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Coupled Minimum-Cost Flow Cell Tracking

机译:耦合最小成本流通池跟踪

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摘要

A growing number of screening applications require the automated monitoring of cell populations in a high-throughput, high-content environment. These applications depend on accurate cell tracking of individual cells that display various behaviors including mitosis, occlusion, rapid movement, and entering and leaving the field of view. We present a tracking approach that explicitly models each of these behaviors and represents the association costs in a graph-theoretic minimum-cost flow framework. We show how to extend the minimum-cost flow algorithm to account for mitosis and merging events by coupling particular edges. We applied the algorithm to nearly 6,000 images of 400,000 cells representing 32,000 tracks taken from five separate datasets, each composed of multiple wells.Our algorithm is able to track cells and detect different cell behaviors with an accuracy of over 99%.
机译:越来越多的筛选应用要求在高通量,高含量的环境中自动监控细胞数量。这些应用取决于单个细胞的精确细胞跟踪,这些细胞显示出各种行为,包括有丝分裂,闭塞,快速移动以及进入和离开视野。我们提供了一种跟踪方法,可以对每种行为进行显式建模,并在图论最小成本流框架中表示关联成本。我们展示了如何扩展最小成本流算法以通过耦合特定边缘来解决有丝分裂和合并事件。我们将该算法应用于40个细胞的近6,000张图像,这些图像代表从五个单独的数据集中采集的32,000条轨迹,每个数据集由多个孔组成,我们的算法能够追踪细胞并检测不同的细胞行为,准确率超过99%。

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