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Using the idea of the sparse representation to perform coarse-to-fine face recognition

机译:使用稀疏表示的思想进行从粗到细的人脸识别

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摘要

In this paper, we propose a coarse-to-fine face recognition method. This method consists of two stages and works in a similar way as the well-known sparse representation method. The first stage determines a linear combination of all the training samples that is approximately equal to the test sample. This stage exploits the determined linear combination to coarsely determine candidate class labels of the test sample. The second stage again determines a weighted sum of all the training samples from the candidate classes that is approximately equal to the test sample and uses the weighted sum to perform classification. The rationale of the proposed method is as follows: the first stage identifies the classes that are "far" from the test sample and removes them from the set of the training samples. Then the method will assign the test sample into one of the remaining classes and the classification problem becomes a simpler one with fewer classes. The proposed method not only has a high accuracy but also can be clearly interpreted.
机译:在本文中,我们提出了一种从粗到细的人脸识别方法。该方法包括两个阶段,并且以与众所周知的稀疏表示方法相似的方式工作。第一阶段确定所有训练样本的线性组合,该线性组合大约等于测试样本。该阶段利用确定的线性组合来粗略确定测试样品的候选类别标签。第二阶段再次从候选类别中确定所有训练样本的加权和,该加权和大约等于测试样本,并使用该加权和执行分类。提出的方法的基本原理如下:第一阶段确定与测试样本“相距较远”的类别,并将其从训练样本集中删除。然后,该方法会将测试样本分配给其余类别之一,分类问题将变成类别较少的简单问题。所提出的方法不仅精度高,而且可以清楚地解释。

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