基于近似图像Gabor局部二值模式的情绪和性别分类

K. S. Kalsi, P. Rai
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引用次数: 8

摘要

性别分类和情感检测在区域安全中起着重要的作用。性别分类和情绪检测有助于识别一个人的性别(男性/女性)与他们的情绪(快乐/悲伤)仅从面部图像。在性别分类和情感检测领域已经有了单独的研究,但没有结合在一起。本文提出了一种针对特定人脸图像同时进行情感和性别检测的系统。本文采用近似图像Gabor局部二值模式(AIGLBP)进行特征提取,采用支持向量机进行分类。实验的数量是在标准的人脸图像数据库上进行的,这些数据库是在受控的(FERET和INDIAN face)环境下进行的。实验结果表明,该系统在速度和精度方面都具有较高的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A classification of emotion and gender using approximation image Gabor local binary pattern
Gender classification and emotion detection plays an important role in the areas security. Gender classification and emotion detection aids in identification of a person by recognizing its gender (male/female) with their emotions (happy/sad) from the face image only. Individual works has been done in the Gender classification and emotion detection fields but not together. In this paper, we proposed a system to do detection of emotion and gender simultaneously for a specific face image. In this paper AIGLBP (Approximation image Gabor local binary pattern) is applied for feature extraction and SVM is used for classification. The number of experiments is initiated on a standard face image databases taken in controlled (FERET and INDIAN FACE) environment. The experimental results demonstrate that the proposed system is effective enough to give high performance in terms of speed and accuracy.
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