并且是完全自动化的。几何活动轮廓的计算复杂度较小,并且比参数活动轮廓(以前已用于白细胞分割)更适合细胞边界的曲线拓扑。使用Berkeley基准数据库将细分性能与其他细分方法进行了比较,并且使用各种指标显示出该方法的优越性。

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