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Estimation of chirp radar signals in compound-Gaussian clutter: a cyclostationary approach

机译:复合高斯杂波中线性调频雷达信号的估计:一种循环平稳方法

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Signal detection of known (within a complex scaling) rank one waveforms in non-Gaussian distributed clutter has received considerable attention. We expand on published solutions to consider the case of rank one waveforms that have some unknown parameters, i.e., signal amplitude, initial phase, Doppler shift, and Doppler rate of change. The contribution of this paper is the derivation and performance analysis of two joint estimators of Doppler shift and Doppler rate-the chirp embedded in correlated compound-Gaussian clutter. One solution is based on the maximum likelihood (ML) principle and the other one on target signal second-order cyclostationarity. The hybrid Cramer-Rao lower bounds (HCRLBs) and a large sample closed-form expression for the mean square estimation error (only for the Doppler shift) are also derived. Numerical examples are provided to show the behavior of the proposed estimator under different non-Gaussian clutter scenarios.
机译:在非高斯分布杂波中,已知的(复杂的缩放范围内)秩为1的波形的信号检测受到了相当大的关注。我们扩展已发布的解决方案,以考虑具有一些未知参数(即信号幅度,初始相位,多普勒频移和多普勒变化率)的一阶波形的情况。本文的贡献是推导和性能分析的两个多普勒频移和多普勒率联合估计-相关的复合高斯杂波中嵌入的chi。一种解决方案基于最大似然(ML)原理,另一种解决方案基于目标信号二阶循环平稳性。还导出了混合式Cramer-Rao下界(HCRLB)和均方估计误差(仅针对多普勒频移)的大样本闭式表达式。提供了数值示例来说明所提出的估计器在不同的非高斯杂波情况下的行为。

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