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Undecimated Wavelet Transform based classification of human emotion

机译:基于未抽取小波变换的人类情感分类

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In this paper, an approach for human emotion recognition system based on Undecimated Wavelet Transform (UWT) is presented. The main drawback of Discrete Wavelet Transform (DWT) is not translation invariant. Translations of an image lead to different wavelet coefficients. UWT is used to overcome this and more comprehensive feature of the decomposed image is obtained. The classification of human emotional state is achieved by extracting the energies from all sub-bands of UWT. The robust K-Nearest Neighbor (K-NN) is constructed for classification. The evaluation of the system is carried on using JApanese Female Facial Expression (JAFFE) database. Experimental results show that the proposed UWT based human emotion recognition system produces more accurate recognition rate than DWT. For 3rd level decomposition, UWT based features produces 82% classification rate while DWT based features produces 73.22%. The maximum classification rate achieved by the proposed system is 85.62% using 5th level decomposition.
机译:本文提出了一种基于未抽取小波变换的人类情感识别系统。离散小波变换(DWT)的主要缺点不是平移不变。图像的平移导致不同的小波系数。 UWT被用来克服这个问题,并且获得了分解图像的更全面的特征。人类情感状态的分类是通过从UWT的所有子带中提取能量来实现的。健壮的K最近邻居(K-NN)用于分类。使用日本女性面部表情(JAFFE)数据库进行系统评估。实验结果表明,所提出的基于UWT的人类情感识别系统比DWT具有更高的识别率。对于3 rd 级分解,基于UWT的特征产生82%的分类率,而基于DWT的特征产生73.22%。该系统采用第五级分解得到的最大分类率为85.62%。

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