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User authentication using fusion of face and palmprint

机译:使用面部和掌纹融合的用户身份验证

摘要

This paper presents a new method of personal authentication using face and palmprint images. The facial and palmprint images can be simultaneously acquired by using a pair of digital camera and integrated to achieve higher confidence in personal authentication. The proposed method of fusion uses a feed-forward neural network to integrate individual matching scores and generate a combined decision score. The significance of the proposed method is more than improving performance for bimodal system. Our method uses the claimed identity of users as a feature for fusion. Thus the required weights and bias on individual biometric matching scores are automatically computed to achieve the best possible performance. The experimental results also demonstrate that Sum, Max, and Product rule can be used to achieve significant performance improvement when consolidated matching scores are employed instead of direct matching scores. The fusion strategy used in this paper outperforms even its existing facial and palmprint modules. The performance indices for personal authentication system using two-class separation criterion functions have been analyzed and evaluated. The method proposed in this paper can be extended for any multimodal authentication system to achieve higher performance.
机译:本文提出了一种使用面部和掌纹图​​像进行身份认证的新方法。面部和掌纹图​​像可以通过使用一对数码相机同时获取并集成在一起,从而获得更高的个人认证信心。所提出的融合方法使用前馈神经网络来整合单个匹配分数并生成组合决策分数。所提出的方法的意义不仅仅是提高双峰系统的性能。我们的方法使用要求保护的用户身份作为融合功能。因此,将自动计算所需的权重和各个生物特征匹配分数的偏差,以实现最佳的性能。实验结果还表明,当采用合并匹配分数代替直接匹配分数时,Sum,Max和Product规则可用于显着提高性能。本文使用的融合策略甚至优于其现有的面部和掌纹模块。分析和评估了使用两类分离标准函数的个人认证系统的性能指标。本文提出的方法可以扩展到任何多模式身份验证系统,以实现更高的性能。

著录项

  • 作者

    Pathak AK; Zhang D;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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