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DCT-phase statistics for forged IMEI numbers and air ticket detection

机译:伪造IMEI数量和机票检测的DCT相统计

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New tools have been developing with the intention of having more flexibility and greater user-friendliness for editing the images and documents in digital technologies, but, unfortunately, they are also being used for manipulating and tampering information. Examples of such crimes include creating forged International Mobile Equipment Identity (IMEI) numbers which are embedded on mobile packages and inside smart mobile cases for illicit activities. Another example of such crimes is altering the name or date on air tickets for breaching security at the airport. This paper presents a new expert system for detecting forged IMEI numbers as well as altered air ticket images. The proposed method derives the phase spectrum using the Discrete Cosine Transform (DCT) to highlight the suspicious regions; it is unlike the phase spectrum from a Fourier transform, which is ineffective due to power spectrum noise. From the phase spectrum, our method extracts phase statistics to study the effect of distortions introduced by forgery operations. This results in feature vectors, which are fed to a Support Vector Machine (SVM) classifier for detection of forged IMEI numbers and air ticket images. Experimental results on our dataset of forged IMEI numbers (which is created by us for this work), on altered air tickets, on benchmark datasets of video caption text (which is tampered text), and on altered receipts of the ICPR 2018 FDC dataset, show that the proposed method is robust across different datasets. Furthermore, comparative studies of the proposed method with the existing methods on the same datasets show that the proposed method outperforms the existing methods. The dataset created will be available freely on request to the authors.
机译:新工具一直在开发,目的是拥有更多的灵活性和更大的用户友好性,用于编辑数字技术中的图像和文档,但是,不幸的是,它们也被用于操纵和篡改信息。这种犯罪的例子包括创建嵌入在移动包上的伪造国际移动设备标识(IMEI)数字,用于非法活动。此类罪行的另一个例子正在改变机票的航空公司的名称或日期,在机场违反安全。本文介绍了一种用于检测锻造IMEI数字的新专家系统以及改变的机票图像。所提出的方法使用离散余弦变换(DCT)来突出可疑区域;它与来自傅里叶变换的相位谱不同,这是由于功率谱噪声而无效。从阶段谱,我们的方法提取相位统计,以研究伪造操作引入的扭曲效果。这导致特征向量,其被馈送到支持向量机(SVM)分类器,用于检测伪造的IMEI号和空票图像。在我们的伪造IMEI数字数据集(由我们为此工作创建)的实验结果,在更改的空票上,在视频标题文本的基准数据集(这是篡改文本),以及ICPR 2018 FDC数据集的更改收据上,表明,所提出的方法跨越不同的数据集是强大的。此外,在相同数据集上具有现有方法的所提出方法的比较研究表明,所提出的方法优于现有方法。创建的数据集将根据作者可免费提供。

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