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Efficient algorithms for multichannel extensions of Itakura-Saito nonnegative matrix factorization

机译:Itakura-Saito非负矩阵分解的多通道扩展的高效算法

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This paper proposes new algorithms for multichannel extensions of nonnegative matrix factorization (NMF) with the Itakura-Saito (IS) divergence. We employ Hermitian positive definite matrices for modeling the covariance matrix of a multivariate complex Gaussian distribution. Such matrices are basically estimated for NMF bases, but a source separation task can be performed by introducing variables that relate NMF bases and sources. The new algorithms are derived by using a majorization scheme with properly designed auxiliary functions. The algorithms are in the form of multiplicative updates, and exhibit good convergence behavior. We have succeeded in separating a professionally produced music recording into its vocal and guitar components.
机译:本文提出了具有Itakura-Saito(IS)散度的非负矩阵分解(NMF)多通道扩展的新算法。我们采用Hermitian正定矩阵来建模多元复杂高斯分布的协方差矩阵。基本上针对NMF基估计此类矩阵,但是可以通过引入与NMF基和源相关的变量来执行源分离任务。新算法是通过使用带有适当设计的辅助功能的主化方案而得出的。该算法采用乘法更新的形式,并且表现出良好的收敛行为。我们已经成功地将专业制作的音乐录音分为人声和吉他成分。

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