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Facial expression recognition using wavelet based Support Vector Machine

机译:基于小波支持向量机的面部表情识别

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The present work is an attempt to unravel the classical problem of Facial Expression Recognition (FER). In realization of the FER system the emphasis is given on preprocessing technique. The paper proposes the Gaussian mask for illumination correction pre-processing which when subtracted from histogram equalized illumination plane shows improvement in the image and the FER results. The present work shows the use of wavelet in feature extraction and Support Vector Machine (SVM) as a classifier will result in accurate and robust FER system. It proposes the quantization and encoding technique of the wavelet decomposed features that result in greater FER accuracy.
机译:当前的工作是试图阐明面部表情识别(FER)的经典问题。在FER系统的实现中,重点放在预处理技术上。本文提出了一种用于照明校正预处理的高斯掩模,当从直方图减去均衡后的照明平面时,高斯掩模可以改善图像质量和FER结果。目前的工作表明,在特征提取和支持向量机(SVM)中使用小波作为分类器将导致准确而稳健的FER系统。它提出了小波分解特征的量化和编码技术,从而提高了FER精度。

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