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DETERMINATION OF MITOTIC DELAYS IN 3D FLUORESCENCE MICROSCOPY IMAGES OF HUMAN CELLS USING AN ERROR-CORRECTING FINITE STATE MACHINE

机译:用误差校正有限状态机确定人细胞的3D荧光显微图像中的丝裂延迟

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In high-throughput cell phenotype screens large amounts of image data are acquired. The evaluation of these microscopy images constitutes a bottleneck and motivates the development of automated image analysis methods. Here we introduce a computational scheme to process 3D multi-cell image sequences as they are produced in large-scale RNAi experiments. We describe an approach to automatically segment, track, and classify cell nuclei into seven different mitotic phases. In particular, we present an algorithm based on a finite state machine to check the consistency of the resulting sequence of mitotic phases and to correct classification errors. Our approach enables automated determination of the duration of the single phases and thus the identification of cell cultures with delayed mitotic progression.
机译:在高通量细胞表型筛选中,获取了大量图像数据。这些显微镜图像的评估构成了瓶颈,并推动了自动图像分析方法的发展。在这里,我们介绍一种计算方案来处理3D多细胞图像序列,因为它们是在大规模RNAi实验中产生的。我们描述了一种将细胞核自动分段,跟踪和分类为七个不同有丝分裂期的方法。特别是,我们提出了一种基于有限状态机的算法,以检查所得的有丝分裂期序列的一致性并纠正分类错误。我们的方法能够自动确定单相的持续时间,从而鉴定出有丝分裂进程延迟的细胞培养物。

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