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Estimation performance and resource savings: Tradeoffs in multiple radars systems

机译:估计性能和资源节省:多个雷达系统之间的权衡

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In widely distributed multiple radar systems, employing larger numbers of transmit and receive antennas supports better target parameter estimation. Increased dimensions results in higher communication needs, synchronization overhead, and processing complexity. In our previous studies, resource-aware operational schemes have been introduced for a given localization estimation mean-square error (MSE) threshold requirement. Power allocation scheme that minimizes the total transmitted power for a given MSE goal has been derived. As most of the transmitted power was allocated to a few of the available transmit antennas, a subset selection scheme has been proposed to identifying a minimal set of transmit and receive antennas that offer the required accuracy performance. The study indicates that some transmit and receive antenna pairs contribute more than others to the localization performance. Based on this, a different approach to resource-aware operation is proposed in this paper. The objective is to identify an antenna subset that offers an optimal tradeoff between performance loss in term of localization MSE and the active subset size. By setting an acceptable loss threshold, relative to the best performances achievable with all antennas active, joint optimization of subset size and power allocation is performed to maximize the trade-off gains. A mixed optimization problem is defined, based on the Cramer-Rao bound (CRB), and fast approximation algorithm is proposed, maximizing the trace of the Fisher information matrix (FIM) while minimizing the number of active antennas. The closed-form expression of the CRB offers additional understanding of the relation between the geometric layout of the transmit and the receive antennas with respect to the target and their relative contribution to the performance.
机译:在分布广泛的多雷达系统中,采用大量发送和接收天线可支持更好的目标参数估计。尺寸增加导致更高的通信需求,同步开销和处理复杂性。在我们以前的研究中,已经针对给定的本地化估计均方误差(MSE)阈值要求引入了资源感知操作方案。已经得出了针对给定的MSE目标使总发射功率最小的功率分配方案。由于大部分发射功率分配给了一些可用的发射天线,因此提出了一种子集选择方案来识别提供所需精度性能的最小一组发射和接收天线。研究表明,某些发射和接收天线对对定位性能的贡献要大于其他对。基于此,本文提出了一种不同的资源感知操作方法。目的是确定一种天线子集,该子集在就定位MSE而言的性能损失与有效子集大小之间提供最佳折衷。通过设置一个可接受的损耗阈值(相对于所有天线均处于活动状态时可获得的最佳性能),可以对子集大小和功率分配进行联合优化,以最大程度地权衡取舍增益。定义了基于Cramer-Rao界(CRB)的混合优化问题,并提出了一种快速逼近算法,该算法使Fisher信息矩阵(FIM)的迹线最大化,同时使活动天线的数量最少。 CRB的闭式表达提供了对发射天线和接收天线相对于目标的几何布局之间的关系及其对性能的相对贡献的额外理解。

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