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Reduced-dimension STAP using a modified generalised sidelobe canceller for collocated MIMO radars

机译:使用改进的广义旁瓣抵消器的降维STAP用于并置MIMO雷达

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摘要

This study addresses the problem of beam-space post-Doppler reduced-dimension (RD) space-time adaptive processing (STAP) using a modified generalised sidelobe canceller (GSC) in an airborne collocated multiple-input multiple-output (MIMO) radar. Steering vectors corresponding to the nulls of beamforming are used to construct the blocking matrix (BM) of the GSC processor with optimal signal to clutter plus noise ratio. However, it is difficult to determine the beampattern nulls for a collocated MIMO radar which is equivalent to a virtual array with coherent amplitude weights. To build a valid BM of the GSC-based STAP processor, the authors propose a BM modification method based on the modified Gram-Schmidt orthogonalisation algorithm. The authors prove that the modified RD-GSC processor can achieve the performance equal to that of the fully optimal processor conditionally. The authors also show that the proposed method has reduced computational complexity and fast convergence rate. Numerical simulations are presented to demonstrate the effectiveness of the proposed methods.
机译:这项研究解决了在机载并置多输入多输出(MIMO)雷达中使用改进的广义旁瓣抵消器(GSC)进行波束空间后多普勒降维(RDP)时空自适应处理(STAP)的问题。对应于波束成形零点的导引向量用于构建具有最佳信噪比和噪声比的GSC处理器的分块矩阵(BM)。但是,很难确定并置的MIMO雷达的波束方向图零点,等效于具有相干振幅权重的虚拟阵列。为了建立基于GSC的STAP处理器的有效BM,作者提出了一种基于改进的Gram-Schmidt正交化算法的BM修改方法。作者证明,改进的RD-GSC处理器可以有条件地获得与完全最佳处理器相同的性能。作者还表明,该方法具有降低的计算复杂度和快速的收敛速度。数值模拟表明该方法的有效性。

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