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首页> 外文期刊>Journal of Advances in Information Fusion >Multiscan Implementation of the Trajectory Poisson Multi-Bernoulli Mixture Filter
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Multiscan Implementation of the Trajectory Poisson Multi-Bernoulli Mixture Filter

机译:Multican实施轨迹泊松多Bernoulli混合滤波器

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摘要

The Poisson multi-Bernoulli mixture (PMBM) and the multiBernoulli mixture (MBM) are two multitarget distributions for which closed-form filtering recursions exist. The PMBM has a Poisson birth process, whereas the MBM has a multi-Bernoulli birth process. This paper considers a recently developed formulation of the multitarget tracking problem using a random finite set of trajectories, through which the track continuity is explicitly established. A multiscan trajectory PMBM filter and a multiscan trajectory MBM filter, with the ability to correct past data association decisions to improve current decisions, are presented. In addition, a multiscan trajectory MBM01 filter, in which the existence probabilities of all Bernoulli components are either 0 or 1, is presented. This paper proposes an efficient implementation that performs track-oriented N-scan pruning to limit computational complexity, and uses dual decomposition to solve the involved multiframe assignment problem. The performance of the presented multitarget trackers, applied with an efficient fixed-lag smoothing method, is evaluated in a simulation study.
机译:泊松多Bernoulli混合物(PMBM)和Multibernoulli混合物(MBM)是两个多价分布,其中存在闭合滤波累加率。 PMBM具有泊松出生过程,而MBM具有多伯努利的诞生过程。本文考虑了最近开发了使用随机有限的轨迹的多标准跟踪问题的制定,通过该轨迹明确建立了轨道连续性。呈现了多款轨迹PMBM过滤器和多兴趣轨迹MBM过滤器,提供了纠正过去数据关联决策以改善当前决策的能力。此外,还有一个多兴奋的轨迹MBM01滤波器,其中提出了所有Bernoulli组件的存在概率为0或1。本文提出了一种有效的实现,实现了以跟踪为导向的N扫描修剪,以限制计算复杂性,并使用双分解来解决涉及的多帧分配问题。在仿真研究中评估了应用于有效的固定滞后平滑方法的所提出的多元跟踪器的性能。

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