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Enhancement of an Arabic Speech Emotion Recognition System

Abstract

In this paper, a novel two phase model is proposed to enhance an emotion recognition system. The system recognizes three emotions, happy, angry and surprised from a realistic Arabic speech corpus. Thirty five classification models were applied and the Sequential minimal optimization (SMO) classifier gave the best result with 95.52% accuracy. After applying the two- phase proposed model, an in enhancement of 3% is achieved for all classification methods. The model is then verified by two training sets and results are analyzed.

Author(s)

Samira Kouleilat

Coauthor(s)

Rached Zantout

Journal/Conference Information

International Journal of Applied Engineering Research,DOI: none, ISSN: 0973-4562, Volume: 13, Issue: 5, Pages Range: 2380-2389