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Power Allocation Strategies for Target Localization in Distributed Multiple-Radar Architectures

机译:分布式多雷达体系结构中用于目标定位的电源分配策略

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Widely distributed multiple radar architectures offer parameter estimation improvement for target localization. For a large number of radars, the achievable localization minimum estimation mean-square error (MSE), with full resource allocation, may extend beyond the predetermined system performance goals. In this paper, performance driven resource allocation schemes for multiple radar systems are proposed. All available antennas are used in the localization process. For a predefined estimation MSE threshold, the total transmitted energy is minimized such that the performance objective is met, while keeping the transmitted power at each station within an acceptable range. For a given total power budget, the attainable localization MSE is minimized by optimizing power allocation among the transmit radars. The Cramer-Rao bound (CRB) is used as an optimization metric for the estimation MSE. The resulting nonconvex optimization problems are solved through relaxation and domain decomposition methods, supporting both central processing at the fusion center and distributed processing. It is shown that uniform or equal power allocation is not necessarily optimal and that the proposed power allocation algorithms result in local optima that provide either better localization MSE for the same power budget, or require less power to establish the same performance in terms of estimation MSE. A physical interpretation of these conclusions is offered.
机译:广泛分布的多种雷达体系结构为目标定位提供了参数估计改进。对于大量雷达,具有完整资源分配的可达到的定位最小估计均方误差(MSE)可能会超出预定的系统性能目标。本文提出了性能驱动的多雷达系统资源分配方案。在定位过程中将使用所有可用的天线。对于预定义的估计MSE阈值,总发射能量被最小化,从而满足性能目标,同时将每个站点的发射功率保持在可接受的范围内。对于给定的总功率预算,可通过优化发射雷达之间的功率分配,将可达到的本地化MSE降至最低。 Cramer-Rao界限(CRB)用作估计MSE的优化指标。通过松弛和域分解方法解决了由此产生的非凸优化问题,同时支持融合中心的中央处理和分布式处理。结果表明,均匀或相等的功率分配不一定是最优的,并且所提出的功率分配算法会导致局部最优,该局部最优要么为相同的功率预算提供更好的本地化MSE,要么需要更少的功率以建立估计的MSE相同的性能。这些结论的物理解释。

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