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Tracking multiple extended targets with multi-Bernoulli filter

机译:使用多伯努利滤波器跟踪多个扩展目标

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This study presents an improved multi-target multi-Bernoulli (IMeMBer) gamma Gaussian inverse Wishart (GGIW) filter for tracking multiple extended targets (ETs). The main contribution of this study consists of three parts, first, a novel method is proposed to obtain the unbiased cardinality estimation of multiple targets using the multi-Bernoulli recursion. As a variation of the existing cardinality-balanced MeMBer (CBMeMBer) filter, the presented filter is called the improved MeMBer filter, which overcomes the high detection probability limitation of the CBMeMBer filter. Second, based on the mathematical derivation, the IMeMBer filter is expanded to accommodate the characteristics of the ETs of which each target generates more than one measurement at each time step, and the GGIW method is used for its implementation. The resulting filter simultaneously provides the kinematic, extended and measurement rate states of ETs with an unknown and time-varying number. Third, the simulation results show that the presented filter achieves a considerable performance at the cost of less time, compared to the labelled multi-Bernoulli GGIW filter.
机译:这项研究提出了一种改进的多目标多伯努利(IMeMBer)伽马高斯逆维沙特(GGIW)滤波器,用于跟踪多个扩展目标(ET)。这项研究的主要贡献包括三个部分,首先,提出了一种使用多伯努利递归获得多目标无偏基数估计的新方法。作为现有基数平衡MeMBer(CBMeMBer)过滤器的一种变体,提出的过滤器称为改进的MeMBer过滤器,它克服了CBMeMBer过滤器的高检测概率限制。其次,基于数学推导,对IMeMBer滤波器进行扩展,以适应每个目标在每个时间步生成一个以上测量值的ET的特性,并使用GGIW方法实现它。生成的滤波器同时为ET提供了运动数,扩展数和测量速率状态,其数量未知且随时间变化。第三,仿真结果表明,与标记的多伯努利GGIW滤波器相比,所提出的滤波器以更少的时间成本实现了可观的性能。

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