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Bayesian approach to multiple extended targets tracking with random hypersurface models

机译:利用随机超曲面模型跟踪多个扩展目标的贝叶斯方法

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摘要

A Bayesian approach to multiple moving extended targets tracking is proposed for estimating the shape approximation of the extended targets in addition to their kinematics. Within this approach, the extended target extensions are modelled with random hypersurface models, and a new variant of probabilistic multi-hypothesis tracking is used for modelling assignments of measurements to extended targets. Moreover, an approximate measurement update that arises directly from the analytical techniques of the variational Bayesian framework is derived to simultaneously estimate the posterior states iteratively including the shape and kinematics of each extended target. The performance of the proposed algorithm is demonstrated with simulated data.
机译:提出了一种用于多运动扩展目标跟踪的贝叶斯方法,以估计其运动学之外的扩展目标的形状近似。在这种方法中,使用随机超曲面模型对扩展目标扩展进行建模,并使用概率多假设跟踪的新变体对扩展目标的测量分配进行建模。此外,派生出直接来自变分贝叶斯框架分析技术的近似测量更新,以同时迭代地估计后状态,包括每个扩展目标的形状和运动学。仿真数据证明了该算法的性能。

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