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Joint node selection and power allocation for multitarget tracking in decentralized radar networks

机译:分布式雷达网络中多目标跟踪的联合节点选择和功率分配

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Networked radar systems have shown significant advances in target tracking. Reasonable power allocation strategy can sufficiently utilize the limited power resources, hence leading to the improvement of tracking performance. However, towards the existing power allocation strategies, the system configuration is only restricted to centralized architectures. Besides, practical communication requirements and system robustness have not been considered. To tackle these problems, we propose a joint selection and power allocation (JSPA) strategy for target tracking in decentralized radar networks. The optimal fusion is presented to obtain the global posterior estimates in terms of the local filtering densities. Then the corresponding weights for fusion estimation can be updated according to distributed particle filter (DPF). Finally, the decentralized posterior Cramér-Rao lower bound (PCRLB) is derived, and consequently, employed as an optimization metric for JSPA strategy. We also present an effective method to solve it. Numerical results demonstrate the superior performance of the proposed strategy and method.
机译:网络雷达系统在目标跟踪方面已显示出重大进展。合理的功率分配策略可以充分利用有限的功率资源,从而提高跟踪性能。但是,对于现有的功率分配策略,系统配置仅限于集中式体系结构。此外,还没有考虑实际的通信要求和系统的鲁棒性。为了解决这些问题,我们提出了一种联合选择和功率分配(JSPA)策略,用于分散雷达网络中的目标跟踪。提出了最佳融合以根据局部滤波密度获得全局后验估计。然后,可以根据分布式粒子滤波器(DPF)更新用于融合估计的相应权重。最终,得出了分散的后Cramér-Rao下界(PCRLB),因此将其用作JSPA策略的优化指标。我们还提出了解决该问题的有效方法。数值结果证明了所提出的策略和方法的优越性能。

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