Speech emotion recognition using deep neural networks: matlab implementation
The key issues pivotal for successful Speech Emotion Recognition (SER) system are driven by a selection of proper emotional feature extraction techniques. In this book, Mel-frequency Cepstral Coefficient (MFCC) and Teager Energy Operator (TEO) along with a fusion of MFCC and TEO is examined over mul...
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my.iium.irep.887862021-03-12T03:56:38Z http://irep.iium.edu.my/88786/ Speech emotion recognition using deep neural networks: matlab implementation Ahmad Qadri, Syed Asif Gunawan, Teddy Surya Kartiwi, Mira TK7885 Computer engineering The key issues pivotal for successful Speech Emotion Recognition (SER) system are driven by a selection of proper emotional feature extraction techniques. In this book, Mel-frequency Cepstral Coefficient (MFCC) and Teager Energy Operator (TEO) along with a fusion of MFCC and TEO is examined over multilingual databases consisting of English, German and Hindi languages. Deep Neural Networks (DNN) has been used for the classification of the different emotions considered, including happy, sad, angry, and neutral. A sample of Matlab code implementation is provided in this book. The proposed system could be implemented especially in the customer service application, in which TEO-based features and DNN could be used to better handle customers during a conversation. LAP LAMBERT Academic Publishing 2021 Book PeerReviewed application/pdf en http://irep.iium.edu.my/88786/7/88786_Speech%20emotion%20recognition%20using%20deep%20neural%20networks.pdf Ahmad Qadri, Syed Asif and Gunawan, Teddy Surya and Kartiwi, Mira (2021) Speech emotion recognition using deep neural networks: matlab implementation. LAP LAMBERT Academic Publishing. ISBN 978-620-3-46534-1 |
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TK7885 Computer engineering Ahmad Qadri, Syed Asif Gunawan, Teddy Surya Kartiwi, Mira Speech emotion recognition using deep neural networks: matlab implementation |
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The key issues pivotal for successful Speech Emotion Recognition (SER) system are driven by a selection of proper emotional feature extraction techniques. In this book, Mel-frequency Cepstral Coefficient (MFCC) and Teager Energy Operator (TEO) along with a fusion of MFCC and TEO is examined over multilingual databases consisting of English, German and Hindi languages. Deep Neural Networks (DNN) has been used for the classification of the different emotions considered, including happy, sad, angry, and neutral. A sample of Matlab code implementation is provided in this book. The proposed system could be implemented especially in the customer service application, in which TEO-based features and DNN could be used to better handle customers during a conversation. |
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Book |
author |
Ahmad Qadri, Syed Asif Gunawan, Teddy Surya Kartiwi, Mira |
author_facet |
Ahmad Qadri, Syed Asif Gunawan, Teddy Surya Kartiwi, Mira |
author_sort |
Ahmad Qadri, Syed Asif |
title |
Speech emotion recognition using deep neural networks: matlab implementation |
title_short |
Speech emotion recognition using deep neural networks: matlab implementation |
title_full |
Speech emotion recognition using deep neural networks: matlab implementation |
title_fullStr |
Speech emotion recognition using deep neural networks: matlab implementation |
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Speech emotion recognition using deep neural networks: matlab implementation |
title_sort |
speech emotion recognition using deep neural networks: matlab implementation |
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LAP LAMBERT Academic Publishing |
publishDate |
2021 |
url |
http://irep.iium.edu.my/88786/7/88786_Speech%20emotion%20recognition%20using%20deep%20neural%20networks.pdf http://irep.iium.edu.my/88786/ |
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1695530661975162880 |