Dual-Function Beamforming Design for Multi-Target Localization and Reliable Communications

IF 5.8 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Signal Processing Pub Date : 2025-01-14 DOI:10.1109/TSP.2025.3529950
Bo Tang;Da Li;Wenjun Wu;Astha Saini;Prabhu Babu;Petre Stoica
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Abstract

This paper investigates the transmit beamforming design for multiple-input multiple-output systems to support both multi-target localization and multi-user communications. To enhance the target localization performance, we derive the asymptotic Cramér-Rao bound (CRB) for target angle estimation by assuming that the receive array is linear and uniform. Then we formulate a beamforming design problem based on minimizing an upper bound on the asymptotic CRB (which is shown to be equivalent to maximizing the harmonic mean of the weighted beampattern responses at the target directions). Moreover, we impose a constraint on the SINR of each received communication signal to guarantee reliable communication performance. Two iterative algorithms are derived to tackle the non-convex design problem: one is based on the alternating direction method of multipliers, and the other uses the majorization-minimization technique to solve an equivalent minimax problem. Numerical results show that, through elaborate dual-function beamforming matrix design, the proposed algorithms can simultaneously achieve superior angle estimation performance as well as high-quality multi-user communications.
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多目标定位与可靠通信的双功能波束形成设计
研究了多输入多输出系统的发射波束形成设计,以支持多目标定位和多用户通信。为了提高目标定位性能,在假设接收阵列为线性均匀的前提下,导出了目标角度估计的渐近cram r- rao界(CRB)。然后,我们提出了一个基于最小化渐近CRB上界的波束形成设计问题(该问题等价于最大化目标方向上加权波束图响应的谐波平均值)。此外,我们对每个接收到的通信信号的信噪比进行了约束,以保证可靠的通信性能。推导了两种求解非凸设计问题的迭代算法:一种是基于乘法器的交替方向法,另一种是使用最大化-最小化技术求解等效极大极小问题。数值结果表明,通过精心设计的双功能波束形成矩阵,所提算法可以同时获得良好的角度估计性能和高质量的多用户通信。
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来源期刊
IEEE Transactions on Signal Processing
IEEE Transactions on Signal Processing 工程技术-工程:电子与电气
CiteScore
11.20
自引率
9.30%
发文量
310
审稿时长
3.0 months
期刊介绍: The IEEE Transactions on Signal Processing covers novel theory, algorithms, performance analyses and applications of techniques for the processing, understanding, learning, retrieval, mining, and extraction of information from signals. The term “signal” includes, among others, audio, video, speech, image, communication, geophysical, sonar, radar, medical and musical signals. Examples of topics of interest include, but are not limited to, information processing and the theory and application of filtering, coding, transmitting, estimating, detecting, analyzing, recognizing, synthesizing, recording, and reproducing signals.
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