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    Audio-Visual Speech Recognition using Red Exclusion and Neural Networks

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    Automatic speech recognition (ASR) performs well under re- stricted conditions, but performance degrades in noisy envi- ronments. Audio-Visual Speech Recognition (AVSR) combats this by incorporating a visual signal into the recognition. This paper briefly reviews the contribution of psycholinguistics to this endeavour and the recent advances in machine AVSR. An important first step in AVSR is that of feature extraction from the mouth region and a technique developed by the authors is breifiy presented. This paper examines examine how useful this extraction technique in combination with several integration arhitectures is at the given task, demonstrates that vision does infact assist speech recognition when used in a linguistically guided fashion, and gives insight remaining issues.

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    Description

    Title : Audio-Visual Speech Recognition using Red Exclusion and Neural Networks
    Abstract : Automatic speech recognition (ASR) performs well under re- stricted conditions, but performance degrades in noisy envi- ronments. Audio-Visual Speech Recognition (AVSR) combats this by incorporating a visual signal into the recognition. This paper briefly reviews the contribution of psycholinguistics to this endeavour and the recent advances in machine AVSR. An important first step in AVSR is that of feature extraction from the mouth region and a technique developed by the authors is breifiy presented. This paper examines examine how useful this extraction technique in combination with several integration arhitectures is at the given task, demonstrates that vision does infact assist speech recognition when used in a linguistically guided fashion, and gives insight remaining issues.
    Subject : unspecified
    Area : Computer Science
    Language : English
    Affiliations
    Url : http://www.jrpit.flinders.edu.au/confpapers/CRPITV4Lewis.pdf
    Doi : 10.1.1.19.3603

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