Robust Emotion Recognition using Spectral and Prosodic Features

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Last edited by ImportBot
February 26, 2022 | History

Robust Emotion Recognition using Spectral and Prosodic Features

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In this brief, the authors discuss recently explored spectral (sub-segmental and pitch synchronous) and prosodic (global and local features at word and syllable levels in different parts of the utterance) features for discerning emotions in a robust manner.

The authors also delve into the complementary evidences obtained from excitation source, vocal tract system and prosodic features for the purpose of enhancing emotion recognition performance. Features based on speaking rate characteristics are explored with the help of multi-stage and hybrid models for further improving emotion recognition performance. Proposed spectral and prosodic features are evaluated on real life emotional speech corpus.

Publish Date
Language
English
Pages
118

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Previews available in: English

Edition Availability
Cover of: Robust Emotion Recognition using Spectral and Prosodic Features
Robust Emotion Recognition using Spectral and Prosodic Features
Jan 12, 2013, Springer
paperback
Cover of: Robust Emotion Recognition using Spectral and Prosodic Features
Robust Emotion Recognition using Spectral and Prosodic Features
2013, Springer New York, Imprint: Springer
electronic resource / in English
Cover of: Robust Emotion Recognition using Spectral and Prosodic Features
Robust Emotion Recognition using Spectral and Prosodic Features
Jan 12, 2013, Springer
paperback

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Book Details


Table of Contents

Introduction
Robust Emotion Recognition using Pitch Synchronous and Sub-syllabic Spectral Features
Robust Emotion Recognition using Word and Syllable Level Prosodic Features
Robust Emotion Recognition using Combination of Excitation Source, Spectral and Prosodic Features
Robust Emotion Recognition using Speaking Rate Features
Emotion Recognition on Real Life Emotions
Summary and Conclusions
MFCC Features
Gaussian Mixture Model (GMM).

Edition Notes

Published in
New York, NY
Series
SpringerBriefs in Electrical and Computer Engineering

Classifications

Dewey Decimal Class
621.382
Library of Congress
TK5102.9, TA1637-1638, TK7882.S65, TK7882.S65 S744 2013

The Physical Object

Format
[electronic resource] /
Pagination
XII, 118 p. 37 illus., 15 illus. in color.
Number of pages
118

ID Numbers

Open Library
OL27085854M
Internet Archive
robustemotionrec00raok
ISBN 13
9781461463603
LCCN
2012954864

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History

Download catalog record: RDF / JSON
February 26, 2022 Edited by ImportBot import existing book
November 13, 2020 Edited by MARC Bot import existing book
July 7, 2019 Created by MARC Bot import new book