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Online Signature Verification: Is the Whole Greater Than the Sum of the Parts?

机译:在线签名验证:整体大于零件的总和吗?

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摘要

To choose the best features to model the signatures is one of the most challenging problems in online signature verification. In this paper, the idea is to evaluate whether it would be possible to combine different feature sets selected by different criteria in such a way that their main characteristics could be properly exploited and the verification performance could be improved with respect to the case of using each set individually. In particular, the combination of an automatically selected feature set, a feature set inspired by the ones used by Forensic Hand-writing Experts (FHEs), and a set of global features is proposed. Two different fusion strategies are used to perform the combination, namely, a decision level fusion scheme and a pre-classification scheme. Experimental results show that the proposed feature combination approaches result not only in improvements regarding the verification error rates but also the simplicity, flexibility and interpretability of the verification system.
机译:要选择模型的最佳功能,签名是在线签名验证中最具挑战性的问题之一。在本文中,该想法是评估是否可以以这样的方式来评估由不同标准选择的不同特征集,以这样的方式可以正确地利用它们的主要特征,并且可以在使用每个的情况下改善验证性能单独设置。特别地,提出了由自动选择的特征集的组合,这是由取证手写专家(Fuehs)使用的特征集的特征集,以及一组全局特征。两种不同的融合策略用于执行组合,即决策电平融合方案和预分类方案。实验结果表明,所提出的特征组合方法不仅可以改进验证误差率,而且是验证系统的简单性,灵活性和可解释性。

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