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Content-Based Audio Classification Using Support Vector Machines and Independent Component Analysis

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5 Author(s)
Jia-Ching Wang ; Dept. of Electr. Eng., National Cheng Rung Univ., Tainan ; Jhing-Fa Wang ; Cai-Bei Lin ; Kun-Ting Jian
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In this paper, we present a new audio classification system. First, a frame-based multiclass support vector machine (SVM) for audio classification is proposed. The accuracy rate has significant improvements over conventional file-based SVM audio classifier. In feature selection, this study transforms the log powers of the critical-band filters based on independent component analysis (ICA). This new audio feature is combined with mel-frequency cepstral coefficients (MFCCs) and five perceptual features to form an audio feature set. The superiority of the proposed system has been demonstrated via a 15-class sound database with a 91.7% accuracy rate

Published in:
Pattern Recognition, 2006. ICPR 2006. 18th International Conference on  (Volume:4 )

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