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A Second-Order PHD Filter With Mean and Variance in Target Number

机译:目标数均值和方差的二阶PHD滤波器

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摘要

The Probability Hypothesis Density (PHD) and Cardinalized PHD (CPHD) filters are popular solutions to the multitarget tracking problem due to their low complexity and ability to estimate the number and states of targets in cluttered environments. The PHD filter propagates the first-order moment (i.e. mean) of the number of targets while the CPHD propagates the cardinality distribution in the number of targets, albeit for a greater computational cost. Introducing the Panjer point process, this paper proposes a Second-Order PHD (SO-PHD) filter, propagating the second-order moment (i.e., variance) of the number of targets alongside its mean. The resulting algorithm is more versatile in the modeling choices than the PHD filter, and its computational cost is significantly lower compared to the CPHD filter. This paper compares the three filters in statistical simulations which demonstrate that the proposed filter reacts more quickly to changes in the number of targets, i.e., target births and target deaths, than the CPHD filter. In addition, a new statistic for multiobject filters is introduced in order to study the correlation between the estimated number of targets in different regions of the state space, and propose a quantitative analysis of the spooky effect for the three filters.
机译:概率假设密度(PHD)和基数化PHD(CPHD)过滤器由于其低复杂度和在混乱环境中估计目标数量和状态的能力而成为多目标跟踪问题的流行解决方案。 PHD滤波器传播目标数量的一阶矩(即均值),而CPHD传播目标数量中的基数分布,尽管计算成本更高。在介绍Panjer点过程时,本文提出了一种二阶PHD(SO-PHD)滤波器,用于传播目标数量的二阶矩(即方差)及其平均值。所得算法在建模选择方面比PHD滤波器更具通用性,并且与CPHD滤波器相比,其计算成本大大降低。本文在统计模拟中比较了这三个过滤器,这表明与CPHD过滤器相比,所提出的过滤器对目标数量(即目标出生和目标死亡)变化的反应更快。此外,为了研究状态空间不同区域中目标估计数量之间的相关性,引入了一种用于多对象过滤器的新统计量,并对这三个过滤器的怪异效应提出了定量分析。

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