A combining approach for 2D face recognition application on IV2 database

Nefissa Khiari Hili, S. Lelandais, Christophe Montagne, K. Hamrouni
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Abstract

It is often difficult to deal with the problem of 2D-face recognition under unconstrained conditions. The objective of this study is to develop an original method that overcomes such obstructions. The proposed approach combines a holistic method, the Principal Component Analysis (PCA) to a local method, the Steerable Pyramid (SP). All tests were run on IV2 database, with challenging variability and including 3500 to 5000 comparisons by experiment from 315 different people. The followed protocol was established in the first evaluation campaign on 2D-face images using the multimodal IV2 database. Comparison with five submitted algorithms as PCA, LDA and LDA/Gabor provides satisfying results.
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基于IV2数据库的二维人脸识别组合方法
无约束条件下的二维人脸识别问题往往难以处理。本研究的目的是开发一种克服这些障碍的原始方法。提出的方法结合了整体方法,主成分分析(PCA)和局部方法,可导向金字塔(SP)。所有测试都在IV2数据库上运行,具有挑战性的可变性,包括来自315个不同人的3500到5000个比较。以下协议是在使用多模态IV2数据库对2d面部图像进行的第一次评估活动中建立的。通过与PCA、LDA和LDA/Gabor算法的比较,得到了满意的结果。
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