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Face recognition using combined multiple feature extraction based on Fourier-Mellin approach for single example image per person

机译:使用基于傅里叶-梅林方法的组合多特征提取进行人脸识别

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摘要

At present there are many methods that could deal well with frontal view face recognition. However, most of them cannot work well when there is only single example image per person. In order to deal with this problem of single example image per person is stored in the system in the real-world application. In this paper, we present a combined multiple features extraction based on Fourier-Mellin approach for face recognition with single example per person. The performance of Fourier-AFMT approach extracted frequency invariant features and OFMM approach extracted moment invariant features is applied individually, and these two kinds of features are combined and classified with correlation coefficient method (CCM). Experiments are implemented on YALE and ORL face databases to demonstrate the efficient of proposed methods. The experimental results show that the average recognition accuracy rate of our proposed methods higher than that of state-of-the-art methods.
机译:目前,有很多方法可以很好地处理正面人脸识别。但是,当每个人只有一个示例图像时,它们中的大多数都无法正常工作。为了解决这个问题,在真实应用程序中,每个人的图像示例存储在系统中。在本文中,我们提出了一种基于傅里叶-梅林方法的组合多特征提取,用于人脸识别,每个人只有一个示例。分别应用Fourier-AFMT方法提取的频率不变特征和OFMM方法提取的矩不变特征的性能,并用相关系数法(CCM)对这两种特征进行组合和分类。在YALE和ORL人脸数据库上进行了实验,以证明所提出方法的效率。实验结果表明,我们提出的方法的平均识别准确率要高于最新方法。

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