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A tracker-aware detector threshold optimization formulation for tracking maneuvering targets in clutter

机译:用于在杂波中跟踪机动目标的跟踪器感知探测器阈值优化公式

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摘要

In this paper, we consider a tracker-aware radar detector threshold optimization formulation for tracking maneuvering targets in clutter. The formulation results in an online method with improved transient performance. In our earlier works, the problem was considered in the context of the probabilistic data association filter (PDAF) for non-maneuvering targets. In the present study, we extend the ideas in the PDAF formulation to the multiple model (MM) filtering structures which use PDAFs as modules. Although our results are general for the MM filters, our simulation experiments apply the proposed solution in particular for the interacting multiple model PDAF (IMM-PDAF) case. It is demonstrated that the suggested formulation and the resulting optimization method exhibits notable improvement in transient performance in the form of track loss immunity. We believe the method is promising as a detector-tracker jointly-optimal filter for the IMM-PDAF structure for tracking maneuvering targets in clutter.
机译:在本文中,我们考虑了一种用于跟踪杂波中机动目标的跟踪器感知雷达探测器阈值优化公式。该配方导致在线方法具有改善的瞬态性能。在我们较早的工作中,在非机动目标的概率数据关联过滤器(PDAF)的背景下考虑了该问题。在本研究中,我们将PDAF公式中的思想扩展到使用PDAF作为模块的多模型(MM)过滤结构。尽管我们的结果对于MM滤波器是通用的,但我们的仿真实验特别针对交互的多模型PDAF(IMM-PDAF)情况应用了所提出的解决方案。事实证明,建议的配方和所得的优化方法以抗磁迹损失的形式在瞬态性能方面表现出显着改善。我们认为该方法有望作为一种用于IMM-PDAF结构的检测器-跟踪器联合最优滤波器,用于跟踪杂波中的机动目标。

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