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Two-Dimensional Robust Source Localization Under Non-Gaussian Noise

机译:非高斯噪声下的二维鲁棒源定位

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摘要

Various methods have been proposed to estimate the direction of arrival (DOA) of sources under the assumption of Gaussian noise. This assumption, based on the central limit theorem, has been mainly used because it offers an appropriate model in a homogeneous environment. Nevertheless, under certain conditions, the Gaussian hypothesis cannot fully represent the noisy environment. Consequently, these classical estimation methods are no longer suitable, and the use of non-Gaussian noise model is necessary. In this paper, we therefore treat the DOA estimation problem in a non-Gaussian framework based on the maximum likelihood approach using a compound-Gaussian (CG) noise model. We then propose the use of the expectation maximization (EM) algorithm to reduce the computational cost of the proposed algorithm. Several simulations are carried out to illustrate the interest of our approach compared to the state of the art.
机译:已经提出了各种方法来估计在高斯噪声的假设下估计来源的到达方向(DOA)。基于中央极限定理,这一假设主要是主要用作,因为它在均匀环境中提供了适当的模型。然而,在某些条件下,高斯假设不能完全代表嘈杂的环境。因此,这些经典估计方法不再适合,并且需要使用非高斯噪声模型。因此,我们基于使用复合高斯(CG)噪声模型的最大似然方法,我们在非高斯框架中处理DOA估计问题。然后,我们建议使用预期最大化(EM)算法来降低所提出算法的计算成本。与现有技术相比,进行了几种模拟以说明我们的方法的兴趣。

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