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Robust Signal-to-Noise Ratio Estimation in Non-Gaussian Noise Channel

机译:非高斯噪声通道中的鲁棒信噪比估计

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摘要

Signal-to-noise ratio (SNR) estimation available in the literature are designed based on the assumption of Gaussian noise models. These estimators may produce misleading results when the distribution of the noise deviates from Gaussian. This paper investigates the performance of existing SNR estimators in an additive non-Gaussian noise channel based on a Gaussian mixture model. An expectation-maximization (EM) based approach is proposed for optimum SNR estimation in the non-Gaussian noise channel. In addition, the Cramer-Rao bound is derived and used as a benchmark to assess the performance of the SNR estimators. Simulation results confirm the optimality and robustness of the proposed EM-based estimator in Gaussian and non-Gaussian noise channels.
机译:基于高斯噪声模型的假设,设计了文献中可用的信噪比(SNR)估计。当噪声的分布偏离高斯分布时,这些估计器可能会产生误导性的结果。本文研究了基于高斯混合模型的加性非高斯噪声信道中现有SNR估计器的性能。针对非高斯噪声信道中的最佳SNR估计,提出了一种基于期望最大化(EM)的方法。此外,推导了Cramer-Rao界并将其用作评估SNR估计器性能的基准。仿真结果证实了所提出的基于EM的估计器在高斯和非高斯噪声通道中的最优性和鲁棒性。

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