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A One-Sample per Individual Face Recognition Algorithm Based on Multiple One-Dimensional Projection Lines

机译:基于多条一维投影线的单样本人脸识别算法

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This paper proposes a novel approach for face recognition when only one sample per individual is available. The proposed technique, referred to as MODPL, determines a one-dimensional projection line for each individual in the dataset. Each of these lines discriminates the corresponding individual with respect to the other people in the database. The vector consisting on the projections of the individual's raw data on the different projections lines provides an excellent characterization of the individual. Results obtained using the XM2VTS database show that the proposed technique is capable of achieving classification rates similar to the ones obtained by means of the Uniform-pursuit algorithm and at least 5% higher than other currently used techniques that deal with the one sample problem. Two additional sets of experiments were conducted on the BioID and AR databases, where the proposed algorithm showed a performance similar to the state-of-the-art algorithms. Moreover, the proposed technique allows the visualization of the most discriminative features of the individuals.
机译:当每个人只有一个样本时,本文提出了一种新颖的人脸识别方法。所提出的技术称为MODPL,它为数据集中的每个人确定了一维投影线。这些行中的每一行都相对于数据库中的其他人来区分相应的个人。由个人原始数据在不同投影线上的投影组成的向量可很好地表征个体。使用XM2VTS数据库获得的结果表明,所提出的技术能够实现与通过Uniform-pursuit算法获得的分类率相似的分类率,并且比目前使用的处理一个样本问题的其他技术至少高5%。在BioID和AR数据库上进行了另外两组实验,其中所提出的算法显示出与最新算法相似的性能。而且,所提出的技术允许可视化个体的最有区别的特征。

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