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Communication Dans Un Congrès Année : 1997

MIXED ACOUSTIC EVENTS CLASSIFICATION USING ICA AND SUBSPACE CLASSIFIER

Résumé

A B S T R A C T This paper describes a new neural architecture for u i i-supervised learning of a classificat,ion of mixed t.rair-sient, signals. This method is I)asetl oii neural tkcli-niques for blind separation of sources and sul)space i-net,liotls. The feed-forward neural iiet,work dynaiii-ically builds and refreshes a n acoustic event.s classification by detecting novelties, creat,ing antl deleting classes. A self-organization process achieves a class prototype rotation in order to niinirnise the st,at,isti-cal dependence of class activities. Siiriulatd nirilt,i-tliniensional signals and rnixed acoustic signals i i i real noisy environment have been used to test, our inotlel. T h c result
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hal-01318300 , version 1 (19-05-2016)

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  • HAL Id : hal-01318300 , version 1

Citer

Georges Linarès, Pascal Nocera, H. Meloni. MIXED ACOUSTIC EVENTS CLASSIFICATION USING ICA AND SUBSPACE CLASSIFIER. IEEE International Conference on Acoustics, Speech, and Signal ICASSP-97, Apr 1997, Munich, Germany. ⟨hal-01318300⟩

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