用于用户身份验证的多模式生物识别技术

R. Parkavi, K. Babu, Jatinder Kumar
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引用次数: 29

摘要

本文的主要目的是为生物识别系统提供多级认证。多模态生物识别是指个人识别系统使用多种生物识别指标来识别个体。与单模态生物识别技术相比,多模态身份验证提供了更高级别的身份验证,单模态生物识别技术只使用一种生物识别数据,如指纹、面部、掌纹或虹膜。在本文中,我们利用人的指纹和虹膜在匹配分数水平上结合人的指纹和虹膜来自动识别个人。一种称为细节匹配和边缘检测的技术用于此目的。本文对该技术的性能进行了评估,并通过最小化FAR(错误接受率)和FRR(错误拒绝率)来提高准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimodal Biometrics for user authentication
The main aim of this paper is to provide multilevel authentication in biometric systems. Multimodal biometric is the usage of multiple biometric indicators by personal identification systems for identifying the individuals. Multimodal authentication provides more level of authentication than unimodal biometrics which uses only one biometric data such as fingerprint or face or palm print or iris. In this paper, we are using fingerprint and iris of a person for the automatic identification of an individual by combining finger print and iris of a person at the matching-score level. A technique called Minutiae matching and Edge detection is used for this purpose. The performance of the proposed technique has been evaluated and accuracy has been increased by minimizing the FAR (False Acceptance Rate) and FRR (False Rejection Rate).
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