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Performance of MPEG-7 edge histogram descriptor in face recognition using Principal Component Analysis

机译:基于主成分分析的MPEG-7边缘直方图描述符在人脸识别中的性能

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Face recognition is considered as a high dimensionality problem. To handle high dimensionality, a numerous methods have been proposed in literature. In this paper, we propose a novel face recognition method that efficiently solves that problem using MPEG-7 edge histogram descriptor. To the authors' knowledge, this is the first attempt to use edge histogram descriptor in face recognition. Although MPEG-7 standard represents only local edge histogram we use global and semi-global edge histogram also. We find that local edge histogram mostly helpful for face recognition. We test our system not only using the entire face image as input but also dividing the image into different sub-divisions. PCA is then applied to the edge histogram descriptors of sub-divisions in-stead of raw pixel intensity values of images which traditional methods do. Since we use normalized edge histogram, our face recognition method becomes scale, translation and rotation invariant. Furthermore, our proposed method does not necessarily require all images to be of same resolution as input. We evaluate the proposed method using ORL, Yale and Face94 face databases and achieve superior performance.
机译:人脸识别被认为是高维问题。为了处理高维,文献中已经提出了许多方法。在本文中,我们提出了一种新颖的人脸识别方法,该方法可以使用MPEG-7边缘直方图描述符有效解决该问题。据作者所知,这是在面部识别中首次使用边缘直方图描述符的尝试。尽管MPEG-7标准仅表示局部边缘直方图,但我们也使用全局和半全局边缘直方图。我们发现局部边缘直方图最有助于人脸识别。我们不仅使用整个面部图像作为输入来测试我们的系统,还将图像划分为不同的细分。然后将PCA应用于细分的边缘直方图描述符,而不是像传统方法那样将其应用于图像的原始像素强度值。由于我们使用归一化的边缘直方图,因此我们的人脸识别方法将变成比例,平移和旋转不变。此外,我们提出的方法不一定要求所有图像都具有与输入相同的分辨率。我们使用ORL,Yale和Face94人脸数据库评估了提出的方法,并获得了出色的性能。

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