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Tracking Tetrahymena pyriformis cells using decision trees

机译:使用决策树跟踪梨形四膜虫细胞

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Matching cells over time has long been the most difficult step in cell tracking. In this paper, we approach this problem by recasting it as a classification problem. We construct a feature set for each cell, and compute a feature difference vector between a cell in the current frame and a cell in a previous frame. Then we determine whether the two cells represent the same cell over time by training decision trees as our binary classifiers. With the output of decision trees, we are able to formulate an assignment problem for our cell association task and solve it using a modified version of the Hungarian algorithm.
机译:长期以来,匹配细胞一直是细胞追踪中最困难的步骤。在本文中,我们通过将其重铸为分类问题来解决此问题。我们为每个像元构造一个特征集,并计算当前帧中的像元与前一帧中的像元之间的特征差向量。然后,通过训练决策树作为我们的二元分类器,确定随时间推移这两个单元格是否代表相同的单元格。利用决策树的输出,我们能够为我们的单元关联任务制定一个分配问题,并使用匈牙利算法的修改版来解决。

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