Training-based adaptive transmit-receive beamforming for random phase radar signals

M. Shaghaghi, R. Adve
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引用次数: 1

Abstract

The advent of increasingly sophisticated control over the transmitted signal has enabled the consideration of multiple input, multiple output (MIMO) radar systems wherein each transmitter transmits a different waveform. Exploiting this capability, MIMO radars can improve target detection by jointly designing the transmit signal and receive filter so as to optimize the resulting signal-to-interference-plus-noise ratio (SINR). However, the SINR depends on the clutter covariance matrix which, in turn, is a function of the transmitted signal. This paper considers the joint design of adaptive transmit and receive weights to maximize the SINR of a target at a chosen look angle-Doppler point. This is akin to extending receive-only space-time adaptive processing (STAP) to include transmit adaptivity. Previous work in joint design assumed that the required second-order statistics are known a priori. In this paper we develop a method to estimate the required statistics through a number of training sequences. The estimation is based on received data only, and does not assume any specific structure for, or a-priori knowledge of, the clutter covariance matrix. We do assume that the clutter statistics do not change during the training and detection intervals. Simulation results show that, as in receive-only STAP, the proposed method does not suffer from a large SINR loss with respect to the known-covariance case.
基于训练的随机相位雷达信号自适应收发波束形成
随着对发射信号的控制越来越复杂,人们开始考虑多输入多输出(MIMO)雷达系统,其中每个发射器发送不同的波形。利用这种能力,MIMO雷达可以通过联合设计发射信号和接收滤波器来提高目标探测能力,从而优化得到的信噪比(SINR)。然而,信噪比取决于杂波协方差矩阵,而杂波协方差矩阵又是发射信号的函数。本文考虑了自适应发射和接收权的联合设计,以最大限度地提高目标在某一角度-多普勒点的信噪比。这类似于将仅接收的时空自适应处理(STAP)扩展为包括发送自适应。先前的联合设计工作假定所需的二阶统计量是先验已知的。在本文中,我们开发了一种方法来估计所需的统计量,通过一些训练序列。该估计仅基于接收到的数据,并且不假设杂波协方差矩阵的任何特定结构或先验知识。我们确实假设杂波统计在训练和检测间隔期间不改变。仿真结果表明,与仅接收的STAP一样,相对于已知协方差的情况,所提出的方法不会遭受较大的信噪比损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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