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A Novel Ant-Based Multiple Cells Tracking Approach with Cardinality Estimation

机译:一种新的基于基数估计的基于蚂蚁的多细胞跟踪方法

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Cell migration is an important process in normal tissue, organ or entire organism development and disease. This paper proposes an ant algorithm based on cardinality estimation for clustered cells state and number estimator simultaneously. Cardinality prediction and updating model based on the existence probability of pheromone field are derived for effectively estimating the number of cells. In order to separate clusters cells, an ant work model based on the pheromone gradient information is developed to guide ants movement towards center of interested cells. Experiment results show that our algorithm could automatically track clustered cells in various scenarios, and, it is more accurate than other popular tracking methods.
机译:细胞迁移是正常组织,器官或整个生物体发育和疾病的重要过程。提出了一种基于基数估计的蚁群算法同时用于聚类小区状态估计和数量估计。推导了基于信息素场存在概率的基数预测和更新模型,以有效地估计细胞数。为了分离成簇的细胞,开发了一种基于信息素梯度信息的蚂蚁工作模型,以指导蚂蚁向感兴趣的细胞中心移动。实验结果表明,该算法可以在各种场景下自动跟踪聚类小区,比其他流行的跟踪方法更加准确。

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