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Quaternion-based improved LPP method for color face recognition

机译:基于四元数的改进的LPP彩色人脸识别方法

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摘要

In recent years, pattern recognition and computer vision have increasingly become the focus of research. Locality preserving projection (LPP) is a very important learning method in these two fields and has been widely used. Using LPP to perform face recognition, we usually can get a high accuracy. However, the face recognition application of LPP suffers from a number of problems and the small sample size is the most famous one. Moreover, though the face image is usually a color image, LPP cannot sufficiently exploit the color and we should first convert the color image into the gray image and then apply LPP to it. Transforming the color image into the gray image will cause a serious loss of image information. In this paper, we first use the quaternion to represent the color pixel. As a result, an original training or test sample can be denoted as a quaternion vector. Then we apply LPP to the quaternion vectors to perform feature extraction for the original training and test samples. The devised quaternion-based improved LPP method is presented in detail. Experimental results show that our method can get a higher classification accuracy than other methods.
机译:近年来,模式识别和计算机视觉已越来越成为研究的重点。位置保留投影(LPP)是这两个领域中非常重要的学习方法,已被广泛使用。使用LPP进行人脸识别,通常可以获得较高的准确性。然而,LPP的面部识别应用存在许多问题,并且小样本量是最著名的一种。而且,尽管面部图像通常是彩色图像,但是LPP无法充分利用彩色,因此我们应该首先将彩色图像转换为灰色图像,然后再对其应用LPP。将彩色图像转换为灰色图像会导致图像信息严重丢失。在本文中,我们首先使用四元数来表示彩色像素。结果,原始训练或测试样本可以表示为四元数向量。然后,我们将LPP应用于四元数向量,以对原始训练和测试样本执行特征提取。详细介绍了基于四元数的改进LPP方法。实验结果表明,与其他方法相比,该方法具有更高的分类精度。

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