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ENERGY MINIMIZATION METHODS FOR CELL MOTION CORRECTION AND INTRACELLULAR ANALYSIS IN LIVE-CELL FLUORESCENCE MICROSCOPY

机译:活细胞荧光显微镜细胞运动校正和细胞内分析的能量最小化方法

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The ultimate aim of many live-cell fluorescence microscopy imaging experiments is the quantitative analysis of the spatial structure and temporal behavior of intracellular objects. This requires finding the precise geometrical correspondence between the time frames for each individual cell and performing intracellular segmentation. In a previous paper we have developed a powerful multi-level-set based algorithm for automated cell segmentation and tracking of many cells in timelapse images. In this paper, we propose approaches to exploit the output of this algorithm for the subsequent tasks of cell motion correction and intracellular segmentation. Both tasks are formulated as energy minimization problems and are solved efficiently and effectively by distance-transform and graph-cut based algorithms. The potential of the proposed approaches for intracellular analysis is demonstrated by successful experiments on biological image data showing PCNA-foci and nucleoli in HeLa cells.
机译:许多活细胞荧光显微镜成像实验的最终目的是对细胞内物体的空间结构和时间行为的定量分析。这需要在每个单个细胞的时间框架和执行细胞内分割之间找到精确的几何对应关系。在前面的论文中,我们开发了一种强大的基于多级别的基于多级集合算法,以及游戏中时光倒移图像中许多小区的跟踪。在本文中,我们提出了利用该算法输出的方法,以便随后的细胞运动校正和细胞内分割任务。这两个任务都被制定为能量最小化问题,并通过距离变换和基于图形切割的算法有效且有效地解决。通过成功的生物学图像数据实验证明了拟议的细胞内分析方法的潜力,显示了HeLa细胞中的PCNA-Foci和Nucleoli的生物学图像数据。

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