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Contactless and Pose Invariant Biometric Identification Using Hand Surface

机译:使用手表面进行非接触式和姿势不变式生物识别

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摘要

This paper presents a novel approach for hand matching that achieves significantly improved performance even in the presence of large hand pose variations. The proposed method utilizes a 3-D digitizer to simultaneously acquire intensity and range images of the user's hand presented to the system in an arbitrary pose. The approach involves determination of the orientation of the hand in 3-D space followed by pose normalization of the acquired 3-D and 2-D hand images. Multimodal (2-D as well as 3-D) palmprint and hand geometry features, which are simultaneously extracted from the user's pose normalized textured 3-D hand, are used for matching. Individual matching scores are then combined using a new dynamic fusion strategy. Our experimental results on the database of 114 subjects with significant pose variations yielded encouraging results. Consistent (across various hand features considered) performance improvement achieved with the pose correction demonstrates the usefulness of the proposed approach for hand based biometric systems with unconstrained and contact-free imaging. The experimental results also suggest that the dynamic fusion approach employed in this work helps to achieve performance improvement of 60% (in terms of EER) over the case when matching scores are combined using the weighted sum rule.
机译:本文提出了一种新颖的手部匹配方法,即使存在较大的手部姿势变化,该方法也可以显着提高性能。所提出的方法利用3-D数字转换器同时获取以任意姿势呈现给系统的用户手部的强度和范围图像。该方法包括确定手在3-D空间中的方向,然后对获取的3-D和2-D手图像进行姿势归一化。多模态(2-D以及3-D)掌纹和手部几何特征(从用户的姿势归一化纹理化3-D手中同时提取)用于匹配。然后使用新的动态融合策略将各个匹配分数进行组合。我们在114个具有显着姿势变化的受试者的数据库上的实验结果产生了令人鼓舞的结果。姿势校正所实现的一致的(跨各种手部特征)性能改进证明了所提出的方法对于基于手部的生物识别系统的无约束且无接触成像的有用性。实验结果还表明,与使用加权和规则组合匹配分数的情况相比,这项工作中采用的动态融合方法有助于将性能提高60%(就EER而言)。

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