Multiple Intelligent Reflecting Surfaces Collaborative Wireless Localization System

IF 10.7 1区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Wireless Communications Pub Date : 2024-11-07 DOI:10.1109/TWC.2024.3488822
Ziheng Zhang;Wen Chen;Qingqing Wu;Zhendong Li;Xusheng Zhu;Jingfeng Chen;Nan Cheng
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Abstract

This paper studies a multiple intelligent reflecting surfaces (IRSs) collaborative localization system where multiple semi-passive IRSs are deployed in the network to locate one or more targets based on time-of-arrival. It is assumed that each semi-passive IRS is equipped with reflective elements and sensors, which are used to establish the line-of-sight links from the base station (BS) to multiple targets and process echo signals, respectively. Based on the above model, we derive the Fisher information matrix of the echo signal with respect to the time delay. By employing the chain rule and exploiting the geometric relationship between time delay and position, the Cramér-Rao bound (CRB) for estimating the target’s Cartesian coordinate position is derived. Then, we propose a two-stage algorithmic framework to minimize CRB in single- and multi-target localization systems by joint optimizing active beamforming at BS, passive beamforming at multiple IRSs and IRS selection. For the single-target case, we derive the optimal closed-form solution for multiple IRSs coefficients design and propose a low-complexity algorithm based on alternating direction method of multipliers to obtain the optimal solution for active beaming design. For the multi-target case, alternating optimization is used to transform the original problem into two subproblems where semi-definite relaxation and successive convex approximation are applied to tackle the quadraticity and indefiniteness in the CRB expression, respectively. Finally, numerical simulation results validate the effectiveness of the proposed algorithm for multiple IRSs collaborative localization system compared to other benchmark schemes as well as the significant performance gains.
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多重智能反射面协同无线定位系统
本文研究了一种多智能反射面协同定位系统,该系统在网络中部署多个半被动反射面,根据到达时间对一个或多个目标进行定位。假设每个半被动IRS都配备有反射元件和传感器,分别用于建立基站与多个目标之间的视距链路,并处理回波信号。在此基础上,导出了回波信号关于时延的费雪信息矩阵。利用链式法则,利用时滞与位置的几何关系,导出了估计目标笛卡尔坐标位置的cram - rao界(CRB)。然后,我们提出了一个两阶段的算法框架,通过联合优化主频波束形成、多红外波束形成和红外波束选择来最小化单目标和多目标定位系统中的CRB。针对单目标情况,推导了多irs系数设计的最优封闭解,并提出了一种基于乘法器交替方向法的低复杂度算法,以获得主动波束设计的最优解。针对多目标情况,采用交替优化方法将原问题转化为两个子问题,分别采用半定松弛法和逐次凸逼近法解决CRB表达式的二次性和不确定性问题。最后,通过数值仿真验证了该算法在多irs协同定位系统中的有效性,并与其他基准方案进行了比较,取得了显著的性能提升。
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来源期刊
CiteScore
18.60
自引率
10.60%
发文量
708
审稿时长
5.6 months
期刊介绍: The IEEE Transactions on Wireless Communications is a prestigious publication that showcases cutting-edge advancements in wireless communications. It welcomes both theoretical and practical contributions in various areas. The scope of the Transactions encompasses a wide range of topics, including modulation and coding, detection and estimation, propagation and channel characterization, and diversity techniques. The journal also emphasizes the physical and link layer communication aspects of network architectures and protocols. The journal is open to papers on specific topics or non-traditional topics related to specific application areas. This includes simulation tools and methodologies, orthogonal frequency division multiplexing, MIMO systems, and wireless over optical technologies. Overall, the IEEE Transactions on Wireless Communications serves as a platform for high-quality manuscripts that push the boundaries of wireless communications and contribute to advancements in the field.
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