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Maneuvering Target Tracking in Clutter Using VSIMM-PDA

机译:使用VSIMM-PDA操纵杂波中的目标

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Variable Structure Multiple Model (VSMM) estimation generalizes Multiple Model (MM) estimation by assuming that the set of models used for MM estimation is time varying. By using VSMM estimation, a large model set which may cover all possible target maneuvers can be used without significant increase of computational load, while maintaining a reasonable estimation accuracy. Various implementable VSMM algorithms, like Model Group Switching (MGS), Likely Model Set (LMS) and Minimal Sub-Model-Set Switching (MSMSS) using the Interacting Multiple Model (IMM) algorithm with a sub-model-set adaptation logic have appeared in the recent literature. However, the use of these algorithms for tracking maneuvering target in clutter has not been explored. In presence of clutter, one need to use data association technique to differentiate target originated measurement from clutter. The probabilistic data association (PDA) has been popularly adopted to many algorithms for tracking in clutter. In this paper, we integrate PDA technique with MSMSS and propose a VSIMM-PDA algorithm for maneuvering target tracking in clutter. A new gating technique to account for potential model errors is used. A numeric example via multiple Monte Carlo runs, which compares the performance of the new algorithm to a standard IMM-PDA in terms of Root Mean Squared error (RMS) and percentage of track loss, is presented.
机译:可变结构多模型(VSMM)估计通过假设用于MM估计的模型集随时间变化来概括多模型(MM)估计。通过使用VSMM估计,可以使用可能覆盖所有可能的目标操作的大型模型集,而不会显着增加计算负荷,同时保持合理的估计精度。出现了各种可实现的VSMM算法,例如模型组切换(MGS),可能的模型集(LMS)和最小化子模型集切换(MSMSS),该模型使用具有子模型集自适应逻辑的交互多模型(IMM)算法在最近的文献中。但是,尚未探索使用这些算法来跟踪杂波中的机动目标。在混乱的情况下,需要使用数据关联技术来区分目标源测量和混乱。概率数据协会(PDA)已被许多跟踪杂波的算法广泛采用。在本文中,我们将PDA技术与MSMSS集成在一起,并提出了一种VSIMM-PDA算法,用于在杂波中进行目标跟踪。使用了一种新的门控技术来解决潜在的模型误差。给出了一个通过多次蒙特卡洛运行的数值示例,该示例在均方根误差(RMS)和磁迹损耗百分比方面将新算法的性能与标准IMM-PDA进行了比较。

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