JOURNAL ARTICLE

Speech Emotion Recognition Based on Linear Discriminant Analysis and Support Vector Machine Decision Tree

Abstract

For speech emotion recognition, emotional feature set with high dimension may produce redundant features and influence the recognition accuracy. To solve this problem and obtain the optimal emotional feature subset of speech, a feature dimension reduction based on linear discriminant analysis is proposed. According to the confusion degree between different basic emotions, an emotion recognition method based on support vector machine decision tree is proposed. Experiment on speaker-dependent speech emotion recognition using Chinese speech database from institute of automation of Chinese academy of sciences is performed and a speech emotion recognition system is presented, where standard feature sets of the INTER-SPEECH and classic classifiers are used in comparative experiments respectively. Experimental results show that the proposal achieves 84.39% recognition accuracy on average. By proposal, it would be fast and efficient to discriminate emotional states of diverse speakers from speech, and it would make it possible to realize the interaction between speaker and computer/robot in the future.

Keywords:
Speech recognition Linear discriminant analysis Computer science Decision tree Feature (linguistics) Support vector machine Artificial intelligence Pattern recognition (psychology) Feature extraction Speaker recognition Dimension (graph theory) Feature vector Set (abstract data type) Mathematics

Metrics

16
Cited By
0.99
FWCI (Field Weighted Citation Impact)
23
Refs
0.76
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Emotion and Mood Recognition
Social Sciences →  Psychology →  Experimental and Cognitive Psychology
Face and Expression Recognition
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Color perception and design
Social Sciences →  Psychology →  Social Psychology

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