基于手掌RGB和NIR图像的身份验证

Jaekwon Lee, Jooyoung Kim, K. Toh
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引用次数: 0

摘要

本文提出从多光谱图像中提取掌纹和掌静脉线的交点,并将其作为身份验证的可靠特征。本质上,利用基数方向图像差分运算和,基于简单矩阵投影,分别从图像光谱蓝色通道和近红外通道的手掌图像中提取掌纹和掌脉线特征。然后,提取两个生物特征线特征的交点位置,并利用其计算一组关键点描述子。根据提取的关键点描述符计算匹配分数后,对蓝色通道和近红外通道的匹配结果进行分数级融合,提高验证性能。在一个公共领域的多光谱手掌数据库上进行了实验,取得了令人鼓舞的验证精度结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identity Verification based on the RGB and NIR Images of the Palm
In this paper, we propose to extract the intersection points of the palmprint and the palm-vein lines from multi-spectral images and use them as reliable features for identity verification. Essentially, by utilizing a sum of cardinal directional image difference operation, the palmprint and palm-vein line features are respectively extracted from palm images of the Blue channel and the NIR channel of image spectrums based on simple matrix projection. Subsequently, the intersection locations of the two biometric line features are extracted and utilized to compute a set of keypoint descriptors. After calculating the match scores based on the extracted keypoint descriptors, a score level fusion of the matching results obtained from the Blue channel and the NIR channel is adopted to enhance the verification performance. The proposed method has been experimented on a public domain multispectral palm database where encouraging results in terms of verification accuracy have been obtained.
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