An on-line signature verification based on timely nonlinear sampling and sparse representation

Zhihua Yang, Yishu Liu
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Abstract

A novel approach which generates so-called ”potential genuine signatures” by timely nonlinear sampling from an original on-line signature is presented. Velocity vectors of these potential genuine signatures are exploited to construct an user-dependent overcomplete dictionary. Finally, sparse coefficients which served as features are used for verification. There are two main advantages: 1) The DTW becomes unnecessary, which makes the proposed method computationally inexpensive; 2) Multiply potential genuine signatures can be generated from a genuine one, so the difficulties causing by insufficient train samples in a real system are effectively alleviated. Experiments show encouraging results.
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基于实时非线性采样和稀疏表示的在线签名验证
提出了一种通过对原始在线签名进行实时非线性采样来生成“潜在真实签名”的新方法。利用这些潜在的真实签名的速度向量来构建一个依赖于用户的过完备字典。最后利用稀疏系数作为特征进行验证。有两个主要优点:1)不需要DTW,这使得所提出的方法计算成本低;2)一个正品签名可以生成多个潜在的正品签名,有效缓解了真实系统中训练样本不足带来的困难。实验结果令人鼓舞。
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