Laplace Nonnegative Matrix Factorization with Application to Semi-supervised Audio Denoising

被引:3
作者
Tanji, Hiroki [1 ]
Murakami, Takahiro [1 ,2 ]
Kamata, Hiroyuki [1 ]
机构
[1] Meiji Univ, Dept Elect & Bioinformat, Sch Sci & Technol, Tokyo, Japan
[2] Univ Surrey, Ctr Vis Speech & Signal Proc CVSSP, Guildford, Surrey, England
来源
2019 27TH EUROPEAN SIGNAL PROCESSING CONFERENCE (EUSIPCO) | 2019年
关键词
complex Laplace distribution; nonnegative matrix factorization; majorization-minimization algorithm; source separation; SEPARATION;
D O I
10.23919/eusipco.2019.8903074
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper proposes two statistical models for the nonnegative matrix factorization (NMF) based on heavy-tailed distributions. In the NMF for acoustic signals, previous works justify the additivity of an observed spectrogram using the reproductive property of a probability density function. However, the effectiveness of these properties is not clear. Consequently, to construct a model robust to noise, statistical models based on heavy-tailed distributions are recently growing up. In this paper, as heavy-tailed models for the NMF, we introduce statistical models based on the complex Laplace distributions, and call them Laplace-NMF. Moreover, we derive convergence-guaranteed optimization algorithms to estimate parameters. From our formulation, a statistical interpretation of the Itakura-Saito (IS) divergence-based NMF is newly revealed. We confirm the effectiveness of Laplace-NMF in semi-supervised audio denoising.
引用
收藏
页数:5
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