Integrated Radar-Communication Waveform Design for Multitransmit in Clutter

IF 5.7 2区 计算机科学 Q1 ENGINEERING, AEROSPACE IEEE Transactions on Aerospace and Electronic Systems Pub Date : 2025-01-03 DOI:10.1109/TAES.2024.3525450
Hairui Wang;Haihong Tao;Liang Shi;Wendi Li
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Abstract

This article focuses on the joint design of transmit steering vectors and receiver filters for integrated radar-communication waveforms in clutter. The primary objective is to maximize the output signal-to-clutter-plus-noise ratio (SCNR) to ensure optimal target detection performance and enhance communication transmission quality. To maximize transmitter efficiency, we utilize an alternating projection algorithm to restrict the peak-to-average power ratio of the transmitted waveform. To reduce the mutual interference of multiple transmitted signals in space, we propose the information data weight to form interference direction nulls to ensure spatial orthogonality. To obtain multitransmit orthogonal constant modulus integrated waveforms, we propose a weighted autocorrelation integrated sidelobe method to improve signal isolation ratio, assuming knowledge of the clutter and target spectral distributions. Finally, the clutter is suppressed by establishing the maximum SCNR constraint function. The simulation results demonstrate that the designed integrated waveform not only fulfills the multifunctional requirements but also enhances the survivability of the radar waveform in clutter and the robustness of communication transmission.
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杂波环境下多发射集成雷达通信波形设计
本文重点研究了杂波条件下集成雷达通信波形的发射转向矢量和接收滤波器的联合设计。其主要目标是使输出信噪比(SCNR)最大化,以保证最佳的目标检测性能和提高通信传输质量。为了最大限度地提高发射机效率,我们利用交替投影算法来限制发射波形的峰值-平均功率比。为了减少多个传输信号在空间中的相互干扰,我们提出了信息数据权值形成干扰方向零,以保证空间正交性。为了获得多发射正交等模积分波形,在了解杂波和目标谱分布的前提下,提出了一种加权自相关积分旁瓣方法来提高信号隔离率。最后,通过建立最大SCNR约束函数来抑制杂波。仿真结果表明,所设计的集成波形不仅满足多功能要求,而且提高了雷达波形在杂波中的生存能力和通信传输的鲁棒性。
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来源期刊
CiteScore
7.80
自引率
13.60%
发文量
433
审稿时长
8.7 months
期刊介绍: IEEE Transactions on Aerospace and Electronic Systems focuses on the organization, design, development, integration, and operation of complex systems for space, air, ocean, or ground environment. These systems include, but are not limited to, navigation, avionics, spacecraft, aerospace power, radar, sonar, telemetry, defense, transportation, automated testing, and command and control.
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