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Low dimensional DCT and DWT feature based model for detection of image splicing and copy-move forgery

机译:基于低维度DCT和DWT功能的图像拼接和复印伪造的模型

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摘要

Digital images are being used as a prominent carrier of visual information in this age of digitization. Images become more and more omnipresent in everyday life. The images can be easily manipulated due to the accessibility of many internet tools and advanced software. Previously many techniques have been developed to authenticate the images. But all the previous techniques have high dimension of feature vectors. Here, a low dimensional DCT and DWT based features have been introduced to authenticate the images. In this work, we are dealing with both the passive forgery (splicing and copy-move) simultaneously. Features are extracted through image statistics and pixel correlation from DCT and DWT domain. Ensemble classifier has been selected for training and testing. The classifier classifies whether the given images are forged or authentic. Further, it also classifies the forgery in spliced or copy-move. If there is copy-move, the proposed work also perform the region detection using a novel key-point based method. The proposed model gives good detection accuracy and high generalization capability which is independent of image formats. Experimental results demonstrate the performance of proposed work against different post-processing operations like scaling, rotation, and Gaussian noise. Also, the comparative results against different existing methods show the effectiveness of the proposed model.
机译:数字图像被用作在这个数字化时代的视觉信息的着名载体。日常生活中的图像变得越来越多。由于许多互联网工具和高级软件的可访问性,可以轻松地操作图像。已经开发出以前许多技术以验证图像。但所有以前的技术都具有高尺寸的特征向量。这里,已经引入了低维度DCT和基于DWT的特征来验证图像。在这项工作中,我们正在同时处理被动伪造(拼接和复制)。通过图像统计和来自DCT和DWT域的像素相关来提取功能。已选择合奏分类器进行培训和测试。分类器对给定的图像是否是伪造的或真实的。此外,它还将伪造的伪造或复制移动分类。如果有复印,则建议的工作还使用基于新的密钥点的方法执行该区域检测。所提出的模型提供良好的检测精度和高泛化能力,与图像格式无关。实验结果表明,拟议的工作对不同后处理操作的性能,如缩放,旋转和高斯噪声。此外,针对不同现有方法的比较结果表明了所提出的模型的有效性。

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