Autoassociative Neural Network Models for Language

نویسنده

  • B. Yegnanarayana
چکیده

The objective of this paper is t o demonstrate the feasibility of automatic language identification (LID) systems, using spectral features. T h e powerful features of autoassociative neural network models are exploited for capturing the language specific features for developing the language identification system. The nonlinear models capture the complex distribution of spectral vectors in the feature space for developing system parameters. The LID system can be easily extended for more number of languages without any additional higher level linguistic information. Effectiveness of t h e proposed method is demonstrated for identification of speech utterances from four Indian languages.

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تاریخ انتشار 2009