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Distributed target detection in compound-Gaussian noise with Rao and Wald tests

机译:使用Rao和Wald检验在复合高斯噪声中进行分布式目标检测

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摘要

The problem of detecting distributed targets in compound-Gaussian noise with unknown statistics is considered. At the design stage, in order to cope with the a priori uncertainty, we model noise returns as Gaussian vectors with the same structure of the covariance matrix, but possibly different power levels. We also assume that a set of secondary data, free of signal components, is available to estimate the covariance matrix of the disturbance. Since no uniformly most powerful test exists for the problem at hand we devise and assess two detection strategies based on the Rao test, and the Wald test respectively. Remarkably these detectors ensure the constant false alarm rate property with respect to both the structure of the covariance matrix as well as the power levels. Moreover, the performance assessment, conducted also in comparison with the generalized likelihood ratio test based receiver, shows that the Wald test outperforms the others and is very effective in scenarios of practical interest for radar systems.
机译:考虑了在未知统计量的复合高斯噪声中检测分布式目标的问题。在设计阶段,为了应对先验不确定性,我们将噪声返回建模为高斯向量,具有相同的协方差矩阵结构,但可能具有不同的功率水平。我们还假设没有信号分量的一组辅助数据可用于估计干扰的协方差矩阵。由于不存在针对当前问题的统一,最强大的测试,因此我们分别设计和评估了两种基于Rao测试和Wald测试的检测策略。值得注意的是,这些检测器针对协方差矩阵的结构以及功率水平确保了恒定的误报率属性。此外,还与基于广义似然比测试的接收机进行了性能评估,结果表明Wald测试的性能优于其他测试,并且在雷达系统具有实际应用价值的情况下非常有效。

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