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Experiments on Open-Set Speaker Identification with Discriminatively Trained Neural Networks

2019-04-02 · Stefano Imoscopi, Volodya Grancharov, Sigurdur Sverrisson, Erlendur Karlsson, Harald Pobloth

This paper presents a study on discriminative artificial neural network classifiers in the context of open-set speaker identification. Both 2-class and multi-class architectures are tested against the conventional Gaussian mixture model based classifier on enrolled speaker sets of different sizes. The performance evaluation shows that the multi-class neural network system has superior performance for large population sizes.

📄 PDF Abstract BibTeX arXiv:1904.01269

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Speaker Identification

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