一种有效的多模态人脸识别方法

A. Cheraghian, K. Faez, Hamidreza Dastmalchi, Farhad Bagher Oskuie
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引用次数: 8

摘要

近年来,人脸识别受到了广泛的关注。结合二维和三维人脸识别是处理人脸识别的另一种方法。提出了一种基于Gabor小波信息的多模态人脸识别算法。主成分分析(PCA)和线性判别分析(LDA)已被用于尺寸缩减。该系统在决策层面结合了二维和三维系统,与单独使用二维和三维系统的方法相比,具有更高的性能。在具有姿态变化的人脸的FRAV3D数据库中对该算法进行了验证,在rank- 1中融合实验的性能达到95%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient multimodal face recognition method robust to pose variation
In the recent years, face recognition has obtained much attention. Using combined 2D and 3D face recognition is an alternative method to deal with face recognition. A novel multimodal face recognition algorithm based on Gabor wavelet information is presented in this paper. The Principal Component Analysis (PCA) and the Linear Discriminant analysis (LDA) have been used for size reduction. The system has combined 2D and 3D systems in the decision level which presents higher performance in contrast with methods which use only 2D and 3D systems, separately. The proposed algorithm is examined with FRAV3D database that has faces with pose variation and 95% performance that is achieved in rank-one for fusion experiment.
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