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A robust technique for copy-move forgery detection and localization in digital images via stationary wavelet and discrete cosine transform

机译:通过平稳小波和离散余弦变换在数字图像中进行复制移动伪造检测和定位的可靠技术

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摘要

In this era, due to the widespread availability of digital devices, various open source and commercially available image editing tools have made authenticity of image contents questionable. Copy-move forgery (CMF) is a common technique to produce tampered images by concealing undesirable objects or replicating desirable objects in the same image. Therefore, means are required to authenticate image contents and identify the tampered areas. In this paper, a robust technique for CMF detection and localization in digital images is proposed. The technique extracts stationary wavelet transform (SWT) based features for exposing the forgeries in digital images. SWT is adopted because of its impressive localization properties, in both spectral and spatial domains. More specifically approximation subband of the stationary wavelet transform is utilized as this subband holds most of the information that is best suited for forgery detection. The dimension of the feature vectors is reduced by applying discrete cosine transform (DCT). To evaluate the proposed technique, we use two standard datasets namely, the CoMoFoD and the UCID for experimentations. The experimental results reveal that the proposed technique outperforms the existing techniques in terms of true and false detection rate. Consequently, the proposed forgery detection technique can be applied to detect the tampered areas and the benefits can be obtained in image forensic applications.
机译:在这个时代,由于数字设备的广泛可用性,各种开放源代码和商业上可用的图像编辑工具使图像内容的真实性令人怀疑。复制移动伪造(CMF)是通过隐藏不想要的对象或在同一图像中复制想要的对象来产生篡改图像的常用技术。因此,需要手段来认证图像内容并识别被篡改的区域。本文提出了一种用于数字图像中CMF检测和定位的鲁棒技术。该技术提取基于静态小波变换(SWT)的特征,以暴露数字图像中的伪造品。之所以采用SWT,是因为它在光谱和空间领域都具有令人印象深刻的定位特性。更具体地,利用固定小波变换的近似子带,因为该子带保存最适合伪造检测的大多数信息。通过应用离散余弦变换(DCT)可以减少特征向量的维数。为了评估所提出的技术,我们使用两个标准数据集,即CoMoFoD和UCID进行实验。实验结果表明,所提出的技术在正确率和错误率方面都优于现有技术。因此,所提出的伪造检测技术可以应用于检测篡改区域,并且可以在图像取证应用中获得益处。

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