DocumentCode
454638
Title
The Role of Dynamic Features in Text-Dependent and -Independent Speaker Verification
Author
Liu, Ying ; Russell, Martin ; Carey, Michael
Author_Institution
Dept. of Electron., Electr. & Comput. Eng., Birmingham Univ.
Volume
1
fYear
2006
fDate
14-19 May 2006
Abstract
A segmental hidden Markov model (SHMM) is a hidden Markov model (HMM) whose states are associated with sequences of acoustic feature vectors (or segments), rather than individual vectors. By treating segments as homogeneous units it is possible, for example, to develop better models of speech dynamics. This paper considers the potential benefits of a trajectory-based segmental HMM for speaker recognition. Text-dependent speaker verification (TD-SV) results obtained on YOHO and text-independent speaker verification (TI-SV) results on switchboard are presented. The YOHO results show a 44% reduction in false acceptances using the segmental model compared with a conventional HMM, while the Switchboard results do not show any improvement relative to a conventional Gausian mixture model (GMM) system. Further experiments were conducted to explain these results. They indicate that the priority of a "segmental GMM" is to model stationary regions and shed light on the role of delta parameters in conventional TI-SV
Keywords
feature extraction; hidden Markov models; speaker recognition; HMM; YOHO results; acoustic feature vectors; dynamic features; segmental hidden Markov model; speaker recognition; text-independent speaker verification; trajectory-based segmental; Acoustical engineering; Aerodynamics; Covariance matrix; Hidden Markov models; Loudspeakers; Research and development; Signal synthesis; Speaker recognition; Speech recognition; Vectors;
fLanguage
English
Publisher
ieee
Conference_Titel
Acoustics, Speech and Signal Processing, 2006. ICASSP 2006 Proceedings. 2006 IEEE International Conference on
Conference_Location
Toulouse
ISSN
1520-6149
Print_ISBN
1-4244-0469-X
Type
conf
DOI
10.1109/ICASSP.2006.1660109
Filename
1660109
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