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Off-line signature verification using curve fitting algorithm with neural networks

机译:使用神经网络的曲线拟合算法进行离线签名验证

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摘要

As signature is widely used as a means of personal verification, it is necessary for an automatic verification system. Offline and Online are two methods of verification based on the application. Online systems use dynamic information of a signature captured at the time the signature is made. Offline systems work on the scanned image of a signature. Processing Off-line is complex due to the absence of stable dynamic characteristics and also due to highly stylish and unconventional writing styles. A simple and a reliable system has to be designed which should detect various types of forgeries. Hence this paper proposes architecture for off-line signature verification. Our approach makes use of runtime signature instead of scanned images for recognition. This Offline verification of signatures uses a set of shape based geometric features and more importantly focuses on the distance based parameters such as the continuity of the signature and matching of the curves of the signatures generated by the critical points of the respective signature by analyzing the polynomial equation. Curve fitting and the analyzing of polynomial equations is one of the least explored topics till date but yet very efficient and hence we have implement this novel technique.
机译:由于签名被广泛用作个人验证的手段,因此对于自动验证系统是必要的。脱机和联机是基于应用程序的两种验证方法。在线系统使用在制作签名时捕获的签名的动态信息。脱机系统在签名的扫描图像上工作。由于缺乏稳定的动态特性以及高度时尚和非常规的书写样式,离线处理非常复杂。必须设计一个简单而可靠的系统,该系统应该检测各种类型的伪造品。因此,本文提出了离线签名验证的体系结构。我们的方法利用运行时签名而不是扫描图像进行识别。这种对签名的脱机验证使用了一组基于形状的几何特征,更重要的是着重于基于距离的参数,例如签名的连续性和通过分析多项式由相应签名的关键点生成的签名曲线的匹配。方程。曲线拟合和多项式方程式分析是迄今为止研究最少的话题之一,但是却非常有效,因此我们已经实现了这一新技术。

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