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Fast DOA Estimation Algorithm Using Pseudocovariance Matrix

机译:伪协方差矩阵的快速DOA估计算法

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This paper proposes a new direction of arrival (DOA) estimation algorithm that can rapidly estimate the DOAs of incidence signals using a pseudocovariance matrix even under coherent interference environments. The conventional multiple signal classification (MUSIC) algorithm, which should estimate a covariance matrix, cannot perform a DOA estimation until it acquires the covariance matrix. In addition, the MUSIC algorithm cannot be used under rapidly changing or correlated interference environments. In contrast, the proposed algorithm can obtain a bearing response after acquiring the pseudocovariance matrix based on a single snapshot. Signal incidence angles can then be accurately estimated by combining the bearing response and the location of pattern nulls. Accordingly, the proposed algorithm can rapidly estimate the DOAs of signals even when they are correlated.
机译:本文提出了一种新的到达方向(DOA)估计算法,即使在相干干扰环境下,该算法也可以使用伪协方差矩阵快速估计入射信号的DOA。应该估计协方差矩阵的常规多信号分类(MUSIC)算法在获取协方差矩阵之前不能执行DOA估计。另外,在快速变化或相关的干扰环境下不能使用MUSIC算法。相比之下,提出的算法在基于单个快照获取伪协方差矩阵之后可以获得轴承响应。然后可以通过组合方位响应和模式零点的位置来准确估计信号入射角。因此,所提出的算法可以快速估计信号的DOA,即使它们是相关的。

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