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research article

Stream fusion for multi-stream automatic speech recognition

Sagha, Hesam  
•
Li, Feipeng
•
Variani, Ehsan
Show more
2016
International Journal Of Speech Technology

Multi-stream automatic speech recognition (MS-ASR) has been confirmed to boost the recognition performance in noisy conditions. In this system, the generation and the fusion of the streams are the essential parts and need to be designed in such a way to reduce the effect of noise on the final decision. This paper shows how to improve the performance of the MS-ASR by targeting two questions; (1) How many streams are to be combined, and (2) how to combine them. First, we propose a novel approach based on stream reliability to select the number of streams to be fused. Second, a fusion method based on Parallel Hidden Markov Models is introduced. Applying the method on two datasets (TIMIT and RATS) with different noises, we show an improvement of MS-ASR.

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Type
research article
DOI
10.1007/s10772-016-9357-1
Web of Science ID

WOS:000387583900002

Author(s)
Sagha, Hesam  
Li, Feipeng
Variani, Ehsan
Millan, Jose Del R.  
Chavarriaga, Ricardo  
Schuller, Bjoern
Date Issued

2016

Publisher

Springer Verlag

Published in
International Journal Of Speech Technology
Volume

19

Issue

4

Start page

669

End page

675

Subjects

Multi-stream speech recognition

•

Performance monitor

•

Classifier ensemble creation and fusion

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CNBI  
Available on Infoscience
January 24, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/133599
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