A Closed-Form Solution of Linear Spectral Transformation for Robust Speech Recognition

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초록

The maximum likelihood linear spectral transformation (ML-LST) using a numerical iteration method has been previously proposed for robust speech recognition. The numerical iteration method is not appropriate for real-time applications due to its computational complexity In order to reduce the computational cost, the objective function of the ML-LST is approximated and a closed-form solution is proposed in this paper It is shown experimentally that the proposed closed-form solution for the ML-LST can provide rapid speaker and environment adaptation for robust speech recognition.

키워드

Speech recognitionenvironment adaptationlinear spectral transformationclosed-form solutionADAPTATION
제목
A Closed-Form Solution of Linear Spectral Transformation for Robust Speech Recognition
저자
Kim, DonghyunYook, Dongsuk
DOI
10.4218/etrij.09.0209.0012
발행일
2009-08
유형
Article
저널명
ETRI Journal
31
4
페이지
454 ~ 456