Linear Discriminant Analysis Using a Generalized Mean of Class Covariances and Its Application to Speech Recognition
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概要
- 論文の詳細を見る
To precisely model the time dependency of features is one of the important issues for speech recognition. Segmental unit input HMM with a dimensionality reduction method has been widely used to address this issue. Linear discriminant analysis (LDA) and heteroscedastic extensions, e. g., heteroscedastic linear discriminant analysis (HLDA) or heteroscedastic discriminant analysis (HDA), are popular approaches to reduce dimensionality. However, it is difficult to find one particular criterion suitable for any kind of data set in carrying out dimensionality reduction while preserving discriminative information. In this paper, we propose a new framework which we call power linear discriminant analysis (PLDA). PLDA can be used to describe various criteria including LDA, HLDA, and HDA with one control parameter. In addition, we provide an efficient selection method using a control parameter without training HMMs nor testing recognition performance on a development data set. Experimental results show that the PLDA is more effective than conventional methods for various data sets.
- (社)電子情報通信学会の論文
- 2008-03-01
著者
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SAKAI Makoto
DENSO CORPORATION
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KITAOKA Norihide
Nagoya University
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Nakagawa Seiichi
Toyohashi Univ. Technol. Toyohashi‐shi Jpn
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Nakagawa Seiichi
Department Of Information And Computer Sciences Toyohashi University
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Nakagawa Seiichi
Toyohashi Univ. Of Technol. Toyohashi‐shi Jpn
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Kitaoka Norihide
Toyohashi University Of Technology
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Kitaoka Norihide
Nagoya Univ.
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NAKAGAWA Seiichi
DENSO CORPORATION
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SAKAI Makoto
Toyohashi University of Technology
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