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An effectual classification approach to detect copy-move forgery using support vector machines

机译:一种使用支持​​向量机检测复制移动伪造的有效分类方法

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摘要

The growing need of digital software and media deals with the tampering of numerous multimedia data for mischievous determinations in case of broadcasting approaches. The supreme collective procedure of tampering linked with digital descriptions is copy-move forgery system that deals with a portion of duplicate image and replaced in diverse locations. Therefore, forensic authorities require consistent and effective means of sensing such maliciously forged data. Following study recommends a learning method for the detection of forgery. The image segmentation is the first step, in which the histogram of angled slopes is functional to every block followed by feature extraction; and concentrated to enable the dimension of resemblance. The detection is done using Support vector machines. The results establish that the projected process is intelligent to perceive various instances of copy-move forgery which are able to detect the duplicate regions.
机译:对数字软件和媒体的日益增长的需求涉及在广播方法的情况下篡改大量多媒体数据以作恶作剧的决定。与数字描述关联的最高篡改集体程序是复制移动伪造系统,该系统处理一部分重复图像并在不同位置进行替换。因此,法证机构需要一致且有效的手段来检测此类恶意伪造的数据。以下研究推荐了一种检测伪造的学习方法。图像分割是第一步,其中倾斜的直方图对每个块都起作用,然后进行特征提取。并集中精力以达到相似之处。使用支持向量机进行检测。结果表明,所计划的过程能够智能地感知能够检测重复区域的各种复制移动伪造实例。

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