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SPICE: A Sparse Covariance-Based Estimation Method for Array Processing

机译:SPICE:一种基于稀疏协方差的阵列处理估计方法

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This paper presents a novel SParse Iterative Covariance-based Estimation approach, abbreviated as SPICE, to array processing. The proposed approach is obtained by the minimization of a covariance matrix fitting criterion and is particularly useful in many-snapshot cases but can be used even in single-snapshot situations. SPICE has several unique features not shared by other sparse estimation methods: it has a simple and sound statistical foundation, it takes account of the noise in the data in a natural manner, it does not require the user to make any difficult selection of hyperparameters, and yet it has global convergence properties.
机译:本文提出了一种新颖的基于SParse迭代协方差的估计方法,简称为SPICE,用于数组处理。所提出的方法是通过最小化协方差矩阵拟合准则而获得的,在许多快照情况下特别有用,但即使在单快照情况下也可以使用。 SPICE具有其他稀疏估计方法无法共享的几个独特功能:它具有简单而可靠的统计基础,以自然的方式考虑了数据中的噪声,不需要用户对超参数进行任何困难的选择,但它具有全局收敛性。

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