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Golay Complementary Waveforms in Reed–Müller Sequences for Radar Detection of Nonzero Doppler Targets

机译:里德-穆勒序列中的Golay互补波形用于非零多普勒目标的雷达检测

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摘要

Golay complementary waveforms can, in theory, yield radar returns of high range resolution with essentially zero sidelobes. In practice, when deployed conventionally, while high signal-to-noise ratios can be achieved for static target detection, significant range sidelobes are generated by target returns of nonzero Doppler causing unreliable detection. We consider signal processing techniques using Golay complementary waveforms to improve radar detection performance in scenarios involving multiple nonzero Doppler targets. A signal processing procedure based on an existing, so called, Binomial Design algorithm that alters the transmission order of Golay complementary waveforms and weights the returns is proposed in an attempt to achieve an enhanced illumination performance. The procedure applies one of three proposed waveform transmission ordering algorithms, followed by a pointwise nonlinear processor combining the outputs of the Binomial Design algorithm and one of the ordering algorithms. The computational complexity of the Binomial Design algorithm and the three ordering algorithms are compared, and a statistical analysis of the performance of the pointwise nonlinear processing is given. Estimation of the areas in the Delay–Doppler map occupied by significant range sidelobes for given targets are also discussed. Numerical simulations for the comparison of the performances of the Binomial Design algorithm and the three ordering algorithms are presented for both fixed and randomized target locations. The simulation results demonstrate that the proposed signal processing procedure has a better detection performance in terms of lower sidelobes and higher Doppler resolution in the presence of multiple nonzero Doppler targets compared to existing methods.
机译:从理论上讲,Golay互补波形可以产生具有基本为零旁瓣的高范围分辨率的雷达回波。实际上,当以常规方式部署时,虽然可以实现静态目标检测的高信噪比,但非零多普勒的目标返回会产生较大的旁瓣,从而导致检测不可靠。我们考虑了使用Golay互补波形的信号处理技术,以在涉及多个非零多普勒目标的情况下提高雷达检测性能。为了实现增强的照明性能,提出了一种基于现有的所谓二项式设计算法的信号处理程序,该算法可改变格雷合成互补波形的传输顺序并加权返回值。该过程应用了三种建议的波形传输排序算法之一,然后是将二项式设计算法的输出与其中一种排序算法相结合的逐点非线性处理器。比较了二项式设计算法和三种排序算法的计算复杂度,并对逐点非线性处理的性能进行了统计分析。还讨论了给定目标在有效距离旁瓣所占的Delay-Doppler图中的面积估计。针对固定和随机目标位置,提供了用于比较二项式设计算法和三种排序算法性能的数值模拟。仿真结果表明,与现有方法相比,在存在多个非零多普勒目标的情况下,所提出的信号处理程序在较低的旁瓣和较高的多普勒分辨率方面具有更好的检测性能。

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