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A COGNITIVE APPROACH TO OFF-LINE SIGNATURE VERIFICATION

机译:脱机签名验证的认知方法

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This paper presents an Off-line Signature Verification System for identifying random forgeries aimed at banking application. The cognitive information learning process in the proposed system is inspired by some characteristics of human learning. Four features distinguish the proposed system from those proposed thus far. First, the verification task is accomplished without a priori knowledge of the class of random forgeries. Second, no explicit modeling or making geometrical measurements are used to represent the signature. Third, the decision of the system is made throughout the use of two-stage verification process by which a global and/or local analysis are performed on the unknown signature. The global analysis is concerned with the overall shape of the unknown signature, whereas, the local analysis is concerned with the local features composing the unknown signature. Fourth, these analysis are performed at the boundary or within a predefined search region called the identity grid designed for each writer in the system. The proposed system is evaluated with a data base of 800 signatures.
机译:本文提出了一种离线签名验证系统,用于识别针对银行应用的随机伪造。所提出的系统中的认知信息学习过程受到人类学习的某些特征的启发。四个功能将建议的系统与迄今为止建议的系统区分开。首先,在没有先验知识的情况下完成验证任务。其次,不使用显式建模或进行几何测量来表示签名。第三,通过使用两阶段验证过程来做出系统的决定,通过该过程对未知签名进行全局和/或局部分析。全局分析与未知签名的整体形状有关,而局部分析与组成未知签名的局部特征有关。第四,这些分析是在边界或在为系统中每个编写者设计的称为身份网格的预定义搜索区域内执行的。建议的系统使用800个签名的数据库进行评估。

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