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Markov chain model for multimodal biometric rank fusion - Springer

机译:用于多峰生物特征秩融合的马尔可夫链模型-Springer

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摘要

Multimodal biometric aims at increasing reliability of biometric systems through utilizing more than one biometric in decision-making process. An effective fusion scheme is necessary for combining information from various sources. Such information can be integrated at several distinct levels, such as sensor level, feature level, match score level, rank level, and decision level. In this paper, we present a multimodal biometric system utilizing face, iris, and ear biometric features through rank level fusion method using novel Markov chain approach. We first apply fisherimage technique to face and ear image databases for recognition and Hough transform and Hamming distance techniques for iris image recognition. The main contribution is in introducing Markov chain approach for biometric rank aggregation. One of the distinctive features of this method is that it satisfies the Condorcet criterion, which is essential in any fair rank aggregation system. The experimentation shows superiority of the proposed approach to other recently introduced biometric rank aggregation methods. The developed system can be effectively used by security and intelligence services for controlling access to prohibited areas and protecting important national or public information.
机译:多峰生物识别技术旨在通过在决策过程中利用多个生物识别技术来提高生物识别系统的可靠性。有效的融合方案对于组合来自各种来源的信息是必需的。可以在几个不同的级别上集成此类信息,例如传感器级别,功能级别,比赛得分级别,等级级别和决策级别。在本文中,我们提出了一种通过使用新型马尔可夫链方法的等级融合方法来利用面部,虹膜和耳朵生物特征的多峰生物特征识别系统。我们首先将fisherimage技术应用于面部和耳朵图像数据库以进行识别和霍夫变换,以及汉明距离技术来进行虹膜图像识别。主要贡献在于引入用于生物特征等级汇总的马尔可夫链方法。该方法的显着特征之一是它满足Condorcet准则,这对任何公平等级聚合系统都是必不可少的。实验表明,所提出的方法优于其他最近引入的生物特征秩聚合方法。该开发的系统可以被安全和情报服务有效地用于控制对禁区的访问并保护重要的国家或公共信息。

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