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A cumulant-based adaptive technique for coherent radar detection in a mixture of K-distributed clutter and Gaussian disturbance

机译:一种基于累积量的自适应技术,用于混合K分布杂波和高斯干扰的相干雷达检测

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In this paper, we consider the problem of radar signal detection in the presence of disturbance, which is assumed to be a mixture of coherent K-distributed and Gaussian distributed clutter. Besides, thermal noise, which is always present in the radar receiver, has been considered. The optimum detector is determined by thresholding an appropriate likelihood ratio test. To properly operate in an interference environment of unknown correlation, the optimum detector needs to adaptively estimate from the data the statistical properties of the interferences. Second-order spectral analysis is unable to separately estimate the correlation structure of K-distributed and Gaussian distributed clutter sources. Their separate estimation can be accomplished only in higher order spectrum domain. To reach this goal, an adaptive algorithm based on second- and higher order cumulants is proposed that removes these drawbacks and is able to operate in an environment of unknown correlation structure. The performance of the adaptive processing scheme has been evaluated by means of Monte Carlo simulations.
机译:在本文中,我们考虑了在存在干扰的情况下雷达信号检测的问题,该问题被假定为相干K分布和高斯分布杂波的混合。此外,已经考虑了雷达接收机中始终存在的热噪声。通过对适当的似然比测试进行阈值确定最佳检测器。为了在未知相关性的干扰环境中正常工作,最佳检测器需要根据数据自适应地估计干扰的统计特性。二阶频谱分析无法单独估计K分布和高斯分布杂波源的相关结构。它们的单独估计只能在高阶频谱域中完成。为了达到这个目标,提出了一种基于二阶和更高阶累积量的自适应算法,该算法消除了这些缺点,并且能够在未知相关结构的环境中运行。自适应处理方案的性能已通过蒙特卡洛模拟进行了评估。

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