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Directional Two-dimensional Neighborhood Preserving Projection for Face Recognition

机译:定向二维邻域保持投影的人脸识别

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This paper presents a novel manifold learning method, namely Directional two-dimensional neighborhood preserving embedding (Dir-2DNPE), for feature extraction. In contrast to standard NPE, Dir-2DNPE directly seeks the optimal projective vectors from the directional images without image-to-vector transformation. Moreover, Dir-2DNPE can well reserve the spatial correlations between variations of rows and those of columns of images. Experiments on the ORL and Yale databases show the effectiveness of the proposed method.
机译:本文提出了一种新颖的流形学习方法,即方向二维邻域保留嵌入(Dir-2DNPE),用于特征提取。与标准NPE相比,Dir-2DNPE直接从定向图像中寻找最佳投影矢量,而无需进行图像到矢量的转换。而且,Dir-2DNPE可以很好地保留图像行和列变化之间的空间相关性。在ORL和Yale数据库上进行的实验证明了该方法的有效性。

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