Maximum likelihood method for finding an adapted speaker model in eigenvoice space

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United States of America Patent

PATENT NO 6263309
SERIAL NO

09070054

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Abstract

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A set of speaker dependent models is trained upon a comparatively large number of training speakers, one model per speaker, and model parameters are extracted in a predefined order to construct a set of supervectors, one per speaker. Principle component analysis is then performed on the set of supervectors to generate a set of eigenvectors that define an eigenvoice space. If desired, the number of vectors may be reduced to achieve data compression. Thereafter, a new speaker provides adaptation data from which a supervector is constructed by constraining this supervector to be in the eigenvoice space based on a maximum likelihood estimation. The resulting coefficients in the eigenspace of this new speaker may then be used to construct a new set of model parameters from which an adapted model is constructed for that speaker. Environmental adaptation may be performed by including environmental variations in the training data.

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Patent OwnerAddress
PANASONIC INTELLECTUAL PROPERTY CORPORATION OF AMERICA2050 W 190TH STREET SUITE 450 TORRANCE CA 90504

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Inventor(s)

Inventor Name Address # of filed Patents Total Citations
Junqua, Jean-Claude Santa Barbara, CA 102 8763
Kuhn, Roland Santa Barbara, CA 51 4922
Nguyen, Patrick Isla Vista, CA 60 2846

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