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Multi-sensor beamsteering based on the asymptotic likelihood for colored signals

机译:基于渐近似然的彩色信号多传感器波束转向

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In this work, we derive a maximum likelihood formula for beamsteering in a multi-sensor array. The novelty of the work is that the impinging signal and noises are wide sense stationary (WSS) time series with unknown power spectral densities, unlike in previous work that typically considers white signals. Our approach naturally provides a way of fusing frequency-dependent information to obtain a broadband beamformer. In order to obtain the compressed likelihood, it is necessary to find the maximum likelihood estimates of the unknown parameters. However, this problem turns out to be an ML estimation of a block-Toeplitz matrix, which does not have a closed-form solution. To overcome this problem, we derive the asymptotic likelihood, which is given in the frequency domain. Finally, some simulation results are presented to illustrate the performance of the proposed technique. In these simulations, it is shown that our approach presents the best results.
机译:在这项工作中,我们导出了多传感器阵列中波束转向的最大似然公式。这项工作的新颖性在于,撞击信号和噪声是具有未知功率谱密度的广义固定时间(WSS)时间序列,这与以往通常考虑白信号的工作不同。我们的方法自然提供了一种融合频率相关信息以获得宽带波束形成器的方法。为了获得压缩的似然性,有必要找到未知参数的最大似然估计。但是,这个问题原来是一个块-托普利兹矩阵的ML估计,它没有封闭形式的解决方案。为了克服这个问题,我们推导了渐近似然,它在频域中给出。最后,给出了一些仿真结果以说明所提出技术的性能。在这些模拟中,表明我们的方法可以提供最佳结果。

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