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Advanced methods for two-class problem formulation for on-line signature verification

机译:用于在线签名验证的两类问题公式化的高级方法

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摘要

We present several systems for on-line signature verification that approach the problem as a two-class pattern recognition problem. To our knowledge, this is the first work that solves the problem of on-line signature verification as a two-class problem using global (and not local) features. The feature vector obtained by global features is then classified into one of the two classes (genuine or impostor) by a support vector machine. Moreover, we show the combination of the systems introduced in this work permit a dramatic reduction of the equal error rate.
机译:我们提出了几种用于在线签名验证的系统,该系统将问题视为两类模式识别问题。就我们所知,这是第一项使用全局(而非本地)功能解决在线签名验证问题的两类工作。然后,通过支持向量机将通过全局特征获得的特征向量分为两类(正版或冒名顶替者)之一。此外,我们显示了这项工作中引入的系统的组合可以显着降低相等错误率。

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