基于非齐次K-d树的高效虹膜编码存储与搜索技术

Kavitha Amit Bakshi, B. G. Prasad, K. Sneha
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引用次数: 3

摘要

虹膜识别由于具有较高的可靠性和准确性,越来越多地被用作生物特征认证的主要方法。利用虹膜的独特模式,运用模式识别技术进行人员识别。随着虹膜识别系统使用量的增加,需要在大型虹膜数据库中存储和检索用于匹配的虹膜编码数量也成比例地增加。在庞大的虹膜模板数据库中进行虹膜匹配的检索,对检索的准确性和效率提出了挑战。该模型采用非齐次K-d树结构对虹膜编码进行存储和匹配,提高了虹膜识别系统的搜索精度。在IITD和CASIA数据集上对该模型进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient iris code storing and searching technique for Iris Recognition using non-homogeneous K-d tree
Iris Recognition is increasingly being used as the main method for biometric authentication since it is highly reliable and accurate. It considers the unique patterns of the iris to identify personnel by applying pattern recognition techniques. As the usage of iris recognition system increases, the number of iris code to be stored and retrieved for matching in large database of irises increases proportionally. Searching for the iris match in a huge database of iris templates poses challenges to research community in terms of retrieval accuracy and efficiency. The non-homogenous K-d tree structure used in the proposed model stores and matches iris code, which improves the search accuracy of the iris recognition system. The proposed model is tested on IITD and CASIA datasets.
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