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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Reliable online human signature verification systems
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Reliable online human signature verification systems

机译:可靠的在线人签名验证系统

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摘要

Online dynamic signature verification systems were designed and tested. A database of more than 10,000 signatures in (x(t), y(t))-form was acquired using a graphics tablet. We extracted a 42-parameter feature set at first, and advanced to a set of 49 normalized features that tolerate inconsistencies in genuine signatures while retaining the power to discriminate against forgeries. We studied algorithms for selecting and perhaps orthogonalizing features in accordance with the availability of training data and the level of system complexity. For decision making we studied several classifiers types. A modified version of our majority classifier yielded 2.5% equal error rate and, more importantly, an asymptotic performance of 7% false acceptance rate at zero false rejection rate, was robust to the speed of genuine signatures, and used only 15 parameter features.
机译:设计并测试了在线动态签名验证系统。使用图形输入板获取了(x(t),y(t))形式的10,000个以上签名的数据库。首先,我们提取了42个参数的特征集,然后将其扩展到49个归一化特征集,这些特征可以容忍真实签名的不一致,同时保留辨别伪造品的权力。我们研究了根据训练数据的可用性和系统复杂性级别选择和正交化特征的算法。为了决策,我们研究了几种分类器类型。我们的多数分类器的改进版本产生了2.5%的相等错误率,更重要的是,在零错误拒绝率的情况下,渐进性能为7%的错误接受率,对真实签名的速度非常可靠,并且仅使用了15个参数特征。

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