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Image-to-image face recognition using Dual Linear Regression based Classification and Electoral College voting

机译:基于双线性回归的分类和选举大学投票的图像到图像面部识别

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This paper proposes an image-to-image face recognition algorithm that uses Dual Linear Regression based Classification (DLRC) and an Electoral College voting approach. Each face image involved is first converted into a cluster of images; each image in the cluster is obtained by shifting the original image a few pixels. The similarity of a pair of face images can be measured by comparing the distance between the corresponding image clusters, which is calculated using DLRC approach. To further improve performance, each cluster of images, representing a single face image, is then partitioned into a union of clusters of sub images. DLRC is then used to measure similarities between corresponding sub-image clusters to provide temporary identity decisions; a voting approach is applied to make final conclusions. We have carried out experiments on a benchmark dataset for face recognition. The result demonstrates that the proposed approach works best in certain simple situations, while its performance is also comparable to known algorithms in complicated situations.
机译:本文提出了采用基于双线性回归分类(DLRC)和选举团投票方式的图像 - 图像人脸识别算法。涉及的每个脸部图像首先转换为一群图像;通过将原始图像移位几个像素来获得群集中的每个图像。可以通过比较使用DLRC方法计算的相应图像簇之间的距离来测量一对面部图像的相似性。为了进一步提高性能,然后将表示单个面部图像的每个图像群体被划分为子图像的簇簇。然后使用DLRC来测量相应的子图像集群之间的相似性,以提供临时标识决策;投票方式适用于最终结论。我们对面部识别进行了基准数据集进行了实验。结果表明,所提出的方法在某些简单情况下最佳地工作,而其性能也与复杂情况的已知算法相媲美。

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