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PCSeg: Color model driven probabilistic multiphase level set based tool for plasma cell segmentation in multiple myeloma

机译:PCSEG:多种骨髓瘤中血浆细胞分段的彩色模型驱动概率多相水平集基工具

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摘要

Plasma cell segmentation is the first stage of a computer assisted automated diagnostic tool for multiple myeloma (MM). Owing to large variability in biological cell types, a method for one cell type cannot be applied directly on the other cell types. In this paper, we present PCSeg Tool for plasma cell segmentation from microscopic medical images. These images were captured from bone marrow aspirate slides of patients with MM. PCSeg has a robust pipeline consisting of a pre-processing step, the proposed modified multiphase level set method followed by post-processing steps including the watershed and circular Hough transform to segment clusters of cells of interest and to remove unwanted cells. Our modified level set method utilizes prior information about the probability densities of regions of interest (ROIs) in the color spaces and provides a solution to the minimal-partition problem to segment ROIs in one of the level sets of a two-phase level set formulation. PCSeg tool is tested on a number of microscopic images and provides good segmentation results on single cells as well as efficient segmentation of plasma cell clusters.
机译:等离子体细胞分割是多个骨髓瘤(MM)的计算机辅助自动诊断工具的第一阶段。由于生物细胞类型的大变化,一种细胞类型的方法不能直接施加在其他细胞类型上。在本文中,我们向PCSeg工具呈现来自微观医学图像的血浆细胞分段。这些图像被MM患者的骨髓抽吸幻灯片捕获。 PCSeg具有由预处理步骤组成的强大管道,所提出的修改的多相水平设定方法,然后包括流域和圆形霍夫转换的后处理步骤,以对感兴趣的细胞的分段簇,并去除不需要的细胞。我们的修改级别集合方法利用了关于颜色空间中感兴趣区域(ROI)区域的概率密度的先前信息,并为两阶段级别配方的一个级别组中的一个级别划分问题提供了最小分区问题的解决方案。 PCSEG工具在许多微观图像上进行测试,并提供单个电池的良好分段结果以及等离子体细胞簇的有效分段。

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