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Appearance-based periocular features in the context of face and non-ideal iris recognition - Springer

机译:在面部和非理想虹膜识别的背景下基于外观的眼周特征-Springer

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摘要

Developing newer approaches to deal with non-ideal scenarios in face and iris biometrics has been a key focus of research in recent years. The same reason motivates the study of the periocular biometrics as its use has a potential of significantly impacting the iris- and face-based recognition. In this paper, we explore the utility of the various appearance features extracted from the periocular region from different perspectives: (i) as an independent biometric modality for human identification, (ii) as a tool that can aid iris recognition in non-ideal situations in the near infra-red (NIR) spectrum, and (iii) as a possible partial face recognition technique in the visible spectrum. We employ a local appearance-based feature representation, where the periocular image is divided into spatially salient patches, appearance features are computed for each patch locally, and the local features are combined to describe the entire image. The images are matched by computing the distance between the corresponding feature representations using various distance metrics. The evaluation of the periocular region-based recognition and comparison to face recognition is performed in the visible spectrum using the FRGC face dataset. For fusion of the periocular and iris modality, we use the MBGC NIR face videos. We demonstrate that in certain non-ideal conditions encountered in our experiments, the periocular biometrics is superior to iris in the NIR spectrum. Furthermore, we also demonstrate that recognition performance of the periocular region images is comparable to that of face in the visible spectrum.
机译:近年来,开发新的方法来处理面部和虹膜生物特征识别中的非理想情况一直是研究的重点。出于同样的原因,人们也开始研究眼周生物识别技术,因为其使用可能会极大地影响基于虹膜和面部的识别。在本文中,我们从不同的角度探讨了从眼周区域提取的各种外观特征的实用性:(i)作为一种独立的生物识别方式进行人类识别,(ii)作为可在非理想情况下帮助虹膜识别的工具(iii)作为可见光谱中可能的部分人脸识别技术。我们采用基于局部外观的特征表示,其中将眼周图像分为空间上显着的斑块,为每个斑块局部计算外观特征,然后将局部特征组合起来以描述整个图像。通过使用各种距离度量来计算相应特征表示之间的距离来匹配图像。使用FRGC人脸数据集在可见光谱中进行基于眼周区域的识别以及与人脸识别的比较的评估。对于眼周和虹膜模态的融合,我们使用MBGC NIR面部视频。我们证明,在我们的实验中遇到的某些非理想条件下,在NIR光谱中,眼周生物特征优于虹膜。此外,我们还证明了眼周区域图像的识别性能与可见光谱中的面部识别性能相当。

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