A study on partial face recognition of eye region

C. Teo, H. Neo, A. Teoh
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引用次数: 15

Abstract

In this preliminary study, we have investigated the human eye as an important part of face for personal authentication under certain restricted circumstances related to face occlusion, individual privacy concerns and religious practices. Although this part of face is not as unique as full-face, but it offers much higher computational efficiency with minimum processing steps, and minimum storage capacity as compared to full-face. In our experiments, the frontal human eye images are generated from Essex dataset with 153 subjects. The images are tested with non-negative matrix factorization (NMF), local NMF (LNMF) and spatially confined NMF (SFNMF) respectively. Our experiments show that LNMF performs most optimally to attain 95.12% recognition rate, follow by SFNMF and NMF, which achieve 94.48% and 93.23%, respectively. It is evidenced that LNMF and SFNMF performs better than sole plain NMF. Besides, another goal of this paper is to study the influence of r, to which degree the basis number is sufficient to achieve the optimal recognition rate.
眼区人脸局部识别的研究
在这项初步研究中,我们研究了人眼作为人脸的重要组成部分,在某些与面部遮挡、个人隐私问题和宗教习俗有关的限制情况下进行个人身份验证。虽然这部分人脸不像正面那样独特,但与正面相比,它以最少的处理步骤和最小的存储容量提供了更高的计算效率。在我们的实验中,人眼正面图像是由Essex数据集中的153个受试者生成的。分别采用非负矩阵分解(NMF)、局部NMF (LNMF)和空间受限NMF (SFNMF)对图像进行检测。实验表明,LNMF的识别率最高,达到95.12%,其次是SFNMF和NMF,分别达到94.48%和93.23%。结果表明,LNMF和SFNMF的性能优于单纯的普通NMF。此外,本文的另一个目标是研究r的影响,在多大程度上基数足以达到最优识别率。
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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