DocumentCode :
3061412
Title :
Combination of Multiple Classifiers for Improving Emotion Recognition in Mandarin Speech
Author :
Pao, Tsang-Long ; Chien, Charles S. ; Chen, Yu-Te ; Yeh, Jun-Heng ; Cheng, Yun-Maw ; Liao, Wen-Yuan
Author_Institution :
Tatung Univ., Tatung
Volume :
1
fYear :
2007
fDate :
26-28 Nov. 2007
Firstpage :
35
Lastpage :
38
Abstract :
Automatic emotional speech recognition system can be characterized by the selected features, the investigated emotional categories, the methods to collect speech utterances, the languages, and the type of classifier used in the experiments. Until now, several classifiers are adopted independently and tested on numerous emotional speech corpora but no any classifier is enough to classify the emotional classes optimally. In this paper, we focus on combination schemes of multiple classifiers to achieve best possible recognition rate for the task of 5-classes emotion recognition in Mandarin speech. The investigated classifiers include KNN, WKNN, WCAP, W-DKNN and SVM. The experimental results have shown that classifier combination schemes, including majority voting method, minimum misclassification method and maximum accuracy method, perform better than the single classifiers in terms of overall accuracy with improvements ranging from 0.9%~6.5%.
Keywords :
emotion recognition; natural languages; speech recognition; Mandarin speech; automatic emotional speech recognition system; emotional categories; emotional speech corpora; majority voting method; maximum accuracy method; minimum misclassification method; multiple classifiers; Computer science; Emotion recognition; Engineering management; Euclidean distance; Humans; Natural languages; Speech recognition; Support vector machine classification; Support vector machines; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Information Hiding and Multimedia Signal Processing, 2007. IIHMSP 2007. Third International Conference on
Conference_Location :
Kaohsiung
Print_ISBN :
978-0-7695-2994-1
Type :
conf
DOI :
10.1109/IIHMSP.2007.4457487
Filename :
4457487
Link To Document :
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