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Efficient image splicing detection algorithm based on markov features

机译:基于马尔可夫特征的高效图像拼接检测算法

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摘要

Image splicing is one of the most common methods for digital image tampering. In this paper, an efficient Markov features based algorithm is proposed for image splicing detection. The proposed algorithm first extracts two types of Markov features, coefficient-wise Markov features and block-wise Markov features in the discrete cosine transform (DCT) domain. The former are obtained by exploiting correlations between consecutive coefficients and the latter are computed by exploiting coefficient correlations between adjacent blocks. Then, a feature vector is obtained by combining these two Markov features and it is fed into support vector machine (SVM) for the classification of authentic and spliced images. The experimental results show that the proposed method not only achieves much higher detection accuracy but also reduces the total running time significantly in comparison with state-of-the-art methods.
机译:图像拼接是数字图像篡改的最常用方法之一。提出了一种有效的基于马尔可夫特征的图像拼接检测算法。该算法首先在离散余弦变换(DCT)域中提取两种类型的马尔可夫特征,分别是系数型马尔可夫特征和块型马尔可夫特征。前者通过利用连续系数之间的相关性而获得,而后者通过利用相邻块之间的系数相关性来计算。然后,通过组合这两个马尔可夫特征获得特征向量,并将其馈入支持向量机(SVM)中以对真实图像和拼接图像进行分类。实验结果表明,与现有方法相比,该方法不仅检测精度更高,而且总运行时间大大缩短。

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