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Sparse representation classifier steered discriminative projection with applications to face recognition

机译:稀疏表示分类器指导判别投影及其在人脸识别中的应用

摘要

A sparse representation-based classifier (SRC) is developed and shows great potential for real-world face recognition. This paper presents a dimensionality reduction method that fits SRC well. SRC adopts a class reconstruction residual-based decision rule, we use it as a criterion to steer the design of a feature extraction method. The method is thus called the SRC steered discriminative projection (SRC-DP). SRC-DP maximizes the ratio of between-class reconstruction residual to within-class reconstruction residual in the projected space and thus enables SRC to achieve better performance. SRC-DP provides low-dimensional representation of human faces to make the SRC-based face recognition system more efficient. Experiments are done on the AR, the extended Yale B, and PIE face image databases, and results demonstrate the proposed method is more effective than other feature extraction methods based on the SRC.
机译:基于稀疏表示的分类器(SRC)被开发出来,并显示出在现实世界中面部识别的巨大潜力。本文提出了一种非常适合SRC的降维方法。 SRC采用基于残差的类重构决策规则,以此为准则指导特征提取方法的设计。因此,该方法称为SRC导向判别投影(SRC-DP)。 SRC-DP最大化了投影空间中类间重构残差与类内重构残差的比率,从而使SRC可以获得更好的性能。 SRC-DP提供人脸的低维表示,从而使基于SRC的人脸识别系统更加高效。在AR,扩展的Yale B和PIE人脸图像数据库上进行了实验,结果表明该方法比基于SRC的其他特征提取方法更有效。

著录项

  • 作者

    Yang J; Chu D; Zhang L; Xu Y;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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