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Iterative Approximation of Analytic Eigenvalues of a Parahermitian Matrix EVD

机译:参加者矩阵EVD分析特征值的迭代近似

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We present an algorithm that extracts analytic eigenvalues from a parahermitian matrix. Operating in the discrete Fourier transform domain, an inner iteration re-establishes the lost association between bins via a maximum likelihood sequence detection driven by a smoothness criterion. An outer iteration continues until a desired accuracy for the approximation of the extracted eigenvalues has been achieved. The approach is compared to existing algorithms.
机译:我们介绍了一种从比例矩阵中提取分析特征值的算法。在离散傅立叶变换域中操作,内部迭代通过由平滑度标准驱动的最大似然序列检测重新建立箱之间的丢失关联。外部迭代继续,直到已经实现了提取的特征值的近似的所需精度。该方法与现有算法进行比较。

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