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ICPR
2006
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A Hybrid HMM-Based Speech Recognizer Using Kernel-Based Discriminants as Acoustic Models

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A Hybrid HMM-Based Speech Recognizer Using Kernel-Based Discriminants as Acoustic Models
In this paper we propose a novel order-recursive training algorithm for kernel-based discriminants which is computationally efficient. We integrate this method in a hybrid HMM-based speech recognition system by translating the outputs of the kernel-based classifier into class-conditional probabilities and using them instead of Gaussian mixtures as production probabilities of a HMM-based decoder for speech recognition. The performance of the described hybrid structure is demonstrated on the DARPA Resource Management (RM1) corpus.
Edin Andelic, Marcel Katz, Martin Schafföner,
Added 09 Nov 2009
Updated 09 Nov 2009
Type Conference
Year 2006
Where ICPR
Authors Edin Andelic, Marcel Katz, Martin Schafföner, Sven E. Krüger
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