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Identity authentication using improved online signature verification method

机译:使用改进的在线签名验证方法的身份认证

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摘要

We present a system for online handwritten signature verification, approaching the problem as a two-class pattern recognition problem. A test signature's authenticity is established by first aligning it with each reference signature for the claimed user, using dynamic time warping. The distances of the test signature to the nearest, farthest and template reference signatures are normalized by the corresponding mean values obtained from the reference set, to form a three-dimensional feature vector. This feature vector is then classified into one of the two classes (genuine or forgery). A linear classifier used in conjunction with the principal component analysis obtained a 1.4% error rate for a data set of 94 people and 619 test signatures (genuine signatures and skilled forgeries). Our method received the first place at SVC2004 with a 2.8% error rate.
机译:我们提出了一种用于在线手写签名验证的系统,将该问题作为两类模式识别问题进行了处理。首先通过使用动态时间规整将测试签名与要求保护的用户的每个参考签名对齐,从而确定其真实性。测试签名到最近,最远和模板参考签名的距离通过从参考集中获得的相应平均值进行归一化,以形成三维特征向量。然后将此特征向量分类为两类之一(正版或伪造)。线性分类器与主成分分析结合使用,对于由94个人和619个测试签名(真正的签名和熟练的伪造品)构成的数据集,错误率达到1.4%。我们的方法在SVC2004上以2.8%的错误率获得了第一名。

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