Huber Collaborative Representation for Robust Face Identification

Yulong Wang, Cui Zou, Yuanyan Tang, Lina Yang
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引用次数: 1

Abstract

In this paper, we consider the problem of recognizing human faces from the facial images of front views against random corruption. To this end, we develop a Huber collaborative representation based classification (HCRC) approach and apply it to face identification. To handle gross corruption, we exploit the robust Huber estimator as the cost function. A half-quadratic optimization algorithm is devised to solve the HCRC model efficiently. The experiments on real-life data validate the efficacy of HCRC for face identification.
鲁棒人脸识别的Huber协同表示
本文研究了人脸前视图像的人脸识别问题。为此,我们开发了一种基于Huber协作表示的分类(HCRC)方法,并将其应用于人脸识别。为了处理总腐败,我们利用鲁棒Huber估计器作为成本函数。为有效求解HCRC模型,设计了半二次优化算法。实际数据实验验证了HCRC在人脸识别中的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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