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Assessment of geometric features for individual identification and verification in biometric hand systems

机译:评估几何特征以在生物识别手系统中进行个人识别和验证

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This paper studies the reliability of geometric features for the identification of users based on hand biometrics. Our methodology is based on genetic algorithms and mutual information. The aim is to provide a system for user identification rather than a classification. Additionally, a robust hand segmentation method to extract the hand silhouette and a set of geometric features in hard and complex environments is described. This paper focuses on studying how important and discriminating the hand geometric features are, and if they are suitable in developing a robust and reliable biometric identification. Several public databases have been used to test our method. As a result, the number of required features have been drastically reduced from datasets with more than 400 features. In fact, good classification rates with about 50 features on average are achieved, with a 100% accuracy using the GA-LDA strategy for the GPDS database and 97% for the CAS1A and IITD databases, approximately. For these last contact-less databases, reasonable EER rates are also obtained.
机译:本文研究了基于手部生物特征识别的几何特征的可靠性。我们的方法基于遗传算法和相互信息。目的是提供一种用于用户识别而不是分类的系统。另外,描述了一种在硬和复杂环境中提取手轮廓和一组几何特征的鲁棒手分割方法。本文重点研究手几何特征的重要性和区别,以及它们是否适合开发健壮可靠的生物识别技术。几个公共数据库已用于测试我们的方法。结果,从具有400多个要素的数据集中大大减少了所需要素的数量。实际上,使用GA-LDA策略(对于GPDS数据库)和97%(对于CAS1A和IITD数据库),平均可以获得大约50个特征的良好分类率。对于这些最后的非接触式数据库,还可以获得合理的EER率。

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