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Off-line Chinese signature verification based on support vector machines

机译:基于支持向量机的离线中文签名验证

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This paper proposes a novel off-line Chinese signature verification method based on support vector machines. The method uses both static features and dynamic features. The static features include moment features and 16-direction distribution (an improvement on 4-direction distribution). The dynamic features include gray distribution and stroke width distribution. At last, support vector machine is used to classify the signatures. The main steps of constructing a signature verification system are discussed and experiments on real data sets show that the average error rate can reach 5%, which is obviously satisfactory.
机译:提出了一种基于支持向量机的离线中文签名验证方法。该方法同时使用静态特征和动态特征。静态特征包括力矩特征和16方向分布(对4方向分布的改进)。动态功能包括灰度分布和笔划宽度分布。最后,使用支持向量机对签名进行分类。讨论了构建签名验证系统的主要步骤,并在真实数据集上进行的实验表明,平均错误率可以达到5%,这显然是令人满意的。

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