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首页> 外文期刊>IEEE Transactions on Signal Processing >Parametric GLRT for Multichannel Adaptive Signal Detection
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Parametric GLRT for Multichannel Adaptive Signal Detection

机译:用于多通道自适应信号检测的参数化GLRT

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摘要

This paper considers the problem of detecting a multichannel signal in the presence of spatially and temporally colored disturbance. A parametric generalized likelihood ratio test (GLRT) is developed by modeling the disturbance as a multichannel autoregressive (AR) process. Maximum likelihood (ML) parameter estimation underlying the parametric GLRT is examined. It is shown that the ML estimator for the alternative hypothesis is nonlinear and there exists no closed-form expression. To address this issue, an asymptotic ML (AML) estimator is presented, which yields asymptotically optimum parameter estimates at reduced complexity. The performance of the parametric GLRT is studied by considering challenging cases with limited or no training signals for parameter estimation. Such cases (especially when training is unavailable) are of great interest in detecting signals in heterogeneous, fast changing, or dense-target environments, but generally cannot be handled by most existing multichannel detectors which rely more heavily on training at an adequate level. Compared with the recently introduced parametric adaptive matched filter (PAMF) and parametric Rao detectors, the parametric GLRT achieves higher data efficiency, offering improved detection performance in general.
机译:本文考虑了在存在时空彩色干扰的情况下检测多通道信号的问题。通过将干扰建模为多通道自回归(AR)过程,开发了参数化广义似然比检验(GLRT)。检查了基于参数GLRT的最大似然(ML)参数估计。结果表明,替代假设的ML估计量是非线性的,并且不存在闭合形式的表达式。为了解决此问题,提出了一种渐近ML(AML)估计器,它以降低的复杂度产生了渐近最优参数估计。通过考虑具有有限训练信号或没有训练信号进行参数估计的具有挑战性的情况来研究参数化GLRT的性能。此类情况(尤其是在无法进行训练时)对于在异构,快速变化或密集目标环境中检测信号非常感兴趣,但通常大多数现有的多通道检测器无法处理,这些检测器更依赖于适当水平的训练。与最近推出的参量自适应匹配滤波器(PAMF)和参量Rao检测器相比,参量GLRT可获得更高的数据效率,总体上提供了改进的检测性能。

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