Language Identification Using Excitation Source Features

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This book discusses the contribution of excitation source information in discriminating language. The authors focus on the excitation source component of speech for enhancement of language identification (LID) performance. Language specific features are extracted using two different modes: (i) Implicit processing of linear prediction (LP) residual and (ii) Explicit parameterization of linear prediction residual. The book discusses how in implicit processing approach, excitation source features are derived from LP residual, Hilbert envelope (magnitude) of LP residual and Phase of LP residual; and in explicit parameterization approach, LP residual signal is processed in spectral domain to extract the relevant language specific features. The authors further extract source features from these modes, which are combined for enhancing the performance of LID systems. The proposed excitation source features are also investigated for LID in background noisy environments. Each chapter of this book provides the motivation for exploring the specific feature for LID task, and subsequently discuss the methods to extract those features and finally suggest appropriate models to capture the language specific knowledge from the proposed features. Finally, the book discuss about various combinations of spectral and source features, and the desired models to enhance the performance of LID systems.

Discusses the excitation source component in the context of language identification, detailing how it can exploited for language discrimination in speech Proposes robust signal processing methods for extracting the implicit excitation source features from LP residual signal Presents explicit parametric features for representing the excitation source component of speech Includes supplementary material: sn.pub/extras

Inhalt
Introduction.- Language Identification--A Brief Review.- Implicit Excitation Source Features for Language Identification.- Parametric Excitation Source Features for Language Identification.- Complementary and Robust Nature of Excitation Source Features for Language Identification.- Conclusion.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783319177243
    • Genre Elektrotechnik
    • Auflage 2015
    • Sprache Englisch
    • Lesemotiv Verstehen
    • Anzahl Seiten 132
    • Größe H235mm x B155mm x T8mm
    • Jahr 2015
    • EAN 9783319177243
    • Format Kartonierter Einband
    • ISBN 3319177249
    • Veröffentlichung 23.04.2015
    • Titel Language Identification Using Excitation Source Features
    • Autor Dipanjan Nandi , K. Sreenivasa Rao
    • Untertitel SpringerBriefs in Speech Technology
    • Gewicht 213g
    • Herausgeber Springer International Publishing

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