Spatial–Temporal Joint Design and Optimization of Phase-Coded Waveform for MIMO Radar

Author:

Lei Wei12ORCID,Zhang Yue12,Chen Zengping12,Chen Xiaolong3ORCID,Song Qiang12ORCID

Affiliation:

1. School of Electronics and Communication Engineering, Shenzhen Campus, Sun Yat-sen University, No. 66, Gongchang Road, Guangming District, Shenzhen 518107, China

2. School of Electronics and Communication Engineering, Sun Yat-sen University, Guangzhou 510275, China

3. Department of Electronic Information Engineering, Naval Aviation University, Yantai 246000, China

Abstract

By simultaneously transmitting multiple different waveform signals, a multiple-input multiple-output (MIMO) radar possesses higher degrees of freedom and potential in many aspects compared to a traditional phased-array radar. The spatial–temporal characteristics of waveforms are the key to determining their performance. In this paper, a transmitting waveform design method based on spatial–temporal joint (STJ) optimization for a MIMO radar is proposed, where waveforms are designed not only for beam-pattern matching (BPM) but also for minimizing the autocorrelation sidelobes (ACSLs) of the spatial synthesis signals (SSSs) in the directions of interest. Firstly, the STJ model is established, where the two-step strategy and least squares method are utilized for BPM, and the L2p-Norm of the ACSL is constructed as the criterion for temporal characteristics optimization. Secondly, by transforming it into an unconstrained optimization problem about the waveform phase and using the gradient descent (GD) algorithm, the hard, non-convex, high-dimensional, nonlinear optimization problem is solved efficiently. Finally, the method’s effectiveness is verified through numerical simulation. The results show that our method is suitable for both orthogonal and partial-correlation MIMO waveform designs and efficiently achieves better spatial–temporal characteristic performances simultaneously in comparison with existing methods.

Funder

National Natural Science Foundation of China

Guangdong Science and Technology Program

Shenzhen Science and Technology Program

Publisher

MDPI AG

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