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Fourier Coefficients for Fraud Handwritten Document Classification through Age Analysis

机译:通过年龄分析对欺诈性手写文档进行分类的傅立叶系数

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As new digital technologies emerge to improve living style, at the same time, it also lead to increase crimes. Unlike existing approaches that use content of handwriting for fraud/forged document identification, in this paper we propose a novel approach that explores the quality of handwritten documents by considering both foreground and background information to identify whether it is old or new. The proposed approach works based on the fact that if a fraud document is created with some gaps after the original one, the fraud document happened to be a new one and the original happened to be an old one in this work. To identify whether a given handwritten document is old or new with gaps, we propose to divide Fourier coefficients of the input image into positive and negative coefficient images, and then reconstruct respective images to conquer two reconstructed ones. The contrast of the reconstructed images obtained before and after divide-conquer is studied to analyze the ages of the document based on image quality. The proposed approach finds a unique relationship between reconstructed images, obtained before and after divide-conquer, to identify the input image as old or new. To evaluate the proposed approach, we conduct experiments on our own handwritten dataset and a standard database, namely, Google-LIFE magazine. Comparative studies with the existing approaches show that the proposed approach outperforms the existing approaches in terms of classification rate.
机译:随着新的数字技术不断涌现,人们生活水平不断提高,同时也增加了犯罪率。与使用手写内容进行欺诈/伪造文档识别的现有方法不同,在本文中,我们提出了一种新颖的方法,该方法通过同时考虑前景和背景信息来识别旧文件或旧文件来探索手写文件的质量。所提出的方法基于以下事实:如果在原始文件之后创建了一个欺诈文件,但该文件存在一些空白,则该欺诈文件恰好是新文件,而原始文件恰好是旧文件。为了确定给定的手写文档是有间隙的是旧的还是新的,我们建议将输入图像的傅立叶系数划分为正系数图像和负系数图像,然后重构各个图像以征服两个重构的图像。研究了分治之前和之后获得的重建图像的对比度,以基于图像质量分析文档的年龄。所提出的方法找到在分治之前和之后获得的重建图像之间的唯一关系,以将输入图像识别为旧图像还是新图像。为了评估建议的方法,我们在自己的手写数据集和标准数据库(即Google-LIFE杂志)上进行了实验。与现有方法的比较研究表明,在分类率方面,拟议方法优于现有方法。

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