DocumentCode :
3500435
Title :
Nonnative Speech Recognition Based on State-Level Bilingual Model Modification
Author :
Zhang, Qingqing ; Li, Ta ; Pan, Jielin ; Yan, Yonghong
Author_Institution :
ThinkIT Speech Lab., Inst. of Acoust. Chinese Acad. of Sci., Beijing
Volume :
2
fYear :
2008
fDate :
11-13 Nov. 2008
Firstpage :
1220
Lastpage :
1225
Abstract :
The performance of automatic speech recognition decreases drastically for nonnative speakers, especially those who are just beginning to learn foreign language or who have heavy accents. This paper presents a novel bilingual model modification approach to improve nonnative speech recognition via considering these great variations of accented pronunciations. Each state of baseline nonnative acoustic models is modified with several candidate states from auxiliary acoustic models, which are trained by speakers´ mother language. State mapping criterion and n-best candidates are investigated based on a grammar-constrained speech recognition system. Using the state-level bilingual model modification approach, compared to the nonnative acoustic models which have already been well trained by adaptation technique MAP, a relative reduction of 11.7% in phrase error rate (RPhrER) was further achieved.
Keywords :
acoustic signal processing; error statistics; grammars; maximum likelihood estimation; speaker recognition; MAP; accented pronunciation; baseline nonnative acoustic model; grammar-constrained speech recognition system; nonnative speech recognition; phrase error rate; state mapping criterion; state-level bilingual model modification; Acoustic testing; Automatic speech recognition; Databases; Error analysis; Information technology; Loudspeakers; Natural languages; Robustness; Speech recognition; Training data; Mandarin-accented; Nonnative speech recognition; model modification;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Convergence and Hybrid Information Technology, 2008. ICCIT '08. Third International Conference on
Conference_Location :
Busan
Print_ISBN :
978-0-7695-3407-7
Type :
conf
DOI :
10.1109/ICCIT.2008.404
Filename :
4682413
Link To Document :
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