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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A comparative study on illumination preprocessing in face recognition
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A comparative study on illumination preprocessing in face recognition

机译:人脸识别中光照预处理的比较研究

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摘要

Illumination preprocessing is an effective and efficient approach in handling lighting variations for face recognition. Despite much attention to face illumination preprocessing, there is seldom systemic comparative study on existing approaches that presents fascinating insights and conclusions in how to design better illumination preprocessing methods. To fill this vacancy, we provide a comparative study of 12 representative illumination preprocessing methods (HE, LT, GIC, DGD, LoG, SSR, GHP, SQI, LDCT, LTV, LN and TT) from two novel perspectives: (1) localization for holistic approach and (2) integration of large-scale and small-scale feature bands. Experiments on public face databases (YaleBExt, CMU-PIE, CAS-PEAL and FRGC V2.0) with illumination variations suggest that localization for holistic illumination preprocessing methods (HE, GIC, LTV and TT) further improves the performance. Integration of large-scale and small-scale feature bands for reflectance field estimation based illumination preprocessing approaches (SSR, GHP, SQI, LDCT, LTV and TT) is also found helpful for illumination-insensitive face recognition.
机译:照明预处理是一种有效而有效的方法,可处理人脸识别的照明变化。尽管对面部照明预处理非常关注,但很少有关于现有方法的系统比较研究,在如何设计更好的照明预处理方法方面提出了有趣的见解和结论。为了填补这一空缺,我们从两个新颖的角度对12种代表性的照明预处理方法(HE,LT,GIC,DGD,LoG,SSR,GHP,SQI,LDCT,LTV,LN和TT)进行了比较研究:(1)本地化整体方法和(2)大型和小型特征带的集成。在具有照明变化的公众面部数据库(YaleBExt,CMU-PIE,CAS-PEAL和FRGC V2.0)上进行的实验表明,整体照明预处理方法(HE,GIC,LTV和TT)的本地化进一步提高了性能。还发现,针对基于反射场估计的照明预处理方法(SSR,GHP,SQI,LDCT,LTV和TT),大规模和小规模特征带的集成也有助于对光照不敏感的人脸识别。

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