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Cell tracking using particle filters with implicit convex shape model in 4D confocal microscopy images

机译:在4D共聚焦显微镜图像中使用具有隐式凸形模型的粒子过滤器的单元跟踪

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Bayesian frameworks are commonly used in tracking algorithms. An important example is the particle filter, where a stochastic motion model describes the evolution of the state, and the observation model relates the noisy measurements to the state. Particle filters have been used to track the lineage of cells. Propagating the shape model of the cell through the particle filter is beneficial for tracking. We approximate arbitrary shapes of cells with a novel implicit convex function. The importance sampling step of the particle filter is defined using the cost associated with fitting our implicit convex shape model to the observations. Our technique is capable of tracking the lineage of cells for nonmitotic stages. We validate our algorithm by tracking the lineage of retinal and lens cells in zebrafish embryos.
机译:贝叶斯框架通常用于跟踪算法。 一个重要的例子是粒子滤波器,其中随机运动模型描述了状态的演变,观察模型将噪声测量涉及到状态。 已经使用颗粒过滤器来跟踪细胞的谱系。 通过粒子过滤器传播细胞的形状模型是有益的跟踪。 我们用新颖的隐式凸起函数近似近似形状的细胞。 粒子滤波器的重要性采样步骤使用与将隐式凸形模型配合到观察的成本来定义。 我们的技术能够跟踪用于非型分子阶段的细胞谱系。 通过跟踪斑马鱼胚胎中视网膜和镜片细胞的谱系来验证我们的算法。

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