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Analysis of Noteworthy Issues in Illumination Processing for Face Recognition

机译:人脸识别照明处理中值得注意的问题分析

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Face recognition under variable illumination conditions is a challenging task. Numbers of approaches have been developed for solving the illumination problem. In this paper, we summarize and analyze some noteworthy issues in illumination processing for face recognition by reviewing various representative approaches. These issues include a principle that associates various approaches with a commonly used reflectance model and the shared considerations like contribution of basic processing methods, processing domain, feature scale, and a common problem. We also address a more essential question-what to actually normalize. Through the discussion on these issues, we also provide suggestions on potential directions for future research. In addition, we conduct evaluation experiments on 1) contribution of fundamental illumination correction to illumination insensitive face recognition and 2) comparative performance of various approaches. Experimental results show that the approaches with fundamental illumination correction methods are more insensitive to extreme illumination than without them. Tan and Triggs' method (TT) using L _(1) norm achieves the best results among nine tested approaches.
机译:在可变照明条件下的人脸识别是一项艰巨的任务。已经开发出许多解决照明问题的方法。在本文中,我们通过回顾各种代表性方法,总结并分析了用于面部识别的照明处理中的一些值得注意的问题。这些问题包括将各种方法与常用的反射率模型相关联的原理,以及诸如基本处理方法的贡献,处理域,特征尺度和常见问题之类的共同考虑因素。我们还解决了一个更基本的问题-实际进行标准化。通过对这些问题的讨论,我们还为将来的研究方向提供了建议。此外,我们进行以下评估实验:1)基本照明校正对照明不敏感的面部识别的贡献; 2)各种方法的比较性能。实验结果表明,采用基本照度校正方法的方法比没有照度校正方法的方法对极端照明更不敏感。 Tan和Triggs的使用(i)L _(1)范数的方法(TT)在九种经过测试的方法中获得了最佳结果。

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