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Maximum Likelihood A Priori Knowledge Interpolation-Based Handset Mismatch Compensation for Robust Speaker Identification

Yuanfu LIAO( )Zhixian ZHUANGJyhher YANG
Department of Electronic Engineering, Taipei University of Technology, Taipei 106, China
Department of Communication Engineering, Chiao Tung University, Hsinchu 300, China
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Abstract

Unseen handset mismatch is the major source of performance degradation in speaker identification in telecommunication environments. To alleviate the problem, a maximum likelihood a priori knowledge interpolation (ML-AKI)-based handset mismatch compensation approach is proposed. It first collects a set of handset characteristics of seen handsets to use as the a priori knowledge for representing the space of handsets. During evaluation the characteristics of an unknown test handset are optimally estimated by interpolation from the set of the a priori knowledge. Experimental results on the HTIMIT database show that the ML-AKI method can improve the average speaker identification rate from 60.0% to 74.6% as compared with conventional maximum a posteriori-adapted Gaussian mixture models. The proposed ML-AKI method is a promising method for robust speaker identification.

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Tsinghua Science and Technology
Pages 528-532

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Cite this article:
LIAO Y, ZHUANG Z, YANG J. Maximum Likelihood A Priori Knowledge Interpolation-Based Handset Mismatch Compensation for Robust Speaker Identification. Tsinghua Science and Technology, 2008, 13(4): 528-532. https://doi.org/10.1016/S1007-0214(08)70084-1

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Received: 10 September 2007
Revised: 28 February 2008
Published: 01 August 2008
© Tsinghua University Press 2008