DocumentCode :
3424191
Title :
An audio-visual fusion framework with joint dimensionality reducton
Author :
Liu, Ming ; Fu, Yun ; Huang, Thomas S.
Author_Institution :
Beckman Inst. for Adv. Sci. & Technol., Illinois Univ., Urbana, IL
fYear :
2008
fDate :
March 31 2008-April 4 2008
Firstpage :
4437
Lastpage :
4440
Abstract :
By combining audio and visual modalities, the speech recognition systems achieve higher performance and robustness. The fusion strategies to this point are mainly three types: feature level fusion, model level fusion, and decision level fusion. In this paper, we present a novel audio-visual fusion framework, in which a joint dimensionality reduction approach is used to project the audio and visual features into more compact subspaces. With correlation preserving criteria, the representations of projected audio and visual features will be able to preserve the correlation conveyed in the original audio and visual feature space. At the same time, the better model efficiency is achieved in the more compact feature spaces. The experiments on audio-visual person verification demonstrate the efficiency and effectiveness of the proposed fusion framework.
Keywords :
speaker recognition; video signal processing; audio-visual fusion framework; audio-visual person verification; decision level fusion; feature level fusion; joint dimensionality reduction; model level fusion; speech recognition; Acoustic noise; Automatic speech recognition; Availability; Feature extraction; Humans; Loudspeakers; Pattern recognition; Robustness; Speech recognition; Streaming media; Audio-visual fusion; audio-visual person verification; canonical correlation analysis; dimensionality reduction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech and Signal Processing, 2008. ICASSP 2008. IEEE International Conference on
Conference_Location :
Las Vegas, NV
ISSN :
1520-6149
Print_ISBN :
978-1-4244-1483-3
Electronic_ISBN :
1520-6149
Type :
conf
DOI :
10.1109/ICASSP.2008.4518640
Filename :
4518640
Link To Document :
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