一种基于多手特征的非接触式多模态生物识别系统

Wei Bu, Qiushi Zhao, Xiangqian Wu, Youbao Tang, Kuanquan Wang
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引用次数: 5

摘要

本文提出了一种基于手印、掌静脉、掌背静脉、指静脉和手部几何特征的多模态生物识别系统。在该系统中,首先使用集成的非接触式采集设备采集掌纹、掌静脉和背静脉图像。然后对这些图像进行预处理,分割成6个感兴趣区域,即1个掌纹感兴趣区域、1个掌静脉感兴趣区域、3个指静脉感兴趣区域和1个背静脉感兴趣区域。然后,从每个ROI中提取特征并分别进行匹配。除了这些特征外,还从原始手掌静脉图像中提取手部几何特征并进行匹配。最后,将这些匹配分数进行融合,形成最终的评分,供决策使用。在大型数据集上的实验表明,该系统可以获得非常高的准确率(EER约为0.01%),优于任何基于单一手特征的单模态系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Contactless Multimodal Biometric System Based on Multiple Hand Features
This paper proposes a novel multimodal biometric system based on multiple hand features, i.e. palmprint, palm vein, palm dorsal vein, finger vein and hand geometry. In this system, the palmprint, palm vein and dorsal vein images are firstly captured using an integrated contactless acquisition device. And then these images are preprocessed and split into six regions of interest (ROIs), that is, one palmprint ROI, one palm vein ROI, three finger vein ROIs and one dorsal vein ROI. After that, features are extracted from each ROI and matched respectively. Besides these features, hand geometry feature is also extracted from the original palm vein image and matched. Finally, these matching scores are fused to make the final score for decision. Experiments on a large data set show that the proposed system can get a very high accuracy (the EER is around 0.01%), which outperforms any uni-modal system based on single feature of hand.
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