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A multibiometric system for identity verification based on fingerprints and signatures

机译:基于指纹和签名的用于身份验证的多学术系统

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Nowadays, biometrics is a research field in full expansion, several identification and verification systems are now developed, however their performances remain unsatisfactory facing to the growing security needs. Generally, the use of only one biometric decreases the reliability of these systems; thus, we have to combine several modalities. In this paper, we propose a multibiometric fusion approach for identity verification using two modalities: the fingerprints and the signature. Combinations of neural multi-layer perceptrons (MLP) are used for the unimodal classification. Our multimodal integration approach is based on the use of Support Vector Machines (SVM). The final identity verification decision is made according to the scores generated by the SVM classifier. The experimental results of the proposed multibiometric system are encouraging.
机译:如今,Biometrics是一项全面扩展的研究领域,现在开发了几种识别和验证系统,但他们的表演仍然不满意,面临着不断增长的安全需求。 通常,仅使用一个生物识别会降低这些系统的可靠性; 因此,我们必须结合几种方式。 在本文中,我们提出了一种使用两个模态的身份验证的多学力融合方法:指纹和签名。 神经多层感知(MLP)的组合用于单峰分类。 我们的多模式集成方法基于支持向量机(SVM)的使用。 最终身份验证决策是根据SVM分类器生成的分数进行的。 提出的多学徒系统的实验结果是令人鼓舞的。

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