Discriminative likelihood score weighting based on acoustic-phonetic classification for speaker identification

In this paper, a new discriminative likelihood score weighting technique is proposed for speaker identification. The proposed method employs a discriminative weighting of frame-level log-likelihood scores with acoustic-phonetic classification in the Gaussian mixture model (GMM)-based speaker identif...

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Veröffentlicht in:EURASIP journal on advances in signal processing 2014-08, Vol.2014 (1), p.1-7, Article 126
Hauptverfasser: Suh, Youngjoo, Kim, Hoirin
Format: Artikel
Sprache:eng
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Zusammenfassung:In this paper, a new discriminative likelihood score weighting technique is proposed for speaker identification. The proposed method employs a discriminative weighting of frame-level log-likelihood scores with acoustic-phonetic classification in the Gaussian mixture model (GMM)-based speaker identification. Experiments performed on the Aurora noise-corrupted TIMIT database showed that the proposed approach provides meaningful performance improvement with an overall relative error reduction of 15.8% over the maximum likelihood-based baseline GMM approach.
ISSN:1687-6180
1687-6172
1687-6180
DOI:10.1186/1687-6180-2014-126