Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/34255
Title: Feature based classification for classroom speech intelligibility prediction
Authors: M. Ridhwan, Tamjis
Sazali, Yaacob, Prof. Dr.
Pandian, Paulraj Murugesa, Prof. Dr.
Ahmad Nazri, Abdullah
Boon, Raymond Whee Heng,Prof. Dr.
mystril_nd@yahoo.com
s.yaacob@unimap.edu.my
paul@unimap.edu.my.
rbwheng@unimap.edu.my
Keywords: Audio feature extraction
Classroom speech intelligibility
Elman
Prediction
STI
Issue Date: Sep-2011
Publisher: IEEE Conference Publications
Citation: p. 1-5
Series/Report no.: Proceeding of The 3rd National Postgraduate Conference - Energy and Sustainability: Exploring the Innovative Minds (NPC 2011);
Abstract: Education is one of the most important aspects in human life. Nowadays, a quality education not only rely on the teaching itself, but also the environment. One of the important aspects in providing an educative environment is the acoustic quality of the teaching facilities. In this paper, a signal processing based classroom speech intelligibility prediction will be discussed. There are four main stages involved in this research, which were measurement, preprocessing, feature extraction and classification. Two types of audio features were used in this research and the classification results were compared. It was concluded that Elman classifiers trained with zero-crossing rate features tend to produce better classification accuracy compared to the spectral roll off.
Description: Proceeding of The 3rd National Postgraduate Conference - Energy and Sustainability: Exploring the Innovative Minds (NPC 2011) at Perak, Malaysia on 19 September 2011 through 20 September 2011
URI: http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=6136318&tag=1 untranslated
http://dspace.unimap.edu.my:80/dspace/handle/123456789/34255
ISBN: 978-1-4577-1882-3
Appears in Collections:Paulraj Murugesa Pandiyan, Assoc. Prof. Dr.
Raymond Boon Whee Heng, Prof. Dr.
Sazali Yaacob, Prof. Dr.

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