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Margin Preserving Projection for Image Set Based Face Recognition

机译:基于图像集的人脸识别的边缘保留投影

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Face images are usually taken from different camera views with different expressions and illumination. Face recognition based on Image set is expected to achieve better performance than traditional single frame based methods, because this new framework can incorporate information about variations of individual's appearance and make a decision collectively. In this paper we propose a new dimensionality reduction method for image set based face recognition. In the proposed method, we transform each image set into a convex hull and use support vector machine to compute margins between each pair sets. Then we use PCA to do dimension reduction with an aim to preserve those margins. Finally we do classification using a distance based on convex hull in low dimension feature space. Experiments with benchmark face video databases validate the proposed approach.
机译:面部图像通常是从具有不同表情和照明的不同摄像机视图中拍摄的。与传统的基于单帧的方法相比,基于图像集的人脸识别有望实现更好的性能,因为该新框架可以合并有关个人外观变化的信息并共同做出决定。在本文中,我们提出了一种新的基于图像集的人脸识别的降维方法。在提出的方法中,我们将每个图像集转换为凸包,并使用支持向量机来计算每个对集之间的边距。然后,我们使用PCA进行尺寸缩减,以保留这些边距。最后,我们在低维特征空间中使用基于凸包的距离进行分类。使用基准人脸视频数据库进行的实验验证了该方法的有效性。

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