A REGULARIZED KERNEL-BASED APPROACH TO UNSUPERVISED AUDIO SEGMENTATION

被引:39
作者
Harchaoui, Zaid [1 ]
Vallet, Felicien [1 ]
Lung-Yut-Fong, Alexandre [1 ]
Cappe, Olivier [1 ]
机构
[1] TELECOM ParisTech, LTCI, F-75634 Paris 13, France
来源
2009 IEEE INTERNATIONAL CONFERENCE ON ACOUSTICS, SPEECH, AND SIGNAL PROCESSING, VOLS 1- 8, PROCEEDINGS | 2009年
关键词
Change detection; kernel methods; audio segmentation; CLASSIFICATION;
D O I
10.1109/ICASSP.2009.4959921
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
We introduce a regularized kernel-based rule for unsupervised change detection based on a simpler version of the recently proposed kernel Fisher discriminant ratio. Compared to other kernel-based change detectors found in the literature, the proposed test statistic is easier to compute and has a known asymptotic distribution which call effectively be used to set the false alarm rate a priori. This technique is applied for segmenting tracks from TV shows, both for segmentation into semantically homogeneous sections (applause, movie, music, etc.) and for speaker diarization within the speech sections. On these tasks, the proposed approach outperforms other kernel-based tests and is competitive with a standard HMM-based supervised alternative.
引用
收藏
页码:1665 / 1668
页数:4
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