DocumentCode :
697888
Title :
Robust automatic speech recognition using acoustic model adaptation prior to missing feature reconstruction
Author :
Remes, Ulpu ; Palomaki, Kalle J. ; Kurimo, Mikko
Author_Institution :
Adaptive Inf. Res. Centre, Helsinki Univ. of Technol., Helsinki, Finland
fYear :
2009
fDate :
24-28 Aug. 2009
Firstpage :
535
Lastpage :
539
Abstract :
When speech recognition is used in real-world environments, simultaneous speaker and environmental adaptation and compensation for time-varying noise effects is needed. Noise compensation methods like missing feature reconstruction should be combined with adaptation methods like constrained maximum likelihood linear regression (CMLLR). This is only straightforward if reconstruction is used prior to CMLLR. In this work, reconstruction is modified so that we can estimate CMLLR transformations prior to reconstruction. The new approach is evaluated on large vocabulary speech data recorded in noisy public and car environments and compared to using reconstruction prior to CMLLR estimation. The results suggest the noise environment determines which approach is better. Using adaptation prior to reconstruction has the better performance when evaluated on data from public environments. The relative reductions in letter error rate were 47-50 % compared to the baseline and 13-19 % compared to using either adaptation or reconstruction alone.
Keywords :
regression analysis; signal reconstruction; speech recognition; CMLLR transformations; acoustic model adaptation; automatic speech recognition; car environments; constrained maximum likelihood linear regression; environmental adaptation; large vocabulary speech data; missing feature reconstruction; noise compensation methods; noise environment; noisy public; speaker adaptation; time-varying noise effects; Acoustics; Adaptation models; Hidden Markov models; Noise; Noise measurement; Speech; Speech recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2009 17th European
Conference_Location :
Glasgow
Print_ISBN :
978-161-7388-76-7
Type :
conf
Filename :
7077460
Link To Document :
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