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A Novel Multiobject Tracking Approach in the Presence of Collision and Division

机译:在存在碰撞和分割时的一种新型多功能跟踪方法

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摘要

This paper aims to develop a general framework for accurately tracking and quantitatively characterizing multiple cells (objects) when collision and division between cells arise. Through introducing three types of interaction events among cells, namely, independence, collision, and division, the corresponding dynamic models are defined and an augmented interacting multiple model particle filter tracking algorithm is first proposed for spatially adjacent cells with varying size. In addition, to reduce the ambiguity of correspondence between frames, both the estimated cell dynamic parameters and cell size are further utilized to identify cells of interest. The experiments have been conducted on two real cell image sequences characterized with cells collision, division, or number variation, and the resulting dynamic parameters such as instant velocity, turn rate were obtained and analyzed.
机译:本文旨在开发一般框架,用于准确地跟踪和定量表征多个细胞(物体)时的碰撞和分割。通过在细胞中引入三种类型的相互作用事件,即独立性,碰撞和分割,定义了相应的动态模型,并且首先提出增强的交互多模型粒子滤波器跟踪算法,用于具有不同尺寸的空间相邻的电池。另外,为了减少帧之间的对应的模糊性,还进一步利用估计的小区动态参数和小区大小来识别感兴趣的小区。实验已经在具有细胞碰撞,分割或数变型的两个真实细胞图像序列上进行,获得并分析了所得的动态参数,例如瞬间速度,并分析转弯率。

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